compression.c 30.9 KB
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/*
 * Copyright (C) 2008 Oracle.  All rights reserved.
 *
 * This program is free software; you can redistribute it and/or
 * modify it under the terms of the GNU General Public
 * License v2 as published by the Free Software Foundation.
 *
 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
 * General Public License for more details.
 *
 * You should have received a copy of the GNU General Public
 * License along with this program; if not, write to the
 * Free Software Foundation, Inc., 59 Temple Place - Suite 330,
 * Boston, MA 021110-1307, USA.
 */

#include <linux/kernel.h>
#include <linux/bio.h>
#include <linux/buffer_head.h>
#include <linux/file.h>
#include <linux/fs.h>
#include <linux/pagemap.h>
#include <linux/highmem.h>
#include <linux/time.h>
#include <linux/init.h>
#include <linux/string.h>
#include <linux/backing-dev.h>
#include <linux/mpage.h>
#include <linux/swap.h>
#include <linux/writeback.h>
#include <linux/bit_spinlock.h>
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#include <linux/slab.h>
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#include <linux/sched/mm.h>
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#include "ctree.h"
#include "disk-io.h"
#include "transaction.h"
#include "btrfs_inode.h"
#include "volumes.h"
#include "ordered-data.h"
#include "compression.h"
#include "extent_io.h"
#include "extent_map.h"

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static int btrfs_decompress_bio(struct compressed_bio *cb);
47

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static inline int compressed_bio_size(struct btrfs_fs_info *fs_info,
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				      unsigned long disk_size)
{
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	u16 csum_size = btrfs_super_csum_size(fs_info->super_copy);
52

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	return sizeof(struct compressed_bio) +
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		(DIV_ROUND_UP(disk_size, fs_info->sectorsize)) * csum_size;
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}

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static int check_compressed_csum(struct btrfs_inode *inode,
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				 struct compressed_bio *cb,
				 u64 disk_start)
{
	int ret;
	struct page *page;
	unsigned long i;
	char *kaddr;
	u32 csum;
	u32 *cb_sum = &cb->sums;

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	if (inode->flags & BTRFS_INODE_NODATASUM)
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		return 0;

	for (i = 0; i < cb->nr_pages; i++) {
		page = cb->compressed_pages[i];
		csum = ~(u32)0;

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		kaddr = kmap_atomic(page);
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		csum = btrfs_csum_data(kaddr, csum, PAGE_SIZE);
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		btrfs_csum_final(csum, (u8 *)&csum);
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		kunmap_atomic(kaddr);
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		if (csum != *cb_sum) {
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			btrfs_print_data_csum_error(inode, disk_start, csum,
82
					*cb_sum, cb->mirror_num);
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			ret = -EIO;
			goto fail;
		}
		cb_sum++;

	}
	ret = 0;
fail:
	return ret;
}

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/* when we finish reading compressed pages from the disk, we
 * decompress them and then run the bio end_io routines on the
 * decompressed pages (in the inode address space).
 *
 * This allows the checksumming and other IO error handling routines
 * to work normally
 *
 * The compressed pages are freed here, and it must be run
 * in process context
 */
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static void end_compressed_bio_read(struct bio *bio)
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{
	struct compressed_bio *cb = bio->bi_private;
	struct inode *inode;
	struct page *page;
	unsigned long index;
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	unsigned int mirror = btrfs_io_bio(bio)->mirror_num;
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	int ret = 0;
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	if (bio->bi_status)
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		cb->errors = 1;

	/* if there are more bios still pending for this compressed
	 * extent, just exit
	 */
119
	if (!refcount_dec_and_test(&cb->pending_bios))
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		goto out;

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	/*
	 * Record the correct mirror_num in cb->orig_bio so that
	 * read-repair can work properly.
	 */
	ASSERT(btrfs_io_bio(cb->orig_bio));
	btrfs_io_bio(cb->orig_bio)->mirror_num = mirror;
	cb->mirror_num = mirror;

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	/*
	 * Some IO in this cb have failed, just skip checksum as there
	 * is no way it could be correct.
	 */
	if (cb->errors == 1)
		goto csum_failed;

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	inode = cb->inode;
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	ret = check_compressed_csum(BTRFS_I(inode), cb,
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				    (u64)bio->bi_iter.bi_sector << 9);
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	if (ret)
		goto csum_failed;

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	/* ok, we're the last bio for this extent, lets start
	 * the decompression.
	 */
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	ret = btrfs_decompress_bio(cb);

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csum_failed:
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	if (ret)
		cb->errors = 1;

	/* release the compressed pages */
	index = 0;
	for (index = 0; index < cb->nr_pages; index++) {
		page = cb->compressed_pages[index];
		page->mapping = NULL;
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		put_page(page);
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	}

	/* do io completion on the original bio */
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	if (cb->errors) {
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		bio_io_error(cb->orig_bio);
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	} else {
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		int i;
		struct bio_vec *bvec;
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		/*
		 * we have verified the checksum already, set page
		 * checked so the end_io handlers know about it
		 */
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		ASSERT(!bio_flagged(bio, BIO_CLONED));
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		bio_for_each_segment_all(bvec, cb->orig_bio, i)
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			SetPageChecked(bvec->bv_page);
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		bio_endio(cb->orig_bio);
176
	}
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	/* finally free the cb struct */
	kfree(cb->compressed_pages);
	kfree(cb);
out:
	bio_put(bio);
}

/*
 * Clear the writeback bits on all of the file
 * pages for a compressed write
 */
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static noinline void end_compressed_writeback(struct inode *inode,
					      const struct compressed_bio *cb)
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{
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	unsigned long index = cb->start >> PAGE_SHIFT;
	unsigned long end_index = (cb->start + cb->len - 1) >> PAGE_SHIFT;
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	struct page *pages[16];
	unsigned long nr_pages = end_index - index + 1;
	int i;
	int ret;

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	if (cb->errors)
		mapping_set_error(inode->i_mapping, -EIO);

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	while (nr_pages > 0) {
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		ret = find_get_pages_contig(inode->i_mapping, index,
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				     min_t(unsigned long,
				     nr_pages, ARRAY_SIZE(pages)), pages);
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		if (ret == 0) {
			nr_pages -= 1;
			index += 1;
			continue;
		}
		for (i = 0; i < ret; i++) {
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			if (cb->errors)
				SetPageError(pages[i]);
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			end_page_writeback(pages[i]);
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			put_page(pages[i]);
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		}
		nr_pages -= ret;
		index += ret;
	}
	/* the inode may be gone now */
}

/*
 * do the cleanup once all the compressed pages hit the disk.
 * This will clear writeback on the file pages and free the compressed
 * pages.
 *
 * This also calls the writeback end hooks for the file pages so that
 * metadata and checksums can be updated in the file.
 */
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static void end_compressed_bio_write(struct bio *bio)
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{
	struct extent_io_tree *tree;
	struct compressed_bio *cb = bio->bi_private;
	struct inode *inode;
	struct page *page;
	unsigned long index;

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	if (bio->bi_status)
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		cb->errors = 1;

	/* if there are more bios still pending for this compressed
	 * extent, just exit
	 */
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	if (!refcount_dec_and_test(&cb->pending_bios))
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		goto out;

	/* ok, we're the last bio for this extent, step one is to
	 * call back into the FS and do all the end_io operations
	 */
	inode = cb->inode;
	tree = &BTRFS_I(inode)->io_tree;
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	cb->compressed_pages[0]->mapping = cb->inode->i_mapping;
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	tree->ops->writepage_end_io_hook(cb->compressed_pages[0],
					 cb->start,
					 cb->start + cb->len - 1,
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					 NULL,
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					 bio->bi_status ?
					 BLK_STS_OK : BLK_STS_NOTSUPP);
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	cb->compressed_pages[0]->mapping = NULL;
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	end_compressed_writeback(inode, cb);
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	/* note, our inode could be gone now */

	/*
	 * release the compressed pages, these came from alloc_page and
	 * are not attached to the inode at all
	 */
	index = 0;
	for (index = 0; index < cb->nr_pages; index++) {
		page = cb->compressed_pages[index];
		page->mapping = NULL;
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		put_page(page);
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	}

	/* finally free the cb struct */
	kfree(cb->compressed_pages);
	kfree(cb);
out:
	bio_put(bio);
}

/*
 * worker function to build and submit bios for previously compressed pages.
 * The corresponding pages in the inode should be marked for writeback
 * and the compressed pages should have a reference on them for dropping
 * when the IO is complete.
 *
 * This also checksums the file bytes and gets things ready for
 * the end io hooks.
 */
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blk_status_t btrfs_submit_compressed_write(struct inode *inode, u64 start,
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				 unsigned long len, u64 disk_start,
				 unsigned long compressed_len,
				 struct page **compressed_pages,
				 unsigned long nr_pages)
{
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	struct btrfs_fs_info *fs_info = btrfs_sb(inode->i_sb);
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	struct bio *bio = NULL;
	struct compressed_bio *cb;
	unsigned long bytes_left;
	struct extent_io_tree *io_tree = &BTRFS_I(inode)->io_tree;
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	int pg_index = 0;
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	struct page *page;
	u64 first_byte = disk_start;
	struct block_device *bdev;
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	blk_status_t ret;
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	int skip_sum = BTRFS_I(inode)->flags & BTRFS_INODE_NODATASUM;
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	WARN_ON(start & ((u64)PAGE_SIZE - 1));
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	cb = kmalloc(compressed_bio_size(fs_info, compressed_len), GFP_NOFS);
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	if (!cb)
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		return BLK_STS_RESOURCE;
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	refcount_set(&cb->pending_bios, 0);
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	cb->errors = 0;
	cb->inode = inode;
	cb->start = start;
	cb->len = len;
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	cb->mirror_num = 0;
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	cb->compressed_pages = compressed_pages;
	cb->compressed_len = compressed_len;
	cb->orig_bio = NULL;
	cb->nr_pages = nr_pages;

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	bdev = fs_info->fs_devices->latest_bdev;
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	bio = btrfs_bio_alloc(bdev, first_byte);
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	bio_set_op_attrs(bio, REQ_OP_WRITE, 0);
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	bio->bi_private = cb;
	bio->bi_end_io = end_compressed_bio_write;
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	refcount_set(&cb->pending_bios, 1);
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	/* create and submit bios for the compressed pages */
	bytes_left = compressed_len;
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	for (pg_index = 0; pg_index < cb->nr_pages; pg_index++) {
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		int submit = 0;

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		page = compressed_pages[pg_index];
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		page->mapping = inode->i_mapping;
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		if (bio->bi_iter.bi_size)
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			submit = io_tree->ops->merge_bio_hook(page, 0,
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							   PAGE_SIZE,
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							   bio, 0);

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		page->mapping = NULL;
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		if (submit || bio_add_page(bio, page, PAGE_SIZE, 0) <
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		    PAGE_SIZE) {
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			bio_get(bio);

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			/*
			 * inc the count before we submit the bio so
			 * we know the end IO handler won't happen before
			 * we inc the count.  Otherwise, the cb might get
			 * freed before we're done setting it up
			 */
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			refcount_inc(&cb->pending_bios);
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			ret = btrfs_bio_wq_end_io(fs_info, bio,
						  BTRFS_WQ_ENDIO_DATA);
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			BUG_ON(ret); /* -ENOMEM */
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			if (!skip_sum) {
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				ret = btrfs_csum_one_bio(inode, bio, start, 1);
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				BUG_ON(ret); /* -ENOMEM */
364
			}
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366
			ret = btrfs_map_bio(fs_info, bio, 0, 1);
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			if (ret) {
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				bio->bi_status = ret;
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				bio_endio(bio);
			}
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			bio_put(bio);

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			bio = btrfs_bio_alloc(bdev, first_byte);
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			bio_set_op_attrs(bio, REQ_OP_WRITE, 0);
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			bio->bi_private = cb;
			bio->bi_end_io = end_compressed_bio_write;
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			bio_add_page(bio, page, PAGE_SIZE, 0);
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		}
380
		if (bytes_left < PAGE_SIZE) {
381
			btrfs_info(fs_info,
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					"bytes left %lu compress len %lu nr %lu",
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			       bytes_left, cb->compressed_len, cb->nr_pages);
		}
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		bytes_left -= PAGE_SIZE;
		first_byte += PAGE_SIZE;
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		cond_resched();
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	}
	bio_get(bio);

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	ret = btrfs_bio_wq_end_io(fs_info, bio, BTRFS_WQ_ENDIO_DATA);
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	BUG_ON(ret); /* -ENOMEM */
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394
	if (!skip_sum) {
395
		ret = btrfs_csum_one_bio(inode, bio, start, 1);
396
		BUG_ON(ret); /* -ENOMEM */
397
	}
398

399
	ret = btrfs_map_bio(fs_info, bio, 0, 1);
400
	if (ret) {
401
		bio->bi_status = ret;
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		bio_endio(bio);
	}
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	bio_put(bio);
	return 0;
}

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static u64 bio_end_offset(struct bio *bio)
{
	struct bio_vec *last = &bio->bi_io_vec[bio->bi_vcnt - 1];

	return page_offset(last->bv_page) + last->bv_len + last->bv_offset;
}

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static noinline int add_ra_bio_pages(struct inode *inode,
				     u64 compressed_end,
				     struct compressed_bio *cb)
{
	unsigned long end_index;
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	unsigned long pg_index;
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	u64 last_offset;
	u64 isize = i_size_read(inode);
	int ret;
	struct page *page;
	unsigned long nr_pages = 0;
	struct extent_map *em;
	struct address_space *mapping = inode->i_mapping;
	struct extent_map_tree *em_tree;
	struct extent_io_tree *tree;
	u64 end;
	int misses = 0;

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	last_offset = bio_end_offset(cb->orig_bio);
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	em_tree = &BTRFS_I(inode)->extent_tree;
	tree = &BTRFS_I(inode)->io_tree;

	if (isize == 0)
		return 0;

441
	end_index = (i_size_read(inode) - 1) >> PAGE_SHIFT;
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	while (last_offset < compressed_end) {
444
		pg_index = last_offset >> PAGE_SHIFT;
445

446
		if (pg_index > end_index)
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			break;

		rcu_read_lock();
450
		page = radix_tree_lookup(&mapping->page_tree, pg_index);
451
		rcu_read_unlock();
452
		if (page && !radix_tree_exceptional_entry(page)) {
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			misses++;
			if (misses > 4)
				break;
			goto next;
		}

459 460
		page = __page_cache_alloc(mapping_gfp_constraint(mapping,
								 ~__GFP_FS));
461 462 463
		if (!page)
			break;

464
		if (add_to_page_cache_lru(page, mapping, pg_index, GFP_NOFS)) {
465
			put_page(page);
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			goto next;
		}

469
		end = last_offset + PAGE_SIZE - 1;
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		/*
		 * at this point, we have a locked page in the page cache
		 * for these bytes in the file.  But, we have to make
		 * sure they map to this compressed extent on disk.
		 */
		set_page_extent_mapped(page);
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		lock_extent(tree, last_offset, end);
477
		read_lock(&em_tree->lock);
478
		em = lookup_extent_mapping(em_tree, last_offset,
479
					   PAGE_SIZE);
480
		read_unlock(&em_tree->lock);
481 482

		if (!em || last_offset < em->start ||
483
		    (last_offset + PAGE_SIZE > extent_map_end(em)) ||
484
		    (em->block_start >> 9) != cb->orig_bio->bi_iter.bi_sector) {
485
			free_extent_map(em);
486
			unlock_extent(tree, last_offset, end);
487
			unlock_page(page);
488
			put_page(page);
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			break;
		}
		free_extent_map(em);

		if (page->index == end_index) {
			char *userpage;
495
			size_t zero_offset = isize & (PAGE_SIZE - 1);
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			if (zero_offset) {
				int zeros;
499
				zeros = PAGE_SIZE - zero_offset;
500
				userpage = kmap_atomic(page);
501 502
				memset(userpage + zero_offset, 0, zeros);
				flush_dcache_page(page);
503
				kunmap_atomic(userpage);
504 505 506 507
			}
		}

		ret = bio_add_page(cb->orig_bio, page,
508
				   PAGE_SIZE, 0);
509

510
		if (ret == PAGE_SIZE) {
511
			nr_pages++;
512
			put_page(page);
513
		} else {
514
			unlock_extent(tree, last_offset, end);
515
			unlock_page(page);
516
			put_page(page);
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			break;
		}
next:
520
		last_offset += PAGE_SIZE;
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	}
	return 0;
}

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/*
 * for a compressed read, the bio we get passed has all the inode pages
 * in it.  We don't actually do IO on those pages but allocate new ones
 * to hold the compressed pages on disk.
 *
530
 * bio->bi_iter.bi_sector points to the compressed extent on disk
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 * bio->bi_io_vec points to all of the inode pages
 *
 * After the compressed pages are read, we copy the bytes into the
 * bio we were passed and then call the bio end_io calls
 */
536
blk_status_t btrfs_submit_compressed_read(struct inode *inode, struct bio *bio,
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				 int mirror_num, unsigned long bio_flags)
{
539
	struct btrfs_fs_info *fs_info = btrfs_sb(inode->i_sb);
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	struct extent_io_tree *tree;
	struct extent_map_tree *em_tree;
	struct compressed_bio *cb;
	unsigned long compressed_len;
	unsigned long nr_pages;
545
	unsigned long pg_index;
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	struct page *page;
	struct block_device *bdev;
	struct bio *comp_bio;
549
	u64 cur_disk_byte = (u64)bio->bi_iter.bi_sector << 9;
550 551
	u64 em_len;
	u64 em_start;
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	struct extent_map *em;
553
	blk_status_t ret = BLK_STS_RESOURCE;
554
	int faili = 0;
555
	u32 *sums;
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	tree = &BTRFS_I(inode)->io_tree;
	em_tree = &BTRFS_I(inode)->extent_tree;

	/* we need the actual starting offset of this extent in the file */
561
	read_lock(&em_tree->lock);
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	em = lookup_extent_mapping(em_tree,
				   page_offset(bio->bi_io_vec->bv_page),
564
				   PAGE_SIZE);
565
	read_unlock(&em_tree->lock);
566
	if (!em)
567
		return BLK_STS_IOERR;
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569
	compressed_len = em->block_len;
570
	cb = kmalloc(compressed_bio_size(fs_info, compressed_len), GFP_NOFS);
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	if (!cb)
		goto out;

574
	refcount_set(&cb->pending_bios, 0);
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	cb->errors = 0;
	cb->inode = inode;
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	cb->mirror_num = mirror_num;
	sums = &cb->sums;
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580
	cb->start = em->orig_start;
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	em_len = em->len;
	em_start = em->start;
583

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	free_extent_map(em);
585
	em = NULL;
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	cb->len = bio->bi_iter.bi_size;
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	cb->compressed_len = compressed_len;
589
	cb->compress_type = extent_compress_type(bio_flags);
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	cb->orig_bio = bio;

592
	nr_pages = DIV_ROUND_UP(compressed_len, PAGE_SIZE);
593
	cb->compressed_pages = kcalloc(nr_pages, sizeof(struct page *),
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594
				       GFP_NOFS);
595 596 597
	if (!cb->compressed_pages)
		goto fail1;

598
	bdev = fs_info->fs_devices->latest_bdev;
C
Chris Mason 已提交
599

600 601
	for (pg_index = 0; pg_index < nr_pages; pg_index++) {
		cb->compressed_pages[pg_index] = alloc_page(GFP_NOFS |
C
Chris Mason 已提交
602
							      __GFP_HIGHMEM);
603 604
		if (!cb->compressed_pages[pg_index]) {
			faili = pg_index - 1;
D
Dan Carpenter 已提交
605
			ret = BLK_STS_RESOURCE;
606
			goto fail2;
607
		}
C
Chris Mason 已提交
608
	}
609
	faili = nr_pages - 1;
C
Chris Mason 已提交
610 611
	cb->nr_pages = nr_pages;

612
	add_ra_bio_pages(inode, em_start + em_len, cb);
613 614

	/* include any pages we added in add_ra-bio_pages */
C
Christoph Hellwig 已提交
615
	cb->len = bio->bi_iter.bi_size;
616

617
	comp_bio = btrfs_bio_alloc(bdev, cur_disk_byte);
M
Mike Christie 已提交
618
	bio_set_op_attrs (comp_bio, REQ_OP_READ, 0);
C
Chris Mason 已提交
619 620
	comp_bio->bi_private = cb;
	comp_bio->bi_end_io = end_compressed_bio_read;
621
	refcount_set(&cb->pending_bios, 1);
C
Chris Mason 已提交
622

623
	for (pg_index = 0; pg_index < nr_pages; pg_index++) {
624 625
		int submit = 0;

626
		page = cb->compressed_pages[pg_index];
C
Chris Mason 已提交
627
		page->mapping = inode->i_mapping;
628
		page->index = em_start >> PAGE_SHIFT;
629

630
		if (comp_bio->bi_iter.bi_size)
631
			submit = tree->ops->merge_bio_hook(page, 0,
632
							PAGE_SIZE,
C
Chris Mason 已提交
633 634
							comp_bio, 0);

C
Chris Mason 已提交
635
		page->mapping = NULL;
636
		if (submit || bio_add_page(comp_bio, page, PAGE_SIZE, 0) <
637
		    PAGE_SIZE) {
C
Chris Mason 已提交
638 639
			bio_get(comp_bio);

640 641
			ret = btrfs_bio_wq_end_io(fs_info, comp_bio,
						  BTRFS_WQ_ENDIO_DATA);
642
			BUG_ON(ret); /* -ENOMEM */
C
Chris Mason 已提交
643

644 645 646 647 648 649
			/*
			 * inc the count before we submit the bio so
			 * we know the end IO handler won't happen before
			 * we inc the count.  Otherwise, the cb might get
			 * freed before we're done setting it up
			 */
650
			refcount_inc(&cb->pending_bios);
651

652
			if (!(BTRFS_I(inode)->flags & BTRFS_INODE_NODATASUM)) {
653 654
				ret = btrfs_lookup_bio_sums(inode, comp_bio,
							    sums);
655
				BUG_ON(ret); /* -ENOMEM */
656
			}
657
			sums += DIV_ROUND_UP(comp_bio->bi_iter.bi_size,
658
					     fs_info->sectorsize);
659

660
			ret = btrfs_map_bio(fs_info, comp_bio, mirror_num, 0);
661
			if (ret) {
662
				comp_bio->bi_status = ret;
663 664
				bio_endio(comp_bio);
			}
C
Chris Mason 已提交
665 666 667

			bio_put(comp_bio);

668
			comp_bio = btrfs_bio_alloc(bdev, cur_disk_byte);
M
Mike Christie 已提交
669
			bio_set_op_attrs(comp_bio, REQ_OP_READ, 0);
670 671 672
			comp_bio->bi_private = cb;
			comp_bio->bi_end_io = end_compressed_bio_read;

673
			bio_add_page(comp_bio, page, PAGE_SIZE, 0);
C
Chris Mason 已提交
674
		}
675
		cur_disk_byte += PAGE_SIZE;
C
Chris Mason 已提交
676 677 678
	}
	bio_get(comp_bio);

679
	ret = btrfs_bio_wq_end_io(fs_info, comp_bio, BTRFS_WQ_ENDIO_DATA);
680
	BUG_ON(ret); /* -ENOMEM */
C
Chris Mason 已提交
681

682
	if (!(BTRFS_I(inode)->flags & BTRFS_INODE_NODATASUM)) {
683
		ret = btrfs_lookup_bio_sums(inode, comp_bio, sums);
684
		BUG_ON(ret); /* -ENOMEM */
685
	}
686

687
	ret = btrfs_map_bio(fs_info, comp_bio, mirror_num, 0);
688
	if (ret) {
689
		comp_bio->bi_status = ret;
690 691
		bio_endio(comp_bio);
	}
C
Chris Mason 已提交
692 693 694

	bio_put(comp_bio);
	return 0;
695 696

fail2:
697 698 699 700
	while (faili >= 0) {
		__free_page(cb->compressed_pages[faili]);
		faili--;
	}
701 702 703 704 705 706 707

	kfree(cb->compressed_pages);
fail1:
	kfree(cb);
out:
	free_extent_map(em);
	return ret;
C
Chris Mason 已提交
708
}
709

710 711 712 713 714 715 716 717 718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737

struct heuristic_ws {
	struct list_head list;
};

static void free_heuristic_ws(struct list_head *ws)
{
	struct heuristic_ws *workspace;

	workspace = list_entry(ws, struct heuristic_ws, list);

	kfree(workspace);
}

static struct list_head *alloc_heuristic_ws(void)
{
	struct heuristic_ws *ws;

	ws = kzalloc(sizeof(*ws), GFP_KERNEL);
	if (!ws)
		return ERR_PTR(-ENOMEM);

	INIT_LIST_HEAD(&ws->list);

	return &ws->list;
}

struct workspaces_list {
738 739
	struct list_head idle_ws;
	spinlock_t ws_lock;
740 741 742 743 744
	/* Number of free workspaces */
	int free_ws;
	/* Total number of allocated workspaces */
	atomic_t total_ws;
	/* Waiters for a free workspace */
745
	wait_queue_head_t ws_wait;
746 747 748 749 750
};

static struct workspaces_list btrfs_comp_ws[BTRFS_COMPRESS_TYPES];

static struct workspaces_list btrfs_heuristic_ws;
751

752
static const struct btrfs_compress_op * const btrfs_compress_op[] = {
753
	&btrfs_zlib_compress,
L
Li Zefan 已提交
754
	&btrfs_lzo_compress,
N
Nick Terrell 已提交
755
	&btrfs_zstd_compress,
756 757
};

758
void __init btrfs_init_compress(void)
759
{
760
	struct list_head *workspace;
761 762
	int i;

763 764 765 766
	INIT_LIST_HEAD(&btrfs_heuristic_ws.idle_ws);
	spin_lock_init(&btrfs_heuristic_ws.ws_lock);
	atomic_set(&btrfs_heuristic_ws.total_ws, 0);
	init_waitqueue_head(&btrfs_heuristic_ws.ws_wait);
767

768 769 770 771 772 773 774 775 776 777 778
	workspace = alloc_heuristic_ws();
	if (IS_ERR(workspace)) {
		pr_warn(
	"BTRFS: cannot preallocate heuristic workspace, will try later\n");
	} else {
		atomic_set(&btrfs_heuristic_ws.total_ws, 1);
		btrfs_heuristic_ws.free_ws = 1;
		list_add(workspace, &btrfs_heuristic_ws.idle_ws);
	}

	for (i = 0; i < BTRFS_COMPRESS_TYPES; i++) {
779 780
		INIT_LIST_HEAD(&btrfs_comp_ws[i].idle_ws);
		spin_lock_init(&btrfs_comp_ws[i].ws_lock);
781
		atomic_set(&btrfs_comp_ws[i].total_ws, 0);
782
		init_waitqueue_head(&btrfs_comp_ws[i].ws_wait);
783 784 785 786 787 788 789

		/*
		 * Preallocate one workspace for each compression type so
		 * we can guarantee forward progress in the worst case
		 */
		workspace = btrfs_compress_op[i]->alloc_workspace();
		if (IS_ERR(workspace)) {
790
			pr_warn("BTRFS: cannot preallocate compression workspace, will try later\n");
791 792 793 794 795
		} else {
			atomic_set(&btrfs_comp_ws[i].total_ws, 1);
			btrfs_comp_ws[i].free_ws = 1;
			list_add(workspace, &btrfs_comp_ws[i].idle_ws);
		}
796 797 798 799
	}
}

/*
800 801 802 803
 * This finds an available workspace or allocates a new one.
 * If it's not possible to allocate a new one, waits until there's one.
 * Preallocation makes a forward progress guarantees and we do not return
 * errors.
804
 */
805
static struct list_head *__find_workspace(int type, bool heuristic)
806 807 808 809
{
	struct list_head *workspace;
	int cpus = num_online_cpus();
	int idx = type - 1;
810
	unsigned nofs_flag;
811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829
	struct list_head *idle_ws;
	spinlock_t *ws_lock;
	atomic_t *total_ws;
	wait_queue_head_t *ws_wait;
	int *free_ws;

	if (heuristic) {
		idle_ws	 = &btrfs_heuristic_ws.idle_ws;
		ws_lock	 = &btrfs_heuristic_ws.ws_lock;
		total_ws = &btrfs_heuristic_ws.total_ws;
		ws_wait	 = &btrfs_heuristic_ws.ws_wait;
		free_ws	 = &btrfs_heuristic_ws.free_ws;
	} else {
		idle_ws	 = &btrfs_comp_ws[idx].idle_ws;
		ws_lock	 = &btrfs_comp_ws[idx].ws_lock;
		total_ws = &btrfs_comp_ws[idx].total_ws;
		ws_wait	 = &btrfs_comp_ws[idx].ws_wait;
		free_ws	 = &btrfs_comp_ws[idx].free_ws;
	}
830 831

again:
832 833 834
	spin_lock(ws_lock);
	if (!list_empty(idle_ws)) {
		workspace = idle_ws->next;
835
		list_del(workspace);
836
		(*free_ws)--;
837
		spin_unlock(ws_lock);
838 839 840
		return workspace;

	}
841
	if (atomic_read(total_ws) > cpus) {
842 843
		DEFINE_WAIT(wait);

844 845
		spin_unlock(ws_lock);
		prepare_to_wait(ws_wait, &wait, TASK_UNINTERRUPTIBLE);
846
		if (atomic_read(total_ws) > cpus && !*free_ws)
847
			schedule();
848
		finish_wait(ws_wait, &wait);
849 850
		goto again;
	}
851
	atomic_inc(total_ws);
852
	spin_unlock(ws_lock);
853

854 855 856 857 858 859
	/*
	 * Allocation helpers call vmalloc that can't use GFP_NOFS, so we have
	 * to turn it off here because we might get called from the restricted
	 * context of btrfs_compress_bio/btrfs_compress_pages
	 */
	nofs_flag = memalloc_nofs_save();
860 861 862 863
	if (heuristic)
		workspace = alloc_heuristic_ws();
	else
		workspace = btrfs_compress_op[idx]->alloc_workspace();
864 865
	memalloc_nofs_restore(nofs_flag);

866
	if (IS_ERR(workspace)) {
867
		atomic_dec(total_ws);
868
		wake_up(ws_wait);
869 870 871 872 873 874

		/*
		 * Do not return the error but go back to waiting. There's a
		 * workspace preallocated for each type and the compression
		 * time is bounded so we get to a workspace eventually. This
		 * makes our caller's life easier.
875 876 877 878
		 *
		 * To prevent silent and low-probability deadlocks (when the
		 * initial preallocation fails), check if there are any
		 * workspaces at all.
879
		 */
880 881 882 883 884 885
		if (atomic_read(total_ws) == 0) {
			static DEFINE_RATELIMIT_STATE(_rs,
					/* once per minute */ 60 * HZ,
					/* no burst */ 1);

			if (__ratelimit(&_rs)) {
886
				pr_warn("BTRFS: no compression workspaces, low memory, retrying\n");
887 888
			}
		}
889
		goto again;
890 891 892 893
	}
	return workspace;
}

894 895 896 897 898
static struct list_head *find_workspace(int type)
{
	return __find_workspace(type, false);
}

899 900 901 902
/*
 * put a workspace struct back on the list or free it if we have enough
 * idle ones sitting around
 */
903 904
static void __free_workspace(int type, struct list_head *workspace,
			     bool heuristic)
905 906
{
	int idx = type - 1;
907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925
	struct list_head *idle_ws;
	spinlock_t *ws_lock;
	atomic_t *total_ws;
	wait_queue_head_t *ws_wait;
	int *free_ws;

	if (heuristic) {
		idle_ws	 = &btrfs_heuristic_ws.idle_ws;
		ws_lock	 = &btrfs_heuristic_ws.ws_lock;
		total_ws = &btrfs_heuristic_ws.total_ws;
		ws_wait	 = &btrfs_heuristic_ws.ws_wait;
		free_ws	 = &btrfs_heuristic_ws.free_ws;
	} else {
		idle_ws	 = &btrfs_comp_ws[idx].idle_ws;
		ws_lock	 = &btrfs_comp_ws[idx].ws_lock;
		total_ws = &btrfs_comp_ws[idx].total_ws;
		ws_wait	 = &btrfs_comp_ws[idx].ws_wait;
		free_ws	 = &btrfs_comp_ws[idx].free_ws;
	}
926 927

	spin_lock(ws_lock);
928
	if (*free_ws <= num_online_cpus()) {
929
		list_add(workspace, idle_ws);
930
		(*free_ws)++;
931
		spin_unlock(ws_lock);
932 933
		goto wake;
	}
934
	spin_unlock(ws_lock);
935

936 937 938 939
	if (heuristic)
		free_heuristic_ws(workspace);
	else
		btrfs_compress_op[idx]->free_workspace(workspace);
940
	atomic_dec(total_ws);
941
wake:
942 943 944
	/*
	 * Make sure counter is updated before we wake up waiters.
	 */
945
	smp_mb();
946 947
	if (waitqueue_active(ws_wait))
		wake_up(ws_wait);
948 949
}

950 951 952 953 954
static void free_workspace(int type, struct list_head *ws)
{
	return __free_workspace(type, ws, false);
}

955 956 957 958 959 960 961 962
/*
 * cleanup function for module exit
 */
static void free_workspaces(void)
{
	struct list_head *workspace;
	int i;

963 964 965 966 967 968 969
	while (!list_empty(&btrfs_heuristic_ws.idle_ws)) {
		workspace = btrfs_heuristic_ws.idle_ws.next;
		list_del(workspace);
		free_heuristic_ws(workspace);
		atomic_dec(&btrfs_heuristic_ws.total_ws);
	}

970
	for (i = 0; i < BTRFS_COMPRESS_TYPES; i++) {
971 972
		while (!list_empty(&btrfs_comp_ws[i].idle_ws)) {
			workspace = btrfs_comp_ws[i].idle_ws.next;
973 974
			list_del(workspace);
			btrfs_compress_op[i]->free_workspace(workspace);
975
			atomic_dec(&btrfs_comp_ws[i].total_ws);
976 977 978 979 980
		}
	}
}

/*
981 982
 * Given an address space and start and length, compress the bytes into @pages
 * that are allocated on demand.
983
 *
984 985 986 987 988
 * @type_level is encoded algorithm and level, where level 0 means whatever
 * default the algorithm chooses and is opaque here;
 * - compression algo are 0-3
 * - the level are bits 4-7
 *
989 990
 * @out_pages is an in/out parameter, holds maximum number of pages to allocate
 * and returns number of actually allocated pages
991
 *
992 993
 * @total_in is used to return the number of bytes actually read.  It
 * may be smaller than the input length if we had to exit early because we
994 995 996
 * ran out of room in the pages array or because we cross the
 * max_out threshold.
 *
997 998
 * @total_out is an in/out parameter, must be set to the input length and will
 * be also used to return the total number of compressed bytes
999
 *
1000
 * @max_out tells us the max number of bytes that we're allowed to
1001 1002
 * stuff into pages
 */
1003
int btrfs_compress_pages(unsigned int type_level, struct address_space *mapping,
1004
			 u64 start, struct page **pages,
1005 1006
			 unsigned long *out_pages,
			 unsigned long *total_in,
1007
			 unsigned long *total_out)
1008 1009 1010
{
	struct list_head *workspace;
	int ret;
1011
	int type = type_level & 0xF;
1012 1013 1014

	workspace = find_workspace(type);

1015
	btrfs_compress_op[type - 1]->set_level(workspace, type_level);
1016
	ret = btrfs_compress_op[type-1]->compress_pages(workspace, mapping,
1017
						      start, pages,
1018
						      out_pages,
1019
						      total_in, total_out);
1020 1021 1022 1023 1024 1025 1026 1027 1028
	free_workspace(type, workspace);
	return ret;
}

/*
 * pages_in is an array of pages with compressed data.
 *
 * disk_start is the starting logical offset of this array in the file
 *
1029
 * orig_bio contains the pages from the file that we want to decompress into
1030 1031 1032 1033 1034 1035 1036 1037
 *
 * srclen is the number of bytes in pages_in
 *
 * The basic idea is that we have a bio that was created by readpages.
 * The pages in the bio are for the uncompressed data, and they may not
 * be contiguous.  They all correspond to the range of bytes covered by
 * the compressed extent.
 */
1038
static int btrfs_decompress_bio(struct compressed_bio *cb)
1039 1040 1041
{
	struct list_head *workspace;
	int ret;
1042
	int type = cb->compress_type;
1043 1044

	workspace = find_workspace(type);
1045
	ret = btrfs_compress_op[type - 1]->decompress_bio(workspace, cb);
1046
	free_workspace(type, workspace);
1047

1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071
	return ret;
}

/*
 * a less complex decompression routine.  Our compressed data fits in a
 * single page, and we want to read a single page out of it.
 * start_byte tells us the offset into the compressed data we're interested in
 */
int btrfs_decompress(int type, unsigned char *data_in, struct page *dest_page,
		     unsigned long start_byte, size_t srclen, size_t destlen)
{
	struct list_head *workspace;
	int ret;

	workspace = find_workspace(type);

	ret = btrfs_compress_op[type-1]->decompress(workspace, data_in,
						  dest_page, start_byte,
						  srclen, destlen);

	free_workspace(type, workspace);
	return ret;
}

1072
void btrfs_exit_compress(void)
1073 1074 1075
{
	free_workspaces();
}
1076 1077 1078 1079 1080 1081 1082 1083

/*
 * Copy uncompressed data from working buffer to pages.
 *
 * buf_start is the byte offset we're of the start of our workspace buffer.
 *
 * total_out is the last byte of the buffer
 */
1084
int btrfs_decompress_buf2page(const char *buf, unsigned long buf_start,
1085
			      unsigned long total_out, u64 disk_start,
1086
			      struct bio *bio)
1087 1088 1089 1090
{
	unsigned long buf_offset;
	unsigned long current_buf_start;
	unsigned long start_byte;
1091
	unsigned long prev_start_byte;
1092 1093 1094
	unsigned long working_bytes = total_out - buf_start;
	unsigned long bytes;
	char *kaddr;
1095
	struct bio_vec bvec = bio_iter_iovec(bio, bio->bi_iter);
1096 1097 1098 1099 1100

	/*
	 * start byte is the first byte of the page we're currently
	 * copying into relative to the start of the compressed data.
	 */
1101
	start_byte = page_offset(bvec.bv_page) - disk_start;
1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120

	/* we haven't yet hit data corresponding to this page */
	if (total_out <= start_byte)
		return 1;

	/*
	 * the start of the data we care about is offset into
	 * the middle of our working buffer
	 */
	if (total_out > start_byte && buf_start < start_byte) {
		buf_offset = start_byte - buf_start;
		working_bytes -= buf_offset;
	} else {
		buf_offset = 0;
	}
	current_buf_start = buf_start;

	/* copy bytes from the working buffer into the pages */
	while (working_bytes > 0) {
1121 1122
		bytes = min_t(unsigned long, bvec.bv_len,
				PAGE_SIZE - buf_offset);
1123
		bytes = min(bytes, working_bytes);
1124 1125 1126

		kaddr = kmap_atomic(bvec.bv_page);
		memcpy(kaddr + bvec.bv_offset, buf + buf_offset, bytes);
1127
		kunmap_atomic(kaddr);
1128
		flush_dcache_page(bvec.bv_page);
1129 1130 1131 1132 1133 1134

		buf_offset += bytes;
		working_bytes -= bytes;
		current_buf_start += bytes;

		/* check if we need to pick another page */
1135 1136 1137 1138
		bio_advance(bio, bytes);
		if (!bio->bi_iter.bi_size)
			return 0;
		bvec = bio_iter_iovec(bio, bio->bi_iter);
1139
		prev_start_byte = start_byte;
1140
		start_byte = page_offset(bvec.bv_page) - disk_start;
1141

1142
		/*
1143 1144 1145 1146
		 * We need to make sure we're only adjusting
		 * our offset into compression working buffer when
		 * we're switching pages.  Otherwise we can incorrectly
		 * keep copying when we were actually done.
1147
		 */
1148 1149 1150 1151 1152 1153 1154
		if (start_byte != prev_start_byte) {
			/*
			 * make sure our new page is covered by this
			 * working buffer
			 */
			if (total_out <= start_byte)
				return 1;
1155

1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166
			/*
			 * the next page in the biovec might not be adjacent
			 * to the last page, but it might still be found
			 * inside this working buffer. bump our offset pointer
			 */
			if (total_out > start_byte &&
			    current_buf_start < start_byte) {
				buf_offset = start_byte - buf_start;
				working_bytes = total_out - start_byte;
				current_buf_start = buf_start + buf_offset;
			}
1167 1168 1169 1170 1171
		}
	}

	return 1;
}
1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189

/*
 * Compression heuristic.
 *
 * For now is's a naive and optimistic 'return true', we'll extend the logic to
 * quickly (compared to direct compression) detect data characteristics
 * (compressible/uncompressible) to avoid wasting CPU time on uncompressible
 * data.
 *
 * The following types of analysis can be performed:
 * - detect mostly zero data
 * - detect data with low "byte set" size (text, etc)
 * - detect data with low/high "core byte" set
 *
 * Return non-zero if the compression should be done, 0 otherwise.
 */
int btrfs_compress_heuristic(struct inode *inode, u64 start, u64 end)
{
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	struct list_head *ws_list = __find_workspace(0, true);
	struct heuristic_ws *ws;
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	u64 index = start >> PAGE_SHIFT;
	u64 end_index = end >> PAGE_SHIFT;
	struct page *page;
	int ret = 1;

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	ws = list_entry(ws_list, struct heuristic_ws, list);

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	while (index <= end_index) {
		page = find_get_page(inode->i_mapping, index);
		kmap(page);
		kunmap(page);
		put_page(page);
		index++;
	}

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	__free_workspace(0, ws_list, true);

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	return ret;
}
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unsigned int btrfs_compress_str2level(const char *str)
{
	if (strncmp(str, "zlib", 4) != 0)
		return 0;

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	/* Accepted form: zlib:1 up to zlib:9 and nothing left after the number */
	if (str[4] == ':' && '1' <= str[5] && str[5] <= '9' && str[6] == 0)
		return str[5] - '0';
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	return 0;
}