zram_drv.c 21.7 KB
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/*
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 * Compressed RAM block device
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 *
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 * Copyright (C) 2008, 2009, 2010  Nitin Gupta
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 *               2012, 2013 Minchan Kim
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 *
 * This code is released using a dual license strategy: BSD/GPL
 * You can choose the licence that better fits your requirements.
 *
 * Released under the terms of 3-clause BSD License
 * Released under the terms of GNU General Public License Version 2.0
 *
 */

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#define KMSG_COMPONENT "zram"
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#define pr_fmt(fmt) KMSG_COMPONENT ": " fmt

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#ifdef CONFIG_ZRAM_DEBUG
#define DEBUG
#endif

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#include <linux/module.h>
#include <linux/kernel.h>
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#include <linux/bio.h>
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#include <linux/bitops.h>
#include <linux/blkdev.h>
#include <linux/buffer_head.h>
#include <linux/device.h>
#include <linux/genhd.h>
#include <linux/highmem.h>
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#include <linux/slab.h>
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#include <linux/lzo.h>
#include <linux/string.h>
#include <linux/vmalloc.h>

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#include "zram_drv.h"
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/* Globals */
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static int zram_major;
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static struct zram *zram_devices;
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/* Module params (documentation at end) */
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static unsigned int num_devices = 1;
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static inline struct zram *dev_to_zram(struct device *dev)
{
	return (struct zram *)dev_to_disk(dev)->private_data;
}

static ssize_t disksize_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	struct zram *zram = dev_to_zram(dev);

	return sprintf(buf, "%llu\n", zram->disksize);
}

static ssize_t initstate_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	struct zram *zram = dev_to_zram(dev);

	return sprintf(buf, "%u\n", zram->init_done);
}

static ssize_t num_reads_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	struct zram *zram = dev_to_zram(dev);

	return sprintf(buf, "%llu\n",
			(u64)atomic64_read(&zram->stats.num_reads));
}

static ssize_t num_writes_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	struct zram *zram = dev_to_zram(dev);

	return sprintf(buf, "%llu\n",
			(u64)atomic64_read(&zram->stats.num_writes));
}

static ssize_t invalid_io_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	struct zram *zram = dev_to_zram(dev);

	return sprintf(buf, "%llu\n",
			(u64)atomic64_read(&zram->stats.invalid_io));
}

static ssize_t notify_free_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	struct zram *zram = dev_to_zram(dev);

	return sprintf(buf, "%llu\n",
			(u64)atomic64_read(&zram->stats.notify_free));
}

static ssize_t zero_pages_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	struct zram *zram = dev_to_zram(dev);

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	return sprintf(buf, "%u\n", atomic_read(&zram->stats.pages_zero));
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}

static ssize_t orig_data_size_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	struct zram *zram = dev_to_zram(dev);

	return sprintf(buf, "%llu\n",
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		(u64)(atomic_read(&zram->stats.pages_stored)) << PAGE_SHIFT);
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}

static ssize_t compr_data_size_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	struct zram *zram = dev_to_zram(dev);

	return sprintf(buf, "%llu\n",
			(u64)atomic64_read(&zram->stats.compr_size));
}

static ssize_t mem_used_total_show(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	u64 val = 0;
	struct zram *zram = dev_to_zram(dev);
	struct zram_meta *meta = zram->meta;

	down_read(&zram->init_lock);
	if (zram->init_done)
		val = zs_get_total_size_bytes(meta->mem_pool);
	up_read(&zram->init_lock);

	return sprintf(buf, "%llu\n", val);
}

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/* flag operations needs meta->tb_lock */
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static int zram_test_flag(struct zram_meta *meta, u32 index,
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			enum zram_pageflags flag)
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{
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	return meta->table[index].flags & BIT(flag);
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}

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static void zram_set_flag(struct zram_meta *meta, u32 index,
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			enum zram_pageflags flag)
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{
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	meta->table[index].flags |= BIT(flag);
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}

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static void zram_clear_flag(struct zram_meta *meta, u32 index,
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			enum zram_pageflags flag)
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{
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	meta->table[index].flags &= ~BIT(flag);
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}

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static inline int is_partial_io(struct bio_vec *bvec)
{
	return bvec->bv_len != PAGE_SIZE;
}

/*
 * Check if request is within bounds and aligned on zram logical blocks.
 */
static inline int valid_io_request(struct zram *zram, struct bio *bio)
{
	u64 start, end, bound;
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	/* unaligned request */
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	if (unlikely(bio->bi_iter.bi_sector &
		     (ZRAM_SECTOR_PER_LOGICAL_BLOCK - 1)))
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		return 0;
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	if (unlikely(bio->bi_iter.bi_size & (ZRAM_LOGICAL_BLOCK_SIZE - 1)))
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		return 0;

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	start = bio->bi_iter.bi_sector;
	end = start + (bio->bi_iter.bi_size >> SECTOR_SHIFT);
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	bound = zram->disksize >> SECTOR_SHIFT;
	/* out of range range */
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	if (unlikely(start >= bound || end > bound || start > end))
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		return 0;

	/* I/O request is valid */
	return 1;
}

static void zram_meta_free(struct zram_meta *meta)
{
	zs_destroy_pool(meta->mem_pool);
	kfree(meta->compress_workmem);
	free_pages((unsigned long)meta->compress_buffer, 1);
	vfree(meta->table);
	kfree(meta);
}

static struct zram_meta *zram_meta_alloc(u64 disksize)
{
	size_t num_pages;
	struct zram_meta *meta = kmalloc(sizeof(*meta), GFP_KERNEL);
	if (!meta)
		goto out;

	meta->compress_workmem = kzalloc(LZO1X_MEM_COMPRESS, GFP_KERNEL);
	if (!meta->compress_workmem)
		goto free_meta;

	meta->compress_buffer =
		(void *)__get_free_pages(GFP_KERNEL | __GFP_ZERO, 1);
	if (!meta->compress_buffer) {
		pr_err("Error allocating compressor buffer space\n");
		goto free_workmem;
	}

	num_pages = disksize >> PAGE_SHIFT;
	meta->table = vzalloc(num_pages * sizeof(*meta->table));
	if (!meta->table) {
		pr_err("Error allocating zram address table\n");
		goto free_buffer;
	}

	meta->mem_pool = zs_create_pool(GFP_NOIO | __GFP_HIGHMEM);
	if (!meta->mem_pool) {
		pr_err("Error creating memory pool\n");
		goto free_table;
	}

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	rwlock_init(&meta->tb_lock);
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	mutex_init(&meta->buffer_lock);
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	return meta;

free_table:
	vfree(meta->table);
free_buffer:
	free_pages((unsigned long)meta->compress_buffer, 1);
free_workmem:
	kfree(meta->compress_workmem);
free_meta:
	kfree(meta);
	meta = NULL;
out:
	return meta;
}

static void update_position(u32 *index, int *offset, struct bio_vec *bvec)
{
	if (*offset + bvec->bv_len >= PAGE_SIZE)
		(*index)++;
	*offset = (*offset + bvec->bv_len) % PAGE_SIZE;
}

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static int page_zero_filled(void *ptr)
{
	unsigned int pos;
	unsigned long *page;

	page = (unsigned long *)ptr;

	for (pos = 0; pos != PAGE_SIZE / sizeof(*page); pos++) {
		if (page[pos])
			return 0;
	}

	return 1;
}

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static void handle_zero_page(struct bio_vec *bvec)
{
	struct page *page = bvec->bv_page;
	void *user_mem;

	user_mem = kmap_atomic(page);
	if (is_partial_io(bvec))
		memset(user_mem + bvec->bv_offset, 0, bvec->bv_len);
	else
		clear_page(user_mem);
	kunmap_atomic(user_mem);

	flush_dcache_page(page);
}

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/* NOTE: caller should hold meta->tb_lock with write-side */
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static void zram_free_page(struct zram *zram, size_t index)
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{
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	struct zram_meta *meta = zram->meta;
	unsigned long handle = meta->table[index].handle;
	u16 size = meta->table[index].size;
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	if (unlikely(!handle)) {
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		/*
		 * No memory is allocated for zero filled pages.
		 * Simply clear zero page flag.
		 */
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		if (zram_test_flag(meta, index, ZRAM_ZERO)) {
			zram_clear_flag(meta, index, ZRAM_ZERO);
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			atomic_dec(&zram->stats.pages_zero);
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		}
		return;
	}

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	if (unlikely(size > max_zpage_size))
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		atomic_dec(&zram->stats.bad_compress);
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	zs_free(meta->mem_pool, handle);
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	if (size <= PAGE_SIZE / 2)
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		atomic_dec(&zram->stats.good_compress);
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	atomic64_sub(meta->table[index].size, &zram->stats.compr_size);
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	atomic_dec(&zram->stats.pages_stored);
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	meta->table[index].handle = 0;
	meta->table[index].size = 0;
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}

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static int zram_decompress_page(struct zram *zram, char *mem, u32 index)
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{
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	int ret = LZO_E_OK;
	size_t clen = PAGE_SIZE;
	unsigned char *cmem;
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	struct zram_meta *meta = zram->meta;
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	unsigned long handle;
	u16 size;

	read_lock(&meta->tb_lock);
	handle = meta->table[index].handle;
	size = meta->table[index].size;
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	if (!handle || zram_test_flag(meta, index, ZRAM_ZERO)) {
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		read_unlock(&meta->tb_lock);
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		clear_page(mem);
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		return 0;
	}
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	cmem = zs_map_object(meta->mem_pool, handle, ZS_MM_RO);
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	if (size == PAGE_SIZE)
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		copy_page(mem, cmem);
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	else
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		ret = lzo1x_decompress_safe(cmem, size,	mem, &clen);
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	zs_unmap_object(meta->mem_pool, handle);
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	read_unlock(&meta->tb_lock);
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	/* Should NEVER happen. Return bio error if it does. */
	if (unlikely(ret != LZO_E_OK)) {
		pr_err("Decompression failed! err=%d, page=%u\n", ret, index);
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		atomic64_inc(&zram->stats.failed_reads);
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		return ret;
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	}
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	return 0;
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}

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static int zram_bvec_read(struct zram *zram, struct bio_vec *bvec,
			  u32 index, int offset, struct bio *bio)
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{
	int ret;
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	struct page *page;
	unsigned char *user_mem, *uncmem = NULL;
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	struct zram_meta *meta = zram->meta;
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	page = bvec->bv_page;

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	read_lock(&meta->tb_lock);
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	if (unlikely(!meta->table[index].handle) ||
			zram_test_flag(meta, index, ZRAM_ZERO)) {
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		read_unlock(&meta->tb_lock);
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		handle_zero_page(bvec);
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		return 0;
	}
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	read_unlock(&meta->tb_lock);
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	if (is_partial_io(bvec))
		/* Use  a temporary buffer to decompress the page */
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		uncmem = kmalloc(PAGE_SIZE, GFP_NOIO);

	user_mem = kmap_atomic(page);
	if (!is_partial_io(bvec))
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		uncmem = user_mem;

	if (!uncmem) {
		pr_info("Unable to allocate temp memory\n");
		ret = -ENOMEM;
		goto out_cleanup;
	}
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	ret = zram_decompress_page(zram, uncmem, index);
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	/* Should NEVER happen. Return bio error if it does. */
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	if (unlikely(ret != LZO_E_OK))
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		goto out_cleanup;
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	if (is_partial_io(bvec))
		memcpy(user_mem + bvec->bv_offset, uncmem + offset,
				bvec->bv_len);

	flush_dcache_page(page);
	ret = 0;
out_cleanup:
	kunmap_atomic(user_mem);
	if (is_partial_io(bvec))
		kfree(uncmem);
	return ret;
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}

static int zram_bvec_write(struct zram *zram, struct bio_vec *bvec, u32 index,
			   int offset)
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{
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	int ret = 0;
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	size_t clen;
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	unsigned long handle;
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	struct page *page;
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	unsigned char *user_mem, *cmem, *src, *uncmem = NULL;
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	struct zram_meta *meta = zram->meta;
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	bool locked = false;
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	page = bvec->bv_page;
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	src = meta->compress_buffer;
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	if (is_partial_io(bvec)) {
		/*
		 * This is a partial IO. We need to read the full page
		 * before to write the changes.
		 */
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		uncmem = kmalloc(PAGE_SIZE, GFP_NOIO);
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		if (!uncmem) {
			ret = -ENOMEM;
			goto out;
		}
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		ret = zram_decompress_page(zram, uncmem, index);
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		if (ret)
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			goto out;
	}

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	mutex_lock(&meta->buffer_lock);
	locked = true;
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	user_mem = kmap_atomic(page);
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	if (is_partial_io(bvec)) {
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		memcpy(uncmem + offset, user_mem + bvec->bv_offset,
		       bvec->bv_len);
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		kunmap_atomic(user_mem);
		user_mem = NULL;
	} else {
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		uncmem = user_mem;
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	}
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	if (page_zero_filled(uncmem)) {
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		kunmap_atomic(user_mem);
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		/* Free memory associated with this sector now. */
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		write_lock(&zram->meta->tb_lock);
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		zram_free_page(zram, index);
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		zram_set_flag(meta, index, ZRAM_ZERO);
		write_unlock(&zram->meta->tb_lock);
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		atomic_inc(&zram->stats.pages_zero);
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		ret = 0;
		goto out;
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	}
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	ret = lzo1x_1_compress(uncmem, PAGE_SIZE, src, &clen,
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			       meta->compress_workmem);
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	if (!is_partial_io(bvec)) {
		kunmap_atomic(user_mem);
		user_mem = NULL;
		uncmem = NULL;
	}
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	if (unlikely(ret != LZO_E_OK)) {
		pr_err("Compression failed! err=%d\n", ret);
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		goto out;
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	}
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	if (unlikely(clen > max_zpage_size)) {
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		atomic_inc(&zram->stats.bad_compress);
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		clen = PAGE_SIZE;
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		src = NULL;
		if (is_partial_io(bvec))
			src = uncmem;
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	}
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	handle = zs_malloc(meta->mem_pool, clen);
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	if (!handle) {
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		pr_info("Error allocating memory for compressed page: %u, size=%zu\n",
			index, clen);
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		ret = -ENOMEM;
		goto out;
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	}
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	cmem = zs_map_object(meta->mem_pool, handle, ZS_MM_WO);
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	if ((clen == PAGE_SIZE) && !is_partial_io(bvec)) {
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		src = kmap_atomic(page);
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		copy_page(cmem, src);
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		kunmap_atomic(src);
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	} else {
		memcpy(cmem, src, clen);
	}
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	zs_unmap_object(meta->mem_pool, handle);
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	/*
	 * Free memory associated with this sector
	 * before overwriting unused sectors.
	 */
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	write_lock(&zram->meta->tb_lock);
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	zram_free_page(zram, index);

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	meta->table[index].handle = handle;
	meta->table[index].size = clen;
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	write_unlock(&zram->meta->tb_lock);
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	/* Update stats */
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	atomic64_add(clen, &zram->stats.compr_size);
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	atomic_inc(&zram->stats.pages_stored);
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	if (clen <= PAGE_SIZE / 2)
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		atomic_inc(&zram->stats.good_compress);
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out:
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	if (locked)
		mutex_unlock(&meta->buffer_lock);
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	if (is_partial_io(bvec))
		kfree(uncmem);

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	if (ret)
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		atomic64_inc(&zram->stats.failed_writes);
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	return ret;
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}

static int zram_bvec_rw(struct zram *zram, struct bio_vec *bvec, u32 index,
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			int offset, struct bio *bio, int rw)
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{
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	int ret;
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	if (rw == READ)
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		ret = zram_bvec_read(zram, bvec, index, offset, bio);
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	else
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		ret = zram_bvec_write(zram, bvec, index, offset);

	return ret;
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}

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static void zram_reset_device(struct zram *zram, bool reset_capacity)
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{
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	size_t index;
	struct zram_meta *meta;

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	down_write(&zram->init_lock);
	if (!zram->init_done) {
		up_write(&zram->init_lock);
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		return;
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	}
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	meta = zram->meta;
	zram->init_done = 0;

	/* Free all pages that are still in this zram device */
	for (index = 0; index < zram->disksize >> PAGE_SHIFT; index++) {
		unsigned long handle = meta->table[index].handle;
		if (!handle)
			continue;

		zs_free(meta->mem_pool, handle);
	}

	zram_meta_free(zram->meta);
	zram->meta = NULL;
	/* Reset stats */
	memset(&zram->stats, 0, sizeof(zram->stats));

	zram->disksize = 0;
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	if (reset_capacity)
		set_capacity(zram->disk, 0);
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	up_write(&zram->init_lock);
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}

static void zram_init_device(struct zram *zram, struct zram_meta *meta)
{
	if (zram->disksize > 2 * (totalram_pages << PAGE_SHIFT)) {
		pr_info(
		"There is little point creating a zram of greater than "
		"twice the size of memory since we expect a 2:1 compression "
		"ratio. Note that zram uses about 0.1%% of the size of "
		"the disk when not in use so a huge zram is "
		"wasteful.\n"
		"\tMemory Size: %lu kB\n"
		"\tSize you selected: %llu kB\n"
		"Continuing anyway ...\n",
		(totalram_pages << PAGE_SHIFT) >> 10, zram->disksize >> 10
		);
	}

	/* zram devices sort of resembles non-rotational disks */
	queue_flag_set_unlocked(QUEUE_FLAG_NONROT, zram->disk->queue);

	zram->meta = meta;
	zram->init_done = 1;

	pr_debug("Initialization done!\n");
}

static ssize_t disksize_store(struct device *dev,
		struct device_attribute *attr, const char *buf, size_t len)
{
	u64 disksize;
	struct zram_meta *meta;
	struct zram *zram = dev_to_zram(dev);

	disksize = memparse(buf, NULL);
	if (!disksize)
		return -EINVAL;

	disksize = PAGE_ALIGN(disksize);
	meta = zram_meta_alloc(disksize);
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	if (!meta)
		return -ENOMEM;
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	down_write(&zram->init_lock);
	if (zram->init_done) {
		up_write(&zram->init_lock);
		zram_meta_free(meta);
		pr_info("Cannot change disksize for initialized device\n");
		return -EBUSY;
	}

	zram->disksize = disksize;
	set_capacity(zram->disk, zram->disksize >> SECTOR_SHIFT);
	zram_init_device(zram, meta);
	up_write(&zram->init_lock);

	return len;
}

static ssize_t reset_store(struct device *dev,
		struct device_attribute *attr, const char *buf, size_t len)
{
	int ret;
	unsigned short do_reset;
	struct zram *zram;
	struct block_device *bdev;

	zram = dev_to_zram(dev);
	bdev = bdget_disk(zram->disk, 0);

644 645 646
	if (!bdev)
		return -ENOMEM;

647
	/* Do not reset an active device! */
648 649 650 651
	if (bdev->bd_holders) {
		ret = -EBUSY;
		goto out;
	}
652 653 654

	ret = kstrtou16(buf, 10, &do_reset);
	if (ret)
655
		goto out;
656

657 658 659 660
	if (!do_reset) {
		ret = -EINVAL;
		goto out;
	}
661 662

	/* Make sure all pending I/O is finished */
663
	fsync_bdev(bdev);
664
	bdput(bdev);
665

M
Minchan Kim 已提交
666
	zram_reset_device(zram, true);
667
	return len;
668 669 670 671

out:
	bdput(bdev);
	return ret;
672 673 674 675
}

static void __zram_make_request(struct zram *zram, struct bio *bio, int rw)
{
676
	int offset;
677
	u32 index;
678 679
	struct bio_vec bvec;
	struct bvec_iter iter;
680 681 682

	switch (rw) {
	case READ:
683
		atomic64_inc(&zram->stats.num_reads);
684 685
		break;
	case WRITE:
686
		atomic64_inc(&zram->stats.num_writes);
687 688 689
		break;
	}

690 691 692
	index = bio->bi_iter.bi_sector >> SECTORS_PER_PAGE_SHIFT;
	offset = (bio->bi_iter.bi_sector &
		  (SECTORS_PER_PAGE - 1)) << SECTOR_SHIFT;
693

694
	bio_for_each_segment(bvec, bio, iter) {
695 696
		int max_transfer_size = PAGE_SIZE - offset;

697
		if (bvec.bv_len > max_transfer_size) {
698 699 700 701 702 703
			/*
			 * zram_bvec_rw() can only make operation on a single
			 * zram page. Split the bio vector.
			 */
			struct bio_vec bv;

704
			bv.bv_page = bvec.bv_page;
705
			bv.bv_len = max_transfer_size;
706
			bv.bv_offset = bvec.bv_offset;
707 708 709 710

			if (zram_bvec_rw(zram, &bv, index, offset, bio, rw) < 0)
				goto out;

711
			bv.bv_len = bvec.bv_len - max_transfer_size;
712 713 714 715
			bv.bv_offset += max_transfer_size;
			if (zram_bvec_rw(zram, &bv, index+1, 0, bio, rw) < 0)
				goto out;
		} else
716
			if (zram_bvec_rw(zram, &bvec, index, offset, bio, rw)
717 718 719
			    < 0)
				goto out;

720
		update_position(&index, &offset, &bvec);
721
	}
722 723 724

	set_bit(BIO_UPTODATE, &bio->bi_flags);
	bio_endio(bio, 0);
725
	return;
726 727 728 729 730 731

out:
	bio_io_error(bio);
}

/*
732
 * Handler function for all zram I/O requests.
733
 */
734
static void zram_make_request(struct request_queue *queue, struct bio *bio)
735
{
736
	struct zram *zram = queue->queuedata;
737

738 739
	down_read(&zram->init_lock);
	if (unlikely(!zram->init_done))
740
		goto error;
741

742
	if (!valid_io_request(zram, bio)) {
743
		atomic64_inc(&zram->stats.invalid_io);
744
		goto error;
745 746
	}

747
	__zram_make_request(zram, bio, bio_data_dir(bio));
748
	up_read(&zram->init_lock);
749

750
	return;
751 752

error:
753
	up_read(&zram->init_lock);
754
	bio_io_error(bio);
755 756
}

N
Nitin Gupta 已提交
757 758
static void zram_slot_free_notify(struct block_device *bdev,
				unsigned long index)
759
{
760
	struct zram *zram;
761
	struct zram_meta *meta;
762

763
	zram = bdev->bd_disk->private_data;
764
	meta = zram->meta;
765

766 767 768 769
	write_lock(&meta->tb_lock);
	zram_free_page(zram, index);
	write_unlock(&meta->tb_lock);
	atomic64_inc(&zram->stats.notify_free);
770 771
}

772 773
static const struct block_device_operations zram_devops = {
	.swap_slot_free_notify = zram_slot_free_notify,
774
	.owner = THIS_MODULE
775 776
};

777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808
static DEVICE_ATTR(disksize, S_IRUGO | S_IWUSR,
		disksize_show, disksize_store);
static DEVICE_ATTR(initstate, S_IRUGO, initstate_show, NULL);
static DEVICE_ATTR(reset, S_IWUSR, NULL, reset_store);
static DEVICE_ATTR(num_reads, S_IRUGO, num_reads_show, NULL);
static DEVICE_ATTR(num_writes, S_IRUGO, num_writes_show, NULL);
static DEVICE_ATTR(invalid_io, S_IRUGO, invalid_io_show, NULL);
static DEVICE_ATTR(notify_free, S_IRUGO, notify_free_show, NULL);
static DEVICE_ATTR(zero_pages, S_IRUGO, zero_pages_show, NULL);
static DEVICE_ATTR(orig_data_size, S_IRUGO, orig_data_size_show, NULL);
static DEVICE_ATTR(compr_data_size, S_IRUGO, compr_data_size_show, NULL);
static DEVICE_ATTR(mem_used_total, S_IRUGO, mem_used_total_show, NULL);

static struct attribute *zram_disk_attrs[] = {
	&dev_attr_disksize.attr,
	&dev_attr_initstate.attr,
	&dev_attr_reset.attr,
	&dev_attr_num_reads.attr,
	&dev_attr_num_writes.attr,
	&dev_attr_invalid_io.attr,
	&dev_attr_notify_free.attr,
	&dev_attr_zero_pages.attr,
	&dev_attr_orig_data_size.attr,
	&dev_attr_compr_data_size.attr,
	&dev_attr_mem_used_total.attr,
	NULL,
};

static struct attribute_group zram_disk_attr_group = {
	.attrs = zram_disk_attrs,
};

809
static int create_device(struct zram *zram, int device_id)
810
{
811
	int ret = -ENOMEM;
812

813
	init_rwsem(&zram->init_lock);
814

815 816
	zram->queue = blk_alloc_queue(GFP_KERNEL);
	if (!zram->queue) {
817 818
		pr_err("Error allocating disk queue for device %d\n",
			device_id);
819
		goto out;
820 821
	}

822 823
	blk_queue_make_request(zram->queue, zram_make_request);
	zram->queue->queuedata = zram;
824 825

	 /* gendisk structure */
826 827
	zram->disk = alloc_disk(1);
	if (!zram->disk) {
828
		pr_warn("Error allocating disk structure for device %d\n",
829
			device_id);
830
		goto out_free_queue;
831 832
	}

833 834 835 836 837 838
	zram->disk->major = zram_major;
	zram->disk->first_minor = device_id;
	zram->disk->fops = &zram_devops;
	zram->disk->queue = zram->queue;
	zram->disk->private_data = zram;
	snprintf(zram->disk->disk_name, 16, "zram%d", device_id);
839

840
	/* Actual capacity set using syfs (/sys/block/zram<id>/disksize */
841
	set_capacity(zram->disk, 0);
842

843 844 845 846
	/*
	 * To ensure that we always get PAGE_SIZE aligned
	 * and n*PAGE_SIZED sized I/O requests.
	 */
847
	blk_queue_physical_block_size(zram->disk->queue, PAGE_SIZE);
848 849
	blk_queue_logical_block_size(zram->disk->queue,
					ZRAM_LOGICAL_BLOCK_SIZE);
850 851
	blk_queue_io_min(zram->disk->queue, PAGE_SIZE);
	blk_queue_io_opt(zram->disk->queue, PAGE_SIZE);
852

853
	add_disk(zram->disk);
854

855 856 857
	ret = sysfs_create_group(&disk_to_dev(zram->disk)->kobj,
				&zram_disk_attr_group);
	if (ret < 0) {
858
		pr_warn("Error creating sysfs group");
859
		goto out_free_disk;
860 861
	}

862
	zram->init_done = 0;
863
	return 0;
864

865 866 867 868 869
out_free_disk:
	del_gendisk(zram->disk);
	put_disk(zram->disk);
out_free_queue:
	blk_cleanup_queue(zram->queue);
870 871
out:
	return ret;
872 873
}

874
static void destroy_device(struct zram *zram)
875
{
876 877 878
	sysfs_remove_group(&disk_to_dev(zram->disk)->kobj,
			&zram_disk_attr_group);

879 880
	del_gendisk(zram->disk);
	put_disk(zram->disk);
881

882
	blk_cleanup_queue(zram->queue);
883 884
}

885
static int __init zram_init(void)
886
{
887
	int ret, dev_id;
888

889
	if (num_devices > max_num_devices) {
890
		pr_warn("Invalid value for num_devices: %u\n",
891
				num_devices);
892 893
		ret = -EINVAL;
		goto out;
894 895
	}

896 897
	zram_major = register_blkdev(0, "zram");
	if (zram_major <= 0) {
898
		pr_warn("Unable to get major number\n");
899 900
		ret = -EBUSY;
		goto out;
901 902 903
	}

	/* Allocate the device array and initialize each one */
904
	zram_devices = kzalloc(num_devices * sizeof(struct zram), GFP_KERNEL);
905
	if (!zram_devices) {
906 907 908
		ret = -ENOMEM;
		goto unregister;
	}
909

910
	for (dev_id = 0; dev_id < num_devices; dev_id++) {
911
		ret = create_device(&zram_devices[dev_id], dev_id);
912
		if (ret)
913
			goto free_devices;
914 915
	}

916 917
	pr_info("Created %u device(s) ...\n", num_devices);

918
	return 0;
919

920
free_devices:
921
	while (dev_id)
922 923
		destroy_device(&zram_devices[--dev_id]);
	kfree(zram_devices);
924
unregister:
925
	unregister_blkdev(zram_major, "zram");
926
out:
927 928 929
	return ret;
}

930
static void __exit zram_exit(void)
931 932
{
	int i;
933
	struct zram *zram;
934

935
	for (i = 0; i < num_devices; i++) {
936
		zram = &zram_devices[i];
937

938
		destroy_device(zram);
M
Minchan Kim 已提交
939 940 941 942 943
		/*
		 * Shouldn't access zram->disk after destroy_device
		 * because destroy_device already released zram->disk.
		 */
		zram_reset_device(zram, false);
944 945
	}

946
	unregister_blkdev(zram_major, "zram");
947

948
	kfree(zram_devices);
949 950 951
	pr_debug("Cleanup done!\n");
}

952 953
module_init(zram_init);
module_exit(zram_exit);
954

955 956 957
module_param(num_devices, uint, 0);
MODULE_PARM_DESC(num_devices, "Number of zram devices");

958 959
MODULE_LICENSE("Dual BSD/GPL");
MODULE_AUTHOR("Nitin Gupta <ngupta@vflare.org>");
960
MODULE_DESCRIPTION("Compressed RAM Block Device");