xfs_buf.c 41.0 KB
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/*
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 * Copyright (c) 2000-2005 Silicon Graphics, Inc.
 * All Rights Reserved.
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 *
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 * This program is free software; you can redistribute it and/or
 * modify it under the terms of the GNU General Public License as
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 * published by the Free Software Foundation.
 *
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 * This program is distributed in the hope that it would 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.
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 *
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 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write the Free Software Foundation,
 * Inc.,  51 Franklin St, Fifth Floor, Boston, MA  02110-1301  USA
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 */
#include <linux/stddef.h>
#include <linux/errno.h>
#include <linux/slab.h>
#include <linux/pagemap.h>
#include <linux/init.h>
#include <linux/vmalloc.h>
#include <linux/bio.h>
#include <linux/sysctl.h>
#include <linux/proc_fs.h>
#include <linux/workqueue.h>
#include <linux/percpu.h>
#include <linux/blkdev.h>
#include <linux/hash.h>
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#include <linux/kthread.h>
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#include "xfs_linux.h"

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STATIC kmem_zone_t *xfs_buf_zone;
STATIC kmem_shaker_t xfs_buf_shake;
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STATIC int xfsbufd(void *);
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STATIC int xfsbufd_wakeup(int, gfp_t);
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STATIC void xfs_buf_delwri_queue(xfs_buf_t *, int);
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STATIC struct workqueue_struct *xfslogd_workqueue;
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struct workqueue_struct *xfsdatad_workqueue;
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#ifdef XFS_BUF_TRACE
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void
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xfs_buf_trace(
	xfs_buf_t	*bp,
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	char		*id,
	void		*data,
	void		*ra)
{
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	ktrace_enter(xfs_buf_trace_buf,
		bp, id,
		(void *)(unsigned long)bp->b_flags,
		(void *)(unsigned long)bp->b_hold.counter,
		(void *)(unsigned long)bp->b_sema.count.counter,
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		(void *)current,
		data, ra,
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		(void *)(unsigned long)((bp->b_file_offset>>32) & 0xffffffff),
		(void *)(unsigned long)(bp->b_file_offset & 0xffffffff),
		(void *)(unsigned long)bp->b_buffer_length,
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		NULL, NULL, NULL, NULL, NULL);
}
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ktrace_t *xfs_buf_trace_buf;
#define XFS_BUF_TRACE_SIZE	4096
#define XB_TRACE(bp, id, data)	\
	xfs_buf_trace(bp, id, (void *)data, (void *)__builtin_return_address(0))
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#else
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#define XB_TRACE(bp, id, data)	do { } while (0)
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#endif

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#ifdef XFS_BUF_LOCK_TRACKING
# define XB_SET_OWNER(bp)	((bp)->b_last_holder = current->pid)
# define XB_CLEAR_OWNER(bp)	((bp)->b_last_holder = -1)
# define XB_GET_OWNER(bp)	((bp)->b_last_holder)
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#else
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# define XB_SET_OWNER(bp)	do { } while (0)
# define XB_CLEAR_OWNER(bp)	do { } while (0)
# define XB_GET_OWNER(bp)	do { } while (0)
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#endif

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#define xb_to_gfp(flags) \
	((((flags) & XBF_READ_AHEAD) ? __GFP_NORETRY : \
	  ((flags) & XBF_DONT_BLOCK) ? GFP_NOFS : GFP_KERNEL) | __GFP_NOWARN)
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#define xb_to_km(flags) \
	 (((flags) & XBF_DONT_BLOCK) ? KM_NOFS : KM_SLEEP)
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#define xfs_buf_allocate(flags) \
	kmem_zone_alloc(xfs_buf_zone, xb_to_km(flags))
#define xfs_buf_deallocate(bp) \
	kmem_zone_free(xfs_buf_zone, (bp));
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/*
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 *	Page Region interfaces.
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 *
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 *	For pages in filesystems where the blocksize is smaller than the
 *	pagesize, we use the page->private field (long) to hold a bitmap
 * 	of uptodate regions within the page.
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 *
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 *	Each such region is "bytes per page / bits per long" bytes long.
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 *
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 *	NBPPR == number-of-bytes-per-page-region
 *	BTOPR == bytes-to-page-region (rounded up)
 *	BTOPRT == bytes-to-page-region-truncated (rounded down)
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 */
#if (BITS_PER_LONG == 32)
#define PRSHIFT		(PAGE_CACHE_SHIFT - 5)	/* (32 == 1<<5) */
#elif (BITS_PER_LONG == 64)
#define PRSHIFT		(PAGE_CACHE_SHIFT - 6)	/* (64 == 1<<6) */
#else
#error BITS_PER_LONG must be 32 or 64
#endif
#define NBPPR		(PAGE_CACHE_SIZE/BITS_PER_LONG)
#define BTOPR(b)	(((unsigned int)(b) + (NBPPR - 1)) >> PRSHIFT)
#define BTOPRT(b)	(((unsigned int)(b) >> PRSHIFT))

STATIC unsigned long
page_region_mask(
	size_t		offset,
	size_t		length)
{
	unsigned long	mask;
	int		first, final;

	first = BTOPR(offset);
	final = BTOPRT(offset + length - 1);
	first = min(first, final);

	mask = ~0UL;
	mask <<= BITS_PER_LONG - (final - first);
	mask >>= BITS_PER_LONG - (final);

	ASSERT(offset + length <= PAGE_CACHE_SIZE);
	ASSERT((final - first) < BITS_PER_LONG && (final - first) >= 0);

	return mask;
}

STATIC inline void
set_page_region(
	struct page	*page,
	size_t		offset,
	size_t		length)
{
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	set_page_private(page,
		page_private(page) | page_region_mask(offset, length));
	if (page_private(page) == ~0UL)
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		SetPageUptodate(page);
}

STATIC inline int
test_page_region(
	struct page	*page,
	size_t		offset,
	size_t		length)
{
	unsigned long	mask = page_region_mask(offset, length);

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	return (mask && (page_private(page) & mask) == mask);
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}

/*
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 *	Mapping of multi-page buffers into contiguous virtual space
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 */

typedef struct a_list {
	void		*vm_addr;
	struct a_list	*next;
} a_list_t;

STATIC a_list_t		*as_free_head;
STATIC int		as_list_len;
STATIC DEFINE_SPINLOCK(as_lock);

/*
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 *	Try to batch vunmaps because they are costly.
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 */
STATIC void
free_address(
	void		*addr)
{
	a_list_t	*aentry;

	aentry = kmalloc(sizeof(a_list_t), GFP_ATOMIC & ~__GFP_HIGH);
	if (likely(aentry)) {
		spin_lock(&as_lock);
		aentry->next = as_free_head;
		aentry->vm_addr = addr;
		as_free_head = aentry;
		as_list_len++;
		spin_unlock(&as_lock);
	} else {
		vunmap(addr);
	}
}

STATIC void
purge_addresses(void)
{
	a_list_t	*aentry, *old;

	if (as_free_head == NULL)
		return;

	spin_lock(&as_lock);
	aentry = as_free_head;
	as_free_head = NULL;
	as_list_len = 0;
	spin_unlock(&as_lock);

	while ((old = aentry) != NULL) {
		vunmap(aentry->vm_addr);
		aentry = aentry->next;
		kfree(old);
	}
}

/*
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 *	Internal xfs_buf_t object manipulation
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 */

STATIC void
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_xfs_buf_initialize(
	xfs_buf_t		*bp,
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	xfs_buftarg_t		*target,
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	xfs_off_t		range_base,
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	size_t			range_length,
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	xfs_buf_flags_t		flags)
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{
	/*
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	 * We don't want certain flags to appear in b_flags.
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	 */
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	flags &= ~(XBF_LOCK|XBF_MAPPED|XBF_DONT_BLOCK|XBF_READ_AHEAD);

	memset(bp, 0, sizeof(xfs_buf_t));
	atomic_set(&bp->b_hold, 1);
	init_MUTEX_LOCKED(&bp->b_iodonesema);
	INIT_LIST_HEAD(&bp->b_list);
	INIT_LIST_HEAD(&bp->b_hash_list);
	init_MUTEX_LOCKED(&bp->b_sema); /* held, no waiters */
	XB_SET_OWNER(bp);
	bp->b_target = target;
	bp->b_file_offset = range_base;
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	/*
	 * Set buffer_length and count_desired to the same value initially.
	 * I/O routines should use count_desired, which will be the same in
	 * most cases but may be reset (e.g. XFS recovery).
	 */
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	bp->b_buffer_length = bp->b_count_desired = range_length;
	bp->b_flags = flags;
	bp->b_bn = XFS_BUF_DADDR_NULL;
	atomic_set(&bp->b_pin_count, 0);
	init_waitqueue_head(&bp->b_waiters);

	XFS_STATS_INC(xb_create);
	XB_TRACE(bp, "initialize", target);
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}

/*
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 *	Allocate a page array capable of holding a specified number
 *	of pages, and point the page buf at it.
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 */
STATIC int
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_xfs_buf_get_pages(
	xfs_buf_t		*bp,
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	int			page_count,
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	xfs_buf_flags_t		flags)
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{
	/* Make sure that we have a page list */
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	if (bp->b_pages == NULL) {
		bp->b_offset = xfs_buf_poff(bp->b_file_offset);
		bp->b_page_count = page_count;
		if (page_count <= XB_PAGES) {
			bp->b_pages = bp->b_page_array;
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		} else {
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			bp->b_pages = kmem_alloc(sizeof(struct page *) *
					page_count, xb_to_km(flags));
			if (bp->b_pages == NULL)
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				return -ENOMEM;
		}
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		memset(bp->b_pages, 0, sizeof(struct page *) * page_count);
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	}
	return 0;
}

/*
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 *	Frees b_pages if it was allocated.
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 */
STATIC void
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_xfs_buf_free_pages(
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	xfs_buf_t	*bp)
{
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	if (bp->b_pages != bp->b_page_array) {
		kmem_free(bp->b_pages,
			  bp->b_page_count * sizeof(struct page *));
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	}
}

/*
 *	Releases the specified buffer.
 *
 * 	The modification state of any associated pages is left unchanged.
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 * 	The buffer most not be on any hash - use xfs_buf_rele instead for
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 * 	hashed and refcounted buffers
 */
void
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xfs_buf_free(
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	xfs_buf_t		*bp)
{
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	XB_TRACE(bp, "free", 0);
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	ASSERT(list_empty(&bp->b_hash_list));
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	if (bp->b_flags & _XBF_PAGE_CACHE) {
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		uint		i;

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		if ((bp->b_flags & XBF_MAPPED) && (bp->b_page_count > 1))
			free_address(bp->b_addr - bp->b_offset);
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		for (i = 0; i < bp->b_page_count; i++)
			page_cache_release(bp->b_pages[i]);
		_xfs_buf_free_pages(bp);
	} else if (bp->b_flags & _XBF_KMEM_ALLOC) {
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		 /*
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		  * XXX(hch): bp->b_count_desired might be incorrect (see
		  * xfs_buf_associate_memory for details), but fortunately
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		  * the Linux version of kmem_free ignores the len argument..
		  */
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		kmem_free(bp->b_addr, bp->b_count_desired);
		_xfs_buf_free_pages(bp);
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	}

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	xfs_buf_deallocate(bp);
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}

/*
 *	Finds all pages for buffer in question and builds it's page list.
 */
STATIC int
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_xfs_buf_lookup_pages(
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	xfs_buf_t		*bp,
	uint			flags)
{
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	struct address_space	*mapping = bp->b_target->bt_mapping;
	size_t			blocksize = bp->b_target->bt_bsize;
	size_t			size = bp->b_count_desired;
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	size_t			nbytes, offset;
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	gfp_t			gfp_mask = xb_to_gfp(flags);
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	unsigned short		page_count, i;
	pgoff_t			first;
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	xfs_off_t		end;
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	int			error;

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	end = bp->b_file_offset + bp->b_buffer_length;
	page_count = xfs_buf_btoc(end) - xfs_buf_btoct(bp->b_file_offset);
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	error = _xfs_buf_get_pages(bp, page_count, flags);
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	if (unlikely(error))
		return error;
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	bp->b_flags |= _XBF_PAGE_CACHE;
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	offset = bp->b_offset;
	first = bp->b_file_offset >> PAGE_CACHE_SHIFT;
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	for (i = 0; i < bp->b_page_count; i++) {
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		struct page	*page;
		uint		retries = 0;

	      retry:
		page = find_or_create_page(mapping, first + i, gfp_mask);
		if (unlikely(page == NULL)) {
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			if (flags & XBF_READ_AHEAD) {
				bp->b_page_count = i;
				for (i = 0; i < bp->b_page_count; i++)
					unlock_page(bp->b_pages[i]);
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				return -ENOMEM;
			}

			/*
			 * This could deadlock.
			 *
			 * But until all the XFS lowlevel code is revamped to
			 * handle buffer allocation failures we can't do much.
			 */
			if (!(++retries % 100))
				printk(KERN_ERR
					"XFS: possible memory allocation "
					"deadlock in %s (mode:0x%x)\n",
					__FUNCTION__, gfp_mask);

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			XFS_STATS_INC(xb_page_retries);
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			xfsbufd_wakeup(0, gfp_mask);
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			blk_congestion_wait(WRITE, HZ/50);
			goto retry;
		}

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		XFS_STATS_INC(xb_page_found);
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		nbytes = min_t(size_t, size, PAGE_CACHE_SIZE - offset);
		size -= nbytes;

		if (!PageUptodate(page)) {
			page_count--;
			if (blocksize >= PAGE_CACHE_SIZE) {
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				if (flags & XBF_READ)
					bp->b_locked = 1;
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			} else if (!PagePrivate(page)) {
				if (test_page_region(page, offset, nbytes))
					page_count++;
			}
		}

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		bp->b_pages[i] = page;
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		offset = 0;
	}

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	if (!bp->b_locked) {
		for (i = 0; i < bp->b_page_count; i++)
			unlock_page(bp->b_pages[i]);
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	}

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	if (page_count == bp->b_page_count)
		bp->b_flags |= XBF_DONE;
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	XB_TRACE(bp, "lookup_pages", (long)page_count);
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	return error;
}

/*
 *	Map buffer into kernel address-space if nessecary.
 */
STATIC int
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_xfs_buf_map_pages(
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	xfs_buf_t		*bp,
	uint			flags)
{
	/* A single page buffer is always mappable */
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	if (bp->b_page_count == 1) {
		bp->b_addr = page_address(bp->b_pages[0]) + bp->b_offset;
		bp->b_flags |= XBF_MAPPED;
	} else if (flags & XBF_MAPPED) {
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		if (as_list_len > 64)
			purge_addresses();
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		bp->b_addr = vmap(bp->b_pages, bp->b_page_count,
					VM_MAP, PAGE_KERNEL);
		if (unlikely(bp->b_addr == NULL))
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			return -ENOMEM;
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		bp->b_addr += bp->b_offset;
		bp->b_flags |= XBF_MAPPED;
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	}

	return 0;
}

/*
 *	Finding and Reading Buffers
 */

/*
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 *	Look up, and creates if absent, a lockable buffer for
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 *	a given range of an inode.  The buffer is returned
 *	locked.	 If other overlapping buffers exist, they are
 *	released before the new buffer is created and locked,
 *	which may imply that this call will block until those buffers
 *	are unlocked.  No I/O is implied by this call.
 */
xfs_buf_t *
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_xfs_buf_find(
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	xfs_buftarg_t		*btp,	/* block device target		*/
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	xfs_off_t		ioff,	/* starting offset of range	*/
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	size_t			isize,	/* length of range		*/
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	xfs_buf_flags_t		flags,
	xfs_buf_t		*new_bp)
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{
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	xfs_off_t		range_base;
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	size_t			range_length;
	xfs_bufhash_t		*hash;
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	xfs_buf_t		*bp, *n;
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	range_base = (ioff << BBSHIFT);
	range_length = (isize << BBSHIFT);

	/* Check for IOs smaller than the sector size / not sector aligned */
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	ASSERT(!(range_length < (1 << btp->bt_sshift)));
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	ASSERT(!(range_base & (xfs_off_t)btp->bt_smask));
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	hash = &btp->bt_hash[hash_long((unsigned long)ioff, btp->bt_hashshift)];

	spin_lock(&hash->bh_lock);

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	list_for_each_entry_safe(bp, n, &hash->bh_list, b_hash_list) {
		ASSERT(btp == bp->b_target);
		if (bp->b_file_offset == range_base &&
		    bp->b_buffer_length == range_length) {
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			/*
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			 * If we look at something, bring it to the
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			 * front of the list for next time.
			 */
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			atomic_inc(&bp->b_hold);
			list_move(&bp->b_hash_list, &hash->bh_list);
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			goto found;
		}
	}

	/* No match found */
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	if (new_bp) {
		_xfs_buf_initialize(new_bp, btp, range_base,
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				range_length, flags);
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		new_bp->b_hash = hash;
		list_add(&new_bp->b_hash_list, &hash->bh_list);
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	} else {
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		XFS_STATS_INC(xb_miss_locked);
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	}

	spin_unlock(&hash->bh_lock);
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	return new_bp;
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found:
	spin_unlock(&hash->bh_lock);

	/* Attempt to get the semaphore without sleeping,
	 * if this does not work then we need to drop the
	 * spinlock and do a hard attempt on the semaphore.
	 */
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	if (down_trylock(&bp->b_sema)) {
		if (!(flags & XBF_TRYLOCK)) {
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			/* wait for buffer ownership */
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			XB_TRACE(bp, "get_lock", 0);
			xfs_buf_lock(bp);
			XFS_STATS_INC(xb_get_locked_waited);
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		} else {
			/* We asked for a trylock and failed, no need
			 * to look at file offset and length here, we
534 535 536
			 * know that this buffer at least overlaps our
			 * buffer and is locked, therefore our buffer
			 * either does not exist, or is this buffer.
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			 */
538 539 540
			xfs_buf_rele(bp);
			XFS_STATS_INC(xb_busy_locked);
			return NULL;
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541 542 543
		}
	} else {
		/* trylock worked */
544
		XB_SET_OWNER(bp);
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	}

547 548 549
	if (bp->b_flags & XBF_STALE) {
		ASSERT((bp->b_flags & _XBF_DELWRI_Q) == 0);
		bp->b_flags &= XBF_MAPPED;
550
	}
551 552 553
	XB_TRACE(bp, "got_lock", 0);
	XFS_STATS_INC(xb_get_locked);
	return bp;
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}

/*
557
 *	Assembles a buffer covering the specified range.
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 *	Storage in memory for all portions of the buffer will be allocated,
 *	although backing storage may not be.
 */
xfs_buf_t *
562
xfs_buf_get_flags(
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	xfs_buftarg_t		*target,/* target for buffer		*/
564
	xfs_off_t		ioff,	/* starting offset of range	*/
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	size_t			isize,	/* length of range		*/
566
	xfs_buf_flags_t		flags)
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567
{
568
	xfs_buf_t		*bp, *new_bp;
L
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	int			error = 0, i;

571 572
	new_bp = xfs_buf_allocate(flags);
	if (unlikely(!new_bp))
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		return NULL;

575 576 577
	bp = _xfs_buf_find(target, ioff, isize, flags, new_bp);
	if (bp == new_bp) {
		error = _xfs_buf_lookup_pages(bp, flags);
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		if (error)
			goto no_buffer;
	} else {
581 582
		xfs_buf_deallocate(new_bp);
		if (unlikely(bp == NULL))
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			return NULL;
	}

586 587
	for (i = 0; i < bp->b_page_count; i++)
		mark_page_accessed(bp->b_pages[i]);
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588

589 590
	if (!(bp->b_flags & XBF_MAPPED)) {
		error = _xfs_buf_map_pages(bp, flags);
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		if (unlikely(error)) {
			printk(KERN_WARNING "%s: failed to map pages\n",
					__FUNCTION__);
			goto no_buffer;
		}
	}

598
	XFS_STATS_INC(xb_get);
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	/*
	 * Always fill in the block number now, the mapped cases can do
	 * their own overlay of this later.
	 */
604 605
	bp->b_bn = ioff;
	bp->b_count_desired = bp->b_buffer_length;
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606

607 608
	XB_TRACE(bp, "get", (unsigned long)flags);
	return bp;
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 no_buffer:
611 612 613
	if (flags & (XBF_LOCK | XBF_TRYLOCK))
		xfs_buf_unlock(bp);
	xfs_buf_rele(bp);
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	return NULL;
}

xfs_buf_t *
xfs_buf_read_flags(
	xfs_buftarg_t		*target,
620
	xfs_off_t		ioff,
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	size_t			isize,
622
	xfs_buf_flags_t		flags)
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{
624 625 626 627 628 629 630 631 632 633 634 635
	xfs_buf_t		*bp;

	flags |= XBF_READ;

	bp = xfs_buf_get_flags(target, ioff, isize, flags);
	if (bp) {
		if (!XFS_BUF_ISDONE(bp)) {
			XB_TRACE(bp, "read", (unsigned long)flags);
			XFS_STATS_INC(xb_get_read);
			xfs_buf_iostart(bp, flags);
		} else if (flags & XBF_ASYNC) {
			XB_TRACE(bp, "read_async", (unsigned long)flags);
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			/*
			 * Read ahead call which is already satisfied,
			 * drop the buffer
			 */
			goto no_buffer;
		} else {
642
			XB_TRACE(bp, "read_done", (unsigned long)flags);
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643
			/* We do not want read in the flags */
644
			bp->b_flags &= ~XBF_READ;
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645 646 647
		}
	}

648
	return bp;
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 no_buffer:
651 652 653
	if (flags & (XBF_LOCK | XBF_TRYLOCK))
		xfs_buf_unlock(bp);
	xfs_buf_rele(bp);
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	return NULL;
}

/*
658 659
 *	If we are not low on memory then do the readahead in a deadlock
 *	safe manner.
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 */
void
662
xfs_buf_readahead(
L
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663
	xfs_buftarg_t		*target,
664
	xfs_off_t		ioff,
L
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665
	size_t			isize,
666
	xfs_buf_flags_t		flags)
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{
	struct backing_dev_info *bdi;

670
	bdi = target->bt_mapping->backing_dev_info;
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	if (bdi_read_congested(bdi))
		return;

674
	flags |= (XBF_TRYLOCK|XBF_ASYNC|XBF_READ_AHEAD);
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	xfs_buf_read_flags(target, ioff, isize, flags);
}

xfs_buf_t *
679
xfs_buf_get_empty(
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	size_t			len,
	xfs_buftarg_t		*target)
{
683
	xfs_buf_t		*bp;
L
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685 686 687 688
	bp = xfs_buf_allocate(0);
	if (bp)
		_xfs_buf_initialize(bp, target, 0, len, 0);
	return bp;
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}

static inline struct page *
mem_to_page(
	void			*addr)
{
	if (((unsigned long)addr < VMALLOC_START) ||
	    ((unsigned long)addr >= VMALLOC_END)) {
		return virt_to_page(addr);
	} else {
		return vmalloc_to_page(addr);
	}
}

int
704 705
xfs_buf_associate_memory(
	xfs_buf_t		*bp,
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	void			*mem,
	size_t			len)
{
	int			rval;
	int			i = 0;
	size_t			ptr;
	size_t			end, end_cur;
	off_t			offset;
	int			page_count;

	page_count = PAGE_CACHE_ALIGN(len) >> PAGE_CACHE_SHIFT;
	offset = (off_t) mem - ((off_t)mem & PAGE_CACHE_MASK);
	if (offset && (len > PAGE_CACHE_SIZE))
		page_count++;

	/* Free any previous set of page pointers */
722 723
	if (bp->b_pages)
		_xfs_buf_free_pages(bp);
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725 726
	bp->b_pages = NULL;
	bp->b_addr = mem;
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727

728
	rval = _xfs_buf_get_pages(bp, page_count, 0);
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	if (rval)
		return rval;

732
	bp->b_offset = offset;
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	ptr = (size_t) mem & PAGE_CACHE_MASK;
	end = PAGE_CACHE_ALIGN((size_t) mem + len);
	end_cur = end;
	/* set up first page */
737
	bp->b_pages[0] = mem_to_page(mem);
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738 739

	ptr += PAGE_CACHE_SIZE;
740
	bp->b_page_count = ++i;
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	while (ptr < end) {
742 743
		bp->b_pages[i] = mem_to_page((void *)ptr);
		bp->b_page_count = ++i;
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		ptr += PAGE_CACHE_SIZE;
	}
746
	bp->b_locked = 0;
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748 749
	bp->b_count_desired = bp->b_buffer_length = len;
	bp->b_flags |= XBF_MAPPED;
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	return 0;
}

xfs_buf_t *
755
xfs_buf_get_noaddr(
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	size_t			len,
	xfs_buftarg_t		*target)
{
	size_t			malloc_len = len;
	xfs_buf_t		*bp;
	void			*data;
	int			error;

764
	bp = xfs_buf_allocate(0);
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	if (unlikely(bp == NULL))
		goto fail;
767
	_xfs_buf_initialize(bp, target, 0, len, 0);
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 try_again:
	data = kmem_alloc(malloc_len, KM_SLEEP | KM_MAYFAIL);
	if (unlikely(data == NULL))
		goto fail_free_buf;

	/* check whether alignment matches.. */
	if ((__psunsigned_t)data !=
776
	    ((__psunsigned_t)data & ~target->bt_smask)) {
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		/* .. else double the size and try again */
		kmem_free(data, malloc_len);
		malloc_len <<= 1;
		goto try_again;
	}

783
	error = xfs_buf_associate_memory(bp, data, len);
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	if (error)
		goto fail_free_mem;
786
	bp->b_flags |= _XBF_KMEM_ALLOC;
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787

788
	xfs_buf_unlock(bp);
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789

790
	XB_TRACE(bp, "no_daddr", data);
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	return bp;
 fail_free_mem:
	kmem_free(data, malloc_len);
 fail_free_buf:
795
	xfs_buf_free(bp);
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 fail:
	return NULL;
}

/*
 *	Increment reference count on buffer, to hold the buffer concurrently
 *	with another thread which may release (free) the buffer asynchronously.
 *	Must hold the buffer already to call this function.
 */
void
806 807
xfs_buf_hold(
	xfs_buf_t		*bp)
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{
809 810
	atomic_inc(&bp->b_hold);
	XB_TRACE(bp, "hold", 0);
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}

/*
814 815
 *	Releases a hold on the specified buffer.  If the
 *	the hold count is 1, calls xfs_buf_free.
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 */
void
818 819
xfs_buf_rele(
	xfs_buf_t		*bp)
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820
{
821
	xfs_bufhash_t		*hash = bp->b_hash;
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822

823
	XB_TRACE(bp, "rele", bp->b_relse);
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825 826 827
	if (atomic_dec_and_lock(&bp->b_hold, &hash->bh_lock)) {
		if (bp->b_relse) {
			atomic_inc(&bp->b_hold);
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			spin_unlock(&hash->bh_lock);
829 830
			(*(bp->b_relse)) (bp);
		} else if (bp->b_flags & XBF_FS_MANAGED) {
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			spin_unlock(&hash->bh_lock);
		} else {
833 834
			ASSERT(!(bp->b_flags & (XBF_DELWRI|_XBF_DELWRI_Q)));
			list_del_init(&bp->b_hash_list);
L
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835
			spin_unlock(&hash->bh_lock);
836
			xfs_buf_free(bp);
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		}
838 839 840 841
	} else {
		/*
		 * Catch reference count leaks
		 */
842
		ASSERT(atomic_read(&bp->b_hold) >= 0);
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	}
}


/*
 *	Mutual exclusion on buffers.  Locking model:
 *
 *	Buffers associated with inodes for which buffer locking
 *	is not enabled are not protected by semaphores, and are
 *	assumed to be exclusively owned by the caller.  There is a
 *	spinlock in the buffer, used by the caller when concurrent
 *	access is possible.
 */

/*
858 859 860 861
 *	Locks a buffer object, if it is not already locked.
 *	Note that this in no way locks the underlying pages, so it is only
 *	useful for synchronizing concurrent use of buffer objects, not for
 *	synchronizing independent access to the underlying pages.
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 */
int
864 865
xfs_buf_cond_lock(
	xfs_buf_t		*bp)
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866 867 868
{
	int			locked;

869
	locked = down_trylock(&bp->b_sema) == 0;
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870
	if (locked) {
871
		XB_SET_OWNER(bp);
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872
	}
873 874
	XB_TRACE(bp, "cond_lock", (long)locked);
	return locked ? 0 : -EBUSY;
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}

#if defined(DEBUG) || defined(XFS_BLI_TRACE)
int
879 880
xfs_buf_lock_value(
	xfs_buf_t		*bp)
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{
882
	return atomic_read(&bp->b_sema.count);
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}
#endif

/*
887 888 889 890
 *	Locks a buffer object.
 *	Note that this in no way locks the underlying pages, so it is only
 *	useful for synchronizing concurrent use of buffer objects, not for
 *	synchronizing independent access to the underlying pages.
L
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 */
892 893 894
void
xfs_buf_lock(
	xfs_buf_t		*bp)
L
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{
896 897 898 899 900 901
	XB_TRACE(bp, "lock", 0);
	if (atomic_read(&bp->b_io_remaining))
		blk_run_address_space(bp->b_target->bt_mapping);
	down(&bp->b_sema);
	XB_SET_OWNER(bp);
	XB_TRACE(bp, "locked", 0);
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}

/*
905
 *	Releases the lock on the buffer object.
906
 *	If the buffer is marked delwri but is not queued, do so before we
907
 *	unlock the buffer as we need to set flags correctly.  We also need to
908 909
 *	take a reference for the delwri queue because the unlocker is going to
 *	drop their's and they don't know we just queued it.
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910 911
 */
void
912 913
xfs_buf_unlock(
	xfs_buf_t		*bp)
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914
{
915 916 917 918
	if ((bp->b_flags & (XBF_DELWRI|_XBF_DELWRI_Q)) == XBF_DELWRI) {
		atomic_inc(&bp->b_hold);
		bp->b_flags |= XBF_ASYNC;
		xfs_buf_delwri_queue(bp, 0);
919 920
	}

921 922 923
	XB_CLEAR_OWNER(bp);
	up(&bp->b_sema);
	XB_TRACE(bp, "unlock", 0);
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}


/*
 *	Pinning Buffer Storage in Memory
929
 *	Ensure that no attempt to force a buffer to disk will succeed.
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 */
void
932 933
xfs_buf_pin(
	xfs_buf_t		*bp)
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934
{
935 936
	atomic_inc(&bp->b_pin_count);
	XB_TRACE(bp, "pin", (long)bp->b_pin_count.counter);
L
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}

void
940 941
xfs_buf_unpin(
	xfs_buf_t		*bp)
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942
{
943 944 945
	if (atomic_dec_and_test(&bp->b_pin_count))
		wake_up_all(&bp->b_waiters);
	XB_TRACE(bp, "unpin", (long)bp->b_pin_count.counter);
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}

int
949 950
xfs_buf_ispin(
	xfs_buf_t		*bp)
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951
{
952
	return atomic_read(&bp->b_pin_count);
L
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953 954
}

955 956 957
STATIC void
xfs_buf_wait_unpin(
	xfs_buf_t		*bp)
L
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958 959 960
{
	DECLARE_WAITQUEUE	(wait, current);

961
	if (atomic_read(&bp->b_pin_count) == 0)
L
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962 963
		return;

964
	add_wait_queue(&bp->b_waiters, &wait);
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965 966
	for (;;) {
		set_current_state(TASK_UNINTERRUPTIBLE);
967
		if (atomic_read(&bp->b_pin_count) == 0)
L
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968
			break;
969 970
		if (atomic_read(&bp->b_io_remaining))
			blk_run_address_space(bp->b_target->bt_mapping);
L
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971 972
		schedule();
	}
973
	remove_wait_queue(&bp->b_waiters, &wait);
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	set_current_state(TASK_RUNNING);
}

/*
 *	Buffer Utility Routines
 */

STATIC void
982
xfs_buf_iodone_work(
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983 984 985 986
	void			*v)
{
	xfs_buf_t		*bp = (xfs_buf_t *)v;

987 988 989
	if (bp->b_iodone)
		(*(bp->b_iodone))(bp);
	else if (bp->b_flags & XBF_ASYNC)
L
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		xfs_buf_relse(bp);
}

void
994 995
xfs_buf_ioend(
	xfs_buf_t		*bp,
L
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996 997
	int			schedule)
{
998 999 1000
	bp->b_flags &= ~(XBF_READ | XBF_WRITE);
	if (bp->b_error == 0)
		bp->b_flags |= XBF_DONE;
L
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1001

1002
	XB_TRACE(bp, "iodone", bp->b_iodone);
L
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1003

1004
	if ((bp->b_iodone) || (bp->b_flags & XBF_ASYNC)) {
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1005
		if (schedule) {
1006 1007
			INIT_WORK(&bp->b_iodone_work, xfs_buf_iodone_work, bp);
			queue_work(xfslogd_workqueue, &bp->b_iodone_work);
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1008
		} else {
1009
			xfs_buf_iodone_work(bp);
L
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1010 1011
		}
	} else {
1012
		up(&bp->b_iodonesema);
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1013 1014 1015 1016
	}
}

void
1017 1018 1019
xfs_buf_ioerror(
	xfs_buf_t		*bp,
	int			error)
L
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1020 1021
{
	ASSERT(error >= 0 && error <= 0xffff);
1022 1023
	bp->b_error = (unsigned short)error;
	XB_TRACE(bp, "ioerror", (unsigned long)error);
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}

/*
1027 1028
 *	Initiate I/O on a buffer, based on the flags supplied.
 *	The b_iodone routine in the buffer supplied will only be called
L
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 *	when all of the subsidiary I/O requests, if any, have been completed.
 */
int
1032 1033 1034
xfs_buf_iostart(
	xfs_buf_t		*bp,
	xfs_buf_flags_t		flags)
L
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{
	int			status = 0;

1038
	XB_TRACE(bp, "iostart", (unsigned long)flags);
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1040 1041 1042 1043
	if (flags & XBF_DELWRI) {
		bp->b_flags &= ~(XBF_READ | XBF_WRITE | XBF_ASYNC);
		bp->b_flags |= flags & (XBF_DELWRI | XBF_ASYNC);
		xfs_buf_delwri_queue(bp, 1);
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		return status;
	}

1047 1048 1049 1050
	bp->b_flags &= ~(XBF_READ | XBF_WRITE | XBF_ASYNC | XBF_DELWRI | \
			XBF_READ_AHEAD | _XBF_RUN_QUEUES);
	bp->b_flags |= flags & (XBF_READ | XBF_WRITE | XBF_ASYNC | \
			XBF_READ_AHEAD | _XBF_RUN_QUEUES);
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1051

1052
	BUG_ON(bp->b_bn == XFS_BUF_DADDR_NULL);
L
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1053 1054 1055 1056 1057

	/* For writes allow an alternate strategy routine to precede
	 * the actual I/O request (which may not be issued at all in
	 * a shutdown situation, for example).
	 */
1058 1059
	status = (flags & XBF_WRITE) ?
		xfs_buf_iostrategy(bp) : xfs_buf_iorequest(bp);
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	/* Wait for I/O if we are not an async request.
	 * Note: async I/O request completion will release the buffer,
	 * and that can already be done by this point.  So using the
	 * buffer pointer from here on, after async I/O, is invalid.
	 */
1066 1067
	if (!status && !(flags & XBF_ASYNC))
		status = xfs_buf_iowait(bp);
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	return status;
}

STATIC __inline__ int
1073 1074
_xfs_buf_iolocked(
	xfs_buf_t		*bp)
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{
1076 1077 1078
	ASSERT(bp->b_flags & (XBF_READ | XBF_WRITE));
	if (bp->b_flags & XBF_READ)
		return bp->b_locked;
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	return 0;
}

STATIC __inline__ void
1083 1084
_xfs_buf_ioend(
	xfs_buf_t		*bp,
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	int			schedule)
{
1087 1088 1089
	if (atomic_dec_and_test(&bp->b_io_remaining) == 1) {
		bp->b_locked = 0;
		xfs_buf_ioend(bp, schedule);
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	}
}

STATIC int
1094
xfs_buf_bio_end_io(
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	struct bio		*bio,
	unsigned int		bytes_done,
	int			error)
{
1099 1100
	xfs_buf_t		*bp = (xfs_buf_t *)bio->bi_private;
	unsigned int		blocksize = bp->b_target->bt_bsize;
1101
	struct bio_vec		*bvec = bio->bi_io_vec + bio->bi_vcnt - 1;
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	if (bio->bi_size)
		return 1;

	if (!test_bit(BIO_UPTODATE, &bio->bi_flags))
1107
		bp->b_error = EIO;
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1109
	do {
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		struct page	*page = bvec->bv_page;

1112 1113
		if (unlikely(bp->b_error)) {
			if (bp->b_flags & XBF_READ)
1114
				ClearPageUptodate(page);
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			SetPageError(page);
1116
		} else if (blocksize >= PAGE_CACHE_SIZE) {
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			SetPageUptodate(page);
		} else if (!PagePrivate(page) &&
1119
				(bp->b_flags & _XBF_PAGE_CACHE)) {
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			set_page_region(page, bvec->bv_offset, bvec->bv_len);
		}

1123 1124 1125
		if (--bvec >= bio->bi_io_vec)
			prefetchw(&bvec->bv_page->flags);

1126
		if (_xfs_buf_iolocked(bp)) {
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			unlock_page(page);
		}
1129
	} while (bvec >= bio->bi_io_vec);
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1131
	_xfs_buf_ioend(bp, 1);
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	bio_put(bio);
	return 0;
}

STATIC void
1137 1138
_xfs_buf_ioapply(
	xfs_buf_t		*bp)
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{
	int			i, rw, map_i, total_nr_pages, nr_pages;
	struct bio		*bio;
1142 1143 1144 1145 1146
	int			offset = bp->b_offset;
	int			size = bp->b_count_desired;
	sector_t		sector = bp->b_bn;
	unsigned int		blocksize = bp->b_target->bt_bsize;
	int			locking = _xfs_buf_iolocked(bp);
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	total_nr_pages = bp->b_page_count;
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	map_i = 0;

1151 1152 1153
	if (bp->b_flags & _XBF_RUN_QUEUES) {
		bp->b_flags &= ~_XBF_RUN_QUEUES;
		rw = (bp->b_flags & XBF_READ) ? READ_SYNC : WRITE_SYNC;
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	} else {
1155
		rw = (bp->b_flags & XBF_READ) ? READ : WRITE;
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	}

1158 1159
	if (bp->b_flags & XBF_ORDERED) {
		ASSERT(!(bp->b_flags & XBF_READ));
1160 1161 1162
		rw = WRITE_BARRIER;
	}

1163
	/* Special code path for reading a sub page size buffer in --
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	 * we populate up the whole page, and hence the other metadata
	 * in the same page.  This optimization is only valid when the
1166
	 * filesystem block size is not smaller than the page size.
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	 */
1168 1169 1170
	if ((bp->b_buffer_length < PAGE_CACHE_SIZE) &&
	    (bp->b_flags & XBF_READ) && locking &&
	    (blocksize >= PAGE_CACHE_SIZE)) {
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		bio = bio_alloc(GFP_NOIO, 1);

1173
		bio->bi_bdev = bp->b_target->bt_bdev;
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		bio->bi_sector = sector - (offset >> BBSHIFT);
1175 1176
		bio->bi_end_io = xfs_buf_bio_end_io;
		bio->bi_private = bp;
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1178
		bio_add_page(bio, bp->b_pages[0], PAGE_CACHE_SIZE, 0);
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		size = 0;

1181
		atomic_inc(&bp->b_io_remaining);
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		goto submit_io;
	}

	/* Lock down the pages which we need to for the request */
1187
	if (locking && (bp->b_flags & XBF_WRITE) && (bp->b_locked == 0)) {
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		for (i = 0; size; i++) {
			int		nbytes = PAGE_CACHE_SIZE - offset;
1190
			struct page	*page = bp->b_pages[i];
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			if (nbytes > size)
				nbytes = size;

			lock_page(page);

			size -= nbytes;
			offset = 0;
		}
1200 1201
		offset = bp->b_offset;
		size = bp->b_count_desired;
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	}

next_chunk:
1205
	atomic_inc(&bp->b_io_remaining);
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	nr_pages = BIO_MAX_SECTORS >> (PAGE_SHIFT - BBSHIFT);
	if (nr_pages > total_nr_pages)
		nr_pages = total_nr_pages;

	bio = bio_alloc(GFP_NOIO, nr_pages);
1211
	bio->bi_bdev = bp->b_target->bt_bdev;
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	bio->bi_sector = sector;
1213 1214
	bio->bi_end_io = xfs_buf_bio_end_io;
	bio->bi_private = bp;
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	for (; size && nr_pages; nr_pages--, map_i++) {
1217
		int	rbytes, nbytes = PAGE_CACHE_SIZE - offset;
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		if (nbytes > size)
			nbytes = size;

1222 1223
		rbytes = bio_add_page(bio, bp->b_pages[map_i], nbytes, offset);
		if (rbytes < nbytes)
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			break;

		offset = 0;
		sector += nbytes >> BBSHIFT;
		size -= nbytes;
		total_nr_pages--;
	}

submit_io:
	if (likely(bio->bi_size)) {
		submit_bio(rw, bio);
		if (size)
			goto next_chunk;
	} else {
		bio_put(bio);
1239
		xfs_buf_ioerror(bp, EIO);
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	}
}

int
1244 1245
xfs_buf_iorequest(
	xfs_buf_t		*bp)
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{
1247
	XB_TRACE(bp, "iorequest", 0);
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1249 1250
	if (bp->b_flags & XBF_DELWRI) {
		xfs_buf_delwri_queue(bp, 1);
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		return 0;
	}

1254 1255
	if (bp->b_flags & XBF_WRITE) {
		xfs_buf_wait_unpin(bp);
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	}

1258
	xfs_buf_hold(bp);
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	/* Set the count to 1 initially, this will stop an I/O
	 * completion callout which happens before we have started
1262
	 * all the I/O from calling xfs_buf_ioend too early.
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	 */
1264 1265 1266
	atomic_set(&bp->b_io_remaining, 1);
	_xfs_buf_ioapply(bp);
	_xfs_buf_ioend(bp, 0);
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1268
	xfs_buf_rele(bp);
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	return 0;
}

/*
1273 1274 1275
 *	Waits for I/O to complete on the buffer supplied.
 *	It returns immediately if no I/O is pending.
 *	It returns the I/O error code, if any, or 0 if there was no error.
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 */
int
1278 1279
xfs_buf_iowait(
	xfs_buf_t		*bp)
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{
1281 1282 1283 1284 1285 1286
	XB_TRACE(bp, "iowait", 0);
	if (atomic_read(&bp->b_io_remaining))
		blk_run_address_space(bp->b_target->bt_mapping);
	down(&bp->b_iodonesema);
	XB_TRACE(bp, "iowaited", (long)bp->b_error);
	return bp->b_error;
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}

1289 1290 1291
xfs_caddr_t
xfs_buf_offset(
	xfs_buf_t		*bp,
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	size_t			offset)
{
	struct page		*page;

1296 1297
	if (bp->b_flags & XBF_MAPPED)
		return XFS_BUF_PTR(bp) + offset;
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1299 1300 1301
	offset += bp->b_offset;
	page = bp->b_pages[offset >> PAGE_CACHE_SHIFT];
	return (xfs_caddr_t)page_address(page) + (offset & (PAGE_CACHE_SIZE-1));
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}

/*
 *	Move data into or out of a buffer.
 */
void
1308 1309
xfs_buf_iomove(
	xfs_buf_t		*bp,	/* buffer to process		*/
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	size_t			boff,	/* starting buffer offset	*/
	size_t			bsize,	/* length to copy		*/
	caddr_t			data,	/* data address			*/
1313
	xfs_buf_rw_t		mode)	/* read/write/zero flag		*/
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{
	size_t			bend, cpoff, csize;
	struct page		*page;

	bend = boff + bsize;
	while (boff < bend) {
1320 1321
		page = bp->b_pages[xfs_buf_btoct(boff + bp->b_offset)];
		cpoff = xfs_buf_poff(boff + bp->b_offset);
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		csize = min_t(size_t,
1323
			      PAGE_CACHE_SIZE-cpoff, bp->b_count_desired-boff);
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		ASSERT(((csize + cpoff) <= PAGE_CACHE_SIZE));

		switch (mode) {
1328
		case XBRW_ZERO:
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			memset(page_address(page) + cpoff, 0, csize);
			break;
1331
		case XBRW_READ:
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			memcpy(data, page_address(page) + cpoff, csize);
			break;
1334
		case XBRW_WRITE:
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			memcpy(page_address(page) + cpoff, data, csize);
		}

		boff += csize;
		data += csize;
	}
}

/*
1344
 *	Handling of buffer targets (buftargs).
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 */

/*
1348 1349
 *	Wait for any bufs with callbacks that have been submitted but
 *	have not yet returned... walk the hash list for the target.
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 */
void
xfs_wait_buftarg(
	xfs_buftarg_t	*btp)
{
	xfs_buf_t	*bp, *n;
	xfs_bufhash_t	*hash;
	uint		i;

	for (i = 0; i < (1 << btp->bt_hashshift); i++) {
		hash = &btp->bt_hash[i];
again:
		spin_lock(&hash->bh_lock);
1363 1364 1365
		list_for_each_entry_safe(bp, n, &hash->bh_list, b_hash_list) {
			ASSERT(btp == bp->b_target);
			if (!(bp->b_flags & XBF_FS_MANAGED)) {
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				spin_unlock(&hash->bh_lock);
1367 1368 1369 1370
				/*
				 * Catch superblock reference count leaks
				 * immediately
				 */
1371
				BUG_ON(bp->b_bn == 0);
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				delay(100);
				goto again;
			}
		}
		spin_unlock(&hash->bh_lock);
	}
}

/*
1381 1382 1383
 *	Allocate buffer hash table for a given target.
 *	For devices containing metadata (i.e. not the log/realtime devices)
 *	we need to allocate a much larger hash table.
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 */
STATIC void
xfs_alloc_bufhash(
	xfs_buftarg_t		*btp,
	int			external)
{
	unsigned int		i;

	btp->bt_hashshift = external ? 3 : 8;	/* 8 or 256 buckets */
	btp->bt_hashmask = (1 << btp->bt_hashshift) - 1;
	btp->bt_hash = kmem_zalloc((1 << btp->bt_hashshift) *
					sizeof(xfs_bufhash_t), KM_SLEEP);
	for (i = 0; i < (1 << btp->bt_hashshift); i++) {
		spin_lock_init(&btp->bt_hash[i].bh_lock);
		INIT_LIST_HEAD(&btp->bt_hash[i].bh_list);
	}
}

STATIC void
xfs_free_bufhash(
	xfs_buftarg_t		*btp)
{
1406
	kmem_free(btp->bt_hash, (1<<btp->bt_hashshift) * sizeof(xfs_bufhash_t));
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	btp->bt_hash = NULL;
}

1410
/*
1411
 *	buftarg list for delwrite queue processing
1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433
 */
STATIC LIST_HEAD(xfs_buftarg_list);
STATIC DEFINE_SPINLOCK(xfs_buftarg_lock);

STATIC void
xfs_register_buftarg(
	xfs_buftarg_t           *btp)
{
	spin_lock(&xfs_buftarg_lock);
	list_add(&btp->bt_list, &xfs_buftarg_list);
	spin_unlock(&xfs_buftarg_lock);
}

STATIC void
xfs_unregister_buftarg(
	xfs_buftarg_t           *btp)
{
	spin_lock(&xfs_buftarg_lock);
	list_del(&btp->bt_list);
	spin_unlock(&xfs_buftarg_lock);
}

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void
xfs_free_buftarg(
	xfs_buftarg_t		*btp,
	int			external)
{
	xfs_flush_buftarg(btp, 1);
	if (external)
1441
		xfs_blkdev_put(btp->bt_bdev);
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	xfs_free_bufhash(btp);
1443
	iput(btp->bt_mapping->host);
1444

1445 1446 1447
	/* Unregister the buftarg first so that we don't get a
	 * wakeup finding a non-existent task
	 */
1448 1449 1450
	xfs_unregister_buftarg(btp);
	kthread_stop(btp->bt_task);

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	kmem_free(btp, sizeof(*btp));
}

STATIC int
xfs_setsize_buftarg_flags(
	xfs_buftarg_t		*btp,
	unsigned int		blocksize,
	unsigned int		sectorsize,
	int			verbose)
{
1461 1462 1463
	btp->bt_bsize = blocksize;
	btp->bt_sshift = ffs(sectorsize) - 1;
	btp->bt_smask = sectorsize - 1;
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1465
	if (set_blocksize(btp->bt_bdev, sectorsize)) {
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		printk(KERN_WARNING
			"XFS: Cannot set_blocksize to %u on device %s\n",
			sectorsize, XFS_BUFTARG_NAME(btp));
		return EINVAL;
	}

	if (verbose &&
	    (PAGE_CACHE_SIZE / BITS_PER_LONG) > sectorsize) {
		printk(KERN_WARNING
			"XFS: %u byte sectors in use on device %s.  "
			"This is suboptimal; %u or greater is ideal.\n",
			sectorsize, XFS_BUFTARG_NAME(btp),
			(unsigned int)PAGE_CACHE_SIZE / BITS_PER_LONG);
	}

	return 0;
}

/*
1485 1486 1487 1488
 *	When allocating the initial buffer target we have not yet
 *	read in the superblock, so don't know what sized sectors
 *	are being used is at this early stage.  Play safe.
 */
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STATIC int
xfs_setsize_buftarg_early(
	xfs_buftarg_t		*btp,
	struct block_device	*bdev)
{
	return xfs_setsize_buftarg_flags(btp,
			PAGE_CACHE_SIZE, bdev_hardsect_size(bdev), 0);
}

int
xfs_setsize_buftarg(
	xfs_buftarg_t		*btp,
	unsigned int		blocksize,
	unsigned int		sectorsize)
{
	return xfs_setsize_buftarg_flags(btp, blocksize, sectorsize, 1);
}

STATIC int
xfs_mapping_buftarg(
	xfs_buftarg_t		*btp,
	struct block_device	*bdev)
{
	struct backing_dev_info	*bdi;
	struct inode		*inode;
	struct address_space	*mapping;
	static struct address_space_operations mapping_aops = {
		.sync_page = block_sync_page,
	};

	inode = new_inode(bdev->bd_inode->i_sb);
	if (!inode) {
		printk(KERN_WARNING
			"XFS: Cannot allocate mapping inode for device %s\n",
			XFS_BUFTARG_NAME(btp));
		return ENOMEM;
	}
	inode->i_mode = S_IFBLK;
	inode->i_bdev = bdev;
	inode->i_rdev = bdev->bd_dev;
	bdi = blk_get_backing_dev_info(bdev);
	if (!bdi)
		bdi = &default_backing_dev_info;
	mapping = &inode->i_data;
	mapping->a_ops = &mapping_aops;
	mapping->backing_dev_info = bdi;
	mapping_set_gfp_mask(mapping, GFP_NOFS);
1536
	btp->bt_mapping = mapping;
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	return 0;
}

1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559
STATIC int
xfs_alloc_delwrite_queue(
	xfs_buftarg_t		*btp)
{
	int	error = 0;

	INIT_LIST_HEAD(&btp->bt_list);
	INIT_LIST_HEAD(&btp->bt_delwrite_queue);
	spinlock_init(&btp->bt_delwrite_lock, "delwri_lock");
	btp->bt_flags = 0;
	btp->bt_task = kthread_run(xfsbufd, btp, "xfsbufd");
	if (IS_ERR(btp->bt_task)) {
		error = PTR_ERR(btp->bt_task);
		goto out_error;
	}
	xfs_register_buftarg(btp);
out_error:
	return error;
}

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xfs_buftarg_t *
xfs_alloc_buftarg(
	struct block_device	*bdev,
	int			external)
{
	xfs_buftarg_t		*btp;

	btp = kmem_zalloc(sizeof(*btp), KM_SLEEP);

1569 1570
	btp->bt_dev =  bdev->bd_dev;
	btp->bt_bdev = bdev;
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	if (xfs_setsize_buftarg_early(btp, bdev))
		goto error;
	if (xfs_mapping_buftarg(btp, bdev))
		goto error;
1575 1576
	if (xfs_alloc_delwrite_queue(btp))
		goto error;
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	xfs_alloc_bufhash(btp, external);
	return btp;

error:
	kmem_free(btp, sizeof(*btp));
	return NULL;
}


/*
1587
 *	Delayed write buffer handling
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 */
STATIC void
1590 1591
xfs_buf_delwri_queue(
	xfs_buf_t		*bp,
L
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	int			unlock)
{
1594 1595
	struct list_head	*dwq = &bp->b_target->bt_delwrite_queue;
	spinlock_t		*dwlk = &bp->b_target->bt_delwrite_lock;
1596

1597 1598
	XB_TRACE(bp, "delwri_q", (long)unlock);
	ASSERT((bp->b_flags&(XBF_DELWRI|XBF_ASYNC)) == (XBF_DELWRI|XBF_ASYNC));
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1600
	spin_lock(dwlk);
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	/* If already in the queue, dequeue and place at tail */
1602 1603 1604 1605 1606
	if (!list_empty(&bp->b_list)) {
		ASSERT(bp->b_flags & _XBF_DELWRI_Q);
		if (unlock)
			atomic_dec(&bp->b_hold);
		list_del(&bp->b_list);
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	}

1609 1610 1611
	bp->b_flags |= _XBF_DELWRI_Q;
	list_add_tail(&bp->b_list, dwq);
	bp->b_queuetime = jiffies;
1612
	spin_unlock(dwlk);
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	if (unlock)
1615
		xfs_buf_unlock(bp);
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}

void
1619 1620
xfs_buf_delwri_dequeue(
	xfs_buf_t		*bp)
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{
1622
	spinlock_t		*dwlk = &bp->b_target->bt_delwrite_lock;
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	int			dequeued = 0;

1625
	spin_lock(dwlk);
1626 1627 1628
	if ((bp->b_flags & XBF_DELWRI) && !list_empty(&bp->b_list)) {
		ASSERT(bp->b_flags & _XBF_DELWRI_Q);
		list_del_init(&bp->b_list);
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		dequeued = 1;
	}
1631
	bp->b_flags &= ~(XBF_DELWRI|_XBF_DELWRI_Q);
1632
	spin_unlock(dwlk);
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1633 1634

	if (dequeued)
1635
		xfs_buf_rele(bp);
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1636

1637
	XB_TRACE(bp, "delwri_dq", (long)dequeued);
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}

STATIC void
1641
xfs_buf_runall_queues(
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	struct workqueue_struct	*queue)
{
	flush_workqueue(queue);
}

STATIC int
1648
xfsbufd_wakeup(
1649 1650
	int			priority,
	gfp_t			mask)
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1651
{
1652
	xfs_buftarg_t		*btp;
1653 1654

	spin_lock(&xfs_buftarg_lock);
1655
	list_for_each_entry(btp, &xfs_buftarg_list, bt_list) {
1656
		if (test_bit(XBT_FORCE_SLEEP, &btp->bt_flags))
1657
			continue;
1658
		set_bit(XBT_FORCE_FLUSH, &btp->bt_flags);
1659 1660 1661
		wake_up_process(btp->bt_task);
	}
	spin_unlock(&xfs_buftarg_lock);
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	return 0;
}

STATIC int
1666
xfsbufd(
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	void			*data)
{
	struct list_head	tmp;
	unsigned long		age;
1671
	xfs_buftarg_t		*target = (xfs_buftarg_t *)data;
1672
	xfs_buf_t		*bp, *n;
1673 1674
	struct list_head	*dwq = &target->bt_delwrite_queue;
	spinlock_t		*dwlk = &target->bt_delwrite_lock;
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	current->flags |= PF_MEMALLOC;

	INIT_LIST_HEAD(&tmp);
	do {
1680
		if (unlikely(freezing(current))) {
1681
			set_bit(XBT_FORCE_SLEEP, &target->bt_flags);
1682
			refrigerator();
1683
		} else {
1684
			clear_bit(XBT_FORCE_SLEEP, &target->bt_flags);
1685
		}
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1687 1688
		schedule_timeout_interruptible(
			xfs_buf_timer_centisecs * msecs_to_jiffies(10));
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1689

1690
		age = xfs_buf_age_centisecs * msecs_to_jiffies(10);
1691
		spin_lock(dwlk);
1692 1693 1694
		list_for_each_entry_safe(bp, n, dwq, b_list) {
			XB_TRACE(bp, "walkq1", (long)xfs_buf_ispin(bp));
			ASSERT(bp->b_flags & XBF_DELWRI);
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1696 1697
			if (!xfs_buf_ispin(bp) && !xfs_buf_cond_lock(bp)) {
				if (!test_bit(XBT_FORCE_FLUSH,
1698
						&target->bt_flags) &&
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				    time_before(jiffies,
1700 1701
						bp->b_queuetime + age)) {
					xfs_buf_unlock(bp);
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					break;
				}

1705 1706 1707
				bp->b_flags &= ~(XBF_DELWRI|_XBF_DELWRI_Q);
				bp->b_flags |= XBF_WRITE;
				list_move(&bp->b_list, &tmp);
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			}
		}
1710
		spin_unlock(dwlk);
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		while (!list_empty(&tmp)) {
1713 1714
			bp = list_entry(tmp.next, xfs_buf_t, b_list);
			ASSERT(target == bp->b_target);
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1716 1717
			list_del_init(&bp->b_list);
			xfs_buf_iostrategy(bp);
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1719
			blk_run_address_space(target->bt_mapping);
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		}

		if (as_list_len > 0)
			purge_addresses();

1725
		clear_bit(XBT_FORCE_FLUSH, &target->bt_flags);
1726
	} while (!kthread_should_stop());
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1728
	return 0;
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}

/*
1732 1733 1734
 *	Go through all incore buffers, and release buffers if they belong to
 *	the given device. This is used in filesystem error handling to
 *	preserve the consistency of its metadata.
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 */
int
xfs_flush_buftarg(
	xfs_buftarg_t		*target,
	int			wait)
{
	struct list_head	tmp;
1742
	xfs_buf_t		*bp, *n;
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	int			pincount = 0;
1744 1745
	struct list_head	*dwq = &target->bt_delwrite_queue;
	spinlock_t		*dwlk = &target->bt_delwrite_lock;
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1747 1748
	xfs_buf_runall_queues(xfsdatad_workqueue);
	xfs_buf_runall_queues(xfslogd_workqueue);
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1749 1750

	INIT_LIST_HEAD(&tmp);
1751
	spin_lock(dwlk);
1752 1753 1754 1755 1756
	list_for_each_entry_safe(bp, n, dwq, b_list) {
		ASSERT(bp->b_target == target);
		ASSERT(bp->b_flags & (XBF_DELWRI | _XBF_DELWRI_Q));
		XB_TRACE(bp, "walkq2", (long)xfs_buf_ispin(bp));
		if (xfs_buf_ispin(bp)) {
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			pincount++;
			continue;
		}

1761
		list_move(&bp->b_list, &tmp);
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1762
	}
1763
	spin_unlock(dwlk);
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	/*
	 * Dropped the delayed write list lock, now walk the temporary list
	 */
1768 1769 1770 1771
	list_for_each_entry_safe(bp, n, &tmp, b_list) {
		xfs_buf_lock(bp);
		bp->b_flags &= ~(XBF_DELWRI|_XBF_DELWRI_Q);
		bp->b_flags |= XBF_WRITE;
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		if (wait)
1773
			bp->b_flags &= ~XBF_ASYNC;
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1774
		else
1775
			list_del_init(&bp->b_list);
L
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1776

1777
		xfs_buf_iostrategy(bp);
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	}

	/*
	 * Remaining list items must be flushed before returning
	 */
	while (!list_empty(&tmp)) {
1784
		bp = list_entry(tmp.next, xfs_buf_t, b_list);
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1786 1787 1788
		list_del_init(&bp->b_list);
		xfs_iowait(bp);
		xfs_buf_relse(bp);
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	}

	if (wait)
1792
		blk_run_address_space(target->bt_mapping);
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	return pincount;
}

1797
int __init
1798
xfs_buf_init(void)
L
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1799
{
1800
	int		error = -ENOMEM;
L
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1801

1802 1803
#ifdef XFS_BUF_TRACE
	xfs_buf_trace_buf = ktrace_alloc(XFS_BUF_TRACE_SIZE, KM_SLEEP);
1804 1805
#endif

1806 1807
	xfs_buf_zone = kmem_zone_init(sizeof(xfs_buf_t), "xfs_buf");
	if (!xfs_buf_zone)
1808 1809
		goto out_free_trace_buf;

1810 1811
	xfslogd_workqueue = create_workqueue("xfslogd");
	if (!xfslogd_workqueue)
1812
		goto out_free_buf_zone;
L
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1814 1815 1816
	xfsdatad_workqueue = create_workqueue("xfsdatad");
	if (!xfsdatad_workqueue)
		goto out_destroy_xfslogd_workqueue;
L
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1818 1819
	xfs_buf_shake = kmem_shake_register(xfsbufd_wakeup);
	if (!xfs_buf_shake)
1820
		goto out_destroy_xfsdatad_workqueue;
1821

1822
	return 0;
L
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1824 1825 1826 1827 1828
 out_destroy_xfsdatad_workqueue:
	destroy_workqueue(xfsdatad_workqueue);
 out_destroy_xfslogd_workqueue:
	destroy_workqueue(xfslogd_workqueue);
 out_free_buf_zone:
1829
	kmem_zone_destroy(xfs_buf_zone);
1830
 out_free_trace_buf:
1831 1832
#ifdef XFS_BUF_TRACE
	ktrace_free(xfs_buf_trace_buf);
1833 1834
#endif
	return error;
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}

void
1838
xfs_buf_terminate(void)
L
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1839
{
1840
	kmem_shake_deregister(xfs_buf_shake);
1841 1842
	destroy_workqueue(xfsdatad_workqueue);
	destroy_workqueue(xfslogd_workqueue);
1843 1844 1845
	kmem_zone_destroy(xfs_buf_zone);
#ifdef XFS_BUF_TRACE
	ktrace_free(xfs_buf_trace_buf);
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#endif
}