xfs_buf_item.c 28.5 KB
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// SPDX-License-Identifier: GPL-2.0
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/*
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 * Copyright (c) 2000-2005 Silicon Graphics, Inc.
 * All Rights Reserved.
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 */
#include "xfs.h"
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#include "xfs_fs.h"
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#include "xfs_shared.h"
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#include "xfs_format.h"
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#include "xfs_log_format.h"
#include "xfs_trans_resv.h"
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#include "xfs_bit.h"
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#include "xfs_mount.h"
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#include "xfs_trans.h"
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#include "xfs_trans_priv.h"
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#include "xfs_buf_item.h"
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#include "xfs_inode.h"
#include "xfs_inode_item.h"
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#include "xfs_quota.h"
#include "xfs_dquot_item.h"
#include "xfs_dquot.h"
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#include "xfs_trace.h"
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#include "xfs_log.h"
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kmem_zone_t	*xfs_buf_item_zone;

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static inline struct xfs_buf_log_item *BUF_ITEM(struct xfs_log_item *lip)
{
	return container_of(lip, struct xfs_buf_log_item, bli_item);
}

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/* Is this log iovec plausibly large enough to contain the buffer log format? */
bool
xfs_buf_log_check_iovec(
	struct xfs_log_iovec		*iovec)
{
	struct xfs_buf_log_format	*blfp = iovec->i_addr;
	char				*bmp_end;
	char				*item_end;

	if (offsetof(struct xfs_buf_log_format, blf_data_map) > iovec->i_len)
		return false;

	item_end = (char *)iovec->i_addr + iovec->i_len;
	bmp_end = (char *)&blfp->blf_data_map[blfp->blf_map_size];
	return bmp_end <= item_end;
}

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static inline int
xfs_buf_log_format_size(
	struct xfs_buf_log_format *blfp)
{
	return offsetof(struct xfs_buf_log_format, blf_data_map) +
			(blfp->blf_map_size * sizeof(blfp->blf_data_map[0]));
}

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/*
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 * Return the number of log iovecs and space needed to log the given buf log
 * item segment.
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 *
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 * It calculates this as 1 iovec for the buf log format structure and 1 for each
 * stretch of non-contiguous chunks to be logged.  Contiguous chunks are logged
 * in a single iovec.
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 */
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STATIC void
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xfs_buf_item_size_segment(
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	struct xfs_buf_log_item		*bip,
	struct xfs_buf_log_format	*blfp,
	int				*nvecs,
	int				*nbytes)
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{
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	struct xfs_buf			*bp = bip->bli_buf;
	int				next_bit;
	int				last_bit;
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	last_bit = xfs_next_bit(blfp->blf_data_map, blfp->blf_map_size, 0);
	if (last_bit == -1)
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		return;
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	/*
	 * initial count for a dirty buffer is 2 vectors - the format structure
	 * and the first dirty region.
	 */
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	*nvecs += 2;
	*nbytes += xfs_buf_log_format_size(blfp) + XFS_BLF_CHUNK;
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	while (last_bit != -1) {
		/*
		 * This takes the bit number to start looking from and
		 * returns the next set bit from there.  It returns -1
		 * if there are no more bits set or the start bit is
		 * beyond the end of the bitmap.
		 */
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		next_bit = xfs_next_bit(blfp->blf_data_map, blfp->blf_map_size,
					last_bit + 1);
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		/*
		 * If we run out of bits, leave the loop,
		 * else if we find a new set of bits bump the number of vecs,
		 * else keep scanning the current set of bits.
		 */
		if (next_bit == -1) {
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			break;
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		} else if (next_bit != last_bit + 1) {
			last_bit = next_bit;
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			(*nvecs)++;
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		} else if (xfs_buf_offset(bp, next_bit * XFS_BLF_CHUNK) !=
			   (xfs_buf_offset(bp, last_bit * XFS_BLF_CHUNK) +
			    XFS_BLF_CHUNK)) {
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			last_bit = next_bit;
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			(*nvecs)++;
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		} else {
			last_bit++;
		}
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		*nbytes += XFS_BLF_CHUNK;
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	}
}

/*
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 * Return the number of log iovecs and space needed to log the given buf log
 * item.
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 *
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 * Discontiguous buffers need a format structure per region that is being
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 * logged. This makes the changes in the buffer appear to log recovery as though
 * they came from separate buffers, just like would occur if multiple buffers
 * were used instead of a single discontiguous buffer. This enables
 * discontiguous buffers to be in-memory constructs, completely transparent to
 * what ends up on disk.
 *
 * If the XFS_BLI_STALE flag has been set, then log nothing but the buf log
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 * format structures. If the item has previously been logged and has dirty
 * regions, we do not relog them in stale buffers. This has the effect of
 * reducing the size of the relogged item by the amount of dirty data tracked
 * by the log item. This can result in the committing transaction reducing the
 * amount of space being consumed by the CIL.
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 */
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STATIC void
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xfs_buf_item_size(
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	struct xfs_log_item	*lip,
	int			*nvecs,
	int			*nbytes)
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{
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	struct xfs_buf_log_item	*bip = BUF_ITEM(lip);
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	int			i;

	ASSERT(atomic_read(&bip->bli_refcount) > 0);
	if (bip->bli_flags & XFS_BLI_STALE) {
		/*
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		 * The buffer is stale, so all we need to log is the buf log
		 * format structure with the cancel flag in it as we are never
		 * going to replay the changes tracked in the log item.
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		 */
		trace_xfs_buf_item_size_stale(bip);
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		ASSERT(bip->__bli_format.blf_flags & XFS_BLF_CANCEL);
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		*nvecs += bip->bli_format_count;
		for (i = 0; i < bip->bli_format_count; i++) {
			*nbytes += xfs_buf_log_format_size(&bip->bli_formats[i]);
		}
		return;
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	}

	ASSERT(bip->bli_flags & XFS_BLI_LOGGED);

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	if (bip->bli_flags & XFS_BLI_ORDERED) {
		/*
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		 * The buffer has been logged just to order it. It is not being
		 * included in the transaction commit, so no vectors are used at
		 * all.
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		 */
		trace_xfs_buf_item_size_ordered(bip);
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		*nvecs = XFS_LOG_VEC_ORDERED;
		return;
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	}

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	/*
	 * the vector count is based on the number of buffer vectors we have
	 * dirty bits in. This will only be greater than one when we have a
	 * compound buffer with more than one segment dirty. Hence for compound
	 * buffers we need to track which segment the dirty bits correspond to,
	 * and when we move from one segment to the next increment the vector
	 * count for the extra buf log format structure that will need to be
	 * written.
	 */
	for (i = 0; i < bip->bli_format_count; i++) {
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		xfs_buf_item_size_segment(bip, &bip->bli_formats[i],
					  nvecs, nbytes);
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	}
	trace_xfs_buf_item_size(bip);
}

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static inline void
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xfs_buf_item_copy_iovec(
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	struct xfs_log_vec	*lv,
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	struct xfs_log_iovec	**vecp,
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	struct xfs_buf		*bp,
	uint			offset,
	int			first_bit,
	uint			nbits)
{
	offset += first_bit * XFS_BLF_CHUNK;
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	xlog_copy_iovec(lv, vecp, XLOG_REG_TYPE_BCHUNK,
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			xfs_buf_offset(bp, offset),
			nbits * XFS_BLF_CHUNK);
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}

static inline bool
xfs_buf_item_straddle(
	struct xfs_buf		*bp,
	uint			offset,
	int			next_bit,
	int			last_bit)
{
	return xfs_buf_offset(bp, offset + (next_bit << XFS_BLF_SHIFT)) !=
		(xfs_buf_offset(bp, offset + (last_bit << XFS_BLF_SHIFT)) +
		 XFS_BLF_CHUNK);
}

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static void
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xfs_buf_item_format_segment(
	struct xfs_buf_log_item	*bip,
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	struct xfs_log_vec	*lv,
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	struct xfs_log_iovec	**vecp,
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	uint			offset,
	struct xfs_buf_log_format *blfp)
{
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	struct xfs_buf		*bp = bip->bli_buf;
	uint			base_size;
	int			first_bit;
	int			last_bit;
	int			next_bit;
	uint			nbits;
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	/* copy the flags across from the base format item */
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	blfp->blf_flags = bip->__bli_format.blf_flags;
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	/*
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	 * Base size is the actual size of the ondisk structure - it reflects
	 * the actual size of the dirty bitmap rather than the size of the in
	 * memory structure.
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	 */
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	base_size = xfs_buf_log_format_size(blfp);
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	first_bit = xfs_next_bit(blfp->blf_data_map, blfp->blf_map_size, 0);
	if (!(bip->bli_flags & XFS_BLI_STALE) && first_bit == -1) {
		/*
		 * If the map is not be dirty in the transaction, mark
		 * the size as zero and do not advance the vector pointer.
		 */
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		return;
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	}

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	blfp = xlog_copy_iovec(lv, vecp, XLOG_REG_TYPE_BFORMAT, blfp, base_size);
	blfp->blf_size = 1;
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	if (bip->bli_flags & XFS_BLI_STALE) {
		/*
		 * The buffer is stale, so all we need to log
		 * is the buf log format structure with the
		 * cancel flag in it.
		 */
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		trace_xfs_buf_item_format_stale(bip);
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		ASSERT(blfp->blf_flags & XFS_BLF_CANCEL);
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		return;
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	}

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	/*
	 * Fill in an iovec for each set of contiguous chunks.
	 */
	last_bit = first_bit;
	nbits = 1;
	for (;;) {
		/*
		 * This takes the bit number to start looking from and
		 * returns the next set bit from there.  It returns -1
		 * if there are no more bits set or the start bit is
		 * beyond the end of the bitmap.
		 */
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		next_bit = xfs_next_bit(blfp->blf_data_map, blfp->blf_map_size,
					(uint)last_bit + 1);
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		/*
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		 * If we run out of bits fill in the last iovec and get out of
		 * the loop.  Else if we start a new set of bits then fill in
		 * the iovec for the series we were looking at and start
		 * counting the bits in the new one.  Else we're still in the
		 * same set of bits so just keep counting and scanning.
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		 */
		if (next_bit == -1) {
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			xfs_buf_item_copy_iovec(lv, vecp, bp, offset,
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						first_bit, nbits);
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			blfp->blf_size++;
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			break;
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		} else if (next_bit != last_bit + 1 ||
		           xfs_buf_item_straddle(bp, offset, next_bit, last_bit)) {
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			xfs_buf_item_copy_iovec(lv, vecp, bp, offset,
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						first_bit, nbits);
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			blfp->blf_size++;
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			first_bit = next_bit;
			last_bit = next_bit;
			nbits = 1;
		} else {
			last_bit++;
			nbits++;
		}
	}
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}

/*
 * This is called to fill in the vector of log iovecs for the
 * given log buf item.  It fills the first entry with a buf log
 * format structure, and the rest point to contiguous chunks
 * within the buffer.
 */
STATIC void
xfs_buf_item_format(
	struct xfs_log_item	*lip,
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	struct xfs_log_vec	*lv)
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{
	struct xfs_buf_log_item	*bip = BUF_ITEM(lip);
	struct xfs_buf		*bp = bip->bli_buf;
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	struct xfs_log_iovec	*vecp = NULL;
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	uint			offset = 0;
	int			i;

	ASSERT(atomic_read(&bip->bli_refcount) > 0);
	ASSERT((bip->bli_flags & XFS_BLI_LOGGED) ||
	       (bip->bli_flags & XFS_BLI_STALE));
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	ASSERT((bip->bli_flags & XFS_BLI_STALE) ||
	       (xfs_blft_from_flags(&bip->__bli_format) > XFS_BLFT_UNKNOWN_BUF
	        && xfs_blft_from_flags(&bip->__bli_format) < XFS_BLFT_MAX_BUF));
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	ASSERT(!(bip->bli_flags & XFS_BLI_ORDERED) ||
	       (bip->bli_flags & XFS_BLI_STALE));
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	/*
	 * If it is an inode buffer, transfer the in-memory state to the
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	 * format flags and clear the in-memory state.
	 *
	 * For buffer based inode allocation, we do not transfer
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	 * this state if the inode buffer allocation has not yet been committed
	 * to the log as setting the XFS_BLI_INODE_BUF flag will prevent
	 * correct replay of the inode allocation.
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	 *
	 * For icreate item based inode allocation, the buffers aren't written
	 * to the journal during allocation, and hence we should always tag the
	 * buffer as an inode buffer so that the correct unlinked list replay
	 * occurs during recovery.
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	 */
	if (bip->bli_flags & XFS_BLI_INODE_BUF) {
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		if (xfs_sb_version_has_v3inode(&lip->li_mountp->m_sb) ||
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		    !((bip->bli_flags & XFS_BLI_INODE_ALLOC_BUF) &&
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		      xfs_log_item_in_current_chkpt(lip)))
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			bip->__bli_format.blf_flags |= XFS_BLF_INODE_BUF;
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		bip->bli_flags &= ~XFS_BLI_INODE_BUF;
	}

	for (i = 0; i < bip->bli_format_count; i++) {
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		xfs_buf_item_format_segment(bip, lv, &vecp, offset,
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					    &bip->bli_formats[i]);
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		offset += BBTOB(bp->b_maps[i].bm_len);
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	}
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	/*
	 * Check to make sure everything is consistent.
	 */
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	trace_xfs_buf_item_format(bip);
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}

/*
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 * This is called to pin the buffer associated with the buf log item in memory
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 * so it cannot be written out.
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 *
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 * We take a reference to the buffer log item here so that the BLI life cycle
 * extends at least until the buffer is unpinned via xfs_buf_item_unpin() and
 * inserted into the AIL.
 *
 * We also need to take a reference to the buffer itself as the BLI unpin
 * processing requires accessing the buffer after the BLI has dropped the final
 * BLI reference. See xfs_buf_item_unpin() for an explanation.
 * If unpins race to drop the final BLI reference and only the
 * BLI owns a reference to the buffer, then the loser of the race can have the
 * buffer fgreed from under it (e.g. on shutdown). Taking a buffer reference per
 * pin count ensures the life cycle of the buffer extends for as
 * long as we hold the buffer pin reference in xfs_buf_item_unpin().
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 */
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STATIC void
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xfs_buf_item_pin(
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	struct xfs_log_item	*lip)
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{
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	struct xfs_buf_log_item	*bip = BUF_ITEM(lip);
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	ASSERT(atomic_read(&bip->bli_refcount) > 0);
	ASSERT((bip->bli_flags & XFS_BLI_LOGGED) ||
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	       (bip->bli_flags & XFS_BLI_ORDERED) ||
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	       (bip->bli_flags & XFS_BLI_STALE));
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	trace_xfs_buf_item_pin(bip);
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	xfs_buf_hold(bip->bli_buf);
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	atomic_inc(&bip->bli_refcount);
	atomic_inc(&bip->bli_buf->b_pin_count);
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}

/*
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 * This is called to unpin the buffer associated with the buf log item which was
 * previously pinned with a call to xfs_buf_item_pin().  We enter this function
 * with a buffer pin count, a buffer reference and a BLI reference.
 *
 * We must drop the BLI reference before we unpin the buffer because the AIL
 * doesn't acquire a BLI reference whenever it accesses it. Therefore if the
 * refcount drops to zero, the bli could still be AIL resident and the buffer
 * submitted for I/O at any point before we return. This can result in IO
 * completion freeing the buffer while we are still trying to access it here.
 * This race condition can also occur in shutdown situations where we abort and
 * unpin buffers from contexts other that journal IO completion.
 *
 * Hence we have to hold a buffer reference per pin count to ensure that the
 * buffer cannot be freed until we have finished processing the unpin operation.
 * The reference is taken in xfs_buf_item_pin(), and we must hold it until we
 * are done processing the buffer state. In the case of an abort (remove =
 * true) then we re-use the current pin reference as the IO reference we hand
 * off to IO failure handling.
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 */
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STATIC void
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xfs_buf_item_unpin(
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	struct xfs_log_item	*lip,
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	int			remove)
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{
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	struct xfs_buf_log_item	*bip = BUF_ITEM(lip);
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	xfs_buf_t		*bp = bip->bli_buf;
	int			stale = bip->bli_flags & XFS_BLI_STALE;
	int			freed;
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	ASSERT(bp->b_log_item == bip);
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	ASSERT(atomic_read(&bip->bli_refcount) > 0);
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	trace_xfs_buf_item_unpin(bip);
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	freed = atomic_dec_and_test(&bip->bli_refcount);
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	if (atomic_dec_and_test(&bp->b_pin_count))
		wake_up_all(&bp->b_waiters);
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	 /*
	  * Nothing to do but drop the buffer pin reference if the BLI is
	  * still active
	  */
	if (!freed) {
		xfs_buf_rele(bp);
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		return;
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	}
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	if (stale) {
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		ASSERT(bip->bli_flags & XFS_BLI_STALE);
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		ASSERT(xfs_buf_islocked(bp));
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		ASSERT(bp->b_flags & XBF_STALE);
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		ASSERT(bip->__bli_format.blf_flags & XFS_BLF_CANCEL);
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		ASSERT(list_empty(&lip->li_trans));
		ASSERT(!bp->b_transp);
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		trace_xfs_buf_item_unpin_stale(bip);

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		/*
		 * The buffer has been locked and referenced since it was marked
		 * stale so we own both lock and reference exclusively here. We
		 * do not need the pin reference any more, so drop it now so
		 * that we only have one reference to drop once item completion
		 * processing is complete.
		 */
		xfs_buf_rele(bp);

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		/*
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		 * If we get called here because of an IO error, we may or may
		 * not have the item on the AIL. xfs_trans_ail_delete() will
		 * take care of that situation. xfs_trans_ail_delete() drops
		 * the AIL lock.
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		 */
		if (bip->bli_flags & XFS_BLI_STALE_INODE) {
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			xfs_buf_item_done(bp);
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			xfs_buf_inode_iodone(bp);
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			ASSERT(list_empty(&bp->b_li_list));
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		} else {
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			xfs_trans_ail_delete(lip, SHUTDOWN_LOG_IO_ERROR);
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			xfs_buf_item_relse(bp);
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			ASSERT(bp->b_log_item == NULL);
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		}
		xfs_buf_relse(bp);
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		return;
	}

	if (remove) {
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		/*
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		 * We need to simulate an async IO failures here to ensure that
		 * the correct error completion is run on this buffer. This
		 * requires a reference to the buffer and for the buffer to be
		 * locked. We can safely pass ownership of the pin reference to
		 * the IO to ensure that nothing can free the buffer while we
		 * wait for the lock and then run the IO failure completion.
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		 */
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		xfs_buf_lock(bp);
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		bp->b_flags |= XBF_ASYNC;
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		xfs_buf_ioend_fail(bp);
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		return;
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	}
504 505 506 507 508 509 510

	/*
	 * BLI has no more active references - it will be moved to the AIL to
	 * manage the remaining BLI/buffer life cycle. There is nothing left for
	 * us to do here so drop the pin reference to the buffer.
	 */
	xfs_buf_rele(bp);
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}

513
STATIC uint
514 515 516
xfs_buf_item_push(
	struct xfs_log_item	*lip,
	struct list_head	*buffer_list)
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{
518 519
	struct xfs_buf_log_item	*bip = BUF_ITEM(lip);
	struct xfs_buf		*bp = bip->bli_buf;
520
	uint			rval = XFS_ITEM_SUCCESS;
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522
	if (xfs_buf_ispinned(bp))
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		return XFS_ITEM_PINNED;
524 525 526 527 528 529 530 531 532 533
	if (!xfs_buf_trylock(bp)) {
		/*
		 * If we have just raced with a buffer being pinned and it has
		 * been marked stale, we could end up stalling until someone else
		 * issues a log force to unpin the stale buffer. Check for the
		 * race condition here so xfsaild recognizes the buffer is pinned
		 * and queues a log force to move it along.
		 */
		if (xfs_buf_ispinned(bp))
			return XFS_ITEM_PINNED;
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		return XFS_ITEM_LOCKED;
535
	}
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	ASSERT(!(bip->bli_flags & XFS_BLI_STALE));
538 539 540

	trace_xfs_buf_item_push(bip);

541
	/* has a previous flush failed due to IO errors? */
542 543 544 545
	if (bp->b_flags & XBF_WRITE_FAIL) {
		xfs_buf_alert_ratelimited(bp, "XFS: Failing async write",
	    "Failing async write on buffer block 0x%llx. Retrying async write.",
					  (long long)bp->b_bn);
546 547
	}

548 549 550 551
	if (!xfs_buf_delwri_queue(bp, buffer_list))
		rval = XFS_ITEM_FLUSHING;
	xfs_buf_unlock(bp);
	return rval;
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}

554 555 556 557 558 559 560 561 562 563 564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591
/*
 * Drop the buffer log item refcount and take appropriate action. This helper
 * determines whether the bli must be freed or not, since a decrement to zero
 * does not necessarily mean the bli is unused.
 *
 * Return true if the bli is freed, false otherwise.
 */
bool
xfs_buf_item_put(
	struct xfs_buf_log_item	*bip)
{
	struct xfs_log_item	*lip = &bip->bli_item;
	bool			aborted;
	bool			dirty;

	/* drop the bli ref and return if it wasn't the last one */
	if (!atomic_dec_and_test(&bip->bli_refcount))
		return false;

	/*
	 * We dropped the last ref and must free the item if clean or aborted.
	 * If the bli is dirty and non-aborted, the buffer was clean in the
	 * transaction but still awaiting writeback from previous changes. In
	 * that case, the bli is freed on buffer writeback completion.
	 */
	aborted = test_bit(XFS_LI_ABORTED, &lip->li_flags) ||
		  XFS_FORCED_SHUTDOWN(lip->li_mountp);
	dirty = bip->bli_flags & XFS_BLI_DIRTY;
	if (dirty && !aborted)
		return false;

	/*
	 * The bli is aborted or clean. An aborted item may be in the AIL
	 * regardless of dirty state.  For example, consider an aborted
	 * transaction that invalidated a dirty bli and cleared the dirty
	 * state.
	 */
	if (aborted)
592
		xfs_trans_ail_delete(lip, 0);
593 594 595 596
	xfs_buf_item_relse(bip->bli_buf);
	return true;
}

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/*
598 599 600
 * Release the buffer associated with the buf log item.  If there is no dirty
 * logged data associated with the buffer recorded in the buf log item, then
 * free the buf log item and remove the reference to it in the buffer.
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 *
602 603
 * This call ignores the recursion count.  It is only called when the buffer
 * should REALLY be unlocked, regardless of the recursion count.
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 *
605 606 607 608 609 610 611 612 613 614
 * We unconditionally drop the transaction's reference to the log item. If the
 * item was logged, then another reference was taken when it was pinned, so we
 * can safely drop the transaction reference now.  This also allows us to avoid
 * potential races with the unpin code freeing the bli by not referencing the
 * bli after we've dropped the reference count.
 *
 * If the XFS_BLI_HOLD flag is set in the buf log item, then free the log item
 * if necessary but do not unlock the buffer.  This is for support of
 * xfs_trans_bhold(). Make sure the XFS_BLI_HOLD field is cleared if we don't
 * free the item.
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 */
616
STATIC void
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xfs_buf_item_release(
618
	struct xfs_log_item	*lip)
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{
620 621
	struct xfs_buf_log_item	*bip = BUF_ITEM(lip);
	struct xfs_buf		*bp = bip->bli_buf;
622
	bool			released;
623 624
	bool			hold = bip->bli_flags & XFS_BLI_HOLD;
	bool			stale = bip->bli_flags & XFS_BLI_STALE;
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#if defined(DEBUG) || defined(XFS_WARN)
626
	bool			ordered = bip->bli_flags & XFS_BLI_ORDERED;
627
	bool			dirty = bip->bli_flags & XFS_BLI_DIRTY;
628 629
	bool			aborted = test_bit(XFS_LI_ABORTED,
						   &lip->li_flags);
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#endif
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	trace_xfs_buf_item_release(bip);
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	/*
635 636
	 * The bli dirty state should match whether the blf has logged segments
	 * except for ordered buffers, where only the bli should be dirty.
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	 */
638 639
	ASSERT((!ordered && dirty == xfs_buf_item_dirty_format(bip)) ||
	       (ordered && dirty && !xfs_buf_item_dirty_format(bip)));
640 641
	ASSERT(!stale || (bip->__bli_format.blf_flags & XFS_BLF_CANCEL));

642
	/*
643 644 645 646 647 648 649
	 * Clear the buffer's association with this transaction and
	 * per-transaction state from the bli, which has been copied above.
	 */
	bp->b_transp = NULL;
	bip->bli_flags &= ~(XFS_BLI_LOGGED | XFS_BLI_HOLD | XFS_BLI_ORDERED);

	/*
650 651 652 653
	 * Unref the item and unlock the buffer unless held or stale. Stale
	 * buffers remain locked until final unpin unless the bli is freed by
	 * the unref call. The latter implies shutdown because buffer
	 * invalidation dirties the bli and transaction.
654
	 */
655 656
	released = xfs_buf_item_put(bip);
	if (hold || (stale && !released))
657
		return;
658
	ASSERT(!stale || aborted);
659
	xfs_buf_relse(bp);
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}

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STATIC void
xfs_buf_item_committing(
	struct xfs_log_item	*lip,
665
	xfs_csn_t		seq)
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666 667 668 669
{
	return xfs_buf_item_release(lip);
}

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/*
 * This is called to find out where the oldest active copy of the
 * buf log item in the on disk log resides now that the last log
 * write of it completed at the given lsn.
 * We always re-log all the dirty data in a buffer, so usually the
 * latest copy in the on disk log is the only one that matters.  For
 * those cases we simply return the given lsn.
 *
 * The one exception to this is for buffers full of newly allocated
 * inodes.  These buffers are only relogged with the XFS_BLI_INODE_BUF
 * flag set, indicating that only the di_next_unlinked fields from the
 * inodes in the buffers will be replayed during recovery.  If the
 * original newly allocated inode images have not yet been flushed
 * when the buffer is so relogged, then we need to make sure that we
 * keep the old images in the 'active' portion of the log.  We do this
 * by returning the original lsn of that transaction here rather than
 * the current one.
 */
688
STATIC xfs_lsn_t
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xfs_buf_item_committed(
690
	struct xfs_log_item	*lip,
L
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691 692
	xfs_lsn_t		lsn)
{
693 694
	struct xfs_buf_log_item	*bip = BUF_ITEM(lip);

C
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695 696
	trace_xfs_buf_item_committed(bip);

697 698 699
	if ((bip->bli_flags & XFS_BLI_INODE_ALLOC_BUF) && lip->li_lsn != 0)
		return lip->li_lsn;
	return lsn;
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}

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702
static const struct xfs_item_ops xfs_buf_item_ops = {
703 704 705 706
	.iop_size	= xfs_buf_item_size,
	.iop_format	= xfs_buf_item_format,
	.iop_pin	= xfs_buf_item_pin,
	.iop_unpin	= xfs_buf_item_unpin,
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	.iop_release	= xfs_buf_item_release,
	.iop_committing	= xfs_buf_item_committing,
709 710
	.iop_committed	= xfs_buf_item_committed,
	.iop_push	= xfs_buf_item_push,
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};

713
STATIC void
714 715 716 717 718 719 720 721
xfs_buf_item_get_format(
	struct xfs_buf_log_item	*bip,
	int			count)
{
	ASSERT(bip->bli_formats == NULL);
	bip->bli_format_count = count;

	if (count == 1) {
722
		bip->bli_formats = &bip->__bli_format;
723
		return;
724 725 726
	}

	bip->bli_formats = kmem_zalloc(count * sizeof(struct xfs_buf_log_format),
727
				0);
728 729 730 731 732 733
}

STATIC void
xfs_buf_item_free_format(
	struct xfs_buf_log_item	*bip)
{
734
	if (bip->bli_formats != &bip->__bli_format) {
735 736 737 738
		kmem_free(bip->bli_formats);
		bip->bli_formats = NULL;
	}
}
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/*
 * Allocate a new buf log item to go with the given buffer.
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 * Set the buffer's b_log_item field to point to the new
 * buf log item.
L
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 */
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int
L
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746
xfs_buf_item_init(
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747 748
	struct xfs_buf	*bp,
	struct xfs_mount *mp)
L
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749
{
C
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750
	struct xfs_buf_log_item	*bip = bp->b_log_item;
L
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751 752
	int			chunks;
	int			map_size;
753
	int			i;
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754 755 756

	/*
	 * Check to see if there is already a buf log item for
C
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757
	 * this buffer. If we do already have one, there is
L
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	 * nothing to do here so return.
	 */
760
	ASSERT(bp->b_mount == mp);
761
	if (bip) {
C
Carlos Maiolino 已提交
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		ASSERT(bip->bli_item.li_type == XFS_LI_BUF);
763 764
		ASSERT(!bp->b_transp);
		ASSERT(bip->bli_buf == bp);
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765
		return 0;
C
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766
	}
L
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768
	bip = kmem_cache_zalloc(xfs_buf_item_zone, GFP_KERNEL | __GFP_NOFAIL);
769
	xfs_log_item_init(mp, &bip->bli_item, XFS_LI_BUF, &xfs_buf_item_ops);
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	bip->bli_buf = bp;
771 772 773 774 775 776 777 778 779 780

	/*
	 * chunks is the number of XFS_BLF_CHUNK size pieces the buffer
	 * can be divided into. Make sure not to truncate any pieces.
	 * map_size is the size of the bitmap needed to describe the
	 * chunks of the buffer.
	 *
	 * Discontiguous buffer support follows the layout of the underlying
	 * buffer. This makes the implementation as simple as possible.
	 */
781
	xfs_buf_item_get_format(bip, bp->b_map_count);
782 783 784 785 786 787

	for (i = 0; i < bip->bli_format_count; i++) {
		chunks = DIV_ROUND_UP(BBTOB(bp->b_maps[i].bm_len),
				      XFS_BLF_CHUNK);
		map_size = DIV_ROUND_UP(chunks, NBWORD);

788 789 790 791 792 793 794 795 796
		if (map_size > XFS_BLF_DATAMAP_SIZE) {
			kmem_cache_free(xfs_buf_item_zone, bip);
			xfs_err(mp,
	"buffer item dirty bitmap (%u uints) too small to reflect %u bytes!",
					map_size,
					BBTOB(bp->b_maps[i].bm_len));
			return -EFSCORRUPTED;
		}

797 798 799 800 801
		bip->bli_formats[i].blf_type = XFS_LI_BUF;
		bip->bli_formats[i].blf_blkno = bp->b_maps[i].bm_bn;
		bip->bli_formats[i].blf_len = bp->b_maps[i].bm_len;
		bip->bli_formats[i].blf_map_size = map_size;
	}
L
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802

C
Carlos Maiolino 已提交
803
	bp->b_log_item = bip;
D
Dave Chinner 已提交
804 805
	xfs_buf_hold(bp);
	return 0;
L
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806 807 808 809 810 811 812
}


/*
 * Mark bytes first through last inclusive as dirty in the buf
 * item's bitmap.
 */
813
static void
814
xfs_buf_item_log_segment(
L
Linus Torvalds 已提交
815
	uint			first,
816 817
	uint			last,
	uint			*map)
L
Linus Torvalds 已提交
818 819 820 821 822 823 824 825 826 827 828
{
	uint		first_bit;
	uint		last_bit;
	uint		bits_to_set;
	uint		bits_set;
	uint		word_num;
	uint		*wordp;
	uint		bit;
	uint		end_bit;
	uint		mask;

829 830 831
	ASSERT(first < XFS_BLF_DATAMAP_SIZE * XFS_BLF_CHUNK * NBWORD);
	ASSERT(last < XFS_BLF_DATAMAP_SIZE * XFS_BLF_CHUNK * NBWORD);

L
Linus Torvalds 已提交
832 833 834
	/*
	 * Convert byte offsets to bit numbers.
	 */
835 836
	first_bit = first >> XFS_BLF_SHIFT;
	last_bit = last >> XFS_BLF_SHIFT;
L
Linus Torvalds 已提交
837 838 839 840 841 842 843 844 845 846 847

	/*
	 * Calculate the total number of bits to be set.
	 */
	bits_to_set = last_bit - first_bit + 1;

	/*
	 * Get a pointer to the first word in the bitmap
	 * to set a bit in.
	 */
	word_num = first_bit >> BIT_TO_WORD_SHIFT;
848
	wordp = &map[word_num];
L
Linus Torvalds 已提交
849 850 851 852 853 854 855 856 857 858 859 860 861 862 863

	/*
	 * Calculate the starting bit in the first word.
	 */
	bit = first_bit & (uint)(NBWORD - 1);

	/*
	 * First set any bits in the first word of our range.
	 * If it starts at bit 0 of the word, it will be
	 * set below rather than here.  That is what the variable
	 * bit tells us. The variable bits_set tracks the number
	 * of bits that have been set so far.  End_bit is the number
	 * of the last bit to be set in this word plus one.
	 */
	if (bit) {
D
Dave Chinner 已提交
864
		end_bit = min(bit + bits_to_set, (uint)NBWORD);
X
Xie XiuQi 已提交
865
		mask = ((1U << (end_bit - bit)) - 1) << bit;
L
Linus Torvalds 已提交
866 867 868 869 870 871 872 873 874 875 876 877
		*wordp |= mask;
		wordp++;
		bits_set = end_bit - bit;
	} else {
		bits_set = 0;
	}

	/*
	 * Now set bits a whole word at a time that are between
	 * first_bit and last_bit.
	 */
	while ((bits_to_set - bits_set) >= NBWORD) {
878
		*wordp = 0xffffffff;
L
Linus Torvalds 已提交
879 880 881 882 883 884 885 886 887
		bits_set += NBWORD;
		wordp++;
	}

	/*
	 * Finally, set any bits left to be set in one last partial word.
	 */
	end_bit = bits_to_set - bits_set;
	if (end_bit) {
X
Xie XiuQi 已提交
888
		mask = (1U << end_bit) - 1;
L
Linus Torvalds 已提交
889 890 891 892
		*wordp |= mask;
	}
}

893 894 895 896 897 898
/*
 * Mark bytes first through last inclusive as dirty in the buf
 * item's bitmap.
 */
void
xfs_buf_item_log(
899
	struct xfs_buf_log_item	*bip,
900 901 902 903 904 905 906 907 908 909 910 911 912 913 914
	uint			first,
	uint			last)
{
	int			i;
	uint			start;
	uint			end;
	struct xfs_buf		*bp = bip->bli_buf;

	/*
	 * walk each buffer segment and mark them dirty appropriately.
	 */
	start = 0;
	for (i = 0; i < bip->bli_format_count; i++) {
		if (start > last)
			break;
915 916 917
		end = start + BBTOB(bp->b_maps[i].bm_len) - 1;

		/* skip to the map that includes the first byte to log */
918 919 920 921
		if (first > end) {
			start += BBTOB(bp->b_maps[i].bm_len);
			continue;
		}
922 923 924 925 926 927 928

		/*
		 * Trim the range to this segment and mark it in the bitmap.
		 * Note that we must convert buffer offsets to segment relative
		 * offsets (e.g., the first byte of each segment is byte 0 of
		 * that segment).
		 */
929 930 931 932
		if (first < start)
			first = start;
		if (end > last)
			end = last;
933
		xfs_buf_item_log_segment(first - start, end - start,
934 935
					 &bip->bli_formats[i].blf_data_map[0]);

936
		start += BBTOB(bp->b_maps[i].bm_len);
937 938 939
	}
}

L
Linus Torvalds 已提交
940

941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959
/*
 * Return true if the buffer has any ranges logged/dirtied by a transaction,
 * false otherwise.
 */
bool
xfs_buf_item_dirty_format(
	struct xfs_buf_log_item	*bip)
{
	int			i;

	for (i = 0; i < bip->bli_format_count; i++) {
		if (!xfs_bitmap_empty(bip->bli_formats[i].blf_data_map,
			     bip->bli_formats[i].blf_map_size))
			return true;
	}

	return false;
}

960 961
STATIC void
xfs_buf_item_free(
962
	struct xfs_buf_log_item	*bip)
963
{
964
	xfs_buf_item_free_format(bip);
965
	kmem_free(bip->bli_item.li_lv_shadow);
966
	kmem_cache_free(xfs_buf_item_zone, bip);
967 968
}

L
Linus Torvalds 已提交
969
/*
D
Dave Chinner 已提交
970
 * xfs_buf_item_relse() is called when the buf log item is no longer needed.
L
Linus Torvalds 已提交
971 972 973 974 975
 */
void
xfs_buf_item_relse(
	xfs_buf_t	*bp)
{
C
Carlos Maiolino 已提交
976
	struct xfs_buf_log_item	*bip = bp->b_log_item;
L
Linus Torvalds 已提交
977

C
Christoph Hellwig 已提交
978
	trace_xfs_buf_item_relse(bp, _RET_IP_);
979
	ASSERT(!test_bit(XFS_LI_IN_AIL, &bip->bli_item.li_flags));
C
Christoph Hellwig 已提交
980

981 982
	if (atomic_read(&bip->bli_refcount))
		return;
C
Carlos Maiolino 已提交
983
	bp->b_log_item = NULL;
984 985
	xfs_buf_rele(bp);
	xfs_buf_item_free(bip);
L
Linus Torvalds 已提交
986 987
}

988
void
989
xfs_buf_item_done(
990 991
	struct xfs_buf		*bp)
{
992 993 994 995 996 997 998 999
	/*
	 * If we are forcibly shutting down, this may well be off the AIL
	 * already. That's because we simulate the log-committed callbacks to
	 * unpin these buffers. Or we may never have put this item on AIL
	 * because of the transaction was aborted forcibly.
	 * xfs_trans_ail_delete() takes care of these.
	 *
	 * Either way, AIL is useless if we're forcing a shutdown.
1000 1001 1002
	 *
	 * Note that log recovery writes might have buffer items that are not on
	 * the AIL even when the file system is not shut down.
1003
	 */
1004
	xfs_trans_ail_delete(&bp->b_log_item->bli_item,
1005
			     (bp->b_flags & _XBF_LOGRECOVERY) ? 0 :
1006 1007
			     SHUTDOWN_CORRUPT_INCORE);
	xfs_buf_item_relse(bp);
D
Dave Chinner 已提交
1008
}