xfs_file.c 43.3 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 "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_mount.h"
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#include "xfs_da_format.h"
#include "xfs_da_btree.h"
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#include "xfs_inode.h"
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#include "xfs_trans.h"
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#include "xfs_inode_item.h"
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#include "xfs_bmap.h"
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#include "xfs_bmap_util.h"
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#include "xfs_error.h"
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#include "xfs_dir2.h"
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#include "xfs_dir2_priv.h"
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#include "xfs_ioctl.h"
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#include "xfs_trace.h"
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#include "xfs_log.h"
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#include "xfs_icache.h"
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#include "xfs_pnfs.h"
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#include "xfs_iomap.h"
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#include <linux/dcache.h>
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#include <linux/falloc.h>
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#include <linux/pagevec.h>
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#include <linux/backing-dev.h>
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static const struct vm_operations_struct xfs_file_vm_ops;
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/*
 * Locking primitives for read and write IO paths to ensure we consistently use
 * and order the inode->i_mutex, ip->i_lock and ip->i_iolock.
 */
static inline void
xfs_rw_ilock(
	struct xfs_inode	*ip,
	int			type)
{
	if (type & XFS_IOLOCK_EXCL)
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		inode_lock(VFS_I(ip));
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	xfs_ilock(ip, type);
}

static inline void
xfs_rw_iunlock(
	struct xfs_inode	*ip,
	int			type)
{
	xfs_iunlock(ip, type);
	if (type & XFS_IOLOCK_EXCL)
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		inode_unlock(VFS_I(ip));
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}

static inline void
xfs_rw_ilock_demote(
	struct xfs_inode	*ip,
	int			type)
{
	xfs_ilock_demote(ip, type);
	if (type & XFS_IOLOCK_EXCL)
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		inode_unlock(VFS_I(ip));
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}

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/*
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 * Clear the specified ranges to zero through either the pagecache or DAX.
 * Holes and unwritten extents will be left as-is as they already are zeroed.
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 */
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int
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xfs_zero_range(
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	struct xfs_inode	*ip,
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	xfs_off_t		pos,
	xfs_off_t		count,
	bool			*did_zero)
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{
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	return iomap_zero_range(VFS_I(ip), pos, count, NULL, &xfs_iomap_ops);
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}

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int
xfs_update_prealloc_flags(
	struct xfs_inode	*ip,
	enum xfs_prealloc_flags	flags)
{
	struct xfs_trans	*tp;
	int			error;

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	error = xfs_trans_alloc(ip->i_mount, &M_RES(ip->i_mount)->tr_writeid,
			0, 0, 0, &tp);
	if (error)
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		return error;

	xfs_ilock(ip, XFS_ILOCK_EXCL);
	xfs_trans_ijoin(tp, ip, XFS_ILOCK_EXCL);

	if (!(flags & XFS_PREALLOC_INVISIBLE)) {
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		VFS_I(ip)->i_mode &= ~S_ISUID;
		if (VFS_I(ip)->i_mode & S_IXGRP)
			VFS_I(ip)->i_mode &= ~S_ISGID;
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		xfs_trans_ichgtime(tp, ip, XFS_ICHGTIME_MOD | XFS_ICHGTIME_CHG);
	}

	if (flags & XFS_PREALLOC_SET)
		ip->i_d.di_flags |= XFS_DIFLAG_PREALLOC;
	if (flags & XFS_PREALLOC_CLEAR)
		ip->i_d.di_flags &= ~XFS_DIFLAG_PREALLOC;

	xfs_trans_log_inode(tp, ip, XFS_ILOG_CORE);
	if (flags & XFS_PREALLOC_SYNC)
		xfs_trans_set_sync(tp);
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	return xfs_trans_commit(tp);
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}

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/*
 * Fsync operations on directories are much simpler than on regular files,
 * as there is no file data to flush, and thus also no need for explicit
 * cache flush operations, and there are no non-transaction metadata updates
 * on directories either.
 */
STATIC int
xfs_dir_fsync(
	struct file		*file,
	loff_t			start,
	loff_t			end,
	int			datasync)
{
	struct xfs_inode	*ip = XFS_I(file->f_mapping->host);
	struct xfs_mount	*mp = ip->i_mount;
	xfs_lsn_t		lsn = 0;

	trace_xfs_dir_fsync(ip);

	xfs_ilock(ip, XFS_ILOCK_SHARED);
	if (xfs_ipincount(ip))
		lsn = ip->i_itemp->ili_last_lsn;
	xfs_iunlock(ip, XFS_ILOCK_SHARED);

	if (!lsn)
		return 0;
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	return _xfs_log_force_lsn(mp, lsn, XFS_LOG_SYNC, NULL);
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}

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STATIC int
xfs_file_fsync(
	struct file		*file,
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	loff_t			start,
	loff_t			end,
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	int			datasync)
{
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	struct inode		*inode = file->f_mapping->host;
	struct xfs_inode	*ip = XFS_I(inode);
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	struct xfs_mount	*mp = ip->i_mount;
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	int			error = 0;
	int			log_flushed = 0;
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	xfs_lsn_t		lsn = 0;
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	trace_xfs_file_fsync(ip);
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	error = filemap_write_and_wait_range(inode->i_mapping, start, end);
	if (error)
		return error;

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	if (XFS_FORCED_SHUTDOWN(mp))
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		return -EIO;
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	xfs_iflags_clear(ip, XFS_ITRUNCATED);

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	if (mp->m_flags & XFS_MOUNT_BARRIER) {
		/*
		 * If we have an RT and/or log subvolume we need to make sure
		 * to flush the write cache the device used for file data
		 * first.  This is to ensure newly written file data make
		 * it to disk before logging the new inode size in case of
		 * an extending write.
		 */
		if (XFS_IS_REALTIME_INODE(ip))
			xfs_blkdev_issue_flush(mp->m_rtdev_targp);
		else if (mp->m_logdev_targp != mp->m_ddev_targp)
			xfs_blkdev_issue_flush(mp->m_ddev_targp);
	}

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	/*
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	 * All metadata updates are logged, which means that we just have to
	 * flush the log up to the latest LSN that touched the inode. If we have
	 * concurrent fsync/fdatasync() calls, we need them to all block on the
	 * log force before we clear the ili_fsync_fields field. This ensures
	 * that we don't get a racing sync operation that does not wait for the
	 * metadata to hit the journal before returning. If we race with
	 * clearing the ili_fsync_fields, then all that will happen is the log
	 * force will do nothing as the lsn will already be on disk. We can't
	 * race with setting ili_fsync_fields because that is done under
	 * XFS_ILOCK_EXCL, and that can't happen because we hold the lock shared
	 * until after the ili_fsync_fields is cleared.
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	 */
	xfs_ilock(ip, XFS_ILOCK_SHARED);
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	if (xfs_ipincount(ip)) {
		if (!datasync ||
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		    (ip->i_itemp->ili_fsync_fields & ~XFS_ILOG_TIMESTAMP))
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			lsn = ip->i_itemp->ili_last_lsn;
	}
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	if (lsn) {
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		error = _xfs_log_force_lsn(mp, lsn, XFS_LOG_SYNC, &log_flushed);
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		ip->i_itemp->ili_fsync_fields = 0;
	}
	xfs_iunlock(ip, XFS_ILOCK_SHARED);
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	/*
	 * If we only have a single device, and the log force about was
	 * a no-op we might have to flush the data device cache here.
	 * This can only happen for fdatasync/O_DSYNC if we were overwriting
	 * an already allocated file and thus do not have any metadata to
	 * commit.
	 */
	if ((mp->m_flags & XFS_MOUNT_BARRIER) &&
	    mp->m_logdev_targp == mp->m_ddev_targp &&
	    !XFS_IS_REALTIME_INODE(ip) &&
	    !log_flushed)
		xfs_blkdev_issue_flush(mp->m_ddev_targp);
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	return error;
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}

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STATIC ssize_t
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xfs_file_dio_aio_read(
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	struct kiocb		*iocb,
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	struct iov_iter		*to)
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{
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	struct address_space	*mapping = iocb->ki_filp->f_mapping;
	struct inode		*inode = mapping->host;
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	struct xfs_inode	*ip = XFS_I(inode);
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	loff_t			isize = i_size_read(inode);
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	size_t			count = iov_iter_count(to);
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	struct iov_iter		data;
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	struct xfs_buftarg	*target;
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	ssize_t			ret = 0;

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	trace_xfs_file_direct_read(ip, count, iocb->ki_pos);
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	if (!count)
		return 0; /* skip atime */
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	if (XFS_IS_REALTIME_INODE(ip))
		target = ip->i_mount->m_rtdev_targp;
	else
		target = ip->i_mount->m_ddev_targp;
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	/* DIO must be aligned to device logical sector size */
	if ((iocb->ki_pos | count) & target->bt_logical_sectormask) {
		if (iocb->ki_pos == isize)
			return 0;
		return -EINVAL;
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	}

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	/*
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	 * Locking is a bit tricky here. If we take an exclusive lock for direct
	 * IO, we effectively serialise all new concurrent read IO to this file
	 * and block it behind IO that is currently in progress because IO in
	 * progress holds the IO lock shared. We only need to hold the lock
	 * exclusive to blow away the page cache, so only take lock exclusively
	 * if the page cache needs invalidation. This allows the normal direct
	 * IO case of no page cache pages to proceeed concurrently without
	 * serialisation.
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	 */
	xfs_rw_ilock(ip, XFS_IOLOCK_SHARED);
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	if (mapping->nrpages) {
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		xfs_rw_iunlock(ip, XFS_IOLOCK_SHARED);
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		xfs_rw_ilock(ip, XFS_IOLOCK_EXCL);

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		/*
		 * The generic dio code only flushes the range of the particular
		 * I/O. Because we take an exclusive lock here, this whole
		 * sequence is considerably more expensive for us. This has a
		 * noticeable performance impact for any file with cached pages,
		 * even when outside of the range of the particular I/O.
		 *
		 * Hence, amortize the cost of the lock against a full file
		 * flush and reduce the chances of repeated iolock cycles going
		 * forward.
		 */
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		if (mapping->nrpages) {
			ret = filemap_write_and_wait(mapping);
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			if (ret) {
				xfs_rw_iunlock(ip, XFS_IOLOCK_EXCL);
				return ret;
			}
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			/*
			 * Invalidate whole pages. This can return an error if
			 * we fail to invalidate a page, but this should never
			 * happen on XFS. Warn if it does fail.
			 */
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			ret = invalidate_inode_pages2(mapping);
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			WARN_ON_ONCE(ret);
			ret = 0;
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		}
314
		xfs_rw_ilock_demote(ip, XFS_IOLOCK_EXCL);
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	}
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317
	data = *to;
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	ret = __blockdev_direct_IO(iocb, inode, target->bt_bdev, &data,
			xfs_get_blocks_direct, NULL, NULL, 0);
	if (ret > 0) {
		iocb->ki_pos += ret;
		iov_iter_advance(to, ret);
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	}
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	xfs_rw_iunlock(ip, XFS_IOLOCK_SHARED);
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	file_accessed(iocb->ki_filp);
	return ret;
}

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static noinline ssize_t
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xfs_file_dax_read(
	struct kiocb		*iocb,
	struct iov_iter		*to)
{
	struct address_space	*mapping = iocb->ki_filp->f_mapping;
	struct inode		*inode = mapping->host;
	struct xfs_inode	*ip = XFS_I(inode);
	struct iov_iter		data = *to;
	size_t			count = iov_iter_count(to);
	ssize_t			ret = 0;

	trace_xfs_file_dax_read(ip, count, iocb->ki_pos);

	if (!count)
		return 0; /* skip atime */

	xfs_rw_ilock(ip, XFS_IOLOCK_SHARED);
	ret = dax_do_io(iocb, inode, &data, xfs_get_blocks_direct, NULL, 0);
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	if (ret > 0) {
		iocb->ki_pos += ret;
		iov_iter_advance(to, ret);
	}
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	xfs_rw_iunlock(ip, XFS_IOLOCK_SHARED);

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	file_accessed(iocb->ki_filp);
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	return ret;
}

STATIC ssize_t
xfs_file_buffered_aio_read(
	struct kiocb		*iocb,
	struct iov_iter		*to)
{
	struct xfs_inode	*ip = XFS_I(file_inode(iocb->ki_filp));
	ssize_t			ret;

	trace_xfs_file_buffered_read(ip, iov_iter_count(to), iocb->ki_pos);
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369
	xfs_rw_ilock(ip, XFS_IOLOCK_SHARED);
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	ret = generic_file_read_iter(iocb, to);
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	xfs_rw_iunlock(ip, XFS_IOLOCK_SHARED);

	return ret;
}

STATIC ssize_t
xfs_file_read_iter(
	struct kiocb		*iocb,
	struct iov_iter		*to)
{
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	struct inode		*inode = file_inode(iocb->ki_filp);
	struct xfs_mount	*mp = XFS_I(inode)->i_mount;
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	ssize_t			ret = 0;

	XFS_STATS_INC(mp, xs_read_calls);

	if (XFS_FORCED_SHUTDOWN(mp))
		return -EIO;

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	if (IS_DAX(inode))
		ret = xfs_file_dax_read(iocb, to);
	else if (iocb->ki_flags & IOCB_DIRECT)
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		ret = xfs_file_dio_aio_read(iocb, to);
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	else
395
		ret = xfs_file_buffered_aio_read(iocb, to);
396 397

	if (ret > 0)
398
		XFS_STATS_ADD(mp, xs_read_bytes, ret);
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	return ret;
}

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STATIC ssize_t
xfs_file_splice_read(
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	struct file		*infilp,
	loff_t			*ppos,
	struct pipe_inode_info	*pipe,
	size_t			count,
408
	unsigned int		flags)
409
{
410
	struct xfs_inode	*ip = XFS_I(infilp->f_mapping->host);
411 412
	ssize_t			ret;

413
	XFS_STATS_INC(ip->i_mount, xs_read_calls);
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415 416 417
	if (XFS_FORCED_SHUTDOWN(ip->i_mount))
		return -EIO;

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	trace_xfs_file_splice_read(ip, count, *ppos);
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420 421 422 423 424 425 426 427 428 429 430
	/*
	 * DAX inodes cannot ues the page cache for splice, so we have to push
	 * them through the VFS IO path. This means it goes through
	 * ->read_iter, which for us takes the XFS_IOLOCK_SHARED. Hence we
	 * cannot lock the splice operation at this level for DAX inodes.
	 */
	if (IS_DAX(VFS_I(ip))) {
		ret = default_file_splice_read(infilp, ppos, pipe, count,
					       flags);
		goto out;
	}
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432 433
	xfs_rw_ilock(ip, XFS_IOLOCK_SHARED);
	ret = generic_file_splice_read(infilp, ppos, pipe, count, flags);
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	xfs_rw_iunlock(ip, XFS_IOLOCK_SHARED);
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out:
	if (ret > 0)
		XFS_STATS_ADD(ip->i_mount, xs_read_bytes, ret);
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	return ret;
}

/*
442 443 444 445 446 447 448 449 450
 * Zero any on disk space between the current EOF and the new, larger EOF.
 *
 * This handles the normal case of zeroing the remainder of the last block in
 * the file and the unusual case of zeroing blocks out beyond the size of the
 * file.  This second case only happens with fixed size extents and when the
 * system crashes before the inode size was updated but after blocks were
 * allocated.
 *
 * Expects the iolock to be held exclusive, and will take the ilock internally.
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 */
int					/* error (positive) */
xfs_zero_eof(
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	struct xfs_inode	*ip,
	xfs_off_t		offset,		/* starting I/O offset */
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	xfs_fsize_t		isize,		/* current inode size */
	bool			*did_zeroing)
458
{
459
	ASSERT(xfs_isilocked(ip, XFS_IOLOCK_EXCL));
460 461
	ASSERT(offset > isize);

462
	trace_xfs_zero_eof(ip, isize, offset - isize);
463
	return xfs_zero_range(ip, isize, offset - isize, did_zeroing);
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}

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/*
 * Common pre-write limit and setup checks.
 *
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 * Called with the iolocked held either shared and exclusive according to
 * @iolock, and returns with it held.  Might upgrade the iolock to exclusive
 * if called for a direct write beyond i_size.
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 */
STATIC ssize_t
xfs_file_aio_write_checks(
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	struct kiocb		*iocb,
	struct iov_iter		*from,
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	int			*iolock)
{
479
	struct file		*file = iocb->ki_filp;
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	struct inode		*inode = file->f_mapping->host;
	struct xfs_inode	*ip = XFS_I(inode);
482
	ssize_t			error = 0;
483
	size_t			count = iov_iter_count(from);
484
	bool			drained_dio = false;
485

486
restart:
487 488
	error = generic_write_checks(iocb, from);
	if (error <= 0)
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		return error;

491
	error = xfs_break_layouts(inode, iolock, true);
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	if (error)
		return error;

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	/* For changing security info in file_remove_privs() we need i_mutex */
	if (*iolock == XFS_IOLOCK_SHARED && !IS_NOSEC(inode)) {
		xfs_rw_iunlock(ip, *iolock);
		*iolock = XFS_IOLOCK_EXCL;
		xfs_rw_ilock(ip, *iolock);
		goto restart;
	}
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	/*
	 * If the offset is beyond the size of the file, we need to zero any
	 * blocks that fall between the existing EOF and the start of this
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	 * write.  If zeroing is needed and we are currently holding the
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	 * iolock shared, we need to update it to exclusive which implies
	 * having to redo all checks before.
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	 *
	 * We need to serialise against EOF updates that occur in IO
	 * completions here. We want to make sure that nobody is changing the
	 * size while we do this check until we have placed an IO barrier (i.e.
	 * hold the XFS_IOLOCK_EXCL) that prevents new IO from being dispatched.
	 * The spinlock effectively forms a memory barrier once we have the
	 * XFS_IOLOCK_EXCL so we are guaranteed to see the latest EOF value
	 * and hence be able to correctly determine if we need to run zeroing.
516
	 */
517
	spin_lock(&ip->i_flags_lock);
518
	if (iocb->ki_pos > i_size_read(inode)) {
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		bool	zero = false;

521
		spin_unlock(&ip->i_flags_lock);
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		if (!drained_dio) {
			if (*iolock == XFS_IOLOCK_SHARED) {
				xfs_rw_iunlock(ip, *iolock);
				*iolock = XFS_IOLOCK_EXCL;
				xfs_rw_ilock(ip, *iolock);
				iov_iter_reexpand(from, count);
			}
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			/*
			 * We now have an IO submission barrier in place, but
			 * AIO can do EOF updates during IO completion and hence
			 * we now need to wait for all of them to drain. Non-AIO
			 * DIO will have drained before we are given the
			 * XFS_IOLOCK_EXCL, and so for most cases this wait is a
			 * no-op.
			 */
			inode_dio_wait(inode);
538
			drained_dio = true;
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			goto restart;
		}
541
		error = xfs_zero_eof(ip, iocb->ki_pos, i_size_read(inode), &zero);
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		if (error)
			return error;
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	} else
		spin_unlock(&ip->i_flags_lock);
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	/*
	 * Updating the timestamps will grab the ilock again from
	 * xfs_fs_dirty_inode, so we have to call it after dropping the
	 * lock above.  Eventually we should look into a way to avoid
	 * the pointless lock roundtrip.
	 */
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	if (likely(!(file->f_mode & FMODE_NOCMTIME))) {
		error = file_update_time(file);
		if (error)
			return error;
	}
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	/*
	 * If we're writing the file then make sure to clear the setuid and
	 * setgid bits if the process is not being run by root.  This keeps
	 * people from modifying setuid and setgid binaries.
	 */
564 565 566
	if (!IS_NOSEC(inode))
		return file_remove_privs(file);
	return 0;
567 568
}

569 570 571 572
/*
 * xfs_file_dio_aio_write - handle direct IO writes
 *
 * Lock the inode appropriately to prepare for and issue a direct IO write.
573
 * By separating it from the buffered write path we remove all the tricky to
574 575
 * follow locking changes and looping.
 *
576 577 578 579 580 581 582 583 584 585 586 587 588
 * If there are cached pages or we're extending the file, we need IOLOCK_EXCL
 * until we're sure the bytes at the new EOF have been zeroed and/or the cached
 * pages are flushed out.
 *
 * In most cases the direct IO writes will be done holding IOLOCK_SHARED
 * allowing them to be done in parallel with reads and other direct IO writes.
 * However, if the IO is not aligned to filesystem blocks, the direct IO layer
 * needs to do sub-block zeroing and that requires serialisation against other
 * direct IOs to the same block. In this case we need to serialise the
 * submission of the unaligned IOs so that we don't get racing block zeroing in
 * the dio layer.  To avoid the problem with aio, we also need to wait for
 * outstanding IOs to complete so that unwritten extent conversion is completed
 * before we try to map the overlapping block. This is currently implemented by
C
Christoph Hellwig 已提交
589
 * hitting it with a big hammer (i.e. inode_dio_wait()).
590
 *
591 592 593 594 595 596
 * Returns with locks held indicated by @iolock and errors indicated by
 * negative return values.
 */
STATIC ssize_t
xfs_file_dio_aio_write(
	struct kiocb		*iocb,
597
	struct iov_iter		*from)
598 599 600 601 602 603 604
{
	struct file		*file = iocb->ki_filp;
	struct address_space	*mapping = file->f_mapping;
	struct inode		*inode = mapping->host;
	struct xfs_inode	*ip = XFS_I(inode);
	struct xfs_mount	*mp = ip->i_mount;
	ssize_t			ret = 0;
605
	int			unaligned_io = 0;
606
	int			iolock;
607
	size_t			count = iov_iter_count(from);
608 609
	loff_t			end;
	struct iov_iter		data;
610 611 612
	struct xfs_buftarg	*target = XFS_IS_REALTIME_INODE(ip) ?
					mp->m_rtdev_targp : mp->m_ddev_targp;

613
	/* DIO must be aligned to device logical sector size */
614
	if ((iocb->ki_pos | count) & target->bt_logical_sectormask)
E
Eric Sandeen 已提交
615
		return -EINVAL;
616

617
	/* "unaligned" here means not aligned to a filesystem block */
618 619
	if ((iocb->ki_pos & mp->m_blockmask) ||
	    ((iocb->ki_pos + count) & mp->m_blockmask))
620 621
		unaligned_io = 1;

622 623 624 625 626 627 628 629
	/*
	 * We don't need to take an exclusive lock unless there page cache needs
	 * to be invalidated or unaligned IO is being executed. We don't need to
	 * consider the EOF extension case here because
	 * xfs_file_aio_write_checks() will relock the inode as necessary for
	 * EOF zeroing cases and fill out the new inode size as appropriate.
	 */
	if (unaligned_io || mapping->nrpages)
630
		iolock = XFS_IOLOCK_EXCL;
631
	else
632 633
		iolock = XFS_IOLOCK_SHARED;
	xfs_rw_ilock(ip, iolock);
634 635 636 637 638 639

	/*
	 * Recheck if there are cached pages that need invalidate after we got
	 * the iolock to protect against other threads adding new pages while
	 * we were waiting for the iolock.
	 */
640 641 642 643
	if (mapping->nrpages && iolock == XFS_IOLOCK_SHARED) {
		xfs_rw_iunlock(ip, iolock);
		iolock = XFS_IOLOCK_EXCL;
		xfs_rw_ilock(ip, iolock);
644
	}
645

646
	ret = xfs_file_aio_write_checks(iocb, from, &iolock);
647
	if (ret)
648
		goto out;
649
	count = iov_iter_count(from);
650
	end = iocb->ki_pos + count - 1;
651

652
	/*
653
	 * See xfs_file_dio_aio_read() for why we do a full-file flush here.
654
	 */
655
	if (mapping->nrpages) {
656
		ret = filemap_write_and_wait(VFS_I(ip)->i_mapping);
657
		if (ret)
658
			goto out;
659
		/*
660 661 662
		 * Invalidate whole pages. This can return an error if we fail
		 * to invalidate a page, but this should never happen on XFS.
		 * Warn if it does fail.
663
		 */
664
		ret = invalidate_inode_pages2(VFS_I(ip)->i_mapping);
665 666
		WARN_ON_ONCE(ret);
		ret = 0;
667 668
	}

669 670 671 672 673
	/*
	 * If we are doing unaligned IO, wait for all other IO to drain,
	 * otherwise demote the lock if we had to flush cached pages
	 */
	if (unaligned_io)
C
Christoph Hellwig 已提交
674
		inode_dio_wait(inode);
675
	else if (iolock == XFS_IOLOCK_EXCL) {
676
		xfs_rw_ilock_demote(ip, XFS_IOLOCK_EXCL);
677
		iolock = XFS_IOLOCK_SHARED;
678 679
	}

C
Christoph Hellwig 已提交
680
	trace_xfs_file_direct_write(ip, count, iocb->ki_pos);
681

682
	data = *from;
683 684 685
	ret = __blockdev_direct_IO(iocb, inode, target->bt_bdev, &data,
			xfs_get_blocks_direct, xfs_end_io_direct_write,
			NULL, DIO_ASYNC_EXTEND);
686 687 688 689

	/* see generic_file_direct_write() for why this is necessary */
	if (mapping->nrpages) {
		invalidate_inode_pages2_range(mapping,
690
					      iocb->ki_pos >> PAGE_SHIFT,
691
					      end >> PAGE_SHIFT);
692 693 694
	}

	if (ret > 0) {
695
		iocb->ki_pos += ret;
696 697
		iov_iter_advance(from, ret);
	}
698 699 700
out:
	xfs_rw_iunlock(ip, iolock);

701
	/*
702 703
	 * No fallback to buffered IO on errors for XFS, direct IO will either
	 * complete fully or fail.
704
	 */
705 706 707 708
	ASSERT(ret < 0 || ret == count);
	return ret;
}

709
static noinline ssize_t
710 711 712 713 714 715 716 717 718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743
xfs_file_dax_write(
	struct kiocb		*iocb,
	struct iov_iter		*from)
{
	struct address_space	*mapping = iocb->ki_filp->f_mapping;
	struct inode		*inode = mapping->host;
	struct xfs_inode	*ip = XFS_I(inode);
	struct xfs_mount	*mp = ip->i_mount;
	ssize_t			ret = 0;
	int			unaligned_io = 0;
	int			iolock;
	struct iov_iter		data;

	/* "unaligned" here means not aligned to a filesystem block */
	if ((iocb->ki_pos & mp->m_blockmask) ||
	    ((iocb->ki_pos + iov_iter_count(from)) & mp->m_blockmask)) {
		unaligned_io = 1;
		iolock = XFS_IOLOCK_EXCL;
	} else if (mapping->nrpages) {
		iolock = XFS_IOLOCK_EXCL;
	} else {
		iolock = XFS_IOLOCK_SHARED;
	}
	xfs_rw_ilock(ip, iolock);

	ret = xfs_file_aio_write_checks(iocb, from, &iolock);
	if (ret)
		goto out;

	/*
	 * Yes, even DAX files can have page cache attached to them:  A zeroed
	 * page is inserted into the pagecache when we have to serve a write
	 * fault on a hole.  It should never be dirtied and can simply be
	 * dropped from the pagecache once we get real data for the page.
744
	 */
745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762 763 764 765
	if (mapping->nrpages) {
		ret = invalidate_inode_pages2(mapping);
		WARN_ON_ONCE(ret);
	}

	if (iolock == XFS_IOLOCK_EXCL && !unaligned_io) {
		xfs_rw_ilock_demote(ip, XFS_IOLOCK_EXCL);
		iolock = XFS_IOLOCK_SHARED;
	}

	trace_xfs_file_dax_write(ip, iov_iter_count(from), iocb->ki_pos);

	data = *from;
	ret = dax_do_io(iocb, inode, &data, xfs_get_blocks_direct,
			xfs_end_io_direct_write, 0);
	if (ret > 0) {
		iocb->ki_pos += ret;
		iov_iter_advance(from, ret);
	}
out:
	xfs_rw_iunlock(ip, iolock);
766 767 768
	return ret;
}

769
STATIC ssize_t
770
xfs_file_buffered_aio_write(
771
	struct kiocb		*iocb,
772
	struct iov_iter		*from)
773 774 775 776
{
	struct file		*file = iocb->ki_filp;
	struct address_space	*mapping = file->f_mapping;
	struct inode		*inode = mapping->host;
777
	struct xfs_inode	*ip = XFS_I(inode);
778 779
	ssize_t			ret;
	int			enospc = 0;
780
	int			iolock = XFS_IOLOCK_EXCL;
781

782
	xfs_rw_ilock(ip, iolock);
783

784
	ret = xfs_file_aio_write_checks(iocb, from, &iolock);
785
	if (ret)
786
		goto out;
787 788

	/* We can write back this queue in page reclaim */
789
	current->backing_dev_info = inode_to_bdi(inode);
790 791

write_retry:
C
Christoph Hellwig 已提交
792
	trace_xfs_file_buffered_write(ip, iov_iter_count(from), iocb->ki_pos);
793
	ret = iomap_file_buffered_write(iocb, from, &xfs_iomap_ops);
794
	if (likely(ret >= 0))
795
		iocb->ki_pos += ret;
796

797
	/*
798 799 800 801 802 803 804
	 * If we hit a space limit, try to free up some lingering preallocated
	 * space before returning an error. In the case of ENOSPC, first try to
	 * write back all dirty inodes to free up some of the excess reserved
	 * metadata space. This reduces the chances that the eofblocks scan
	 * waits on dirty mappings. Since xfs_flush_inodes() is serialized, this
	 * also behaves as a filter to prevent too many eofblocks scans from
	 * running at the same time.
805
	 */
806 807 808 809 810 811 812
	if (ret == -EDQUOT && !enospc) {
		enospc = xfs_inode_free_quota_eofblocks(ip);
		if (enospc)
			goto write_retry;
	} else if (ret == -ENOSPC && !enospc) {
		struct xfs_eofblocks eofb = {0};

813
		enospc = 1;
D
Dave Chinner 已提交
814
		xfs_flush_inodes(ip->i_mount);
815 816 817
		eofb.eof_scan_owner = ip->i_ino; /* for locking */
		eofb.eof_flags = XFS_EOF_FLAGS_SYNC;
		xfs_icache_free_eofblocks(ip->i_mount, &eofb);
D
Dave Chinner 已提交
818
		goto write_retry;
819
	}
820

821
	current->backing_dev_info = NULL;
822 823
out:
	xfs_rw_iunlock(ip, iolock);
824 825 826 827
	return ret;
}

STATIC ssize_t
A
Al Viro 已提交
828
xfs_file_write_iter(
829
	struct kiocb		*iocb,
A
Al Viro 已提交
830
	struct iov_iter		*from)
831 832 833 834 835 836
{
	struct file		*file = iocb->ki_filp;
	struct address_space	*mapping = file->f_mapping;
	struct inode		*inode = mapping->host;
	struct xfs_inode	*ip = XFS_I(inode);
	ssize_t			ret;
A
Al Viro 已提交
837
	size_t			ocount = iov_iter_count(from);
838

839
	XFS_STATS_INC(ip->i_mount, xs_write_calls);
840 841 842 843

	if (ocount == 0)
		return 0;

A
Al Viro 已提交
844 845
	if (XFS_FORCED_SHUTDOWN(ip->i_mount))
		return -EIO;
846

847 848 849
	if (IS_DAX(inode))
		ret = xfs_file_dax_write(iocb, from);
	else if (iocb->ki_flags & IOCB_DIRECT)
A
Al Viro 已提交
850
		ret = xfs_file_dio_aio_write(iocb, from);
851
	else
A
Al Viro 已提交
852
		ret = xfs_file_buffered_aio_write(iocb, from);
853

854
	if (ret > 0) {
855
		XFS_STATS_ADD(ip->i_mount, xs_write_bytes, ret);
856

857
		/* Handle various SYNC-type writes */
858
		ret = generic_write_sync(iocb, ret);
859
	}
860
	return ret;
861 862
}

863 864 865 866 867
#define	XFS_FALLOC_FL_SUPPORTED						\
		(FALLOC_FL_KEEP_SIZE | FALLOC_FL_PUNCH_HOLE |		\
		 FALLOC_FL_COLLAPSE_RANGE | FALLOC_FL_ZERO_RANGE |	\
		 FALLOC_FL_INSERT_RANGE)

868 869
STATIC long
xfs_file_fallocate(
870 871 872 873
	struct file		*file,
	int			mode,
	loff_t			offset,
	loff_t			len)
874
{
875 876 877
	struct inode		*inode = file_inode(file);
	struct xfs_inode	*ip = XFS_I(inode);
	long			error;
878
	enum xfs_prealloc_flags	flags = 0;
879
	uint			iolock = XFS_IOLOCK_EXCL;
880
	loff_t			new_size = 0;
881
	bool			do_file_insert = 0;
882

883 884
	if (!S_ISREG(inode->i_mode))
		return -EINVAL;
885
	if (mode & ~XFS_FALLOC_FL_SUPPORTED)
886 887
		return -EOPNOTSUPP;

888
	xfs_ilock(ip, iolock);
889
	error = xfs_break_layouts(inode, &iolock, false);
890 891 892
	if (error)
		goto out_unlock;

893 894 895
	xfs_ilock(ip, XFS_MMAPLOCK_EXCL);
	iolock |= XFS_MMAPLOCK_EXCL;

896 897 898 899
	if (mode & FALLOC_FL_PUNCH_HOLE) {
		error = xfs_free_file_space(ip, offset, len);
		if (error)
			goto out_unlock;
900 901 902 903
	} else if (mode & FALLOC_FL_COLLAPSE_RANGE) {
		unsigned blksize_mask = (1 << inode->i_blkbits) - 1;

		if (offset & blksize_mask || len & blksize_mask) {
D
Dave Chinner 已提交
904
			error = -EINVAL;
905 906 907
			goto out_unlock;
		}

908 909 910 911 912
		/*
		 * There is no need to overlap collapse range with EOF,
		 * in which case it is effectively a truncate operation
		 */
		if (offset + len >= i_size_read(inode)) {
D
Dave Chinner 已提交
913
			error = -EINVAL;
914 915 916
			goto out_unlock;
		}

917 918 919 920 921
		new_size = i_size_read(inode) - len;

		error = xfs_collapse_file_space(ip, offset, len);
		if (error)
			goto out_unlock;
922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942
	} else if (mode & FALLOC_FL_INSERT_RANGE) {
		unsigned blksize_mask = (1 << inode->i_blkbits) - 1;

		new_size = i_size_read(inode) + len;
		if (offset & blksize_mask || len & blksize_mask) {
			error = -EINVAL;
			goto out_unlock;
		}

		/* check the new inode size does not wrap through zero */
		if (new_size > inode->i_sb->s_maxbytes) {
			error = -EFBIG;
			goto out_unlock;
		}

		/* Offset should be less than i_size */
		if (offset >= i_size_read(inode)) {
			error = -EINVAL;
			goto out_unlock;
		}
		do_file_insert = 1;
943
	} else {
944 945
		flags |= XFS_PREALLOC_SET;

946 947 948
		if (!(mode & FALLOC_FL_KEEP_SIZE) &&
		    offset + len > i_size_read(inode)) {
			new_size = offset + len;
D
Dave Chinner 已提交
949
			error = inode_newsize_ok(inode, new_size);
950 951 952
			if (error)
				goto out_unlock;
		}
953

954 955 956 957 958
		if (mode & FALLOC_FL_ZERO_RANGE)
			error = xfs_zero_file_space(ip, offset, len);
		else
			error = xfs_alloc_file_space(ip, offset, len,
						     XFS_BMAPI_PREALLOC);
959 960 961 962
		if (error)
			goto out_unlock;
	}

963
	if (file->f_flags & O_DSYNC)
964 965 966
		flags |= XFS_PREALLOC_SYNC;

	error = xfs_update_prealloc_flags(ip, flags);
967 968 969 970 971 972 973 974 975
	if (error)
		goto out_unlock;

	/* Change file size if needed */
	if (new_size) {
		struct iattr iattr;

		iattr.ia_valid = ATTR_SIZE;
		iattr.ia_size = new_size;
976
		error = xfs_setattr_size(ip, &iattr);
977 978
		if (error)
			goto out_unlock;
979 980
	}

981 982 983 984 985 986 987 988 989
	/*
	 * Perform hole insertion now that the file size has been
	 * updated so that if we crash during the operation we don't
	 * leave shifted extents past EOF and hence losing access to
	 * the data that is contained within them.
	 */
	if (do_file_insert)
		error = xfs_insert_file_space(ip, offset, len);

990
out_unlock:
991
	xfs_iunlock(ip, iolock);
D
Dave Chinner 已提交
992
	return error;
993 994 995
}


L
Linus Torvalds 已提交
996
STATIC int
997
xfs_file_open(
L
Linus Torvalds 已提交
998
	struct inode	*inode,
999
	struct file	*file)
L
Linus Torvalds 已提交
1000
{
1001
	if (!(file->f_flags & O_LARGEFILE) && i_size_read(inode) > MAX_NON_LFS)
L
Linus Torvalds 已提交
1002
		return -EFBIG;
1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024
	if (XFS_FORCED_SHUTDOWN(XFS_M(inode->i_sb)))
		return -EIO;
	return 0;
}

STATIC int
xfs_dir_open(
	struct inode	*inode,
	struct file	*file)
{
	struct xfs_inode *ip = XFS_I(inode);
	int		mode;
	int		error;

	error = xfs_file_open(inode, file);
	if (error)
		return error;

	/*
	 * If there are any blocks, read-ahead block 0 as we're almost
	 * certain to have the next operation be a read there.
	 */
1025
	mode = xfs_ilock_data_map_shared(ip);
1026
	if (ip->i_d.di_nextents > 0)
1027
		xfs_dir3_data_readahead(ip, 0, -1);
1028 1029
	xfs_iunlock(ip, mode);
	return 0;
L
Linus Torvalds 已提交
1030 1031 1032
}

STATIC int
1033
xfs_file_release(
L
Linus Torvalds 已提交
1034 1035 1036
	struct inode	*inode,
	struct file	*filp)
{
D
Dave Chinner 已提交
1037
	return xfs_release(XFS_I(inode));
L
Linus Torvalds 已提交
1038 1039 1040
}

STATIC int
1041
xfs_file_readdir(
A
Al Viro 已提交
1042 1043
	struct file	*file,
	struct dir_context *ctx)
L
Linus Torvalds 已提交
1044
{
A
Al Viro 已提交
1045
	struct inode	*inode = file_inode(file);
1046
	xfs_inode_t	*ip = XFS_I(inode);
C
Christoph Hellwig 已提交
1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058
	size_t		bufsize;

	/*
	 * The Linux API doesn't pass down the total size of the buffer
	 * we read into down to the filesystem.  With the filldir concept
	 * it's not needed for correct information, but the XFS dir2 leaf
	 * code wants an estimate of the buffer size to calculate it's
	 * readahead window and size the buffers used for mapping to
	 * physical blocks.
	 *
	 * Try to give it an estimate that's good enough, maybe at some
	 * point we can change the ->readdir prototype to include the
E
Eric Sandeen 已提交
1059
	 * buffer size.  For now we use the current glibc buffer size.
C
Christoph Hellwig 已提交
1060
	 */
E
Eric Sandeen 已提交
1061
	bufsize = (size_t)min_t(loff_t, 32768, ip->i_d.di_size);
C
Christoph Hellwig 已提交
1062

1063
	return xfs_readdir(ip, ctx, bufsize);
L
Linus Torvalds 已提交
1064 1065
}

1066 1067
/*
 * This type is designed to indicate the type of offset we would like
1068
 * to search from page cache for xfs_seek_hole_data().
1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124
 */
enum {
	HOLE_OFF = 0,
	DATA_OFF,
};

/*
 * Lookup the desired type of offset from the given page.
 *
 * On success, return true and the offset argument will point to the
 * start of the region that was found.  Otherwise this function will
 * return false and keep the offset argument unchanged.
 */
STATIC bool
xfs_lookup_buffer_offset(
	struct page		*page,
	loff_t			*offset,
	unsigned int		type)
{
	loff_t			lastoff = page_offset(page);
	bool			found = false;
	struct buffer_head	*bh, *head;

	bh = head = page_buffers(page);
	do {
		/*
		 * Unwritten extents that have data in the page
		 * cache covering them can be identified by the
		 * BH_Unwritten state flag.  Pages with multiple
		 * buffers might have a mix of holes, data and
		 * unwritten extents - any buffer with valid
		 * data in it should have BH_Uptodate flag set
		 * on it.
		 */
		if (buffer_unwritten(bh) ||
		    buffer_uptodate(bh)) {
			if (type == DATA_OFF)
				found = true;
		} else {
			if (type == HOLE_OFF)
				found = true;
		}

		if (found) {
			*offset = lastoff;
			break;
		}
		lastoff += bh->b_size;
	} while ((bh = bh->b_this_page) != head);

	return found;
}

/*
 * This routine is called to find out and return a data or hole offset
 * from the page cache for unwritten extents according to the desired
1125
 * type for xfs_seek_hole_data().
1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153
 *
 * The argument offset is used to tell where we start to search from the
 * page cache.  Map is used to figure out the end points of the range to
 * lookup pages.
 *
 * Return true if the desired type of offset was found, and the argument
 * offset is filled with that address.  Otherwise, return false and keep
 * offset unchanged.
 */
STATIC bool
xfs_find_get_desired_pgoff(
	struct inode		*inode,
	struct xfs_bmbt_irec	*map,
	unsigned int		type,
	loff_t			*offset)
{
	struct xfs_inode	*ip = XFS_I(inode);
	struct xfs_mount	*mp = ip->i_mount;
	struct pagevec		pvec;
	pgoff_t			index;
	pgoff_t			end;
	loff_t			endoff;
	loff_t			startoff = *offset;
	loff_t			lastoff = startoff;
	bool			found = false;

	pagevec_init(&pvec, 0);

1154
	index = startoff >> PAGE_SHIFT;
1155
	endoff = XFS_FSB_TO_B(mp, map->br_startoff + map->br_blockcount);
1156
	end = endoff >> PAGE_SHIFT;
1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283
	do {
		int		want;
		unsigned	nr_pages;
		unsigned int	i;

		want = min_t(pgoff_t, end - index, PAGEVEC_SIZE);
		nr_pages = pagevec_lookup(&pvec, inode->i_mapping, index,
					  want);
		/*
		 * No page mapped into given range.  If we are searching holes
		 * and if this is the first time we got into the loop, it means
		 * that the given offset is landed in a hole, return it.
		 *
		 * If we have already stepped through some block buffers to find
		 * holes but they all contains data.  In this case, the last
		 * offset is already updated and pointed to the end of the last
		 * mapped page, if it does not reach the endpoint to search,
		 * that means there should be a hole between them.
		 */
		if (nr_pages == 0) {
			/* Data search found nothing */
			if (type == DATA_OFF)
				break;

			ASSERT(type == HOLE_OFF);
			if (lastoff == startoff || lastoff < endoff) {
				found = true;
				*offset = lastoff;
			}
			break;
		}

		/*
		 * At lease we found one page.  If this is the first time we
		 * step into the loop, and if the first page index offset is
		 * greater than the given search offset, a hole was found.
		 */
		if (type == HOLE_OFF && lastoff == startoff &&
		    lastoff < page_offset(pvec.pages[0])) {
			found = true;
			break;
		}

		for (i = 0; i < nr_pages; i++) {
			struct page	*page = pvec.pages[i];
			loff_t		b_offset;

			/*
			 * At this point, the page may be truncated or
			 * invalidated (changing page->mapping to NULL),
			 * or even swizzled back from swapper_space to tmpfs
			 * file mapping. However, page->index will not change
			 * because we have a reference on the page.
			 *
			 * Searching done if the page index is out of range.
			 * If the current offset is not reaches the end of
			 * the specified search range, there should be a hole
			 * between them.
			 */
			if (page->index > end) {
				if (type == HOLE_OFF && lastoff < endoff) {
					*offset = lastoff;
					found = true;
				}
				goto out;
			}

			lock_page(page);
			/*
			 * Page truncated or invalidated(page->mapping == NULL).
			 * We can freely skip it and proceed to check the next
			 * page.
			 */
			if (unlikely(page->mapping != inode->i_mapping)) {
				unlock_page(page);
				continue;
			}

			if (!page_has_buffers(page)) {
				unlock_page(page);
				continue;
			}

			found = xfs_lookup_buffer_offset(page, &b_offset, type);
			if (found) {
				/*
				 * The found offset may be less than the start
				 * point to search if this is the first time to
				 * come here.
				 */
				*offset = max_t(loff_t, startoff, b_offset);
				unlock_page(page);
				goto out;
			}

			/*
			 * We either searching data but nothing was found, or
			 * searching hole but found a data buffer.  In either
			 * case, probably the next page contains the desired
			 * things, update the last offset to it so.
			 */
			lastoff = page_offset(page) + PAGE_SIZE;
			unlock_page(page);
		}

		/*
		 * The number of returned pages less than our desired, search
		 * done.  In this case, nothing was found for searching data,
		 * but we found a hole behind the last offset.
		 */
		if (nr_pages < want) {
			if (type == HOLE_OFF) {
				*offset = lastoff;
				found = true;
			}
			break;
		}

		index = pvec.pages[i - 1]->index + 1;
		pagevec_release(&pvec);
	} while (index <= end);

out:
	pagevec_release(&pvec);
	return found;
}

1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294
/*
 * caller must lock inode with xfs_ilock_data_map_shared,
 * can we craft an appropriate ASSERT?
 *
 * end is because the VFS-level lseek interface is defined such that any
 * offset past i_size shall return -ENXIO, but we use this for quota code
 * which does not maintain i_size, and we want to SEEK_DATA past i_size.
 */
loff_t
__xfs_seek_hole_data(
	struct inode		*inode,
1295
	loff_t			start,
1296
	loff_t			end,
1297
	int			whence)
1298 1299 1300 1301 1302
{
	struct xfs_inode	*ip = XFS_I(inode);
	struct xfs_mount	*mp = ip->i_mount;
	loff_t			uninitialized_var(offset);
	xfs_fileoff_t		fsbno;
1303
	xfs_filblks_t		lastbno;
1304 1305
	int			error;

1306
	if (start >= end) {
D
Dave Chinner 已提交
1307
		error = -ENXIO;
1308
		goto out_error;
1309 1310 1311 1312 1313 1314
	}

	/*
	 * Try to read extents from the first block indicated
	 * by fsbno to the end block of the file.
	 */
1315
	fsbno = XFS_B_TO_FSBT(mp, start);
1316
	lastbno = XFS_B_TO_FSB(mp, end);
1317

1318 1319 1320 1321
	for (;;) {
		struct xfs_bmbt_irec	map[2];
		int			nmap = 2;
		unsigned int		i;
1322

1323
		error = xfs_bmapi_read(ip, fsbno, lastbno - fsbno, map, &nmap,
1324 1325
				       XFS_BMAPI_ENTIRE);
		if (error)
1326
			goto out_error;
1327

1328 1329
		/* No extents at given offset, must be beyond EOF */
		if (nmap == 0) {
D
Dave Chinner 已提交
1330
			error = -ENXIO;
1331
			goto out_error;
1332 1333 1334 1335 1336 1337
		}

		for (i = 0; i < nmap; i++) {
			offset = max_t(loff_t, start,
				       XFS_FSB_TO_B(mp, map[i].br_startoff));

1338 1339 1340 1341 1342 1343 1344 1345 1346 1347
			/* Landed in the hole we wanted? */
			if (whence == SEEK_HOLE &&
			    map[i].br_startblock == HOLESTARTBLOCK)
				goto out;

			/* Landed in the data extent we wanted? */
			if (whence == SEEK_DATA &&
			    (map[i].br_startblock == DELAYSTARTBLOCK ||
			     (map[i].br_state == XFS_EXT_NORM &&
			      !isnullstartblock(map[i].br_startblock))))
1348 1349 1350
				goto out;

			/*
1351 1352
			 * Landed in an unwritten extent, try to search
			 * for hole or data from page cache.
1353 1354 1355
			 */
			if (map[i].br_state == XFS_EXT_UNWRITTEN) {
				if (xfs_find_get_desired_pgoff(inode, &map[i],
1356 1357
				      whence == SEEK_HOLE ? HOLE_OFF : DATA_OFF,
							&offset))
1358 1359 1360 1361 1362
					goto out;
			}
		}

		/*
1363 1364
		 * We only received one extent out of the two requested. This
		 * means we've hit EOF and didn't find what we are looking for.
1365
		 */
1366
		if (nmap == 1) {
1367 1368 1369 1370 1371 1372
			/*
			 * If we were looking for a hole, set offset to
			 * the end of the file (i.e., there is an implicit
			 * hole at the end of any file).
		 	 */
			if (whence == SEEK_HOLE) {
1373
				offset = end;
1374 1375 1376 1377 1378 1379
				break;
			}
			/*
			 * If we were looking for data, it's nowhere to be found
			 */
			ASSERT(whence == SEEK_DATA);
D
Dave Chinner 已提交
1380
			error = -ENXIO;
1381
			goto out_error;
1382 1383
		}

1384 1385 1386 1387
		ASSERT(i > 1);

		/*
		 * Nothing was found, proceed to the next round of search
1388
		 * if the next reading offset is not at or beyond EOF.
1389 1390 1391
		 */
		fsbno = map[i - 1].br_startoff + map[i - 1].br_blockcount;
		start = XFS_FSB_TO_B(mp, fsbno);
1392
		if (start >= end) {
1393
			if (whence == SEEK_HOLE) {
1394
				offset = end;
1395 1396 1397
				break;
			}
			ASSERT(whence == SEEK_DATA);
D
Dave Chinner 已提交
1398
			error = -ENXIO;
1399
			goto out_error;
1400
		}
1401 1402
	}

1403 1404
out:
	/*
1405
	 * If at this point we have found the hole we wanted, the returned
1406
	 * offset may be bigger than the file size as it may be aligned to
1407
	 * page boundary for unwritten extents.  We need to deal with this
1408 1409
	 * situation in particular.
	 */
1410
	if (whence == SEEK_HOLE)
1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443
		offset = min_t(loff_t, offset, end);

	return offset;

out_error:
	return error;
}

STATIC loff_t
xfs_seek_hole_data(
	struct file		*file,
	loff_t			start,
	int			whence)
{
	struct inode		*inode = file->f_mapping->host;
	struct xfs_inode	*ip = XFS_I(inode);
	struct xfs_mount	*mp = ip->i_mount;
	uint			lock;
	loff_t			offset, end;
	int			error = 0;

	if (XFS_FORCED_SHUTDOWN(mp))
		return -EIO;

	lock = xfs_ilock_data_map_shared(ip);

	end = i_size_read(inode);
	offset = __xfs_seek_hole_data(inode, start, end, whence);
	if (offset < 0) {
		error = offset;
		goto out_unlock;
	}

J
Jie Liu 已提交
1444
	offset = vfs_setpos(file, offset, inode->i_sb->s_maxbytes);
1445 1446

out_unlock:
1447
	xfs_iunlock(ip, lock);
1448 1449

	if (error)
D
Dave Chinner 已提交
1450
		return error;
1451 1452 1453 1454 1455 1456 1457
	return offset;
}

STATIC loff_t
xfs_file_llseek(
	struct file	*file,
	loff_t		offset,
1458
	int		whence)
1459
{
1460
	switch (whence) {
1461 1462 1463
	case SEEK_END:
	case SEEK_CUR:
	case SEEK_SET:
1464
		return generic_file_llseek(file, offset, whence);
1465
	case SEEK_HOLE:
1466
	case SEEK_DATA:
1467
		return xfs_seek_hole_data(file, offset, whence);
1468 1469 1470 1471 1472
	default:
		return -EINVAL;
	}
}

1473 1474 1475 1476 1477
/*
 * Locking for serialisation of IO during page faults. This results in a lock
 * ordering of:
 *
 * mmap_sem (MM)
1478
 *   sb_start_pagefault(vfs, freeze)
1479
 *     i_mmaplock (XFS - truncate serialisation)
1480 1481
 *       page_lock (MM)
 *         i_lock (XFS - extent map serialisation)
1482 1483
 */

1484 1485 1486 1487 1488
/*
 * mmap()d file has taken write protection fault and is being made writable. We
 * can set the page state up correctly for a writable page, which means we can
 * do correct delalloc accounting (ENOSPC checking!) and unwritten extent
 * mapping.
1489 1490
 */
STATIC int
1491
xfs_filemap_page_mkwrite(
1492 1493 1494
	struct vm_area_struct	*vma,
	struct vm_fault		*vmf)
{
1495
	struct inode		*inode = file_inode(vma->vm_file);
1496
	int			ret;
1497

1498
	trace_xfs_filemap_page_mkwrite(XFS_I(inode));
1499

1500
	sb_start_pagefault(inode->i_sb);
1501
	file_update_time(vma->vm_file);
1502
	xfs_ilock(XFS_I(inode), XFS_MMAPLOCK_SHARED);
1503

1504
	if (IS_DAX(inode)) {
R
Ross Zwisler 已提交
1505
		ret = dax_mkwrite(vma, vmf, xfs_get_blocks_dax_fault);
1506
	} else {
1507
		ret = iomap_page_mkwrite(vma, vmf, &xfs_iomap_ops);
1508 1509 1510 1511 1512 1513 1514
		ret = block_page_mkwrite_return(ret);
	}

	xfs_iunlock(XFS_I(inode), XFS_MMAPLOCK_SHARED);
	sb_end_pagefault(inode->i_sb);

	return ret;
1515 1516
}

1517
STATIC int
1518
xfs_filemap_fault(
1519 1520 1521
	struct vm_area_struct	*vma,
	struct vm_fault		*vmf)
{
1522
	struct inode		*inode = file_inode(vma->vm_file);
1523
	int			ret;
1524

1525
	trace_xfs_filemap_fault(XFS_I(inode));
1526

1527
	/* DAX can shortcut the normal fault path on write faults! */
1528
	if ((vmf->flags & FAULT_FLAG_WRITE) && IS_DAX(inode))
1529
		return xfs_filemap_page_mkwrite(vma, vmf);
1530

1531 1532 1533 1534 1535 1536 1537 1538
	xfs_ilock(XFS_I(inode), XFS_MMAPLOCK_SHARED);
	if (IS_DAX(inode)) {
		/*
		 * we do not want to trigger unwritten extent conversion on read
		 * faults - that is unnecessary overhead and would also require
		 * changes to xfs_get_blocks_direct() to map unwritten extent
		 * ioend for conversion on read-only mappings.
		 */
R
Ross Zwisler 已提交
1539
		ret = dax_fault(vma, vmf, xfs_get_blocks_dax_fault);
1540 1541 1542
	} else
		ret = filemap_fault(vma, vmf);
	xfs_iunlock(XFS_I(inode), XFS_MMAPLOCK_SHARED);
1543

1544 1545 1546
	return ret;
}

1547 1548 1549 1550 1551 1552 1553
/*
 * Similar to xfs_filemap_fault(), the DAX fault path can call into here on
 * both read and write faults. Hence we need to handle both cases. There is no
 * ->pmd_mkwrite callout for huge pages, so we have a single function here to
 * handle both cases here. @flags carries the information on the type of fault
 * occuring.
 */
M
Matthew Wilcox 已提交
1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569
STATIC int
xfs_filemap_pmd_fault(
	struct vm_area_struct	*vma,
	unsigned long		addr,
	pmd_t			*pmd,
	unsigned int		flags)
{
	struct inode		*inode = file_inode(vma->vm_file);
	struct xfs_inode	*ip = XFS_I(inode);
	int			ret;

	if (!IS_DAX(inode))
		return VM_FAULT_FALLBACK;

	trace_xfs_filemap_pmd_fault(ip);

1570 1571 1572 1573 1574
	if (flags & FAULT_FLAG_WRITE) {
		sb_start_pagefault(inode->i_sb);
		file_update_time(vma->vm_file);
	}

M
Matthew Wilcox 已提交
1575
	xfs_ilock(XFS_I(inode), XFS_MMAPLOCK_SHARED);
R
Ross Zwisler 已提交
1576
	ret = dax_pmd_fault(vma, addr, pmd, flags, xfs_get_blocks_dax_fault);
M
Matthew Wilcox 已提交
1577 1578
	xfs_iunlock(XFS_I(inode), XFS_MMAPLOCK_SHARED);

1579 1580
	if (flags & FAULT_FLAG_WRITE)
		sb_end_pagefault(inode->i_sb);
M
Matthew Wilcox 已提交
1581 1582 1583 1584

	return ret;
}

1585 1586 1587
/*
 * pfn_mkwrite was originally inteneded to ensure we capture time stamp
 * updates on write faults. In reality, it's need to serialise against
1588 1589
 * truncate similar to page_mkwrite. Hence we cycle the XFS_MMAPLOCK_SHARED
 * to ensure we serialise the fault barrier in place.
1590 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611
 */
static int
xfs_filemap_pfn_mkwrite(
	struct vm_area_struct	*vma,
	struct vm_fault		*vmf)
{

	struct inode		*inode = file_inode(vma->vm_file);
	struct xfs_inode	*ip = XFS_I(inode);
	int			ret = VM_FAULT_NOPAGE;
	loff_t			size;

	trace_xfs_filemap_pfn_mkwrite(ip);

	sb_start_pagefault(inode->i_sb);
	file_update_time(vma->vm_file);

	/* check if the faulting page hasn't raced with truncate */
	xfs_ilock(ip, XFS_MMAPLOCK_SHARED);
	size = (i_size_read(inode) + PAGE_SIZE - 1) >> PAGE_SHIFT;
	if (vmf->pgoff >= size)
		ret = VM_FAULT_SIGBUS;
1612 1613
	else if (IS_DAX(inode))
		ret = dax_pfn_mkwrite(vma, vmf);
1614 1615
	xfs_iunlock(ip, XFS_MMAPLOCK_SHARED);
	sb_end_pagefault(inode->i_sb);
M
Matthew Wilcox 已提交
1616
	return ret;
1617

M
Matthew Wilcox 已提交
1618 1619
}

1620 1621
static const struct vm_operations_struct xfs_file_vm_ops = {
	.fault		= xfs_filemap_fault,
M
Matthew Wilcox 已提交
1622
	.pmd_fault	= xfs_filemap_pmd_fault,
1623 1624
	.map_pages	= filemap_map_pages,
	.page_mkwrite	= xfs_filemap_page_mkwrite,
1625
	.pfn_mkwrite	= xfs_filemap_pfn_mkwrite,
1626 1627 1628 1629 1630 1631 1632 1633 1634 1635
};

STATIC int
xfs_file_mmap(
	struct file	*filp,
	struct vm_area_struct *vma)
{
	file_accessed(filp);
	vma->vm_ops = &xfs_file_vm_ops;
	if (IS_DAX(file_inode(filp)))
M
Matthew Wilcox 已提交
1636
		vma->vm_flags |= VM_MIXEDMAP | VM_HUGEPAGE;
1637
	return 0;
1638 1639
}

1640
const struct file_operations xfs_file_operations = {
1641
	.llseek		= xfs_file_llseek,
A
Al Viro 已提交
1642
	.read_iter	= xfs_file_read_iter,
A
Al Viro 已提交
1643
	.write_iter	= xfs_file_write_iter,
1644
	.splice_read	= xfs_file_splice_read,
A
Al Viro 已提交
1645
	.splice_write	= iter_file_splice_write,
1646
	.unlocked_ioctl	= xfs_file_ioctl,
L
Linus Torvalds 已提交
1647
#ifdef CONFIG_COMPAT
1648
	.compat_ioctl	= xfs_file_compat_ioctl,
L
Linus Torvalds 已提交
1649
#endif
1650 1651 1652 1653
	.mmap		= xfs_file_mmap,
	.open		= xfs_file_open,
	.release	= xfs_file_release,
	.fsync		= xfs_file_fsync,
1654
	.fallocate	= xfs_file_fallocate,
L
Linus Torvalds 已提交
1655 1656
};

1657
const struct file_operations xfs_dir_file_operations = {
1658
	.open		= xfs_dir_open,
L
Linus Torvalds 已提交
1659
	.read		= generic_read_dir,
1660
	.iterate_shared	= xfs_file_readdir,
1661
	.llseek		= generic_file_llseek,
1662
	.unlocked_ioctl	= xfs_file_ioctl,
1663
#ifdef CONFIG_COMPAT
1664
	.compat_ioctl	= xfs_file_compat_ioctl,
1665
#endif
1666
	.fsync		= xfs_dir_fsync,
L
Linus Torvalds 已提交
1667
};