cifsfs.c 31.9 KB
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/*
 *   fs/cifs/cifsfs.c
 *
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 *   Copyright (C) International Business Machines  Corp., 2002,2008
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 *   Author(s): Steve French (sfrench@us.ibm.com)
 *
 *   Common Internet FileSystem (CIFS) client
 *
 *   This library is free software; you can redistribute it and/or modify
 *   it under the terms of the GNU Lesser General Public License as published
 *   by the Free Software Foundation; either version 2.1 of the License, or
 *   (at your option) any later version.
 *
 *   This library is distributed in the hope that it will be useful,
 *   but WITHOUT ANY WARRANTY; without even the implied warranty of
 *   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See
 *   the GNU Lesser General Public License for more details.
 *
 *   You should have received a copy of the GNU Lesser General Public License
 *   along with this library; if not, write to the Free Software
 *   Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
 */

/* Note that BB means BUGBUG (ie something to fix eventually) */

#include <linux/module.h>
#include <linux/fs.h>
#include <linux/mount.h>
#include <linux/slab.h>
#include <linux/init.h>
#include <linux/list.h>
#include <linux/seq_file.h>
#include <linux/vfs.h>
#include <linux/mempool.h>
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#include <linux/delay.h>
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#include <linux/kthread.h>
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#include <linux/freezer.h>
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#include "cifsfs.h"
#include "cifspdu.h"
#define DECLARE_GLOBALS_HERE
#include "cifsglob.h"
#include "cifsproto.h"
#include "cifs_debug.h"
#include "cifs_fs_sb.h"
#include <linux/mm.h>
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#include <linux/key-type.h>
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#include "dns_resolve.h"
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#include "cifs_spnego.h"
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#define CIFS_MAGIC_NUMBER 0xFF534D42	/* the first four bytes of SMB PDUs */

#ifdef CONFIG_CIFS_QUOTA
static struct quotactl_ops cifs_quotactl_ops;
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#endif /* QUOTA */

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int cifsFYI = 0;
int cifsERROR = 1;
int traceSMB = 0;
unsigned int oplockEnabled = 1;
unsigned int experimEnabled = 0;
unsigned int linuxExtEnabled = 1;
unsigned int lookupCacheEnabled = 1;
unsigned int multiuser_mount = 0;
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unsigned int extended_security = CIFSSEC_DEF;
/* unsigned int ntlmv2_support = 0; */
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unsigned int sign_CIFS_PDUs = 1;
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extern struct task_struct *oplockThread; /* remove sparse warning */
struct task_struct *oplockThread = NULL;
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/* extern struct task_struct * dnotifyThread; remove sparse warning */
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static struct task_struct *dnotifyThread = NULL;
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static const struct super_operations cifs_super_ops;
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unsigned int CIFSMaxBufSize = CIFS_MAX_MSGSIZE;
module_param(CIFSMaxBufSize, int, 0);
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MODULE_PARM_DESC(CIFSMaxBufSize, "Network buffer size (not including header). "
				 "Default: 16384 Range: 8192 to 130048");
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unsigned int cifs_min_rcv = CIFS_MIN_RCV_POOL;
module_param(cifs_min_rcv, int, 0);
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MODULE_PARM_DESC(cifs_min_rcv, "Network buffers in pool. Default: 4 Range: "
				"1 to 64");
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unsigned int cifs_min_small = 30;
module_param(cifs_min_small, int, 0);
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MODULE_PARM_DESC(cifs_min_small, "Small network buffers in pool. Default: 30 "
				 "Range: 2 to 256");
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unsigned int cifs_max_pending = CIFS_MAX_REQ;
module_param(cifs_max_pending, int, 0);
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MODULE_PARM_DESC(cifs_max_pending, "Simultaneous requests to server. "
				   "Default: 50 Range: 2 to 256");
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extern mempool_t *cifs_sm_req_poolp;
extern mempool_t *cifs_req_poolp;
extern mempool_t *cifs_mid_poolp;

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extern struct kmem_cache *cifs_oplock_cachep;
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static int
cifs_read_super(struct super_block *sb, void *data,
		const char *devname, int silent)
{
	struct inode *inode;
	struct cifs_sb_info *cifs_sb;
	int rc = 0;
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	/* BB should we make this contingent on mount parm? */
	sb->s_flags |= MS_NODIRATIME | MS_NOATIME;
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	sb->s_fs_info = kzalloc(sizeof(struct cifs_sb_info), GFP_KERNEL);
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	cifs_sb = CIFS_SB(sb);
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	if (cifs_sb == NULL)
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		return -ENOMEM;

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#ifdef CONFIG_CIFS_DFS_UPCALL
	/* copy mount params to sb for use in submounts */
	/* BB: should we move this after the mount so we
	 * do not have to do the copy on failed mounts?
	 * BB: May be it is better to do simple copy before
	 * complex operation (mount), and in case of fail
	 * just exit instead of doing mount and attempting
	 * undo it if this copy fails?*/
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	if (data) {
		int len = strlen(data);
		cifs_sb->mountdata = kzalloc(len + 1, GFP_KERNEL);
		if (cifs_sb->mountdata == NULL) {
			kfree(sb->s_fs_info);
			sb->s_fs_info = NULL;
			return -ENOMEM;
		}
		strncpy(cifs_sb->mountdata, data, len + 1);
		cifs_sb->mountdata[len] = '\0';
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	}
#endif

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	rc = cifs_mount(sb, cifs_sb, data, devname);

	if (rc) {
		if (!silent)
			cERROR(1,
			       ("cifs_mount failed w/return code = %d", rc));
		goto out_mount_failed;
	}

	sb->s_magic = CIFS_MAGIC_NUMBER;
	sb->s_op = &cifs_super_ops;
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/*	if (cifs_sb->tcon->ses->server->maxBuf > MAX_CIFS_HDR_SIZE + 512)
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	    sb->s_blocksize =
		cifs_sb->tcon->ses->server->maxBuf - MAX_CIFS_HDR_SIZE; */
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#ifdef CONFIG_CIFS_QUOTA
	sb->s_qcop = &cifs_quotactl_ops;
#endif
	sb->s_blocksize = CIFS_MAX_MSGSIZE;
	sb->s_blocksize_bits = 14;	/* default 2**14 = CIFS_MAX_MSGSIZE */
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	inode = cifs_iget(sb, ROOT_I);
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	if (IS_ERR(inode)) {
		rc = PTR_ERR(inode);
		inode = NULL;
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		goto out_no_root;
	}

	sb->s_root = d_alloc_root(inode);

	if (!sb->s_root) {
		rc = -ENOMEM;
		goto out_no_root;
	}
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#ifdef CONFIG_CIFS_EXPERIMENTAL
	if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_SERVER_INUM) {
		cFYI(1, ("export ops supported"));
		sb->s_export_op = &cifs_export_ops;
	}
#endif /* EXPERIMENTAL */
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	return 0;

out_no_root:
	cERROR(1, ("cifs_read_super: get root inode failed"));
	if (inode)
		iput(inode);
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	cifs_umount(sb, cifs_sb);
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out_mount_failed:
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	if (cifs_sb) {
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#ifdef CONFIG_CIFS_DFS_UPCALL
		if (cifs_sb->mountdata) {
			kfree(cifs_sb->mountdata);
			cifs_sb->mountdata = NULL;
		}
#endif
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		if (cifs_sb->local_nls)
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			unload_nls(cifs_sb->local_nls);
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		kfree(cifs_sb);
	}
	return rc;
}

static void
cifs_put_super(struct super_block *sb)
{
	int rc = 0;
	struct cifs_sb_info *cifs_sb;

	cFYI(1, ("In cifs_put_super"));
	cifs_sb = CIFS_SB(sb);
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	if (cifs_sb == NULL) {
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		cFYI(1, ("Empty cifs superblock info passed to unmount"));
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		return;
	}
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	rc = cifs_umount(sb, cifs_sb);
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	if (rc)
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		cERROR(1, ("cifs_umount failed with return code %d", rc));
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#ifdef CONFIG_CIFS_DFS_UPCALL
	if (cifs_sb->mountdata) {
		kfree(cifs_sb->mountdata);
		cifs_sb->mountdata = NULL;
	}
#endif

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	unload_nls(cifs_sb->local_nls);
	kfree(cifs_sb);
	return;
}

static int
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cifs_statfs(struct dentry *dentry, struct kstatfs *buf)
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{
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	struct super_block *sb = dentry->d_sb;
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	struct cifs_sb_info *cifs_sb = CIFS_SB(sb);
	struct cifsTconInfo *tcon = cifs_sb->tcon;
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	int rc = -EOPNOTSUPP;
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	int xid;
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	xid = GetXid();

	buf->f_type = CIFS_MAGIC_NUMBER;

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	/*
	 * PATH_MAX may be too long - it would presumably be total path,
	 * but note that some servers (includinng Samba 3) have a shorter
	 * maximum path.
	 *
	 * Instead could get the real value via SMB_QUERY_FS_ATTRIBUTE_INFO.
	 */
	buf->f_namelen = PATH_MAX;
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	buf->f_files = 0;	/* undefined */
	buf->f_ffree = 0;	/* unlimited */

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	/*
	 * We could add a second check for a QFS Unix capability bit
	 */
	if ((tcon->ses->capabilities & CAP_UNIX) &&
	    (CIFS_POSIX_EXTENSIONS & le64_to_cpu(tcon->fsUnixInfo.Capability)))
		rc = CIFSSMBQFSPosixInfo(xid, tcon, buf);

	/*
	 * Only need to call the old QFSInfo if failed on newer one,
	 * e.g. by OS/2.
	 **/
	if (rc && (tcon->ses->capabilities & CAP_NT_SMBS))
		rc = CIFSSMBQFSInfo(xid, tcon, buf);

	/*
	 * Some old Windows servers also do not support level 103, retry with
	 * older level one if old server failed the previous call or we
	 * bypassed it because we detected that this was an older LANMAN sess
	 */
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	if (rc)
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		rc = SMBOldQFSInfo(xid, tcon, buf);

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	FreeXid(xid);
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	return 0;
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}

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static int cifs_permission(struct inode *inode, int mask)
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{
	struct cifs_sb_info *cifs_sb;

	cifs_sb = CIFS_SB(inode->i_sb);

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	if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_NO_PERM) {
		if ((mask & MAY_EXEC) && !execute_ok(inode))
			return -EACCES;
		else
			return 0;
	} else /* file mode might have been restricted at mount time
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		on the client (above and beyond ACL on servers) for
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		servers which do not support setting and viewing mode bits,
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		so allowing client to check permissions is useful */
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		return generic_permission(inode, mask, NULL);
}

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static struct kmem_cache *cifs_inode_cachep;
static struct kmem_cache *cifs_req_cachep;
static struct kmem_cache *cifs_mid_cachep;
struct kmem_cache *cifs_oplock_cachep;
static struct kmem_cache *cifs_sm_req_cachep;
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mempool_t *cifs_sm_req_poolp;
mempool_t *cifs_req_poolp;
mempool_t *cifs_mid_poolp;

static struct inode *
cifs_alloc_inode(struct super_block *sb)
{
	struct cifsInodeInfo *cifs_inode;
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	cifs_inode = kmem_cache_alloc(cifs_inode_cachep, GFP_KERNEL);
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	if (!cifs_inode)
		return NULL;
	cifs_inode->cifsAttrs = 0x20;	/* default */
	atomic_set(&cifs_inode->inUse, 0);
	cifs_inode->time = 0;
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	cifs_inode->write_behind_rc = 0;
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	/* Until the file is open and we have gotten oplock
	info back from the server, can not assume caching of
	file data or metadata */
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	cifs_inode->clientCanCacheRead = false;
	cifs_inode->clientCanCacheAll = false;
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	cifs_inode->delete_pending = false;
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	cifs_inode->vfs_inode.i_blkbits = 14;  /* 2**14 = CIFS_MAX_MSGSIZE */
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	/* Can not set i_flags here - they get immediately overwritten
	   to zero by the VFS */
/*	cifs_inode->vfs_inode.i_flags = S_NOATIME | S_NOCMTIME;*/
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	INIT_LIST_HEAD(&cifs_inode->openFileList);
	return &cifs_inode->vfs_inode;
}

static void
cifs_destroy_inode(struct inode *inode)
{
	kmem_cache_free(cifs_inode_cachep, CIFS_I(inode));
}

/*
 * cifs_show_options() is for displaying mount options in /proc/mounts.
 * Not all settable options are displayed but most of the important
 * ones are.
 */
static int
cifs_show_options(struct seq_file *s, struct vfsmount *m)
{
	struct cifs_sb_info *cifs_sb;
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	struct cifsTconInfo *tcon;
	struct TCP_Server_Info *server;
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	cifs_sb = CIFS_SB(m->mnt_sb);

	if (cifs_sb) {
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		tcon = cifs_sb->tcon;
		if (tcon) {
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/* BB add prepath to mount options displayed */
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			seq_printf(s, ",unc=%s", cifs_sb->tcon->treeName);
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			if (tcon->ses) {
				if (tcon->ses->userName)
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					seq_printf(s, ",username=%s",
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					   tcon->ses->userName);
				if (tcon->ses->domainName)
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					seq_printf(s, ",domain=%s",
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					   tcon->ses->domainName);
				server = tcon->ses->server;
				if (server) {
					seq_printf(s, ",addr=");
					switch (server->addr.sockAddr6.
						sin6_family) {
					case AF_INET6:
						seq_printf(s, NIP6_FMT,
							   NIP6(server->addr.sockAddr6.sin6_addr));
						break;
					case AF_INET:
						seq_printf(s, NIPQUAD_FMT,
							   NIPQUAD(server->addr.sockAddr.sin_addr.s_addr));
						break;
					}
				}
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			}
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			if ((cifs_sb->mnt_cifs_flags & CIFS_MOUNT_OVERR_UID) ||
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			   !(tcon->unix_ext))
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				seq_printf(s, ",uid=%d", cifs_sb->mnt_uid);
			if ((cifs_sb->mnt_cifs_flags & CIFS_MOUNT_OVERR_GID) ||
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			   !(tcon->unix_ext))
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				seq_printf(s, ",gid=%d", cifs_sb->mnt_gid);
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			if (!tcon->unix_ext) {
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				seq_printf(s, ",file_mode=0%o,dir_mode=0%o",
					   cifs_sb->mnt_file_mode,
					   cifs_sb->mnt_dir_mode);
			}
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			if (tcon->seal)
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				seq_printf(s, ",seal");
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			if (tcon->nocase)
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				seq_printf(s, ",nocase");
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			if (tcon->retry)
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				seq_printf(s, ",hard");
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		}
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		if (cifs_sb->prepath)
			seq_printf(s, ",prepath=%s", cifs_sb->prepath);
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		if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_POSIX_PATHS)
			seq_printf(s, ",posixpaths");
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		if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_SET_UID)
			seq_printf(s, ",setuids");
		if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_SERVER_INUM)
			seq_printf(s, ",serverino");
		if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_DIRECT_IO)
			seq_printf(s, ",directio");
		if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_NO_XATTR)
			seq_printf(s, ",nouser_xattr");
		if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_MAP_SPECIAL_CHR)
			seq_printf(s, ",mapchars");
		if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_UNX_EMUL)
			seq_printf(s, ",sfu");
		if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_NO_BRL)
			seq_printf(s, ",nobrl");
		if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_CIFS_ACL)
			seq_printf(s, ",cifsacl");
		if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_DYNPERM)
			seq_printf(s, ",dynperm");
		if (m->mnt_sb->s_flags & MS_POSIXACL)
			seq_printf(s, ",acl");

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		seq_printf(s, ",rsize=%d", cifs_sb->rsize);
		seq_printf(s, ",wsize=%d", cifs_sb->wsize);
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	}
	return 0;
}

#ifdef CONFIG_CIFS_QUOTA
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int cifs_xquota_set(struct super_block *sb, int quota_type, qid_t qid,
		struct fs_disk_quota *pdquota)
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{
	int xid;
	int rc = 0;
	struct cifs_sb_info *cifs_sb = CIFS_SB(sb);
	struct cifsTconInfo *pTcon;
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	if (cifs_sb)
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		pTcon = cifs_sb->tcon;
	else
		return -EIO;


	xid = GetXid();
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	if (pTcon) {
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		cFYI(1, ("set type: 0x%x id: %d", quota_type, qid));
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	} else {
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		rc = -EIO;
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	}

	FreeXid(xid);
	return rc;
}

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int cifs_xquota_get(struct super_block *sb, int quota_type, qid_t qid,
		    struct fs_disk_quota *pdquota)
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{
	int xid;
	int rc = 0;
	struct cifs_sb_info *cifs_sb = CIFS_SB(sb);
	struct cifsTconInfo *pTcon;

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	if (cifs_sb)
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		pTcon = cifs_sb->tcon;
	else
		return -EIO;

	xid = GetXid();
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	if (pTcon) {
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		cFYI(1, ("set type: 0x%x id: %d", quota_type, qid));
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	} else {
		rc = -EIO;
	}

	FreeXid(xid);
	return rc;
}

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int cifs_xstate_set(struct super_block *sb, unsigned int flags, int operation)
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{
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	int xid;
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	int rc = 0;
	struct cifs_sb_info *cifs_sb = CIFS_SB(sb);
	struct cifsTconInfo *pTcon;

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	if (cifs_sb)
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		pTcon = cifs_sb->tcon;
	else
		return -EIO;

	xid = GetXid();
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	if (pTcon) {
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		cFYI(1, ("flags: 0x%x operation: 0x%x", flags, operation));
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	} else {
		rc = -EIO;
	}

	FreeXid(xid);
	return rc;
}

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int cifs_xstate_get(struct super_block *sb, struct fs_quota_stat *qstats)
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{
	int xid;
	int rc = 0;
	struct cifs_sb_info *cifs_sb = CIFS_SB(sb);
	struct cifsTconInfo *pTcon;

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	if (cifs_sb) {
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		pTcon = cifs_sb->tcon;
	} else {
		return -EIO;
	}
	xid = GetXid();
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	if (pTcon) {
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		cFYI(1, ("pqstats %p", qstats));
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	} else {
		rc = -EIO;
	}

	FreeXid(xid);
	return rc;
}

static struct quotactl_ops cifs_quotactl_ops = {
	.set_xquota	= cifs_xquota_set,
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	.get_xquota	= cifs_xquota_get,
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	.set_xstate	= cifs_xstate_set,
	.get_xstate	= cifs_xstate_get,
};
#endif

526
static void cifs_umount_begin(struct super_block *sb)
527
{
528
	struct cifs_sb_info *cifs_sb = CIFS_SB(sb);
529
	struct cifsTconInfo *tcon;
530

531
	if (cifs_sb == NULL)
532 533 534
		return;

	tcon = cifs_sb->tcon;
535
	if (tcon == NULL)
536
		return;
537 538 539

	read_lock(&cifs_tcp_ses_lock);
	if (tcon->tc_count == 1)
540
		tcon->tidStatus = CifsExiting;
541
	read_unlock(&cifs_tcp_ses_lock);
542

543
	/* cancel_brl_requests(tcon); */ /* BB mark all brl mids as exiting */
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	/* cancel_notify_requests(tcon); */
545 546
	if (tcon->ses && tcon->ses->server) {
		cFYI(1, ("wake up tasks now - umount begin not complete"));
547
		wake_up_all(&tcon->ses->server->request_q);
548 549 550 551 552
		wake_up_all(&tcon->ses->server->response_q);
		msleep(1); /* yield */
		/* we have to kick the requests once more */
		wake_up_all(&tcon->ses->server->response_q);
		msleep(1);
553 554
	}
/* BB FIXME - finish add checks for tidStatus BB */
555 556 557 558

	return;
}

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#ifdef CONFIG_CIFS_STATS2
static int cifs_show_stats(struct seq_file *s, struct vfsmount *mnt)
{
	/* BB FIXME */
	return 0;
}
#endif

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static int cifs_remount(struct super_block *sb, int *flags, char *data)
{
	*flags |= MS_NODIRATIME;
	return 0;
}

573
static const struct super_operations cifs_super_ops = {
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	.put_super = cifs_put_super,
	.statfs = cifs_statfs,
	.alloc_inode = cifs_alloc_inode,
	.destroy_inode = cifs_destroy_inode,
578 579 580 581 582
/*	.drop_inode	    = generic_delete_inode,
	.delete_inode	= cifs_delete_inode,  */  /* Do not need above two
	functions unless later we add lazy close of inodes or unless the
	kernel forgets to call us with the same number of releases (closes)
	as opens */
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	.show_options = cifs_show_options,
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	.umount_begin   = cifs_umount_begin,
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	.remount_fs = cifs_remount,
586
#ifdef CONFIG_CIFS_STATS2
587
	.show_stats = cifs_show_stats,
588
#endif
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};

591
static int
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cifs_get_sb(struct file_system_type *fs_type,
593
	    int flags, const char *dev_name, void *data, struct vfsmount *mnt)
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{
	int rc;
	struct super_block *sb = sget(fs_type, NULL, set_anon_super, NULL);

	cFYI(1, ("Devname: %s flags: %d ", dev_name, flags));

	if (IS_ERR(sb))
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		return PTR_ERR(sb);
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	sb->s_flags = flags;

605
	rc = cifs_read_super(sb, data, dev_name, flags & MS_SILENT ? 1 : 0);
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	if (rc) {
		up_write(&sb->s_umount);
		deactivate_super(sb);
609
		return rc;
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	}
	sb->s_flags |= MS_ACTIVE;
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	return simple_set_mnt(mnt, sb);
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}

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static ssize_t cifs_file_aio_write(struct kiocb *iocb, const struct iovec *iov,
				   unsigned long nr_segs, loff_t pos)
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{
618
	struct inode *inode = iocb->ki_filp->f_path.dentry->d_inode;
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	ssize_t written;

621
	written = generic_file_aio_write(iocb, iov, nr_segs, pos);
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	if (!CIFS_I(inode)->clientCanCacheAll)
		filemap_fdatawrite(inode->i_mapping);
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	return written;
}

627 628 629
static loff_t cifs_llseek(struct file *file, loff_t offset, int origin)
{
	/* origin == SEEK_END => we must revalidate the cached file length */
630
	if (origin == SEEK_END) {
631 632 633 634 635
		int retval;

		/* some applications poll for the file length in this strange
		   way so we must seek to end on non-oplocked files by
		   setting the revalidate time to zero */
636
		CIFS_I(file->f_path.dentry->d_inode)->time = 0;
637 638

		retval = cifs_revalidate(file->f_path.dentry);
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		if (retval < 0)
			return (loff_t)retval;
	}
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	return generic_file_llseek_unlocked(file, offset, origin);
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}

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#ifdef CONFIG_CIFS_EXPERIMENTAL
static int cifs_setlease(struct file *file, long arg, struct file_lock **lease)
{
	/* note that this is called by vfs setlease with the BKL held
	   although I doubt that BKL is needed here in cifs */
	struct inode *inode = file->f_path.dentry->d_inode;

	if (!(S_ISREG(inode->i_mode)))
		return -EINVAL;

	/* check if file is oplocked */
	if (((arg == F_RDLCK) &&
		(CIFS_I(inode)->clientCanCacheRead)) ||
	    ((arg == F_WRLCK) &&
		(CIFS_I(inode)->clientCanCacheAll)))
		return generic_setlease(file, arg, lease);
	else if (CIFS_SB(inode->i_sb)->tcon->local_lease &&
			!CIFS_I(inode)->clientCanCacheRead)
		/* If the server claims to support oplock on this
		   file, then we still need to check oplock even
		   if the local_lease mount option is set, but there
		   are servers which do not support oplock for which
		   this mount option may be useful if the user
		   knows that the file won't be changed on the server
		   by anyone else */
		return generic_setlease(file, arg, lease);
	else
		return -EAGAIN;
}
#endif

676
struct file_system_type cifs_fs_type = {
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	.owner = THIS_MODULE,
	.name = "cifs",
	.get_sb = cifs_get_sb,
	.kill_sb = kill_anon_super,
	/*  .fs_flags */
};
683
const struct inode_operations cifs_dir_inode_ops = {
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	.create = cifs_create,
	.lookup = cifs_lookup,
	.getattr = cifs_getattr,
	.unlink = cifs_unlink,
	.link = cifs_hardlink,
	.mkdir = cifs_mkdir,
	.rmdir = cifs_rmdir,
	.rename = cifs_rename,
	.permission = cifs_permission,
/*	revalidate:cifs_revalidate,   */
	.setattr = cifs_setattr,
	.symlink = cifs_symlink,
	.mknod   = cifs_mknod,
#ifdef CONFIG_CIFS_XATTR
	.setxattr = cifs_setxattr,
	.getxattr = cifs_getxattr,
	.listxattr = cifs_listxattr,
	.removexattr = cifs_removexattr,
#endif
};

705
const struct inode_operations cifs_file_inode_ops = {
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/*	revalidate:cifs_revalidate, */
	.setattr = cifs_setattr,
	.getattr = cifs_getattr, /* do we need this anymore? */
	.rename = cifs_rename,
	.permission = cifs_permission,
#ifdef CONFIG_CIFS_XATTR
	.setxattr = cifs_setxattr,
	.getxattr = cifs_getxattr,
	.listxattr = cifs_listxattr,
	.removexattr = cifs_removexattr,
716
#endif
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};

719
const struct inode_operations cifs_symlink_inode_ops = {
720
	.readlink = generic_readlink,
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	.follow_link = cifs_follow_link,
	.put_link = cifs_put_link,
	.permission = cifs_permission,
	/* BB add the following two eventually */
	/* revalidate: cifs_revalidate,
	   setattr:    cifs_notify_change, *//* BB do we need notify change */
#ifdef CONFIG_CIFS_XATTR
	.setxattr = cifs_setxattr,
	.getxattr = cifs_getxattr,
	.listxattr = cifs_listxattr,
	.removexattr = cifs_removexattr,
732
#endif
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};

735
const struct file_operations cifs_file_ops = {
736 737 738 739
	.read = do_sync_read,
	.write = do_sync_write,
	.aio_read = generic_file_aio_read,
	.aio_write = cifs_file_aio_write,
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	.open = cifs_open,
	.release = cifs_close,
	.lock = cifs_lock,
	.fsync = cifs_fsync,
	.flush = cifs_flush,
	.mmap  = cifs_file_mmap,
746
	.splice_read = generic_file_splice_read,
747
	.llseek = cifs_llseek,
748
#ifdef CONFIG_CIFS_POSIX
749
	.unlocked_ioctl	= cifs_ioctl,
750 751
#endif /* CONFIG_CIFS_POSIX */

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#ifdef CONFIG_CIFS_EXPERIMENTAL
	.dir_notify = cifs_dir_notify,
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	.setlease = cifs_setlease,
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#endif /* CONFIG_CIFS_EXPERIMENTAL */
};

758
const struct file_operations cifs_file_direct_ops = {
759
	/* no mmap, no aio, no readv -
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	   BB reevaluate whether they can be done with directio, no cache */
	.read = cifs_user_read,
	.write = cifs_user_write,
	.open = cifs_open,
	.release = cifs_close,
	.lock = cifs_lock,
	.fsync = cifs_fsync,
	.flush = cifs_flush,
768
	.splice_read = generic_file_splice_read,
769
#ifdef CONFIG_CIFS_POSIX
770
	.unlocked_ioctl  = cifs_ioctl,
771
#endif /* CONFIG_CIFS_POSIX */
772
	.llseek = cifs_llseek,
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#ifdef CONFIG_CIFS_EXPERIMENTAL
	.dir_notify = cifs_dir_notify,
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	.setlease = cifs_setlease,
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#endif /* CONFIG_CIFS_EXPERIMENTAL */
};
778
const struct file_operations cifs_file_nobrl_ops = {
779 780 781 782 783 784 785 786 787
	.read = do_sync_read,
	.write = do_sync_write,
	.aio_read = generic_file_aio_read,
	.aio_write = cifs_file_aio_write,
	.open = cifs_open,
	.release = cifs_close,
	.fsync = cifs_fsync,
	.flush = cifs_flush,
	.mmap  = cifs_file_mmap,
788
	.splice_read = generic_file_splice_read,
789
	.llseek = cifs_llseek,
790
#ifdef CONFIG_CIFS_POSIX
791
	.unlocked_ioctl	= cifs_ioctl,
792 793 794
#endif /* CONFIG_CIFS_POSIX */

#ifdef CONFIG_CIFS_EXPERIMENTAL
795
	.dir_notify = cifs_dir_notify,
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	.setlease = cifs_setlease,
797 798 799
#endif /* CONFIG_CIFS_EXPERIMENTAL */
};

800
const struct file_operations cifs_file_direct_nobrl_ops = {
801
	/* no mmap, no aio, no readv -
802 803 804 805 806 807 808
	   BB reevaluate whether they can be done with directio, no cache */
	.read = cifs_user_read,
	.write = cifs_user_write,
	.open = cifs_open,
	.release = cifs_close,
	.fsync = cifs_fsync,
	.flush = cifs_flush,
809
	.splice_read = generic_file_splice_read,
810
#ifdef CONFIG_CIFS_POSIX
811
	.unlocked_ioctl  = cifs_ioctl,
812
#endif /* CONFIG_CIFS_POSIX */
813
	.llseek = cifs_llseek,
814
#ifdef CONFIG_CIFS_EXPERIMENTAL
815
	.dir_notify = cifs_dir_notify,
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	.setlease = cifs_setlease,
817 818
#endif /* CONFIG_CIFS_EXPERIMENTAL */
};
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820
const struct file_operations cifs_dir_ops = {
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	.readdir = cifs_readdir,
	.release = cifs_closedir,
	.read    = generic_read_dir,
#ifdef CONFIG_CIFS_EXPERIMENTAL
	.dir_notify = cifs_dir_notify,
#endif /* CONFIG_CIFS_EXPERIMENTAL */
827
	.unlocked_ioctl  = cifs_ioctl,
828
	.llseek = generic_file_llseek,
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};

static void
832
cifs_init_once(void *inode)
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{
	struct cifsInodeInfo *cifsi = inode;

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	inode_init_once(&cifsi->vfs_inode);
	INIT_LIST_HEAD(&cifsi->lockList);
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}

static int
cifs_init_inodecache(void)
{
	cifs_inode_cachep = kmem_cache_create("cifs_inode_cache",
844
					      sizeof(struct cifsInodeInfo),
845 846
					      0, (SLAB_RECLAIM_ACCOUNT|
						SLAB_MEM_SPREAD),
847
					      cifs_init_once);
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	if (cifs_inode_cachep == NULL)
		return -ENOMEM;

	return 0;
}

static void
cifs_destroy_inodecache(void)
{
857
	kmem_cache_destroy(cifs_inode_cachep);
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}

static int
cifs_init_request_bufs(void)
{
863
	if (CIFSMaxBufSize < 8192) {
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	/* Buffer size can not be smaller than 2 * PATH_MAX since maximum
	Unicode path name has to fit in any SMB/CIFS path based frames */
		CIFSMaxBufSize = 8192;
	} else if (CIFSMaxBufSize > 1024*127) {
		CIFSMaxBufSize = 1024 * 127;
	} else {
		CIFSMaxBufSize &= 0x1FE00; /* Round size to even 512 byte mult*/
	}
/*	cERROR(1,("CIFSMaxBufSize %d 0x%x",CIFSMaxBufSize,CIFSMaxBufSize)); */
	cifs_req_cachep = kmem_cache_create("cifs_request",
					    CIFSMaxBufSize +
					    MAX_CIFS_HDR_SIZE, 0,
876
					    SLAB_HWCACHE_ALIGN, NULL);
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	if (cifs_req_cachep == NULL)
		return -ENOMEM;

880
	if (cifs_min_rcv < 1)
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		cifs_min_rcv = 1;
	else if (cifs_min_rcv > 64) {
		cifs_min_rcv = 64;
884
		cERROR(1, ("cifs_min_rcv set to maximum (64)"));
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	}

887 888
	cifs_req_poolp = mempool_create_slab_pool(cifs_min_rcv,
						  cifs_req_cachep);
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890
	if (cifs_req_poolp == NULL) {
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		kmem_cache_destroy(cifs_req_cachep);
		return -ENOMEM;
	}
894
	/* MAX_CIFS_SMALL_BUFFER_SIZE bytes is enough for most SMB responses and
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	almost all handle based requests (but not write response, nor is it
	sufficient for path based requests).  A smaller size would have
897
	been more efficient (compacting multiple slab items on one 4k page)
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	for the case in which debug was on, but this larger size allows
	more SMBs to use small buffer alloc and is still much more
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	efficient to alloc 1 per page off the slab compared to 17K (5page)
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	alloc of large cifs buffers even when page debugging is on */
	cifs_sm_req_cachep = kmem_cache_create("cifs_small_rq",
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			MAX_CIFS_SMALL_BUFFER_SIZE, 0, SLAB_HWCACHE_ALIGN,
904
			NULL);
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	if (cifs_sm_req_cachep == NULL) {
		mempool_destroy(cifs_req_poolp);
		kmem_cache_destroy(cifs_req_cachep);
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		return -ENOMEM;
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	}

911
	if (cifs_min_small < 2)
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		cifs_min_small = 2;
	else if (cifs_min_small > 256) {
		cifs_min_small = 256;
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		cFYI(1, ("cifs_min_small set to maximum (256)"));
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	}

918 919
	cifs_sm_req_poolp = mempool_create_slab_pool(cifs_min_small,
						     cifs_sm_req_cachep);
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921
	if (cifs_sm_req_poolp == NULL) {
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		mempool_destroy(cifs_req_poolp);
		kmem_cache_destroy(cifs_req_cachep);
		kmem_cache_destroy(cifs_sm_req_cachep);
		return -ENOMEM;
	}

	return 0;
}

static void
cifs_destroy_request_bufs(void)
{
	mempool_destroy(cifs_req_poolp);
935
	kmem_cache_destroy(cifs_req_cachep);
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	mempool_destroy(cifs_sm_req_poolp);
937
	kmem_cache_destroy(cifs_sm_req_cachep);
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}

static int
cifs_init_mids(void)
{
	cifs_mid_cachep = kmem_cache_create("cifs_mpx_ids",
944 945
					    sizeof(struct mid_q_entry), 0,
					    SLAB_HWCACHE_ALIGN, NULL);
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	if (cifs_mid_cachep == NULL)
		return -ENOMEM;

949 950
	/* 3 is a reasonable minimum number of simultaneous operations */
	cifs_mid_poolp = mempool_create_slab_pool(3, cifs_mid_cachep);
951
	if (cifs_mid_poolp == NULL) {
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		kmem_cache_destroy(cifs_mid_cachep);
		return -ENOMEM;
	}

	cifs_oplock_cachep = kmem_cache_create("cifs_oplock_structs",
957 958
					sizeof(struct oplock_q_entry), 0,
					SLAB_HWCACHE_ALIGN, NULL);
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	if (cifs_oplock_cachep == NULL) {
		mempool_destroy(cifs_mid_poolp);
961
		kmem_cache_destroy(cifs_mid_cachep);
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		return -ENOMEM;
	}

	return 0;
}

static void
cifs_destroy_mids(void)
{
	mempool_destroy(cifs_mid_poolp);
972 973
	kmem_cache_destroy(cifs_mid_cachep);
	kmem_cache_destroy(cifs_oplock_cachep);
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}

976
static int cifs_oplock_thread(void *dummyarg)
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{
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	struct oplock_q_entry *oplock_item;
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	struct cifsTconInfo *pTcon;
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	struct inode *inode;
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	__u16  netfid;
982
	int rc, waitrc = 0;
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984
	set_freezable();
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	do {
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		if (try_to_freeze())
987
			continue;
988

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		spin_lock(&GlobalMid_Lock);
990
		if (list_empty(&GlobalOplock_Q)) {
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			spin_unlock(&GlobalMid_Lock);
			set_current_state(TASK_INTERRUPTIBLE);
			schedule_timeout(39*HZ);
		} else {
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			oplock_item = list_entry(GlobalOplock_Q.next,
996 997 998 999 1000 1001 1002 1003
						struct oplock_q_entry, qhead);
			cFYI(1, ("found oplock item to write out"));
			pTcon = oplock_item->tcon;
			inode = oplock_item->pinode;
			netfid = oplock_item->netfid;
			spin_unlock(&GlobalMid_Lock);
			DeleteOplockQEntry(oplock_item);
			/* can not grab inode sem here since it would
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				deadlock when oplock received on delete
1005
				since vfs_unlink holds the i_mutex across
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				the call */
1007 1008
			/* mutex_lock(&inode->i_mutex);*/
			if (S_ISREG(inode->i_mode)) {
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#ifdef CONFIG_CIFS_EXPERIMENTAL
				if (CIFS_I(inode)->clientCanCacheAll == 0)
					break_lease(inode, FMODE_READ);
				else if (CIFS_I(inode)->clientCanCacheRead == 0)
					break_lease(inode, FMODE_WRITE);
#endif
1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029
				rc = filemap_fdatawrite(inode->i_mapping);
				if (CIFS_I(inode)->clientCanCacheRead == 0) {
					waitrc = filemap_fdatawait(
							      inode->i_mapping);
					invalidate_remote_inode(inode);
				}
				if (rc == 0)
					rc = waitrc;
			} else
				rc = 0;
			/* mutex_unlock(&inode->i_mutex);*/
			if (rc)
				CIFS_I(inode)->write_behind_rc = rc;
			cFYI(1, ("Oplock flush inode %p rc %d",
				inode, rc));
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				/* releasing stale oplock after recent reconnect
				of smb session using a now incorrect file
				handle is not a data integrity issue but do
				not bother sending an oplock release if session
				to server still is disconnected since oplock
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				already released by the server in that case */
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			if (!pTcon->need_reconnect) {
1038 1039 1040 1041 1042 1043
				rc = CIFSSMBLock(0, pTcon, netfid,
						0 /* len */ , 0 /* offset */, 0,
						0, LOCKING_ANDX_OPLOCK_RELEASE,
						false /* wait flag */);
				cFYI(1, ("Oplock release rc = %d", rc));
			}
1044 1045
			set_current_state(TASK_INTERRUPTIBLE);
			schedule_timeout(1);  /* yield in case q were corrupt */
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		}
1047 1048 1049
	} while (!kthread_should_stop());

	return 0;
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}

1052
static int cifs_dnotify_thread(void *dummyarg)
1053
{
1054
	struct list_head *tmp;
1055
	struct TCP_Server_Info *server;
1056

1057
	do {
1058
		if (try_to_freeze())
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			continue;
1060
		set_current_state(TASK_INTERRUPTIBLE);
1061 1062 1063 1064
		schedule_timeout(15*HZ);
		/* check if any stuck requests that need
		   to be woken up and wakeq so the
		   thread can wake up and error out */
1065 1066 1067 1068 1069 1070
		read_lock(&cifs_tcp_ses_lock);
		list_for_each(tmp, &cifs_tcp_ses_list) {
			server = list_entry(tmp, struct TCP_Server_Info,
					 tcp_ses_list);
			if (atomic_read(&server->inFlight))
				wake_up_all(&server->response_q);
1071
		}
1072
		read_unlock(&cifs_tcp_ses_lock);
1073 1074 1075
	} while (!kthread_should_stop());

	return 0;
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}

static int __init
init_cifs(void)
{
	int rc = 0;
	cifs_proc_init();
1083
	INIT_LIST_HEAD(&cifs_tcp_ses_list);
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	INIT_LIST_HEAD(&GlobalOplock_Q);
1085 1086 1087
#ifdef CONFIG_CIFS_EXPERIMENTAL
	INIT_LIST_HEAD(&GlobalDnotifyReqList);
	INIT_LIST_HEAD(&GlobalDnotifyRsp_Q);
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#endif
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/*
 *  Initialize Global counters
 */
	atomic_set(&sesInfoAllocCount, 0);
	atomic_set(&tconInfoAllocCount, 0);
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	atomic_set(&tcpSesAllocCount, 0);
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	atomic_set(&tcpSesReconnectCount, 0);
	atomic_set(&tconInfoReconnectCount, 0);

	atomic_set(&bufAllocCount, 0);
1099 1100 1101 1102 1103 1104
	atomic_set(&smBufAllocCount, 0);
#ifdef CONFIG_CIFS_STATS2
	atomic_set(&totBufAllocCount, 0);
	atomic_set(&totSmBufAllocCount, 0);
#endif /* CONFIG_CIFS_STATS2 */

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	atomic_set(&midCount, 0);
	GlobalCurrentXid = 0;
	GlobalTotalActiveXid = 0;
	GlobalMaxActiveXid = 0;
1109
	memset(Local_System_Name, 0, 15);
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	rwlock_init(&GlobalSMBSeslock);
1111
	rwlock_init(&cifs_tcp_ses_lock);
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	spin_lock_init(&GlobalMid_Lock);

1114
	if (cifs_max_pending < 2) {
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		cifs_max_pending = 2;
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		cFYI(1, ("cifs_max_pending set to min of 2"));
1117
	} else if (cifs_max_pending > 256) {
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		cifs_max_pending = 256;
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		cFYI(1, ("cifs_max_pending set to max of 256"));
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	}

	rc = cifs_init_inodecache();
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	if (rc)
		goto out_clean_proc;

	rc = cifs_init_mids();
	if (rc)
		goto out_destroy_inodecache;

	rc = cifs_init_request_bufs();
	if (rc)
		goto out_destroy_mids;

	rc = register_filesystem(&cifs_fs_type);
	if (rc)
		goto out_destroy_request_bufs;
1137 1138 1139 1140
#ifdef CONFIG_CIFS_UPCALL
	rc = register_key_type(&cifs_spnego_key_type);
	if (rc)
		goto out_unregister_filesystem;
1141 1142 1143 1144 1145
#endif
#ifdef CONFIG_CIFS_DFS_UPCALL
	rc = register_key_type(&key_type_dns_resolver);
	if (rc)
		goto out_unregister_key_type;
1146
#endif
1147 1148 1149
	oplockThread = kthread_run(cifs_oplock_thread, NULL, "cifsoplockd");
	if (IS_ERR(oplockThread)) {
		rc = PTR_ERR(oplockThread);
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		cERROR(1, ("error %d create oplock thread", rc));
1151
		goto out_unregister_dfs_key_type;
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	}
1153 1154 1155 1156

	dnotifyThread = kthread_run(cifs_dnotify_thread, NULL, "cifsdnotifyd");
	if (IS_ERR(dnotifyThread)) {
		rc = PTR_ERR(dnotifyThread);
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		cERROR(1, ("error %d create dnotify thread", rc));
1158 1159 1160 1161 1162 1163 1164
		goto out_stop_oplock_thread;
	}

	return 0;

 out_stop_oplock_thread:
	kthread_stop(oplockThread);
1165 1166 1167
 out_unregister_dfs_key_type:
#ifdef CONFIG_CIFS_DFS_UPCALL
	unregister_key_type(&key_type_dns_resolver);
1168
 out_unregister_key_type:
1169
#endif
1170 1171
#ifdef CONFIG_CIFS_UPCALL
	unregister_key_type(&cifs_spnego_key_type);
1172
 out_unregister_filesystem:
1173
#endif
1174 1175 1176 1177 1178 1179 1180 1181
	unregister_filesystem(&cifs_fs_type);
 out_destroy_request_bufs:
	cifs_destroy_request_bufs();
 out_destroy_mids:
	cifs_destroy_mids();
 out_destroy_inodecache:
	cifs_destroy_inodecache();
 out_clean_proc:
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	cifs_proc_clean();
	return rc;
}

static void __exit
exit_cifs(void)
{
1189
	cFYI(DBG2, ("exit_cifs"));
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	cifs_proc_clean();
1191
#ifdef CONFIG_CIFS_DFS_UPCALL
1192
	cifs_dfs_release_automount_timer();
1193 1194
	unregister_key_type(&key_type_dns_resolver);
#endif
1195 1196
#ifdef CONFIG_CIFS_UPCALL
	unregister_key_type(&cifs_spnego_key_type);
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#endif
	unregister_filesystem(&cifs_fs_type);
	cifs_destroy_inodecache();
	cifs_destroy_mids();
	cifs_destroy_request_bufs();
1202 1203
	kthread_stop(oplockThread);
	kthread_stop(dnotifyThread);
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}

MODULE_AUTHOR("Steve French <sfrench@us.ibm.com>");
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MODULE_LICENSE("GPL");	/* combination of LGPL + GPL source behaves as GPL */
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MODULE_DESCRIPTION
1209 1210
    ("VFS to access servers complying with the SNIA CIFS Specification "
     "e.g. Samba and Windows");
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MODULE_VERSION(CIFS_VERSION);
module_init(init_cifs)
module_exit(exit_cifs)