cifs: eliminate pfile pointer from cifsFileInfo
[linux-2.6/linux-acpi-2.6/ibm-acpi-2.6.git] / fs / cifs / file.c
blob7935816fa1115d9ce4be3809c2289cf0b36dc311
1 /*
2 * fs/cifs/file.c
4 * vfs operations that deal with files
6 * Copyright (C) International Business Machines Corp., 2002,2010
7 * Author(s): Steve French (sfrench@us.ibm.com)
8 * Jeremy Allison (jra@samba.org)
10 * This library is free software; you can redistribute it and/or modify
11 * it under the terms of the GNU Lesser General Public License as published
12 * by the Free Software Foundation; either version 2.1 of the License, or
13 * (at your option) any later version.
15 * This library is distributed in the hope that it will be useful,
16 * but WITHOUT ANY WARRANTY; without even the implied warranty of
17 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See
18 * the GNU Lesser General Public License for more details.
20 * You should have received a copy of the GNU Lesser General Public License
21 * along with this library; if not, write to the Free Software
22 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
24 #include <linux/fs.h>
25 #include <linux/backing-dev.h>
26 #include <linux/stat.h>
27 #include <linux/fcntl.h>
28 #include <linux/pagemap.h>
29 #include <linux/pagevec.h>
30 #include <linux/writeback.h>
31 #include <linux/task_io_accounting_ops.h>
32 #include <linux/delay.h>
33 #include <linux/mount.h>
34 #include <linux/slab.h>
35 #include <asm/div64.h>
36 #include "cifsfs.h"
37 #include "cifspdu.h"
38 #include "cifsglob.h"
39 #include "cifsproto.h"
40 #include "cifs_unicode.h"
41 #include "cifs_debug.h"
42 #include "cifs_fs_sb.h"
43 #include "fscache.h"
45 static inline int cifs_convert_flags(unsigned int flags)
47 if ((flags & O_ACCMODE) == O_RDONLY)
48 return GENERIC_READ;
49 else if ((flags & O_ACCMODE) == O_WRONLY)
50 return GENERIC_WRITE;
51 else if ((flags & O_ACCMODE) == O_RDWR) {
52 /* GENERIC_ALL is too much permission to request
53 can cause unnecessary access denied on create */
54 /* return GENERIC_ALL; */
55 return (GENERIC_READ | GENERIC_WRITE);
58 return (READ_CONTROL | FILE_WRITE_ATTRIBUTES | FILE_READ_ATTRIBUTES |
59 FILE_WRITE_EA | FILE_APPEND_DATA | FILE_WRITE_DATA |
60 FILE_READ_DATA);
63 static u32 cifs_posix_convert_flags(unsigned int flags)
65 u32 posix_flags = 0;
67 if ((flags & O_ACCMODE) == O_RDONLY)
68 posix_flags = SMB_O_RDONLY;
69 else if ((flags & O_ACCMODE) == O_WRONLY)
70 posix_flags = SMB_O_WRONLY;
71 else if ((flags & O_ACCMODE) == O_RDWR)
72 posix_flags = SMB_O_RDWR;
74 if (flags & O_CREAT)
75 posix_flags |= SMB_O_CREAT;
76 if (flags & O_EXCL)
77 posix_flags |= SMB_O_EXCL;
78 if (flags & O_TRUNC)
79 posix_flags |= SMB_O_TRUNC;
80 /* be safe and imply O_SYNC for O_DSYNC */
81 if (flags & O_DSYNC)
82 posix_flags |= SMB_O_SYNC;
83 if (flags & O_DIRECTORY)
84 posix_flags |= SMB_O_DIRECTORY;
85 if (flags & O_NOFOLLOW)
86 posix_flags |= SMB_O_NOFOLLOW;
87 if (flags & O_DIRECT)
88 posix_flags |= SMB_O_DIRECT;
90 return posix_flags;
93 static inline int cifs_get_disposition(unsigned int flags)
95 if ((flags & (O_CREAT | O_EXCL)) == (O_CREAT | O_EXCL))
96 return FILE_CREATE;
97 else if ((flags & (O_CREAT | O_TRUNC)) == (O_CREAT | O_TRUNC))
98 return FILE_OVERWRITE_IF;
99 else if ((flags & O_CREAT) == O_CREAT)
100 return FILE_OPEN_IF;
101 else if ((flags & O_TRUNC) == O_TRUNC)
102 return FILE_OVERWRITE;
103 else
104 return FILE_OPEN;
107 static inline int cifs_open_inode_helper(struct inode *inode,
108 struct cifsTconInfo *pTcon, __u32 oplock, FILE_ALL_INFO *buf,
109 char *full_path, int xid)
111 struct cifsInodeInfo *pCifsInode = CIFS_I(inode);
112 struct timespec temp;
113 int rc;
115 if (pCifsInode->clientCanCacheRead) {
116 /* we have the inode open somewhere else
117 no need to discard cache data */
118 goto client_can_cache;
121 /* BB need same check in cifs_create too? */
122 /* if not oplocked, invalidate inode pages if mtime or file
123 size changed */
124 temp = cifs_NTtimeToUnix(buf->LastWriteTime);
125 if (timespec_equal(&inode->i_mtime, &temp) &&
126 (inode->i_size ==
127 (loff_t)le64_to_cpu(buf->EndOfFile))) {
128 cFYI(1, "inode unchanged on server");
129 } else {
130 if (inode->i_mapping) {
131 /* BB no need to lock inode until after invalidate
132 since namei code should already have it locked? */
133 rc = filemap_write_and_wait(inode->i_mapping);
134 if (rc != 0)
135 pCifsInode->write_behind_rc = rc;
137 cFYI(1, "invalidating remote inode since open detected it "
138 "changed");
139 invalidate_remote_inode(inode);
142 client_can_cache:
143 if (pTcon->unix_ext)
144 rc = cifs_get_inode_info_unix(&inode, full_path, inode->i_sb,
145 xid);
146 else
147 rc = cifs_get_inode_info(&inode, full_path, buf, inode->i_sb,
148 xid, NULL);
150 if ((oplock & 0xF) == OPLOCK_EXCLUSIVE) {
151 pCifsInode->clientCanCacheAll = true;
152 pCifsInode->clientCanCacheRead = true;
153 cFYI(1, "Exclusive Oplock granted on inode %p", inode);
154 } else if ((oplock & 0xF) == OPLOCK_READ)
155 pCifsInode->clientCanCacheRead = true;
157 return rc;
160 int cifs_posix_open(char *full_path, struct inode **pinode,
161 struct super_block *sb, int mode, unsigned int f_flags,
162 __u32 *poplock, __u16 *pnetfid, int xid)
164 int rc;
165 FILE_UNIX_BASIC_INFO *presp_data;
166 __u32 posix_flags = 0;
167 struct cifs_sb_info *cifs_sb = CIFS_SB(sb);
168 struct cifs_fattr fattr;
169 struct tcon_link *tlink;
170 struct cifsTconInfo *tcon;
172 cFYI(1, "posix open %s", full_path);
174 presp_data = kzalloc(sizeof(FILE_UNIX_BASIC_INFO), GFP_KERNEL);
175 if (presp_data == NULL)
176 return -ENOMEM;
178 tlink = cifs_sb_tlink(cifs_sb);
179 if (IS_ERR(tlink)) {
180 rc = PTR_ERR(tlink);
181 goto posix_open_ret;
184 tcon = tlink_tcon(tlink);
185 mode &= ~current_umask();
187 posix_flags = cifs_posix_convert_flags(f_flags);
188 rc = CIFSPOSIXCreate(xid, tcon, posix_flags, mode, pnetfid, presp_data,
189 poplock, full_path, cifs_sb->local_nls,
190 cifs_sb->mnt_cifs_flags &
191 CIFS_MOUNT_MAP_SPECIAL_CHR);
192 cifs_put_tlink(tlink);
194 if (rc)
195 goto posix_open_ret;
197 if (presp_data->Type == cpu_to_le32(-1))
198 goto posix_open_ret; /* open ok, caller does qpathinfo */
200 if (!pinode)
201 goto posix_open_ret; /* caller does not need info */
203 cifs_unix_basic_to_fattr(&fattr, presp_data, cifs_sb);
205 /* get new inode and set it up */
206 if (*pinode == NULL) {
207 cifs_fill_uniqueid(sb, &fattr);
208 *pinode = cifs_iget(sb, &fattr);
209 if (!*pinode) {
210 rc = -ENOMEM;
211 goto posix_open_ret;
213 } else {
214 cifs_fattr_to_inode(*pinode, &fattr);
217 posix_open_ret:
218 kfree(presp_data);
219 return rc;
222 int cifs_open(struct inode *inode, struct file *file)
224 int rc = -EACCES;
225 int xid;
226 __u32 oplock;
227 struct cifs_sb_info *cifs_sb;
228 struct cifsTconInfo *tcon;
229 struct tcon_link *tlink;
230 struct cifsFileInfo *pCifsFile = NULL;
231 struct cifsInodeInfo *pCifsInode;
232 char *full_path = NULL;
233 int desiredAccess;
234 int disposition;
235 __u16 netfid;
236 FILE_ALL_INFO *buf = NULL;
238 xid = GetXid();
240 cifs_sb = CIFS_SB(inode->i_sb);
241 tlink = cifs_sb_tlink(cifs_sb);
242 if (IS_ERR(tlink)) {
243 FreeXid(xid);
244 return PTR_ERR(tlink);
246 tcon = tlink_tcon(tlink);
248 pCifsInode = CIFS_I(file->f_path.dentry->d_inode);
250 full_path = build_path_from_dentry(file->f_path.dentry);
251 if (full_path == NULL) {
252 rc = -ENOMEM;
253 goto out;
256 cFYI(1, "inode = 0x%p file flags are 0x%x for %s",
257 inode, file->f_flags, full_path);
259 if (oplockEnabled)
260 oplock = REQ_OPLOCK;
261 else
262 oplock = 0;
264 if (!tcon->broken_posix_open && tcon->unix_ext &&
265 (tcon->ses->capabilities & CAP_UNIX) &&
266 (CIFS_UNIX_POSIX_PATH_OPS_CAP &
267 le64_to_cpu(tcon->fsUnixInfo.Capability))) {
268 /* can not refresh inode info since size could be stale */
269 rc = cifs_posix_open(full_path, &inode, inode->i_sb,
270 cifs_sb->mnt_file_mode /* ignored */,
271 file->f_flags, &oplock, &netfid, xid);
272 if (rc == 0) {
273 cFYI(1, "posix open succeeded");
275 pCifsFile = cifs_new_fileinfo(netfid, file, tlink,
276 oplock);
277 if (pCifsFile == NULL) {
278 CIFSSMBClose(xid, tcon, netfid);
279 rc = -ENOMEM;
282 cifs_fscache_set_inode_cookie(inode, file);
284 goto out;
285 } else if ((rc == -EINVAL) || (rc == -EOPNOTSUPP)) {
286 if (tcon->ses->serverNOS)
287 cERROR(1, "server %s of type %s returned"
288 " unexpected error on SMB posix open"
289 ", disabling posix open support."
290 " Check if server update available.",
291 tcon->ses->serverName,
292 tcon->ses->serverNOS);
293 tcon->broken_posix_open = true;
294 } else if ((rc != -EIO) && (rc != -EREMOTE) &&
295 (rc != -EOPNOTSUPP)) /* path not found or net err */
296 goto out;
297 /* else fallthrough to retry open the old way on network i/o
298 or DFS errors */
301 desiredAccess = cifs_convert_flags(file->f_flags);
303 /*********************************************************************
304 * open flag mapping table:
306 * POSIX Flag CIFS Disposition
307 * ---------- ----------------
308 * O_CREAT FILE_OPEN_IF
309 * O_CREAT | O_EXCL FILE_CREATE
310 * O_CREAT | O_TRUNC FILE_OVERWRITE_IF
311 * O_TRUNC FILE_OVERWRITE
312 * none of the above FILE_OPEN
314 * Note that there is not a direct match between disposition
315 * FILE_SUPERSEDE (ie create whether or not file exists although
316 * O_CREAT | O_TRUNC is similar but truncates the existing
317 * file rather than creating a new file as FILE_SUPERSEDE does
318 * (which uses the attributes / metadata passed in on open call)
320 *? O_SYNC is a reasonable match to CIFS writethrough flag
321 *? and the read write flags match reasonably. O_LARGEFILE
322 *? is irrelevant because largefile support is always used
323 *? by this client. Flags O_APPEND, O_DIRECT, O_DIRECTORY,
324 * O_FASYNC, O_NOFOLLOW, O_NONBLOCK need further investigation
325 *********************************************************************/
327 disposition = cifs_get_disposition(file->f_flags);
329 /* BB pass O_SYNC flag through on file attributes .. BB */
331 /* Also refresh inode by passing in file_info buf returned by SMBOpen
332 and calling get_inode_info with returned buf (at least helps
333 non-Unix server case) */
335 /* BB we can not do this if this is the second open of a file
336 and the first handle has writebehind data, we might be
337 able to simply do a filemap_fdatawrite/filemap_fdatawait first */
338 buf = kmalloc(sizeof(FILE_ALL_INFO), GFP_KERNEL);
339 if (!buf) {
340 rc = -ENOMEM;
341 goto out;
344 if (tcon->ses->capabilities & CAP_NT_SMBS)
345 rc = CIFSSMBOpen(xid, tcon, full_path, disposition,
346 desiredAccess, CREATE_NOT_DIR, &netfid, &oplock, buf,
347 cifs_sb->local_nls, cifs_sb->mnt_cifs_flags
348 & CIFS_MOUNT_MAP_SPECIAL_CHR);
349 else
350 rc = -EIO; /* no NT SMB support fall into legacy open below */
352 if (rc == -EIO) {
353 /* Old server, try legacy style OpenX */
354 rc = SMBLegacyOpen(xid, tcon, full_path, disposition,
355 desiredAccess, CREATE_NOT_DIR, &netfid, &oplock, buf,
356 cifs_sb->local_nls, cifs_sb->mnt_cifs_flags
357 & CIFS_MOUNT_MAP_SPECIAL_CHR);
359 if (rc) {
360 cFYI(1, "cifs_open returned 0x%x", rc);
361 goto out;
364 rc = cifs_open_inode_helper(inode, tcon, oplock, buf, full_path, xid);
365 if (rc != 0)
366 goto out;
368 pCifsFile = cifs_new_fileinfo(netfid, file, tlink, oplock);
369 if (pCifsFile == NULL) {
370 rc = -ENOMEM;
371 goto out;
374 cifs_fscache_set_inode_cookie(inode, file);
376 if (oplock & CIFS_CREATE_ACTION) {
377 /* time to set mode which we can not set earlier due to
378 problems creating new read-only files */
379 if (tcon->unix_ext) {
380 struct cifs_unix_set_info_args args = {
381 .mode = inode->i_mode,
382 .uid = NO_CHANGE_64,
383 .gid = NO_CHANGE_64,
384 .ctime = NO_CHANGE_64,
385 .atime = NO_CHANGE_64,
386 .mtime = NO_CHANGE_64,
387 .device = 0,
389 CIFSSMBUnixSetPathInfo(xid, tcon, full_path, &args,
390 cifs_sb->local_nls,
391 cifs_sb->mnt_cifs_flags &
392 CIFS_MOUNT_MAP_SPECIAL_CHR);
396 out:
397 kfree(buf);
398 kfree(full_path);
399 FreeXid(xid);
400 cifs_put_tlink(tlink);
401 return rc;
404 /* Try to reacquire byte range locks that were released when session */
405 /* to server was lost */
406 static int cifs_relock_file(struct cifsFileInfo *cifsFile)
408 int rc = 0;
410 /* BB list all locks open on this file and relock */
412 return rc;
415 static int cifs_reopen_file(struct cifsFileInfo *pCifsFile, bool can_flush)
417 int rc = -EACCES;
418 int xid;
419 __u32 oplock;
420 struct cifs_sb_info *cifs_sb;
421 struct cifsTconInfo *tcon;
422 struct cifsInodeInfo *pCifsInode;
423 struct inode *inode;
424 char *full_path = NULL;
425 int desiredAccess;
426 int disposition = FILE_OPEN;
427 __u16 netfid;
429 xid = GetXid();
430 mutex_lock(&pCifsFile->fh_mutex);
431 if (!pCifsFile->invalidHandle) {
432 mutex_unlock(&pCifsFile->fh_mutex);
433 rc = 0;
434 FreeXid(xid);
435 return rc;
438 inode = pCifsFile->dentry->d_inode;
439 cifs_sb = CIFS_SB(inode->i_sb);
440 tcon = tlink_tcon(pCifsFile->tlink);
442 /* can not grab rename sem here because various ops, including
443 those that already have the rename sem can end up causing writepage
444 to get called and if the server was down that means we end up here,
445 and we can never tell if the caller already has the rename_sem */
446 full_path = build_path_from_dentry(pCifsFile->dentry);
447 if (full_path == NULL) {
448 rc = -ENOMEM;
449 mutex_unlock(&pCifsFile->fh_mutex);
450 FreeXid(xid);
451 return rc;
454 cFYI(1, "inode = 0x%p file flags 0x%x for %s",
455 inode, pCifsFile->f_flags, full_path);
457 if (oplockEnabled)
458 oplock = REQ_OPLOCK;
459 else
460 oplock = 0;
462 if (tcon->unix_ext && (tcon->ses->capabilities & CAP_UNIX) &&
463 (CIFS_UNIX_POSIX_PATH_OPS_CAP &
464 le64_to_cpu(tcon->fsUnixInfo.Capability))) {
467 * O_CREAT, O_EXCL and O_TRUNC already had their effect on the
468 * original open. Must mask them off for a reopen.
470 unsigned int oflags = pCifsFile->f_flags &
471 ~(O_CREAT | O_EXCL | O_TRUNC);
473 rc = cifs_posix_open(full_path, NULL, inode->i_sb,
474 cifs_sb->mnt_file_mode /* ignored */,
475 oflags, &oplock, &netfid, xid);
476 if (rc == 0) {
477 cFYI(1, "posix reopen succeeded");
478 goto reopen_success;
480 /* fallthrough to retry open the old way on errors, especially
481 in the reconnect path it is important to retry hard */
484 desiredAccess = cifs_convert_flags(pCifsFile->f_flags);
486 /* Can not refresh inode by passing in file_info buf to be returned
487 by SMBOpen and then calling get_inode_info with returned buf
488 since file might have write behind data that needs to be flushed
489 and server version of file size can be stale. If we knew for sure
490 that inode was not dirty locally we could do this */
492 rc = CIFSSMBOpen(xid, tcon, full_path, disposition, desiredAccess,
493 CREATE_NOT_DIR, &netfid, &oplock, NULL,
494 cifs_sb->local_nls, cifs_sb->mnt_cifs_flags &
495 CIFS_MOUNT_MAP_SPECIAL_CHR);
496 if (rc) {
497 mutex_unlock(&pCifsFile->fh_mutex);
498 cFYI(1, "cifs_open returned 0x%x", rc);
499 cFYI(1, "oplock: %d", oplock);
500 goto reopen_error_exit;
503 reopen_success:
504 pCifsFile->netfid = netfid;
505 pCifsFile->invalidHandle = false;
506 mutex_unlock(&pCifsFile->fh_mutex);
507 pCifsInode = CIFS_I(inode);
509 if (can_flush) {
510 rc = filemap_write_and_wait(inode->i_mapping);
511 if (rc != 0)
512 CIFS_I(inode)->write_behind_rc = rc;
514 pCifsInode->clientCanCacheAll = false;
515 pCifsInode->clientCanCacheRead = false;
516 if (tcon->unix_ext)
517 rc = cifs_get_inode_info_unix(&inode,
518 full_path, inode->i_sb, xid);
519 else
520 rc = cifs_get_inode_info(&inode,
521 full_path, NULL, inode->i_sb,
522 xid, NULL);
523 } /* else we are writing out data to server already
524 and could deadlock if we tried to flush data, and
525 since we do not know if we have data that would
526 invalidate the current end of file on the server
527 we can not go to the server to get the new inod
528 info */
529 if ((oplock & 0xF) == OPLOCK_EXCLUSIVE) {
530 pCifsInode->clientCanCacheAll = true;
531 pCifsInode->clientCanCacheRead = true;
532 cFYI(1, "Exclusive Oplock granted on inode %p",
533 pCifsFile->dentry->d_inode);
534 } else if ((oplock & 0xF) == OPLOCK_READ) {
535 pCifsInode->clientCanCacheRead = true;
536 pCifsInode->clientCanCacheAll = false;
537 } else {
538 pCifsInode->clientCanCacheRead = false;
539 pCifsInode->clientCanCacheAll = false;
541 cifs_relock_file(pCifsFile);
543 reopen_error_exit:
544 kfree(full_path);
545 FreeXid(xid);
546 return rc;
549 int cifs_close(struct inode *inode, struct file *file)
551 int rc = 0;
552 int xid, timeout;
553 struct cifs_sb_info *cifs_sb;
554 struct cifsTconInfo *pTcon;
555 struct cifsFileInfo *pSMBFile = file->private_data;
557 xid = GetXid();
559 cifs_sb = CIFS_SB(inode->i_sb);
560 pTcon = tlink_tcon(pSMBFile->tlink);
561 if (pSMBFile) {
562 struct cifsLockInfo *li, *tmp;
563 write_lock(&GlobalSMBSeslock);
564 pSMBFile->closePend = true;
565 if (pTcon) {
566 /* no sense reconnecting to close a file that is
567 already closed */
568 if (!pTcon->need_reconnect) {
569 write_unlock(&GlobalSMBSeslock);
570 timeout = 2;
571 while ((atomic_read(&pSMBFile->count) != 1)
572 && (timeout <= 2048)) {
573 /* Give write a better chance to get to
574 server ahead of the close. We do not
575 want to add a wait_q here as it would
576 increase the memory utilization as
577 the struct would be in each open file,
578 but this should give enough time to
579 clear the socket */
580 cFYI(DBG2, "close delay, write pending");
581 msleep(timeout);
582 timeout *= 4;
584 if (!pTcon->need_reconnect &&
585 !pSMBFile->invalidHandle)
586 rc = CIFSSMBClose(xid, pTcon,
587 pSMBFile->netfid);
588 } else
589 write_unlock(&GlobalSMBSeslock);
590 } else
591 write_unlock(&GlobalSMBSeslock);
593 /* Delete any outstanding lock records.
594 We'll lose them when the file is closed anyway. */
595 mutex_lock(&pSMBFile->lock_mutex);
596 list_for_each_entry_safe(li, tmp, &pSMBFile->llist, llist) {
597 list_del(&li->llist);
598 kfree(li);
600 mutex_unlock(&pSMBFile->lock_mutex);
602 write_lock(&GlobalSMBSeslock);
603 list_del(&pSMBFile->flist);
604 list_del(&pSMBFile->tlist);
605 write_unlock(&GlobalSMBSeslock);
606 cifsFileInfo_put(file->private_data);
607 file->private_data = NULL;
608 } else
609 rc = -EBADF;
611 read_lock(&GlobalSMBSeslock);
612 if (list_empty(&(CIFS_I(inode)->openFileList))) {
613 cFYI(1, "closing last open instance for inode %p", inode);
614 /* if the file is not open we do not know if we can cache info
615 on this inode, much less write behind and read ahead */
616 CIFS_I(inode)->clientCanCacheRead = false;
617 CIFS_I(inode)->clientCanCacheAll = false;
619 read_unlock(&GlobalSMBSeslock);
620 if ((rc == 0) && CIFS_I(inode)->write_behind_rc)
621 rc = CIFS_I(inode)->write_behind_rc;
622 FreeXid(xid);
623 return rc;
626 int cifs_closedir(struct inode *inode, struct file *file)
628 int rc = 0;
629 int xid;
630 struct cifsFileInfo *pCFileStruct = file->private_data;
631 char *ptmp;
633 cFYI(1, "Closedir inode = 0x%p", inode);
635 xid = GetXid();
637 if (pCFileStruct) {
638 struct cifsTconInfo *pTcon = tlink_tcon(pCFileStruct->tlink);
640 cFYI(1, "Freeing private data in close dir");
641 write_lock(&GlobalSMBSeslock);
642 if (!pCFileStruct->srch_inf.endOfSearch &&
643 !pCFileStruct->invalidHandle) {
644 pCFileStruct->invalidHandle = true;
645 write_unlock(&GlobalSMBSeslock);
646 rc = CIFSFindClose(xid, pTcon, pCFileStruct->netfid);
647 cFYI(1, "Closing uncompleted readdir with rc %d",
648 rc);
649 /* not much we can do if it fails anyway, ignore rc */
650 rc = 0;
651 } else
652 write_unlock(&GlobalSMBSeslock);
653 ptmp = pCFileStruct->srch_inf.ntwrk_buf_start;
654 if (ptmp) {
655 cFYI(1, "closedir free smb buf in srch struct");
656 pCFileStruct->srch_inf.ntwrk_buf_start = NULL;
657 if (pCFileStruct->srch_inf.smallBuf)
658 cifs_small_buf_release(ptmp);
659 else
660 cifs_buf_release(ptmp);
662 cifs_put_tlink(pCFileStruct->tlink);
663 kfree(file->private_data);
664 file->private_data = NULL;
666 /* BB can we lock the filestruct while this is going on? */
667 FreeXid(xid);
668 return rc;
671 static int store_file_lock(struct cifsFileInfo *fid, __u64 len,
672 __u64 offset, __u8 lockType)
674 struct cifsLockInfo *li =
675 kmalloc(sizeof(struct cifsLockInfo), GFP_KERNEL);
676 if (li == NULL)
677 return -ENOMEM;
678 li->offset = offset;
679 li->length = len;
680 li->type = lockType;
681 mutex_lock(&fid->lock_mutex);
682 list_add(&li->llist, &fid->llist);
683 mutex_unlock(&fid->lock_mutex);
684 return 0;
687 int cifs_lock(struct file *file, int cmd, struct file_lock *pfLock)
689 int rc, xid;
690 __u32 numLock = 0;
691 __u32 numUnlock = 0;
692 __u64 length;
693 bool wait_flag = false;
694 struct cifs_sb_info *cifs_sb;
695 struct cifsTconInfo *tcon;
696 __u16 netfid;
697 __u8 lockType = LOCKING_ANDX_LARGE_FILES;
698 bool posix_locking = 0;
700 length = 1 + pfLock->fl_end - pfLock->fl_start;
701 rc = -EACCES;
702 xid = GetXid();
704 cFYI(1, "Lock parm: 0x%x flockflags: "
705 "0x%x flocktype: 0x%x start: %lld end: %lld",
706 cmd, pfLock->fl_flags, pfLock->fl_type, pfLock->fl_start,
707 pfLock->fl_end);
709 if (pfLock->fl_flags & FL_POSIX)
710 cFYI(1, "Posix");
711 if (pfLock->fl_flags & FL_FLOCK)
712 cFYI(1, "Flock");
713 if (pfLock->fl_flags & FL_SLEEP) {
714 cFYI(1, "Blocking lock");
715 wait_flag = true;
717 if (pfLock->fl_flags & FL_ACCESS)
718 cFYI(1, "Process suspended by mandatory locking - "
719 "not implemented yet");
720 if (pfLock->fl_flags & FL_LEASE)
721 cFYI(1, "Lease on file - not implemented yet");
722 if (pfLock->fl_flags &
723 (~(FL_POSIX | FL_FLOCK | FL_SLEEP | FL_ACCESS | FL_LEASE)))
724 cFYI(1, "Unknown lock flags 0x%x", pfLock->fl_flags);
726 if (pfLock->fl_type == F_WRLCK) {
727 cFYI(1, "F_WRLCK ");
728 numLock = 1;
729 } else if (pfLock->fl_type == F_UNLCK) {
730 cFYI(1, "F_UNLCK");
731 numUnlock = 1;
732 /* Check if unlock includes more than
733 one lock range */
734 } else if (pfLock->fl_type == F_RDLCK) {
735 cFYI(1, "F_RDLCK");
736 lockType |= LOCKING_ANDX_SHARED_LOCK;
737 numLock = 1;
738 } else if (pfLock->fl_type == F_EXLCK) {
739 cFYI(1, "F_EXLCK");
740 numLock = 1;
741 } else if (pfLock->fl_type == F_SHLCK) {
742 cFYI(1, "F_SHLCK");
743 lockType |= LOCKING_ANDX_SHARED_LOCK;
744 numLock = 1;
745 } else
746 cFYI(1, "Unknown type of lock");
748 cifs_sb = CIFS_SB(file->f_path.dentry->d_sb);
749 tcon = tlink_tcon(((struct cifsFileInfo *)file->private_data)->tlink);
751 if (file->private_data == NULL) {
752 rc = -EBADF;
753 FreeXid(xid);
754 return rc;
756 netfid = ((struct cifsFileInfo *)file->private_data)->netfid;
758 if ((tcon->ses->capabilities & CAP_UNIX) &&
759 (CIFS_UNIX_FCNTL_CAP & le64_to_cpu(tcon->fsUnixInfo.Capability)) &&
760 ((cifs_sb->mnt_cifs_flags & CIFS_MOUNT_NOPOSIXBRL) == 0))
761 posix_locking = 1;
762 /* BB add code here to normalize offset and length to
763 account for negative length which we can not accept over the
764 wire */
765 if (IS_GETLK(cmd)) {
766 if (posix_locking) {
767 int posix_lock_type;
768 if (lockType & LOCKING_ANDX_SHARED_LOCK)
769 posix_lock_type = CIFS_RDLCK;
770 else
771 posix_lock_type = CIFS_WRLCK;
772 rc = CIFSSMBPosixLock(xid, tcon, netfid, 1 /* get */,
773 length, pfLock,
774 posix_lock_type, wait_flag);
775 FreeXid(xid);
776 return rc;
779 /* BB we could chain these into one lock request BB */
780 rc = CIFSSMBLock(xid, tcon, netfid, length, pfLock->fl_start,
781 0, 1, lockType, 0 /* wait flag */ );
782 if (rc == 0) {
783 rc = CIFSSMBLock(xid, tcon, netfid, length,
784 pfLock->fl_start, 1 /* numUnlock */ ,
785 0 /* numLock */ , lockType,
786 0 /* wait flag */ );
787 pfLock->fl_type = F_UNLCK;
788 if (rc != 0)
789 cERROR(1, "Error unlocking previously locked "
790 "range %d during test of lock", rc);
791 rc = 0;
793 } else {
794 /* if rc == ERR_SHARING_VIOLATION ? */
795 rc = 0;
797 if (lockType & LOCKING_ANDX_SHARED_LOCK) {
798 pfLock->fl_type = F_WRLCK;
799 } else {
800 rc = CIFSSMBLock(xid, tcon, netfid, length,
801 pfLock->fl_start, 0, 1,
802 lockType | LOCKING_ANDX_SHARED_LOCK,
803 0 /* wait flag */);
804 if (rc == 0) {
805 rc = CIFSSMBLock(xid, tcon, netfid,
806 length, pfLock->fl_start, 1, 0,
807 lockType |
808 LOCKING_ANDX_SHARED_LOCK,
809 0 /* wait flag */);
810 pfLock->fl_type = F_RDLCK;
811 if (rc != 0)
812 cERROR(1, "Error unlocking "
813 "previously locked range %d "
814 "during test of lock", rc);
815 rc = 0;
816 } else {
817 pfLock->fl_type = F_WRLCK;
818 rc = 0;
823 FreeXid(xid);
824 return rc;
827 if (!numLock && !numUnlock) {
828 /* if no lock or unlock then nothing
829 to do since we do not know what it is */
830 FreeXid(xid);
831 return -EOPNOTSUPP;
834 if (posix_locking) {
835 int posix_lock_type;
836 if (lockType & LOCKING_ANDX_SHARED_LOCK)
837 posix_lock_type = CIFS_RDLCK;
838 else
839 posix_lock_type = CIFS_WRLCK;
841 if (numUnlock == 1)
842 posix_lock_type = CIFS_UNLCK;
844 rc = CIFSSMBPosixLock(xid, tcon, netfid, 0 /* set */,
845 length, pfLock,
846 posix_lock_type, wait_flag);
847 } else {
848 struct cifsFileInfo *fid = file->private_data;
850 if (numLock) {
851 rc = CIFSSMBLock(xid, tcon, netfid, length,
852 pfLock->fl_start,
853 0, numLock, lockType, wait_flag);
855 if (rc == 0) {
856 /* For Windows locks we must store them. */
857 rc = store_file_lock(fid, length,
858 pfLock->fl_start, lockType);
860 } else if (numUnlock) {
861 /* For each stored lock that this unlock overlaps
862 completely, unlock it. */
863 int stored_rc = 0;
864 struct cifsLockInfo *li, *tmp;
866 rc = 0;
867 mutex_lock(&fid->lock_mutex);
868 list_for_each_entry_safe(li, tmp, &fid->llist, llist) {
869 if (pfLock->fl_start <= li->offset &&
870 (pfLock->fl_start + length) >=
871 (li->offset + li->length)) {
872 stored_rc = CIFSSMBLock(xid, tcon,
873 netfid,
874 li->length, li->offset,
875 1, 0, li->type, false);
876 if (stored_rc)
877 rc = stored_rc;
878 else {
879 list_del(&li->llist);
880 kfree(li);
884 mutex_unlock(&fid->lock_mutex);
888 if (pfLock->fl_flags & FL_POSIX)
889 posix_lock_file_wait(file, pfLock);
890 FreeXid(xid);
891 return rc;
895 * Set the timeout on write requests past EOF. For some servers (Windows)
896 * these calls can be very long.
898 * If we're writing >10M past the EOF we give a 180s timeout. Anything less
899 * than that gets a 45s timeout. Writes not past EOF get 15s timeouts.
900 * The 10M cutoff is totally arbitrary. A better scheme for this would be
901 * welcome if someone wants to suggest one.
903 * We may be able to do a better job with this if there were some way to
904 * declare that a file should be sparse.
906 static int
907 cifs_write_timeout(struct cifsInodeInfo *cifsi, loff_t offset)
909 if (offset <= cifsi->server_eof)
910 return CIFS_STD_OP;
911 else if (offset > (cifsi->server_eof + (10 * 1024 * 1024)))
912 return CIFS_VLONG_OP;
913 else
914 return CIFS_LONG_OP;
917 /* update the file size (if needed) after a write */
918 static void
919 cifs_update_eof(struct cifsInodeInfo *cifsi, loff_t offset,
920 unsigned int bytes_written)
922 loff_t end_of_write = offset + bytes_written;
924 if (end_of_write > cifsi->server_eof)
925 cifsi->server_eof = end_of_write;
928 ssize_t cifs_user_write(struct file *file, const char __user *write_data,
929 size_t write_size, loff_t *poffset)
931 int rc = 0;
932 unsigned int bytes_written = 0;
933 unsigned int total_written;
934 struct cifs_sb_info *cifs_sb;
935 struct cifsTconInfo *pTcon;
936 int xid, long_op;
937 struct cifsFileInfo *open_file;
938 struct cifsInodeInfo *cifsi = CIFS_I(file->f_path.dentry->d_inode);
940 cifs_sb = CIFS_SB(file->f_path.dentry->d_sb);
942 /* cFYI(1, " write %d bytes to offset %lld of %s", write_size,
943 *poffset, file->f_path.dentry->d_name.name); */
945 if (file->private_data == NULL)
946 return -EBADF;
948 open_file = file->private_data;
949 pTcon = tlink_tcon(open_file->tlink);
951 rc = generic_write_checks(file, poffset, &write_size, 0);
952 if (rc)
953 return rc;
955 xid = GetXid();
957 long_op = cifs_write_timeout(cifsi, *poffset);
958 for (total_written = 0; write_size > total_written;
959 total_written += bytes_written) {
960 rc = -EAGAIN;
961 while (rc == -EAGAIN) {
962 if (file->private_data == NULL) {
963 /* file has been closed on us */
964 FreeXid(xid);
965 /* if we have gotten here we have written some data
966 and blocked, and the file has been freed on us while
967 we blocked so return what we managed to write */
968 return total_written;
970 if (open_file->closePend) {
971 FreeXid(xid);
972 if (total_written)
973 return total_written;
974 else
975 return -EBADF;
977 if (open_file->invalidHandle) {
978 /* we could deadlock if we called
979 filemap_fdatawait from here so tell
980 reopen_file not to flush data to server
981 now */
982 rc = cifs_reopen_file(open_file, false);
983 if (rc != 0)
984 break;
987 rc = CIFSSMBWrite(xid, pTcon,
988 open_file->netfid,
989 min_t(const int, cifs_sb->wsize,
990 write_size - total_written),
991 *poffset, &bytes_written,
992 NULL, write_data + total_written, long_op);
994 if (rc || (bytes_written == 0)) {
995 if (total_written)
996 break;
997 else {
998 FreeXid(xid);
999 return rc;
1001 } else {
1002 cifs_update_eof(cifsi, *poffset, bytes_written);
1003 *poffset += bytes_written;
1005 long_op = CIFS_STD_OP; /* subsequent writes fast -
1006 15 seconds is plenty */
1009 cifs_stats_bytes_written(pTcon, total_written);
1011 /* since the write may have blocked check these pointers again */
1012 if ((file->f_path.dentry) && (file->f_path.dentry->d_inode)) {
1013 struct inode *inode = file->f_path.dentry->d_inode;
1014 /* Do not update local mtime - server will set its actual value on write
1015 * inode->i_ctime = inode->i_mtime =
1016 * current_fs_time(inode->i_sb);*/
1017 if (total_written > 0) {
1018 spin_lock(&inode->i_lock);
1019 if (*poffset > file->f_path.dentry->d_inode->i_size)
1020 i_size_write(file->f_path.dentry->d_inode,
1021 *poffset);
1022 spin_unlock(&inode->i_lock);
1024 mark_inode_dirty_sync(file->f_path.dentry->d_inode);
1026 FreeXid(xid);
1027 return total_written;
1030 static ssize_t cifs_write(struct cifsFileInfo *open_file,
1031 const char *write_data, size_t write_size,
1032 loff_t *poffset)
1034 int rc = 0;
1035 unsigned int bytes_written = 0;
1036 unsigned int total_written;
1037 struct cifs_sb_info *cifs_sb;
1038 struct cifsTconInfo *pTcon;
1039 int xid, long_op;
1040 struct dentry *dentry = open_file->dentry;
1041 struct cifsInodeInfo *cifsi = CIFS_I(dentry->d_inode);
1043 cifs_sb = CIFS_SB(dentry->d_sb);
1045 cFYI(1, "write %zd bytes to offset %lld of %s", write_size,
1046 *poffset, dentry->d_name.name);
1048 pTcon = tlink_tcon(open_file->tlink);
1050 xid = GetXid();
1052 long_op = cifs_write_timeout(cifsi, *poffset);
1053 for (total_written = 0; write_size > total_written;
1054 total_written += bytes_written) {
1055 rc = -EAGAIN;
1056 while (rc == -EAGAIN) {
1057 if (open_file->closePend) {
1058 FreeXid(xid);
1059 if (total_written)
1060 return total_written;
1061 else
1062 return -EBADF;
1064 if (open_file->invalidHandle) {
1065 /* we could deadlock if we called
1066 filemap_fdatawait from here so tell
1067 reopen_file not to flush data to
1068 server now */
1069 rc = cifs_reopen_file(open_file, false);
1070 if (rc != 0)
1071 break;
1073 if (experimEnabled || (pTcon->ses->server &&
1074 ((pTcon->ses->server->secMode &
1075 (SECMODE_SIGN_REQUIRED | SECMODE_SIGN_ENABLED))
1076 == 0))) {
1077 struct kvec iov[2];
1078 unsigned int len;
1080 len = min((size_t)cifs_sb->wsize,
1081 write_size - total_written);
1082 /* iov[0] is reserved for smb header */
1083 iov[1].iov_base = (char *)write_data +
1084 total_written;
1085 iov[1].iov_len = len;
1086 rc = CIFSSMBWrite2(xid, pTcon,
1087 open_file->netfid, len,
1088 *poffset, &bytes_written,
1089 iov, 1, long_op);
1090 } else
1091 rc = CIFSSMBWrite(xid, pTcon,
1092 open_file->netfid,
1093 min_t(const int, cifs_sb->wsize,
1094 write_size - total_written),
1095 *poffset, &bytes_written,
1096 write_data + total_written,
1097 NULL, long_op);
1099 if (rc || (bytes_written == 0)) {
1100 if (total_written)
1101 break;
1102 else {
1103 FreeXid(xid);
1104 return rc;
1106 } else {
1107 cifs_update_eof(cifsi, *poffset, bytes_written);
1108 *poffset += bytes_written;
1110 long_op = CIFS_STD_OP; /* subsequent writes fast -
1111 15 seconds is plenty */
1114 cifs_stats_bytes_written(pTcon, total_written);
1116 if (total_written > 0) {
1117 spin_lock(&dentry->d_inode->i_lock);
1118 if (*poffset > dentry->d_inode->i_size)
1119 i_size_write(dentry->d_inode, *poffset);
1120 spin_unlock(&dentry->d_inode->i_lock);
1122 mark_inode_dirty_sync(dentry->d_inode);
1123 FreeXid(xid);
1124 return total_written;
1127 #ifdef CONFIG_CIFS_EXPERIMENTAL
1128 struct cifsFileInfo *find_readable_file(struct cifsInodeInfo *cifs_inode,
1129 bool fsuid_only)
1131 struct cifsFileInfo *open_file = NULL;
1132 struct cifs_sb_info *cifs_sb = CIFS_SB(cifs_inode->vfs_inode.i_sb);
1134 /* only filter by fsuid on multiuser mounts */
1135 if (!(cifs_sb->mnt_cifs_flags & CIFS_MOUNT_MULTIUSER))
1136 fsuid_only = false;
1138 read_lock(&GlobalSMBSeslock);
1139 /* we could simply get the first_list_entry since write-only entries
1140 are always at the end of the list but since the first entry might
1141 have a close pending, we go through the whole list */
1142 list_for_each_entry(open_file, &cifs_inode->openFileList, flist) {
1143 if (open_file->closePend)
1144 continue;
1145 if (fsuid_only && open_file->uid != current_fsuid())
1146 continue;
1147 if (OPEN_FMODE(open_file->f_flags) & FMODE_READ) {
1148 if (!open_file->invalidHandle) {
1149 /* found a good file */
1150 /* lock it so it will not be closed on us */
1151 cifsFileInfo_get(open_file);
1152 read_unlock(&GlobalSMBSeslock);
1153 return open_file;
1154 } /* else might as well continue, and look for
1155 another, or simply have the caller reopen it
1156 again rather than trying to fix this handle */
1157 } else /* write only file */
1158 break; /* write only files are last so must be done */
1160 read_unlock(&GlobalSMBSeslock);
1161 return NULL;
1163 #endif
1165 struct cifsFileInfo *find_writable_file(struct cifsInodeInfo *cifs_inode,
1166 bool fsuid_only)
1168 struct cifsFileInfo *open_file;
1169 struct cifs_sb_info *cifs_sb = CIFS_SB(cifs_inode->vfs_inode.i_sb);
1170 bool any_available = false;
1171 int rc;
1173 /* Having a null inode here (because mapping->host was set to zero by
1174 the VFS or MM) should not happen but we had reports of on oops (due to
1175 it being zero) during stress testcases so we need to check for it */
1177 if (cifs_inode == NULL) {
1178 cERROR(1, "Null inode passed to cifs_writeable_file");
1179 dump_stack();
1180 return NULL;
1183 /* only filter by fsuid on multiuser mounts */
1184 if (!(cifs_sb->mnt_cifs_flags & CIFS_MOUNT_MULTIUSER))
1185 fsuid_only = false;
1187 read_lock(&GlobalSMBSeslock);
1188 refind_writable:
1189 list_for_each_entry(open_file, &cifs_inode->openFileList, flist) {
1190 if (open_file->closePend)
1191 continue;
1192 if (!any_available && open_file->pid != current->tgid)
1193 continue;
1194 if (fsuid_only && open_file->uid != current_fsuid())
1195 continue;
1196 if (OPEN_FMODE(open_file->f_flags) & FMODE_WRITE) {
1197 cifsFileInfo_get(open_file);
1199 if (!open_file->invalidHandle) {
1200 /* found a good writable file */
1201 read_unlock(&GlobalSMBSeslock);
1202 return open_file;
1205 read_unlock(&GlobalSMBSeslock);
1206 /* Had to unlock since following call can block */
1207 rc = cifs_reopen_file(open_file, false);
1208 if (!rc) {
1209 if (!open_file->closePend)
1210 return open_file;
1211 else { /* start over in case this was deleted */
1212 /* since the list could be modified */
1213 read_lock(&GlobalSMBSeslock);
1214 cifsFileInfo_put(open_file);
1215 goto refind_writable;
1219 /* if it fails, try another handle if possible -
1220 (we can not do this if closePending since
1221 loop could be modified - in which case we
1222 have to start at the beginning of the list
1223 again. Note that it would be bad
1224 to hold up writepages here (rather than
1225 in caller) with continuous retries */
1226 cFYI(1, "wp failed on reopen file");
1227 read_lock(&GlobalSMBSeslock);
1228 /* can not use this handle, no write
1229 pending on this one after all */
1230 cifsFileInfo_put(open_file);
1232 if (open_file->closePend) /* list could have changed */
1233 goto refind_writable;
1234 /* else we simply continue to the next entry. Thus
1235 we do not loop on reopen errors. If we
1236 can not reopen the file, for example if we
1237 reconnected to a server with another client
1238 racing to delete or lock the file we would not
1239 make progress if we restarted before the beginning
1240 of the loop here. */
1243 /* couldn't find useable FH with same pid, try any available */
1244 if (!any_available) {
1245 any_available = true;
1246 goto refind_writable;
1248 read_unlock(&GlobalSMBSeslock);
1249 return NULL;
1252 static int cifs_partialpagewrite(struct page *page, unsigned from, unsigned to)
1254 struct address_space *mapping = page->mapping;
1255 loff_t offset = (loff_t)page->index << PAGE_CACHE_SHIFT;
1256 char *write_data;
1257 int rc = -EFAULT;
1258 int bytes_written = 0;
1259 struct cifs_sb_info *cifs_sb;
1260 struct inode *inode;
1261 struct cifsFileInfo *open_file;
1263 if (!mapping || !mapping->host)
1264 return -EFAULT;
1266 inode = page->mapping->host;
1267 cifs_sb = CIFS_SB(inode->i_sb);
1269 offset += (loff_t)from;
1270 write_data = kmap(page);
1271 write_data += from;
1273 if ((to > PAGE_CACHE_SIZE) || (from > to)) {
1274 kunmap(page);
1275 return -EIO;
1278 /* racing with truncate? */
1279 if (offset > mapping->host->i_size) {
1280 kunmap(page);
1281 return 0; /* don't care */
1284 /* check to make sure that we are not extending the file */
1285 if (mapping->host->i_size - offset < (loff_t)to)
1286 to = (unsigned)(mapping->host->i_size - offset);
1288 open_file = find_writable_file(CIFS_I(mapping->host), false);
1289 if (open_file) {
1290 bytes_written = cifs_write(open_file, write_data,
1291 to - from, &offset);
1292 cifsFileInfo_put(open_file);
1293 /* Does mm or vfs already set times? */
1294 inode->i_atime = inode->i_mtime = current_fs_time(inode->i_sb);
1295 if ((bytes_written > 0) && (offset))
1296 rc = 0;
1297 else if (bytes_written < 0)
1298 rc = bytes_written;
1299 } else {
1300 cFYI(1, "No writeable filehandles for inode");
1301 rc = -EIO;
1304 kunmap(page);
1305 return rc;
1308 static int cifs_writepages(struct address_space *mapping,
1309 struct writeback_control *wbc)
1311 struct backing_dev_info *bdi = mapping->backing_dev_info;
1312 unsigned int bytes_to_write;
1313 unsigned int bytes_written;
1314 struct cifs_sb_info *cifs_sb;
1315 int done = 0;
1316 pgoff_t end;
1317 pgoff_t index;
1318 int range_whole = 0;
1319 struct kvec *iov;
1320 int len;
1321 int n_iov = 0;
1322 pgoff_t next;
1323 int nr_pages;
1324 __u64 offset = 0;
1325 struct cifsFileInfo *open_file;
1326 struct cifsTconInfo *tcon;
1327 struct cifsInodeInfo *cifsi = CIFS_I(mapping->host);
1328 struct page *page;
1329 struct pagevec pvec;
1330 int rc = 0;
1331 int scanned = 0;
1332 int xid, long_op;
1335 * BB: Is this meaningful for a non-block-device file system?
1336 * If it is, we should test it again after we do I/O
1338 if (wbc->nonblocking && bdi_write_congested(bdi)) {
1339 wbc->encountered_congestion = 1;
1340 return 0;
1343 cifs_sb = CIFS_SB(mapping->host->i_sb);
1346 * If wsize is smaller that the page cache size, default to writing
1347 * one page at a time via cifs_writepage
1349 if (cifs_sb->wsize < PAGE_CACHE_SIZE)
1350 return generic_writepages(mapping, wbc);
1352 iov = kmalloc(32 * sizeof(struct kvec), GFP_KERNEL);
1353 if (iov == NULL)
1354 return generic_writepages(mapping, wbc);
1357 * if there's no open file, then this is likely to fail too,
1358 * but it'll at least handle the return. Maybe it should be
1359 * a BUG() instead?
1361 open_file = find_writable_file(CIFS_I(mapping->host), false);
1362 if (!open_file) {
1363 kfree(iov);
1364 return generic_writepages(mapping, wbc);
1367 tcon = tlink_tcon(open_file->tlink);
1368 if (!experimEnabled && tcon->ses->server->secMode &
1369 (SECMODE_SIGN_REQUIRED | SECMODE_SIGN_ENABLED)) {
1370 cifsFileInfo_put(open_file);
1371 return generic_writepages(mapping, wbc);
1373 cifsFileInfo_put(open_file);
1375 xid = GetXid();
1377 pagevec_init(&pvec, 0);
1378 if (wbc->range_cyclic) {
1379 index = mapping->writeback_index; /* Start from prev offset */
1380 end = -1;
1381 } else {
1382 index = wbc->range_start >> PAGE_CACHE_SHIFT;
1383 end = wbc->range_end >> PAGE_CACHE_SHIFT;
1384 if (wbc->range_start == 0 && wbc->range_end == LLONG_MAX)
1385 range_whole = 1;
1386 scanned = 1;
1388 retry:
1389 while (!done && (index <= end) &&
1390 (nr_pages = pagevec_lookup_tag(&pvec, mapping, &index,
1391 PAGECACHE_TAG_DIRTY,
1392 min(end - index, (pgoff_t)PAGEVEC_SIZE - 1) + 1))) {
1393 int first;
1394 unsigned int i;
1396 first = -1;
1397 next = 0;
1398 n_iov = 0;
1399 bytes_to_write = 0;
1401 for (i = 0; i < nr_pages; i++) {
1402 page = pvec.pages[i];
1404 * At this point we hold neither mapping->tree_lock nor
1405 * lock on the page itself: the page may be truncated or
1406 * invalidated (changing page->mapping to NULL), or even
1407 * swizzled back from swapper_space to tmpfs file
1408 * mapping
1411 if (first < 0)
1412 lock_page(page);
1413 else if (!trylock_page(page))
1414 break;
1416 if (unlikely(page->mapping != mapping)) {
1417 unlock_page(page);
1418 break;
1421 if (!wbc->range_cyclic && page->index > end) {
1422 done = 1;
1423 unlock_page(page);
1424 break;
1427 if (next && (page->index != next)) {
1428 /* Not next consecutive page */
1429 unlock_page(page);
1430 break;
1433 if (wbc->sync_mode != WB_SYNC_NONE)
1434 wait_on_page_writeback(page);
1436 if (PageWriteback(page) ||
1437 !clear_page_dirty_for_io(page)) {
1438 unlock_page(page);
1439 break;
1443 * This actually clears the dirty bit in the radix tree.
1444 * See cifs_writepage() for more commentary.
1446 set_page_writeback(page);
1448 if (page_offset(page) >= mapping->host->i_size) {
1449 done = 1;
1450 unlock_page(page);
1451 end_page_writeback(page);
1452 break;
1456 * BB can we get rid of this? pages are held by pvec
1458 page_cache_get(page);
1460 len = min(mapping->host->i_size - page_offset(page),
1461 (loff_t)PAGE_CACHE_SIZE);
1463 /* reserve iov[0] for the smb header */
1464 n_iov++;
1465 iov[n_iov].iov_base = kmap(page);
1466 iov[n_iov].iov_len = len;
1467 bytes_to_write += len;
1469 if (first < 0) {
1470 first = i;
1471 offset = page_offset(page);
1473 next = page->index + 1;
1474 if (bytes_to_write + PAGE_CACHE_SIZE > cifs_sb->wsize)
1475 break;
1477 if (n_iov) {
1478 open_file = find_writable_file(CIFS_I(mapping->host),
1479 false);
1480 if (!open_file) {
1481 cERROR(1, "No writable handles for inode");
1482 rc = -EBADF;
1483 } else {
1484 long_op = cifs_write_timeout(cifsi, offset);
1485 rc = CIFSSMBWrite2(xid, tcon, open_file->netfid,
1486 bytes_to_write, offset,
1487 &bytes_written, iov, n_iov,
1488 long_op);
1489 cifsFileInfo_put(open_file);
1490 cifs_update_eof(cifsi, offset, bytes_written);
1493 if (rc || bytes_written < bytes_to_write) {
1494 cERROR(1, "Write2 ret %d, wrote %d",
1495 rc, bytes_written);
1496 /* BB what if continued retry is
1497 requested via mount flags? */
1498 if (rc == -ENOSPC)
1499 set_bit(AS_ENOSPC, &mapping->flags);
1500 else
1501 set_bit(AS_EIO, &mapping->flags);
1502 } else {
1503 cifs_stats_bytes_written(tcon, bytes_written);
1506 for (i = 0; i < n_iov; i++) {
1507 page = pvec.pages[first + i];
1508 /* Should we also set page error on
1509 success rc but too little data written? */
1510 /* BB investigate retry logic on temporary
1511 server crash cases and how recovery works
1512 when page marked as error */
1513 if (rc)
1514 SetPageError(page);
1515 kunmap(page);
1516 unlock_page(page);
1517 end_page_writeback(page);
1518 page_cache_release(page);
1520 if ((wbc->nr_to_write -= n_iov) <= 0)
1521 done = 1;
1522 index = next;
1523 } else
1524 /* Need to re-find the pages we skipped */
1525 index = pvec.pages[0]->index + 1;
1527 pagevec_release(&pvec);
1529 if (!scanned && !done) {
1531 * We hit the last page and there is more work to be done: wrap
1532 * back to the start of the file
1534 scanned = 1;
1535 index = 0;
1536 goto retry;
1538 if (wbc->range_cyclic || (range_whole && wbc->nr_to_write > 0))
1539 mapping->writeback_index = index;
1541 FreeXid(xid);
1542 kfree(iov);
1543 return rc;
1546 static int cifs_writepage(struct page *page, struct writeback_control *wbc)
1548 int rc = -EFAULT;
1549 int xid;
1551 xid = GetXid();
1552 /* BB add check for wbc flags */
1553 page_cache_get(page);
1554 if (!PageUptodate(page))
1555 cFYI(1, "ppw - page not up to date");
1558 * Set the "writeback" flag, and clear "dirty" in the radix tree.
1560 * A writepage() implementation always needs to do either this,
1561 * or re-dirty the page with "redirty_page_for_writepage()" in
1562 * the case of a failure.
1564 * Just unlocking the page will cause the radix tree tag-bits
1565 * to fail to update with the state of the page correctly.
1567 set_page_writeback(page);
1568 rc = cifs_partialpagewrite(page, 0, PAGE_CACHE_SIZE);
1569 SetPageUptodate(page); /* BB add check for error and Clearuptodate? */
1570 unlock_page(page);
1571 end_page_writeback(page);
1572 page_cache_release(page);
1573 FreeXid(xid);
1574 return rc;
1577 static int cifs_write_end(struct file *file, struct address_space *mapping,
1578 loff_t pos, unsigned len, unsigned copied,
1579 struct page *page, void *fsdata)
1581 int rc;
1582 struct inode *inode = mapping->host;
1584 cFYI(1, "write_end for page %p from pos %lld with %d bytes",
1585 page, pos, copied);
1587 if (PageChecked(page)) {
1588 if (copied == len)
1589 SetPageUptodate(page);
1590 ClearPageChecked(page);
1591 } else if (!PageUptodate(page) && copied == PAGE_CACHE_SIZE)
1592 SetPageUptodate(page);
1594 if (!PageUptodate(page)) {
1595 char *page_data;
1596 unsigned offset = pos & (PAGE_CACHE_SIZE - 1);
1597 int xid;
1599 xid = GetXid();
1600 /* this is probably better than directly calling
1601 partialpage_write since in this function the file handle is
1602 known which we might as well leverage */
1603 /* BB check if anything else missing out of ppw
1604 such as updating last write time */
1605 page_data = kmap(page);
1606 rc = cifs_write(file->private_data, page_data + offset,
1607 copied, &pos);
1608 /* if (rc < 0) should we set writebehind rc? */
1609 kunmap(page);
1611 FreeXid(xid);
1612 } else {
1613 rc = copied;
1614 pos += copied;
1615 set_page_dirty(page);
1618 if (rc > 0) {
1619 spin_lock(&inode->i_lock);
1620 if (pos > inode->i_size)
1621 i_size_write(inode, pos);
1622 spin_unlock(&inode->i_lock);
1625 unlock_page(page);
1626 page_cache_release(page);
1628 return rc;
1631 int cifs_fsync(struct file *file, int datasync)
1633 int xid;
1634 int rc = 0;
1635 struct cifsTconInfo *tcon;
1636 struct cifsFileInfo *smbfile = file->private_data;
1637 struct inode *inode = file->f_path.dentry->d_inode;
1639 xid = GetXid();
1641 cFYI(1, "Sync file - name: %s datasync: 0x%x",
1642 file->f_path.dentry->d_name.name, datasync);
1644 rc = filemap_write_and_wait(inode->i_mapping);
1645 if (rc == 0) {
1646 rc = CIFS_I(inode)->write_behind_rc;
1647 CIFS_I(inode)->write_behind_rc = 0;
1648 tcon = tlink_tcon(smbfile->tlink);
1649 if (!rc && tcon && smbfile &&
1650 !(CIFS_SB(inode->i_sb)->mnt_cifs_flags & CIFS_MOUNT_NOSSYNC))
1651 rc = CIFSSMBFlush(xid, tcon, smbfile->netfid);
1654 FreeXid(xid);
1655 return rc;
1658 /* static void cifs_sync_page(struct page *page)
1660 struct address_space *mapping;
1661 struct inode *inode;
1662 unsigned long index = page->index;
1663 unsigned int rpages = 0;
1664 int rc = 0;
1666 cFYI(1, "sync page %p", page);
1667 mapping = page->mapping;
1668 if (!mapping)
1669 return 0;
1670 inode = mapping->host;
1671 if (!inode)
1672 return; */
1674 /* fill in rpages then
1675 result = cifs_pagein_inode(inode, index, rpages); */ /* BB finish */
1677 /* cFYI(1, "rpages is %d for sync page of Index %ld", rpages, index);
1679 #if 0
1680 if (rc < 0)
1681 return rc;
1682 return 0;
1683 #endif
1684 } */
1687 * As file closes, flush all cached write data for this inode checking
1688 * for write behind errors.
1690 int cifs_flush(struct file *file, fl_owner_t id)
1692 struct inode *inode = file->f_path.dentry->d_inode;
1693 int rc = 0;
1695 /* Rather than do the steps manually:
1696 lock the inode for writing
1697 loop through pages looking for write behind data (dirty pages)
1698 coalesce into contiguous 16K (or smaller) chunks to write to server
1699 send to server (prefer in parallel)
1700 deal with writebehind errors
1701 unlock inode for writing
1702 filemapfdatawrite appears easier for the time being */
1704 rc = filemap_fdatawrite(inode->i_mapping);
1705 /* reset wb rc if we were able to write out dirty pages */
1706 if (!rc) {
1707 rc = CIFS_I(inode)->write_behind_rc;
1708 CIFS_I(inode)->write_behind_rc = 0;
1711 cFYI(1, "Flush inode %p file %p rc %d", inode, file, rc);
1713 return rc;
1716 ssize_t cifs_user_read(struct file *file, char __user *read_data,
1717 size_t read_size, loff_t *poffset)
1719 int rc = -EACCES;
1720 unsigned int bytes_read = 0;
1721 unsigned int total_read = 0;
1722 unsigned int current_read_size;
1723 struct cifs_sb_info *cifs_sb;
1724 struct cifsTconInfo *pTcon;
1725 int xid;
1726 struct cifsFileInfo *open_file;
1727 char *smb_read_data;
1728 char __user *current_offset;
1729 struct smb_com_read_rsp *pSMBr;
1731 xid = GetXid();
1732 cifs_sb = CIFS_SB(file->f_path.dentry->d_sb);
1734 if (file->private_data == NULL) {
1735 rc = -EBADF;
1736 FreeXid(xid);
1737 return rc;
1739 open_file = file->private_data;
1740 pTcon = tlink_tcon(open_file->tlink);
1742 if ((file->f_flags & O_ACCMODE) == O_WRONLY)
1743 cFYI(1, "attempting read on write only file instance");
1745 for (total_read = 0, current_offset = read_data;
1746 read_size > total_read;
1747 total_read += bytes_read, current_offset += bytes_read) {
1748 current_read_size = min_t(const int, read_size - total_read,
1749 cifs_sb->rsize);
1750 rc = -EAGAIN;
1751 smb_read_data = NULL;
1752 while (rc == -EAGAIN) {
1753 int buf_type = CIFS_NO_BUFFER;
1754 if ((open_file->invalidHandle) &&
1755 (!open_file->closePend)) {
1756 rc = cifs_reopen_file(open_file, true);
1757 if (rc != 0)
1758 break;
1760 rc = CIFSSMBRead(xid, pTcon,
1761 open_file->netfid,
1762 current_read_size, *poffset,
1763 &bytes_read, &smb_read_data,
1764 &buf_type);
1765 pSMBr = (struct smb_com_read_rsp *)smb_read_data;
1766 if (smb_read_data) {
1767 if (copy_to_user(current_offset,
1768 smb_read_data +
1769 4 /* RFC1001 length field */ +
1770 le16_to_cpu(pSMBr->DataOffset),
1771 bytes_read))
1772 rc = -EFAULT;
1774 if (buf_type == CIFS_SMALL_BUFFER)
1775 cifs_small_buf_release(smb_read_data);
1776 else if (buf_type == CIFS_LARGE_BUFFER)
1777 cifs_buf_release(smb_read_data);
1778 smb_read_data = NULL;
1781 if (rc || (bytes_read == 0)) {
1782 if (total_read) {
1783 break;
1784 } else {
1785 FreeXid(xid);
1786 return rc;
1788 } else {
1789 cifs_stats_bytes_read(pTcon, bytes_read);
1790 *poffset += bytes_read;
1793 FreeXid(xid);
1794 return total_read;
1798 static ssize_t cifs_read(struct file *file, char *read_data, size_t read_size,
1799 loff_t *poffset)
1801 int rc = -EACCES;
1802 unsigned int bytes_read = 0;
1803 unsigned int total_read;
1804 unsigned int current_read_size;
1805 struct cifs_sb_info *cifs_sb;
1806 struct cifsTconInfo *pTcon;
1807 int xid;
1808 char *current_offset;
1809 struct cifsFileInfo *open_file;
1810 int buf_type = CIFS_NO_BUFFER;
1812 xid = GetXid();
1813 cifs_sb = CIFS_SB(file->f_path.dentry->d_sb);
1815 if (file->private_data == NULL) {
1816 rc = -EBADF;
1817 FreeXid(xid);
1818 return rc;
1820 open_file = file->private_data;
1821 pTcon = tlink_tcon(open_file->tlink);
1823 if ((file->f_flags & O_ACCMODE) == O_WRONLY)
1824 cFYI(1, "attempting read on write only file instance");
1826 for (total_read = 0, current_offset = read_data;
1827 read_size > total_read;
1828 total_read += bytes_read, current_offset += bytes_read) {
1829 current_read_size = min_t(const int, read_size - total_read,
1830 cifs_sb->rsize);
1831 /* For windows me and 9x we do not want to request more
1832 than it negotiated since it will refuse the read then */
1833 if ((pTcon->ses) &&
1834 !(pTcon->ses->capabilities & CAP_LARGE_FILES)) {
1835 current_read_size = min_t(const int, current_read_size,
1836 pTcon->ses->server->maxBuf - 128);
1838 rc = -EAGAIN;
1839 while (rc == -EAGAIN) {
1840 if ((open_file->invalidHandle) &&
1841 (!open_file->closePend)) {
1842 rc = cifs_reopen_file(open_file, true);
1843 if (rc != 0)
1844 break;
1846 rc = CIFSSMBRead(xid, pTcon,
1847 open_file->netfid,
1848 current_read_size, *poffset,
1849 &bytes_read, &current_offset,
1850 &buf_type);
1852 if (rc || (bytes_read == 0)) {
1853 if (total_read) {
1854 break;
1855 } else {
1856 FreeXid(xid);
1857 return rc;
1859 } else {
1860 cifs_stats_bytes_read(pTcon, total_read);
1861 *poffset += bytes_read;
1864 FreeXid(xid);
1865 return total_read;
1868 int cifs_file_mmap(struct file *file, struct vm_area_struct *vma)
1870 int rc, xid;
1872 xid = GetXid();
1873 rc = cifs_revalidate_file(file);
1874 if (rc) {
1875 cFYI(1, "Validation prior to mmap failed, error=%d", rc);
1876 FreeXid(xid);
1877 return rc;
1879 rc = generic_file_mmap(file, vma);
1880 FreeXid(xid);
1881 return rc;
1885 static void cifs_copy_cache_pages(struct address_space *mapping,
1886 struct list_head *pages, int bytes_read, char *data)
1888 struct page *page;
1889 char *target;
1891 while (bytes_read > 0) {
1892 if (list_empty(pages))
1893 break;
1895 page = list_entry(pages->prev, struct page, lru);
1896 list_del(&page->lru);
1898 if (add_to_page_cache_lru(page, mapping, page->index,
1899 GFP_KERNEL)) {
1900 page_cache_release(page);
1901 cFYI(1, "Add page cache failed");
1902 data += PAGE_CACHE_SIZE;
1903 bytes_read -= PAGE_CACHE_SIZE;
1904 continue;
1906 page_cache_release(page);
1908 target = kmap_atomic(page, KM_USER0);
1910 if (PAGE_CACHE_SIZE > bytes_read) {
1911 memcpy(target, data, bytes_read);
1912 /* zero the tail end of this partial page */
1913 memset(target + bytes_read, 0,
1914 PAGE_CACHE_SIZE - bytes_read);
1915 bytes_read = 0;
1916 } else {
1917 memcpy(target, data, PAGE_CACHE_SIZE);
1918 bytes_read -= PAGE_CACHE_SIZE;
1920 kunmap_atomic(target, KM_USER0);
1922 flush_dcache_page(page);
1923 SetPageUptodate(page);
1924 unlock_page(page);
1925 data += PAGE_CACHE_SIZE;
1927 /* add page to FS-Cache */
1928 cifs_readpage_to_fscache(mapping->host, page);
1930 return;
1933 static int cifs_readpages(struct file *file, struct address_space *mapping,
1934 struct list_head *page_list, unsigned num_pages)
1936 int rc = -EACCES;
1937 int xid;
1938 loff_t offset;
1939 struct page *page;
1940 struct cifs_sb_info *cifs_sb;
1941 struct cifsTconInfo *pTcon;
1942 unsigned int bytes_read = 0;
1943 unsigned int read_size, i;
1944 char *smb_read_data = NULL;
1945 struct smb_com_read_rsp *pSMBr;
1946 struct cifsFileInfo *open_file;
1947 int buf_type = CIFS_NO_BUFFER;
1949 xid = GetXid();
1950 if (file->private_data == NULL) {
1951 rc = -EBADF;
1952 FreeXid(xid);
1953 return rc;
1955 open_file = file->private_data;
1956 cifs_sb = CIFS_SB(file->f_path.dentry->d_sb);
1957 pTcon = tlink_tcon(open_file->tlink);
1960 * Reads as many pages as possible from fscache. Returns -ENOBUFS
1961 * immediately if the cookie is negative
1963 rc = cifs_readpages_from_fscache(mapping->host, mapping, page_list,
1964 &num_pages);
1965 if (rc == 0)
1966 goto read_complete;
1968 cFYI(DBG2, "rpages: num pages %d", num_pages);
1969 for (i = 0; i < num_pages; ) {
1970 unsigned contig_pages;
1971 struct page *tmp_page;
1972 unsigned long expected_index;
1974 if (list_empty(page_list))
1975 break;
1977 page = list_entry(page_list->prev, struct page, lru);
1978 offset = (loff_t)page->index << PAGE_CACHE_SHIFT;
1980 /* count adjacent pages that we will read into */
1981 contig_pages = 0;
1982 expected_index =
1983 list_entry(page_list->prev, struct page, lru)->index;
1984 list_for_each_entry_reverse(tmp_page, page_list, lru) {
1985 if (tmp_page->index == expected_index) {
1986 contig_pages++;
1987 expected_index++;
1988 } else
1989 break;
1991 if (contig_pages + i > num_pages)
1992 contig_pages = num_pages - i;
1994 /* for reads over a certain size could initiate async
1995 read ahead */
1997 read_size = contig_pages * PAGE_CACHE_SIZE;
1998 /* Read size needs to be in multiples of one page */
1999 read_size = min_t(const unsigned int, read_size,
2000 cifs_sb->rsize & PAGE_CACHE_MASK);
2001 cFYI(DBG2, "rpages: read size 0x%x contiguous pages %d",
2002 read_size, contig_pages);
2003 rc = -EAGAIN;
2004 while (rc == -EAGAIN) {
2005 if ((open_file->invalidHandle) &&
2006 (!open_file->closePend)) {
2007 rc = cifs_reopen_file(open_file, true);
2008 if (rc != 0)
2009 break;
2012 rc = CIFSSMBRead(xid, pTcon,
2013 open_file->netfid,
2014 read_size, offset,
2015 &bytes_read, &smb_read_data,
2016 &buf_type);
2017 /* BB more RC checks ? */
2018 if (rc == -EAGAIN) {
2019 if (smb_read_data) {
2020 if (buf_type == CIFS_SMALL_BUFFER)
2021 cifs_small_buf_release(smb_read_data);
2022 else if (buf_type == CIFS_LARGE_BUFFER)
2023 cifs_buf_release(smb_read_data);
2024 smb_read_data = NULL;
2028 if ((rc < 0) || (smb_read_data == NULL)) {
2029 cFYI(1, "Read error in readpages: %d", rc);
2030 break;
2031 } else if (bytes_read > 0) {
2032 task_io_account_read(bytes_read);
2033 pSMBr = (struct smb_com_read_rsp *)smb_read_data;
2034 cifs_copy_cache_pages(mapping, page_list, bytes_read,
2035 smb_read_data + 4 /* RFC1001 hdr */ +
2036 le16_to_cpu(pSMBr->DataOffset));
2038 i += bytes_read >> PAGE_CACHE_SHIFT;
2039 cifs_stats_bytes_read(pTcon, bytes_read);
2040 if ((bytes_read & PAGE_CACHE_MASK) != bytes_read) {
2041 i++; /* account for partial page */
2043 /* server copy of file can have smaller size
2044 than client */
2045 /* BB do we need to verify this common case ?
2046 this case is ok - if we are at server EOF
2047 we will hit it on next read */
2049 /* break; */
2051 } else {
2052 cFYI(1, "No bytes read (%d) at offset %lld . "
2053 "Cleaning remaining pages from readahead list",
2054 bytes_read, offset);
2055 /* BB turn off caching and do new lookup on
2056 file size at server? */
2057 break;
2059 if (smb_read_data) {
2060 if (buf_type == CIFS_SMALL_BUFFER)
2061 cifs_small_buf_release(smb_read_data);
2062 else if (buf_type == CIFS_LARGE_BUFFER)
2063 cifs_buf_release(smb_read_data);
2064 smb_read_data = NULL;
2066 bytes_read = 0;
2069 /* need to free smb_read_data buf before exit */
2070 if (smb_read_data) {
2071 if (buf_type == CIFS_SMALL_BUFFER)
2072 cifs_small_buf_release(smb_read_data);
2073 else if (buf_type == CIFS_LARGE_BUFFER)
2074 cifs_buf_release(smb_read_data);
2075 smb_read_data = NULL;
2078 read_complete:
2079 FreeXid(xid);
2080 return rc;
2083 static int cifs_readpage_worker(struct file *file, struct page *page,
2084 loff_t *poffset)
2086 char *read_data;
2087 int rc;
2089 /* Is the page cached? */
2090 rc = cifs_readpage_from_fscache(file->f_path.dentry->d_inode, page);
2091 if (rc == 0)
2092 goto read_complete;
2094 page_cache_get(page);
2095 read_data = kmap(page);
2096 /* for reads over a certain size could initiate async read ahead */
2098 rc = cifs_read(file, read_data, PAGE_CACHE_SIZE, poffset);
2100 if (rc < 0)
2101 goto io_error;
2102 else
2103 cFYI(1, "Bytes read %d", rc);
2105 file->f_path.dentry->d_inode->i_atime =
2106 current_fs_time(file->f_path.dentry->d_inode->i_sb);
2108 if (PAGE_CACHE_SIZE > rc)
2109 memset(read_data + rc, 0, PAGE_CACHE_SIZE - rc);
2111 flush_dcache_page(page);
2112 SetPageUptodate(page);
2114 /* send this page to the cache */
2115 cifs_readpage_to_fscache(file->f_path.dentry->d_inode, page);
2117 rc = 0;
2119 io_error:
2120 kunmap(page);
2121 page_cache_release(page);
2123 read_complete:
2124 return rc;
2127 static int cifs_readpage(struct file *file, struct page *page)
2129 loff_t offset = (loff_t)page->index << PAGE_CACHE_SHIFT;
2130 int rc = -EACCES;
2131 int xid;
2133 xid = GetXid();
2135 if (file->private_data == NULL) {
2136 rc = -EBADF;
2137 FreeXid(xid);
2138 return rc;
2141 cFYI(1, "readpage %p at offset %d 0x%x\n",
2142 page, (int)offset, (int)offset);
2144 rc = cifs_readpage_worker(file, page, &offset);
2146 unlock_page(page);
2148 FreeXid(xid);
2149 return rc;
2152 static int is_inode_writable(struct cifsInodeInfo *cifs_inode)
2154 struct cifsFileInfo *open_file;
2156 read_lock(&GlobalSMBSeslock);
2157 list_for_each_entry(open_file, &cifs_inode->openFileList, flist) {
2158 if (open_file->closePend)
2159 continue;
2160 if (OPEN_FMODE(open_file->f_flags) & FMODE_WRITE) {
2161 read_unlock(&GlobalSMBSeslock);
2162 return 1;
2165 read_unlock(&GlobalSMBSeslock);
2166 return 0;
2169 /* We do not want to update the file size from server for inodes
2170 open for write - to avoid races with writepage extending
2171 the file - in the future we could consider allowing
2172 refreshing the inode only on increases in the file size
2173 but this is tricky to do without racing with writebehind
2174 page caching in the current Linux kernel design */
2175 bool is_size_safe_to_change(struct cifsInodeInfo *cifsInode, __u64 end_of_file)
2177 if (!cifsInode)
2178 return true;
2180 if (is_inode_writable(cifsInode)) {
2181 /* This inode is open for write at least once */
2182 struct cifs_sb_info *cifs_sb;
2184 cifs_sb = CIFS_SB(cifsInode->vfs_inode.i_sb);
2185 if (cifs_sb->mnt_cifs_flags & CIFS_MOUNT_DIRECT_IO) {
2186 /* since no page cache to corrupt on directio
2187 we can change size safely */
2188 return true;
2191 if (i_size_read(&cifsInode->vfs_inode) < end_of_file)
2192 return true;
2194 return false;
2195 } else
2196 return true;
2199 static int cifs_write_begin(struct file *file, struct address_space *mapping,
2200 loff_t pos, unsigned len, unsigned flags,
2201 struct page **pagep, void **fsdata)
2203 pgoff_t index = pos >> PAGE_CACHE_SHIFT;
2204 loff_t offset = pos & (PAGE_CACHE_SIZE - 1);
2205 loff_t page_start = pos & PAGE_MASK;
2206 loff_t i_size;
2207 struct page *page;
2208 int rc = 0;
2210 cFYI(1, "write_begin from %lld len %d", (long long)pos, len);
2212 page = grab_cache_page_write_begin(mapping, index, flags);
2213 if (!page) {
2214 rc = -ENOMEM;
2215 goto out;
2218 if (PageUptodate(page))
2219 goto out;
2222 * If we write a full page it will be up to date, no need to read from
2223 * the server. If the write is short, we'll end up doing a sync write
2224 * instead.
2226 if (len == PAGE_CACHE_SIZE)
2227 goto out;
2230 * optimize away the read when we have an oplock, and we're not
2231 * expecting to use any of the data we'd be reading in. That
2232 * is, when the page lies beyond the EOF, or straddles the EOF
2233 * and the write will cover all of the existing data.
2235 if (CIFS_I(mapping->host)->clientCanCacheRead) {
2236 i_size = i_size_read(mapping->host);
2237 if (page_start >= i_size ||
2238 (offset == 0 && (pos + len) >= i_size)) {
2239 zero_user_segments(page, 0, offset,
2240 offset + len,
2241 PAGE_CACHE_SIZE);
2243 * PageChecked means that the parts of the page
2244 * to which we're not writing are considered up
2245 * to date. Once the data is copied to the
2246 * page, it can be set uptodate.
2248 SetPageChecked(page);
2249 goto out;
2253 if ((file->f_flags & O_ACCMODE) != O_WRONLY) {
2255 * might as well read a page, it is fast enough. If we get
2256 * an error, we don't need to return it. cifs_write_end will
2257 * do a sync write instead since PG_uptodate isn't set.
2259 cifs_readpage_worker(file, page, &page_start);
2260 } else {
2261 /* we could try using another file handle if there is one -
2262 but how would we lock it to prevent close of that handle
2263 racing with this read? In any case
2264 this will be written out by write_end so is fine */
2266 out:
2267 *pagep = page;
2268 return rc;
2271 static int cifs_release_page(struct page *page, gfp_t gfp)
2273 if (PagePrivate(page))
2274 return 0;
2276 return cifs_fscache_release_page(page, gfp);
2279 static void cifs_invalidate_page(struct page *page, unsigned long offset)
2281 struct cifsInodeInfo *cifsi = CIFS_I(page->mapping->host);
2283 if (offset == 0)
2284 cifs_fscache_invalidate_page(page, &cifsi->vfs_inode);
2287 void cifs_oplock_break(struct work_struct *work)
2289 struct cifsFileInfo *cfile = container_of(work, struct cifsFileInfo,
2290 oplock_break);
2291 struct inode *inode = cfile->dentry->d_inode;
2292 struct cifsInodeInfo *cinode = CIFS_I(inode);
2293 int rc, waitrc = 0;
2295 if (inode && S_ISREG(inode->i_mode)) {
2296 if (cinode->clientCanCacheRead)
2297 break_lease(inode, O_RDONLY);
2298 else
2299 break_lease(inode, O_WRONLY);
2300 rc = filemap_fdatawrite(inode->i_mapping);
2301 if (cinode->clientCanCacheRead == 0) {
2302 waitrc = filemap_fdatawait(inode->i_mapping);
2303 invalidate_remote_inode(inode);
2305 if (!rc)
2306 rc = waitrc;
2307 if (rc)
2308 cinode->write_behind_rc = rc;
2309 cFYI(1, "Oplock flush inode %p rc %d", inode, rc);
2313 * releasing stale oplock after recent reconnect of smb session using
2314 * a now incorrect file handle is not a data integrity issue but do
2315 * not bother sending an oplock release if session to server still is
2316 * disconnected since oplock already released by the server
2318 if (!cfile->closePend && !cfile->oplock_break_cancelled) {
2319 rc = CIFSSMBLock(0, tlink_tcon(cfile->tlink), cfile->netfid, 0,
2320 0, 0, 0, LOCKING_ANDX_OPLOCK_RELEASE, false);
2321 cFYI(1, "Oplock release rc = %d", rc);
2325 * We might have kicked in before is_valid_oplock_break()
2326 * finished grabbing reference for us. Make sure it's done by
2327 * waiting for GlobalSMSSeslock.
2329 write_lock(&GlobalSMBSeslock);
2330 write_unlock(&GlobalSMBSeslock);
2332 cifs_oplock_break_put(cfile);
2335 void cifs_oplock_break_get(struct cifsFileInfo *cfile)
2337 cifs_sb_active(cfile->dentry->d_sb);
2338 cifsFileInfo_get(cfile);
2341 void cifs_oplock_break_put(struct cifsFileInfo *cfile)
2343 cifsFileInfo_put(cfile);
2344 cifs_sb_deactive(cfile->dentry->d_sb);
2347 const struct address_space_operations cifs_addr_ops = {
2348 .readpage = cifs_readpage,
2349 .readpages = cifs_readpages,
2350 .writepage = cifs_writepage,
2351 .writepages = cifs_writepages,
2352 .write_begin = cifs_write_begin,
2353 .write_end = cifs_write_end,
2354 .set_page_dirty = __set_page_dirty_nobuffers,
2355 .releasepage = cifs_release_page,
2356 .invalidatepage = cifs_invalidate_page,
2357 /* .sync_page = cifs_sync_page, */
2358 /* .direct_IO = */
2362 * cifs_readpages requires the server to support a buffer large enough to
2363 * contain the header plus one complete page of data. Otherwise, we need
2364 * to leave cifs_readpages out of the address space operations.
2366 const struct address_space_operations cifs_addr_ops_smallbuf = {
2367 .readpage = cifs_readpage,
2368 .writepage = cifs_writepage,
2369 .writepages = cifs_writepages,
2370 .write_begin = cifs_write_begin,
2371 .write_end = cifs_write_end,
2372 .set_page_dirty = __set_page_dirty_nobuffers,
2373 .releasepage = cifs_release_page,
2374 .invalidatepage = cifs_invalidate_page,
2375 /* .sync_page = cifs_sync_page, */
2376 /* .direct_IO = */