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1// SPDX-License-Identifier: GPL-2.0-only
2/*
3 * Copyright (C) Sistina Software, Inc. 1997-2003 All rights reserved.
4 * Copyright (C) 2004-2006 Red Hat, Inc. All rights reserved.
5 */
6
7#include <linux/slab.h>
8#include <linux/spinlock.h>
9#include <linux/compat.h>
10#include <linux/completion.h>
11#include <linux/buffer_head.h>
12#include <linux/pagemap.h>
13#include <linux/uio.h>
14#include <linux/blkdev.h>
15#include <linux/mm.h>
16#include <linux/mount.h>
17#include <linux/fs.h>
18#include <linux/filelock.h>
19#include <linux/gfs2_ondisk.h>
20#include <linux/falloc.h>
21#include <linux/swap.h>
22#include <linux/crc32.h>
23#include <linux/writeback.h>
24#include <linux/uaccess.h>
25#include <linux/dlm.h>
26#include <linux/dlm_plock.h>
27#include <linux/delay.h>
28#include <linux/backing-dev.h>
29#include <linux/fileattr.h>
30
31#include "gfs2.h"
32#include "incore.h"
33#include "bmap.h"
34#include "aops.h"
35#include "dir.h"
36#include "glock.h"
37#include "glops.h"
38#include "inode.h"
39#include "log.h"
40#include "meta_io.h"
41#include "quota.h"
42#include "rgrp.h"
43#include "trans.h"
44#include "util.h"
45
46/**
47 * gfs2_llseek - seek to a location in a file
48 * @file: the file
49 * @offset: the offset
50 * @whence: Where to seek from (SEEK_SET, SEEK_CUR, or SEEK_END)
51 *
52 * SEEK_END requires the glock for the file because it references the
53 * file's size.
54 *
55 * Returns: The new offset, or errno
56 */
57
58static loff_t gfs2_llseek(struct file *file, loff_t offset, int whence)
59{
60 struct gfs2_inode *ip = GFS2_I(file->f_mapping->host);
61 struct gfs2_holder i_gh;
62 loff_t error;
63
64 switch (whence) {
65 case SEEK_END:
66 error = gfs2_glock_nq_init(ip->i_gl, LM_ST_SHARED, LM_FLAG_ANY,
67 &i_gh);
68 if (!error) {
69 error = generic_file_llseek(file, offset, whence);
70 gfs2_glock_dq_uninit(&i_gh);
71 }
72 break;
73
74 case SEEK_DATA:
75 error = gfs2_seek_data(file, offset);
76 break;
77
78 case SEEK_HOLE:
79 error = gfs2_seek_hole(file, offset);
80 break;
81
82 case SEEK_CUR:
83 case SEEK_SET:
84 /*
85 * These don't reference inode->i_size and don't depend on the
86 * block mapping, so we don't need the glock.
87 */
88 error = generic_file_llseek(file, offset, whence);
89 break;
90 default:
91 error = -EINVAL;
92 }
93
94 return error;
95}
96
97/**
98 * gfs2_readdir - Iterator for a directory
99 * @file: The directory to read from
100 * @ctx: What to feed directory entries to
101 *
102 * Returns: errno
103 */
104
105static int gfs2_readdir(struct file *file, struct dir_context *ctx)
106{
107 struct inode *dir = file->f_mapping->host;
108 struct gfs2_inode *dip = GFS2_I(dir);
109 struct gfs2_holder d_gh;
110 int error;
111
112 error = gfs2_glock_nq_init(dip->i_gl, LM_ST_SHARED, 0, &d_gh);
113 if (error)
114 return error;
115
116 error = gfs2_dir_read(dir, ctx, &file->f_ra);
117
118 gfs2_glock_dq_uninit(&d_gh);
119
120 return error;
121}
122
123/*
124 * struct fsflag_gfs2flag
125 *
126 * The FS_JOURNAL_DATA_FL flag maps to GFS2_DIF_INHERIT_JDATA for directories,
127 * and to GFS2_DIF_JDATA for non-directories.
128 */
129static struct {
130 u32 fsflag;
131 u32 gfsflag;
132} fsflag_gfs2flag[] = {
133 {FS_SYNC_FL, GFS2_DIF_SYNC},
134 {FS_IMMUTABLE_FL, GFS2_DIF_IMMUTABLE},
135 {FS_APPEND_FL, GFS2_DIF_APPENDONLY},
136 {FS_NOATIME_FL, GFS2_DIF_NOATIME},
137 {FS_INDEX_FL, GFS2_DIF_EXHASH},
138 {FS_TOPDIR_FL, GFS2_DIF_TOPDIR},
139 {FS_JOURNAL_DATA_FL, GFS2_DIF_JDATA | GFS2_DIF_INHERIT_JDATA},
140};
141
142static inline u32 gfs2_gfsflags_to_fsflags(struct inode *inode, u32 gfsflags)
143{
144 int i;
145 u32 fsflags = 0;
146
147 if (S_ISDIR(inode->i_mode))
148 gfsflags &= ~GFS2_DIF_JDATA;
149 else
150 gfsflags &= ~GFS2_DIF_INHERIT_JDATA;
151
152 for (i = 0; i < ARRAY_SIZE(fsflag_gfs2flag); i++)
153 if (gfsflags & fsflag_gfs2flag[i].gfsflag)
154 fsflags |= fsflag_gfs2flag[i].fsflag;
155 return fsflags;
156}
157
158int gfs2_fileattr_get(struct dentry *dentry, struct fileattr *fa)
159{
160 struct inode *inode = d_inode(dentry);
161 struct gfs2_inode *ip = GFS2_I(inode);
162 struct gfs2_holder gh;
163 int error;
164 u32 fsflags;
165
166 if (d_is_special(dentry))
167 return -ENOTTY;
168
169 gfs2_holder_init(ip->i_gl, LM_ST_SHARED, 0, &gh);
170 error = gfs2_glock_nq(&gh);
171 if (error)
172 goto out_uninit;
173
174 fsflags = gfs2_gfsflags_to_fsflags(inode, ip->i_diskflags);
175
176 fileattr_fill_flags(fa, fsflags);
177
178 gfs2_glock_dq(&gh);
179out_uninit:
180 gfs2_holder_uninit(&gh);
181 return error;
182}
183
184void gfs2_set_inode_flags(struct inode *inode)
185{
186 struct gfs2_inode *ip = GFS2_I(inode);
187 unsigned int flags = inode->i_flags;
188
189 flags &= ~(S_SYNC|S_APPEND|S_IMMUTABLE|S_NOATIME|S_DIRSYNC|S_NOSEC);
190 if ((ip->i_eattr == 0) && !is_sxid(inode->i_mode))
191 flags |= S_NOSEC;
192 if (ip->i_diskflags & GFS2_DIF_IMMUTABLE)
193 flags |= S_IMMUTABLE;
194 if (ip->i_diskflags & GFS2_DIF_APPENDONLY)
195 flags |= S_APPEND;
196 if (ip->i_diskflags & GFS2_DIF_NOATIME)
197 flags |= S_NOATIME;
198 if (ip->i_diskflags & GFS2_DIF_SYNC)
199 flags |= S_SYNC;
200 inode->i_flags = flags;
201}
202
203/* Flags that can be set by user space */
204#define GFS2_FLAGS_USER_SET (GFS2_DIF_JDATA| \
205 GFS2_DIF_IMMUTABLE| \
206 GFS2_DIF_APPENDONLY| \
207 GFS2_DIF_NOATIME| \
208 GFS2_DIF_SYNC| \
209 GFS2_DIF_TOPDIR| \
210 GFS2_DIF_INHERIT_JDATA)
211
212/**
213 * do_gfs2_set_flags - set flags on an inode
214 * @inode: The inode
215 * @reqflags: The flags to set
216 * @mask: Indicates which flags are valid
217 *
218 */
219static int do_gfs2_set_flags(struct inode *inode, u32 reqflags, u32 mask)
220{
221 struct gfs2_inode *ip = GFS2_I(inode);
222 struct gfs2_sbd *sdp = GFS2_SB(inode);
223 struct buffer_head *bh;
224 struct gfs2_holder gh;
225 int error;
226 u32 new_flags, flags;
227
228 error = gfs2_glock_nq_init(ip->i_gl, LM_ST_EXCLUSIVE, 0, &gh);
229 if (error)
230 return error;
231
232 error = 0;
233 flags = ip->i_diskflags;
234 new_flags = (flags & ~mask) | (reqflags & mask);
235 if ((new_flags ^ flags) == 0)
236 goto out;
237
238 if (!IS_IMMUTABLE(inode)) {
239 error = gfs2_permission(&nop_mnt_idmap, inode, MAY_WRITE);
240 if (error)
241 goto out;
242 }
243 if ((flags ^ new_flags) & GFS2_DIF_JDATA) {
244 if (new_flags & GFS2_DIF_JDATA)
245 gfs2_log_flush(sdp, ip->i_gl,
246 GFS2_LOG_HEAD_FLUSH_NORMAL |
247 GFS2_LFC_SET_FLAGS);
248 error = filemap_fdatawrite(inode->i_mapping);
249 if (error)
250 goto out;
251 error = filemap_fdatawait(inode->i_mapping);
252 if (error)
253 goto out;
254 if (new_flags & GFS2_DIF_JDATA)
255 gfs2_ordered_del_inode(ip);
256 }
257 error = gfs2_trans_begin(sdp, RES_DINODE, 0);
258 if (error)
259 goto out;
260 error = gfs2_meta_inode_buffer(ip, &bh);
261 if (error)
262 goto out_trans_end;
263 inode->i_ctime = current_time(inode);
264 gfs2_trans_add_meta(ip->i_gl, bh);
265 ip->i_diskflags = new_flags;
266 gfs2_dinode_out(ip, bh->b_data);
267 brelse(bh);
268 gfs2_set_inode_flags(inode);
269 gfs2_set_aops(inode);
270out_trans_end:
271 gfs2_trans_end(sdp);
272out:
273 gfs2_glock_dq_uninit(&gh);
274 return error;
275}
276
277int gfs2_fileattr_set(struct mnt_idmap *idmap,
278 struct dentry *dentry, struct fileattr *fa)
279{
280 struct inode *inode = d_inode(dentry);
281 u32 fsflags = fa->flags, gfsflags = 0;
282 u32 mask;
283 int i;
284
285 if (d_is_special(dentry))
286 return -ENOTTY;
287
288 if (fileattr_has_fsx(fa))
289 return -EOPNOTSUPP;
290
291 for (i = 0; i < ARRAY_SIZE(fsflag_gfs2flag); i++) {
292 if (fsflags & fsflag_gfs2flag[i].fsflag) {
293 fsflags &= ~fsflag_gfs2flag[i].fsflag;
294 gfsflags |= fsflag_gfs2flag[i].gfsflag;
295 }
296 }
297 if (fsflags || gfsflags & ~GFS2_FLAGS_USER_SET)
298 return -EINVAL;
299
300 mask = GFS2_FLAGS_USER_SET;
301 if (S_ISDIR(inode->i_mode)) {
302 mask &= ~GFS2_DIF_JDATA;
303 } else {
304 /* The GFS2_DIF_TOPDIR flag is only valid for directories. */
305 if (gfsflags & GFS2_DIF_TOPDIR)
306 return -EINVAL;
307 mask &= ~(GFS2_DIF_TOPDIR | GFS2_DIF_INHERIT_JDATA);
308 }
309
310 return do_gfs2_set_flags(inode, gfsflags, mask);
311}
312
313static int gfs2_getlabel(struct file *filp, char __user *label)
314{
315 struct inode *inode = file_inode(filp);
316 struct gfs2_sbd *sdp = GFS2_SB(inode);
317
318 if (copy_to_user(label, sdp->sd_sb.sb_locktable, GFS2_LOCKNAME_LEN))
319 return -EFAULT;
320
321 return 0;
322}
323
324static long gfs2_ioctl(struct file *filp, unsigned int cmd, unsigned long arg)
325{
326 switch(cmd) {
327 case FITRIM:
328 return gfs2_fitrim(filp, (void __user *)arg);
329 case FS_IOC_GETFSLABEL:
330 return gfs2_getlabel(filp, (char __user *)arg);
331 }
332
333 return -ENOTTY;
334}
335
336#ifdef CONFIG_COMPAT
337static long gfs2_compat_ioctl(struct file *filp, unsigned int cmd, unsigned long arg)
338{
339 switch(cmd) {
340 /* Keep this list in sync with gfs2_ioctl */
341 case FITRIM:
342 case FS_IOC_GETFSLABEL:
343 break;
344 default:
345 return -ENOIOCTLCMD;
346 }
347
348 return gfs2_ioctl(filp, cmd, (unsigned long)compat_ptr(arg));
349}
350#else
351#define gfs2_compat_ioctl NULL
352#endif
353
354/**
355 * gfs2_size_hint - Give a hint to the size of a write request
356 * @filep: The struct file
357 * @offset: The file offset of the write
358 * @size: The length of the write
359 *
360 * When we are about to do a write, this function records the total
361 * write size in order to provide a suitable hint to the lower layers
362 * about how many blocks will be required.
363 *
364 */
365
366static void gfs2_size_hint(struct file *filep, loff_t offset, size_t size)
367{
368 struct inode *inode = file_inode(filep);
369 struct gfs2_sbd *sdp = GFS2_SB(inode);
370 struct gfs2_inode *ip = GFS2_I(inode);
371 size_t blks = (size + sdp->sd_sb.sb_bsize - 1) >> sdp->sd_sb.sb_bsize_shift;
372 int hint = min_t(size_t, INT_MAX, blks);
373
374 if (hint > atomic_read(&ip->i_sizehint))
375 atomic_set(&ip->i_sizehint, hint);
376}
377
378/**
379 * gfs2_allocate_page_backing - Allocate blocks for a write fault
380 * @page: The (locked) page to allocate backing for
381 * @length: Size of the allocation
382 *
383 * We try to allocate all the blocks required for the page in one go. This
384 * might fail for various reasons, so we keep trying until all the blocks to
385 * back this page are allocated. If some of the blocks are already allocated,
386 * that is ok too.
387 */
388static int gfs2_allocate_page_backing(struct page *page, unsigned int length)
389{
390 u64 pos = page_offset(page);
391
392 do {
393 struct iomap iomap = { };
394
395 if (gfs2_iomap_alloc(page->mapping->host, pos, length, &iomap))
396 return -EIO;
397
398 if (length < iomap.length)
399 iomap.length = length;
400 length -= iomap.length;
401 pos += iomap.length;
402 } while (length > 0);
403
404 return 0;
405}
406
407/**
408 * gfs2_page_mkwrite - Make a shared, mmap()ed, page writable
409 * @vmf: The virtual memory fault containing the page to become writable
410 *
411 * When the page becomes writable, we need to ensure that we have
412 * blocks allocated on disk to back that page.
413 */
414
415static vm_fault_t gfs2_page_mkwrite(struct vm_fault *vmf)
416{
417 struct page *page = vmf->page;
418 struct inode *inode = file_inode(vmf->vma->vm_file);
419 struct gfs2_inode *ip = GFS2_I(inode);
420 struct gfs2_sbd *sdp = GFS2_SB(inode);
421 struct gfs2_alloc_parms ap = { .aflags = 0, };
422 u64 offset = page_offset(page);
423 unsigned int data_blocks, ind_blocks, rblocks;
424 vm_fault_t ret = VM_FAULT_LOCKED;
425 struct gfs2_holder gh;
426 unsigned int length;
427 loff_t size;
428 int err;
429
430 sb_start_pagefault(inode->i_sb);
431
432 gfs2_holder_init(ip->i_gl, LM_ST_EXCLUSIVE, 0, &gh);
433 err = gfs2_glock_nq(&gh);
434 if (err) {
435 ret = block_page_mkwrite_return(err);
436 goto out_uninit;
437 }
438
439 /* Check page index against inode size */
440 size = i_size_read(inode);
441 if (offset >= size) {
442 ret = VM_FAULT_SIGBUS;
443 goto out_unlock;
444 }
445
446 /* Update file times before taking page lock */
447 file_update_time(vmf->vma->vm_file);
448
449 /* page is wholly or partially inside EOF */
450 if (size - offset < PAGE_SIZE)
451 length = size - offset;
452 else
453 length = PAGE_SIZE;
454
455 gfs2_size_hint(vmf->vma->vm_file, offset, length);
456
457 set_bit(GLF_DIRTY, &ip->i_gl->gl_flags);
458 set_bit(GIF_SW_PAGED, &ip->i_flags);
459
460 /*
461 * iomap_writepage / iomap_writepages currently don't support inline
462 * files, so always unstuff here.
463 */
464
465 if (!gfs2_is_stuffed(ip) &&
466 !gfs2_write_alloc_required(ip, offset, length)) {
467 lock_page(page);
468 if (!PageUptodate(page) || page->mapping != inode->i_mapping) {
469 ret = VM_FAULT_NOPAGE;
470 unlock_page(page);
471 }
472 goto out_unlock;
473 }
474
475 err = gfs2_rindex_update(sdp);
476 if (err) {
477 ret = block_page_mkwrite_return(err);
478 goto out_unlock;
479 }
480
481 gfs2_write_calc_reserv(ip, length, &data_blocks, &ind_blocks);
482 ap.target = data_blocks + ind_blocks;
483 err = gfs2_quota_lock_check(ip, &ap);
484 if (err) {
485 ret = block_page_mkwrite_return(err);
486 goto out_unlock;
487 }
488 err = gfs2_inplace_reserve(ip, &ap);
489 if (err) {
490 ret = block_page_mkwrite_return(err);
491 goto out_quota_unlock;
492 }
493
494 rblocks = RES_DINODE + ind_blocks;
495 if (gfs2_is_jdata(ip))
496 rblocks += data_blocks ? data_blocks : 1;
497 if (ind_blocks || data_blocks) {
498 rblocks += RES_STATFS + RES_QUOTA;
499 rblocks += gfs2_rg_blocks(ip, data_blocks + ind_blocks);
500 }
501 err = gfs2_trans_begin(sdp, rblocks, 0);
502 if (err) {
503 ret = block_page_mkwrite_return(err);
504 goto out_trans_fail;
505 }
506
507 /* Unstuff, if required, and allocate backing blocks for page */
508 if (gfs2_is_stuffed(ip)) {
509 err = gfs2_unstuff_dinode(ip);
510 if (err) {
511 ret = block_page_mkwrite_return(err);
512 goto out_trans_end;
513 }
514 }
515
516 lock_page(page);
517 /* If truncated, we must retry the operation, we may have raced
518 * with the glock demotion code.
519 */
520 if (!PageUptodate(page) || page->mapping != inode->i_mapping) {
521 ret = VM_FAULT_NOPAGE;
522 goto out_page_locked;
523 }
524
525 err = gfs2_allocate_page_backing(page, length);
526 if (err)
527 ret = block_page_mkwrite_return(err);
528
529out_page_locked:
530 if (ret != VM_FAULT_LOCKED)
531 unlock_page(page);
532out_trans_end:
533 gfs2_trans_end(sdp);
534out_trans_fail:
535 gfs2_inplace_release(ip);
536out_quota_unlock:
537 gfs2_quota_unlock(ip);
538out_unlock:
539 gfs2_glock_dq(&gh);
540out_uninit:
541 gfs2_holder_uninit(&gh);
542 if (ret == VM_FAULT_LOCKED) {
543 set_page_dirty(page);
544 wait_for_stable_page(page);
545 }
546 sb_end_pagefault(inode->i_sb);
547 return ret;
548}
549
550static vm_fault_t gfs2_fault(struct vm_fault *vmf)
551{
552 struct inode *inode = file_inode(vmf->vma->vm_file);
553 struct gfs2_inode *ip = GFS2_I(inode);
554 struct gfs2_holder gh;
555 vm_fault_t ret;
556 int err;
557
558 gfs2_holder_init(ip->i_gl, LM_ST_SHARED, 0, &gh);
559 err = gfs2_glock_nq(&gh);
560 if (err) {
561 ret = block_page_mkwrite_return(err);
562 goto out_uninit;
563 }
564 ret = filemap_fault(vmf);
565 gfs2_glock_dq(&gh);
566out_uninit:
567 gfs2_holder_uninit(&gh);
568 return ret;
569}
570
571static const struct vm_operations_struct gfs2_vm_ops = {
572 .fault = gfs2_fault,
573 .map_pages = filemap_map_pages,
574 .page_mkwrite = gfs2_page_mkwrite,
575};
576
577/**
578 * gfs2_mmap
579 * @file: The file to map
580 * @vma: The VMA which described the mapping
581 *
582 * There is no need to get a lock here unless we should be updating
583 * atime. We ignore any locking errors since the only consequence is
584 * a missed atime update (which will just be deferred until later).
585 *
586 * Returns: 0
587 */
588
589static int gfs2_mmap(struct file *file, struct vm_area_struct *vma)
590{
591 struct gfs2_inode *ip = GFS2_I(file->f_mapping->host);
592
593 if (!(file->f_flags & O_NOATIME) &&
594 !IS_NOATIME(&ip->i_inode)) {
595 struct gfs2_holder i_gh;
596 int error;
597
598 error = gfs2_glock_nq_init(ip->i_gl, LM_ST_SHARED, LM_FLAG_ANY,
599 &i_gh);
600 if (error)
601 return error;
602 /* grab lock to update inode */
603 gfs2_glock_dq_uninit(&i_gh);
604 file_accessed(file);
605 }
606 vma->vm_ops = &gfs2_vm_ops;
607
608 return 0;
609}
610
611/**
612 * gfs2_open_common - This is common to open and atomic_open
613 * @inode: The inode being opened
614 * @file: The file being opened
615 *
616 * This maybe called under a glock or not depending upon how it has
617 * been called. We must always be called under a glock for regular
618 * files, however. For other file types, it does not matter whether
619 * we hold the glock or not.
620 *
621 * Returns: Error code or 0 for success
622 */
623
624int gfs2_open_common(struct inode *inode, struct file *file)
625{
626 struct gfs2_file *fp;
627 int ret;
628
629 if (S_ISREG(inode->i_mode)) {
630 ret = generic_file_open(inode, file);
631 if (ret)
632 return ret;
633 }
634
635 fp = kzalloc(sizeof(struct gfs2_file), GFP_NOFS);
636 if (!fp)
637 return -ENOMEM;
638
639 mutex_init(&fp->f_fl_mutex);
640
641 gfs2_assert_warn(GFS2_SB(inode), !file->private_data);
642 file->private_data = fp;
643 if (file->f_mode & FMODE_WRITE) {
644 ret = gfs2_qa_get(GFS2_I(inode));
645 if (ret)
646 goto fail;
647 }
648 return 0;
649
650fail:
651 kfree(file->private_data);
652 file->private_data = NULL;
653 return ret;
654}
655
656/**
657 * gfs2_open - open a file
658 * @inode: the inode to open
659 * @file: the struct file for this opening
660 *
661 * After atomic_open, this function is only used for opening files
662 * which are already cached. We must still get the glock for regular
663 * files to ensure that we have the file size uptodate for the large
664 * file check which is in the common code. That is only an issue for
665 * regular files though.
666 *
667 * Returns: errno
668 */
669
670static int gfs2_open(struct inode *inode, struct file *file)
671{
672 struct gfs2_inode *ip = GFS2_I(inode);
673 struct gfs2_holder i_gh;
674 int error;
675 bool need_unlock = false;
676
677 if (S_ISREG(ip->i_inode.i_mode)) {
678 error = gfs2_glock_nq_init(ip->i_gl, LM_ST_SHARED, LM_FLAG_ANY,
679 &i_gh);
680 if (error)
681 return error;
682 need_unlock = true;
683 }
684
685 error = gfs2_open_common(inode, file);
686
687 if (need_unlock)
688 gfs2_glock_dq_uninit(&i_gh);
689
690 return error;
691}
692
693/**
694 * gfs2_release - called to close a struct file
695 * @inode: the inode the struct file belongs to
696 * @file: the struct file being closed
697 *
698 * Returns: errno
699 */
700
701static int gfs2_release(struct inode *inode, struct file *file)
702{
703 struct gfs2_inode *ip = GFS2_I(inode);
704
705 kfree(file->private_data);
706 file->private_data = NULL;
707
708 if (file->f_mode & FMODE_WRITE) {
709 if (gfs2_rs_active(&ip->i_res))
710 gfs2_rs_delete(ip);
711 gfs2_qa_put(ip);
712 }
713 return 0;
714}
715
716/**
717 * gfs2_fsync - sync the dirty data for a file (across the cluster)
718 * @file: the file that points to the dentry
719 * @start: the start position in the file to sync
720 * @end: the end position in the file to sync
721 * @datasync: set if we can ignore timestamp changes
722 *
723 * We split the data flushing here so that we don't wait for the data
724 * until after we've also sent the metadata to disk. Note that for
725 * data=ordered, we will write & wait for the data at the log flush
726 * stage anyway, so this is unlikely to make much of a difference
727 * except in the data=writeback case.
728 *
729 * If the fdatawrite fails due to any reason except -EIO, we will
730 * continue the remainder of the fsync, although we'll still report
731 * the error at the end. This is to match filemap_write_and_wait_range()
732 * behaviour.
733 *
734 * Returns: errno
735 */
736
737static int gfs2_fsync(struct file *file, loff_t start, loff_t end,
738 int datasync)
739{
740 struct address_space *mapping = file->f_mapping;
741 struct inode *inode = mapping->host;
742 int sync_state = inode->i_state & I_DIRTY;
743 struct gfs2_inode *ip = GFS2_I(inode);
744 int ret = 0, ret1 = 0;
745
746 if (mapping->nrpages) {
747 ret1 = filemap_fdatawrite_range(mapping, start, end);
748 if (ret1 == -EIO)
749 return ret1;
750 }
751
752 if (!gfs2_is_jdata(ip))
753 sync_state &= ~I_DIRTY_PAGES;
754 if (datasync)
755 sync_state &= ~I_DIRTY_SYNC;
756
757 if (sync_state) {
758 ret = sync_inode_metadata(inode, 1);
759 if (ret)
760 return ret;
761 if (gfs2_is_jdata(ip))
762 ret = file_write_and_wait(file);
763 if (ret)
764 return ret;
765 gfs2_ail_flush(ip->i_gl, 1);
766 }
767
768 if (mapping->nrpages)
769 ret = file_fdatawait_range(file, start, end);
770
771 return ret ? ret : ret1;
772}
773
774static inline bool should_fault_in_pages(struct iov_iter *i,
775 struct kiocb *iocb,
776 size_t *prev_count,
777 size_t *window_size)
778{
779 size_t count = iov_iter_count(i);
780 size_t size, offs;
781
782 if (!count)
783 return false;
784 if (!user_backed_iter(i))
785 return false;
786
787 /*
788 * Try to fault in multiple pages initially. When that doesn't result
789 * in any progress, fall back to a single page.
790 */
791 size = PAGE_SIZE;
792 offs = offset_in_page(iocb->ki_pos);
793 if (*prev_count != count) {
794 size_t nr_dirtied;
795
796 nr_dirtied = max(current->nr_dirtied_pause -
797 current->nr_dirtied, 8);
798 size = min_t(size_t, SZ_1M, nr_dirtied << PAGE_SHIFT);
799 }
800
801 *prev_count = count;
802 *window_size = size - offs;
803 return true;
804}
805
806static ssize_t gfs2_file_direct_read(struct kiocb *iocb, struct iov_iter *to,
807 struct gfs2_holder *gh)
808{
809 struct file *file = iocb->ki_filp;
810 struct gfs2_inode *ip = GFS2_I(file->f_mapping->host);
811 size_t prev_count = 0, window_size = 0;
812 size_t read = 0;
813 ssize_t ret;
814
815 /*
816 * In this function, we disable page faults when we're holding the
817 * inode glock while doing I/O. If a page fault occurs, we indicate
818 * that the inode glock may be dropped, fault in the pages manually,
819 * and retry.
820 *
821 * Unlike generic_file_read_iter, for reads, iomap_dio_rw can trigger
822 * physical as well as manual page faults, and we need to disable both
823 * kinds.
824 *
825 * For direct I/O, gfs2 takes the inode glock in deferred mode. This
826 * locking mode is compatible with other deferred holders, so multiple
827 * processes and nodes can do direct I/O to a file at the same time.
828 * There's no guarantee that reads or writes will be atomic. Any
829 * coordination among readers and writers needs to happen externally.
830 */
831
832 if (!iov_iter_count(to))
833 return 0; /* skip atime */
834
835 gfs2_holder_init(ip->i_gl, LM_ST_DEFERRED, 0, gh);
836retry:
837 ret = gfs2_glock_nq(gh);
838 if (ret)
839 goto out_uninit;
840 pagefault_disable();
841 to->nofault = true;
842 ret = iomap_dio_rw(iocb, to, &gfs2_iomap_ops, NULL,
843 IOMAP_DIO_PARTIAL, NULL, read);
844 to->nofault = false;
845 pagefault_enable();
846 if (ret <= 0 && ret != -EFAULT)
847 goto out_unlock;
848 /* No increment (+=) because iomap_dio_rw returns a cumulative value. */
849 if (ret > 0)
850 read = ret;
851
852 if (should_fault_in_pages(to, iocb, &prev_count, &window_size)) {
853 gfs2_glock_dq(gh);
854 window_size -= fault_in_iov_iter_writeable(to, window_size);
855 if (window_size)
856 goto retry;
857 }
858out_unlock:
859 if (gfs2_holder_queued(gh))
860 gfs2_glock_dq(gh);
861out_uninit:
862 gfs2_holder_uninit(gh);
863 /* User space doesn't expect partial success. */
864 if (ret < 0)
865 return ret;
866 return read;
867}
868
869static ssize_t gfs2_file_direct_write(struct kiocb *iocb, struct iov_iter *from,
870 struct gfs2_holder *gh)
871{
872 struct file *file = iocb->ki_filp;
873 struct inode *inode = file->f_mapping->host;
874 struct gfs2_inode *ip = GFS2_I(inode);
875 size_t prev_count = 0, window_size = 0;
876 size_t written = 0;
877 bool enough_retries;
878 ssize_t ret;
879
880 /*
881 * In this function, we disable page faults when we're holding the
882 * inode glock while doing I/O. If a page fault occurs, we indicate
883 * that the inode glock may be dropped, fault in the pages manually,
884 * and retry.
885 *
886 * For writes, iomap_dio_rw only triggers manual page faults, so we
887 * don't need to disable physical ones.
888 */
889
890 /*
891 * Deferred lock, even if its a write, since we do no allocation on
892 * this path. All we need to change is the atime, and this lock mode
893 * ensures that other nodes have flushed their buffered read caches
894 * (i.e. their page cache entries for this inode). We do not,
895 * unfortunately, have the option of only flushing a range like the
896 * VFS does.
897 */
898 gfs2_holder_init(ip->i_gl, LM_ST_DEFERRED, 0, gh);
899retry:
900 ret = gfs2_glock_nq(gh);
901 if (ret)
902 goto out_uninit;
903 /* Silently fall back to buffered I/O when writing beyond EOF */
904 if (iocb->ki_pos + iov_iter_count(from) > i_size_read(&ip->i_inode))
905 goto out_unlock;
906
907 from->nofault = true;
908 ret = iomap_dio_rw(iocb, from, &gfs2_iomap_ops, NULL,
909 IOMAP_DIO_PARTIAL, NULL, written);
910 from->nofault = false;
911 if (ret <= 0) {
912 if (ret == -ENOTBLK)
913 ret = 0;
914 if (ret != -EFAULT)
915 goto out_unlock;
916 }
917 /* No increment (+=) because iomap_dio_rw returns a cumulative value. */
918 if (ret > 0)
919 written = ret;
920
921 enough_retries = prev_count == iov_iter_count(from) &&
922 window_size <= PAGE_SIZE;
923 if (should_fault_in_pages(from, iocb, &prev_count, &window_size)) {
924 gfs2_glock_dq(gh);
925 window_size -= fault_in_iov_iter_readable(from, window_size);
926 if (window_size) {
927 if (!enough_retries)
928 goto retry;
929 /* fall back to buffered I/O */
930 ret = 0;
931 }
932 }
933out_unlock:
934 if (gfs2_holder_queued(gh))
935 gfs2_glock_dq(gh);
936out_uninit:
937 gfs2_holder_uninit(gh);
938 /* User space doesn't expect partial success. */
939 if (ret < 0)
940 return ret;
941 return written;
942}
943
944static ssize_t gfs2_file_read_iter(struct kiocb *iocb, struct iov_iter *to)
945{
946 struct gfs2_inode *ip;
947 struct gfs2_holder gh;
948 size_t prev_count = 0, window_size = 0;
949 size_t read = 0;
950 ssize_t ret;
951
952 /*
953 * In this function, we disable page faults when we're holding the
954 * inode glock while doing I/O. If a page fault occurs, we indicate
955 * that the inode glock may be dropped, fault in the pages manually,
956 * and retry.
957 */
958
959 if (iocb->ki_flags & IOCB_DIRECT)
960 return gfs2_file_direct_read(iocb, to, &gh);
961
962 pagefault_disable();
963 iocb->ki_flags |= IOCB_NOIO;
964 ret = generic_file_read_iter(iocb, to);
965 iocb->ki_flags &= ~IOCB_NOIO;
966 pagefault_enable();
967 if (ret >= 0) {
968 if (!iov_iter_count(to))
969 return ret;
970 read = ret;
971 } else if (ret != -EFAULT) {
972 if (ret != -EAGAIN)
973 return ret;
974 if (iocb->ki_flags & IOCB_NOWAIT)
975 return ret;
976 }
977 ip = GFS2_I(iocb->ki_filp->f_mapping->host);
978 gfs2_holder_init(ip->i_gl, LM_ST_SHARED, 0, &gh);
979retry:
980 ret = gfs2_glock_nq(&gh);
981 if (ret)
982 goto out_uninit;
983 pagefault_disable();
984 ret = generic_file_read_iter(iocb, to);
985 pagefault_enable();
986 if (ret <= 0 && ret != -EFAULT)
987 goto out_unlock;
988 if (ret > 0)
989 read += ret;
990
991 if (should_fault_in_pages(to, iocb, &prev_count, &window_size)) {
992 gfs2_glock_dq(&gh);
993 window_size -= fault_in_iov_iter_writeable(to, window_size);
994 if (window_size)
995 goto retry;
996 }
997out_unlock:
998 if (gfs2_holder_queued(&gh))
999 gfs2_glock_dq(&gh);
1000out_uninit:
1001 gfs2_holder_uninit(&gh);
1002 return read ? read : ret;
1003}
1004
1005static ssize_t gfs2_file_buffered_write(struct kiocb *iocb,
1006 struct iov_iter *from,
1007 struct gfs2_holder *gh)
1008{
1009 struct file *file = iocb->ki_filp;
1010 struct inode *inode = file_inode(file);
1011 struct gfs2_inode *ip = GFS2_I(inode);
1012 struct gfs2_sbd *sdp = GFS2_SB(inode);
1013 struct gfs2_holder *statfs_gh = NULL;
1014 size_t prev_count = 0, window_size = 0;
1015 size_t orig_count = iov_iter_count(from);
1016 size_t written = 0;
1017 ssize_t ret;
1018
1019 /*
1020 * In this function, we disable page faults when we're holding the
1021 * inode glock while doing I/O. If a page fault occurs, we indicate
1022 * that the inode glock may be dropped, fault in the pages manually,
1023 * and retry.
1024 */
1025
1026 if (inode == sdp->sd_rindex) {
1027 statfs_gh = kmalloc(sizeof(*statfs_gh), GFP_NOFS);
1028 if (!statfs_gh)
1029 return -ENOMEM;
1030 }
1031
1032 gfs2_holder_init(ip->i_gl, LM_ST_EXCLUSIVE, 0, gh);
1033retry:
1034 if (should_fault_in_pages(from, iocb, &prev_count, &window_size)) {
1035 window_size -= fault_in_iov_iter_readable(from, window_size);
1036 if (!window_size) {
1037 ret = -EFAULT;
1038 goto out_uninit;
1039 }
1040 from->count = min(from->count, window_size);
1041 }
1042 ret = gfs2_glock_nq(gh);
1043 if (ret)
1044 goto out_uninit;
1045
1046 if (inode == sdp->sd_rindex) {
1047 struct gfs2_inode *m_ip = GFS2_I(sdp->sd_statfs_inode);
1048
1049 ret = gfs2_glock_nq_init(m_ip->i_gl, LM_ST_EXCLUSIVE,
1050 GL_NOCACHE, statfs_gh);
1051 if (ret)
1052 goto out_unlock;
1053 }
1054
1055 current->backing_dev_info = inode_to_bdi(inode);
1056 pagefault_disable();
1057 ret = iomap_file_buffered_write(iocb, from, &gfs2_iomap_ops);
1058 pagefault_enable();
1059 current->backing_dev_info = NULL;
1060 if (ret > 0) {
1061 iocb->ki_pos += ret;
1062 written += ret;
1063 }
1064
1065 if (inode == sdp->sd_rindex)
1066 gfs2_glock_dq_uninit(statfs_gh);
1067
1068 if (ret <= 0 && ret != -EFAULT)
1069 goto out_unlock;
1070
1071 from->count = orig_count - written;
1072 if (should_fault_in_pages(from, iocb, &prev_count, &window_size)) {
1073 gfs2_glock_dq(gh);
1074 goto retry;
1075 }
1076out_unlock:
1077 if (gfs2_holder_queued(gh))
1078 gfs2_glock_dq(gh);
1079out_uninit:
1080 gfs2_holder_uninit(gh);
1081 kfree(statfs_gh);
1082 from->count = orig_count - written;
1083 return written ? written : ret;
1084}
1085
1086/**
1087 * gfs2_file_write_iter - Perform a write to a file
1088 * @iocb: The io context
1089 * @from: The data to write
1090 *
1091 * We have to do a lock/unlock here to refresh the inode size for
1092 * O_APPEND writes, otherwise we can land up writing at the wrong
1093 * offset. There is still a race, but provided the app is using its
1094 * own file locking, this will make O_APPEND work as expected.
1095 *
1096 */
1097
1098static ssize_t gfs2_file_write_iter(struct kiocb *iocb, struct iov_iter *from)
1099{
1100 struct file *file = iocb->ki_filp;
1101 struct inode *inode = file_inode(file);
1102 struct gfs2_inode *ip = GFS2_I(inode);
1103 struct gfs2_holder gh;
1104 ssize_t ret;
1105
1106 gfs2_size_hint(file, iocb->ki_pos, iov_iter_count(from));
1107
1108 if (iocb->ki_flags & IOCB_APPEND) {
1109 ret = gfs2_glock_nq_init(ip->i_gl, LM_ST_SHARED, 0, &gh);
1110 if (ret)
1111 return ret;
1112 gfs2_glock_dq_uninit(&gh);
1113 }
1114
1115 inode_lock(inode);
1116 ret = generic_write_checks(iocb, from);
1117 if (ret <= 0)
1118 goto out_unlock;
1119
1120 ret = file_remove_privs(file);
1121 if (ret)
1122 goto out_unlock;
1123
1124 ret = file_update_time(file);
1125 if (ret)
1126 goto out_unlock;
1127
1128 if (iocb->ki_flags & IOCB_DIRECT) {
1129 struct address_space *mapping = file->f_mapping;
1130 ssize_t buffered, ret2;
1131
1132 ret = gfs2_file_direct_write(iocb, from, &gh);
1133 if (ret < 0 || !iov_iter_count(from))
1134 goto out_unlock;
1135
1136 iocb->ki_flags |= IOCB_DSYNC;
1137 buffered = gfs2_file_buffered_write(iocb, from, &gh);
1138 if (unlikely(buffered <= 0)) {
1139 if (!ret)
1140 ret = buffered;
1141 goto out_unlock;
1142 }
1143
1144 /*
1145 * We need to ensure that the page cache pages are written to
1146 * disk and invalidated to preserve the expected O_DIRECT
1147 * semantics. If the writeback or invalidate fails, only report
1148 * the direct I/O range as we don't know if the buffered pages
1149 * made it to disk.
1150 */
1151 ret2 = generic_write_sync(iocb, buffered);
1152 invalidate_mapping_pages(mapping,
1153 (iocb->ki_pos - buffered) >> PAGE_SHIFT,
1154 (iocb->ki_pos - 1) >> PAGE_SHIFT);
1155 if (!ret || ret2 > 0)
1156 ret += ret2;
1157 } else {
1158 ret = gfs2_file_buffered_write(iocb, from, &gh);
1159 if (likely(ret > 0))
1160 ret = generic_write_sync(iocb, ret);
1161 }
1162
1163out_unlock:
1164 inode_unlock(inode);
1165 return ret;
1166}
1167
1168static int fallocate_chunk(struct inode *inode, loff_t offset, loff_t len,
1169 int mode)
1170{
1171 struct super_block *sb = inode->i_sb;
1172 struct gfs2_inode *ip = GFS2_I(inode);
1173 loff_t end = offset + len;
1174 struct buffer_head *dibh;
1175 int error;
1176
1177 error = gfs2_meta_inode_buffer(ip, &dibh);
1178 if (unlikely(error))
1179 return error;
1180
1181 gfs2_trans_add_meta(ip->i_gl, dibh);
1182
1183 if (gfs2_is_stuffed(ip)) {
1184 error = gfs2_unstuff_dinode(ip);
1185 if (unlikely(error))
1186 goto out;
1187 }
1188
1189 while (offset < end) {
1190 struct iomap iomap = { };
1191
1192 error = gfs2_iomap_alloc(inode, offset, end - offset, &iomap);
1193 if (error)
1194 goto out;
1195 offset = iomap.offset + iomap.length;
1196 if (!(iomap.flags & IOMAP_F_NEW))
1197 continue;
1198 error = sb_issue_zeroout(sb, iomap.addr >> inode->i_blkbits,
1199 iomap.length >> inode->i_blkbits,
1200 GFP_NOFS);
1201 if (error) {
1202 fs_err(GFS2_SB(inode), "Failed to zero data buffers\n");
1203 goto out;
1204 }
1205 }
1206out:
1207 brelse(dibh);
1208 return error;
1209}
1210
1211/**
1212 * calc_max_reserv() - Reverse of write_calc_reserv. Given a number of
1213 * blocks, determine how many bytes can be written.
1214 * @ip: The inode in question.
1215 * @len: Max cap of bytes. What we return in *len must be <= this.
1216 * @data_blocks: Compute and return the number of data blocks needed
1217 * @ind_blocks: Compute and return the number of indirect blocks needed
1218 * @max_blocks: The total blocks available to work with.
1219 *
1220 * Returns: void, but @len, @data_blocks and @ind_blocks are filled in.
1221 */
1222static void calc_max_reserv(struct gfs2_inode *ip, loff_t *len,
1223 unsigned int *data_blocks, unsigned int *ind_blocks,
1224 unsigned int max_blocks)
1225{
1226 loff_t max = *len;
1227 const struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode);
1228 unsigned int tmp, max_data = max_blocks - 3 * (sdp->sd_max_height - 1);
1229
1230 for (tmp = max_data; tmp > sdp->sd_diptrs;) {
1231 tmp = DIV_ROUND_UP(tmp, sdp->sd_inptrs);
1232 max_data -= tmp;
1233 }
1234
1235 *data_blocks = max_data;
1236 *ind_blocks = max_blocks - max_data;
1237 *len = ((loff_t)max_data - 3) << sdp->sd_sb.sb_bsize_shift;
1238 if (*len > max) {
1239 *len = max;
1240 gfs2_write_calc_reserv(ip, max, data_blocks, ind_blocks);
1241 }
1242}
1243
1244static long __gfs2_fallocate(struct file *file, int mode, loff_t offset, loff_t len)
1245{
1246 struct inode *inode = file_inode(file);
1247 struct gfs2_sbd *sdp = GFS2_SB(inode);
1248 struct gfs2_inode *ip = GFS2_I(inode);
1249 struct gfs2_alloc_parms ap = { .aflags = 0, };
1250 unsigned int data_blocks = 0, ind_blocks = 0, rblocks;
1251 loff_t bytes, max_bytes, max_blks;
1252 int error;
1253 const loff_t pos = offset;
1254 const loff_t count = len;
1255 loff_t bsize_mask = ~((loff_t)sdp->sd_sb.sb_bsize - 1);
1256 loff_t next = (offset + len - 1) >> sdp->sd_sb.sb_bsize_shift;
1257 loff_t max_chunk_size = UINT_MAX & bsize_mask;
1258
1259 next = (next + 1) << sdp->sd_sb.sb_bsize_shift;
1260
1261 offset &= bsize_mask;
1262
1263 len = next - offset;
1264 bytes = sdp->sd_max_rg_data * sdp->sd_sb.sb_bsize / 2;
1265 if (!bytes)
1266 bytes = UINT_MAX;
1267 bytes &= bsize_mask;
1268 if (bytes == 0)
1269 bytes = sdp->sd_sb.sb_bsize;
1270
1271 gfs2_size_hint(file, offset, len);
1272
1273 gfs2_write_calc_reserv(ip, PAGE_SIZE, &data_blocks, &ind_blocks);
1274 ap.min_target = data_blocks + ind_blocks;
1275
1276 while (len > 0) {
1277 if (len < bytes)
1278 bytes = len;
1279 if (!gfs2_write_alloc_required(ip, offset, bytes)) {
1280 len -= bytes;
1281 offset += bytes;
1282 continue;
1283 }
1284
1285 /* We need to determine how many bytes we can actually
1286 * fallocate without exceeding quota or going over the
1287 * end of the fs. We start off optimistically by assuming
1288 * we can write max_bytes */
1289 max_bytes = (len > max_chunk_size) ? max_chunk_size : len;
1290
1291 /* Since max_bytes is most likely a theoretical max, we
1292 * calculate a more realistic 'bytes' to serve as a good
1293 * starting point for the number of bytes we may be able
1294 * to write */
1295 gfs2_write_calc_reserv(ip, bytes, &data_blocks, &ind_blocks);
1296 ap.target = data_blocks + ind_blocks;
1297
1298 error = gfs2_quota_lock_check(ip, &ap);
1299 if (error)
1300 return error;
1301 /* ap.allowed tells us how many blocks quota will allow
1302 * us to write. Check if this reduces max_blks */
1303 max_blks = UINT_MAX;
1304 if (ap.allowed)
1305 max_blks = ap.allowed;
1306
1307 error = gfs2_inplace_reserve(ip, &ap);
1308 if (error)
1309 goto out_qunlock;
1310
1311 /* check if the selected rgrp limits our max_blks further */
1312 if (ip->i_res.rs_reserved < max_blks)
1313 max_blks = ip->i_res.rs_reserved;
1314
1315 /* Almost done. Calculate bytes that can be written using
1316 * max_blks. We also recompute max_bytes, data_blocks and
1317 * ind_blocks */
1318 calc_max_reserv(ip, &max_bytes, &data_blocks,
1319 &ind_blocks, max_blks);
1320
1321 rblocks = RES_DINODE + ind_blocks + RES_STATFS + RES_QUOTA +
1322 RES_RG_HDR + gfs2_rg_blocks(ip, data_blocks + ind_blocks);
1323 if (gfs2_is_jdata(ip))
1324 rblocks += data_blocks ? data_blocks : 1;
1325
1326 error = gfs2_trans_begin(sdp, rblocks,
1327 PAGE_SIZE >> inode->i_blkbits);
1328 if (error)
1329 goto out_trans_fail;
1330
1331 error = fallocate_chunk(inode, offset, max_bytes, mode);
1332 gfs2_trans_end(sdp);
1333
1334 if (error)
1335 goto out_trans_fail;
1336
1337 len -= max_bytes;
1338 offset += max_bytes;
1339 gfs2_inplace_release(ip);
1340 gfs2_quota_unlock(ip);
1341 }
1342
1343 if (!(mode & FALLOC_FL_KEEP_SIZE) && (pos + count) > inode->i_size)
1344 i_size_write(inode, pos + count);
1345 file_update_time(file);
1346 mark_inode_dirty(inode);
1347
1348 if ((file->f_flags & O_DSYNC) || IS_SYNC(file->f_mapping->host))
1349 return vfs_fsync_range(file, pos, pos + count - 1,
1350 (file->f_flags & __O_SYNC) ? 0 : 1);
1351 return 0;
1352
1353out_trans_fail:
1354 gfs2_inplace_release(ip);
1355out_qunlock:
1356 gfs2_quota_unlock(ip);
1357 return error;
1358}
1359
1360static long gfs2_fallocate(struct file *file, int mode, loff_t offset, loff_t len)
1361{
1362 struct inode *inode = file_inode(file);
1363 struct gfs2_sbd *sdp = GFS2_SB(inode);
1364 struct gfs2_inode *ip = GFS2_I(inode);
1365 struct gfs2_holder gh;
1366 int ret;
1367
1368 if (mode & ~(FALLOC_FL_PUNCH_HOLE | FALLOC_FL_KEEP_SIZE))
1369 return -EOPNOTSUPP;
1370 /* fallocate is needed by gfs2_grow to reserve space in the rindex */
1371 if (gfs2_is_jdata(ip) && inode != sdp->sd_rindex)
1372 return -EOPNOTSUPP;
1373
1374 inode_lock(inode);
1375
1376 gfs2_holder_init(ip->i_gl, LM_ST_EXCLUSIVE, 0, &gh);
1377 ret = gfs2_glock_nq(&gh);
1378 if (ret)
1379 goto out_uninit;
1380
1381 if (!(mode & FALLOC_FL_KEEP_SIZE) &&
1382 (offset + len) > inode->i_size) {
1383 ret = inode_newsize_ok(inode, offset + len);
1384 if (ret)
1385 goto out_unlock;
1386 }
1387
1388 ret = get_write_access(inode);
1389 if (ret)
1390 goto out_unlock;
1391
1392 if (mode & FALLOC_FL_PUNCH_HOLE) {
1393 ret = __gfs2_punch_hole(file, offset, len);
1394 } else {
1395 ret = __gfs2_fallocate(file, mode, offset, len);
1396 if (ret)
1397 gfs2_rs_deltree(&ip->i_res);
1398 }
1399
1400 put_write_access(inode);
1401out_unlock:
1402 gfs2_glock_dq(&gh);
1403out_uninit:
1404 gfs2_holder_uninit(&gh);
1405 inode_unlock(inode);
1406 return ret;
1407}
1408
1409static ssize_t gfs2_file_splice_write(struct pipe_inode_info *pipe,
1410 struct file *out, loff_t *ppos,
1411 size_t len, unsigned int flags)
1412{
1413 ssize_t ret;
1414
1415 gfs2_size_hint(out, *ppos, len);
1416
1417 ret = iter_file_splice_write(pipe, out, ppos, len, flags);
1418 return ret;
1419}
1420
1421#ifdef CONFIG_GFS2_FS_LOCKING_DLM
1422
1423/**
1424 * gfs2_lock - acquire/release a posix lock on a file
1425 * @file: the file pointer
1426 * @cmd: either modify or retrieve lock state, possibly wait
1427 * @fl: type and range of lock
1428 *
1429 * Returns: errno
1430 */
1431
1432static int gfs2_lock(struct file *file, int cmd, struct file_lock *fl)
1433{
1434 struct gfs2_inode *ip = GFS2_I(file->f_mapping->host);
1435 struct gfs2_sbd *sdp = GFS2_SB(file->f_mapping->host);
1436 struct lm_lockstruct *ls = &sdp->sd_lockstruct;
1437
1438 if (!(fl->fl_flags & FL_POSIX))
1439 return -ENOLCK;
1440 if (cmd == F_CANCELLK) {
1441 /* Hack: */
1442 cmd = F_SETLK;
1443 fl->fl_type = F_UNLCK;
1444 }
1445 if (unlikely(gfs2_withdrawn(sdp))) {
1446 if (fl->fl_type == F_UNLCK)
1447 locks_lock_file_wait(file, fl);
1448 return -EIO;
1449 }
1450 if (IS_GETLK(cmd))
1451 return dlm_posix_get(ls->ls_dlm, ip->i_no_addr, file, fl);
1452 else if (fl->fl_type == F_UNLCK)
1453 return dlm_posix_unlock(ls->ls_dlm, ip->i_no_addr, file, fl);
1454 else
1455 return dlm_posix_lock(ls->ls_dlm, ip->i_no_addr, file, cmd, fl);
1456}
1457
1458static void __flock_holder_uninit(struct file *file, struct gfs2_holder *fl_gh)
1459{
1460 struct gfs2_glock *gl = gfs2_glock_hold(fl_gh->gh_gl);
1461
1462 /*
1463 * Make sure gfs2_glock_put() won't sleep under the file->f_lock
1464 * spinlock.
1465 */
1466
1467 spin_lock(&file->f_lock);
1468 gfs2_holder_uninit(fl_gh);
1469 spin_unlock(&file->f_lock);
1470 gfs2_glock_put(gl);
1471}
1472
1473static int do_flock(struct file *file, int cmd, struct file_lock *fl)
1474{
1475 struct gfs2_file *fp = file->private_data;
1476 struct gfs2_holder *fl_gh = &fp->f_fl_gh;
1477 struct gfs2_inode *ip = GFS2_I(file_inode(file));
1478 struct gfs2_glock *gl;
1479 unsigned int state;
1480 u16 flags;
1481 int error = 0;
1482 int sleeptime;
1483
1484 state = (fl->fl_type == F_WRLCK) ? LM_ST_EXCLUSIVE : LM_ST_SHARED;
1485 flags = GL_EXACT | GL_NOPID;
1486 if (!IS_SETLKW(cmd))
1487 flags |= LM_FLAG_TRY_1CB;
1488
1489 mutex_lock(&fp->f_fl_mutex);
1490
1491 if (gfs2_holder_initialized(fl_gh)) {
1492 struct file_lock request;
1493 if (fl_gh->gh_state == state)
1494 goto out;
1495 locks_init_lock(&request);
1496 request.fl_type = F_UNLCK;
1497 request.fl_flags = FL_FLOCK;
1498 locks_lock_file_wait(file, &request);
1499 gfs2_glock_dq(fl_gh);
1500 gfs2_holder_reinit(state, flags, fl_gh);
1501 } else {
1502 error = gfs2_glock_get(GFS2_SB(&ip->i_inode), ip->i_no_addr,
1503 &gfs2_flock_glops, CREATE, &gl);
1504 if (error)
1505 goto out;
1506 spin_lock(&file->f_lock);
1507 gfs2_holder_init(gl, state, flags, fl_gh);
1508 spin_unlock(&file->f_lock);
1509 gfs2_glock_put(gl);
1510 }
1511 for (sleeptime = 1; sleeptime <= 4; sleeptime <<= 1) {
1512 error = gfs2_glock_nq(fl_gh);
1513 if (error != GLR_TRYFAILED)
1514 break;
1515 fl_gh->gh_flags &= ~LM_FLAG_TRY_1CB;
1516 fl_gh->gh_flags |= LM_FLAG_TRY;
1517 msleep(sleeptime);
1518 }
1519 if (error) {
1520 __flock_holder_uninit(file, fl_gh);
1521 if (error == GLR_TRYFAILED)
1522 error = -EAGAIN;
1523 } else {
1524 error = locks_lock_file_wait(file, fl);
1525 gfs2_assert_warn(GFS2_SB(&ip->i_inode), !error);
1526 }
1527
1528out:
1529 mutex_unlock(&fp->f_fl_mutex);
1530 return error;
1531}
1532
1533static void do_unflock(struct file *file, struct file_lock *fl)
1534{
1535 struct gfs2_file *fp = file->private_data;
1536 struct gfs2_holder *fl_gh = &fp->f_fl_gh;
1537
1538 mutex_lock(&fp->f_fl_mutex);
1539 locks_lock_file_wait(file, fl);
1540 if (gfs2_holder_initialized(fl_gh)) {
1541 gfs2_glock_dq(fl_gh);
1542 __flock_holder_uninit(file, fl_gh);
1543 }
1544 mutex_unlock(&fp->f_fl_mutex);
1545}
1546
1547/**
1548 * gfs2_flock - acquire/release a flock lock on a file
1549 * @file: the file pointer
1550 * @cmd: either modify or retrieve lock state, possibly wait
1551 * @fl: type and range of lock
1552 *
1553 * Returns: errno
1554 */
1555
1556static int gfs2_flock(struct file *file, int cmd, struct file_lock *fl)
1557{
1558 if (!(fl->fl_flags & FL_FLOCK))
1559 return -ENOLCK;
1560
1561 if (fl->fl_type == F_UNLCK) {
1562 do_unflock(file, fl);
1563 return 0;
1564 } else {
1565 return do_flock(file, cmd, fl);
1566 }
1567}
1568
1569const struct file_operations gfs2_file_fops = {
1570 .llseek = gfs2_llseek,
1571 .read_iter = gfs2_file_read_iter,
1572 .write_iter = gfs2_file_write_iter,
1573 .iopoll = iocb_bio_iopoll,
1574 .unlocked_ioctl = gfs2_ioctl,
1575 .compat_ioctl = gfs2_compat_ioctl,
1576 .mmap = gfs2_mmap,
1577 .open = gfs2_open,
1578 .release = gfs2_release,
1579 .fsync = gfs2_fsync,
1580 .lock = gfs2_lock,
1581 .flock = gfs2_flock,
1582 .splice_read = generic_file_splice_read,
1583 .splice_write = gfs2_file_splice_write,
1584 .setlease = simple_nosetlease,
1585 .fallocate = gfs2_fallocate,
1586};
1587
1588const struct file_operations gfs2_dir_fops = {
1589 .iterate_shared = gfs2_readdir,
1590 .unlocked_ioctl = gfs2_ioctl,
1591 .compat_ioctl = gfs2_compat_ioctl,
1592 .open = gfs2_open,
1593 .release = gfs2_release,
1594 .fsync = gfs2_fsync,
1595 .lock = gfs2_lock,
1596 .flock = gfs2_flock,
1597 .llseek = default_llseek,
1598};
1599
1600#endif /* CONFIG_GFS2_FS_LOCKING_DLM */
1601
1602const struct file_operations gfs2_file_fops_nolock = {
1603 .llseek = gfs2_llseek,
1604 .read_iter = gfs2_file_read_iter,
1605 .write_iter = gfs2_file_write_iter,
1606 .iopoll = iocb_bio_iopoll,
1607 .unlocked_ioctl = gfs2_ioctl,
1608 .compat_ioctl = gfs2_compat_ioctl,
1609 .mmap = gfs2_mmap,
1610 .open = gfs2_open,
1611 .release = gfs2_release,
1612 .fsync = gfs2_fsync,
1613 .splice_read = generic_file_splice_read,
1614 .splice_write = gfs2_file_splice_write,
1615 .setlease = generic_setlease,
1616 .fallocate = gfs2_fallocate,
1617};
1618
1619const struct file_operations gfs2_dir_fops_nolock = {
1620 .iterate_shared = gfs2_readdir,
1621 .unlocked_ioctl = gfs2_ioctl,
1622 .compat_ioctl = gfs2_compat_ioctl,
1623 .open = gfs2_open,
1624 .release = gfs2_release,
1625 .fsync = gfs2_fsync,
1626 .llseek = default_llseek,
1627};
1628