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b2441318 1// SPDX-License-Identifier: GPL-2.0
f79e2abb
AM
2/*
3 * High-level sync()-related operations
4 */
5
6#include <linux/kernel.h>
7#include <linux/file.h>
8#include <linux/fs.h>
5a0e3ad6 9#include <linux/slab.h>
630d9c47 10#include <linux/export.h>
b7ed78f5 11#include <linux/namei.h>
914e2637 12#include <linux/sched.h>
f79e2abb
AM
13#include <linux/writeback.h>
14#include <linux/syscalls.h>
15#include <linux/linkage.h>
16#include <linux/pagemap.h>
cf9a2ae8 17#include <linux/quotaops.h>
5129a469 18#include <linux/backing-dev.h>
5a3e5cb8 19#include "internal.h"
f79e2abb
AM
20
21#define VALID_FLAGS (SYNC_FILE_RANGE_WAIT_BEFORE|SYNC_FILE_RANGE_WRITE| \
22 SYNC_FILE_RANGE_WAIT_AFTER)
23
c15c54f5 24/*
d8a8559c
JA
25 * Do the filesystem syncing work. For simple filesystems
26 * writeback_inodes_sb(sb) just dirties buffers with inodes so we have to
27 * submit IO for these buffers via __sync_blockdev(). This also speeds up the
28 * wait == 1 case since in that case write_inode() functions do
29 * sync_dirty_buffer() and thus effectively write one block at a time.
c15c54f5 30 */
0dc83bd3 31static int __sync_filesystem(struct super_block *sb, int wait)
c15c54f5 32{
5fb324ad 33 if (wait)
0dc83bd3 34 sync_inodes_sb(sb);
5fb324ad 35 else
0e175a18 36 writeback_inodes_sb(sb, WB_REASON_SYNC);
5fb324ad 37
c15c54f5
JK
38 if (sb->s_op->sync_fs)
39 sb->s_op->sync_fs(sb, wait);
40 return __sync_blockdev(sb->s_bdev, wait);
41}
42
43/*
44 * Write out and wait upon all dirty data associated with this
45 * superblock. Filesystem data as well as the underlying block
46 * device. Takes the superblock lock.
47 */
60b0680f 48int sync_filesystem(struct super_block *sb)
c15c54f5
JK
49{
50 int ret;
51
5af7926f
CH
52 /*
53 * We need to be protected against the filesystem going from
54 * r/o to r/w or vice versa.
55 */
56 WARN_ON(!rwsem_is_locked(&sb->s_umount));
57
58 /*
59 * No point in syncing out anything if the filesystem is read-only.
60 */
bc98a42c 61 if (sb_rdonly(sb))
5af7926f
CH
62 return 0;
63
0dc83bd3 64 ret = __sync_filesystem(sb, 0);
c15c54f5
JK
65 if (ret < 0)
66 return ret;
0dc83bd3 67 return __sync_filesystem(sb, 1);
c15c54f5 68}
10096fb1 69EXPORT_SYMBOL(sync_filesystem);
c15c54f5 70
b3de6531 71static void sync_inodes_one_sb(struct super_block *sb, void *arg)
01a05b33 72{
bc98a42c 73 if (!sb_rdonly(sb))
0dc83bd3 74 sync_inodes_sb(sb);
01a05b33 75}
b3de6531 76
b3de6531
JK
77static void sync_fs_one_sb(struct super_block *sb, void *arg)
78{
32b1924b
KK
79 if (!sb_rdonly(sb) && !(sb->s_iflags & SB_I_SKIP_SYNC) &&
80 sb->s_op->sync_fs)
b3de6531
JK
81 sb->s_op->sync_fs(sb, *(int *)arg);
82}
83
d0e91b13 84static void fdatawrite_one_bdev(struct block_device *bdev, void *arg)
b3de6531 85{
d0e91b13 86 filemap_fdatawrite(bdev->bd_inode->i_mapping);
a8c7176b
JK
87}
88
d0e91b13 89static void fdatawait_one_bdev(struct block_device *bdev, void *arg)
a8c7176b 90{
aa750fd7
JN
91 /*
92 * We keep the error status of individual mapping so that
93 * applications can catch the writeback error using fsync(2).
94 * See filemap_fdatawait_keep_errors() for details.
95 */
96 filemap_fdatawait_keep_errors(bdev->bd_inode->i_mapping);
c15c54f5
JK
97}
98
3beab0b4 99/*
4ea425b6
JK
100 * Sync everything. We start by waking flusher threads so that most of
101 * writeback runs on all devices in parallel. Then we sync all inodes reliably
102 * which effectively also waits for all flusher threads to finish doing
103 * writeback. At this point all data is on disk so metadata should be stable
104 * and we tell filesystems to sync their metadata via ->sync_fs() calls.
105 * Finally, we writeout all block devices because some filesystems (e.g. ext2)
106 * just write metadata (such as inodes or bitmaps) to block device page cache
107 * and do not sync it on their own in ->sync_fs().
3beab0b4 108 */
70f68ee8 109void ksys_sync(void)
cf9a2ae8 110{
b3de6531
JK
111 int nowait = 0, wait = 1;
112
9ba4b2df 113 wakeup_flusher_threads(WB_REASON_SYNC);
0dc83bd3 114 iterate_supers(sync_inodes_one_sb, NULL);
4ea425b6 115 iterate_supers(sync_fs_one_sb, &nowait);
b3de6531 116 iterate_supers(sync_fs_one_sb, &wait);
d0e91b13
JK
117 iterate_bdevs(fdatawrite_one_bdev, NULL);
118 iterate_bdevs(fdatawait_one_bdev, NULL);
cf9a2ae8
DH
119 if (unlikely(laptop_mode))
120 laptop_sync_completion();
70f68ee8
DB
121}
122
123SYSCALL_DEFINE0(sync)
124{
125 ksys_sync();
cf9a2ae8
DH
126 return 0;
127}
128
a2a9537a
JA
129static void do_sync_work(struct work_struct *work)
130{
b3de6531
JK
131 int nowait = 0;
132
5cee5815
JK
133 /*
134 * Sync twice to reduce the possibility we skipped some inodes / pages
135 * because they were temporarily locked
136 */
b3de6531
JK
137 iterate_supers(sync_inodes_one_sb, &nowait);
138 iterate_supers(sync_fs_one_sb, &nowait);
d0e91b13 139 iterate_bdevs(fdatawrite_one_bdev, NULL);
b3de6531
JK
140 iterate_supers(sync_inodes_one_sb, &nowait);
141 iterate_supers(sync_fs_one_sb, &nowait);
d0e91b13 142 iterate_bdevs(fdatawrite_one_bdev, NULL);
5cee5815 143 printk("Emergency Sync complete\n");
a2a9537a
JA
144 kfree(work);
145}
146
cf9a2ae8
DH
147void emergency_sync(void)
148{
a2a9537a
JA
149 struct work_struct *work;
150
151 work = kmalloc(sizeof(*work), GFP_ATOMIC);
152 if (work) {
153 INIT_WORK(work, do_sync_work);
154 schedule_work(work);
155 }
cf9a2ae8
DH
156}
157
b7ed78f5
SW
158/*
159 * sync a single super
160 */
161SYSCALL_DEFINE1(syncfs, int, fd)
162{
2903ff01 163 struct fd f = fdget(fd);
b7ed78f5 164 struct super_block *sb;
735e4ae5 165 int ret, ret2;
b7ed78f5 166
2903ff01 167 if (!f.file)
b7ed78f5 168 return -EBADF;
b583043e 169 sb = f.file->f_path.dentry->d_sb;
b7ed78f5
SW
170
171 down_read(&sb->s_umount);
172 ret = sync_filesystem(sb);
173 up_read(&sb->s_umount);
174
735e4ae5
JL
175 ret2 = errseq_check_and_advance(&sb->s_wb_err, &f.file->f_sb_err);
176
2903ff01 177 fdput(f);
735e4ae5 178 return ret ? ret : ret2;
b7ed78f5
SW
179}
180
4c728ef5 181/**
148f948b 182 * vfs_fsync_range - helper to sync a range of data & metadata to disk
4c728ef5 183 * @file: file to sync
148f948b
JK
184 * @start: offset in bytes of the beginning of data range to sync
185 * @end: offset in bytes of the end of data range (inclusive)
186 * @datasync: perform only datasync
4c728ef5 187 *
148f948b
JK
188 * Write back data in range @start..@end and metadata for @file to disk. If
189 * @datasync is set only metadata needed to access modified file data is
190 * written.
4c728ef5 191 */
8018ab05 192int vfs_fsync_range(struct file *file, loff_t start, loff_t end, int datasync)
cf9a2ae8 193{
0ae45f63
TT
194 struct inode *inode = file->f_mapping->host;
195
72c2d531 196 if (!file->f_op->fsync)
02c24a82 197 return -EINVAL;
0d07e557 198 if (!datasync && (inode->i_state & I_DIRTY_TIME))
0ae45f63 199 mark_inode_dirty_sync(inode);
0f41074a 200 return file->f_op->fsync(file, start, end, datasync);
cf9a2ae8 201}
148f948b
JK
202EXPORT_SYMBOL(vfs_fsync_range);
203
204/**
205 * vfs_fsync - perform a fsync or fdatasync on a file
206 * @file: file to sync
148f948b
JK
207 * @datasync: only perform a fdatasync operation
208 *
209 * Write back data and metadata for @file to disk. If @datasync is
210 * set only metadata needed to access modified file data is written.
148f948b 211 */
8018ab05 212int vfs_fsync(struct file *file, int datasync)
148f948b 213{
8018ab05 214 return vfs_fsync_range(file, 0, LLONG_MAX, datasync);
148f948b 215}
4c728ef5 216EXPORT_SYMBOL(vfs_fsync);
cf9a2ae8 217
4c728ef5 218static int do_fsync(unsigned int fd, int datasync)
cf9a2ae8 219{
2903ff01 220 struct fd f = fdget(fd);
cf9a2ae8
DH
221 int ret = -EBADF;
222
2903ff01
AV
223 if (f.file) {
224 ret = vfs_fsync(f.file, datasync);
225 fdput(f);
cf9a2ae8
DH
226 }
227 return ret;
228}
229
a5f8fa9e 230SYSCALL_DEFINE1(fsync, unsigned int, fd)
cf9a2ae8 231{
4c728ef5 232 return do_fsync(fd, 0);
cf9a2ae8
DH
233}
234
a5f8fa9e 235SYSCALL_DEFINE1(fdatasync, unsigned int, fd)
cf9a2ae8 236{
4c728ef5 237 return do_fsync(fd, 1);
cf9a2ae8
DH
238}
239
22f96b38
JA
240int sync_file_range(struct file *file, loff_t offset, loff_t nbytes,
241 unsigned int flags)
f79e2abb
AM
242{
243 int ret;
7a0ad10c 244 struct address_space *mapping;
f79e2abb 245 loff_t endbyte; /* inclusive */
f79e2abb
AM
246 umode_t i_mode;
247
248 ret = -EINVAL;
249 if (flags & ~VALID_FLAGS)
250 goto out;
251
252 endbyte = offset + nbytes;
253
254 if ((s64)offset < 0)
255 goto out;
256 if ((s64)endbyte < 0)
257 goto out;
258 if (endbyte < offset)
259 goto out;
260
261 if (sizeof(pgoff_t) == 4) {
09cbfeaf 262 if (offset >= (0x100000000ULL << PAGE_SHIFT)) {
f79e2abb
AM
263 /*
264 * The range starts outside a 32 bit machine's
265 * pagecache addressing capabilities. Let it "succeed"
266 */
267 ret = 0;
268 goto out;
269 }
09cbfeaf 270 if (endbyte >= (0x100000000ULL << PAGE_SHIFT)) {
f79e2abb
AM
271 /*
272 * Out to EOF
273 */
274 nbytes = 0;
275 }
276 }
277
278 if (nbytes == 0)
111ebb6e 279 endbyte = LLONG_MAX;
f79e2abb
AM
280 else
281 endbyte--; /* inclusive */
282
22f96b38 283 i_mode = file_inode(file)->i_mode;
f79e2abb
AM
284 ret = -ESPIPE;
285 if (!S_ISREG(i_mode) && !S_ISBLK(i_mode) && !S_ISDIR(i_mode) &&
286 !S_ISLNK(i_mode))
22f96b38 287 goto out;
f79e2abb 288
22f96b38 289 mapping = file->f_mapping;
7a0ad10c
CH
290 ret = 0;
291 if (flags & SYNC_FILE_RANGE_WAIT_BEFORE) {
22f96b38 292 ret = file_fdatawait_range(file, offset, endbyte);
7a0ad10c 293 if (ret < 0)
22f96b38 294 goto out;
7a0ad10c
CH
295 }
296
297 if (flags & SYNC_FILE_RANGE_WRITE) {
c553ea4f
AG
298 int sync_mode = WB_SYNC_NONE;
299
300 if ((flags & SYNC_FILE_RANGE_WRITE_AND_WAIT) ==
301 SYNC_FILE_RANGE_WRITE_AND_WAIT)
302 sync_mode = WB_SYNC_ALL;
303
23d01270 304 ret = __filemap_fdatawrite_range(mapping, offset, endbyte,
c553ea4f 305 sync_mode);
7a0ad10c 306 if (ret < 0)
22f96b38 307 goto out;
7a0ad10c
CH
308 }
309
310 if (flags & SYNC_FILE_RANGE_WAIT_AFTER)
22f96b38 311 ret = file_fdatawait_range(file, offset, endbyte);
7a0ad10c 312
f79e2abb
AM
313out:
314 return ret;
315}
316
22f96b38 317/*
c553ea4f 318 * ksys_sync_file_range() permits finely controlled syncing over a segment of
22f96b38 319 * a file in the range offset .. (offset+nbytes-1) inclusive. If nbytes is
c553ea4f 320 * zero then ksys_sync_file_range() will operate from offset out to EOF.
22f96b38
JA
321 *
322 * The flag bits are:
323 *
324 * SYNC_FILE_RANGE_WAIT_BEFORE: wait upon writeout of all pages in the range
325 * before performing the write.
326 *
327 * SYNC_FILE_RANGE_WRITE: initiate writeout of all those dirty pages in the
328 * range which are not presently under writeback. Note that this may block for
329 * significant periods due to exhaustion of disk request structures.
330 *
331 * SYNC_FILE_RANGE_WAIT_AFTER: wait upon writeout of all pages in the range
332 * after performing the write.
333 *
334 * Useful combinations of the flag bits are:
335 *
336 * SYNC_FILE_RANGE_WAIT_BEFORE|SYNC_FILE_RANGE_WRITE: ensures that all pages
c553ea4f 337 * in the range which were dirty on entry to ksys_sync_file_range() are placed
22f96b38
JA
338 * under writeout. This is a start-write-for-data-integrity operation.
339 *
340 * SYNC_FILE_RANGE_WRITE: start writeout of all dirty pages in the range which
341 * are not presently under writeout. This is an asynchronous flush-to-disk
342 * operation. Not suitable for data integrity operations.
343 *
344 * SYNC_FILE_RANGE_WAIT_BEFORE (or SYNC_FILE_RANGE_WAIT_AFTER): wait for
345 * completion of writeout of all pages in the range. This will be used after an
346 * earlier SYNC_FILE_RANGE_WAIT_BEFORE|SYNC_FILE_RANGE_WRITE operation to wait
347 * for that operation to complete and to return the result.
348 *
c553ea4f
AG
349 * SYNC_FILE_RANGE_WAIT_BEFORE|SYNC_FILE_RANGE_WRITE|SYNC_FILE_RANGE_WAIT_AFTER
350 * (a.k.a. SYNC_FILE_RANGE_WRITE_AND_WAIT):
22f96b38
JA
351 * a traditional sync() operation. This is a write-for-data-integrity operation
352 * which will ensure that all pages in the range which were dirty on entry to
c553ea4f
AG
353 * ksys_sync_file_range() are written to disk. It should be noted that disk
354 * caches are not flushed by this call, so there are no guarantees here that the
355 * data will be available on disk after a crash.
22f96b38
JA
356 *
357 *
358 * SYNC_FILE_RANGE_WAIT_BEFORE and SYNC_FILE_RANGE_WAIT_AFTER will detect any
359 * I/O errors or ENOSPC conditions and will return those to the caller, after
360 * clearing the EIO and ENOSPC flags in the address_space.
361 *
362 * It should be noted that none of these operations write out the file's
363 * metadata. So unless the application is strictly performing overwrites of
364 * already-instantiated disk blocks, there are no guarantees here that the data
365 * will be available after a crash.
366 */
367int ksys_sync_file_range(int fd, loff_t offset, loff_t nbytes,
368 unsigned int flags)
369{
370 int ret;
371 struct fd f;
372
373 ret = -EBADF;
374 f = fdget(fd);
375 if (f.file)
376 ret = sync_file_range(f.file, offset, nbytes, flags);
377
378 fdput(f);
379 return ret;
380}
381
806cbae1
DB
382SYSCALL_DEFINE4(sync_file_range, int, fd, loff_t, offset, loff_t, nbytes,
383 unsigned int, flags)
384{
385 return ksys_sync_file_range(fd, offset, nbytes, flags);
386}
387
edd5cd4a
DW
388/* It would be nice if people remember that not all the world's an i386
389 when they introduce new system calls */
4a0fd5bf
AV
390SYSCALL_DEFINE4(sync_file_range2, int, fd, unsigned int, flags,
391 loff_t, offset, loff_t, nbytes)
edd5cd4a 392{
806cbae1 393 return ksys_sync_file_range(fd, offset, nbytes, flags);
edd5cd4a 394}