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xfs: mark inode buffers in cache
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0b61f8a4 1// SPDX-License-Identifier: GPL-2.0
1da177e4 2/*
7b718769
NS
3 * Copyright (c) 2000-2005 Silicon Graphics, Inc.
4 * All Rights Reserved.
1da177e4 5 */
1da177e4
LT
6#ifndef __XFS_BUF_H__
7#define __XFS_BUF_H__
8
1da177e4
LT
9#include <linux/list.h>
10#include <linux/types.h>
11#include <linux/spinlock.h>
1da177e4
LT
12#include <linux/mm.h>
13#include <linux/fs.h>
c94c2acf 14#include <linux/dax.h>
1da177e4 15#include <linux/uio.h>
e80dfa19 16#include <linux/list_lru.h>
1da177e4
LT
17
18/*
19 * Base types
20 */
21
ce8e922c
NS
22#define XFS_BUF_DADDR_NULL ((xfs_daddr_t) (-1LL))
23
6fb8a90a
CM
24#define XBF_READ (1 << 0) /* buffer intended for reading from device */
25#define XBF_WRITE (1 << 1) /* buffer intended for writing to device */
26#define XBF_READ_AHEAD (1 << 2) /* asynchronous read-ahead */
c891c30a 27#define XBF_NO_IOACCT (1 << 3) /* bypass I/O accounting (non-LRU bufs) */
6fb8a90a
CM
28#define XBF_ASYNC (1 << 4) /* initiator will not wait for completion */
29#define XBF_DONE (1 << 5) /* all pages in the buffer uptodate */
30#define XBF_STALE (1 << 6) /* buffer has been staled, do not find it */
ce89755c 31#define XBF_WRITE_FAIL (1 << 7) /* async writes have failed on this buffer */
1d5ae5df 32
f593bf14
DC
33/* buffer type flags for write callbacks */
34#define _XBF_INODES (1 << 16)/* inode buffer */
1da177e4 35
807cbbdb 36/* flags used only internally */
6fb8a90a
CM
37#define _XBF_PAGES (1 << 20)/* backed by refcounted pages */
38#define _XBF_KMEM (1 << 21)/* backed by heap memory */
39#define _XBF_DELWRI_Q (1 << 22)/* buffer on a delwri queue */
6ab455ee 40
f593bf14
DC
41/* flags used only as arguments to access routines */
42#define XBF_TRYLOCK (1 << 30)/* lock requested, but do not wait */
43#define XBF_UNMAPPED (1 << 31)/* do not map the buffer */
44
807cbbdb 45typedef unsigned int xfs_buf_flags_t;
1da177e4 46
0b1b213f
CH
47#define XFS_BUF_FLAGS \
48 { XBF_READ, "READ" }, \
49 { XBF_WRITE, "WRITE" }, \
1d5ae5df 50 { XBF_READ_AHEAD, "READ_AHEAD" }, \
1247ec4c 51 { XBF_NO_IOACCT, "NO_IOACCT" }, \
0b1b213f
CH
52 { XBF_ASYNC, "ASYNC" }, \
53 { XBF_DONE, "DONE" }, \
0b1b213f 54 { XBF_STALE, "STALE" }, \
ac8809f9 55 { XBF_WRITE_FAIL, "WRITE_FAIL" }, \
f593bf14 56 { _XBF_INODES, "INODES" }, \
0b1b213f 57 { _XBF_PAGES, "PAGES" }, \
0e6e847f 58 { _XBF_KMEM, "KMEM" }, \
f593bf14
DC
59 { _XBF_DELWRI_Q, "DELWRI_Q" }, \
60 /* The following interface flags should never be set */ \
61 { XBF_TRYLOCK, "TRYLOCK" }, \
62 { XBF_UNMAPPED, "UNMAPPED" }
ac8809f9 63
a4082357
DC
64/*
65 * Internal state flags.
66 */
67#define XFS_BSTATE_DISPOSE (1 << 0) /* buffer being discarded */
63db7c81 68#define XFS_BSTATE_IN_FLIGHT (1 << 1) /* I/O in flight */
0b1b213f 69
7c71ee78
ES
70/*
71 * The xfs_buftarg contains 2 notions of "sector size" -
72 *
73 * 1) The metadata sector size, which is the minimum unit and
74 * alignment of IO which will be performed by metadata operations.
75 * 2) The device logical sector size
76 *
77 * The first is specified at mkfs time, and is stored on-disk in the
78 * superblock's sb_sectsize.
79 *
80 * The latter is derived from the underlying device, and controls direct IO
81 * alignment constraints.
82 */
1da177e4 83typedef struct xfs_buftarg {
ce8e922c
NS
84 dev_t bt_dev;
85 struct block_device *bt_bdev;
486aff5e 86 struct dax_device *bt_daxdev;
ebad861b 87 struct xfs_mount *bt_mount;
6da54179
ES
88 unsigned int bt_meta_sectorsize;
89 size_t bt_meta_sectormask;
7c71ee78
ES
90 size_t bt_logical_sectorsize;
91 size_t bt_logical_sectormask;
ce8e922c 92
ff57ab21
DC
93 /* LRU control structures */
94 struct shrinker bt_shrinker;
e80dfa19 95 struct list_lru bt_lru;
9c7504aa
BF
96
97 struct percpu_counter bt_io_count;
f9bccfcc 98 struct ratelimit_state bt_ioerror_rl;
1da177e4
LT
99} xfs_buftarg_t;
100
1da177e4 101struct xfs_buf;
ce8e922c 102typedef void (*xfs_buf_iodone_t)(struct xfs_buf *);
1da177e4 103
c3f8fc73 104
ce8e922c 105#define XB_PAGES 2
1da177e4 106
cbb7baab
DC
107struct xfs_buf_map {
108 xfs_daddr_t bm_bn; /* block number for I/O */
109 int bm_len; /* size of I/O */
110};
111
3e85c868
DC
112#define DEFINE_SINGLE_BUF_MAP(map, blkno, numblk) \
113 struct xfs_buf_map (map) = { .bm_bn = (blkno), .bm_len = (numblk) };
114
1813dd64 115struct xfs_buf_ops {
233135b7 116 char *name;
15baadf7
DW
117 union {
118 __be32 magic[2]; /* v4 and v5 on disk magic values */
119 __be16 magic16[2]; /* v4 and v5 on disk magic values */
120 };
1813dd64
DC
121 void (*verify_read)(struct xfs_buf *);
122 void (*verify_write)(struct xfs_buf *);
b5572597 123 xfs_failaddr_t (*verify_struct)(struct xfs_buf *bp);
1813dd64
DC
124};
125
1da177e4 126typedef struct xfs_buf {
50f59e8e
DC
127 /*
128 * first cacheline holds all the fields needed for an uncontended cache
129 * hit to be fully processed. The semaphore straddles the cacheline
130 * boundary, but the counter and lock sits on the first cacheline,
131 * which is the only bit that is touched if we hit the semaphore
132 * fast-path on locking.
133 */
6031e73a 134 struct rhash_head b_rhash_head; /* pag buffer hash node */
cbb7baab 135 xfs_daddr_t b_bn; /* block number of buffer */
4e94b71b 136 int b_length; /* size of buffer in BBs */
50f59e8e 137 atomic_t b_hold; /* reference count */
430cbeb8 138 atomic_t b_lru_ref; /* lru reclaim ref count */
50f59e8e 139 xfs_buf_flags_t b_flags; /* status flags */
ce8e922c 140 struct semaphore b_sema; /* semaphore for lockables */
50f59e8e 141
6fb8a90a
CM
142 /*
143 * concurrent access to b_lru and b_lru_flags are protected by
144 * bt_lru_lock and not by b_sema
145 */
430cbeb8 146 struct list_head b_lru; /* lru list */
a4082357
DC
147 spinlock_t b_lock; /* internal state lock */
148 unsigned int b_state; /* internal state flags */
61be9c52 149 int b_io_error; /* internal IO error state */
ce8e922c
NS
150 wait_queue_head_t b_waiters; /* unpin waiters */
151 struct list_head b_list;
74f75a0c 152 struct xfs_perag *b_pag; /* contains rbtree root */
dbd329f1 153 struct xfs_mount *b_mount;
ce8e922c 154 xfs_buftarg_t *b_target; /* buffer target (device) */
ce8e922c 155 void *b_addr; /* virtual address of buffer */
b29c70f5 156 struct work_struct b_ioend_work;
ce8e922c 157 xfs_buf_iodone_t b_iodone; /* I/O completion function */
b4dd330b 158 struct completion b_iowait; /* queue for I/O waiters */
e99b4bd0 159 struct xfs_buf_log_item *b_log_item;
643c8c05 160 struct list_head b_li_list; /* Log items list head */
bf9d9013 161 struct xfs_trans *b_transp;
ce8e922c
NS
162 struct page **b_pages; /* array of page pointers */
163 struct page *b_page_array[XB_PAGES]; /* inline pages */
3e85c868 164 struct xfs_buf_map *b_maps; /* compound buffer map */
d44d9bc6 165 struct xfs_buf_map __b_map; /* inline compound buffer map */
3e85c868 166 int b_map_count;
50f59e8e
DC
167 atomic_t b_pin_count; /* pin count */
168 atomic_t b_io_remaining; /* #outstanding I/O requests */
169 unsigned int b_page_count; /* size of page array */
170 unsigned int b_offset; /* page offset in first page */
2451337d 171 int b_error; /* error code on I/O */
a5ea70d2
CM
172
173 /*
174 * async write failure retry count. Initialised to zero on the first
175 * failure, then when it exceeds the maximum configured without a
176 * success the write is considered to be failed permanently and the
177 * iodone handler will take appropriate action.
178 *
179 * For retry timeouts, we record the jiffie of the first failure. This
180 * means that we can change the retry timeout for buffers already under
181 * I/O and thus avoid getting stuck in a retry loop with a long timeout.
182 *
183 * last_error is used to ensure that we are getting repeated errors, not
184 * different errors. e.g. a block device might change ENOSPC to EIO when
185 * a failure timeout occurs, so we want to re-initialise the error
186 * retry behaviour appropriately when that happens.
187 */
188 int b_retries;
189 unsigned long b_first_retry_time; /* in jiffies */
190 int b_last_error;
191
1813dd64 192 const struct xfs_buf_ops *b_ops;
1da177e4
LT
193} xfs_buf_t;
194
1da177e4 195/* Finding and Reading Buffers */
8925a3dc
DC
196struct xfs_buf *xfs_buf_incore(struct xfs_buftarg *target,
197 xfs_daddr_t blkno, size_t numblks,
198 xfs_buf_flags_t flags);
3e85c868 199
3848b5f6
DW
200int xfs_buf_get_map(struct xfs_buftarg *target, struct xfs_buf_map *map,
201 int nmaps, xfs_buf_flags_t flags, struct xfs_buf **bpp);
4ed8e27b
DW
202int xfs_buf_read_map(struct xfs_buftarg *target, struct xfs_buf_map *map,
203 int nmaps, xfs_buf_flags_t flags, struct xfs_buf **bpp,
cdbcf82b 204 const struct xfs_buf_ops *ops, xfs_failaddr_t fa);
6dde2707 205void xfs_buf_readahead_map(struct xfs_buftarg *target,
c3f8fc73 206 struct xfs_buf_map *map, int nmaps,
1813dd64 207 const struct xfs_buf_ops *ops);
6dde2707 208
841263e9 209static inline int
6dde2707
DC
210xfs_buf_get(
211 struct xfs_buftarg *target,
212 xfs_daddr_t blkno,
841263e9
DW
213 size_t numblks,
214 struct xfs_buf **bpp)
6dde2707
DC
215{
216 DEFINE_SINGLE_BUF_MAP(map, blkno, numblks);
3848b5f6 217
841263e9 218 return xfs_buf_get_map(target, &map, 1, 0, bpp);
6dde2707
DC
219}
220
0e3eccce 221static inline int
6dde2707
DC
222xfs_buf_read(
223 struct xfs_buftarg *target,
224 xfs_daddr_t blkno,
225 size_t numblks,
c3f8fc73 226 xfs_buf_flags_t flags,
0e3eccce 227 struct xfs_buf **bpp,
1813dd64 228 const struct xfs_buf_ops *ops)
6dde2707
DC
229{
230 DEFINE_SINGLE_BUF_MAP(map, blkno, numblks);
4ed8e27b 231
cdbcf82b
DW
232 return xfs_buf_read_map(target, &map, 1, flags, bpp, ops,
233 __builtin_return_address(0));
6dde2707
DC
234}
235
236static inline void
237xfs_buf_readahead(
238 struct xfs_buftarg *target,
239 xfs_daddr_t blkno,
c3f8fc73 240 size_t numblks,
1813dd64 241 const struct xfs_buf_ops *ops)
6dde2707
DC
242{
243 DEFINE_SINGLE_BUF_MAP(map, blkno, numblks);
1813dd64 244 return xfs_buf_readahead_map(target, &map, 1, ops);
6dde2707 245}
e70b73f8 246
2842b6db
DW
247int xfs_buf_get_uncached(struct xfs_buftarg *target, size_t numblks, int flags,
248 struct xfs_buf **bpp);
ba372674
DC
249int xfs_buf_read_uncached(struct xfs_buftarg *target, xfs_daddr_t daddr,
250 size_t numblks, int flags, struct xfs_buf **bpp,
251 const struct xfs_buf_ops *ops);
e70b73f8 252void xfs_buf_hold(struct xfs_buf *bp);
1da177e4
LT
253
254/* Releasing Buffers */
ce8e922c 255extern void xfs_buf_rele(xfs_buf_t *);
1da177e4
LT
256
257/* Locking and Unlocking Buffers */
0c842ad4 258extern int xfs_buf_trylock(xfs_buf_t *);
ce8e922c
NS
259extern void xfs_buf_lock(xfs_buf_t *);
260extern void xfs_buf_unlock(xfs_buf_t *);
0c842ad4
CH
261#define xfs_buf_islocked(bp) \
262 ((bp)->b_sema.count <= 0)
1da177e4 263
f593bf14
DC
264static inline void xfs_buf_relse(xfs_buf_t *bp)
265{
266 xfs_buf_unlock(bp);
267 xfs_buf_rele(bp);
268}
269
1da177e4 270/* Buffer Read and Write Routines */
c2b006c1 271extern int xfs_bwrite(struct xfs_buf *bp);
e8aaba9a 272extern void xfs_buf_ioend(struct xfs_buf *bp);
f593bf14
DC
273static inline void xfs_buf_ioend_finish(struct xfs_buf *bp)
274{
275 if (bp->b_flags & XBF_ASYNC)
276 xfs_buf_relse(bp);
277 else
278 complete(&bp->b_iowait);
279}
280
31ca03c9
DW
281extern void __xfs_buf_ioerror(struct xfs_buf *bp, int error,
282 xfs_failaddr_t failaddr);
283#define xfs_buf_ioerror(bp, err) __xfs_buf_ioerror((bp), (err), __this_address)
cdbcf82b 284extern void xfs_buf_ioerror_alert(struct xfs_buf *bp, xfs_failaddr_t fa);
54b3b1f6 285void xfs_buf_ioend_fail(struct xfs_buf *);
6af88cda
BF
286
287extern int __xfs_buf_submit(struct xfs_buf *bp, bool);
288static inline int xfs_buf_submit(struct xfs_buf *bp)
289{
290 bool wait = bp->b_flags & XBF_ASYNC ? false : true;
291 return __xfs_buf_submit(bp, wait);
292}
293
f9a196ee 294void xfs_buf_zero(struct xfs_buf *bp, size_t boff, size_t bsize);
8d57c216
DW
295void __xfs_buf_mark_corrupt(struct xfs_buf *bp, xfs_failaddr_t fa);
296#define xfs_buf_mark_corrupt(bp) __xfs_buf_mark_corrupt((bp), __this_address)
ce8e922c 297
1da177e4 298/* Buffer Utility Routines */
88ee2df7 299extern void *xfs_buf_offset(struct xfs_buf *, size_t);
5cfd28b6 300extern void xfs_buf_stale(struct xfs_buf *bp);
1da177e4 301
1da177e4 302/* Delayed Write Buffer Routines */
20e8a063 303extern void xfs_buf_delwri_cancel(struct list_head *);
43ff2122
CH
304extern bool xfs_buf_delwri_queue(struct xfs_buf *, struct list_head *);
305extern int xfs_buf_delwri_submit(struct list_head *);
306extern int xfs_buf_delwri_submit_nowait(struct list_head *);
7912e7fe 307extern int xfs_buf_delwri_pushbuf(struct xfs_buf *, struct list_head *);
1da177e4
LT
308
309/* Buffer Daemon Setup Routines */
ce8e922c
NS
310extern int xfs_buf_init(void);
311extern void xfs_buf_terminate(void);
1da177e4 312
cbb7baab
DC
313/*
314 * These macros use the IO block map rather than b_bn. b_bn is now really
315 * just for the buffer cache index for cached buffers. As IO does not use b_bn
316 * anymore, uncached buffers do not use b_bn at all and hence must modify the IO
317 * map directly. Uncached buffers are not allowed to be discontiguous, so this
318 * is safe to do.
319 *
320 * In future, uncached buffers will pass the block number directly to the io
321 * request function and hence these macros will go away at that point.
322 */
d44d9bc6
MT
323#define XFS_BUF_ADDR(bp) ((bp)->b_maps[0].bm_bn)
324#define XFS_BUF_SET_ADDR(bp, bno) ((bp)->b_maps[0].bm_bn = (xfs_daddr_t)(bno))
ce8e922c 325
7561d27e 326void xfs_buf_set_ref(struct xfs_buf *bp, int lru_ref);
ce8e922c 327
879de98e
DC
328/*
329 * If the buffer is already on the LRU, do nothing. Otherwise set the buffer
330 * up with a reference count of 0 so it will be tossed from the cache when
331 * released.
332 */
333static inline void xfs_buf_oneshot(struct xfs_buf *bp)
334{
335 if (!list_empty(&bp->b_lru) || atomic_read(&bp->b_lru_ref) > 1)
336 return;
337 atomic_set(&bp->b_lru_ref, 0);
338}
339
811e64c7
CS
340static inline int xfs_buf_ispinned(struct xfs_buf *bp)
341{
342 return atomic_read(&bp->b_pin_count);
343}
ce8e922c 344
51582170
ES
345static inline int
346xfs_buf_verify_cksum(struct xfs_buf *bp, unsigned long cksum_offset)
347{
348 return xfs_verify_cksum(bp->b_addr, BBTOB(bp->b_length),
349 cksum_offset);
350}
351
f1dbcd7e
ES
352static inline void
353xfs_buf_update_cksum(struct xfs_buf *bp, unsigned long cksum_offset)
354{
355 xfs_update_cksum(bp->b_addr, BBTOB(bp->b_length),
356 cksum_offset);
357}
358
1da177e4
LT
359/*
360 * Handling of buftargs.
361 */
ebad861b 362extern xfs_buftarg_t *xfs_alloc_buftarg(struct xfs_mount *,
486aff5e 363 struct block_device *, struct dax_device *);
a1f69417 364extern void xfs_free_buftarg(struct xfs_buftarg *);
1da177e4 365extern void xfs_wait_buftarg(xfs_buftarg_t *);
a96c4151 366extern int xfs_setsize_buftarg(xfs_buftarg_t *, unsigned int);
d808f617 367
ce8e922c
NS
368#define xfs_getsize_buftarg(buftarg) block_size((buftarg)->bt_bdev)
369#define xfs_readonly_buftarg(buftarg) bdev_read_only((buftarg)->bt_bdev)
370
d916275a
DC
371static inline int
372xfs_buftarg_dma_alignment(struct xfs_buftarg *bt)
373{
374 return queue_dma_alignment(bt->bt_bdev->bd_disk->queue);
375}
376
75d02303 377int xfs_buf_reverify(struct xfs_buf *bp, const struct xfs_buf_ops *ops);
15baadf7
DW
378bool xfs_verify_magic(struct xfs_buf *bp, __be32 dmagic);
379bool xfs_verify_magic16(struct xfs_buf *bp, __be16 dmagic);
1aff5696 380
1da177e4 381#endif /* __XFS_BUF_H__ */