NFSD: Remove iattr parameter from nfsd_symlink()
[deliverable/linux.git] / fs / nfsd / nfscache.c
CommitLineData
1da177e4 1/*
1da177e4
LT
2 * Request reply cache. This is currently a global cache, but this may
3 * change in the future and be a per-client cache.
4 *
5 * This code is heavily inspired by the 44BSD implementation, although
6 * it does things a bit differently.
7 *
8 * Copyright (C) 1995, 1996 Olaf Kirch <okir@monad.swb.de>
9 */
10
5a0e3ad6 11#include <linux/slab.h>
5976687a 12#include <linux/sunrpc/addr.h>
0338dd15 13#include <linux/highmem.h>
0733c7ba
JL
14#include <linux/log2.h>
15#include <linux/hash.h>
01a7decf 16#include <net/checksum.h>
5a0e3ad6 17
9a74af21
BH
18#include "nfsd.h"
19#include "cache.h"
1da177e4 20
0338dd15
JL
21#define NFSDDBG_FACILITY NFSDDBG_REPCACHE
22
0733c7ba
JL
23/*
24 * We use this value to determine the number of hash buckets from the max
25 * cache size, the idea being that when the cache is at its maximum number
26 * of entries, then this should be the average number of entries per bucket.
27 */
28#define TARGET_BUCKET_SIZE 64
1da177e4 29
fca4217c 30static struct hlist_head * cache_hash;
1da177e4 31static struct list_head lru_head;
8a8bc40d 32static struct kmem_cache *drc_slab;
9dc56143
JL
33
34/* max number of entries allowed in the cache */
0338dd15 35static unsigned int max_drc_entries;
1da177e4 36
0733c7ba
JL
37/* number of significant bits in the hash value */
38static unsigned int maskbits;
39
9dc56143
JL
40/*
41 * Stats and other tracking of on the duplicate reply cache. All of these and
42 * the "rc" fields in nfsdstats are protected by the cache_lock
43 */
44
45/* total number of entries */
46static unsigned int num_drc_entries;
47
48/* cache misses due only to checksum comparison failures */
49static unsigned int payload_misses;
50
6c6910cd
JL
51/* amount of memory (in bytes) currently consumed by the DRC */
52static unsigned int drc_mem_usage;
53
98d821bd
JL
54/* longest hash chain seen */
55static unsigned int longest_chain;
56
57/* size of cache when we saw the longest hash chain */
58static unsigned int longest_chain_cachesize;
59
1da177e4 60static int nfsd_cache_append(struct svc_rqst *rqstp, struct kvec *vec);
aca8a23d 61static void cache_cleaner_func(struct work_struct *unused);
1ab6c499
DC
62static unsigned long nfsd_reply_cache_count(struct shrinker *shrink,
63 struct shrink_control *sc);
64static unsigned long nfsd_reply_cache_scan(struct shrinker *shrink,
65 struct shrink_control *sc);
b4e7f2c9 66
c8c797f9 67static struct shrinker nfsd_reply_cache_shrinker = {
1ab6c499
DC
68 .scan_objects = nfsd_reply_cache_scan,
69 .count_objects = nfsd_reply_cache_count,
b4e7f2c9
JL
70 .seeks = 1,
71};
1da177e4 72
fca4217c 73/*
1da177e4
LT
74 * locking for the reply cache:
75 * A cache entry is "single use" if c_state == RC_INPROG
76 * Otherwise, it when accessing _prev or _next, the lock must be held.
77 */
78static DEFINE_SPINLOCK(cache_lock);
aca8a23d 79static DECLARE_DELAYED_WORK(cache_cleaner, cache_cleaner_func);
1da177e4 80
0338dd15
JL
81/*
82 * Put a cap on the size of the DRC based on the amount of available
83 * low memory in the machine.
84 *
85 * 64MB: 8192
86 * 128MB: 11585
87 * 256MB: 16384
88 * 512MB: 23170
89 * 1GB: 32768
90 * 2GB: 46340
91 * 4GB: 65536
92 * 8GB: 92681
93 * 16GB: 131072
94 *
95 * ...with a hard cap of 256k entries. In the worst case, each entry will be
96 * ~1k, so the above numbers should give a rough max of the amount of memory
97 * used in k.
98 */
99static unsigned int
100nfsd_cache_size_limit(void)
101{
102 unsigned int limit;
103 unsigned long low_pages = totalram_pages - totalhigh_pages;
104
105 limit = (16 * int_sqrt(low_pages)) << (PAGE_SHIFT-10);
106 return min_t(unsigned int, limit, 256*1024);
107}
108
0733c7ba
JL
109/*
110 * Compute the number of hash buckets we need. Divide the max cachesize by
111 * the "target" max bucket size, and round up to next power of two.
112 */
113static unsigned int
114nfsd_hashsize(unsigned int limit)
115{
116 return roundup_pow_of_two(limit / TARGET_BUCKET_SIZE);
117}
118
f09841fd
JL
119static struct svc_cacherep *
120nfsd_reply_cache_alloc(void)
1da177e4
LT
121{
122 struct svc_cacherep *rp;
1da177e4 123
f09841fd
JL
124 rp = kmem_cache_alloc(drc_slab, GFP_KERNEL);
125 if (rp) {
1da177e4
LT
126 rp->c_state = RC_UNUSED;
127 rp->c_type = RC_NOCACHE;
f09841fd 128 INIT_LIST_HEAD(&rp->c_lru);
1da177e4 129 INIT_HLIST_NODE(&rp->c_hash);
1da177e4 130 }
f09841fd
JL
131 return rp;
132}
1da177e4 133
f09841fd
JL
134static void
135nfsd_reply_cache_free_locked(struct svc_cacherep *rp)
136{
6c6910cd
JL
137 if (rp->c_type == RC_REPLBUFF && rp->c_replvec.iov_base) {
138 drc_mem_usage -= rp->c_replvec.iov_len;
f09841fd 139 kfree(rp->c_replvec.iov_base);
6c6910cd 140 }
a517b608
JL
141 if (!hlist_unhashed(&rp->c_hash))
142 hlist_del(&rp->c_hash);
f09841fd 143 list_del(&rp->c_lru);
0ee0bf7e 144 --num_drc_entries;
6c6910cd 145 drc_mem_usage -= sizeof(*rp);
f09841fd
JL
146 kmem_cache_free(drc_slab, rp);
147}
148
2c6b691c
JL
149static void
150nfsd_reply_cache_free(struct svc_cacherep *rp)
151{
152 spin_lock(&cache_lock);
153 nfsd_reply_cache_free_locked(rp);
154 spin_unlock(&cache_lock);
155}
156
f09841fd
JL
157int nfsd_reply_cache_init(void)
158{
0733c7ba
JL
159 unsigned int hashsize;
160
ac534ff2
JL
161 INIT_LIST_HEAD(&lru_head);
162 max_drc_entries = nfsd_cache_size_limit();
163 num_drc_entries = 0;
0733c7ba
JL
164 hashsize = nfsd_hashsize(max_drc_entries);
165 maskbits = ilog2(hashsize);
ac534ff2 166
b4e7f2c9 167 register_shrinker(&nfsd_reply_cache_shrinker);
8a8bc40d
JL
168 drc_slab = kmem_cache_create("nfsd_drc", sizeof(struct svc_cacherep),
169 0, 0, NULL);
170 if (!drc_slab)
171 goto out_nomem;
172
0733c7ba 173 cache_hash = kcalloc(hashsize, sizeof(struct hlist_head), GFP_KERNEL);
fca4217c 174 if (!cache_hash)
d5c3428b 175 goto out_nomem;
1da177e4 176
d5c3428b
BF
177 return 0;
178out_nomem:
179 printk(KERN_ERR "nfsd: failed to allocate reply cache\n");
180 nfsd_reply_cache_shutdown();
181 return -ENOMEM;
1da177e4
LT
182}
183
d5c3428b 184void nfsd_reply_cache_shutdown(void)
1da177e4
LT
185{
186 struct svc_cacherep *rp;
187
b4e7f2c9 188 unregister_shrinker(&nfsd_reply_cache_shrinker);
aca8a23d
JL
189 cancel_delayed_work_sync(&cache_cleaner);
190
1da177e4
LT
191 while (!list_empty(&lru_head)) {
192 rp = list_entry(lru_head.next, struct svc_cacherep, c_lru);
f09841fd 193 nfsd_reply_cache_free_locked(rp);
1da177e4
LT
194 }
195
fca4217c
GB
196 kfree (cache_hash);
197 cache_hash = NULL;
8a8bc40d
JL
198
199 if (drc_slab) {
200 kmem_cache_destroy(drc_slab);
201 drc_slab = NULL;
202 }
1da177e4
LT
203}
204
205/*
aca8a23d
JL
206 * Move cache entry to end of LRU list, and queue the cleaner to run if it's
207 * not already scheduled.
1da177e4
LT
208 */
209static void
210lru_put_end(struct svc_cacherep *rp)
211{
56c2548b 212 rp->c_timestamp = jiffies;
f116629d 213 list_move_tail(&rp->c_lru, &lru_head);
aca8a23d 214 schedule_delayed_work(&cache_cleaner, RC_EXPIRE);
1da177e4
LT
215}
216
217/*
218 * Move a cache entry from one hash list to another
219 */
220static void
221hash_refile(struct svc_cacherep *rp)
222{
223 hlist_del_init(&rp->c_hash);
b3d8d128
JL
224 /*
225 * No point in byte swapping c_xid since we're just using it to pick
226 * a hash bucket.
227 */
228 hlist_add_head(&rp->c_hash, cache_hash +
229 hash_32((__force u32)rp->c_xid, maskbits));
1da177e4
LT
230}
231
aca8a23d
JL
232/*
233 * Walk the LRU list and prune off entries that are older than RC_EXPIRE.
234 * Also prune the oldest ones when the total exceeds the max number of entries.
235 */
1ab6c499 236static long
aca8a23d
JL
237prune_cache_entries(void)
238{
239 struct svc_cacherep *rp, *tmp;
1ab6c499 240 long freed = 0;
aca8a23d
JL
241
242 list_for_each_entry_safe(rp, tmp, &lru_head, c_lru) {
1b19453d
JL
243 /*
244 * Don't free entries attached to calls that are still
245 * in-progress, but do keep scanning the list.
246 */
247 if (rp->c_state == RC_INPROG)
248 continue;
249 if (num_drc_entries <= max_drc_entries &&
250 time_before(jiffies, rp->c_timestamp + RC_EXPIRE))
aca8a23d
JL
251 break;
252 nfsd_reply_cache_free_locked(rp);
1ab6c499 253 freed++;
aca8a23d
JL
254 }
255
256 /*
257 * Conditionally rearm the job. If we cleaned out the list, then
258 * cancel any pending run (since there won't be any work to do).
259 * Otherwise, we rearm the job or modify the existing one to run in
260 * RC_EXPIRE since we just ran the pruner.
261 */
262 if (list_empty(&lru_head))
263 cancel_delayed_work(&cache_cleaner);
264 else
265 mod_delayed_work(system_wq, &cache_cleaner, RC_EXPIRE);
1ab6c499 266 return freed;
aca8a23d
JL
267}
268
269static void
270cache_cleaner_func(struct work_struct *unused)
271{
272 spin_lock(&cache_lock);
273 prune_cache_entries();
274 spin_unlock(&cache_lock);
275}
276
1ab6c499
DC
277static unsigned long
278nfsd_reply_cache_count(struct shrinker *shrink, struct shrink_control *sc)
b4e7f2c9 279{
1ab6c499 280 unsigned long num;
b4e7f2c9
JL
281
282 spin_lock(&cache_lock);
b4e7f2c9
JL
283 num = num_drc_entries;
284 spin_unlock(&cache_lock);
285
286 return num;
287}
288
1ab6c499
DC
289static unsigned long
290nfsd_reply_cache_scan(struct shrinker *shrink, struct shrink_control *sc)
291{
292 unsigned long freed;
293
294 spin_lock(&cache_lock);
295 freed = prune_cache_entries();
296 spin_unlock(&cache_lock);
297 return freed;
298}
01a7decf
JL
299/*
300 * Walk an xdr_buf and get a CRC for at most the first RC_CSUMLEN bytes
301 */
302static __wsum
303nfsd_cache_csum(struct svc_rqst *rqstp)
304{
305 int idx;
306 unsigned int base;
307 __wsum csum;
308 struct xdr_buf *buf = &rqstp->rq_arg;
309 const unsigned char *p = buf->head[0].iov_base;
310 size_t csum_len = min_t(size_t, buf->head[0].iov_len + buf->page_len,
311 RC_CSUMLEN);
312 size_t len = min(buf->head[0].iov_len, csum_len);
313
314 /* rq_arg.head first */
315 csum = csum_partial(p, len, 0);
316 csum_len -= len;
317
318 /* Continue into page array */
319 idx = buf->page_base / PAGE_SIZE;
320 base = buf->page_base & ~PAGE_MASK;
321 while (csum_len) {
322 p = page_address(buf->pages[idx]) + base;
56edc86b 323 len = min_t(size_t, PAGE_SIZE - base, csum_len);
01a7decf
JL
324 csum = csum_partial(p, len, csum);
325 csum_len -= len;
326 base = 0;
327 ++idx;
328 }
329 return csum;
330}
331
9dc56143
JL
332static bool
333nfsd_cache_match(struct svc_rqst *rqstp, __wsum csum, struct svc_cacherep *rp)
334{
335 /* Check RPC header info first */
336 if (rqstp->rq_xid != rp->c_xid || rqstp->rq_proc != rp->c_proc ||
337 rqstp->rq_prot != rp->c_prot || rqstp->rq_vers != rp->c_vers ||
338 rqstp->rq_arg.len != rp->c_len ||
339 !rpc_cmp_addr(svc_addr(rqstp), (struct sockaddr *)&rp->c_addr) ||
340 rpc_get_port(svc_addr(rqstp)) != rpc_get_port((struct sockaddr *)&rp->c_addr))
341 return false;
342
343 /* compare checksum of NFS data */
344 if (csum != rp->c_csum) {
345 ++payload_misses;
346 return false;
347 }
348
349 return true;
350}
351
a4a3ec32
JL
352/*
353 * Search the request hash for an entry that matches the given rqstp.
354 * Must be called with cache_lock held. Returns the found entry or
355 * NULL on failure.
356 */
357static struct svc_cacherep *
01a7decf 358nfsd_cache_search(struct svc_rqst *rqstp, __wsum csum)
a4a3ec32 359{
98d821bd 360 struct svc_cacherep *rp, *ret = NULL;
a4a3ec32 361 struct hlist_head *rh;
98d821bd 362 unsigned int entries = 0;
a4a3ec32 363
b3d8d128
JL
364 /*
365 * No point in byte swapping rq_xid since we're just using it to pick
366 * a hash bucket.
367 */
368 rh = &cache_hash[hash_32((__force u32)rqstp->rq_xid, maskbits)];
b6669737 369 hlist_for_each_entry(rp, rh, c_hash) {
98d821bd
JL
370 ++entries;
371 if (nfsd_cache_match(rqstp, csum, rp)) {
372 ret = rp;
373 break;
374 }
375 }
376
377 /* tally hash chain length stats */
378 if (entries > longest_chain) {
379 longest_chain = entries;
380 longest_chain_cachesize = num_drc_entries;
381 } else if (entries == longest_chain) {
382 /* prefer to keep the smallest cachesize possible here */
383 longest_chain_cachesize = min(longest_chain_cachesize,
384 num_drc_entries);
a4a3ec32 385 }
98d821bd
JL
386
387 return ret;
a4a3ec32
JL
388}
389
1da177e4
LT
390/*
391 * Try to find an entry matching the current call in the cache. When none
1ac83629
JL
392 * is found, we try to grab the oldest expired entry off the LRU list. If
393 * a suitable one isn't there, then drop the cache_lock and allocate a
394 * new one, then search again in case one got inserted while this thread
395 * didn't hold the lock.
1da177e4
LT
396 */
397int
1091006c 398nfsd_cache_lookup(struct svc_rqst *rqstp)
1da177e4 399{
0338dd15 400 struct svc_cacherep *rp, *found;
c7afef1f
AV
401 __be32 xid = rqstp->rq_xid;
402 u32 proto = rqstp->rq_prot,
1da177e4
LT
403 vers = rqstp->rq_vers,
404 proc = rqstp->rq_proc;
01a7decf 405 __wsum csum;
1da177e4 406 unsigned long age;
1091006c 407 int type = rqstp->rq_cachetype;
0b9ea37f 408 int rtn = RC_DOIT;
1da177e4
LT
409
410 rqstp->rq_cacherep = NULL;
13cc8a78 411 if (type == RC_NOCACHE) {
1da177e4 412 nfsdstats.rcnocache++;
0b9ea37f 413 return rtn;
1da177e4
LT
414 }
415
01a7decf
JL
416 csum = nfsd_cache_csum(rqstp);
417
0b9ea37f
JL
418 /*
419 * Since the common case is a cache miss followed by an insert,
a0ef5e19 420 * preallocate an entry.
0b9ea37f 421 */
0338dd15 422 rp = nfsd_reply_cache_alloc();
0338dd15 423 spin_lock(&cache_lock);
6c6910cd 424 if (likely(rp)) {
0b9ea37f 425 ++num_drc_entries;
6c6910cd
JL
426 drc_mem_usage += sizeof(*rp);
427 }
0338dd15 428
a0ef5e19
JL
429 /* go ahead and prune the cache */
430 prune_cache_entries();
431
01a7decf 432 found = nfsd_cache_search(rqstp, csum);
0338dd15 433 if (found) {
0b9ea37f
JL
434 if (likely(rp))
435 nfsd_reply_cache_free_locked(rp);
0338dd15
JL
436 rp = found;
437 goto found_entry;
1da177e4
LT
438 }
439
0b9ea37f
JL
440 if (!rp) {
441 dprintk("nfsd: unable to allocate DRC entry!\n");
442 goto out;
443 }
444
0338dd15 445 nfsdstats.rcmisses++;
1da177e4
LT
446 rqstp->rq_cacherep = rp;
447 rp->c_state = RC_INPROG;
448 rp->c_xid = xid;
449 rp->c_proc = proc;
7b9e8522
JL
450 rpc_copy_addr((struct sockaddr *)&rp->c_addr, svc_addr(rqstp));
451 rpc_set_port((struct sockaddr *)&rp->c_addr, rpc_get_port(svc_addr(rqstp)));
1da177e4
LT
452 rp->c_prot = proto;
453 rp->c_vers = vers;
01a7decf
JL
454 rp->c_len = rqstp->rq_arg.len;
455 rp->c_csum = csum;
1da177e4
LT
456
457 hash_refile(rp);
56c2548b 458 lru_put_end(rp);
1da177e4
LT
459
460 /* release any buffer */
461 if (rp->c_type == RC_REPLBUFF) {
6c6910cd 462 drc_mem_usage -= rp->c_replvec.iov_len;
1da177e4
LT
463 kfree(rp->c_replvec.iov_base);
464 rp->c_replvec.iov_base = NULL;
465 }
466 rp->c_type = RC_NOCACHE;
467 out:
468 spin_unlock(&cache_lock);
469 return rtn;
470
471found_entry:
0338dd15 472 nfsdstats.rchits++;
1da177e4
LT
473 /* We found a matching entry which is either in progress or done. */
474 age = jiffies - rp->c_timestamp;
1da177e4
LT
475 lru_put_end(rp);
476
477 rtn = RC_DROPIT;
478 /* Request being processed or excessive rexmits */
479 if (rp->c_state == RC_INPROG || age < RC_DELAY)
480 goto out;
481
482 /* From the hall of fame of impractical attacks:
483 * Is this a user who tries to snoop on the cache? */
484 rtn = RC_DOIT;
485 if (!rqstp->rq_secure && rp->c_secure)
486 goto out;
487
488 /* Compose RPC reply header */
489 switch (rp->c_type) {
490 case RC_NOCACHE:
491 break;
492 case RC_REPLSTAT:
493 svc_putu32(&rqstp->rq_res.head[0], rp->c_replstat);
494 rtn = RC_REPLY;
495 break;
496 case RC_REPLBUFF:
497 if (!nfsd_cache_append(rqstp, &rp->c_replvec))
498 goto out; /* should not happen */
499 rtn = RC_REPLY;
500 break;
501 default:
502 printk(KERN_WARNING "nfsd: bad repcache type %d\n", rp->c_type);
0338dd15 503 nfsd_reply_cache_free_locked(rp);
1da177e4
LT
504 }
505
506 goto out;
507}
508
509/*
510 * Update a cache entry. This is called from nfsd_dispatch when
511 * the procedure has been executed and the complete reply is in
512 * rqstp->rq_res.
513 *
514 * We're copying around data here rather than swapping buffers because
515 * the toplevel loop requires max-sized buffers, which would be a waste
516 * of memory for a cache with a max reply size of 100 bytes (diropokres).
517 *
518 * If we should start to use different types of cache entries tailored
519 * specifically for attrstat and fh's, we may save even more space.
520 *
521 * Also note that a cachetype of RC_NOCACHE can legally be passed when
522 * nfsd failed to encode a reply that otherwise would have been cached.
523 * In this case, nfsd_cache_update is called with statp == NULL.
524 */
525void
c7afef1f 526nfsd_cache_update(struct svc_rqst *rqstp, int cachetype, __be32 *statp)
1da177e4 527{
13cc8a78 528 struct svc_cacherep *rp = rqstp->rq_cacherep;
1da177e4
LT
529 struct kvec *resv = &rqstp->rq_res.head[0], *cachv;
530 int len;
6c6910cd 531 size_t bufsize = 0;
1da177e4 532
13cc8a78 533 if (!rp)
1da177e4
LT
534 return;
535
536 len = resv->iov_len - ((char*)statp - (char*)resv->iov_base);
537 len >>= 2;
fca4217c 538
1da177e4
LT
539 /* Don't cache excessive amounts of data and XDR failures */
540 if (!statp || len > (256 >> 2)) {
2c6b691c 541 nfsd_reply_cache_free(rp);
1da177e4
LT
542 return;
543 }
544
545 switch (cachetype) {
546 case RC_REPLSTAT:
547 if (len != 1)
548 printk("nfsd: RC_REPLSTAT/reply len %d!\n",len);
549 rp->c_replstat = *statp;
550 break;
551 case RC_REPLBUFF:
552 cachv = &rp->c_replvec;
6c6910cd
JL
553 bufsize = len << 2;
554 cachv->iov_base = kmalloc(bufsize, GFP_KERNEL);
1da177e4 555 if (!cachv->iov_base) {
2c6b691c 556 nfsd_reply_cache_free(rp);
1da177e4
LT
557 return;
558 }
6c6910cd
JL
559 cachv->iov_len = bufsize;
560 memcpy(cachv->iov_base, statp, bufsize);
1da177e4 561 break;
2c6b691c
JL
562 case RC_NOCACHE:
563 nfsd_reply_cache_free(rp);
564 return;
1da177e4
LT
565 }
566 spin_lock(&cache_lock);
6c6910cd 567 drc_mem_usage += bufsize;
1da177e4
LT
568 lru_put_end(rp);
569 rp->c_secure = rqstp->rq_secure;
570 rp->c_type = cachetype;
571 rp->c_state = RC_DONE;
1da177e4
LT
572 spin_unlock(&cache_lock);
573 return;
574}
575
576/*
577 * Copy cached reply to current reply buffer. Should always fit.
578 * FIXME as reply is in a page, we should just attach the page, and
579 * keep a refcount....
580 */
581static int
582nfsd_cache_append(struct svc_rqst *rqstp, struct kvec *data)
583{
584 struct kvec *vec = &rqstp->rq_res.head[0];
585
586 if (vec->iov_len + data->iov_len > PAGE_SIZE) {
587 printk(KERN_WARNING "nfsd: cached reply too large (%Zd).\n",
588 data->iov_len);
589 return 0;
590 }
591 memcpy((char*)vec->iov_base + vec->iov_len, data->iov_base, data->iov_len);
592 vec->iov_len += data->iov_len;
593 return 1;
594}
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595
596/*
597 * Note that fields may be added, removed or reordered in the future. Programs
598 * scraping this file for info should test the labels to ensure they're
599 * getting the correct field.
600 */
601static int nfsd_reply_cache_stats_show(struct seq_file *m, void *v)
602{
603 spin_lock(&cache_lock);
604 seq_printf(m, "max entries: %u\n", max_drc_entries);
605 seq_printf(m, "num entries: %u\n", num_drc_entries);
0733c7ba 606 seq_printf(m, "hash buckets: %u\n", 1 << maskbits);
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607 seq_printf(m, "mem usage: %u\n", drc_mem_usage);
608 seq_printf(m, "cache hits: %u\n", nfsdstats.rchits);
609 seq_printf(m, "cache misses: %u\n", nfsdstats.rcmisses);
610 seq_printf(m, "not cached: %u\n", nfsdstats.rcnocache);
611 seq_printf(m, "payload misses: %u\n", payload_misses);
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612 seq_printf(m, "longest chain len: %u\n", longest_chain);
613 seq_printf(m, "cachesize at longest: %u\n", longest_chain_cachesize);
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614 spin_unlock(&cache_lock);
615 return 0;
616}
617
618int nfsd_reply_cache_stats_open(struct inode *inode, struct file *file)
619{
620 return single_open(file, nfsd_reply_cache_stats_show, NULL);
621}
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