xref: /linux/net/sunrpc/cache.c (revision facc4e3c80420e3466003ce09b576e005b56a015)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * net/sunrpc/cache.c
4  *
5  * Generic code for various authentication-related caches
6  * used by sunrpc clients and servers.
7  *
8  * Copyright (C) 2002 Neil Brown <neilb@cse.unsw.edu.au>
9  */
10 
11 #include <linux/types.h>
12 #include <linux/fs.h>
13 #include <linux/file.h>
14 #include <linux/hex.h>
15 #include <linux/slab.h>
16 #include <linux/signal.h>
17 #include <linux/sched.h>
18 #include <linux/kmod.h>
19 #include <linux/list.h>
20 #include <linux/module.h>
21 #include <linux/ctype.h>
22 #include <linux/string_helpers.h>
23 #include <linux/uaccess.h>
24 #include <linux/poll.h>
25 #include <linux/seq_file.h>
26 #include <linux/proc_fs.h>
27 #include <linux/net.h>
28 #include <linux/workqueue.h>
29 #include <linux/mutex.h>
30 #include <linux/pagemap.h>
31 #include <asm/ioctls.h>
32 #include <linux/sunrpc/types.h>
33 #include <linux/sunrpc/cache.h>
34 #include <linux/sunrpc/stats.h>
35 #include <linux/sunrpc/rpc_pipe_fs.h>
36 #include <trace/events/sunrpc.h>
37 
38 #include "netns.h"
39 #include "fail.h"
40 
41 #define	 RPCDBG_FACILITY RPCDBG_CACHE
42 
43 static bool cache_defer_req(struct cache_req *req, struct cache_head *item);
44 static void cache_revisit_request(struct cache_head *item);
45 
46 static void cache_init(struct cache_head *h, struct cache_detail *detail)
47 {
48 	time64_t now = seconds_since_boot();
49 	INIT_HLIST_NODE(&h->cache_list);
50 	h->flags = 0;
51 	kref_init(&h->ref);
52 	h->expiry_time = now + CACHE_NEW_EXPIRY;
53 	if (now <= detail->flush_time)
54 		/* ensure it isn't already expired */
55 		now = detail->flush_time + 1;
56 	h->last_refresh = now;
57 }
58 
59 static void cache_fresh_unlocked(struct cache_head *head,
60 				struct cache_detail *detail);
61 
62 static struct cache_head *sunrpc_cache_find_rcu(struct cache_detail *detail,
63 						struct cache_head *key,
64 						int hash)
65 {
66 	struct hlist_head *head = &detail->hash_table[hash];
67 	struct cache_head *tmp;
68 
69 	rcu_read_lock();
70 	hlist_for_each_entry_rcu(tmp, head, cache_list) {
71 		if (!detail->match(tmp, key))
72 			continue;
73 		if (test_bit(CACHE_VALID, &tmp->flags) &&
74 		    cache_is_expired(detail, tmp))
75 			continue;
76 		tmp = cache_get_rcu(tmp);
77 		rcu_read_unlock();
78 		return tmp;
79 	}
80 	rcu_read_unlock();
81 	return NULL;
82 }
83 
84 static void sunrpc_begin_cache_remove_entry(struct cache_head *ch,
85 					    struct cache_detail *cd)
86 {
87 	/* Must be called under cd->hash_lock */
88 	hlist_del_init_rcu(&ch->cache_list);
89 	set_bit(CACHE_CLEANED, &ch->flags);
90 	cd->entries --;
91 }
92 
93 static void sunrpc_end_cache_remove_entry(struct cache_head *ch,
94 					  struct cache_detail *cd)
95 {
96 	cache_fresh_unlocked(ch, cd);
97 	cache_put(ch, cd);
98 }
99 
100 static struct cache_head *sunrpc_cache_add_entry(struct cache_detail *detail,
101 						 struct cache_head *key,
102 						 int hash)
103 {
104 	struct cache_head *new, *tmp, *freeme = NULL;
105 	struct hlist_head *head = &detail->hash_table[hash];
106 
107 	new = detail->alloc();
108 	if (!new)
109 		return NULL;
110 	/* must fully initialise 'new', else
111 	 * we might get lose if we need to
112 	 * cache_put it soon.
113 	 */
114 	cache_init(new, detail);
115 	detail->init(new, key);
116 
117 	spin_lock(&detail->hash_lock);
118 
119 	/* check if entry appeared while we slept */
120 	hlist_for_each_entry_rcu(tmp, head, cache_list,
121 				 lockdep_is_held(&detail->hash_lock)) {
122 		if (!detail->match(tmp, key))
123 			continue;
124 		if (test_bit(CACHE_VALID, &tmp->flags) &&
125 		    cache_is_expired(detail, tmp)) {
126 			sunrpc_begin_cache_remove_entry(tmp, detail);
127 			trace_cache_entry_expired(detail, tmp);
128 			freeme = tmp;
129 			break;
130 		}
131 		cache_get(tmp);
132 		spin_unlock(&detail->hash_lock);
133 		cache_put(new, detail);
134 		return tmp;
135 	}
136 
137 	cache_get(new);
138 	hlist_add_head_rcu(&new->cache_list, head);
139 	detail->entries++;
140 	if (detail->nextcheck > new->expiry_time)
141 		detail->nextcheck = new->expiry_time + 1;
142 	spin_unlock(&detail->hash_lock);
143 
144 	if (freeme)
145 		sunrpc_end_cache_remove_entry(freeme, detail);
146 	return new;
147 }
148 
149 struct cache_head *sunrpc_cache_lookup_rcu(struct cache_detail *detail,
150 					   struct cache_head *key, int hash)
151 {
152 	struct cache_head *ret;
153 
154 	ret = sunrpc_cache_find_rcu(detail, key, hash);
155 	if (ret)
156 		return ret;
157 	/* Didn't find anything, insert an empty entry */
158 	return sunrpc_cache_add_entry(detail, key, hash);
159 }
160 EXPORT_SYMBOL_GPL(sunrpc_cache_lookup_rcu);
161 
162 static void cache_dequeue(struct cache_detail *detail, struct cache_head *ch);
163 
164 static void cache_fresh_locked(struct cache_head *head, time64_t expiry,
165 			       struct cache_detail *detail)
166 {
167 	time64_t now = seconds_since_boot();
168 	if (now <= detail->flush_time)
169 		/* ensure it isn't immediately treated as expired */
170 		now = detail->flush_time + 1;
171 	head->expiry_time = expiry;
172 	head->last_refresh = now;
173 	smp_wmb(); /* paired with smp_rmb() in cache_is_valid() */
174 	set_bit(CACHE_VALID, &head->flags);
175 }
176 
177 static void cache_fresh_unlocked(struct cache_head *head,
178 				 struct cache_detail *detail)
179 {
180 	if (test_and_clear_bit(CACHE_PENDING, &head->flags)) {
181 		cache_revisit_request(head);
182 		cache_dequeue(detail, head);
183 	}
184 }
185 
186 static void cache_make_negative(struct cache_detail *detail,
187 				struct cache_head *h)
188 {
189 	set_bit(CACHE_NEGATIVE, &h->flags);
190 	trace_cache_entry_make_negative(detail, h);
191 }
192 
193 static void cache_entry_update(struct cache_detail *detail,
194 			       struct cache_head *h,
195 			       struct cache_head *new)
196 {
197 	if (!test_bit(CACHE_NEGATIVE, &new->flags)) {
198 		detail->update(h, new);
199 		trace_cache_entry_update(detail, h);
200 	} else {
201 		cache_make_negative(detail, h);
202 	}
203 }
204 
205 struct cache_head *sunrpc_cache_update(struct cache_detail *detail,
206 				       struct cache_head *new, struct cache_head *old, int hash)
207 {
208 	/* The 'old' entry is to be replaced by 'new'.
209 	 * If 'old' is not VALID, we update it directly,
210 	 * otherwise we need to replace it
211 	 */
212 	struct cache_head *tmp;
213 
214 	if (!test_bit(CACHE_VALID, &old->flags)) {
215 		spin_lock(&detail->hash_lock);
216 		if (!test_bit(CACHE_VALID, &old->flags)) {
217 			cache_entry_update(detail, old, new);
218 			cache_fresh_locked(old, new->expiry_time, detail);
219 			spin_unlock(&detail->hash_lock);
220 			cache_fresh_unlocked(old, detail);
221 			return old;
222 		}
223 		spin_unlock(&detail->hash_lock);
224 	}
225 	/* We need to insert a new entry */
226 	tmp = detail->alloc();
227 	if (!tmp) {
228 		cache_put(old, detail);
229 		return NULL;
230 	}
231 	cache_init(tmp, detail);
232 	detail->init(tmp, old);
233 
234 	spin_lock(&detail->hash_lock);
235 	cache_entry_update(detail, tmp, new);
236 	cache_get(tmp);
237 	hlist_add_head_rcu(&tmp->cache_list, &detail->hash_table[hash]);
238 	detail->entries++;
239 	cache_fresh_locked(tmp, new->expiry_time, detail);
240 	cache_fresh_locked(old, 0, detail);
241 	spin_unlock(&detail->hash_lock);
242 	cache_fresh_unlocked(tmp, detail);
243 	cache_fresh_unlocked(old, detail);
244 	cache_put(old, detail);
245 	return tmp;
246 }
247 EXPORT_SYMBOL_GPL(sunrpc_cache_update);
248 
249 static inline int cache_is_valid(struct cache_head *h)
250 {
251 	if (!test_bit(CACHE_VALID, &h->flags))
252 		return -EAGAIN;
253 	else {
254 		/* entry is valid */
255 		if (test_bit(CACHE_NEGATIVE, &h->flags))
256 			return -ENOENT;
257 		else {
258 			/*
259 			 * In combination with write barrier in
260 			 * sunrpc_cache_update, ensures that anyone
261 			 * using the cache entry after this sees the
262 			 * updated contents:
263 			 */
264 			smp_rmb();
265 			return 0;
266 		}
267 	}
268 }
269 
270 static int try_to_negate_entry(struct cache_detail *detail, struct cache_head *h)
271 {
272 	int rv;
273 
274 	spin_lock(&detail->hash_lock);
275 	rv = cache_is_valid(h);
276 	if (rv == -EAGAIN) {
277 		cache_make_negative(detail, h);
278 		cache_fresh_locked(h, seconds_since_boot()+CACHE_NEW_EXPIRY,
279 				   detail);
280 		rv = -ENOENT;
281 	}
282 	spin_unlock(&detail->hash_lock);
283 	cache_fresh_unlocked(h, detail);
284 	return rv;
285 }
286 
287 int cache_check_rcu(struct cache_detail *detail,
288 		    struct cache_head *h, struct cache_req *rqstp)
289 {
290 	int rv;
291 	time64_t refresh_age, age;
292 
293 	/* First decide return status as best we can */
294 	rv = cache_is_valid(h);
295 
296 	/* now see if we want to start an upcall */
297 	refresh_age = (h->expiry_time - h->last_refresh);
298 	age = seconds_since_boot() - h->last_refresh;
299 
300 	if (rqstp == NULL) {
301 		if (rv == -EAGAIN)
302 			rv = -ENOENT;
303 	} else if (rv == -EAGAIN ||
304 		   (h->expiry_time != 0 && age > refresh_age/2)) {
305 		dprintk("RPC:       Want update, refage=%lld, age=%lld\n",
306 				refresh_age, age);
307 		switch (detail->cache_upcall(detail, h)) {
308 		case -EINVAL:
309 			rv = try_to_negate_entry(detail, h);
310 			break;
311 		case -EAGAIN:
312 			cache_fresh_unlocked(h, detail);
313 			break;
314 		}
315 	}
316 
317 	if (rv == -EAGAIN) {
318 		if (!cache_defer_req(rqstp, h)) {
319 			/*
320 			 * Request was not deferred; handle it as best
321 			 * we can ourselves:
322 			 */
323 			rv = cache_is_valid(h);
324 			if (rv == -EAGAIN)
325 				rv = -ETIMEDOUT;
326 		}
327 	}
328 
329 	return rv;
330 }
331 EXPORT_SYMBOL_GPL(cache_check_rcu);
332 
333 /*
334  * This is the generic cache management routine for all
335  * the authentication caches.
336  * It checks the currency of a cache item and will (later)
337  * initiate an upcall to fill it if needed.
338  *
339  *
340  * Returns 0 if the cache_head can be used, or cache_puts it and returns
341  * -EAGAIN if upcall is pending and request has been queued
342  * -ETIMEDOUT if upcall failed or request could not be queue or
343  *           upcall completed but item is still invalid (implying that
344  *           the cache item has been replaced with a newer one).
345  * -ENOENT if cache entry was negative
346  */
347 int cache_check(struct cache_detail *detail,
348 		struct cache_head *h, struct cache_req *rqstp)
349 {
350 	int rv;
351 
352 	rv = cache_check_rcu(detail, h, rqstp);
353 	if (rv)
354 		cache_put(h, detail);
355 	return rv;
356 }
357 EXPORT_SYMBOL_GPL(cache_check);
358 
359 /*
360  * caches need to be periodically cleaned.
361  * For this we maintain a list of cache_detail and
362  * a current pointer into that list and into the table
363  * for that entry.
364  *
365  * Each time cache_clean is called it finds the next non-empty entry
366  * in the current table and walks the list in that entry
367  * looking for entries that can be removed.
368  *
369  * An entry gets removed if:
370  * - The expiry is before current time
371  * - The last_refresh time is before the flush_time for that cache
372  *
373  * later we might drop old entries with non-NEVER expiry if that table
374  * is getting 'full' for some definition of 'full'
375  *
376  * The question of "how often to scan a table" is an interesting one
377  * and is answered in part by the use of the "nextcheck" field in the
378  * cache_detail.
379  * When a scan of a table begins, the nextcheck field is set to a time
380  * that is well into the future.
381  * While scanning, if an expiry time is found that is earlier than the
382  * current nextcheck time, nextcheck is set to that expiry time.
383  * If the flush_time is ever set to a time earlier than the nextcheck
384  * time, the nextcheck time is then set to that flush_time.
385  *
386  * A table is then only scanned if the current time is at least
387  * the nextcheck time.
388  *
389  */
390 
391 static LIST_HEAD(cache_list);
392 static DEFINE_SPINLOCK(cache_list_lock);
393 static struct cache_detail *current_detail;
394 static int current_index;
395 
396 static void do_cache_clean(struct work_struct *work);
397 static struct delayed_work cache_cleaner;
398 
399 void sunrpc_init_cache_detail(struct cache_detail *cd)
400 {
401 	spin_lock_init(&cd->hash_lock);
402 	INIT_LIST_HEAD(&cd->requests);
403 	INIT_LIST_HEAD(&cd->readers);
404 	spin_lock_init(&cd->queue_lock);
405 	init_waitqueue_head(&cd->queue_wait);
406 	cd->next_seqno = 0;
407 	spin_lock(&cache_list_lock);
408 	cd->nextcheck = 0;
409 	cd->entries = 0;
410 	atomic_set(&cd->writers, 0);
411 	cd->last_close = 0;
412 	cd->last_warn = -1;
413 	list_add(&cd->others, &cache_list);
414 	spin_unlock(&cache_list_lock);
415 
416 	/* start the cleaning process */
417 	queue_delayed_work(system_power_efficient_wq, &cache_cleaner, 0);
418 }
419 EXPORT_SYMBOL_GPL(sunrpc_init_cache_detail);
420 
421 void sunrpc_destroy_cache_detail(struct cache_detail *cd)
422 {
423 	cache_purge(cd);
424 	spin_lock(&cache_list_lock);
425 	spin_lock(&cd->hash_lock);
426 	if (current_detail == cd)
427 		current_detail = NULL;
428 	list_del_init(&cd->others);
429 	spin_unlock(&cd->hash_lock);
430 	spin_unlock(&cache_list_lock);
431 	if (list_empty(&cache_list)) {
432 		/* module must be being unloaded so its safe to kill the worker */
433 		cancel_delayed_work_sync(&cache_cleaner);
434 	}
435 }
436 EXPORT_SYMBOL_GPL(sunrpc_destroy_cache_detail);
437 
438 /* clean cache tries to find something to clean
439  * and cleans it.
440  * It returns 1 if it cleaned something,
441  *            0 if it didn't find anything this time
442  *           -1 if it fell off the end of the list.
443  */
444 static int cache_clean(void)
445 {
446 	int rv = 0;
447 	struct list_head *next;
448 
449 	spin_lock(&cache_list_lock);
450 
451 	/* find a suitable table if we don't already have one */
452 	while (current_detail == NULL ||
453 	    current_index >= current_detail->hash_size) {
454 		if (current_detail)
455 			next = current_detail->others.next;
456 		else
457 			next = cache_list.next;
458 		if (next == &cache_list) {
459 			current_detail = NULL;
460 			spin_unlock(&cache_list_lock);
461 			return -1;
462 		}
463 		current_detail = list_entry(next, struct cache_detail, others);
464 		if (current_detail->nextcheck > seconds_since_boot())
465 			current_index = current_detail->hash_size;
466 		else {
467 			current_index = 0;
468 			current_detail->nextcheck = seconds_since_boot()+30*60;
469 		}
470 	}
471 
472 	spin_lock(&current_detail->hash_lock);
473 
474 	/* find a non-empty bucket in the table */
475 	while (current_index < current_detail->hash_size &&
476 	       hlist_empty(&current_detail->hash_table[current_index]))
477 		current_index++;
478 
479 	/* find a cleanable entry in the bucket and clean it, or set to next bucket */
480 	if (current_index < current_detail->hash_size) {
481 		struct cache_head *ch = NULL;
482 		struct cache_detail *d;
483 		struct hlist_head *head;
484 		struct hlist_node *tmp;
485 
486 		/* Ok, now to clean this strand */
487 		head = &current_detail->hash_table[current_index];
488 		hlist_for_each_entry_safe(ch, tmp, head, cache_list) {
489 			if (current_detail->nextcheck > ch->expiry_time)
490 				current_detail->nextcheck = ch->expiry_time+1;
491 			if (!cache_is_expired(current_detail, ch))
492 				continue;
493 
494 			sunrpc_begin_cache_remove_entry(ch, current_detail);
495 			trace_cache_entry_expired(current_detail, ch);
496 			rv = 1;
497 			break;
498 		}
499 
500 		spin_unlock(&current_detail->hash_lock);
501 		d = current_detail;
502 		if (!ch)
503 			current_index ++;
504 		spin_unlock(&cache_list_lock);
505 		if (ch)
506 			sunrpc_end_cache_remove_entry(ch, d);
507 	} else {
508 		spin_unlock(&current_detail->hash_lock);
509 		spin_unlock(&cache_list_lock);
510 	}
511 
512 	return rv;
513 }
514 
515 /*
516  * We want to regularly clean the cache, so we need to schedule some work ...
517  */
518 static void do_cache_clean(struct work_struct *work)
519 {
520 	int delay;
521 
522 	if (list_empty(&cache_list))
523 		return;
524 
525 	if (cache_clean() == -1)
526 		delay = round_jiffies_relative(30*HZ);
527 	else
528 		delay = 5;
529 
530 	queue_delayed_work(system_power_efficient_wq, &cache_cleaner, delay);
531 }
532 
533 
534 /*
535  * Clean all caches promptly.  This just calls cache_clean
536  * repeatedly until we are sure that every cache has had a chance to
537  * be fully cleaned
538  */
539 void cache_flush(void)
540 {
541 	while (cache_clean() != -1)
542 		cond_resched();
543 	while (cache_clean() != -1)
544 		cond_resched();
545 }
546 EXPORT_SYMBOL_GPL(cache_flush);
547 
548 void cache_purge(struct cache_detail *detail)
549 {
550 	struct cache_head *ch = NULL;
551 	struct hlist_head *head = NULL;
552 	int i = 0;
553 
554 	spin_lock(&detail->hash_lock);
555 	if (!detail->entries) {
556 		spin_unlock(&detail->hash_lock);
557 		return;
558 	}
559 
560 	dprintk("RPC: %d entries in %s cache\n", detail->entries, detail->name);
561 	for (i = 0; i < detail->hash_size; i++) {
562 		head = &detail->hash_table[i];
563 		while (!hlist_empty(head)) {
564 			ch = hlist_entry(head->first, struct cache_head,
565 					 cache_list);
566 			sunrpc_begin_cache_remove_entry(ch, detail);
567 			spin_unlock(&detail->hash_lock);
568 			sunrpc_end_cache_remove_entry(ch, detail);
569 			spin_lock(&detail->hash_lock);
570 		}
571 	}
572 	spin_unlock(&detail->hash_lock);
573 }
574 EXPORT_SYMBOL_GPL(cache_purge);
575 
576 
577 /*
578  * Deferral and Revisiting of Requests.
579  *
580  * If a cache lookup finds a pending entry, we
581  * need to defer the request and revisit it later.
582  * All deferred requests are stored in a hash table,
583  * indexed by "struct cache_head *".
584  * As it may be wasteful to store a whole request
585  * structure, we allow the request to provide a
586  * deferred form, which must contain a
587  * 'struct cache_deferred_req'
588  * This cache_deferred_req contains a method to allow
589  * it to be revisited when cache info is available
590  */
591 
592 #define	DFR_HASHSIZE	(PAGE_SIZE/sizeof(struct list_head))
593 #define	DFR_HASH(item)	((((long)item)>>4 ^ (((long)item)>>13)) % DFR_HASHSIZE)
594 
595 #define	DFR_MAX	300	/* ??? */
596 
597 static DEFINE_SPINLOCK(cache_defer_lock);
598 static LIST_HEAD(cache_defer_list);
599 static struct hlist_head cache_defer_hash[DFR_HASHSIZE];
600 static int cache_defer_cnt;
601 
602 static void __unhash_deferred_req(struct cache_deferred_req *dreq)
603 {
604 	hlist_del_init(&dreq->hash);
605 	if (!list_empty(&dreq->recent)) {
606 		list_del_init(&dreq->recent);
607 		cache_defer_cnt--;
608 	}
609 }
610 
611 static void __hash_deferred_req(struct cache_deferred_req *dreq, struct cache_head *item)
612 {
613 	int hash = DFR_HASH(item);
614 
615 	INIT_LIST_HEAD(&dreq->recent);
616 	hlist_add_head(&dreq->hash, &cache_defer_hash[hash]);
617 }
618 
619 static void setup_deferral(struct cache_deferred_req *dreq,
620 			   struct cache_head *item,
621 			   int count_me)
622 {
623 
624 	dreq->item = item;
625 
626 	spin_lock(&cache_defer_lock);
627 
628 	__hash_deferred_req(dreq, item);
629 
630 	if (count_me) {
631 		cache_defer_cnt++;
632 		list_add(&dreq->recent, &cache_defer_list);
633 	}
634 
635 	spin_unlock(&cache_defer_lock);
636 
637 }
638 
639 struct thread_deferred_req {
640 	struct cache_deferred_req handle;
641 	struct completion completion;
642 };
643 
644 static void cache_restart_thread(struct cache_deferred_req *dreq, int too_many)
645 {
646 	struct thread_deferred_req *dr =
647 		container_of(dreq, struct thread_deferred_req, handle);
648 	complete(&dr->completion);
649 }
650 
651 static void cache_wait_req(struct cache_req *req, struct cache_head *item)
652 {
653 	struct thread_deferred_req sleeper;
654 	struct cache_deferred_req *dreq = &sleeper.handle;
655 
656 	sleeper.completion = COMPLETION_INITIALIZER_ONSTACK(sleeper.completion);
657 	dreq->revisit = cache_restart_thread;
658 
659 	setup_deferral(dreq, item, 0);
660 
661 	if (!test_bit(CACHE_PENDING, &item->flags) ||
662 	    wait_for_completion_interruptible_timeout(
663 		    &sleeper.completion, req->thread_wait) <= 0) {
664 		/* The completion wasn't completed, so we need
665 		 * to clean up
666 		 */
667 		spin_lock(&cache_defer_lock);
668 		if (!hlist_unhashed(&sleeper.handle.hash)) {
669 			__unhash_deferred_req(&sleeper.handle);
670 			spin_unlock(&cache_defer_lock);
671 		} else {
672 			/* cache_revisit_request already removed
673 			 * this from the hash table, but hasn't
674 			 * called ->revisit yet.  It will very soon
675 			 * and we need to wait for it.
676 			 */
677 			spin_unlock(&cache_defer_lock);
678 			wait_for_completion(&sleeper.completion);
679 		}
680 	}
681 }
682 
683 static void cache_limit_defers(void)
684 {
685 	/* Make sure we haven't exceed the limit of allowed deferred
686 	 * requests.
687 	 */
688 	struct cache_deferred_req *discard = NULL;
689 
690 	if (cache_defer_cnt <= DFR_MAX)
691 		return;
692 
693 	spin_lock(&cache_defer_lock);
694 
695 	/* Consider removing either the first or the last */
696 	if (cache_defer_cnt > DFR_MAX) {
697 		if (get_random_u32_below(2))
698 			discard = list_entry(cache_defer_list.next,
699 					     struct cache_deferred_req, recent);
700 		else
701 			discard = list_entry(cache_defer_list.prev,
702 					     struct cache_deferred_req, recent);
703 		__unhash_deferred_req(discard);
704 	}
705 	spin_unlock(&cache_defer_lock);
706 	if (discard)
707 		discard->revisit(discard, 1);
708 }
709 
710 #if IS_ENABLED(CONFIG_FAIL_SUNRPC)
711 static inline bool cache_defer_immediately(void)
712 {
713 	return !fail_sunrpc.ignore_cache_wait &&
714 		should_fail(&fail_sunrpc.attr, 1);
715 }
716 #else
717 static inline bool cache_defer_immediately(void)
718 {
719 	return false;
720 }
721 #endif
722 
723 /* Return true if and only if a deferred request is queued. */
724 static bool cache_defer_req(struct cache_req *req, struct cache_head *item)
725 {
726 	struct cache_deferred_req *dreq;
727 
728 	if (!cache_defer_immediately()) {
729 		cache_wait_req(req, item);
730 		if (!test_bit(CACHE_PENDING, &item->flags))
731 			return false;
732 	}
733 
734 	dreq = req->defer(req);
735 	if (dreq == NULL)
736 		return false;
737 	setup_deferral(dreq, item, 1);
738 	if (!test_bit(CACHE_PENDING, &item->flags))
739 		/* Bit could have been cleared before we managed to
740 		 * set up the deferral, so need to revisit just in case
741 		 */
742 		cache_revisit_request(item);
743 
744 	cache_limit_defers();
745 	return true;
746 }
747 
748 static void cache_revisit_request(struct cache_head *item)
749 {
750 	struct cache_deferred_req *dreq;
751 	struct hlist_node *tmp;
752 	int hash = DFR_HASH(item);
753 	LIST_HEAD(pending);
754 
755 	spin_lock(&cache_defer_lock);
756 
757 	hlist_for_each_entry_safe(dreq, tmp, &cache_defer_hash[hash], hash)
758 		if (dreq->item == item) {
759 			__unhash_deferred_req(dreq);
760 			list_add(&dreq->recent, &pending);
761 		}
762 
763 	spin_unlock(&cache_defer_lock);
764 
765 	while (!list_empty(&pending)) {
766 		dreq = list_entry(pending.next, struct cache_deferred_req, recent);
767 		list_del_init(&dreq->recent);
768 		dreq->revisit(dreq, 0);
769 	}
770 }
771 
772 void cache_clean_deferred(void *owner)
773 {
774 	struct cache_deferred_req *dreq, *tmp;
775 	LIST_HEAD(pending);
776 
777 	spin_lock(&cache_defer_lock);
778 
779 	list_for_each_entry_safe(dreq, tmp, &cache_defer_list, recent) {
780 		if (dreq->owner == owner) {
781 			__unhash_deferred_req(dreq);
782 			list_add(&dreq->recent, &pending);
783 		}
784 	}
785 	spin_unlock(&cache_defer_lock);
786 
787 	while (!list_empty(&pending)) {
788 		dreq = list_entry(pending.next, struct cache_deferred_req, recent);
789 		list_del_init(&dreq->recent);
790 		dreq->revisit(dreq, 1);
791 	}
792 }
793 
794 /*
795  * communicate with user-space
796  *
797  * We have a magic /proc file - /proc/net/rpc/<cachename>/channel.
798  * On read, you get a full request, or block.
799  * On write, an update request is processed.
800  * Poll works if anything to read, and always allows write.
801  */
802 
803 struct cache_request {
804 	struct list_head	list;
805 	struct cache_head	*item;
806 	char			*buf;
807 	int			len;
808 	int			readers;
809 	u64			seqno;
810 };
811 struct cache_reader {
812 	struct list_head	list;
813 	int			offset;	/* if non-0, we have a refcnt on next request */
814 	u64			next_seqno;
815 };
816 
817 static int cache_request(struct cache_detail *detail,
818 			       struct cache_request *crq)
819 {
820 	char *bp = crq->buf;
821 	int len = PAGE_SIZE;
822 
823 	detail->cache_request(detail, crq->item, &bp, &len);
824 	if (len < 0)
825 		return -E2BIG;
826 	return PAGE_SIZE - len;
827 }
828 
829 static struct cache_request *
830 cache_next_request(struct cache_detail *cd, u64 seqno)
831 {
832 	struct cache_request *rq;
833 
834 	list_for_each_entry(rq, &cd->requests, list)
835 		if (rq->seqno >= seqno)
836 			return rq;
837 	return NULL;
838 }
839 
840 static ssize_t cache_read(struct file *filp, char __user *buf, size_t count,
841 			  loff_t *ppos, struct cache_detail *cd)
842 {
843 	struct cache_reader *rp = filp->private_data;
844 	struct cache_request *rq;
845 	struct inode *inode = file_inode(filp);
846 	int err;
847 
848 	if (count == 0)
849 		return 0;
850 
851 	inode_lock(inode); /* protect against multiple concurrent
852 			      * readers on this file */
853  again:
854 	spin_lock(&cd->queue_lock);
855 	/* need to find next request */
856 	rq = cache_next_request(cd, rp->next_seqno);
857 	if (!rq) {
858 		spin_unlock(&cd->queue_lock);
859 		inode_unlock(inode);
860 		WARN_ON_ONCE(rp->offset);
861 		return 0;
862 	}
863 	if (rp->offset == 0)
864 		rq->readers++;
865 	spin_unlock(&cd->queue_lock);
866 
867 	if (rq->len == 0) {
868 		err = cache_request(cd, rq);
869 		if (err < 0)
870 			goto out;
871 		rq->len = err;
872 	}
873 
874 	if (rp->offset == 0 && !test_bit(CACHE_PENDING, &rq->item->flags)) {
875 		err = -EAGAIN;
876 		rp->next_seqno = rq->seqno + 1;
877 	} else {
878 		if (rp->offset + count > rq->len)
879 			count = rq->len - rp->offset;
880 		err = -EFAULT;
881 		if (copy_to_user(buf, rq->buf + rp->offset, count))
882 			goto out;
883 		rp->offset += count;
884 		if (rp->offset >= rq->len) {
885 			rp->offset = 0;
886 			rp->next_seqno = rq->seqno + 1;
887 		}
888 		err = 0;
889 	}
890  out:
891 	if (rp->offset == 0) {
892 		/* need to release rq */
893 		spin_lock(&cd->queue_lock);
894 		rq->readers--;
895 		if (rq->readers == 0 &&
896 		    !test_bit(CACHE_PENDING, &rq->item->flags)) {
897 			list_del(&rq->list);
898 			spin_unlock(&cd->queue_lock);
899 			cache_put(rq->item, cd);
900 			kfree(rq->buf);
901 			kfree(rq);
902 		} else
903 			spin_unlock(&cd->queue_lock);
904 	}
905 	if (err == -EAGAIN)
906 		goto again;
907 	inode_unlock(inode);
908 	return err ? err :  count;
909 }
910 
911 static ssize_t cache_do_downcall(char *kaddr, const char __user *buf,
912 				 size_t count, struct cache_detail *cd)
913 {
914 	ssize_t ret;
915 
916 	if (count == 0)
917 		return -EINVAL;
918 	if (copy_from_user(kaddr, buf, count))
919 		return -EFAULT;
920 	kaddr[count] = '\0';
921 	ret = cd->cache_parse(cd, kaddr, count);
922 	if (!ret)
923 		ret = count;
924 	return ret;
925 }
926 
927 static ssize_t cache_downcall(struct address_space *mapping,
928 			      const char __user *buf,
929 			      size_t count, struct cache_detail *cd)
930 {
931 	char *write_buf;
932 	ssize_t ret = -ENOMEM;
933 
934 	if (count >= 32768) { /* 32k is max userland buffer, lets check anyway */
935 		ret = -EINVAL;
936 		goto out;
937 	}
938 
939 	write_buf = kvmalloc(count + 1, GFP_KERNEL);
940 	if (!write_buf)
941 		goto out;
942 
943 	ret = cache_do_downcall(write_buf, buf, count, cd);
944 	kvfree(write_buf);
945 out:
946 	return ret;
947 }
948 
949 static ssize_t cache_write(struct file *filp, const char __user *buf,
950 			   size_t count, loff_t *ppos,
951 			   struct cache_detail *cd)
952 {
953 	struct address_space *mapping = filp->f_mapping;
954 	struct inode *inode = file_inode(filp);
955 	ssize_t ret = -EINVAL;
956 
957 	if (!cd->cache_parse)
958 		goto out;
959 
960 	inode_lock(inode);
961 	ret = cache_downcall(mapping, buf, count, cd);
962 	inode_unlock(inode);
963 out:
964 	return ret;
965 }
966 
967 static __poll_t cache_poll(struct file *filp, poll_table *wait,
968 			       struct cache_detail *cd)
969 {
970 	__poll_t mask;
971 	struct cache_reader *rp = filp->private_data;
972 
973 	poll_wait(filp, &cd->queue_wait, wait);
974 
975 	/* alway allow write */
976 	mask = EPOLLOUT | EPOLLWRNORM;
977 
978 	if (!rp)
979 		return mask;
980 
981 	spin_lock(&cd->queue_lock);
982 
983 	if (cache_next_request(cd, rp->next_seqno))
984 		mask |= EPOLLIN | EPOLLRDNORM;
985 	spin_unlock(&cd->queue_lock);
986 	return mask;
987 }
988 
989 static int cache_ioctl(struct inode *ino, struct file *filp,
990 		       unsigned int cmd, unsigned long arg,
991 		       struct cache_detail *cd)
992 {
993 	int len = 0;
994 	struct cache_reader *rp = filp->private_data;
995 	struct cache_request *rq;
996 
997 	if (cmd != FIONREAD || !rp)
998 		return -EINVAL;
999 
1000 	spin_lock(&cd->queue_lock);
1001 
1002 	/* only find the length remaining in current request,
1003 	 * or the length of the next request
1004 	 */
1005 	rq = cache_next_request(cd, rp->next_seqno);
1006 	if (rq)
1007 		len = rq->len - rp->offset;
1008 	spin_unlock(&cd->queue_lock);
1009 
1010 	return put_user(len, (int __user *)arg);
1011 }
1012 
1013 static int cache_open(struct inode *inode, struct file *filp,
1014 		      struct cache_detail *cd)
1015 {
1016 	struct cache_reader *rp = NULL;
1017 
1018 	if (!cd || !try_module_get(cd->owner))
1019 		return -EACCES;
1020 	nonseekable_open(inode, filp);
1021 	if (filp->f_mode & FMODE_READ) {
1022 		rp = kmalloc_obj(*rp);
1023 		if (!rp) {
1024 			module_put(cd->owner);
1025 			return -ENOMEM;
1026 		}
1027 		rp->offset = 0;
1028 		rp->next_seqno = 0;
1029 
1030 		spin_lock(&cd->queue_lock);
1031 		list_add(&rp->list, &cd->readers);
1032 		spin_unlock(&cd->queue_lock);
1033 	}
1034 	if (filp->f_mode & FMODE_WRITE)
1035 		atomic_inc(&cd->writers);
1036 	filp->private_data = rp;
1037 	return 0;
1038 }
1039 
1040 static int cache_release(struct inode *inode, struct file *filp,
1041 			 struct cache_detail *cd)
1042 {
1043 	struct cache_reader *rp = filp->private_data;
1044 
1045 	if (rp) {
1046 		struct cache_request *rq = NULL;
1047 
1048 		spin_lock(&cd->queue_lock);
1049 		if (rp->offset) {
1050 			struct cache_request *cr;
1051 
1052 			cr = cache_next_request(cd, rp->next_seqno);
1053 			if (cr) {
1054 				cr->readers--;
1055 				if (cr->readers == 0 &&
1056 				    !test_bit(CACHE_PENDING,
1057 					      &cr->item->flags)) {
1058 					list_del(&cr->list);
1059 					rq = cr;
1060 				}
1061 			}
1062 			rp->offset = 0;
1063 		}
1064 		list_del(&rp->list);
1065 		spin_unlock(&cd->queue_lock);
1066 
1067 		if (rq) {
1068 			cache_put(rq->item, cd);
1069 			kfree(rq->buf);
1070 			kfree(rq);
1071 		}
1072 
1073 		filp->private_data = NULL;
1074 		kfree(rp);
1075 	}
1076 	if (filp->f_mode & FMODE_WRITE) {
1077 		atomic_dec(&cd->writers);
1078 		cd->last_close = seconds_since_boot();
1079 	}
1080 	module_put(cd->owner);
1081 	return 0;
1082 }
1083 
1084 
1085 
1086 static void cache_dequeue(struct cache_detail *detail, struct cache_head *ch)
1087 {
1088 	struct cache_request *cr, *tmp;
1089 	LIST_HEAD(dequeued);
1090 
1091 	spin_lock(&detail->queue_lock);
1092 	list_for_each_entry_safe(cr, tmp, &detail->requests, list) {
1093 		if (cr->item != ch)
1094 			continue;
1095 		if (test_bit(CACHE_PENDING, &ch->flags))
1096 			/* Lost a race and it is pending again */
1097 			break;
1098 		if (cr->readers != 0)
1099 			continue;
1100 		list_move(&cr->list, &dequeued);
1101 	}
1102 	spin_unlock(&detail->queue_lock);
1103 	while (!list_empty(&dequeued)) {
1104 		cr = list_entry(dequeued.next, struct cache_request, list);
1105 		list_del(&cr->list);
1106 		cache_put(cr->item, detail);
1107 		kfree(cr->buf);
1108 		kfree(cr);
1109 	}
1110 }
1111 
1112 /*
1113  * Support routines for text-based upcalls.
1114  * Fields are separated by spaces.
1115  * Fields are either mangled to quote space tab newline slosh with slosh
1116  * or a hexified with a leading \x
1117  * Record is terminated with newline.
1118  *
1119  */
1120 
1121 void qword_add(char **bpp, int *lp, char *str)
1122 {
1123 	char *bp = *bpp;
1124 	int len = *lp;
1125 	int ret;
1126 
1127 	if (len < 0) return;
1128 
1129 	ret = string_escape_str(str, bp, len, ESCAPE_OCTAL, "\\ \n\t");
1130 	if (ret >= len) {
1131 		bp += len;
1132 		len = -1;
1133 	} else {
1134 		bp += ret;
1135 		len -= ret;
1136 		*bp++ = ' ';
1137 		len--;
1138 	}
1139 	*bpp = bp;
1140 	*lp = len;
1141 }
1142 EXPORT_SYMBOL_GPL(qword_add);
1143 
1144 void qword_addhex(char **bpp, int *lp, char *buf, int blen)
1145 {
1146 	char *bp = *bpp;
1147 	int len = *lp;
1148 
1149 	if (len < 0) return;
1150 
1151 	if (len > 2) {
1152 		*bp++ = '\\';
1153 		*bp++ = 'x';
1154 		len -= 2;
1155 		while (blen && len >= 2) {
1156 			bp = hex_byte_pack(bp, *buf++);
1157 			len -= 2;
1158 			blen--;
1159 		}
1160 	}
1161 	if (blen || len<1) len = -1;
1162 	else {
1163 		*bp++ = ' ';
1164 		len--;
1165 	}
1166 	*bpp = bp;
1167 	*lp = len;
1168 }
1169 EXPORT_SYMBOL_GPL(qword_addhex);
1170 
1171 static void warn_no_listener(struct cache_detail *detail)
1172 {
1173 	if (detail->last_warn != detail->last_close) {
1174 		detail->last_warn = detail->last_close;
1175 		if (detail->warn_no_listener)
1176 			detail->warn_no_listener(detail, detail->last_close != 0);
1177 	}
1178 }
1179 
1180 static bool cache_listeners_exist(struct cache_detail *detail)
1181 {
1182 	if (atomic_read(&detail->writers))
1183 		return true;
1184 	if (detail->last_close == 0)
1185 		/* This cache was never opened */
1186 		return false;
1187 	if (detail->last_close < seconds_since_boot() - 30)
1188 		/*
1189 		 * We allow for the possibility that someone might
1190 		 * restart a userspace daemon without restarting the
1191 		 * server; but after 30 seconds, we give up.
1192 		 */
1193 		 return false;
1194 	return true;
1195 }
1196 
1197 /*
1198  * register an upcall request to user-space and queue it up for read() by the
1199  * upcall daemon.
1200  *
1201  * Each request is at most one page long.
1202  */
1203 static int cache_pipe_upcall(struct cache_detail *detail, struct cache_head *h)
1204 {
1205 	char *buf;
1206 	struct cache_request *crq;
1207 	int ret = 0;
1208 
1209 	if (test_bit(CACHE_CLEANED, &h->flags))
1210 		/* Too late to make an upcall */
1211 		return -EAGAIN;
1212 
1213 	buf = kmalloc(PAGE_SIZE, GFP_KERNEL);
1214 	if (!buf)
1215 		return -EAGAIN;
1216 
1217 	crq = kmalloc_obj(*crq);
1218 	if (!crq) {
1219 		kfree(buf);
1220 		return -EAGAIN;
1221 	}
1222 
1223 	crq->buf = buf;
1224 	crq->len = 0;
1225 	crq->readers = 0;
1226 	spin_lock(&detail->queue_lock);
1227 	if (test_bit(CACHE_PENDING, &h->flags)) {
1228 		crq->item = cache_get(h);
1229 		crq->seqno = detail->next_seqno++;
1230 		list_add_tail(&crq->list, &detail->requests);
1231 		trace_cache_entry_upcall(detail, h);
1232 	} else
1233 		/* Lost a race, no longer PENDING, so don't enqueue */
1234 		ret = -EAGAIN;
1235 	spin_unlock(&detail->queue_lock);
1236 	wake_up(&detail->queue_wait);
1237 	if (ret == -EAGAIN) {
1238 		kfree(buf);
1239 		kfree(crq);
1240 	}
1241 	return ret;
1242 }
1243 
1244 int sunrpc_cache_pipe_upcall(struct cache_detail *detail, struct cache_head *h)
1245 {
1246 	if (test_and_set_bit(CACHE_PENDING, &h->flags))
1247 		return 0;
1248 	return cache_pipe_upcall(detail, h);
1249 }
1250 EXPORT_SYMBOL_GPL(sunrpc_cache_pipe_upcall);
1251 
1252 int sunrpc_cache_pipe_upcall_timeout(struct cache_detail *detail,
1253 				     struct cache_head *h)
1254 {
1255 	if (!cache_listeners_exist(detail)) {
1256 		warn_no_listener(detail);
1257 		trace_cache_entry_no_listener(detail, h);
1258 		return -EINVAL;
1259 	}
1260 	return sunrpc_cache_pipe_upcall(detail, h);
1261 }
1262 EXPORT_SYMBOL_GPL(sunrpc_cache_pipe_upcall_timeout);
1263 
1264 /*
1265  * parse a message from user-space and pass it
1266  * to an appropriate cache
1267  * Messages are, like requests, separated into fields by
1268  * spaces and dequotes as \xHEXSTRING or embedded \nnn octal
1269  *
1270  * Message is
1271  *   reply cachename expiry key ... content....
1272  *
1273  * key and content are both parsed by cache
1274  */
1275 
1276 int qword_get(char **bpp, char *dest, int bufsize)
1277 {
1278 	/* return bytes copied, or -1 on error */
1279 	char *bp = *bpp;
1280 	int len = 0;
1281 
1282 	while (*bp == ' ') bp++;
1283 
1284 	if (bp[0] == '\\' && bp[1] == 'x') {
1285 		/* HEX STRING */
1286 		bp += 2;
1287 		while (len < bufsize - 1) {
1288 			int h, l;
1289 
1290 			h = hex_to_bin(bp[0]);
1291 			if (h < 0)
1292 				break;
1293 
1294 			l = hex_to_bin(bp[1]);
1295 			if (l < 0)
1296 				break;
1297 
1298 			*dest++ = (h << 4) | l;
1299 			bp += 2;
1300 			len++;
1301 		}
1302 	} else {
1303 		/* text with \nnn octal quoting */
1304 		while (*bp != ' ' && *bp != '\n' && *bp && len < bufsize-1) {
1305 			if (*bp == '\\' &&
1306 			    isodigit(bp[1]) && (bp[1] <= '3') &&
1307 			    isodigit(bp[2]) &&
1308 			    isodigit(bp[3])) {
1309 				int byte = (*++bp -'0');
1310 				bp++;
1311 				byte = (byte << 3) | (*bp++ - '0');
1312 				byte = (byte << 3) | (*bp++ - '0');
1313 				*dest++ = byte;
1314 				len++;
1315 			} else {
1316 				*dest++ = *bp++;
1317 				len++;
1318 			}
1319 		}
1320 	}
1321 
1322 	if (*bp != ' ' && *bp != '\n' && *bp != '\0')
1323 		return -1;
1324 	while (*bp == ' ') bp++;
1325 	*bpp = bp;
1326 	*dest = '\0';
1327 	return len;
1328 }
1329 EXPORT_SYMBOL_GPL(qword_get);
1330 
1331 
1332 /*
1333  * support /proc/net/rpc/$CACHENAME/content
1334  * as a seqfile.
1335  * We call ->cache_show passing NULL for the item to
1336  * get a header, then pass each real item in the cache
1337  */
1338 
1339 static void *__cache_seq_start(struct seq_file *m, loff_t *pos)
1340 {
1341 	loff_t n = *pos;
1342 	unsigned int hash, entry;
1343 	struct cache_head *ch;
1344 	struct cache_detail *cd = m->private;
1345 
1346 	if (!n--)
1347 		return SEQ_START_TOKEN;
1348 	hash = n >> 32;
1349 	entry = n & ((1LL<<32) - 1);
1350 
1351 	hlist_for_each_entry_rcu(ch, &cd->hash_table[hash], cache_list)
1352 		if (!entry--)
1353 			return ch;
1354 	ch = NULL;
1355 	while (!ch && ++hash < cd->hash_size)
1356 		ch = hlist_entry_safe(rcu_dereference(
1357 				hlist_first_rcu(&cd->hash_table[hash])),
1358 				struct cache_head, cache_list);
1359 
1360 	*pos = ((long long)hash << 32) + 1;
1361 	return ch;
1362 }
1363 
1364 static void *cache_seq_next(struct seq_file *m, void *p, loff_t *pos)
1365 {
1366 	struct cache_head *ch = p;
1367 	int hash = (*pos >> 32);
1368 	struct cache_detail *cd = m->private;
1369 
1370 	if (p == SEQ_START_TOKEN) {
1371 		hash = 0;
1372 		ch = NULL;
1373 	}
1374 	while (hash < cd->hash_size) {
1375 		if (ch)
1376 			ch = hlist_entry_safe(
1377 				rcu_dereference(
1378 					hlist_next_rcu(&ch->cache_list)),
1379 				struct cache_head, cache_list);
1380 		else
1381 			ch = hlist_entry_safe(
1382 				rcu_dereference(
1383 					hlist_first_rcu(&cd->hash_table[hash])),
1384 				struct cache_head, cache_list);
1385 		if (ch) {
1386 			++*pos;
1387 			return ch;
1388 		}
1389 		hash++;
1390 		*pos = (long long)hash << 32;
1391 	}
1392 	return NULL;
1393 }
1394 
1395 void *cache_seq_start_rcu(struct seq_file *m, loff_t *pos)
1396 	__acquires(RCU)
1397 {
1398 	rcu_read_lock();
1399 	return __cache_seq_start(m, pos);
1400 }
1401 EXPORT_SYMBOL_GPL(cache_seq_start_rcu);
1402 
1403 void *cache_seq_next_rcu(struct seq_file *file, void *p, loff_t *pos)
1404 {
1405 	return cache_seq_next(file, p, pos);
1406 }
1407 EXPORT_SYMBOL_GPL(cache_seq_next_rcu);
1408 
1409 void cache_seq_stop_rcu(struct seq_file *m, void *p)
1410 	__releases(RCU)
1411 {
1412 	rcu_read_unlock();
1413 }
1414 EXPORT_SYMBOL_GPL(cache_seq_stop_rcu);
1415 
1416 static int c_show(struct seq_file *m, void *p)
1417 {
1418 	struct cache_head *cp = p;
1419 	struct cache_detail *cd = m->private;
1420 
1421 	if (p == SEQ_START_TOKEN)
1422 		return cd->cache_show(m, cd, NULL);
1423 
1424 	ifdebug(CACHE)
1425 		seq_printf(m, "# expiry=%lld refcnt=%d flags=%lx\n",
1426 			   convert_to_wallclock(cp->expiry_time),
1427 			   kref_read(&cp->ref), cp->flags);
1428 
1429 	if (cache_check_rcu(cd, cp, NULL))
1430 		seq_puts(m, "# ");
1431 	else if (cache_is_expired(cd, cp))
1432 		seq_puts(m, "# ");
1433 
1434 	return cd->cache_show(m, cd, cp);
1435 }
1436 
1437 static const struct seq_operations cache_content_op = {
1438 	.start	= cache_seq_start_rcu,
1439 	.next	= cache_seq_next_rcu,
1440 	.stop	= cache_seq_stop_rcu,
1441 	.show	= c_show,
1442 };
1443 
1444 static int content_open(struct inode *inode, struct file *file,
1445 			struct cache_detail *cd)
1446 {
1447 	struct seq_file *seq;
1448 	int err;
1449 
1450 	if (!cd || !try_module_get(cd->owner))
1451 		return -EACCES;
1452 
1453 	err = seq_open(file, &cache_content_op);
1454 	if (err) {
1455 		module_put(cd->owner);
1456 		return err;
1457 	}
1458 
1459 	seq = file->private_data;
1460 	seq->private = cd;
1461 	return 0;
1462 }
1463 
1464 static int content_release(struct inode *inode, struct file *file,
1465 		struct cache_detail *cd)
1466 {
1467 	int ret = seq_release(inode, file);
1468 	module_put(cd->owner);
1469 	return ret;
1470 }
1471 
1472 static int open_flush(struct inode *inode, struct file *file,
1473 			struct cache_detail *cd)
1474 {
1475 	if (!cd || !try_module_get(cd->owner))
1476 		return -EACCES;
1477 	return nonseekable_open(inode, file);
1478 }
1479 
1480 static int release_flush(struct inode *inode, struct file *file,
1481 			struct cache_detail *cd)
1482 {
1483 	module_put(cd->owner);
1484 	return 0;
1485 }
1486 
1487 static ssize_t read_flush(struct file *file, char __user *buf,
1488 			  size_t count, loff_t *ppos,
1489 			  struct cache_detail *cd)
1490 {
1491 	char tbuf[22];
1492 	size_t len;
1493 
1494 	len = snprintf(tbuf, sizeof(tbuf), "%llu\n",
1495 			convert_to_wallclock(cd->flush_time));
1496 	return simple_read_from_buffer(buf, count, ppos, tbuf, len);
1497 }
1498 
1499 static ssize_t write_flush(struct file *file, const char __user *buf,
1500 			   size_t count, loff_t *ppos,
1501 			   struct cache_detail *cd)
1502 {
1503 	char tbuf[20];
1504 	char *ep;
1505 	time64_t now;
1506 
1507 	if (*ppos || count > sizeof(tbuf)-1)
1508 		return -EINVAL;
1509 	if (copy_from_user(tbuf, buf, count))
1510 		return -EFAULT;
1511 	tbuf[count] = 0;
1512 	simple_strtoul(tbuf, &ep, 0);
1513 	if (*ep && *ep != '\n')
1514 		return -EINVAL;
1515 	/* Note that while we check that 'buf' holds a valid number,
1516 	 * we always ignore the value and just flush everything.
1517 	 * Making use of the number leads to races.
1518 	 */
1519 
1520 	now = seconds_since_boot();
1521 	/* Always flush everything, so behave like cache_purge()
1522 	 * Do this by advancing flush_time to the current time,
1523 	 * or by one second if it has already reached the current time.
1524 	 * Newly added cache entries will always have ->last_refresh greater
1525 	 * that ->flush_time, so they don't get flushed prematurely.
1526 	 */
1527 
1528 	if (cd->flush_time >= now)
1529 		now = cd->flush_time + 1;
1530 
1531 	cd->flush_time = now;
1532 	cd->nextcheck = now;
1533 	cache_flush();
1534 
1535 	if (cd->flush)
1536 		cd->flush();
1537 
1538 	*ppos += count;
1539 	return count;
1540 }
1541 
1542 static ssize_t cache_read_procfs(struct file *filp, char __user *buf,
1543 				 size_t count, loff_t *ppos)
1544 {
1545 	struct cache_detail *cd = pde_data(file_inode(filp));
1546 
1547 	return cache_read(filp, buf, count, ppos, cd);
1548 }
1549 
1550 static ssize_t cache_write_procfs(struct file *filp, const char __user *buf,
1551 				  size_t count, loff_t *ppos)
1552 {
1553 	struct cache_detail *cd = pde_data(file_inode(filp));
1554 
1555 	return cache_write(filp, buf, count, ppos, cd);
1556 }
1557 
1558 static __poll_t cache_poll_procfs(struct file *filp, poll_table *wait)
1559 {
1560 	struct cache_detail *cd = pde_data(file_inode(filp));
1561 
1562 	return cache_poll(filp, wait, cd);
1563 }
1564 
1565 static long cache_ioctl_procfs(struct file *filp,
1566 			       unsigned int cmd, unsigned long arg)
1567 {
1568 	struct inode *inode = file_inode(filp);
1569 	struct cache_detail *cd = pde_data(inode);
1570 
1571 	return cache_ioctl(inode, filp, cmd, arg, cd);
1572 }
1573 
1574 static int cache_open_procfs(struct inode *inode, struct file *filp)
1575 {
1576 	struct cache_detail *cd = pde_data(inode);
1577 
1578 	return cache_open(inode, filp, cd);
1579 }
1580 
1581 static int cache_release_procfs(struct inode *inode, struct file *filp)
1582 {
1583 	struct cache_detail *cd = pde_data(inode);
1584 
1585 	return cache_release(inode, filp, cd);
1586 }
1587 
1588 static const struct proc_ops cache_channel_proc_ops = {
1589 	.proc_read	= cache_read_procfs,
1590 	.proc_write	= cache_write_procfs,
1591 	.proc_poll	= cache_poll_procfs,
1592 	.proc_ioctl	= cache_ioctl_procfs, /* for FIONREAD */
1593 	.proc_open	= cache_open_procfs,
1594 	.proc_release	= cache_release_procfs,
1595 };
1596 
1597 static int content_open_procfs(struct inode *inode, struct file *filp)
1598 {
1599 	struct cache_detail *cd = pde_data(inode);
1600 
1601 	return content_open(inode, filp, cd);
1602 }
1603 
1604 static int content_release_procfs(struct inode *inode, struct file *filp)
1605 {
1606 	struct cache_detail *cd = pde_data(inode);
1607 
1608 	return content_release(inode, filp, cd);
1609 }
1610 
1611 static const struct proc_ops content_proc_ops = {
1612 	.proc_open	= content_open_procfs,
1613 	.proc_read	= seq_read,
1614 	.proc_lseek	= seq_lseek,
1615 	.proc_release	= content_release_procfs,
1616 };
1617 
1618 static int open_flush_procfs(struct inode *inode, struct file *filp)
1619 {
1620 	struct cache_detail *cd = pde_data(inode);
1621 
1622 	return open_flush(inode, filp, cd);
1623 }
1624 
1625 static int release_flush_procfs(struct inode *inode, struct file *filp)
1626 {
1627 	struct cache_detail *cd = pde_data(inode);
1628 
1629 	return release_flush(inode, filp, cd);
1630 }
1631 
1632 static ssize_t read_flush_procfs(struct file *filp, char __user *buf,
1633 			    size_t count, loff_t *ppos)
1634 {
1635 	struct cache_detail *cd = pde_data(file_inode(filp));
1636 
1637 	return read_flush(filp, buf, count, ppos, cd);
1638 }
1639 
1640 static ssize_t write_flush_procfs(struct file *filp,
1641 				  const char __user *buf,
1642 				  size_t count, loff_t *ppos)
1643 {
1644 	struct cache_detail *cd = pde_data(file_inode(filp));
1645 
1646 	return write_flush(filp, buf, count, ppos, cd);
1647 }
1648 
1649 static const struct proc_ops cache_flush_proc_ops = {
1650 	.proc_open	= open_flush_procfs,
1651 	.proc_read	= read_flush_procfs,
1652 	.proc_write	= write_flush_procfs,
1653 	.proc_release	= release_flush_procfs,
1654 };
1655 
1656 static void remove_cache_proc_entries(struct cache_detail *cd)
1657 {
1658 	if (cd->procfs) {
1659 		proc_remove(cd->procfs);
1660 		cd->procfs = NULL;
1661 	}
1662 }
1663 
1664 static int create_cache_proc_entries(struct cache_detail *cd, struct net *net)
1665 {
1666 	struct proc_dir_entry *p;
1667 	struct sunrpc_net *sn;
1668 
1669 	if (!IS_ENABLED(CONFIG_PROC_FS))
1670 		return 0;
1671 
1672 	sn = net_generic(net, sunrpc_net_id);
1673 	cd->procfs = proc_mkdir(cd->name, sn->proc_net_rpc);
1674 	if (cd->procfs == NULL)
1675 		goto out_nomem;
1676 
1677 	p = proc_create_data("flush", S_IFREG | 0600,
1678 			     cd->procfs, &cache_flush_proc_ops, cd);
1679 	if (p == NULL)
1680 		goto out_nomem;
1681 
1682 	if (cd->cache_request || cd->cache_parse) {
1683 		p = proc_create_data("channel", S_IFREG | 0600, cd->procfs,
1684 				     &cache_channel_proc_ops, cd);
1685 		if (p == NULL)
1686 			goto out_nomem;
1687 	}
1688 	if (cd->cache_show) {
1689 		p = proc_create_data("content", S_IFREG | 0400, cd->procfs,
1690 				     &content_proc_ops, cd);
1691 		if (p == NULL)
1692 			goto out_nomem;
1693 	}
1694 	return 0;
1695 out_nomem:
1696 	remove_cache_proc_entries(cd);
1697 	return -ENOMEM;
1698 }
1699 
1700 void __init cache_initialize(void)
1701 {
1702 	INIT_DEFERRABLE_WORK(&cache_cleaner, do_cache_clean);
1703 }
1704 
1705 int cache_register_net(struct cache_detail *cd, struct net *net)
1706 {
1707 	int ret;
1708 
1709 	sunrpc_init_cache_detail(cd);
1710 	ret = create_cache_proc_entries(cd, net);
1711 	if (ret)
1712 		sunrpc_destroy_cache_detail(cd);
1713 	return ret;
1714 }
1715 EXPORT_SYMBOL_GPL(cache_register_net);
1716 
1717 void cache_unregister_net(struct cache_detail *cd, struct net *net)
1718 {
1719 	remove_cache_proc_entries(cd);
1720 	sunrpc_destroy_cache_detail(cd);
1721 }
1722 EXPORT_SYMBOL_GPL(cache_unregister_net);
1723 
1724 struct cache_detail *cache_create_net(const struct cache_detail *tmpl, struct net *net)
1725 {
1726 	struct cache_detail *cd;
1727 	int i;
1728 
1729 	cd = kmemdup(tmpl, sizeof(struct cache_detail), GFP_KERNEL);
1730 	if (cd == NULL)
1731 		return ERR_PTR(-ENOMEM);
1732 
1733 	cd->hash_table = kzalloc_objs(struct hlist_head, cd->hash_size);
1734 	if (cd->hash_table == NULL) {
1735 		kfree(cd);
1736 		return ERR_PTR(-ENOMEM);
1737 	}
1738 
1739 	for (i = 0; i < cd->hash_size; i++)
1740 		INIT_HLIST_HEAD(&cd->hash_table[i]);
1741 	cd->net = net;
1742 	return cd;
1743 }
1744 EXPORT_SYMBOL_GPL(cache_create_net);
1745 
1746 void cache_destroy_net(struct cache_detail *cd, struct net *net)
1747 {
1748 	kfree(cd->hash_table);
1749 	kfree(cd);
1750 }
1751 EXPORT_SYMBOL_GPL(cache_destroy_net);
1752 
1753 static ssize_t cache_read_pipefs(struct file *filp, char __user *buf,
1754 				 size_t count, loff_t *ppos)
1755 {
1756 	struct cache_detail *cd = RPC_I(file_inode(filp))->private;
1757 
1758 	return cache_read(filp, buf, count, ppos, cd);
1759 }
1760 
1761 static ssize_t cache_write_pipefs(struct file *filp, const char __user *buf,
1762 				  size_t count, loff_t *ppos)
1763 {
1764 	struct cache_detail *cd = RPC_I(file_inode(filp))->private;
1765 
1766 	return cache_write(filp, buf, count, ppos, cd);
1767 }
1768 
1769 static __poll_t cache_poll_pipefs(struct file *filp, poll_table *wait)
1770 {
1771 	struct cache_detail *cd = RPC_I(file_inode(filp))->private;
1772 
1773 	return cache_poll(filp, wait, cd);
1774 }
1775 
1776 static long cache_ioctl_pipefs(struct file *filp,
1777 			      unsigned int cmd, unsigned long arg)
1778 {
1779 	struct inode *inode = file_inode(filp);
1780 	struct cache_detail *cd = RPC_I(inode)->private;
1781 
1782 	return cache_ioctl(inode, filp, cmd, arg, cd);
1783 }
1784 
1785 static int cache_open_pipefs(struct inode *inode, struct file *filp)
1786 {
1787 	struct cache_detail *cd = RPC_I(inode)->private;
1788 
1789 	return cache_open(inode, filp, cd);
1790 }
1791 
1792 static int cache_release_pipefs(struct inode *inode, struct file *filp)
1793 {
1794 	struct cache_detail *cd = RPC_I(inode)->private;
1795 
1796 	return cache_release(inode, filp, cd);
1797 }
1798 
1799 const struct file_operations cache_file_operations_pipefs = {
1800 	.owner		= THIS_MODULE,
1801 	.read		= cache_read_pipefs,
1802 	.write		= cache_write_pipefs,
1803 	.poll		= cache_poll_pipefs,
1804 	.unlocked_ioctl	= cache_ioctl_pipefs, /* for FIONREAD */
1805 	.open		= cache_open_pipefs,
1806 	.release	= cache_release_pipefs,
1807 };
1808 
1809 static int content_open_pipefs(struct inode *inode, struct file *filp)
1810 {
1811 	struct cache_detail *cd = RPC_I(inode)->private;
1812 
1813 	return content_open(inode, filp, cd);
1814 }
1815 
1816 static int content_release_pipefs(struct inode *inode, struct file *filp)
1817 {
1818 	struct cache_detail *cd = RPC_I(inode)->private;
1819 
1820 	return content_release(inode, filp, cd);
1821 }
1822 
1823 const struct file_operations content_file_operations_pipefs = {
1824 	.open		= content_open_pipefs,
1825 	.read		= seq_read,
1826 	.llseek		= seq_lseek,
1827 	.release	= content_release_pipefs,
1828 };
1829 
1830 static int open_flush_pipefs(struct inode *inode, struct file *filp)
1831 {
1832 	struct cache_detail *cd = RPC_I(inode)->private;
1833 
1834 	return open_flush(inode, filp, cd);
1835 }
1836 
1837 static int release_flush_pipefs(struct inode *inode, struct file *filp)
1838 {
1839 	struct cache_detail *cd = RPC_I(inode)->private;
1840 
1841 	return release_flush(inode, filp, cd);
1842 }
1843 
1844 static ssize_t read_flush_pipefs(struct file *filp, char __user *buf,
1845 			    size_t count, loff_t *ppos)
1846 {
1847 	struct cache_detail *cd = RPC_I(file_inode(filp))->private;
1848 
1849 	return read_flush(filp, buf, count, ppos, cd);
1850 }
1851 
1852 static ssize_t write_flush_pipefs(struct file *filp,
1853 				  const char __user *buf,
1854 				  size_t count, loff_t *ppos)
1855 {
1856 	struct cache_detail *cd = RPC_I(file_inode(filp))->private;
1857 
1858 	return write_flush(filp, buf, count, ppos, cd);
1859 }
1860 
1861 const struct file_operations cache_flush_operations_pipefs = {
1862 	.open		= open_flush_pipefs,
1863 	.read		= read_flush_pipefs,
1864 	.write		= write_flush_pipefs,
1865 	.release	= release_flush_pipefs,
1866 };
1867 
1868 int sunrpc_cache_register_pipefs(struct dentry *parent,
1869 				 const char *name, umode_t umode,
1870 				 struct cache_detail *cd)
1871 {
1872 	struct dentry *dir = rpc_create_cache_dir(parent, name, umode, cd);
1873 	if (IS_ERR(dir))
1874 		return PTR_ERR(dir);
1875 	cd->pipefs = dir;
1876 	return 0;
1877 }
1878 EXPORT_SYMBOL_GPL(sunrpc_cache_register_pipefs);
1879 
1880 void sunrpc_cache_unregister_pipefs(struct cache_detail *cd)
1881 {
1882 	if (cd->pipefs) {
1883 		rpc_remove_cache_dir(cd->pipefs);
1884 		cd->pipefs = NULL;
1885 	}
1886 }
1887 EXPORT_SYMBOL_GPL(sunrpc_cache_unregister_pipefs);
1888 
1889 void sunrpc_cache_unhash(struct cache_detail *cd, struct cache_head *h)
1890 {
1891 	spin_lock(&cd->hash_lock);
1892 	if (!hlist_unhashed(&h->cache_list)){
1893 		sunrpc_begin_cache_remove_entry(h, cd);
1894 		spin_unlock(&cd->hash_lock);
1895 		sunrpc_end_cache_remove_entry(h, cd);
1896 	} else
1897 		spin_unlock(&cd->hash_lock);
1898 }
1899 EXPORT_SYMBOL_GPL(sunrpc_cache_unhash);
1900