xref: /openbmc/linux/fs/afs/server.c (revision 0f9b4c3ca5fdf3e177266ef994071b1a03f07318)
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /* AFS server record management
3  *
4  * Copyright (C) 2002, 2007 Red Hat, Inc. All Rights Reserved.
5  * Written by David Howells (dhowells@redhat.com)
6  */
7 
8 #include <linux/sched.h>
9 #include <linux/slab.h>
10 #include "afs_fs.h"
11 #include "internal.h"
12 #include "protocol_yfs.h"
13 
14 static unsigned afs_server_gc_delay = 10;	/* Server record timeout in seconds */
15 static atomic_t afs_server_debug_id;
16 
17 static struct afs_server *afs_maybe_use_server(struct afs_server *,
18 					       enum afs_server_trace);
19 static void __afs_put_server(struct afs_net *, struct afs_server *);
20 
21 /*
22  * Find a server by one of its addresses.
23  */
afs_find_server(struct afs_net * net,const struct sockaddr_rxrpc * srx)24 struct afs_server *afs_find_server(struct afs_net *net,
25 				   const struct sockaddr_rxrpc *srx)
26 {
27 	const struct afs_addr_list *alist;
28 	struct afs_server *server = NULL;
29 	unsigned int i;
30 	int seq = 1, diff;
31 
32 	rcu_read_lock();
33 
34 	do {
35 		if (server)
36 			afs_unuse_server_notime(net, server, afs_server_trace_put_find_rsq);
37 		server = NULL;
38 		seq++; /* 2 on the 1st/lockless path, otherwise odd */
39 		read_seqbegin_or_lock(&net->fs_addr_lock, &seq);
40 
41 		if (srx->transport.family == AF_INET6) {
42 			const struct sockaddr_in6 *a = &srx->transport.sin6, *b;
43 			hlist_for_each_entry_rcu(server, &net->fs_addresses6, addr6_link) {
44 				alist = rcu_dereference(server->addresses);
45 				for (i = alist->nr_ipv4; i < alist->nr_addrs; i++) {
46 					b = &alist->addrs[i].transport.sin6;
47 					diff = ((u16 __force)a->sin6_port -
48 						(u16 __force)b->sin6_port);
49 					if (diff == 0)
50 						diff = memcmp(&a->sin6_addr,
51 							      &b->sin6_addr,
52 							      sizeof(struct in6_addr));
53 					if (diff == 0)
54 						goto found;
55 				}
56 			}
57 		} else {
58 			const struct sockaddr_in *a = &srx->transport.sin, *b;
59 			hlist_for_each_entry_rcu(server, &net->fs_addresses4, addr4_link) {
60 				alist = rcu_dereference(server->addresses);
61 				for (i = 0; i < alist->nr_ipv4; i++) {
62 					b = &alist->addrs[i].transport.sin;
63 					diff = ((u16 __force)a->sin_port -
64 						(u16 __force)b->sin_port);
65 					if (diff == 0)
66 						diff = ((u32 __force)a->sin_addr.s_addr -
67 							(u32 __force)b->sin_addr.s_addr);
68 					if (diff == 0)
69 						goto found;
70 				}
71 			}
72 		}
73 
74 		server = NULL;
75 		continue;
76 	found:
77 		server = afs_maybe_use_server(server, afs_server_trace_get_by_addr);
78 
79 	} while (need_seqretry(&net->fs_addr_lock, seq));
80 
81 	done_seqretry(&net->fs_addr_lock, seq);
82 
83 	rcu_read_unlock();
84 	return server;
85 }
86 
87 /*
88  * Look up a server by its UUID and mark it active.
89  */
afs_find_server_by_uuid(struct afs_net * net,const uuid_t * uuid)90 struct afs_server *afs_find_server_by_uuid(struct afs_net *net, const uuid_t *uuid)
91 {
92 	struct afs_server *server = NULL;
93 	struct rb_node *p;
94 	int diff, seq = 1;
95 
96 	_enter("%pU", uuid);
97 
98 	do {
99 		/* Unfortunately, rbtree walking doesn't give reliable results
100 		 * under just the RCU read lock, so we have to check for
101 		 * changes.
102 		 */
103 		if (server)
104 			afs_unuse_server(net, server, afs_server_trace_put_uuid_rsq);
105 		server = NULL;
106 		seq++; /* 2 on the 1st/lockless path, otherwise odd */
107 		read_seqbegin_or_lock(&net->fs_lock, &seq);
108 
109 		p = net->fs_servers.rb_node;
110 		while (p) {
111 			server = rb_entry(p, struct afs_server, uuid_rb);
112 
113 			diff = memcmp(uuid, &server->uuid, sizeof(*uuid));
114 			if (diff < 0) {
115 				p = p->rb_left;
116 			} else if (diff > 0) {
117 				p = p->rb_right;
118 			} else {
119 				afs_use_server(server, afs_server_trace_get_by_uuid);
120 				break;
121 			}
122 
123 			server = NULL;
124 		}
125 	} while (need_seqretry(&net->fs_lock, seq));
126 
127 	done_seqretry(&net->fs_lock, seq);
128 
129 	_leave(" = %p", server);
130 	return server;
131 }
132 
133 /*
134  * Install a server record in the namespace tree.  If there's a clash, we stick
135  * it into a list anchored on whichever afs_server struct is actually in the
136  * tree.
137  */
afs_install_server(struct afs_cell * cell,struct afs_server * candidate)138 static struct afs_server *afs_install_server(struct afs_cell *cell,
139 					     struct afs_server *candidate)
140 {
141 	const struct afs_addr_list *alist;
142 	struct afs_server *server, *next;
143 	struct afs_net *net = cell->net;
144 	struct rb_node **pp, *p;
145 	int diff;
146 
147 	_enter("%p", candidate);
148 
149 	write_seqlock(&net->fs_lock);
150 
151 	/* Firstly install the server in the UUID lookup tree */
152 	pp = &net->fs_servers.rb_node;
153 	p = NULL;
154 	while (*pp) {
155 		p = *pp;
156 		_debug("- consider %p", p);
157 		server = rb_entry(p, struct afs_server, uuid_rb);
158 		diff = memcmp(&candidate->uuid, &server->uuid, sizeof(uuid_t));
159 		if (diff < 0) {
160 			pp = &(*pp)->rb_left;
161 		} else if (diff > 0) {
162 			pp = &(*pp)->rb_right;
163 		} else {
164 			if (server->cell == cell)
165 				goto exists;
166 
167 			/* We have the same UUID representing servers in
168 			 * different cells.  Append the new server to the list.
169 			 */
170 			for (;;) {
171 				next = rcu_dereference_protected(
172 					server->uuid_next,
173 					lockdep_is_held(&net->fs_lock.lock));
174 				if (!next)
175 					break;
176 				server = next;
177 			}
178 			rcu_assign_pointer(server->uuid_next, candidate);
179 			candidate->uuid_prev = server;
180 			server = candidate;
181 			goto added_dup;
182 		}
183 	}
184 
185 	server = candidate;
186 	rb_link_node(&server->uuid_rb, p, pp);
187 	rb_insert_color(&server->uuid_rb, &net->fs_servers);
188 	hlist_add_head_rcu(&server->proc_link, &net->fs_proc);
189 
190 added_dup:
191 	write_seqlock(&net->fs_addr_lock);
192 	alist = rcu_dereference_protected(server->addresses,
193 					  lockdep_is_held(&net->fs_addr_lock.lock));
194 
195 	/* Secondly, if the server has any IPv4 and/or IPv6 addresses, install
196 	 * it in the IPv4 and/or IPv6 reverse-map lists.
197 	 *
198 	 * TODO: For speed we want to use something other than a flat list
199 	 * here; even sorting the list in terms of lowest address would help a
200 	 * bit, but anything we might want to do gets messy and memory
201 	 * intensive.
202 	 */
203 	if (alist->nr_ipv4 > 0)
204 		hlist_add_head_rcu(&server->addr4_link, &net->fs_addresses4);
205 	if (alist->nr_addrs > alist->nr_ipv4)
206 		hlist_add_head_rcu(&server->addr6_link, &net->fs_addresses6);
207 
208 	write_sequnlock(&net->fs_addr_lock);
209 
210 exists:
211 	afs_get_server(server, afs_server_trace_get_install);
212 	write_sequnlock(&net->fs_lock);
213 	return server;
214 }
215 
216 /*
217  * Allocate a new server record and mark it active.
218  */
afs_alloc_server(struct afs_cell * cell,const uuid_t * uuid,struct afs_addr_list * alist)219 static struct afs_server *afs_alloc_server(struct afs_cell *cell,
220 					   const uuid_t *uuid,
221 					   struct afs_addr_list *alist)
222 {
223 	struct afs_server *server;
224 	struct afs_net *net = cell->net;
225 
226 	_enter("");
227 
228 	server = kzalloc(sizeof(struct afs_server), GFP_KERNEL);
229 	if (!server)
230 		goto enomem;
231 
232 	refcount_set(&server->ref, 1);
233 	atomic_set(&server->active, 1);
234 	server->debug_id = atomic_inc_return(&afs_server_debug_id);
235 	RCU_INIT_POINTER(server->addresses, alist);
236 	server->addr_version = alist->version;
237 	server->uuid = *uuid;
238 	rwlock_init(&server->fs_lock);
239 	INIT_LIST_HEAD(&server->volumes);
240 	INIT_WORK(&server->initcb_work, afs_server_init_callback_work);
241 	init_waitqueue_head(&server->probe_wq);
242 	INIT_LIST_HEAD(&server->probe_link);
243 	spin_lock_init(&server->probe_lock);
244 	server->cell = cell;
245 	server->rtt = UINT_MAX;
246 
247 	afs_inc_servers_outstanding(net);
248 	trace_afs_server(server->debug_id, 1, 1, afs_server_trace_alloc);
249 	_leave(" = %p", server);
250 	return server;
251 
252 enomem:
253 	_leave(" = NULL [nomem]");
254 	return NULL;
255 }
256 
257 /*
258  * Look up an address record for a server
259  */
afs_vl_lookup_addrs(struct afs_cell * cell,struct key * key,const uuid_t * uuid)260 static struct afs_addr_list *afs_vl_lookup_addrs(struct afs_cell *cell,
261 						 struct key *key, const uuid_t *uuid)
262 {
263 	struct afs_vl_cursor vc;
264 	struct afs_addr_list *alist = NULL;
265 	int ret;
266 
267 	ret = -ERESTARTSYS;
268 	if (afs_begin_vlserver_operation(&vc, cell, key)) {
269 		while (afs_select_vlserver(&vc)) {
270 			if (test_bit(AFS_VLSERVER_FL_IS_YFS, &vc.server->flags))
271 				alist = afs_yfsvl_get_endpoints(&vc, uuid);
272 			else
273 				alist = afs_vl_get_addrs_u(&vc, uuid);
274 		}
275 
276 		ret = afs_end_vlserver_operation(&vc);
277 	}
278 
279 	return ret < 0 ? ERR_PTR(ret) : alist;
280 }
281 
282 /*
283  * Get or create a fileserver record.
284  */
afs_lookup_server(struct afs_cell * cell,struct key * key,const uuid_t * uuid,u32 addr_version)285 struct afs_server *afs_lookup_server(struct afs_cell *cell, struct key *key,
286 				     const uuid_t *uuid, u32 addr_version)
287 {
288 	struct afs_addr_list *alist;
289 	struct afs_server *server, *candidate;
290 
291 	_enter("%p,%pU", cell->net, uuid);
292 
293 	server = afs_find_server_by_uuid(cell->net, uuid);
294 	if (server) {
295 		if (server->addr_version != addr_version)
296 			set_bit(AFS_SERVER_FL_NEEDS_UPDATE, &server->flags);
297 		return server;
298 	}
299 
300 	alist = afs_vl_lookup_addrs(cell, key, uuid);
301 	if (IS_ERR(alist))
302 		return ERR_CAST(alist);
303 
304 	candidate = afs_alloc_server(cell, uuid, alist);
305 	if (!candidate) {
306 		afs_put_addrlist(alist);
307 		return ERR_PTR(-ENOMEM);
308 	}
309 
310 	server = afs_install_server(cell, candidate);
311 	if (server != candidate) {
312 		afs_put_addrlist(alist);
313 		kfree(candidate);
314 	} else {
315 		/* Immediately dispatch an asynchronous probe to each interface
316 		 * on the fileserver.  This will make sure the repeat-probing
317 		 * service is started.
318 		 */
319 		afs_fs_probe_fileserver(cell->net, server, key, true);
320 	}
321 
322 	return server;
323 }
324 
325 /*
326  * Set the server timer to fire after a given delay, assuming it's not already
327  * set for an earlier time.
328  */
afs_set_server_timer(struct afs_net * net,time64_t delay)329 static void afs_set_server_timer(struct afs_net *net, time64_t delay)
330 {
331 	if (net->live) {
332 		afs_inc_servers_outstanding(net);
333 		if (timer_reduce(&net->fs_timer, jiffies + delay * HZ))
334 			afs_dec_servers_outstanding(net);
335 	}
336 }
337 
338 /*
339  * Server management timer.  We have an increment on fs_outstanding that we
340  * need to pass along to the work item.
341  */
afs_servers_timer(struct timer_list * timer)342 void afs_servers_timer(struct timer_list *timer)
343 {
344 	struct afs_net *net = container_of(timer, struct afs_net, fs_timer);
345 
346 	_enter("");
347 	if (!queue_work(afs_wq, &net->fs_manager))
348 		afs_dec_servers_outstanding(net);
349 }
350 
351 /*
352  * Get a reference on a server object.
353  */
afs_get_server(struct afs_server * server,enum afs_server_trace reason)354 struct afs_server *afs_get_server(struct afs_server *server,
355 				  enum afs_server_trace reason)
356 {
357 	unsigned int a;
358 	int r;
359 
360 	__refcount_inc(&server->ref, &r);
361 	a = atomic_read(&server->active);
362 	trace_afs_server(server->debug_id, r + 1, a, reason);
363 	return server;
364 }
365 
366 /*
367  * Try to get a reference on a server object.
368  */
afs_maybe_use_server(struct afs_server * server,enum afs_server_trace reason)369 static struct afs_server *afs_maybe_use_server(struct afs_server *server,
370 					       enum afs_server_trace reason)
371 {
372 	unsigned int a;
373 	int r;
374 
375 	if (!__refcount_inc_not_zero(&server->ref, &r))
376 		return NULL;
377 
378 	a = atomic_inc_return(&server->active);
379 	trace_afs_server(server->debug_id, r + 1, a, reason);
380 	return server;
381 }
382 
383 /*
384  * Get an active count on a server object.
385  */
afs_use_server(struct afs_server * server,enum afs_server_trace reason)386 struct afs_server *afs_use_server(struct afs_server *server, enum afs_server_trace reason)
387 {
388 	unsigned int a;
389 	int r;
390 
391 	__refcount_inc(&server->ref, &r);
392 	a = atomic_inc_return(&server->active);
393 
394 	trace_afs_server(server->debug_id, r + 1, a, reason);
395 	return server;
396 }
397 
398 /*
399  * Release a reference on a server record.
400  */
afs_put_server(struct afs_net * net,struct afs_server * server,enum afs_server_trace reason)401 void afs_put_server(struct afs_net *net, struct afs_server *server,
402 		    enum afs_server_trace reason)
403 {
404 	unsigned int a, debug_id = server->debug_id;
405 	bool zero;
406 	int r;
407 
408 	if (!server)
409 		return;
410 
411 	a = atomic_read(&server->active);
412 	zero = __refcount_dec_and_test(&server->ref, &r);
413 	trace_afs_server(debug_id, r - 1, a, reason);
414 	if (unlikely(zero))
415 		__afs_put_server(net, server);
416 }
417 
418 /*
419  * Drop an active count on a server object without updating the last-unused
420  * time.
421  */
afs_unuse_server_notime(struct afs_net * net,struct afs_server * server,enum afs_server_trace reason)422 void afs_unuse_server_notime(struct afs_net *net, struct afs_server *server,
423 			     enum afs_server_trace reason)
424 {
425 	if (server) {
426 		unsigned int active = atomic_dec_return(&server->active);
427 
428 		if (active == 0)
429 			afs_set_server_timer(net, afs_server_gc_delay);
430 		afs_put_server(net, server, reason);
431 	}
432 }
433 
434 /*
435  * Drop an active count on a server object.
436  */
afs_unuse_server(struct afs_net * net,struct afs_server * server,enum afs_server_trace reason)437 void afs_unuse_server(struct afs_net *net, struct afs_server *server,
438 		      enum afs_server_trace reason)
439 {
440 	if (server) {
441 		server->unuse_time = ktime_get_real_seconds();
442 		afs_unuse_server_notime(net, server, reason);
443 	}
444 }
445 
afs_server_rcu(struct rcu_head * rcu)446 static void afs_server_rcu(struct rcu_head *rcu)
447 {
448 	struct afs_server *server = container_of(rcu, struct afs_server, rcu);
449 
450 	trace_afs_server(server->debug_id, refcount_read(&server->ref),
451 			 atomic_read(&server->active), afs_server_trace_free);
452 	afs_put_addrlist(rcu_access_pointer(server->addresses));
453 	kfree(server);
454 }
455 
__afs_put_server(struct afs_net * net,struct afs_server * server)456 static void __afs_put_server(struct afs_net *net, struct afs_server *server)
457 {
458 	call_rcu(&server->rcu, afs_server_rcu);
459 	afs_dec_servers_outstanding(net);
460 }
461 
afs_give_up_callbacks(struct afs_net * net,struct afs_server * server)462 static void afs_give_up_callbacks(struct afs_net *net, struct afs_server *server)
463 {
464 	struct afs_addr_list *alist = rcu_access_pointer(server->addresses);
465 	struct afs_addr_cursor ac = {
466 		.alist	= alist,
467 		.index	= alist->preferred,
468 		.error	= 0,
469 	};
470 
471 	afs_fs_give_up_all_callbacks(net, server, &ac, NULL);
472 }
473 
474 /*
475  * destroy a dead server
476  */
afs_destroy_server(struct afs_net * net,struct afs_server * server)477 static void afs_destroy_server(struct afs_net *net, struct afs_server *server)
478 {
479 	if (test_bit(AFS_SERVER_FL_MAY_HAVE_CB, &server->flags))
480 		afs_give_up_callbacks(net, server);
481 
482 	flush_work(&server->initcb_work);
483 	afs_put_server(net, server, afs_server_trace_destroy);
484 }
485 
486 /*
487  * Garbage collect any expired servers.
488  */
afs_gc_servers(struct afs_net * net,struct afs_server * gc_list)489 static void afs_gc_servers(struct afs_net *net, struct afs_server *gc_list)
490 {
491 	struct afs_server *server, *next, *prev;
492 	int active;
493 
494 	while ((server = gc_list)) {
495 		gc_list = server->gc_next;
496 
497 		write_seqlock(&net->fs_lock);
498 
499 		active = atomic_read(&server->active);
500 		if (active == 0) {
501 			trace_afs_server(server->debug_id, refcount_read(&server->ref),
502 					 active, afs_server_trace_gc);
503 			next = rcu_dereference_protected(
504 				server->uuid_next, lockdep_is_held(&net->fs_lock.lock));
505 			prev = server->uuid_prev;
506 			if (!prev) {
507 				/* The one at the front is in the tree */
508 				if (!next) {
509 					rb_erase(&server->uuid_rb, &net->fs_servers);
510 				} else {
511 					rb_replace_node_rcu(&server->uuid_rb,
512 							    &next->uuid_rb,
513 							    &net->fs_servers);
514 					next->uuid_prev = NULL;
515 				}
516 			} else {
517 				/* This server is not at the front */
518 				rcu_assign_pointer(prev->uuid_next, next);
519 				if (next)
520 					next->uuid_prev = prev;
521 			}
522 
523 			list_del(&server->probe_link);
524 			hlist_del_rcu(&server->proc_link);
525 			if (!hlist_unhashed(&server->addr4_link))
526 				hlist_del_rcu(&server->addr4_link);
527 			if (!hlist_unhashed(&server->addr6_link))
528 				hlist_del_rcu(&server->addr6_link);
529 		}
530 		write_sequnlock(&net->fs_lock);
531 
532 		if (active == 0)
533 			afs_destroy_server(net, server);
534 	}
535 }
536 
537 /*
538  * Manage the records of servers known to be within a network namespace.  This
539  * includes garbage collecting unused servers.
540  *
541  * Note also that we were given an increment on net->servers_outstanding by
542  * whoever queued us that we need to deal with before returning.
543  */
afs_manage_servers(struct work_struct * work)544 void afs_manage_servers(struct work_struct *work)
545 {
546 	struct afs_net *net = container_of(work, struct afs_net, fs_manager);
547 	struct afs_server *gc_list = NULL;
548 	struct rb_node *cursor;
549 	time64_t now = ktime_get_real_seconds(), next_manage = TIME64_MAX;
550 	bool purging = !net->live;
551 
552 	_enter("");
553 
554 	/* Trawl the server list looking for servers that have expired from
555 	 * lack of use.
556 	 */
557 	read_seqlock_excl(&net->fs_lock);
558 
559 	for (cursor = rb_first(&net->fs_servers); cursor; cursor = rb_next(cursor)) {
560 		struct afs_server *server =
561 			rb_entry(cursor, struct afs_server, uuid_rb);
562 		int active = atomic_read(&server->active);
563 
564 		_debug("manage %pU %u", &server->uuid, active);
565 
566 		if (purging) {
567 			trace_afs_server(server->debug_id, refcount_read(&server->ref),
568 					 active, afs_server_trace_purging);
569 			if (active != 0)
570 				pr_notice("Can't purge s=%08x\n", server->debug_id);
571 		}
572 
573 		if (active == 0) {
574 			time64_t expire_at = server->unuse_time;
575 
576 			if (!test_bit(AFS_SERVER_FL_VL_FAIL, &server->flags) &&
577 			    !test_bit(AFS_SERVER_FL_NOT_FOUND, &server->flags))
578 				expire_at += afs_server_gc_delay;
579 			if (purging || expire_at <= now) {
580 				server->gc_next = gc_list;
581 				gc_list = server;
582 			} else if (expire_at < next_manage) {
583 				next_manage = expire_at;
584 			}
585 		}
586 	}
587 
588 	read_sequnlock_excl(&net->fs_lock);
589 
590 	/* Update the timer on the way out.  We have to pass an increment on
591 	 * servers_outstanding in the namespace that we are in to the timer or
592 	 * the work scheduler.
593 	 */
594 	if (!purging && next_manage < TIME64_MAX) {
595 		now = ktime_get_real_seconds();
596 
597 		if (next_manage - now <= 0) {
598 			if (queue_work(afs_wq, &net->fs_manager))
599 				afs_inc_servers_outstanding(net);
600 		} else {
601 			afs_set_server_timer(net, next_manage - now);
602 		}
603 	}
604 
605 	afs_gc_servers(net, gc_list);
606 
607 	afs_dec_servers_outstanding(net);
608 	_leave(" [%d]", atomic_read(&net->servers_outstanding));
609 }
610 
afs_queue_server_manager(struct afs_net * net)611 static void afs_queue_server_manager(struct afs_net *net)
612 {
613 	afs_inc_servers_outstanding(net);
614 	if (!queue_work(afs_wq, &net->fs_manager))
615 		afs_dec_servers_outstanding(net);
616 }
617 
618 /*
619  * Purge list of servers.
620  */
afs_purge_servers(struct afs_net * net)621 void afs_purge_servers(struct afs_net *net)
622 {
623 	_enter("");
624 
625 	if (del_timer_sync(&net->fs_timer))
626 		afs_dec_servers_outstanding(net);
627 
628 	afs_queue_server_manager(net);
629 
630 	_debug("wait");
631 	atomic_dec(&net->servers_outstanding);
632 	wait_var_event(&net->servers_outstanding,
633 		       !atomic_read(&net->servers_outstanding));
634 	_leave("");
635 }
636 
637 /*
638  * Get an update for a server's address list.
639  */
afs_update_server_record(struct afs_operation * op,struct afs_server * server)640 static noinline bool afs_update_server_record(struct afs_operation *op,
641 					      struct afs_server *server)
642 {
643 	struct afs_addr_list *alist, *discard;
644 
645 	_enter("");
646 
647 	trace_afs_server(server->debug_id, refcount_read(&server->ref),
648 			 atomic_read(&server->active),
649 			 afs_server_trace_update);
650 
651 	alist = afs_vl_lookup_addrs(op->volume->cell, op->key, &server->uuid);
652 	if (IS_ERR(alist)) {
653 		if ((PTR_ERR(alist) == -ERESTARTSYS ||
654 		     PTR_ERR(alist) == -EINTR) &&
655 		    (op->flags & AFS_OPERATION_UNINTR) &&
656 		    server->addresses) {
657 			_leave(" = t [intr]");
658 			return true;
659 		}
660 		op->error = PTR_ERR(alist);
661 		_leave(" = f [%d]", op->error);
662 		return false;
663 	}
664 
665 	discard = alist;
666 	if (server->addr_version != alist->version) {
667 		write_lock(&server->fs_lock);
668 		discard = rcu_dereference_protected(server->addresses,
669 						    lockdep_is_held(&server->fs_lock));
670 		rcu_assign_pointer(server->addresses, alist);
671 		server->addr_version = alist->version;
672 		write_unlock(&server->fs_lock);
673 	}
674 
675 	afs_put_addrlist(discard);
676 	_leave(" = t");
677 	return true;
678 }
679 
680 /*
681  * See if a server's address list needs updating.
682  */
afs_check_server_record(struct afs_operation * op,struct afs_server * server)683 bool afs_check_server_record(struct afs_operation *op, struct afs_server *server)
684 {
685 	bool success;
686 	int ret, retries = 0;
687 
688 	_enter("");
689 
690 	ASSERT(server);
691 
692 retry:
693 	if (test_bit(AFS_SERVER_FL_UPDATING, &server->flags))
694 		goto wait;
695 	if (test_bit(AFS_SERVER_FL_NEEDS_UPDATE, &server->flags))
696 		goto update;
697 	_leave(" = t [good]");
698 	return true;
699 
700 update:
701 	if (!test_and_set_bit_lock(AFS_SERVER_FL_UPDATING, &server->flags)) {
702 		clear_bit(AFS_SERVER_FL_NEEDS_UPDATE, &server->flags);
703 		success = afs_update_server_record(op, server);
704 		clear_bit_unlock(AFS_SERVER_FL_UPDATING, &server->flags);
705 		wake_up_bit(&server->flags, AFS_SERVER_FL_UPDATING);
706 		_leave(" = %d", success);
707 		return success;
708 	}
709 
710 wait:
711 	ret = wait_on_bit(&server->flags, AFS_SERVER_FL_UPDATING,
712 			  (op->flags & AFS_OPERATION_UNINTR) ?
713 			  TASK_UNINTERRUPTIBLE : TASK_INTERRUPTIBLE);
714 	if (ret == -ERESTARTSYS) {
715 		op->error = ret;
716 		_leave(" = f [intr]");
717 		return false;
718 	}
719 
720 	retries++;
721 	if (retries == 4) {
722 		_leave(" = f [stale]");
723 		ret = -ESTALE;
724 		return false;
725 	}
726 	goto retry;
727 }
728