xref: /linux/net/sunrpc/svc.c (revision d141ec2825b4d3ec52f27c43bdd864090159273a)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * linux/net/sunrpc/svc.c
4  *
5  * High-level RPC service routines
6  *
7  * Copyright (C) 1995, 1996 Olaf Kirch <okir@monad.swb.de>
8  *
9  * Multiple threads pools and NUMAisation
10  * Copyright (c) 2006 Silicon Graphics, Inc.
11  * by Greg Banks <gnb@melbourne.sgi.com>
12  */
13 
14 #include <linux/linkage.h>
15 #include <linux/sched/signal.h>
16 #include <linux/errno.h>
17 #include <linux/net.h>
18 #include <linux/in.h>
19 #include <linux/mm.h>
20 #include <linux/interrupt.h>
21 #include <linux/module.h>
22 #include <linux/kthread.h>
23 #include <linux/slab.h>
24 
25 #include <linux/sunrpc/types.h>
26 #include <linux/sunrpc/xdr.h>
27 #include <linux/sunrpc/stats.h>
28 #include <linux/sunrpc/svcsock.h>
29 #include <linux/sunrpc/clnt.h>
30 #include <linux/sunrpc/bc_xprt.h>
31 
32 #include <trace/events/sunrpc.h>
33 
34 #include "fail.h"
35 #include "sunrpc.h"
36 
37 #define RPCDBG_FACILITY	RPCDBG_SVCDSP
38 
39 static void svc_unregister(const struct svc_serv *serv, struct net *net);
40 
41 /*
42  * Structure for mapping nodes to pools and vice versa.
43  * Setup once during sunrpc initialisation.
44  */
45 
46 struct svc_pool_map {
47 	int count;			/* How many svc_servs use us */
48 	unsigned int npools;
49 	unsigned int *pool_to;		/* maps pool id to node */
50 	unsigned int *to_pool;		/* maps node to pool id */
51 };
52 
53 static struct svc_pool_map svc_pool_map;
54 
55 static DEFINE_MUTEX(svc_pool_map_mutex);/* protects svc_pool_map.count only */
56 
57 /*
58  * Pool modes that were historically accepted. They no longer select
59  * anything: the pool mode is always pernode. The names are retained
60  * only so that writing a previously-valid value still succeeds.
61  */
62 static const char * const pool_mode_names[] = {
63 	"auto", "global", "percpu", "pernode",
64 };
65 
sunrpc_set_pool_mode(const char * val)66 int sunrpc_set_pool_mode(const char *val)
67 {
68 	int idx = sysfs_match_string(pool_mode_names, val);
69 
70 	return idx < 0 ? idx : 0;
71 }
72 EXPORT_SYMBOL(sunrpc_set_pool_mode);
73 
74 /**
75  * sunrpc_get_pool_mode - get the current pool_mode for the host
76  * @buf: where to write the current pool_mode
77  * @size: size of @buf
78  *
79  * Write the pool_mode string to @buf. Returns the number of characters
80  * written to @buf (a'la snprintf()).
81  */
82 int
sunrpc_get_pool_mode(char * buf,size_t size)83 sunrpc_get_pool_mode(char *buf, size_t size)
84 {
85 	return snprintf(buf, size, "pernode");
86 }
87 EXPORT_SYMBOL(sunrpc_get_pool_mode);
88 
89 static int
param_set_pool_mode(const char * val,const struct kernel_param * kp)90 param_set_pool_mode(const char *val, const struct kernel_param *kp)
91 {
92 	pr_notice_once("sunrpc: the pool_mode module parameter is deprecated and no longer has any effect; the pool mode is always 'pernode'\n");
93 	return sunrpc_set_pool_mode(val);
94 }
95 
96 static int
param_get_pool_mode(char * buf,const struct kernel_param * kp)97 param_get_pool_mode(char *buf, const struct kernel_param *kp)
98 {
99 	return sysfs_emit(buf, "pernode\n");
100 }
101 
102 module_param_call(pool_mode, param_set_pool_mode, param_get_pool_mode,
103 		  NULL, 0644);
104 
105 /*
106  * Allocate the to_pool[] and pool_to[] arrays.
107  * Returns 0 on success or an errno.
108  */
109 static int
svc_pool_map_alloc_arrays(struct svc_pool_map * m,unsigned int maxpools)110 svc_pool_map_alloc_arrays(struct svc_pool_map *m, unsigned int maxpools)
111 {
112 	m->to_pool = kcalloc(maxpools, sizeof(unsigned int), GFP_KERNEL);
113 	if (!m->to_pool)
114 		goto fail;
115 	m->pool_to = kcalloc(maxpools, sizeof(unsigned int), GFP_KERNEL);
116 	if (!m->pool_to)
117 		goto fail_free;
118 
119 	return 0;
120 
121 fail_free:
122 	kfree(m->to_pool);
123 	m->to_pool = NULL;
124 fail:
125 	return -ENOMEM;
126 }
127 
128 /*
129  * Initialise the pool map for one pool per NUMA node.
130  * Returns number of pools or <0 on error.
131  */
132 static int
svc_pool_map_init_pernode(struct svc_pool_map * m)133 svc_pool_map_init_pernode(struct svc_pool_map *m)
134 {
135 	unsigned int maxpools = nr_node_ids;
136 	unsigned int pidx = 0;
137 	unsigned int node;
138 	int err;
139 
140 	err = svc_pool_map_alloc_arrays(m, maxpools);
141 	if (err)
142 		return err;
143 
144 	for_each_node_with_cpus(node) {
145 		/* some architectures (e.g. SN2) have cpuless nodes */
146 		BUG_ON(pidx > maxpools);
147 		m->to_pool[node] = pidx;
148 		m->pool_to[pidx] = node;
149 		pidx++;
150 	}
151 	/* nodes brought online later all get mapped to pool0, sorry */
152 
153 	return pidx;
154 }
155 
156 
157 /*
158  * Add a reference to the global map of nodes to pools (and
159  * vice versa) if pools are in use.
160  * Initialise the map if we're the first user.
161  * Returns the number of pools, or 0 on failure.
162  */
163 static unsigned int
svc_pool_map_get(void)164 svc_pool_map_get(void)
165 {
166 	struct svc_pool_map *m = &svc_pool_map;
167 	int npools;
168 
169 	mutex_lock(&svc_pool_map_mutex);
170 	if (m->count++) {
171 		mutex_unlock(&svc_pool_map_mutex);
172 		return m->npools;
173 	}
174 
175 	npools = svc_pool_map_init_pernode(m);
176 	if (npools <= 0) {
177 		m->count = 0;
178 		mutex_unlock(&svc_pool_map_mutex);
179 		return 0;
180 	}
181 	m->npools = npools;
182 	mutex_unlock(&svc_pool_map_mutex);
183 	return npools;
184 }
185 
186 /*
187  * Drop a reference to the global map of nodes to pools.
188  * When the last reference is dropped, the map data is
189  * freed; this allows the sysadmin to change the pool.
190  */
191 static void
svc_pool_map_put(void)192 svc_pool_map_put(void)
193 {
194 	struct svc_pool_map *m = &svc_pool_map;
195 
196 	mutex_lock(&svc_pool_map_mutex);
197 	if (!--m->count) {
198 		kfree(m->to_pool);
199 		m->to_pool = NULL;
200 		kfree(m->pool_to);
201 		m->pool_to = NULL;
202 		m->npools = 0;
203 	}
204 	mutex_unlock(&svc_pool_map_mutex);
205 }
206 
svc_pool_map_get_node(unsigned int pidx)207 static int svc_pool_map_get_node(unsigned int pidx)
208 {
209 	const struct svc_pool_map *m = &svc_pool_map;
210 
211 	return m->pool_to[pidx];
212 }
213 
214 /*
215  * Set the given thread's cpus_allowed mask so that it
216  * will only run on cpus in the given pool.
217  */
218 static inline void
svc_pool_map_set_cpumask(struct task_struct * task,unsigned int pidx)219 svc_pool_map_set_cpumask(struct task_struct *task, unsigned int pidx)
220 {
221 	struct svc_pool_map *m = &svc_pool_map;
222 	unsigned int node = m->pool_to[pidx];
223 
224 	/*
225 	 * The caller checks for more than one pool, which
226 	 * implies that we've been initialized.
227 	 */
228 	WARN_ON_ONCE(m->count == 0);
229 	if (m->count == 0)
230 		return;
231 
232 	set_cpus_allowed_ptr(task, cpumask_of_node(node));
233 }
234 
235 /**
236  * svc_serv_nrpools - number of thread pools backing a service
237  * @serv: An RPC service
238  *
239  * Pooled services all share the global svc_pool_map, so their pool count
240  * is svc_pool_map.npools. Unpooled services have a single pool. Reading
241  * npools without svc_pool_map_mutex is safe: a pooled service holds a map
242  * reference for its whole lifetime, so npools is stable once set.
243  *
244  * Return value:
245  *   The number of pools in @serv
246  */
svc_serv_nrpools(const struct svc_serv * serv)247 unsigned int svc_serv_nrpools(const struct svc_serv *serv)
248 {
249 	return serv->sv_is_pooled ? svc_pool_map.npools : 1;
250 }
251 EXPORT_SYMBOL_GPL(svc_serv_nrpools);
252 
253 /**
254  * svc_pool_for_cpu - Select pool to run a thread on this cpu
255  * @serv: An RPC service
256  *
257  * Use the active CPU and the svc_pool_map to select the svc thread
258  * pool to use. Once initialized, the svc_pool_map does not change.
259  *
260  * Return value:
261  *   A pointer to an svc_pool
262  */
svc_pool_for_cpu(struct svc_serv * serv)263 struct svc_pool *svc_pool_for_cpu(struct svc_serv *serv)
264 {
265 	unsigned int nrpools = svc_serv_nrpools(serv);
266 	struct svc_pool_map *m = &svc_pool_map;
267 	unsigned int pidx, i;
268 
269 	if (nrpools <= 1)
270 		return serv->sv_pools;
271 
272 	/*
273 	 * It's possible to have a pool with no threads. Userland can just set
274 	 * things up this way directly. Also, when threads are autodistributed
275 	 * they are spread evenly across the pools, but when there are fewer
276 	 * threads than pools some pools can end up with none.
277 	 *
278 	 * A transport enqueued on a threadless pool would never be picked up,
279 	 * since each thread only services its own pool. Fall back to the next
280 	 * populated pool, trading NUMA locality for a guarantee that the
281 	 * transport is serviced.
282 	 */
283 	pidx = m->to_pool[cpu_to_node(raw_smp_processor_id())];
284 	for (i = 0; i < nrpools; i++) {
285 		struct svc_pool *pool = &serv->sv_pools[pidx];
286 
287 		/* This is set under the service mutex and rarely ever
288 		 * changes. A data race here is harmless.
289 		 */
290 		if (data_race(pool->sp_nrthreads))
291 			return pool;
292 
293 		if (++pidx >= nrpools)
294 			pidx = 0;
295 	}
296 
297 	/* No pool has any threads; nothing can service the transport. */
298 	return &serv->sv_pools[pidx];
299 }
300 
svc_rpcb_setup(struct svc_serv * serv,struct net * net)301 static int svc_rpcb_setup(struct svc_serv *serv, struct net *net)
302 {
303 	int err;
304 
305 	err = rpcb_create_local(net);
306 	if (err)
307 		return err;
308 
309 	/* Remove any stale portmap registrations */
310 	svc_unregister(serv, net);
311 	return 0;
312 }
313 
svc_rpcb_cleanup(struct svc_serv * serv,struct net * net)314 void svc_rpcb_cleanup(struct svc_serv *serv, struct net *net)
315 {
316 	svc_unregister(serv, net);
317 	rpcb_put_local(net);
318 }
319 
svc_uses_rpcbind(struct svc_serv * serv)320 static int svc_uses_rpcbind(struct svc_serv *serv)
321 {
322 	unsigned int		p, i;
323 
324 	for (p = 0; p < serv->sv_nprogs; p++) {
325 		struct svc_program *progp = &serv->sv_programs[p];
326 
327 		for (i = 0; i < progp->pg_nvers; i++) {
328 			if (progp->pg_vers[i] == NULL)
329 				continue;
330 			if (!progp->pg_vers[i]->vs_hidden)
331 				return 1;
332 		}
333 	}
334 
335 	return 0;
336 }
337 
svc_bind(struct svc_serv * serv,struct net * net)338 int svc_bind(struct svc_serv *serv, struct net *net)
339 {
340 	if (!svc_uses_rpcbind(serv))
341 		return 0;
342 	return svc_rpcb_setup(serv, net);
343 }
344 EXPORT_SYMBOL_GPL(svc_bind);
345 
346 #if defined(CONFIG_SUNRPC_BACKCHANNEL)
347 static void
__svc_init_bc(struct svc_serv * serv)348 __svc_init_bc(struct svc_serv *serv)
349 {
350 	lwq_init(&serv->sv_cb_list);
351 }
352 #else
353 static void
__svc_init_bc(struct svc_serv * serv)354 __svc_init_bc(struct svc_serv *serv)
355 {
356 }
357 #endif
358 
svc_pool_init_counters(struct svc_pool * pool)359 static int svc_pool_init_counters(struct svc_pool *pool)
360 {
361 	int err;
362 
363 	err = percpu_counter_init(&pool->sp_messages_arrived, 0, GFP_KERNEL);
364 	if (err)
365 		return err;
366 	err = percpu_counter_init(&pool->sp_sockets_queued, 0, GFP_KERNEL);
367 	if (err)
368 		goto err_sockets;
369 	err = percpu_counter_init(&pool->sp_threads_woken, 0, GFP_KERNEL);
370 	if (err)
371 		goto err_threads;
372 	return 0;
373 
374 err_threads:
375 	percpu_counter_destroy(&pool->sp_sockets_queued);
376 err_sockets:
377 	percpu_counter_destroy(&pool->sp_messages_arrived);
378 	return err;
379 }
380 
svc_pool_destroy_counters(struct svc_pool * pool)381 static void svc_pool_destroy_counters(struct svc_pool *pool)
382 {
383 	percpu_counter_destroy(&pool->sp_messages_arrived);
384 	percpu_counter_destroy(&pool->sp_sockets_queued);
385 	percpu_counter_destroy(&pool->sp_threads_woken);
386 }
387 
388 /*
389  * Create an RPC service
390  */
391 static struct svc_serv *
__svc_create(struct svc_program * prog,int nprogs,struct svc_stat * stats,unsigned int bufsize,int npools,int (* threadfn)(void * data))392 __svc_create(struct svc_program *prog, int nprogs, struct svc_stat *stats,
393 	     unsigned int bufsize, int npools, int (*threadfn)(void *data))
394 {
395 	struct svc_serv	*serv;
396 	unsigned int vers;
397 	unsigned int xdrsize;
398 	unsigned int i;
399 
400 	if (!(serv = kzalloc_obj(*serv)))
401 		return NULL;
402 	serv->sv_name      = prog->pg_name;
403 	serv->sv_programs  = prog;
404 	serv->sv_nprogs    = nprogs;
405 	serv->sv_stats     = stats;
406 	if (bufsize > RPCSVC_MAXPAYLOAD)
407 		bufsize = RPCSVC_MAXPAYLOAD;
408 	serv->sv_max_payload = bufsize? bufsize : 4096;
409 	serv->sv_max_mesg  = roundup(serv->sv_max_payload + PAGE_SIZE, PAGE_SIZE);
410 	serv->sv_threadfn = threadfn;
411 	xdrsize = 0;
412 	for (i = 0; i < nprogs; i++) {
413 		struct svc_program *progp = &prog[i];
414 
415 		progp->pg_lovers = progp->pg_nvers-1;
416 		for (vers = 0; vers < progp->pg_nvers ; vers++)
417 			if (progp->pg_vers[vers]) {
418 				progp->pg_hivers = vers;
419 				if (progp->pg_lovers > vers)
420 					progp->pg_lovers = vers;
421 				if (progp->pg_vers[vers]->vs_xdrsize > xdrsize)
422 					xdrsize = progp->pg_vers[vers]->vs_xdrsize;
423 			}
424 	}
425 	serv->sv_xdrsize   = xdrsize;
426 	INIT_LIST_HEAD(&serv->sv_tempsocks);
427 	INIT_LIST_HEAD(&serv->sv_permsocks);
428 	timer_setup(&serv->sv_temptimer, NULL, 0);
429 	spin_lock_init(&serv->sv_lock);
430 
431 	__svc_init_bc(serv);
432 
433 	serv->sv_pools = kzalloc_objs(struct svc_pool, npools);
434 	if (!serv->sv_pools) {
435 		kfree(serv);
436 		return NULL;
437 	}
438 
439 	for (i = 0; i < npools; i++) {
440 		struct svc_pool *pool = &serv->sv_pools[i];
441 
442 		dprintk("svc: initialising pool %u for %s\n",
443 				i, serv->sv_name);
444 
445 		pool->sp_id = i;
446 		lwq_init(&pool->sp_xprts);
447 		INIT_LIST_HEAD(&pool->sp_all_threads);
448 		init_llist_head(&pool->sp_idle_threads);
449 
450 		if (svc_pool_init_counters(pool))
451 			goto out_err;
452 	}
453 
454 	return serv;
455 
456 out_err:
457 	while (i--)
458 		svc_pool_destroy_counters(&serv->sv_pools[i]);
459 	kfree(serv->sv_pools);
460 	kfree(serv);
461 	return NULL;
462 }
463 
464 /**
465  * svc_create - Create an RPC service
466  * @prog: the RPC program the new service will handle
467  * @bufsize: maximum message size for @prog
468  * @threadfn: a function to service RPC requests for @prog
469  *
470  * Returns an instantiated struct svc_serv object or NULL.
471  */
svc_create(struct svc_program * prog,unsigned int bufsize,int (* threadfn)(void * data))472 struct svc_serv *svc_create(struct svc_program *prog, unsigned int bufsize,
473 			    int (*threadfn)(void *data))
474 {
475 	return __svc_create(prog, 1, NULL, bufsize, 1, threadfn);
476 }
477 EXPORT_SYMBOL_GPL(svc_create);
478 
479 /**
480  * svc_create_pooled - Create an RPC service with pooled threads
481  * @prog:  Array of RPC programs the new service will handle
482  * @nprogs: Number of programs in the array
483  * @stats: the stats struct if desired
484  * @bufsize: maximum message size for @prog
485  * @threadfn: a function to service RPC requests for @prog
486  *
487  * Returns an instantiated struct svc_serv object or NULL.
488  */
svc_create_pooled(struct svc_program * prog,unsigned int nprogs,struct svc_stat * stats,unsigned int bufsize,int (* threadfn)(void * data))489 struct svc_serv *svc_create_pooled(struct svc_program *prog,
490 				   unsigned int nprogs,
491 				   struct svc_stat *stats,
492 				   unsigned int bufsize,
493 				   int (*threadfn)(void *data))
494 {
495 	struct svc_serv *serv;
496 	unsigned int npools = svc_pool_map_get();
497 
498 	if (!npools)
499 		return NULL;
500 
501 	serv = __svc_create(prog, nprogs, stats, bufsize, npools, threadfn);
502 	if (!serv)
503 		goto out_err;
504 	serv->sv_is_pooled = true;
505 	return serv;
506 out_err:
507 	svc_pool_map_put();
508 	return NULL;
509 }
510 EXPORT_SYMBOL_GPL(svc_create_pooled);
511 
512 /*
513  * Destroy an RPC service. Should be called with appropriate locking to
514  * protect sv_permsocks and sv_tempsocks.
515  */
516 void
svc_destroy(struct svc_serv ** servp)517 svc_destroy(struct svc_serv **servp)
518 {
519 	struct svc_serv *serv = *servp;
520 	unsigned int i;
521 
522 	*servp = NULL;
523 
524 	dprintk("svc: svc_destroy(%s)\n", serv->sv_programs->pg_name);
525 	timer_shutdown_sync(&serv->sv_temptimer);
526 
527 	/*
528 	 * Remaining transports at this point are not expected.
529 	 */
530 	WARN_ONCE(!list_empty(&serv->sv_permsocks),
531 		  "SVC: permsocks remain for %s\n", serv->sv_programs->pg_name);
532 	WARN_ONCE(!list_empty(&serv->sv_tempsocks),
533 		  "SVC: tempsocks remain for %s\n", serv->sv_programs->pg_name);
534 
535 	cache_clean_deferred(serv);
536 
537 	for (i = 0; i < svc_serv_nrpools(serv); i++) {
538 		struct svc_pool *pool = &serv->sv_pools[i];
539 
540 		svc_pool_destroy_counters(pool);
541 	}
542 
543 	if (serv->sv_is_pooled)
544 		svc_pool_map_put();
545 
546 	kfree(serv->sv_pools);
547 	kfree(serv);
548 }
549 EXPORT_SYMBOL_GPL(svc_destroy);
550 
551 static bool
svc_init_buffer(struct svc_rqst * rqstp,const struct svc_serv * serv,int node)552 svc_init_buffer(struct svc_rqst *rqstp, const struct svc_serv *serv, int node)
553 {
554 	rqstp->rq_maxpages = svc_serv_maxpages(serv);
555 
556 	/* +1 for a NULL sentinel readable by nfsd_splice_actor() */
557 	rqstp->rq_pages = kcalloc_node(rqstp->rq_maxpages + 1,
558 				       sizeof(struct page *),
559 				       GFP_KERNEL, node);
560 	if (!rqstp->rq_pages)
561 		return false;
562 
563 	/* +1 for a NULL sentinel at rq_page_end (see svc_rqst_replace_page) */
564 	rqstp->rq_respages = kcalloc_node(rqstp->rq_maxpages + 1,
565 					  sizeof(struct page *),
566 					  GFP_KERNEL, node);
567 	if (!rqstp->rq_respages) {
568 		kfree(rqstp->rq_pages);
569 		rqstp->rq_pages = NULL;
570 		return false;
571 	}
572 
573 	rqstp->rq_pages_nfree = rqstp->rq_maxpages;
574 	rqstp->rq_next_page = rqstp->rq_respages + rqstp->rq_maxpages;
575 	return true;
576 }
577 
578 /*
579  * Release an RPC server buffer
580  */
581 static void
svc_release_buffer(struct svc_rqst * rqstp)582 svc_release_buffer(struct svc_rqst *rqstp)
583 {
584 	unsigned long i;
585 
586 	if (rqstp->rq_pages) {
587 		for (i = 0; i < rqstp->rq_maxpages; i++)
588 			if (rqstp->rq_pages[i])
589 				put_page(rqstp->rq_pages[i]);
590 		kfree(rqstp->rq_pages);
591 	}
592 
593 	if (rqstp->rq_respages) {
594 		for (i = 0; i < rqstp->rq_maxpages; i++)
595 			if (rqstp->rq_respages[i])
596 				put_page(rqstp->rq_respages[i]);
597 		kfree(rqstp->rq_respages);
598 	}
599 }
600 
svc_rqst_free_rcu(struct rcu_head * head)601 static void svc_rqst_free_rcu(struct rcu_head *head)
602 {
603 	struct svc_rqst *rqstp = container_of(head, struct svc_rqst, rq_rcu_head);
604 
605 	kfree(rqstp->rq_resp);
606 	kfree(rqstp->rq_argp);
607 	kfree(rqstp);
608 }
609 
610 static void
svc_rqst_free(struct svc_rqst * rqstp)611 svc_rqst_free(struct svc_rqst *rqstp)
612 {
613 	folio_batch_release(&rqstp->rq_fbatch);
614 	kfree(rqstp->rq_bvec);
615 	svc_release_buffer(rqstp);
616 	if (rqstp->rq_scratch_folio)
617 		folio_put(rqstp->rq_scratch_folio);
618 	kfree(rqstp->rq_auth_data);
619 	call_rcu(&rqstp->rq_rcu_head, svc_rqst_free_rcu);
620 }
621 
622 static struct svc_rqst *
svc_prepare_thread(struct svc_serv * serv,struct svc_pool * pool,int node)623 svc_prepare_thread(struct svc_serv *serv, struct svc_pool *pool, int node)
624 {
625 	struct svc_rqst	*rqstp;
626 
627 	rqstp = kzalloc_node(sizeof(*rqstp), GFP_KERNEL, node);
628 	if (!rqstp)
629 		return rqstp;
630 
631 	folio_batch_init(&rqstp->rq_fbatch);
632 
633 	rqstp->rq_server = serv;
634 	rqstp->rq_pool = pool;
635 
636 	rqstp->rq_scratch_folio = __folio_alloc_node(GFP_KERNEL, 0,
637 						     node == NUMA_NO_NODE ?
638 						     numa_mem_id() : node);
639 	if (!rqstp->rq_scratch_folio)
640 		goto out_enomem;
641 
642 	rqstp->rq_argp = kmalloc_node(serv->sv_xdrsize, GFP_KERNEL, node);
643 	if (!rqstp->rq_argp)
644 		goto out_enomem;
645 
646 	rqstp->rq_resp = kmalloc_node(serv->sv_xdrsize, GFP_KERNEL, node);
647 	if (!rqstp->rq_resp)
648 		goto out_enomem;
649 
650 	if (!svc_init_buffer(rqstp, serv, node))
651 		goto out_enomem;
652 
653 	rqstp->rq_bvec = kcalloc_node(rqstp->rq_maxpages,
654 				      sizeof(struct bio_vec),
655 				      GFP_KERNEL, node);
656 	if (!rqstp->rq_bvec)
657 		goto out_enomem;
658 
659 	rqstp->rq_err = -EAGAIN; /* No error yet */
660 
661 	serv->sv_nrthreads += 1;
662 	pool->sp_nrthreads += 1;
663 
664 	/* Protected by whatever lock the service uses when calling
665 	 * svc_set_num_threads()
666 	 */
667 	list_add_rcu(&rqstp->rq_all, &pool->sp_all_threads);
668 
669 	return rqstp;
670 
671 out_enomem:
672 	svc_rqst_free(rqstp);
673 	return NULL;
674 }
675 
676 /**
677  * svc_pool_wake_idle_thread - Awaken an idle thread in @pool
678  * @pool: service thread pool
679  *
680  * Can be called from soft IRQ or process context. Finding an idle
681  * service thread and marking it BUSY is atomic with respect to
682  * other calls to svc_pool_wake_idle_thread().
683  *
684  */
svc_pool_wake_idle_thread(struct svc_pool * pool)685 void svc_pool_wake_idle_thread(struct svc_pool *pool)
686 {
687 	struct svc_rqst	*rqstp;
688 	struct llist_node *ln;
689 
690 	rcu_read_lock();
691 	ln = READ_ONCE(pool->sp_idle_threads.first);
692 	if (ln) {
693 		rqstp = llist_entry(ln, struct svc_rqst, rq_idle);
694 		WRITE_ONCE(rqstp->rq_qtime, ktime_get());
695 		if (!task_is_running(rqstp->rq_task)) {
696 			wake_up_process(rqstp->rq_task);
697 			trace_svc_pool_thread_wake(pool, rqstp->rq_task->pid);
698 			percpu_counter_inc(&pool->sp_threads_woken);
699 		} else {
700 			trace_svc_pool_thread_running(pool, rqstp->rq_task->pid);
701 		}
702 		rcu_read_unlock();
703 		return;
704 	}
705 	rcu_read_unlock();
706 	trace_svc_pool_thread_noidle(pool, 0);
707 }
708 EXPORT_SYMBOL_GPL(svc_pool_wake_idle_thread);
709 
710 /**
711  * svc_new_thread - spawn a new thread in the given pool
712  * @serv: the serv to which the pool belongs
713  * @pool: pool in which thread should be spawned
714  *
715  * Create a new thread inside @pool, which is a part of @serv.
716  * Caller must hold the service mutex.
717  *
718  * Returns 0 on success, or -errno on failure.
719  */
svc_new_thread(struct svc_serv * serv,struct svc_pool * pool)720 int svc_new_thread(struct svc_serv *serv, struct svc_pool *pool)
721 {
722 	struct svc_rqst	*rqstp;
723 	struct task_struct *task;
724 	int node;
725 	int err = 0;
726 
727 	/*
728 	 * Only pooled services hold a reference to the pool map, so only they
729 	 * may consult it. Unpooled services (e.g. lockd, the NFS callback)
730 	 * leave placement to the allocator.
731 	 */
732 	if (serv->sv_is_pooled)
733 		node = svc_pool_map_get_node(pool->sp_id);
734 	else
735 		node = NUMA_NO_NODE;
736 
737 	rqstp = svc_prepare_thread(serv, pool, node);
738 	if (!rqstp)
739 		return -ENOMEM;
740 	task = kthread_create_on_node(serv->sv_threadfn, rqstp,
741 				      node, "%s", serv->sv_name);
742 	if (IS_ERR(task)) {
743 		err = PTR_ERR(task);
744 		goto out;
745 	}
746 
747 	rqstp->rq_task = task;
748 	if (svc_serv_nrpools(serv) > 1)
749 		svc_pool_map_set_cpumask(task, pool->sp_id);
750 
751 	svc_sock_update_bufs(serv);
752 	wake_up_process(task);
753 
754 	/* Wait for the thread to signal initialization status */
755 	wait_var_event(&rqstp->rq_err, rqstp->rq_err != -EAGAIN);
756 	err = rqstp->rq_err;
757 out:
758 	if (err)
759 		svc_exit_thread(rqstp);
760 	return err;
761 }
762 EXPORT_SYMBOL_GPL(svc_new_thread);
763 
764 static int
svc_start_kthreads(struct svc_serv * serv,struct svc_pool * pool,int nrservs)765 svc_start_kthreads(struct svc_serv *serv, struct svc_pool *pool, int nrservs)
766 {
767 	int err = 0;
768 
769 	while (!err && nrservs--)
770 		err = svc_new_thread(serv, pool);
771 
772 	return err;
773 }
774 
775 static int
svc_stop_kthreads(struct svc_serv * serv,struct svc_pool * pool,int nrservs)776 svc_stop_kthreads(struct svc_serv *serv, struct svc_pool *pool, int nrservs)
777 {
778 	do {
779 		set_bit(SP_VICTIM_REMAINS, &pool->sp_flags);
780 		set_bit(SP_NEED_VICTIM, &pool->sp_flags);
781 		svc_pool_wake_idle_thread(pool);
782 		wait_on_bit(&pool->sp_flags, SP_VICTIM_REMAINS, TASK_IDLE);
783 		nrservs++;
784 	} while (nrservs < 0);
785 	return 0;
786 }
787 
788 /**
789  * svc_set_pool_threads - adjust number of threads per pool
790  * @serv: RPC service to adjust
791  * @pool: Specific pool from which to choose threads
792  * @min_threads: min number of threads to run in @pool
793  * @max_threads: max number of threads in @pool (0 means kill all threads)
794  *
795  * Create or destroy threads in @pool to bring it into an acceptable range
796  * between @min_threads and @max_threads.
797  *
798  * If @min_threads is 0 or larger than @max_threads, then it is ignored and
799  * the pool will be set to run a static @max_threads number of threads.
800  *
801  * Caller must ensure mutual exclusion between this and server startup or
802  * shutdown.
803  *
804  * Returns zero on success or a negative errno if an error occurred while
805  * starting a thread.
806  */
807 int
svc_set_pool_threads(struct svc_serv * serv,struct svc_pool * pool,unsigned int min_threads,unsigned int max_threads)808 svc_set_pool_threads(struct svc_serv *serv, struct svc_pool *pool,
809 		     unsigned int min_threads, unsigned int max_threads)
810 {
811 	int delta;
812 
813 	if (!pool)
814 		return -EINVAL;
815 
816 	/* clamp min threads to the max */
817 	if (min_threads > max_threads)
818 		min_threads = max_threads;
819 
820 	pool->sp_nrthrmin = min_threads;
821 	pool->sp_nrthrmax = max_threads;
822 
823 	/*
824 	 * When min_threads is set, then only change the number of
825 	 * threads to bring it within an acceptable range.
826 	 */
827 	if (min_threads) {
828 		if (pool->sp_nrthreads > max_threads)
829 			delta = max_threads;
830 		else if (pool->sp_nrthreads < min_threads)
831 			delta = min_threads;
832 		else
833 			return 0;
834 	} else {
835 		delta = max_threads;
836 	}
837 
838 	delta -= pool->sp_nrthreads;
839 	if (delta > 0)
840 		return svc_start_kthreads(serv, pool, delta);
841 	if (delta < 0)
842 		return svc_stop_kthreads(serv, pool, delta);
843 	return 0;
844 }
845 EXPORT_SYMBOL_GPL(svc_set_pool_threads);
846 
847 /**
848  * svc_set_num_threads - adjust number of threads in serv
849  * @serv: RPC service to adjust
850  * @min_threads: min number of threads to run per pool
851  * @nrservs: New number of threads for @serv (0 means kill all threads)
852  *
853  * Create or destroy threads in @serv to bring it to @nrservs. If there
854  * are multiple pools then the new threads or victims will be distributed
855  * evenly among them.
856  *
857  * When @nrservs is non-zero but smaller than the number of pools, even
858  * distribution would leave some pools empty. Since each pool maps to a
859  * NUMA node and only services transports steered to that node, every
860  * pool is instead guaranteed at least one thread. The resulting total
861  * may therefore exceed @nrservs.
862  *
863  * Caller must ensure mutual exclusion between this and server startup or
864  * shutdown.
865  *
866  * Returns zero on success or a negative errno if an error occurred while
867  * starting a thread. On failure, some pools may have already been
868  * adjusted; the caller is responsible for recovery.
869  */
870 int
svc_set_num_threads(struct svc_serv * serv,unsigned int min_threads,unsigned int nrservs)871 svc_set_num_threads(struct svc_serv *serv, unsigned int min_threads,
872 		    unsigned int nrservs)
873 {
874 	unsigned int nrpools = svc_serv_nrpools(serv);
875 	unsigned int base = nrservs / nrpools;
876 	unsigned int remain = nrservs % nrpools;
877 	int i, err = 0;
878 
879 	/*
880 	 * Don't let a pool sit empty while threads are being
881 	 * auto-distributed: a transport steered to its node would have
882 	 * nothing to service it. Every pool maps to a CPU-bearing node,
883 	 * so hand each one a thread. This may push the total above
884 	 * @nrservs.
885 	 */
886 	if (base == 0 && nrservs != 0)
887 		remain = nrpools;
888 
889 	for (i = 0; i < nrpools; ++i) {
890 		struct svc_pool *pool = &serv->sv_pools[i];
891 		int threads = base;
892 
893 		if (remain) {
894 			++threads;
895 			--remain;
896 		}
897 
898 		err = svc_set_pool_threads(serv, pool, min_threads, threads);
899 		if (err)
900 			break;
901 	}
902 	return err;
903 }
904 EXPORT_SYMBOL_GPL(svc_set_num_threads);
905 
906 /**
907  * svc_serv_maxthreads - report a service's configured thread ceiling
908  * @serv: RPC service to query
909  *
910  * A pooled service sizes its threads dynamically, so the number of
911  * threads running at any moment tracks recent load rather than the
912  * service's capacity. The per-pool maximum is the stable figure a
913  * consumer should size against.
914  *
915  * The caller must keep @serv valid for the duration of the call.
916  *
917  * Return: the sum of every pool's maximum thread count.
918  */
svc_serv_maxthreads(const struct svc_serv * serv)919 unsigned int svc_serv_maxthreads(const struct svc_serv *serv)
920 {
921 	unsigned int i, max = 0;
922 
923 	for (i = 0; i < svc_serv_nrpools(serv); i++)
924 		max += data_race(serv->sv_pools[i].sp_nrthrmax);
925 	return max;
926 }
927 EXPORT_SYMBOL_GPL(svc_serv_maxthreads);
928 
929 /**
930  * svc_rqst_replace_page - Replace one page in rq_respages[]
931  * @rqstp: svc_rqst with pages to replace
932  * @page: replacement page
933  *
934  * When replacing a page in rq_respages, batch the release of the
935  * replaced pages to avoid hammering the page allocator.
936  *
937  * Return values:
938  *   %true: page replaced
939  *   %false: array bounds checking failed
940  */
svc_rqst_replace_page(struct svc_rqst * rqstp,struct page * page)941 bool svc_rqst_replace_page(struct svc_rqst *rqstp, struct page *page)
942 {
943 	struct page **begin = rqstp->rq_respages;
944 	struct page **end = rqstp->rq_page_end;
945 
946 	if (unlikely(rqstp->rq_next_page < begin || rqstp->rq_next_page > end)) {
947 		trace_svc_replace_page_err(rqstp);
948 		return false;
949 	}
950 
951 	if (*rqstp->rq_next_page)
952 		svc_rqst_page_release(rqstp, *rqstp->rq_next_page);
953 
954 	get_page(page);
955 	*(rqstp->rq_next_page++) = page;
956 	return true;
957 }
958 EXPORT_SYMBOL_GPL(svc_rqst_replace_page);
959 
960 /**
961  * svc_rqst_release_pages - Release Reply buffer pages
962  * @rqstp: RPC transaction context
963  *
964  * Release response pages in the range [rq_respages, rq_next_page).
965  * NULL entries in this range are skipped, allowing transports to
966  * transfer pages to a send context before this function runs.
967  */
svc_rqst_release_pages(struct svc_rqst * rqstp)968 void svc_rqst_release_pages(struct svc_rqst *rqstp)
969 {
970 	struct page **pp;
971 
972 	for (pp = rqstp->rq_respages; pp < rqstp->rq_next_page; pp++) {
973 		if (*pp) {
974 			if (!folio_batch_add(&rqstp->rq_fbatch,
975 					     page_folio(*pp)))
976 				__folio_batch_release(&rqstp->rq_fbatch);
977 			*pp = NULL;
978 		}
979 	}
980 	if (rqstp->rq_fbatch.nr)
981 		__folio_batch_release(&rqstp->rq_fbatch);
982 }
983 
984 /**
985  * svc_exit_thread - finalise the termination of a sunrpc server thread
986  * @rqstp: the svc_rqst which represents the thread.
987  *
988  * When a thread started with svc_new_thread() exits it must call
989  * svc_exit_thread() as its last act.  This must be done with the
990  * service mutex held.  Normally this is held by a DIFFERENT thread, the
991  * one that is calling svc_set_num_threads() and which will wait for
992  * SP_VICTIM_REMAINS to be cleared before dropping the mutex.  If the
993  * thread exits for any reason other than svc_thread_should_stop()
994  * returning %true (which indicated that svc_set_num_threads() is
995  * waiting for it to exit), then it must take the service mutex itself,
996  * which can only safely be done using mutex_try_lock().
997  */
998 void
svc_exit_thread(struct svc_rqst * rqstp)999 svc_exit_thread(struct svc_rqst *rqstp)
1000 {
1001 	struct svc_serv	*serv = rqstp->rq_server;
1002 	struct svc_pool	*pool = rqstp->rq_pool;
1003 
1004 	list_del_rcu(&rqstp->rq_all);
1005 
1006 	pool->sp_nrthreads -= 1;
1007 	serv->sv_nrthreads -= 1;
1008 	svc_sock_update_bufs(serv);
1009 
1010 	svc_rqst_free(rqstp);
1011 
1012 	clear_and_wake_up_bit(SP_VICTIM_REMAINS, &pool->sp_flags);
1013 }
1014 EXPORT_SYMBOL_GPL(svc_exit_thread);
1015 
1016 /*
1017  * Register an "inet" protocol family netid with the local
1018  * rpcbind daemon via an rpcbind v4 SET request.
1019  *
1020  * No netconfig infrastructure is available in the kernel, so
1021  * we map IP_ protocol numbers to netids by hand.
1022  *
1023  * Returns zero on success; a negative errno value is returned
1024  * if any error occurs.
1025  */
__svc_rpcb_register4(struct net * net,const u32 program,const u32 version,const unsigned short protocol,const unsigned short port)1026 static int __svc_rpcb_register4(struct net *net, const u32 program,
1027 				const u32 version,
1028 				const unsigned short protocol,
1029 				const unsigned short port)
1030 {
1031 	const struct sockaddr_in sin = {
1032 		.sin_family		= AF_INET,
1033 		.sin_addr.s_addr	= htonl(INADDR_ANY),
1034 		.sin_port		= htons(port),
1035 	};
1036 	const char *netid;
1037 	int error;
1038 
1039 	switch (protocol) {
1040 	case IPPROTO_UDP:
1041 		netid = RPCBIND_NETID_UDP;
1042 		break;
1043 	case IPPROTO_TCP:
1044 		netid = RPCBIND_NETID_TCP;
1045 		break;
1046 	default:
1047 		return -ENOPROTOOPT;
1048 	}
1049 
1050 	error = rpcb_v4_register(net, program, version,
1051 					(const struct sockaddr *)&sin, netid);
1052 
1053 	/*
1054 	 * User space didn't support rpcbind v4, so retry this
1055 	 * registration request with the legacy rpcbind v2 protocol.
1056 	 */
1057 	if (error == -EPROTONOSUPPORT)
1058 		error = rpcb_register(net, program, version, protocol, port);
1059 
1060 	return error;
1061 }
1062 
1063 #if IS_ENABLED(CONFIG_IPV6)
1064 /*
1065  * Register an "inet6" protocol family netid with the local
1066  * rpcbind daemon via an rpcbind v4 SET request.
1067  *
1068  * No netconfig infrastructure is available in the kernel, so
1069  * we map IP_ protocol numbers to netids by hand.
1070  *
1071  * Returns zero on success; a negative errno value is returned
1072  * if any error occurs.
1073  */
__svc_rpcb_register6(struct net * net,const u32 program,const u32 version,const unsigned short protocol,const unsigned short port)1074 static int __svc_rpcb_register6(struct net *net, const u32 program,
1075 				const u32 version,
1076 				const unsigned short protocol,
1077 				const unsigned short port)
1078 {
1079 	const struct sockaddr_in6 sin6 = {
1080 		.sin6_family		= AF_INET6,
1081 		.sin6_addr		= IN6ADDR_ANY_INIT,
1082 		.sin6_port		= htons(port),
1083 	};
1084 	const char *netid;
1085 	int error;
1086 
1087 	switch (protocol) {
1088 	case IPPROTO_UDP:
1089 		netid = RPCBIND_NETID_UDP6;
1090 		break;
1091 	case IPPROTO_TCP:
1092 		netid = RPCBIND_NETID_TCP6;
1093 		break;
1094 	default:
1095 		return -ENOPROTOOPT;
1096 	}
1097 
1098 	error = rpcb_v4_register(net, program, version,
1099 					(const struct sockaddr *)&sin6, netid);
1100 
1101 	/*
1102 	 * User space didn't support rpcbind version 4, so we won't
1103 	 * use a PF_INET6 listener.
1104 	 */
1105 	if (error == -EPROTONOSUPPORT)
1106 		error = -EAFNOSUPPORT;
1107 
1108 	return error;
1109 }
1110 #endif	/* IS_ENABLED(CONFIG_IPV6) */
1111 
1112 /*
1113  * Register a kernel RPC service via rpcbind version 4.
1114  *
1115  * Returns zero on success; a negative errno value is returned
1116  * if any error occurs.
1117  */
__svc_register(struct net * net,const char * progname,const u32 program,const u32 version,const int family,const unsigned short protocol,const unsigned short port)1118 static int __svc_register(struct net *net, const char *progname,
1119 			  const u32 program, const u32 version,
1120 			  const int family,
1121 			  const unsigned short protocol,
1122 			  const unsigned short port)
1123 {
1124 	int error = -EAFNOSUPPORT;
1125 
1126 	switch (family) {
1127 	case PF_INET:
1128 		error = __svc_rpcb_register4(net, program, version,
1129 						protocol, port);
1130 		break;
1131 #if IS_ENABLED(CONFIG_IPV6)
1132 	case PF_INET6:
1133 		error = __svc_rpcb_register6(net, program, version,
1134 						protocol, port);
1135 #endif
1136 	}
1137 
1138 	trace_svc_register(progname, version, family, protocol, port, error);
1139 	return error;
1140 }
1141 
1142 static
svc_rpcbind_set_version(struct net * net,const struct svc_program * progp,u32 version,int family,unsigned short proto,unsigned short port)1143 int svc_rpcbind_set_version(struct net *net,
1144 			    const struct svc_program *progp,
1145 			    u32 version, int family,
1146 			    unsigned short proto,
1147 			    unsigned short port)
1148 {
1149 	return __svc_register(net, progp->pg_name, progp->pg_prog,
1150 				version, family, proto, port);
1151 
1152 }
1153 
svc_generic_rpcbind_set(struct net * net,const struct svc_program * progp,u32 version,int family,unsigned short proto,unsigned short port)1154 int svc_generic_rpcbind_set(struct net *net,
1155 			    const struct svc_program *progp,
1156 			    u32 version, int family,
1157 			    unsigned short proto,
1158 			    unsigned short port)
1159 {
1160 	const struct svc_version *vers = progp->pg_vers[version];
1161 	int error;
1162 
1163 	if (vers == NULL)
1164 		return 0;
1165 
1166 	if (vers->vs_hidden) {
1167 		trace_svc_noregister(progp->pg_name, version, proto,
1168 				     port, family, 0);
1169 		return 0;
1170 	}
1171 
1172 	/*
1173 	 * Don't register a UDP port if we need congestion
1174 	 * control.
1175 	 */
1176 	if (vers->vs_need_cong_ctrl && proto == IPPROTO_UDP)
1177 		return 0;
1178 
1179 	error = svc_rpcbind_set_version(net, progp, version,
1180 					family, proto, port);
1181 
1182 	return (vers->vs_rpcb_optnl) ? 0 : error;
1183 }
1184 EXPORT_SYMBOL_GPL(svc_generic_rpcbind_set);
1185 
1186 /**
1187  * svc_register - register an RPC service with the local portmapper
1188  * @serv: svc_serv struct for the service to register
1189  * @net: net namespace for the service to register
1190  * @family: protocol family of service's listener socket
1191  * @proto: transport protocol number to advertise
1192  * @port: port to advertise
1193  *
1194  * Service is registered for any address in the passed-in protocol family
1195  */
svc_register(const struct svc_serv * serv,struct net * net,const int family,const unsigned short proto,const unsigned short port)1196 int svc_register(const struct svc_serv *serv, struct net *net,
1197 		 const int family, const unsigned short proto,
1198 		 const unsigned short port)
1199 {
1200 	unsigned int		p, i;
1201 	int			error = 0;
1202 
1203 	WARN_ON_ONCE(proto == 0 && port == 0);
1204 	if (proto == 0 && port == 0)
1205 		return -EINVAL;
1206 
1207 	for (p = 0; p < serv->sv_nprogs; p++) {
1208 		struct svc_program *progp = &serv->sv_programs[p];
1209 
1210 		for (i = 0; i < progp->pg_nvers; i++) {
1211 
1212 			error = progp->pg_rpcbind_set(net, progp, i,
1213 					family, proto, port);
1214 			if (error < 0) {
1215 				printk(KERN_WARNING "svc: failed to register "
1216 					"%sv%u RPC service (errno %d).\n",
1217 					progp->pg_name, i, -error);
1218 				break;
1219 			}
1220 		}
1221 	}
1222 
1223 	return error;
1224 }
1225 
1226 /*
1227  * If user space is running rpcbind, it should take the v4 UNSET
1228  * and clear everything for this [program, version].  If user space
1229  * is running portmap, it will reject the v4 UNSET, but won't have
1230  * any "inet6" entries anyway.  So a PMAP_UNSET should be sufficient
1231  * in this case to clear all existing entries for [program, version].
1232  */
__svc_unregister(struct net * net,const u32 program,const u32 version,const char * progname)1233 static void __svc_unregister(struct net *net, const u32 program, const u32 version,
1234 			     const char *progname)
1235 {
1236 	int error;
1237 
1238 	error = rpcb_v4_register(net, program, version, NULL, "");
1239 
1240 	/*
1241 	 * User space didn't support rpcbind v4, so retry this
1242 	 * request with the legacy rpcbind v2 protocol.
1243 	 */
1244 	if (error == -EPROTONOSUPPORT)
1245 		error = rpcb_register(net, program, version, 0, 0);
1246 
1247 	trace_svc_unregister(progname, version, error);
1248 }
1249 
1250 /*
1251  * All netids, bind addresses and ports registered for [program, version]
1252  * are removed from the local rpcbind database (if the service is not
1253  * hidden) to make way for a new instance of the service.
1254  *
1255  * The result of unregistration is reported via dprintk for those who want
1256  * verification of the result, but is otherwise not important.
1257  */
svc_unregister(const struct svc_serv * serv,struct net * net)1258 static void svc_unregister(const struct svc_serv *serv, struct net *net)
1259 {
1260 	struct sighand_struct *sighand;
1261 	unsigned long flags;
1262 	unsigned int p, i;
1263 
1264 	clear_thread_flag(TIF_SIGPENDING);
1265 
1266 	for (p = 0; p < serv->sv_nprogs; p++) {
1267 		struct svc_program *progp = &serv->sv_programs[p];
1268 
1269 		for (i = 0; i < progp->pg_nvers; i++) {
1270 			if (progp->pg_vers[i] == NULL)
1271 				continue;
1272 			if (progp->pg_vers[i]->vs_hidden)
1273 				continue;
1274 			__svc_unregister(net, progp->pg_prog, i, progp->pg_name);
1275 		}
1276 	}
1277 
1278 	rcu_read_lock();
1279 	sighand = rcu_dereference(current->sighand);
1280 	spin_lock_irqsave(&sighand->siglock, flags);
1281 	recalc_sigpending();
1282 	spin_unlock_irqrestore(&sighand->siglock, flags);
1283 	rcu_read_unlock();
1284 }
1285 
1286 /*
1287  * dprintk the given error with the address of the client that caused it.
1288  */
1289 #if IS_ENABLED(CONFIG_SUNRPC_DEBUG)
1290 static __printf(2, 3)
svc_printk(struct svc_rqst * rqstp,const char * fmt,...)1291 void svc_printk(struct svc_rqst *rqstp, const char *fmt, ...)
1292 {
1293 	struct va_format vaf;
1294 	va_list args;
1295 	char 	buf[RPC_MAX_ADDRBUFLEN];
1296 
1297 	va_start(args, fmt);
1298 
1299 	vaf.fmt = fmt;
1300 	vaf.va = &args;
1301 
1302 	dprintk("svc: %s: %pV", svc_print_addr(rqstp, buf, sizeof(buf)), &vaf);
1303 
1304 	va_end(args);
1305 }
1306 #else
svc_printk(struct svc_rqst * rqstp,const char * fmt,...)1307 static __printf(2,3) void svc_printk(struct svc_rqst *rqstp, const char *fmt, ...) {}
1308 #endif
1309 
1310 __be32
svc_generic_init_request(struct svc_rqst * rqstp,const struct svc_program * progp,struct svc_process_info * ret)1311 svc_generic_init_request(struct svc_rqst *rqstp,
1312 		const struct svc_program *progp,
1313 		struct svc_process_info *ret)
1314 {
1315 	const struct svc_version *versp = NULL;	/* compiler food */
1316 	const struct svc_procedure *procp = NULL;
1317 
1318 	if (rqstp->rq_vers >= progp->pg_nvers )
1319 		goto err_bad_vers;
1320 	versp = progp->pg_vers[rqstp->rq_vers];
1321 	if (!versp)
1322 		goto err_bad_vers;
1323 
1324 	/*
1325 	 * Some protocol versions (namely NFSv4) require some form of
1326 	 * congestion control.  (See RFC 7530 section 3.1 paragraph 2)
1327 	 * In other words, UDP is not allowed. We mark those when setting
1328 	 * up the svc_xprt, and verify that here.
1329 	 *
1330 	 * The spec is not very clear about what error should be returned
1331 	 * when someone tries to access a server that is listening on UDP
1332 	 * for lower versions. RPC_PROG_MISMATCH seems to be the closest
1333 	 * fit.
1334 	 */
1335 	if (versp->vs_need_cong_ctrl && rqstp->rq_xprt &&
1336 	    !test_bit(XPT_CONG_CTRL, &rqstp->rq_xprt->xpt_flags))
1337 		goto err_bad_vers;
1338 
1339 	if (rqstp->rq_proc >= versp->vs_nproc)
1340 		goto err_bad_proc;
1341 	rqstp->rq_procinfo = procp = &versp->vs_proc[rqstp->rq_proc];
1342 
1343 	/* Initialize storage for argp and resp */
1344 	memset(rqstp->rq_argp, 0, procp->pc_argzero);
1345 	memset(rqstp->rq_resp, 0, procp->pc_ressize);
1346 
1347 	/* Bump per-net per-procedure stats counter */
1348 	if (rqstp->rq_server->sv_stats &&
1349 	    rqstp->rq_server->sv_stats->program == progp &&
1350 	    rqstp->rq_server->sv_stats->vs_count &&
1351 	    rqstp->rq_server->sv_stats->vs_count[rqstp->rq_vers])
1352 		this_cpu_inc(rqstp->rq_server->sv_stats->vs_count
1353 				[rqstp->rq_vers][rqstp->rq_proc]);
1354 
1355 	ret->dispatch = versp->vs_dispatch;
1356 	return rpc_success;
1357 err_bad_vers:
1358 	ret->mismatch.lovers = progp->pg_lovers;
1359 	ret->mismatch.hivers = progp->pg_hivers;
1360 	return rpc_prog_mismatch;
1361 err_bad_proc:
1362 	return rpc_proc_unavail;
1363 }
1364 EXPORT_SYMBOL_GPL(svc_generic_init_request);
1365 
1366 /**
1367  * svc_stat_alloc_counts - allocate per-netns per-version call count arrays
1368  * @statp: svc_stat whose vs_count arrays should be allocated
1369  *
1370  * statp->program must be set before calling this.
1371  *
1372  * Returns zero on success, or a negative errno otherwise.
1373  */
svc_stat_alloc_counts(struct svc_stat * statp)1374 int svc_stat_alloc_counts(struct svc_stat *statp)
1375 {
1376 	struct svc_program *prog = statp->program;
1377 	unsigned int i;
1378 
1379 	statp->vs_count = kcalloc(prog->pg_nvers,
1380 				  sizeof(unsigned long __percpu *),
1381 				  GFP_KERNEL);
1382 	if (!statp->vs_count)
1383 		return -ENOMEM;
1384 
1385 	for (i = 0; i < prog->pg_nvers; i++) {
1386 		if (!prog->pg_vers[i])
1387 			continue;
1388 		statp->vs_count[i] = __alloc_percpu(prog->pg_vers[i]->vs_nproc *
1389 					    sizeof(unsigned long),
1390 					    sizeof(unsigned long));
1391 		if (!statp->vs_count[i])
1392 			goto err;
1393 	}
1394 	return 0;
1395 err:
1396 	svc_stat_free_counts(statp);
1397 	return -ENOMEM;
1398 }
1399 EXPORT_SYMBOL_GPL(svc_stat_alloc_counts);
1400 
1401 /**
1402  * svc_stat_free_counts - free per-netns per-version call count arrays
1403  * @statp: svc_stat whose vs_count arrays should be freed
1404  */
svc_stat_free_counts(struct svc_stat * statp)1405 void svc_stat_free_counts(struct svc_stat *statp)
1406 {
1407 	struct svc_program *prog = statp->program;
1408 	unsigned int i;
1409 
1410 	if (!statp->vs_count)
1411 		return;
1412 
1413 	for (i = 0; i < prog->pg_nvers; i++)
1414 		free_percpu(statp->vs_count[i]);
1415 	kfree(statp->vs_count);
1416 	statp->vs_count = NULL;
1417 }
1418 EXPORT_SYMBOL_GPL(svc_stat_free_counts);
1419 
1420 /*
1421  * Common routine for processing the RPC request.
1422  */
1423 static int
svc_process_common(struct svc_rqst * rqstp)1424 svc_process_common(struct svc_rqst *rqstp)
1425 {
1426 	struct xdr_stream	*xdr = &rqstp->rq_res_stream;
1427 	struct svc_program	*progp = NULL;
1428 	const struct svc_procedure *procp = NULL;
1429 	struct svc_serv		*serv = rqstp->rq_server;
1430 	struct svc_process_info process;
1431 	enum svc_auth_status	auth_res;
1432 	unsigned int		aoffset;
1433 	int			pr, rc;
1434 	__be32			*p;
1435 
1436 	/* Reset the accept_stat for the RPC */
1437 	rqstp->rq_accept_statp = NULL;
1438 
1439 	/* Will be turned off only when NFSv4 Sessions are used */
1440 	set_bit(RQ_USEDEFERRAL, &rqstp->rq_flags);
1441 	clear_bit(RQ_DROPME, &rqstp->rq_flags);
1442 
1443 	/* Construct the first words of the reply: */
1444 	svcxdr_init_encode(rqstp);
1445 	xdr_stream_encode_be32(xdr, rqstp->rq_xid);
1446 	xdr_stream_encode_be32(xdr, rpc_reply);
1447 
1448 	p = xdr_inline_decode(&rqstp->rq_arg_stream, XDR_UNIT * 4);
1449 	if (unlikely(!p))
1450 		goto err_short_len;
1451 	if (*p++ != cpu_to_be32(RPC_VERSION))
1452 		goto err_bad_rpc;
1453 
1454 	xdr_stream_encode_be32(xdr, rpc_msg_accepted);
1455 
1456 	rqstp->rq_prog = be32_to_cpup(p++);
1457 	rqstp->rq_vers = be32_to_cpup(p++);
1458 	rqstp->rq_proc = be32_to_cpup(p);
1459 
1460 	for (pr = 0; pr < serv->sv_nprogs; pr++)
1461 		if (rqstp->rq_prog == serv->sv_programs[pr].pg_prog)
1462 			progp = &serv->sv_programs[pr];
1463 
1464 	/*
1465 	 * Decode auth data, and add verifier to reply buffer.
1466 	 * We do this before anything else in order to get a decent
1467 	 * auth verifier.
1468 	 */
1469 	auth_res = svc_authenticate(rqstp);
1470 	/* Also give the program a chance to reject this call: */
1471 	if (auth_res == SVC_OK && progp)
1472 		auth_res = progp->pg_authenticate(rqstp);
1473 	trace_svc_authenticate(rqstp, auth_res);
1474 	switch (auth_res) {
1475 	case SVC_OK:
1476 		break;
1477 	case SVC_GARBAGE:
1478 		rqstp->rq_auth_stat = rpc_autherr_badcred;
1479 		goto err_bad_auth;
1480 	case SVC_DENIED:
1481 		goto err_bad_auth;
1482 	case SVC_CLOSE:
1483 		goto close;
1484 	case SVC_DROP:
1485 		goto dropit;
1486 	case SVC_COMPLETE:
1487 		goto sendit;
1488 	default:
1489 		pr_warn_once("Unexpected svc_auth_status (%d)\n", auth_res);
1490 		rqstp->rq_auth_stat = rpc_autherr_failed;
1491 		goto err_bad_auth;
1492 	}
1493 
1494 	if (progp == NULL)
1495 		goto err_bad_prog;
1496 
1497 	switch (progp->pg_init_request(rqstp, progp, &process)) {
1498 	case rpc_success:
1499 		break;
1500 	case rpc_prog_unavail:
1501 		goto err_bad_prog;
1502 	case rpc_prog_mismatch:
1503 		goto err_bad_vers;
1504 	case rpc_proc_unavail:
1505 		goto err_bad_proc;
1506 	}
1507 
1508 	procp = rqstp->rq_procinfo;
1509 	/* Should this check go into the dispatcher? */
1510 	if (!procp || !procp->pc_func)
1511 		goto err_bad_proc;
1512 
1513 	/* Syntactic check complete */
1514 	if (serv->sv_stats)
1515 		serv->sv_stats->rpccnt++;
1516 	trace_svc_process(rqstp, progp->pg_name);
1517 
1518 	aoffset = xdr_stream_pos(xdr);
1519 
1520 	/* un-reserve some of the out-queue now that we have a
1521 	 * better idea of reply size
1522 	 */
1523 	if (procp->pc_xdrressize)
1524 		svc_reserve_auth(rqstp, procp->pc_xdrressize<<2);
1525 
1526 	/* Call the function that processes the request. */
1527 	rc = process.dispatch(rqstp);
1528 	xdr_finish_decode(xdr);
1529 
1530 	if (!rc)
1531 		goto dropit;
1532 	if (rqstp->rq_auth_stat != rpc_auth_ok)
1533 		goto err_bad_auth;
1534 
1535 	if (*rqstp->rq_accept_statp != rpc_success)
1536 		xdr_truncate_encode(xdr, aoffset);
1537 
1538 	if (procp->pc_encode == NULL)
1539 		goto dropit;
1540 
1541  sendit:
1542 	if (svc_authorise(rqstp))
1543 		goto close_xprt;
1544 	return 1;		/* Caller can now send it */
1545 
1546  dropit:
1547 	svc_authorise(rqstp);	/* doesn't hurt to call this twice */
1548 	dprintk("svc: svc_process dropit\n");
1549 	return 0;
1550 
1551  close:
1552 	svc_authorise(rqstp);
1553 close_xprt:
1554 	if (rqstp->rq_xprt && test_bit(XPT_TEMP, &rqstp->rq_xprt->xpt_flags))
1555 		svc_xprt_close(rqstp->rq_xprt);
1556 	dprintk("svc: svc_process close\n");
1557 	return 0;
1558 
1559 err_short_len:
1560 	svc_printk(rqstp, "short len %u, dropping request\n",
1561 		   rqstp->rq_arg.len);
1562 	goto close_xprt;
1563 
1564 err_bad_rpc:
1565 	if (serv->sv_stats)
1566 		serv->sv_stats->rpcbadfmt++;
1567 	xdr_stream_encode_u32(xdr, RPC_MSG_DENIED);
1568 	xdr_stream_encode_u32(xdr, RPC_MISMATCH);
1569 	/* Only RPCv2 supported */
1570 	xdr_stream_encode_u32(xdr, RPC_VERSION);
1571 	xdr_stream_encode_u32(xdr, RPC_VERSION);
1572 	return 1;	/* don't wrap */
1573 
1574 err_bad_auth:
1575 	dprintk("svc: authentication failed (%d)\n",
1576 		be32_to_cpu(rqstp->rq_auth_stat));
1577 	if (serv->sv_stats)
1578 		serv->sv_stats->rpcbadauth++;
1579 	/* Restore write pointer to location of reply status: */
1580 	xdr_truncate_encode(xdr, XDR_UNIT * 2);
1581 	xdr_stream_encode_u32(xdr, RPC_MSG_DENIED);
1582 	xdr_stream_encode_u32(xdr, RPC_AUTH_ERROR);
1583 	xdr_stream_encode_be32(xdr, rqstp->rq_auth_stat);
1584 	goto sendit;
1585 
1586 err_bad_prog:
1587 	dprintk("svc: unknown program %d\n", rqstp->rq_prog);
1588 	if (serv->sv_stats)
1589 		serv->sv_stats->rpcbadfmt++;
1590 	*rqstp->rq_accept_statp = rpc_prog_unavail;
1591 	goto sendit;
1592 
1593 err_bad_vers:
1594 	svc_printk(rqstp, "unknown version (%d for prog %d, %s)\n",
1595 		       rqstp->rq_vers, rqstp->rq_prog, progp->pg_name);
1596 
1597 	if (serv->sv_stats)
1598 		serv->sv_stats->rpcbadfmt++;
1599 	*rqstp->rq_accept_statp = rpc_prog_mismatch;
1600 
1601 	/*
1602 	 * svc_authenticate() has already added the verifier and
1603 	 * advanced the stream just past rq_accept_statp.
1604 	 */
1605 	xdr_stream_encode_u32(xdr, process.mismatch.lovers);
1606 	xdr_stream_encode_u32(xdr, process.mismatch.hivers);
1607 	goto sendit;
1608 
1609 err_bad_proc:
1610 	svc_printk(rqstp, "unknown procedure (%d)\n", rqstp->rq_proc);
1611 
1612 	if (serv->sv_stats)
1613 		serv->sv_stats->rpcbadfmt++;
1614 	*rqstp->rq_accept_statp = rpc_proc_unavail;
1615 	goto sendit;
1616 }
1617 
1618 /*
1619  * Drop request
1620  */
svc_drop(struct svc_rqst * rqstp)1621 static void svc_drop(struct svc_rqst *rqstp)
1622 {
1623 	trace_svc_drop(rqstp);
1624 }
1625 
svc_release_rqst(struct svc_rqst * rqstp)1626 static void svc_release_rqst(struct svc_rqst *rqstp)
1627 {
1628 	const struct svc_procedure *procp = rqstp->rq_procinfo;
1629 
1630 	if (procp && procp->pc_release)
1631 		procp->pc_release(rqstp);
1632 
1633 	/*
1634 	 * A subsequent svc_release_rqst() on this rqstp must not
1635 	 * re-invoke pc_release against released state.
1636 	 */
1637 	rqstp->rq_procinfo = NULL;
1638 }
1639 
1640 /**
1641  * svc_process - Execute one RPC transaction
1642  * @rqstp: RPC transaction context
1643  *
1644  */
svc_process(struct svc_rqst * rqstp)1645 void svc_process(struct svc_rqst *rqstp)
1646 {
1647 	struct kvec		*resv = &rqstp->rq_res.head[0];
1648 	__be32 *p;
1649 
1650 #if IS_ENABLED(CONFIG_FAIL_SUNRPC)
1651 	if (!fail_sunrpc.ignore_server_disconnect &&
1652 	    should_fail(&fail_sunrpc.attr, 1))
1653 		svc_xprt_deferred_close(rqstp->rq_xprt);
1654 #endif
1655 
1656 	/* Discard a stale release hook from a previous RPC. */
1657 	rqstp->rq_procinfo = NULL;
1658 
1659 	/*
1660 	 * Setup response xdr_buf.
1661 	 * Initially it has just one page
1662 	 */
1663 	rqstp->rq_next_page = &rqstp->rq_respages[1];
1664 	resv->iov_base = page_address(rqstp->rq_respages[0]);
1665 	resv->iov_len = 0;
1666 	rqstp->rq_res.pages = rqstp->rq_next_page;
1667 	rqstp->rq_res.len = 0;
1668 	rqstp->rq_res.page_base = 0;
1669 	rqstp->rq_res.page_len = 0;
1670 	rqstp->rq_res.buflen = PAGE_SIZE;
1671 	rqstp->rq_res.tail[0].iov_base = NULL;
1672 	rqstp->rq_res.tail[0].iov_len = 0;
1673 
1674 	svcxdr_init_decode(rqstp);
1675 	p = xdr_inline_decode(&rqstp->rq_arg_stream, XDR_UNIT * 2);
1676 	if (unlikely(!p))
1677 		goto out_drop;
1678 	rqstp->rq_xid = *p++;
1679 	if (unlikely(*p != rpc_call))
1680 		goto out_baddir;
1681 
1682 	if (!svc_process_common(rqstp)) {
1683 		svc_release_rqst(rqstp);
1684 		goto out_drop;
1685 	}
1686 	svc_send(rqstp);
1687 	svc_release_rqst(rqstp);
1688 	return;
1689 
1690 out_baddir:
1691 	svc_printk(rqstp, "bad direction 0x%08x, dropping request\n",
1692 		   be32_to_cpu(*p));
1693 	if (rqstp->rq_server->sv_stats)
1694 		rqstp->rq_server->sv_stats->rpcbadfmt++;
1695 out_drop:
1696 	svc_drop(rqstp);
1697 }
1698 
1699 #if defined(CONFIG_SUNRPC_BACKCHANNEL)
1700 /**
1701  * svc_process_bc - process a reverse-direction RPC request
1702  * @req: RPC request to be used for client-side processing
1703  * @rqstp: server-side execution context
1704  *
1705  */
svc_process_bc(struct rpc_rqst * req,struct svc_rqst * rqstp)1706 void svc_process_bc(struct rpc_rqst *req, struct svc_rqst *rqstp)
1707 {
1708 	struct rpc_timeout timeout = {
1709 		.to_increment		= 0,
1710 	};
1711 	struct rpc_task *task;
1712 	int proc_error;
1713 
1714 	/* Build the svc_rqst used by the common processing routine */
1715 	rqstp->rq_procinfo = NULL;
1716 	rqstp->rq_xid = req->rq_xid;
1717 	rqstp->rq_prot = req->rq_xprt->prot;
1718 	rqstp->rq_bc_net = req->rq_xprt->xprt_net;
1719 
1720 	rqstp->rq_addrlen = sizeof(req->rq_xprt->addr);
1721 	memcpy(&rqstp->rq_addr, &req->rq_xprt->addr, rqstp->rq_addrlen);
1722 	memcpy(&rqstp->rq_arg, &req->rq_rcv_buf, sizeof(rqstp->rq_arg));
1723 	memcpy(&rqstp->rq_res, &req->rq_snd_buf, sizeof(rqstp->rq_res));
1724 
1725 	/* Adjust the argument buffer length */
1726 	rqstp->rq_arg.len = req->rq_private_buf.len;
1727 	if (rqstp->rq_arg.len <= rqstp->rq_arg.head[0].iov_len) {
1728 		rqstp->rq_arg.head[0].iov_len = rqstp->rq_arg.len;
1729 		rqstp->rq_arg.page_len = 0;
1730 	} else if (rqstp->rq_arg.len <= rqstp->rq_arg.head[0].iov_len +
1731 			rqstp->rq_arg.page_len)
1732 		rqstp->rq_arg.page_len = rqstp->rq_arg.len -
1733 			rqstp->rq_arg.head[0].iov_len;
1734 	else
1735 		rqstp->rq_arg.len = rqstp->rq_arg.head[0].iov_len +
1736 			rqstp->rq_arg.page_len;
1737 
1738 	/* Reset the response buffer */
1739 	rqstp->rq_res.head[0].iov_len = 0;
1740 
1741 	/*
1742 	 * Skip the XID and calldir fields because they've already
1743 	 * been processed by the caller.
1744 	 */
1745 	svcxdr_init_decode(rqstp);
1746 	if (!xdr_inline_decode(&rqstp->rq_arg_stream, XDR_UNIT * 2))
1747 		return;
1748 
1749 	/* Parse and execute the bc call */
1750 	proc_error = svc_process_common(rqstp);
1751 
1752 	atomic_dec(&req->rq_xprt->bc_slot_count);
1753 	if (!proc_error) {
1754 		/* Processing error: drop the request */
1755 		xprt_free_bc_request(req);
1756 		svc_release_rqst(rqstp);
1757 		return;
1758 	}
1759 	/* Finally, send the reply synchronously */
1760 	if (rqstp->bc_to_initval > 0) {
1761 		timeout.to_initval = rqstp->bc_to_initval;
1762 		timeout.to_retries = rqstp->bc_to_retries;
1763 	} else {
1764 		timeout.to_initval = req->rq_xprt->timeout->to_initval;
1765 		timeout.to_retries = req->rq_xprt->timeout->to_retries;
1766 	}
1767 	timeout.to_maxval = timeout.to_initval;
1768 	memcpy(&req->rq_snd_buf, &rqstp->rq_res, sizeof(req->rq_snd_buf));
1769 	task = rpc_run_bc_task(req, &timeout);
1770 	svc_release_rqst(rqstp);
1771 
1772 	if (IS_ERR(task))
1773 		return;
1774 
1775 	WARN_ON_ONCE(atomic_read(&task->tk_count) != 1);
1776 	rpc_put_task(task);
1777 }
1778 #endif /* CONFIG_SUNRPC_BACKCHANNEL */
1779 
1780 /**
1781  * svc_max_payload - Return transport-specific limit on the RPC payload
1782  * @rqstp: RPC transaction context
1783  *
1784  * Returns the maximum number of payload bytes the current transport
1785  * allows.
1786  */
svc_max_payload(const struct svc_rqst * rqstp)1787 u32 svc_max_payload(const struct svc_rqst *rqstp)
1788 {
1789 	u32 max = rqstp->rq_xprt->xpt_class->xcl_max_payload;
1790 
1791 	if (rqstp->rq_server->sv_max_payload < max)
1792 		max = rqstp->rq_server->sv_max_payload;
1793 	return max;
1794 }
1795 EXPORT_SYMBOL_GPL(svc_max_payload);
1796 
1797 /**
1798  * svc_proc_name - Return RPC procedure name in string form
1799  * @rqstp: svc_rqst to operate on
1800  *
1801  * Return value:
1802  *   Pointer to a NUL-terminated string
1803  */
svc_proc_name(const struct svc_rqst * rqstp)1804 const char *svc_proc_name(const struct svc_rqst *rqstp)
1805 {
1806 	if (rqstp && rqstp->rq_procinfo)
1807 		return rqstp->rq_procinfo->pc_name;
1808 	return "unknown";
1809 }
1810 
1811 
1812 /**
1813  * svc_encode_result_payload - mark a range of bytes as a result payload
1814  * @rqstp: svc_rqst to operate on
1815  * @offset: payload's byte offset in rqstp->rq_res
1816  * @length: size of payload, in bytes
1817  *
1818  * Returns zero on success, or a negative errno if a permanent
1819  * error occurred.
1820  */
svc_encode_result_payload(struct svc_rqst * rqstp,unsigned int offset,unsigned int length)1821 int svc_encode_result_payload(struct svc_rqst *rqstp, unsigned int offset,
1822 			      unsigned int length)
1823 {
1824 	return rqstp->rq_xprt->xpt_ops->xpo_result_payload(rqstp, offset,
1825 							   length);
1826 }
1827 EXPORT_SYMBOL_GPL(svc_encode_result_payload);
1828 
1829 /**
1830  * svc_fill_symlink_pathname - Construct pathname argument for VFS symlink call
1831  * @rqstp: svc_rqst to operate on
1832  * @first: buffer containing first section of pathname
1833  * @p: buffer containing remaining section of pathname
1834  * @total: total length of the pathname argument
1835  *
1836  * The VFS symlink API demands a NUL-terminated pathname in mapped memory.
1837  * Returns pointer to a NUL-terminated string, or an ERR_PTR. Caller must free
1838  * the returned string.
1839  */
svc_fill_symlink_pathname(struct svc_rqst * rqstp,struct kvec * first,void * p,size_t total)1840 char *svc_fill_symlink_pathname(struct svc_rqst *rqstp, struct kvec *first,
1841 				void *p, size_t total)
1842 {
1843 	size_t len, remaining;
1844 	char *result, *dst;
1845 
1846 	result = kmalloc(total + 1, GFP_KERNEL);
1847 	if (!result)
1848 		return ERR_PTR(-ESERVERFAULT);
1849 
1850 	dst = result;
1851 	remaining = total;
1852 
1853 	len = min_t(size_t, total, first->iov_len);
1854 	if (len) {
1855 		memcpy(dst, first->iov_base, len);
1856 		dst += len;
1857 		remaining -= len;
1858 	}
1859 
1860 	if (remaining) {
1861 		len = min_t(size_t, remaining, PAGE_SIZE);
1862 		memcpy(dst, p, len);
1863 		dst += len;
1864 	}
1865 
1866 	*dst = '\0';
1867 
1868 	/* Sanity check: Linux doesn't allow the pathname argument to
1869 	 * contain a NUL byte.
1870 	 */
1871 	if (strlen(result) != total) {
1872 		kfree(result);
1873 		return ERR_PTR(-EINVAL);
1874 	}
1875 	return result;
1876 }
1877 EXPORT_SYMBOL_GPL(svc_fill_symlink_pathname);
1878