1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * The NFSD open file cache. 4 * 5 * (c) 2015 - Jeff Layton <jeff.layton@primarydata.com> 6 * 7 * An nfsd_file object is a per-file collection of open state that binds 8 * together: 9 * - a struct file * 10 * - a user credential 11 * - a network namespace 12 * - a read-ahead context 13 * - monitoring for writeback errors 14 * 15 * nfsd_file objects are reference-counted. Consumers acquire a new 16 * object via the nfsd_file_acquire API. They manage their interest in 17 * the acquired object, and hence the object's reference count, via 18 * nfsd_file_get and nfsd_file_put. There are two varieties of nfsd_file 19 * object: 20 * 21 * * non-garbage-collected: When a consumer wants to precisely control 22 * the lifetime of a file's open state, it acquires a non-garbage- 23 * collected nfsd_file. The final nfsd_file_put releases the open 24 * state immediately. 25 * 26 * * garbage-collected: When a consumer does not control the lifetime 27 * of open state, it acquires a garbage-collected nfsd_file. The 28 * final nfsd_file_put allows the open state to linger for a period 29 * during which it may be re-used. 30 */ 31 32 #include <linux/hash.h> 33 #include <linux/slab.h> 34 #include <linux/file.h> 35 #include <linux/pagemap.h> 36 #include <linux/sched.h> 37 #include <linux/list_lru.h> 38 #include <linux/fsnotify_backend.h> 39 #include <linux/fsnotify.h> 40 #include <linux/seq_file.h> 41 #include <linux/rhashtable.h> 42 #include <linux/nfslocalio.h> 43 44 #include "vfs.h" 45 #include "nfsd.h" 46 #include "nfsfh.h" 47 #include "netns.h" 48 #include "filecache.h" 49 #include "trace.h" 50 51 #define NFSD_LAUNDRETTE_DELAY (2 * HZ) 52 53 #define NFSD_FILE_CACHE_UP (0) 54 55 /* We only care about NFSD_MAY_READ/WRITE for this cache */ 56 #define NFSD_FILE_MAY_MASK (NFSD_MAY_READ|NFSD_MAY_WRITE|NFSD_MAY_LOCALIO) 57 58 static DEFINE_PER_CPU(unsigned long, nfsd_file_cache_hits); 59 static DEFINE_PER_CPU(unsigned long, nfsd_file_acquisitions); 60 static DEFINE_PER_CPU(unsigned long, nfsd_file_allocations); 61 static DEFINE_PER_CPU(unsigned long, nfsd_file_releases); 62 static DEFINE_PER_CPU(unsigned long, nfsd_file_total_age); 63 static DEFINE_PER_CPU(unsigned long, nfsd_file_evictions); 64 65 struct nfsd_fcache_disposal { 66 spinlock_t lock; 67 struct list_head freeme; 68 }; 69 70 static struct kmem_cache *nfsd_file_slab; 71 static struct kmem_cache *nfsd_file_mark_slab; 72 static struct list_lru nfsd_file_lru; 73 static unsigned long nfsd_file_flags; 74 static struct fsnotify_group *nfsd_file_fsnotify_group; 75 static struct delayed_work nfsd_filecache_laundrette; 76 static struct rhltable nfsd_file_rhltable 77 ____cacheline_aligned_in_smp; 78 79 static bool 80 nfsd_match_cred(const struct cred *c1, const struct cred *c2) 81 { 82 int i; 83 84 if (!uid_eq(c1->fsuid, c2->fsuid)) 85 return false; 86 if (!gid_eq(c1->fsgid, c2->fsgid)) 87 return false; 88 if (c1->group_info == NULL || c2->group_info == NULL) 89 return c1->group_info == c2->group_info; 90 if (c1->group_info->ngroups != c2->group_info->ngroups) 91 return false; 92 for (i = 0; i < c1->group_info->ngroups; i++) { 93 if (!gid_eq(c1->group_info->gid[i], c2->group_info->gid[i])) 94 return false; 95 } 96 return true; 97 } 98 99 static const struct rhashtable_params nfsd_file_rhash_params = { 100 .key_len = sizeof_field(struct nfsd_file, nf_inode), 101 .key_offset = offsetof(struct nfsd_file, nf_inode), 102 .head_offset = offsetof(struct nfsd_file, nf_rlist), 103 104 /* 105 * Start with a single page hash table to reduce resizing churn 106 * on light workloads. 107 */ 108 .min_size = 256, 109 .automatic_shrinking = true, 110 }; 111 112 static void 113 nfsd_file_schedule_laundrette(void) 114 { 115 if (test_bit(NFSD_FILE_CACHE_UP, &nfsd_file_flags)) 116 queue_delayed_work(system_unbound_wq, &nfsd_filecache_laundrette, 117 NFSD_LAUNDRETTE_DELAY); 118 } 119 120 static void 121 nfsd_file_slab_free(struct rcu_head *rcu) 122 { 123 struct nfsd_file *nf = container_of(rcu, struct nfsd_file, nf_rcu); 124 125 put_cred(nf->nf_cred); 126 kmem_cache_free(nfsd_file_slab, nf); 127 } 128 129 static void 130 nfsd_file_mark_free(struct fsnotify_mark *mark) 131 { 132 struct nfsd_file_mark *nfm = container_of(mark, struct nfsd_file_mark, 133 nfm_mark); 134 135 kmem_cache_free(nfsd_file_mark_slab, nfm); 136 } 137 138 static struct nfsd_file_mark * 139 nfsd_file_mark_get(struct nfsd_file_mark *nfm) 140 { 141 if (!refcount_inc_not_zero(&nfm->nfm_ref)) 142 return NULL; 143 return nfm; 144 } 145 146 static void 147 nfsd_file_mark_put(struct nfsd_file_mark *nfm) 148 { 149 if (refcount_dec_and_test(&nfm->nfm_ref)) { 150 fsnotify_destroy_mark(&nfm->nfm_mark, nfsd_file_fsnotify_group); 151 fsnotify_put_mark(&nfm->nfm_mark); 152 } 153 } 154 155 static struct nfsd_file_mark * 156 nfsd_file_mark_find_or_create(struct inode *inode) 157 { 158 int err; 159 struct fsnotify_mark *mark; 160 struct nfsd_file_mark *nfm = NULL, *new; 161 162 do { 163 fsnotify_group_lock(nfsd_file_fsnotify_group); 164 mark = fsnotify_find_inode_mark(inode, 165 nfsd_file_fsnotify_group); 166 if (mark) { 167 nfm = nfsd_file_mark_get(container_of(mark, 168 struct nfsd_file_mark, 169 nfm_mark)); 170 fsnotify_group_unlock(nfsd_file_fsnotify_group); 171 if (nfm) { 172 fsnotify_put_mark(mark); 173 break; 174 } 175 /* Avoid soft lockup race with nfsd_file_mark_put() */ 176 fsnotify_destroy_mark(mark, nfsd_file_fsnotify_group); 177 fsnotify_put_mark(mark); 178 } else { 179 fsnotify_group_unlock(nfsd_file_fsnotify_group); 180 } 181 182 /* allocate a new nfm */ 183 new = kmem_cache_alloc(nfsd_file_mark_slab, GFP_KERNEL); 184 if (!new) 185 return NULL; 186 fsnotify_init_mark(&new->nfm_mark, nfsd_file_fsnotify_group); 187 new->nfm_mark.mask = FS_ATTRIB|FS_DELETE_SELF; 188 refcount_set(&new->nfm_ref, 1); 189 190 err = fsnotify_add_inode_mark(&new->nfm_mark, inode, 0); 191 192 /* 193 * If the add was successful, then return the object. 194 * Otherwise, we need to put the reference we hold on the 195 * nfm_mark. The fsnotify code will take a reference and put 196 * it on failure, so we can't just free it directly. It's also 197 * not safe to call fsnotify_destroy_mark on it as the 198 * mark->group will be NULL. Thus, we can't let the nfm_ref 199 * counter drive the destruction at this point. 200 */ 201 if (likely(!err)) 202 nfm = new; 203 else 204 fsnotify_put_mark(&new->nfm_mark); 205 } while (unlikely(err == -EEXIST)); 206 207 return nfm; 208 } 209 210 static struct nfsd_file * 211 nfsd_file_alloc(struct net *net, struct inode *inode, unsigned char need, 212 bool want_gc) 213 { 214 struct nfsd_file *nf; 215 216 nf = kmem_cache_alloc(nfsd_file_slab, GFP_KERNEL); 217 if (unlikely(!nf)) 218 return NULL; 219 220 this_cpu_inc(nfsd_file_allocations); 221 INIT_LIST_HEAD(&nf->nf_lru); 222 INIT_LIST_HEAD(&nf->nf_gc); 223 nf->nf_birthtime = ktime_get(); 224 nf->nf_file = NULL; 225 nf->nf_cred = get_current_cred(); 226 nf->nf_net = net; 227 nf->nf_flags = want_gc ? 228 BIT(NFSD_FILE_HASHED) | BIT(NFSD_FILE_PENDING) | BIT(NFSD_FILE_GC) : 229 BIT(NFSD_FILE_HASHED) | BIT(NFSD_FILE_PENDING); 230 nf->nf_inode = inode; 231 refcount_set(&nf->nf_ref, 1); 232 nf->nf_may = need; 233 nf->nf_mark = NULL; 234 return nf; 235 } 236 237 /** 238 * nfsd_file_check_write_error - check for writeback errors on a file 239 * @nf: nfsd_file to check for writeback errors 240 * 241 * Check whether a nfsd_file has an unseen error. Reset the write 242 * verifier if so. 243 */ 244 static void 245 nfsd_file_check_write_error(struct nfsd_file *nf) 246 { 247 struct file *file = nf->nf_file; 248 249 if ((file->f_mode & FMODE_WRITE) && 250 filemap_check_wb_err(file->f_mapping, READ_ONCE(file->f_wb_err))) 251 nfsd_reset_write_verifier(net_generic(nf->nf_net, nfsd_net_id)); 252 } 253 254 static void 255 nfsd_file_hash_remove(struct nfsd_file *nf) 256 { 257 trace_nfsd_file_unhash(nf); 258 rhltable_remove(&nfsd_file_rhltable, &nf->nf_rlist, 259 nfsd_file_rhash_params); 260 } 261 262 static bool 263 nfsd_file_unhash(struct nfsd_file *nf) 264 { 265 if (test_and_clear_bit(NFSD_FILE_HASHED, &nf->nf_flags)) { 266 nfsd_file_hash_remove(nf); 267 return true; 268 } 269 return false; 270 } 271 272 static void 273 nfsd_file_free(struct nfsd_file *nf) 274 { 275 s64 age = ktime_to_ms(ktime_sub(ktime_get(), nf->nf_birthtime)); 276 277 trace_nfsd_file_free(nf); 278 279 this_cpu_inc(nfsd_file_releases); 280 this_cpu_add(nfsd_file_total_age, age); 281 282 nfsd_file_unhash(nf); 283 if (nf->nf_mark) 284 nfsd_file_mark_put(nf->nf_mark); 285 if (nf->nf_file) { 286 nfsd_file_check_write_error(nf); 287 nfsd_filp_close(nf->nf_file); 288 } 289 290 /* 291 * If this item is still linked via nf_lru, that's a bug. 292 * WARN and leak it to preserve system stability. 293 */ 294 if (WARN_ON_ONCE(!list_empty(&nf->nf_lru))) 295 return; 296 297 call_rcu(&nf->nf_rcu, nfsd_file_slab_free); 298 } 299 300 static bool 301 nfsd_file_check_writeback(struct nfsd_file *nf) 302 { 303 struct file *file = nf->nf_file; 304 struct address_space *mapping; 305 306 /* File not open for write? */ 307 if (!(file->f_mode & FMODE_WRITE)) 308 return false; 309 310 /* 311 * Some filesystems (e.g. NFS) flush all dirty data on close. 312 * On others, there is no need to wait for writeback. 313 */ 314 if (!(file_inode(file)->i_sb->s_export_op->flags & EXPORT_OP_FLUSH_ON_CLOSE)) 315 return false; 316 317 mapping = file->f_mapping; 318 return mapping_tagged(mapping, PAGECACHE_TAG_DIRTY) || 319 mapping_tagged(mapping, PAGECACHE_TAG_WRITEBACK); 320 } 321 322 static void nfsd_file_lru_add(struct nfsd_file *nf) 323 { 324 refcount_inc(&nf->nf_ref); 325 if (list_lru_add_obj(&nfsd_file_lru, &nf->nf_lru)) 326 trace_nfsd_file_lru_add(nf); 327 else 328 WARN_ON(1); 329 nfsd_file_schedule_laundrette(); 330 } 331 332 static bool nfsd_file_lru_remove(struct nfsd_file *nf) 333 { 334 if (list_lru_del_obj(&nfsd_file_lru, &nf->nf_lru)) { 335 trace_nfsd_file_lru_del(nf); 336 return true; 337 } 338 return false; 339 } 340 341 struct nfsd_file * 342 nfsd_file_get(struct nfsd_file *nf) 343 { 344 if (nf && refcount_inc_not_zero(&nf->nf_ref)) 345 return nf; 346 return NULL; 347 } 348 349 /** 350 * nfsd_file_put - put the reference to a nfsd_file 351 * @nf: nfsd_file of which to put the reference 352 * 353 * Put a reference to a nfsd_file. In the non-GC case, we just put the 354 * reference immediately. In the GC case, if the reference would be 355 * the last one, the put it on the LRU instead to be cleaned up later. 356 */ 357 void 358 nfsd_file_put(struct nfsd_file *nf) 359 { 360 might_sleep(); 361 trace_nfsd_file_put(nf); 362 363 if (test_bit(NFSD_FILE_GC, &nf->nf_flags) && 364 test_bit(NFSD_FILE_HASHED, &nf->nf_flags)) { 365 set_bit(NFSD_FILE_REFERENCED, &nf->nf_flags); 366 set_bit(NFSD_FILE_RECENT, &nf->nf_flags); 367 } 368 369 if (refcount_dec_and_test(&nf->nf_ref)) 370 nfsd_file_free(nf); 371 } 372 373 /** 374 * nfsd_file_put_local - put nfsd_file reference and arm nfsd_net_put in caller 375 * @nf: nfsd_file of which to put the reference 376 * 377 * First save the associated net to return to caller, then put 378 * the reference of the nfsd_file. 379 */ 380 struct net * 381 nfsd_file_put_local(struct nfsd_file *nf) 382 { 383 struct net *net = nf->nf_net; 384 385 nfsd_file_put(nf); 386 return net; 387 } 388 389 /** 390 * nfsd_file_file - get the backing file of an nfsd_file 391 * @nf: nfsd_file of which to access the backing file. 392 * 393 * Return backing file for @nf. 394 */ 395 struct file * 396 nfsd_file_file(struct nfsd_file *nf) 397 { 398 return nf->nf_file; 399 } 400 401 static void 402 nfsd_file_dispose_list(struct list_head *dispose) 403 { 404 struct nfsd_file *nf; 405 406 while (!list_empty(dispose)) { 407 nf = list_first_entry(dispose, struct nfsd_file, nf_gc); 408 list_del_init(&nf->nf_gc); 409 nfsd_file_free(nf); 410 } 411 } 412 413 /** 414 * nfsd_file_dispose_list_delayed - move list of dead files to net's freeme list 415 * @dispose: list of nfsd_files to be disposed 416 * 417 * Transfers each file to the "freeme" list for its nfsd_net, to eventually 418 * be disposed of by the per-net garbage collector. 419 */ 420 static void 421 nfsd_file_dispose_list_delayed(struct list_head *dispose) 422 { 423 while(!list_empty(dispose)) { 424 struct nfsd_file *nf = list_first_entry(dispose, 425 struct nfsd_file, nf_gc); 426 struct nfsd_net *nn = net_generic(nf->nf_net, nfsd_net_id); 427 struct nfsd_fcache_disposal *l = nn->fcache_disposal; 428 struct svc_serv *serv; 429 430 spin_lock(&l->lock); 431 list_move_tail(&nf->nf_gc, &l->freeme); 432 spin_unlock(&l->lock); 433 434 /* 435 * The filecache laundrette is shut down after the 436 * nn->nfsd_serv pointer is cleared, but before the 437 * svc_serv is freed. 438 */ 439 serv = nn->nfsd_serv; 440 if (serv) 441 svc_wake_up(serv); 442 } 443 } 444 445 /** 446 * nfsd_file_net_dispose - deal with nfsd_files waiting to be disposed. 447 * @nn: nfsd_net in which to find files to be disposed. 448 * 449 * When files held open for nfsv3 are removed from the filecache, whether 450 * due to memory pressure or garbage collection, they are queued to 451 * a per-net-ns queue. This function completes the disposal, either 452 * directly or by waking another nfsd thread to help with the work. 453 */ 454 void nfsd_file_net_dispose(struct nfsd_net *nn) 455 { 456 struct nfsd_fcache_disposal *l = nn->fcache_disposal; 457 458 if (!list_empty(&l->freeme)) { 459 LIST_HEAD(dispose); 460 int i; 461 462 spin_lock(&l->lock); 463 for (i = 0; i < 8 && !list_empty(&l->freeme); i++) 464 list_move(l->freeme.next, &dispose); 465 spin_unlock(&l->lock); 466 if (!list_empty(&l->freeme)) 467 /* Wake up another thread to share the work 468 * *before* doing any actual disposing. 469 */ 470 svc_wake_up(nn->nfsd_serv); 471 nfsd_file_dispose_list(&dispose); 472 } 473 } 474 475 /** 476 * nfsd_file_lru_cb - Examine an entry on the LRU list 477 * @item: LRU entry to examine 478 * @lru: controlling LRU 479 * @arg: dispose list 480 * 481 * Return values: 482 * %LRU_REMOVED: @item was removed from the LRU 483 * %LRU_ROTATE: @item is to be moved to the LRU tail 484 * %LRU_SKIP: @item cannot be evicted 485 */ 486 static enum lru_status 487 nfsd_file_lru_cb(struct list_head *item, struct list_lru_one *lru, 488 void *arg) 489 { 490 struct list_head *head = arg; 491 struct nfsd_file *nf = list_entry(item, struct nfsd_file, nf_lru); 492 493 /* We should only be dealing with GC entries here */ 494 WARN_ON_ONCE(!test_bit(NFSD_FILE_GC, &nf->nf_flags)); 495 496 /* 497 * Don't throw out files that are still undergoing I/O or 498 * that have uncleared errors pending. 499 */ 500 if (nfsd_file_check_writeback(nf)) { 501 trace_nfsd_file_gc_writeback(nf); 502 return LRU_SKIP; 503 } 504 505 /* If it was recently added to the list, skip it */ 506 if (test_and_clear_bit(NFSD_FILE_REFERENCED, &nf->nf_flags)) { 507 trace_nfsd_file_gc_referenced(nf); 508 return LRU_ROTATE; 509 } 510 511 /* 512 * Put the reference held on behalf of the LRU if it is the last 513 * reference, else rotate. 514 */ 515 if (!refcount_dec_if_one(&nf->nf_ref)) { 516 trace_nfsd_file_gc_in_use(nf); 517 return LRU_ROTATE; 518 } 519 520 /* Refcount went to zero. Unhash it and queue it to the dispose list */ 521 nfsd_file_unhash(nf); 522 list_lru_isolate(lru, &nf->nf_lru); 523 list_add(&nf->nf_gc, head); 524 this_cpu_inc(nfsd_file_evictions); 525 trace_nfsd_file_gc_disposed(nf); 526 return LRU_REMOVED; 527 } 528 529 static enum lru_status 530 nfsd_file_gc_cb(struct list_head *item, struct list_lru_one *lru, 531 void *arg) 532 { 533 struct nfsd_file *nf = list_entry(item, struct nfsd_file, nf_lru); 534 535 if (test_and_clear_bit(NFSD_FILE_RECENT, &nf->nf_flags)) { 536 /* 537 * "REFERENCED" really means "should be at the end of the 538 * LRU. As we are putting it there we can clear the flag. 539 */ 540 clear_bit(NFSD_FILE_REFERENCED, &nf->nf_flags); 541 trace_nfsd_file_gc_aged(nf); 542 return LRU_ROTATE; 543 } 544 return nfsd_file_lru_cb(item, lru, arg); 545 } 546 547 /* If the shrinker runs between calls to list_lru_walk_node() in 548 * nfsd_file_gc(), the "remaining" count will be wrong. This could 549 * result in premature freeing of some files. This may not matter much 550 * but is easy to fix with this spinlock which temporarily disables 551 * the shrinker. 552 */ 553 static DEFINE_SPINLOCK(nfsd_gc_lock); 554 static void 555 nfsd_file_gc(void) 556 { 557 unsigned long ret = 0; 558 LIST_HEAD(dispose); 559 int nid; 560 561 spin_lock(&nfsd_gc_lock); 562 for_each_node_state(nid, N_NORMAL_MEMORY) { 563 unsigned long remaining = list_lru_count_node(&nfsd_file_lru, nid); 564 565 while (remaining > 0) { 566 unsigned long nr = min(remaining, NFSD_FILE_GC_BATCH); 567 568 remaining -= nr; 569 ret += list_lru_walk_node(&nfsd_file_lru, nid, nfsd_file_gc_cb, 570 &dispose, &nr); 571 if (nr) 572 /* walk aborted early */ 573 remaining = 0; 574 } 575 } 576 spin_unlock(&nfsd_gc_lock); 577 trace_nfsd_file_gc_removed(ret, list_lru_count(&nfsd_file_lru)); 578 nfsd_file_dispose_list_delayed(&dispose); 579 } 580 581 static void 582 nfsd_file_gc_worker(struct work_struct *work) 583 { 584 if (list_lru_count(&nfsd_file_lru)) 585 nfsd_file_gc(); 586 nfsd_file_schedule_laundrette(); 587 } 588 589 static unsigned long 590 nfsd_file_lru_count(struct shrinker *s, struct shrink_control *sc) 591 { 592 return list_lru_count(&nfsd_file_lru); 593 } 594 595 static unsigned long 596 nfsd_file_lru_scan(struct shrinker *s, struct shrink_control *sc) 597 { 598 LIST_HEAD(dispose); 599 unsigned long ret; 600 601 if (!spin_trylock(&nfsd_gc_lock)) 602 return SHRINK_STOP; 603 604 ret = list_lru_shrink_walk(&nfsd_file_lru, sc, 605 nfsd_file_lru_cb, &dispose); 606 spin_unlock(&nfsd_gc_lock); 607 trace_nfsd_file_shrinker_removed(ret, list_lru_count(&nfsd_file_lru)); 608 nfsd_file_dispose_list_delayed(&dispose); 609 return ret; 610 } 611 612 static struct shrinker *nfsd_file_shrinker; 613 614 /** 615 * nfsd_file_cond_queue - conditionally unhash and queue a nfsd_file 616 * @nf: nfsd_file to attempt to queue 617 * @dispose: private list to queue successfully-put objects 618 * 619 * Unhash an nfsd_file, try to get a reference to it, and then put that 620 * reference. If it's the last reference, queue it to the dispose list. 621 */ 622 static void 623 nfsd_file_cond_queue(struct nfsd_file *nf, struct list_head *dispose) 624 __must_hold(RCU) 625 { 626 int decrement = 1; 627 628 /* If we raced with someone else unhashing, ignore it */ 629 if (!nfsd_file_unhash(nf)) 630 return; 631 632 /* If we can't get a reference, ignore it */ 633 if (!nfsd_file_get(nf)) 634 return; 635 636 /* Extra decrement if we remove from the LRU */ 637 if (nfsd_file_lru_remove(nf)) 638 ++decrement; 639 640 /* If refcount goes to 0, then put on the dispose list */ 641 if (refcount_sub_and_test(decrement, &nf->nf_ref)) { 642 list_add(&nf->nf_gc, dispose); 643 trace_nfsd_file_closing(nf); 644 } 645 } 646 647 /** 648 * nfsd_file_queue_for_close: try to close out any open nfsd_files for an inode 649 * @inode: inode on which to close out nfsd_files 650 * @dispose: list on which to gather nfsd_files to close out 651 * 652 * An nfsd_file represents a struct file being held open on behalf of nfsd. 653 * An open file however can block other activity (such as leases), or cause 654 * undesirable behavior (e.g. spurious silly-renames when reexporting NFS). 655 * 656 * This function is intended to find open nfsd_files when this sort of 657 * conflicting access occurs and then attempt to close those files out. 658 * 659 * Populates the dispose list with entries that have already had their 660 * refcounts go to zero. The actual free of an nfsd_file can be expensive, 661 * so we leave it up to the caller whether it wants to wait or not. 662 */ 663 static void 664 nfsd_file_queue_for_close(struct inode *inode, struct list_head *dispose) 665 { 666 struct rhlist_head *tmp, *list; 667 struct nfsd_file *nf; 668 669 rcu_read_lock(); 670 list = rhltable_lookup(&nfsd_file_rhltable, &inode, 671 nfsd_file_rhash_params); 672 rhl_for_each_entry_rcu(nf, tmp, list, nf_rlist) { 673 if (!test_bit(NFSD_FILE_GC, &nf->nf_flags)) 674 continue; 675 nfsd_file_cond_queue(nf, dispose); 676 } 677 rcu_read_unlock(); 678 } 679 680 /** 681 * nfsd_file_close_inode - attempt a delayed close of a nfsd_file 682 * @inode: inode of the file to attempt to remove 683 * 684 * Close out any open nfsd_files that can be reaped for @inode. The 685 * actual freeing is deferred to the dispose_list_delayed infrastructure. 686 * 687 * This is used by the fsnotify callbacks and setlease notifier. 688 */ 689 static void 690 nfsd_file_close_inode(struct inode *inode) 691 { 692 LIST_HEAD(dispose); 693 694 nfsd_file_queue_for_close(inode, &dispose); 695 nfsd_file_dispose_list_delayed(&dispose); 696 } 697 698 /** 699 * nfsd_file_close_inode_sync - attempt to forcibly close a nfsd_file 700 * @inode: inode of the file to attempt to remove 701 * 702 * Close out any open nfsd_files that can be reaped for @inode. The 703 * nfsd_files are closed out synchronously. 704 * 705 * This is called from nfsd_rename and nfsd_unlink to avoid silly-renames 706 * when reexporting NFS. 707 */ 708 void 709 nfsd_file_close_inode_sync(struct inode *inode) 710 { 711 LIST_HEAD(dispose); 712 713 trace_nfsd_file_close(inode); 714 715 nfsd_file_queue_for_close(inode, &dispose); 716 nfsd_file_dispose_list(&dispose); 717 } 718 719 static int 720 nfsd_file_lease_notifier_call(struct notifier_block *nb, unsigned long arg, 721 void *data) 722 { 723 struct file_lease *fl = data; 724 725 /* Only close files for F_SETLEASE leases */ 726 if (fl->c.flc_flags & FL_LEASE) 727 nfsd_file_close_inode(file_inode(fl->c.flc_file)); 728 return 0; 729 } 730 731 static struct notifier_block nfsd_file_lease_notifier = { 732 .notifier_call = nfsd_file_lease_notifier_call, 733 }; 734 735 static int 736 nfsd_file_fsnotify_handle_event(struct fsnotify_mark *mark, u32 mask, 737 struct inode *inode, struct inode *dir, 738 const struct qstr *name, u32 cookie) 739 { 740 if (WARN_ON_ONCE(!inode)) 741 return 0; 742 743 trace_nfsd_file_fsnotify_handle_event(inode, mask); 744 745 /* Should be no marks on non-regular files */ 746 if (!S_ISREG(inode->i_mode)) { 747 WARN_ON_ONCE(1); 748 return 0; 749 } 750 751 /* don't close files if this was not the last link */ 752 if (mask & FS_ATTRIB) { 753 if (inode->i_nlink) 754 return 0; 755 } 756 757 nfsd_file_close_inode(inode); 758 return 0; 759 } 760 761 762 static const struct fsnotify_ops nfsd_file_fsnotify_ops = { 763 .handle_inode_event = nfsd_file_fsnotify_handle_event, 764 .free_mark = nfsd_file_mark_free, 765 }; 766 767 int 768 nfsd_file_cache_init(void) 769 { 770 int ret; 771 772 lockdep_assert_held(&nfsd_mutex); 773 if (test_and_set_bit(NFSD_FILE_CACHE_UP, &nfsd_file_flags) == 1) 774 return 0; 775 776 ret = rhltable_init(&nfsd_file_rhltable, &nfsd_file_rhash_params); 777 if (ret) 778 goto out; 779 780 ret = -ENOMEM; 781 nfsd_file_slab = KMEM_CACHE(nfsd_file, 0); 782 if (!nfsd_file_slab) { 783 pr_err("nfsd: unable to create nfsd_file_slab\n"); 784 goto out_err; 785 } 786 787 nfsd_file_mark_slab = KMEM_CACHE(nfsd_file_mark, 0); 788 if (!nfsd_file_mark_slab) { 789 pr_err("nfsd: unable to create nfsd_file_mark_slab\n"); 790 goto out_err; 791 } 792 793 ret = list_lru_init(&nfsd_file_lru); 794 if (ret) { 795 pr_err("nfsd: failed to init nfsd_file_lru: %d\n", ret); 796 goto out_err; 797 } 798 799 nfsd_file_shrinker = shrinker_alloc(0, "nfsd-filecache"); 800 if (!nfsd_file_shrinker) { 801 ret = -ENOMEM; 802 pr_err("nfsd: failed to allocate nfsd_file_shrinker\n"); 803 goto out_lru; 804 } 805 806 nfsd_file_shrinker->count_objects = nfsd_file_lru_count; 807 nfsd_file_shrinker->scan_objects = nfsd_file_lru_scan; 808 nfsd_file_shrinker->seeks = 1; 809 810 shrinker_register(nfsd_file_shrinker); 811 812 ret = lease_register_notifier(&nfsd_file_lease_notifier); 813 if (ret) { 814 pr_err("nfsd: unable to register lease notifier: %d\n", ret); 815 goto out_shrinker; 816 } 817 818 nfsd_file_fsnotify_group = fsnotify_alloc_group(&nfsd_file_fsnotify_ops, 819 0); 820 if (IS_ERR(nfsd_file_fsnotify_group)) { 821 pr_err("nfsd: unable to create fsnotify group: %ld\n", 822 PTR_ERR(nfsd_file_fsnotify_group)); 823 ret = PTR_ERR(nfsd_file_fsnotify_group); 824 nfsd_file_fsnotify_group = NULL; 825 goto out_notifier; 826 } 827 828 INIT_DELAYED_WORK(&nfsd_filecache_laundrette, nfsd_file_gc_worker); 829 out: 830 if (ret) 831 clear_bit(NFSD_FILE_CACHE_UP, &nfsd_file_flags); 832 return ret; 833 out_notifier: 834 lease_unregister_notifier(&nfsd_file_lease_notifier); 835 out_shrinker: 836 shrinker_free(nfsd_file_shrinker); 837 out_lru: 838 list_lru_destroy(&nfsd_file_lru); 839 out_err: 840 kmem_cache_destroy(nfsd_file_slab); 841 nfsd_file_slab = NULL; 842 kmem_cache_destroy(nfsd_file_mark_slab); 843 nfsd_file_mark_slab = NULL; 844 rhltable_destroy(&nfsd_file_rhltable); 845 goto out; 846 } 847 848 /** 849 * __nfsd_file_cache_purge: clean out the cache for shutdown 850 * @net: net-namespace to shut down the cache (may be NULL) 851 * 852 * Walk the nfsd_file cache and close out any that match @net. If @net is NULL, 853 * then close out everything. Called when an nfsd instance is being shut down, 854 * and when the exports table is flushed. 855 */ 856 static void 857 __nfsd_file_cache_purge(struct net *net) 858 { 859 struct rhashtable_iter iter; 860 struct nfsd_file *nf; 861 LIST_HEAD(dispose); 862 863 #if IS_ENABLED(CONFIG_NFS_LOCALIO) 864 if (net) { 865 struct nfsd_net *nn = net_generic(net, nfsd_net_id); 866 nfs_localio_invalidate_clients(&nn->local_clients, 867 &nn->local_clients_lock); 868 } 869 #endif 870 871 rhltable_walk_enter(&nfsd_file_rhltable, &iter); 872 do { 873 rhashtable_walk_start(&iter); 874 875 nf = rhashtable_walk_next(&iter); 876 while (!IS_ERR_OR_NULL(nf)) { 877 if (!net || nf->nf_net == net) 878 nfsd_file_cond_queue(nf, &dispose); 879 nf = rhashtable_walk_next(&iter); 880 } 881 882 rhashtable_walk_stop(&iter); 883 } while (nf == ERR_PTR(-EAGAIN)); 884 rhashtable_walk_exit(&iter); 885 886 nfsd_file_dispose_list(&dispose); 887 } 888 889 static struct nfsd_fcache_disposal * 890 nfsd_alloc_fcache_disposal(void) 891 { 892 struct nfsd_fcache_disposal *l; 893 894 l = kmalloc(sizeof(*l), GFP_KERNEL); 895 if (!l) 896 return NULL; 897 spin_lock_init(&l->lock); 898 INIT_LIST_HEAD(&l->freeme); 899 return l; 900 } 901 902 static void 903 nfsd_free_fcache_disposal(struct nfsd_fcache_disposal *l) 904 { 905 nfsd_file_dispose_list(&l->freeme); 906 kfree(l); 907 } 908 909 static void 910 nfsd_free_fcache_disposal_net(struct net *net) 911 { 912 struct nfsd_net *nn = net_generic(net, nfsd_net_id); 913 struct nfsd_fcache_disposal *l = nn->fcache_disposal; 914 915 nfsd_free_fcache_disposal(l); 916 } 917 918 int 919 nfsd_file_cache_start_net(struct net *net) 920 { 921 struct nfsd_net *nn = net_generic(net, nfsd_net_id); 922 923 nn->fcache_disposal = nfsd_alloc_fcache_disposal(); 924 return nn->fcache_disposal ? 0 : -ENOMEM; 925 } 926 927 /** 928 * nfsd_file_cache_purge - Remove all cache items associated with @net 929 * @net: target net namespace 930 * 931 */ 932 void 933 nfsd_file_cache_purge(struct net *net) 934 { 935 lockdep_assert_held(&nfsd_mutex); 936 if (test_bit(NFSD_FILE_CACHE_UP, &nfsd_file_flags) == 1) 937 __nfsd_file_cache_purge(net); 938 } 939 940 void 941 nfsd_file_cache_shutdown_net(struct net *net) 942 { 943 nfsd_file_cache_purge(net); 944 nfsd_free_fcache_disposal_net(net); 945 } 946 947 void 948 nfsd_file_cache_shutdown(void) 949 { 950 int i; 951 952 lockdep_assert_held(&nfsd_mutex); 953 if (test_and_clear_bit(NFSD_FILE_CACHE_UP, &nfsd_file_flags) == 0) 954 return; 955 956 lease_unregister_notifier(&nfsd_file_lease_notifier); 957 shrinker_free(nfsd_file_shrinker); 958 /* 959 * make sure all callers of nfsd_file_lru_cb are done before 960 * calling nfsd_file_cache_purge 961 */ 962 cancel_delayed_work_sync(&nfsd_filecache_laundrette); 963 __nfsd_file_cache_purge(NULL); 964 list_lru_destroy(&nfsd_file_lru); 965 rcu_barrier(); 966 fsnotify_put_group(nfsd_file_fsnotify_group); 967 nfsd_file_fsnotify_group = NULL; 968 kmem_cache_destroy(nfsd_file_slab); 969 nfsd_file_slab = NULL; 970 fsnotify_wait_marks_destroyed(); 971 kmem_cache_destroy(nfsd_file_mark_slab); 972 nfsd_file_mark_slab = NULL; 973 rhltable_destroy(&nfsd_file_rhltable); 974 975 for_each_possible_cpu(i) { 976 per_cpu(nfsd_file_cache_hits, i) = 0; 977 per_cpu(nfsd_file_acquisitions, i) = 0; 978 per_cpu(nfsd_file_allocations, i) = 0; 979 per_cpu(nfsd_file_releases, i) = 0; 980 per_cpu(nfsd_file_total_age, i) = 0; 981 per_cpu(nfsd_file_evictions, i) = 0; 982 } 983 } 984 985 static struct nfsd_file * 986 nfsd_file_lookup_locked(const struct net *net, const struct cred *cred, 987 struct inode *inode, unsigned char need, 988 bool want_gc) 989 { 990 struct rhlist_head *tmp, *list; 991 struct nfsd_file *nf; 992 993 list = rhltable_lookup(&nfsd_file_rhltable, &inode, 994 nfsd_file_rhash_params); 995 rhl_for_each_entry_rcu(nf, tmp, list, nf_rlist) { 996 if (nf->nf_may != need) 997 continue; 998 if (nf->nf_net != net) 999 continue; 1000 if (!nfsd_match_cred(nf->nf_cred, cred)) 1001 continue; 1002 if (test_bit(NFSD_FILE_GC, &nf->nf_flags) != want_gc) 1003 continue; 1004 if (test_bit(NFSD_FILE_HASHED, &nf->nf_flags) == 0) 1005 continue; 1006 1007 if (!nfsd_file_get(nf)) 1008 continue; 1009 return nf; 1010 } 1011 return NULL; 1012 } 1013 1014 /** 1015 * nfsd_file_is_cached - are there any cached open files for this inode? 1016 * @inode: inode to check 1017 * 1018 * The lookup matches inodes in all net namespaces and is atomic wrt 1019 * nfsd_file_acquire(). 1020 * 1021 * Return values: 1022 * %true: filecache contains at least one file matching this inode 1023 * %false: filecache contains no files matching this inode 1024 */ 1025 bool 1026 nfsd_file_is_cached(struct inode *inode) 1027 { 1028 struct rhlist_head *tmp, *list; 1029 struct nfsd_file *nf; 1030 bool ret = false; 1031 1032 rcu_read_lock(); 1033 list = rhltable_lookup(&nfsd_file_rhltable, &inode, 1034 nfsd_file_rhash_params); 1035 rhl_for_each_entry_rcu(nf, tmp, list, nf_rlist) 1036 if (test_bit(NFSD_FILE_GC, &nf->nf_flags)) { 1037 ret = true; 1038 break; 1039 } 1040 rcu_read_unlock(); 1041 1042 trace_nfsd_file_is_cached(inode, (int)ret); 1043 return ret; 1044 } 1045 1046 static __be32 1047 nfsd_file_do_acquire(struct svc_rqst *rqstp, struct net *net, 1048 struct svc_cred *cred, 1049 struct auth_domain *client, 1050 struct svc_fh *fhp, 1051 unsigned int may_flags, struct file *file, 1052 struct nfsd_file **pnf, bool want_gc) 1053 { 1054 unsigned char need = may_flags & NFSD_FILE_MAY_MASK; 1055 struct nfsd_file *new, *nf; 1056 bool stale_retry = true; 1057 bool open_retry = true; 1058 struct inode *inode; 1059 __be32 status; 1060 int ret; 1061 1062 retry: 1063 if (rqstp) { 1064 status = fh_verify(rqstp, fhp, S_IFREG, 1065 may_flags|NFSD_MAY_OWNER_OVERRIDE); 1066 } else { 1067 status = fh_verify_local(net, cred, client, fhp, S_IFREG, 1068 may_flags|NFSD_MAY_OWNER_OVERRIDE); 1069 } 1070 if (status != nfs_ok) 1071 return status; 1072 inode = d_inode(fhp->fh_dentry); 1073 1074 rcu_read_lock(); 1075 nf = nfsd_file_lookup_locked(net, current_cred(), inode, need, want_gc); 1076 rcu_read_unlock(); 1077 1078 if (nf) 1079 goto wait_for_construction; 1080 1081 new = nfsd_file_alloc(net, inode, need, want_gc); 1082 if (!new) { 1083 status = nfserr_jukebox; 1084 goto out; 1085 } 1086 1087 rcu_read_lock(); 1088 spin_lock(&inode->i_lock); 1089 nf = nfsd_file_lookup_locked(net, current_cred(), inode, need, want_gc); 1090 if (unlikely(nf)) { 1091 spin_unlock(&inode->i_lock); 1092 rcu_read_unlock(); 1093 nfsd_file_free(new); 1094 goto wait_for_construction; 1095 } 1096 nf = new; 1097 ret = rhltable_insert(&nfsd_file_rhltable, &nf->nf_rlist, 1098 nfsd_file_rhash_params); 1099 spin_unlock(&inode->i_lock); 1100 rcu_read_unlock(); 1101 if (likely(ret == 0)) 1102 goto open_file; 1103 1104 trace_nfsd_file_insert_err(rqstp, inode, may_flags, ret); 1105 status = nfserr_jukebox; 1106 goto construction_err; 1107 1108 wait_for_construction: 1109 wait_on_bit(&nf->nf_flags, NFSD_FILE_PENDING, TASK_UNINTERRUPTIBLE); 1110 1111 /* Did construction of this file fail? */ 1112 if (!test_bit(NFSD_FILE_HASHED, &nf->nf_flags)) { 1113 trace_nfsd_file_cons_err(rqstp, inode, may_flags, nf); 1114 if (!open_retry) { 1115 status = nfserr_jukebox; 1116 goto construction_err; 1117 } 1118 nfsd_file_put(nf); 1119 open_retry = false; 1120 fh_put(fhp); 1121 goto retry; 1122 } 1123 this_cpu_inc(nfsd_file_cache_hits); 1124 1125 status = nfserrno(nfsd_open_break_lease(file_inode(nf->nf_file), may_flags)); 1126 if (status != nfs_ok) { 1127 nfsd_file_put(nf); 1128 nf = NULL; 1129 } 1130 1131 out: 1132 if (status == nfs_ok) { 1133 this_cpu_inc(nfsd_file_acquisitions); 1134 nfsd_file_check_write_error(nf); 1135 *pnf = nf; 1136 } 1137 trace_nfsd_file_acquire(rqstp, inode, may_flags, nf, status); 1138 return status; 1139 1140 open_file: 1141 trace_nfsd_file_alloc(nf); 1142 nf->nf_mark = nfsd_file_mark_find_or_create(inode); 1143 if (nf->nf_mark) { 1144 if (file) { 1145 get_file(file); 1146 nf->nf_file = file; 1147 status = nfs_ok; 1148 trace_nfsd_file_opened(nf, status); 1149 } else { 1150 ret = nfsd_open_verified(fhp, may_flags, &nf->nf_file); 1151 if (ret == -EOPENSTALE && stale_retry) { 1152 stale_retry = false; 1153 nfsd_file_unhash(nf); 1154 clear_and_wake_up_bit(NFSD_FILE_PENDING, 1155 &nf->nf_flags); 1156 if (refcount_dec_and_test(&nf->nf_ref)) 1157 nfsd_file_free(nf); 1158 nf = NULL; 1159 fh_put(fhp); 1160 goto retry; 1161 } 1162 status = nfserrno(ret); 1163 trace_nfsd_file_open(nf, status); 1164 } 1165 } else 1166 status = nfserr_jukebox; 1167 /* 1168 * If construction failed, or we raced with a call to unlink() 1169 * then unhash. 1170 */ 1171 if (status != nfs_ok || inode->i_nlink == 0) 1172 nfsd_file_unhash(nf); 1173 else if (want_gc) 1174 nfsd_file_lru_add(nf); 1175 1176 clear_and_wake_up_bit(NFSD_FILE_PENDING, &nf->nf_flags); 1177 if (status == nfs_ok) 1178 goto out; 1179 1180 construction_err: 1181 if (refcount_dec_and_test(&nf->nf_ref)) 1182 nfsd_file_free(nf); 1183 nf = NULL; 1184 goto out; 1185 } 1186 1187 /** 1188 * nfsd_file_acquire_gc - Get a struct nfsd_file with an open file 1189 * @rqstp: the RPC transaction being executed 1190 * @fhp: the NFS filehandle of the file to be opened 1191 * @may_flags: NFSD_MAY_ settings for the file 1192 * @pnf: OUT: new or found "struct nfsd_file" object 1193 * 1194 * The nfsd_file object returned by this API is reference-counted 1195 * and garbage-collected. The object is retained for a few 1196 * seconds after the final nfsd_file_put() in case the caller 1197 * wants to re-use it. 1198 * 1199 * Return values: 1200 * %nfs_ok - @pnf points to an nfsd_file with its reference 1201 * count boosted. 1202 * 1203 * On error, an nfsstat value in network byte order is returned. 1204 */ 1205 __be32 1206 nfsd_file_acquire_gc(struct svc_rqst *rqstp, struct svc_fh *fhp, 1207 unsigned int may_flags, struct nfsd_file **pnf) 1208 { 1209 return nfsd_file_do_acquire(rqstp, SVC_NET(rqstp), NULL, NULL, 1210 fhp, may_flags, NULL, pnf, true); 1211 } 1212 1213 /** 1214 * nfsd_file_acquire - Get a struct nfsd_file with an open file 1215 * @rqstp: the RPC transaction being executed 1216 * @fhp: the NFS filehandle of the file to be opened 1217 * @may_flags: NFSD_MAY_ settings for the file 1218 * @pnf: OUT: new or found "struct nfsd_file" object 1219 * 1220 * The nfsd_file_object returned by this API is reference-counted 1221 * but not garbage-collected. The object is unhashed after the 1222 * final nfsd_file_put(). 1223 * 1224 * Return values: 1225 * %nfs_ok - @pnf points to an nfsd_file with its reference 1226 * count boosted. 1227 * 1228 * On error, an nfsstat value in network byte order is returned. 1229 */ 1230 __be32 1231 nfsd_file_acquire(struct svc_rqst *rqstp, struct svc_fh *fhp, 1232 unsigned int may_flags, struct nfsd_file **pnf) 1233 { 1234 return nfsd_file_do_acquire(rqstp, SVC_NET(rqstp), NULL, NULL, 1235 fhp, may_flags, NULL, pnf, false); 1236 } 1237 1238 /** 1239 * nfsd_file_acquire_local - Get a struct nfsd_file with an open file for localio 1240 * @net: The network namespace in which to perform a lookup 1241 * @cred: the user credential with which to validate access 1242 * @client: the auth_domain for LOCALIO lookup 1243 * @fhp: the NFS filehandle of the file to be opened 1244 * @may_flags: NFSD_MAY_ settings for the file 1245 * @pnf: OUT: new or found "struct nfsd_file" object 1246 * 1247 * This file lookup interface provide access to a file given the 1248 * filehandle and credential. No connection-based authorisation 1249 * is performed and in that way it is quite different to other 1250 * file access mediated by nfsd. It allows a kernel module such as the NFS 1251 * client to reach across network and filesystem namespaces to access 1252 * a file. The security implications of this should be carefully 1253 * considered before use. 1254 * 1255 * The nfsd_file_object returned by this API is reference-counted 1256 * but not garbage-collected. The object is unhashed after the 1257 * final nfsd_file_put(). 1258 * 1259 * Return values: 1260 * %nfs_ok - @pnf points to an nfsd_file with its reference 1261 * count boosted. 1262 * 1263 * On error, an nfsstat value in network byte order is returned. 1264 */ 1265 __be32 1266 nfsd_file_acquire_local(struct net *net, struct svc_cred *cred, 1267 struct auth_domain *client, struct svc_fh *fhp, 1268 unsigned int may_flags, struct nfsd_file **pnf) 1269 { 1270 /* 1271 * Save creds before calling nfsd_file_do_acquire() (which calls 1272 * nfsd_setuser). Important because caller (LOCALIO) is from 1273 * client context. 1274 */ 1275 const struct cred *save_cred = get_current_cred(); 1276 __be32 beres; 1277 1278 beres = nfsd_file_do_acquire(NULL, net, cred, client, 1279 fhp, may_flags, NULL, pnf, false); 1280 put_cred(revert_creds(save_cred)); 1281 return beres; 1282 } 1283 1284 /** 1285 * nfsd_file_acquire_opened - Get a struct nfsd_file using existing open file 1286 * @rqstp: the RPC transaction being executed 1287 * @fhp: the NFS filehandle of the file just created 1288 * @may_flags: NFSD_MAY_ settings for the file 1289 * @file: cached, already-open file (may be NULL) 1290 * @pnf: OUT: new or found "struct nfsd_file" object 1291 * 1292 * Acquire a nfsd_file object that is not GC'ed. If one doesn't already exist, 1293 * and @file is non-NULL, use it to instantiate a new nfsd_file instead of 1294 * opening a new one. 1295 * 1296 * Return values: 1297 * %nfs_ok - @pnf points to an nfsd_file with its reference 1298 * count boosted. 1299 * 1300 * On error, an nfsstat value in network byte order is returned. 1301 */ 1302 __be32 1303 nfsd_file_acquire_opened(struct svc_rqst *rqstp, struct svc_fh *fhp, 1304 unsigned int may_flags, struct file *file, 1305 struct nfsd_file **pnf) 1306 { 1307 return nfsd_file_do_acquire(rqstp, SVC_NET(rqstp), NULL, NULL, 1308 fhp, may_flags, file, pnf, false); 1309 } 1310 1311 /* 1312 * Note that fields may be added, removed or reordered in the future. Programs 1313 * scraping this file for info should test the labels to ensure they're 1314 * getting the correct field. 1315 */ 1316 int nfsd_file_cache_stats_show(struct seq_file *m, void *v) 1317 { 1318 unsigned long allocations = 0, releases = 0, evictions = 0; 1319 unsigned long hits = 0, acquisitions = 0; 1320 unsigned int i, count = 0, buckets = 0; 1321 unsigned long lru = 0, total_age = 0; 1322 1323 /* Serialize with server shutdown */ 1324 mutex_lock(&nfsd_mutex); 1325 if (test_bit(NFSD_FILE_CACHE_UP, &nfsd_file_flags) == 1) { 1326 struct bucket_table *tbl; 1327 struct rhashtable *ht; 1328 1329 lru = list_lru_count(&nfsd_file_lru); 1330 1331 rcu_read_lock(); 1332 ht = &nfsd_file_rhltable.ht; 1333 count = atomic_read(&ht->nelems); 1334 tbl = rht_dereference_rcu(ht->tbl, ht); 1335 buckets = tbl->size; 1336 rcu_read_unlock(); 1337 } 1338 mutex_unlock(&nfsd_mutex); 1339 1340 for_each_possible_cpu(i) { 1341 hits += per_cpu(nfsd_file_cache_hits, i); 1342 acquisitions += per_cpu(nfsd_file_acquisitions, i); 1343 allocations += per_cpu(nfsd_file_allocations, i); 1344 releases += per_cpu(nfsd_file_releases, i); 1345 total_age += per_cpu(nfsd_file_total_age, i); 1346 evictions += per_cpu(nfsd_file_evictions, i); 1347 } 1348 1349 seq_printf(m, "total inodes: %u\n", count); 1350 seq_printf(m, "hash buckets: %u\n", buckets); 1351 seq_printf(m, "lru entries: %lu\n", lru); 1352 seq_printf(m, "cache hits: %lu\n", hits); 1353 seq_printf(m, "acquisitions: %lu\n", acquisitions); 1354 seq_printf(m, "allocations: %lu\n", allocations); 1355 seq_printf(m, "releases: %lu\n", releases); 1356 seq_printf(m, "evictions: %lu\n", evictions); 1357 if (releases) 1358 seq_printf(m, "mean age (ms): %ld\n", total_age / releases); 1359 else 1360 seq_printf(m, "mean age (ms): -\n"); 1361 return 0; 1362 } 1363