1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * net/sunrpc/cache.c 4 * 5 * Generic code for various authentication-related caches 6 * used by sunrpc clients and servers. 7 * 8 * Copyright (C) 2002 Neil Brown <neilb@cse.unsw.edu.au> 9 */ 10 11 #include <linux/types.h> 12 #include <linux/fs.h> 13 #include <linux/file.h> 14 #include <linux/hex.h> 15 #include <linux/slab.h> 16 #include <linux/signal.h> 17 #include <linux/sched.h> 18 #include <linux/kmod.h> 19 #include <linux/list.h> 20 #include <linux/module.h> 21 #include <linux/ctype.h> 22 #include <linux/string_helpers.h> 23 #include <linux/uaccess.h> 24 #include <linux/poll.h> 25 #include <linux/seq_file.h> 26 #include <linux/proc_fs.h> 27 #include <linux/net.h> 28 #include <linux/workqueue.h> 29 #include <linux/mutex.h> 30 #include <linux/pagemap.h> 31 #include <asm/ioctls.h> 32 #include <linux/sunrpc/types.h> 33 #include <linux/sunrpc/cache.h> 34 #include <linux/sunrpc/stats.h> 35 #include <linux/sunrpc/rpc_pipe_fs.h> 36 #include <net/genetlink.h> 37 #include <trace/events/sunrpc.h> 38 39 #include "netns.h" 40 #include "netlink.h" 41 #include "fail.h" 42 43 #define RPCDBG_FACILITY RPCDBG_CACHE 44 45 static bool cache_defer_req(struct cache_req *req, struct cache_head *item); 46 static void cache_revisit_request(struct cache_head *item); 47 48 static void cache_init(struct cache_head *h, struct cache_detail *detail) 49 { 50 time64_t now = seconds_since_boot(); 51 INIT_HLIST_NODE(&h->cache_list); 52 h->flags = 0; 53 kref_init(&h->ref); 54 h->expiry_time = now + CACHE_NEW_EXPIRY; 55 if (now <= detail->flush_time) 56 /* ensure it isn't already expired */ 57 now = detail->flush_time + 1; 58 h->last_refresh = now; 59 } 60 61 static void cache_fresh_unlocked(struct cache_head *head, 62 struct cache_detail *detail); 63 64 static struct cache_head *sunrpc_cache_find_rcu(struct cache_detail *detail, 65 struct cache_head *key, 66 int hash) 67 { 68 struct hlist_head *head = &detail->hash_table[hash]; 69 struct cache_head *tmp; 70 71 rcu_read_lock(); 72 hlist_for_each_entry_rcu(tmp, head, cache_list) { 73 if (!detail->match(tmp, key)) 74 continue; 75 if (test_bit(CACHE_VALID, &tmp->flags) && 76 cache_is_expired(detail, tmp)) 77 continue; 78 tmp = cache_get_rcu(tmp); 79 rcu_read_unlock(); 80 return tmp; 81 } 82 rcu_read_unlock(); 83 return NULL; 84 } 85 86 static void sunrpc_begin_cache_remove_entry(struct cache_head *ch, 87 struct cache_detail *cd) 88 { 89 /* Must be called under cd->hash_lock */ 90 hlist_del_init_rcu(&ch->cache_list); 91 set_bit(CACHE_CLEANED, &ch->flags); 92 cd->entries --; 93 } 94 95 static void sunrpc_end_cache_remove_entry(struct cache_head *ch, 96 struct cache_detail *cd) 97 { 98 cache_fresh_unlocked(ch, cd); 99 cache_put(ch, cd); 100 } 101 102 static struct cache_head *sunrpc_cache_add_entry(struct cache_detail *detail, 103 struct cache_head *key, 104 int hash) 105 { 106 struct cache_head *new, *tmp, *freeme = NULL; 107 struct hlist_head *head = &detail->hash_table[hash]; 108 109 new = detail->alloc(); 110 if (!new) 111 return NULL; 112 /* must fully initialise 'new', else 113 * we might get lose if we need to 114 * cache_put it soon. 115 */ 116 cache_init(new, detail); 117 detail->init(new, key); 118 119 spin_lock(&detail->hash_lock); 120 121 /* check if entry appeared while we slept */ 122 hlist_for_each_entry_rcu(tmp, head, cache_list, 123 lockdep_is_held(&detail->hash_lock)) { 124 if (!detail->match(tmp, key)) 125 continue; 126 if (test_bit(CACHE_VALID, &tmp->flags) && 127 cache_is_expired(detail, tmp)) { 128 sunrpc_begin_cache_remove_entry(tmp, detail); 129 trace_cache_entry_expired(detail, tmp); 130 freeme = tmp; 131 break; 132 } 133 cache_get(tmp); 134 spin_unlock(&detail->hash_lock); 135 cache_put(new, detail); 136 return tmp; 137 } 138 139 cache_get(new); 140 hlist_add_head_rcu(&new->cache_list, head); 141 detail->entries++; 142 if (detail->nextcheck > new->expiry_time) 143 detail->nextcheck = new->expiry_time + 1; 144 spin_unlock(&detail->hash_lock); 145 146 if (freeme) 147 sunrpc_end_cache_remove_entry(freeme, detail); 148 return new; 149 } 150 151 struct cache_head *sunrpc_cache_lookup_rcu(struct cache_detail *detail, 152 struct cache_head *key, int hash) 153 { 154 struct cache_head *ret; 155 156 ret = sunrpc_cache_find_rcu(detail, key, hash); 157 if (ret) 158 return ret; 159 /* Didn't find anything, insert an empty entry */ 160 return sunrpc_cache_add_entry(detail, key, hash); 161 } 162 EXPORT_SYMBOL_GPL(sunrpc_cache_lookup_rcu); 163 164 static void cache_dequeue(struct cache_detail *detail, struct cache_head *ch); 165 166 static void cache_fresh_locked(struct cache_head *head, time64_t expiry, 167 struct cache_detail *detail) 168 { 169 time64_t now = seconds_since_boot(); 170 if (now <= detail->flush_time) 171 /* ensure it isn't immediately treated as expired */ 172 now = detail->flush_time + 1; 173 head->expiry_time = expiry; 174 head->last_refresh = now; 175 smp_wmb(); /* paired with smp_rmb() in cache_is_valid() */ 176 set_bit(CACHE_VALID, &head->flags); 177 } 178 179 static void cache_fresh_unlocked(struct cache_head *head, 180 struct cache_detail *detail) 181 { 182 if (test_and_clear_bit(CACHE_PENDING, &head->flags)) { 183 cache_revisit_request(head); 184 cache_dequeue(detail, head); 185 } 186 } 187 188 static void cache_make_negative(struct cache_detail *detail, 189 struct cache_head *h) 190 { 191 set_bit(CACHE_NEGATIVE, &h->flags); 192 trace_cache_entry_make_negative(detail, h); 193 } 194 195 static void cache_entry_update(struct cache_detail *detail, 196 struct cache_head *h, 197 struct cache_head *new) 198 { 199 if (!test_bit(CACHE_NEGATIVE, &new->flags)) { 200 detail->update(h, new); 201 trace_cache_entry_update(detail, h); 202 } else { 203 cache_make_negative(detail, h); 204 } 205 } 206 207 struct cache_head *sunrpc_cache_update(struct cache_detail *detail, 208 struct cache_head *new, struct cache_head *old, int hash) 209 { 210 /* The 'old' entry is to be replaced by 'new'. 211 * If 'old' is not VALID, we update it directly, 212 * otherwise we need to replace it 213 */ 214 struct cache_head *tmp; 215 216 if (!test_bit(CACHE_VALID, &old->flags)) { 217 spin_lock(&detail->hash_lock); 218 if (!test_bit(CACHE_VALID, &old->flags)) { 219 cache_entry_update(detail, old, new); 220 cache_fresh_locked(old, new->expiry_time, detail); 221 spin_unlock(&detail->hash_lock); 222 cache_fresh_unlocked(old, detail); 223 return old; 224 } 225 spin_unlock(&detail->hash_lock); 226 } 227 /* We need to insert a new entry */ 228 tmp = detail->alloc(); 229 if (!tmp) { 230 cache_put(old, detail); 231 return NULL; 232 } 233 cache_init(tmp, detail); 234 detail->init(tmp, old); 235 236 spin_lock(&detail->hash_lock); 237 cache_entry_update(detail, tmp, new); 238 cache_get(tmp); 239 hlist_add_head_rcu(&tmp->cache_list, &detail->hash_table[hash]); 240 detail->entries++; 241 cache_fresh_locked(tmp, new->expiry_time, detail); 242 cache_fresh_locked(old, 0, detail); 243 spin_unlock(&detail->hash_lock); 244 cache_fresh_unlocked(tmp, detail); 245 cache_fresh_unlocked(old, detail); 246 cache_put(old, detail); 247 return tmp; 248 } 249 EXPORT_SYMBOL_GPL(sunrpc_cache_update); 250 251 static inline int cache_is_valid(struct cache_head *h) 252 { 253 if (!test_bit(CACHE_VALID, &h->flags)) 254 return -EAGAIN; 255 else { 256 /* entry is valid */ 257 if (test_bit(CACHE_NEGATIVE, &h->flags)) 258 return -ENOENT; 259 else { 260 /* 261 * In combination with write barrier in 262 * sunrpc_cache_update, ensures that anyone 263 * using the cache entry after this sees the 264 * updated contents: 265 */ 266 smp_rmb(); 267 return 0; 268 } 269 } 270 } 271 272 static int try_to_negate_entry(struct cache_detail *detail, struct cache_head *h) 273 { 274 int rv; 275 276 spin_lock(&detail->hash_lock); 277 rv = cache_is_valid(h); 278 if (rv == -EAGAIN) { 279 cache_make_negative(detail, h); 280 cache_fresh_locked(h, seconds_since_boot()+CACHE_NEW_EXPIRY, 281 detail); 282 rv = -ENOENT; 283 } 284 spin_unlock(&detail->hash_lock); 285 cache_fresh_unlocked(h, detail); 286 return rv; 287 } 288 289 int cache_check_rcu(struct cache_detail *detail, 290 struct cache_head *h, struct cache_req *rqstp) 291 { 292 int rv; 293 time64_t refresh_age, age; 294 295 /* First decide return status as best we can */ 296 rv = cache_is_valid(h); 297 298 /* now see if we want to start an upcall */ 299 refresh_age = (h->expiry_time - h->last_refresh); 300 age = seconds_since_boot() - h->last_refresh; 301 302 if (rqstp == NULL) { 303 if (rv == -EAGAIN) 304 rv = -ENOENT; 305 } else if (rv == -EAGAIN || 306 (h->expiry_time != 0 && age > refresh_age/2)) { 307 dprintk("RPC: Want update, refage=%lld, age=%lld\n", 308 refresh_age, age); 309 switch (detail->cache_upcall(detail, h)) { 310 case -EINVAL: 311 rv = try_to_negate_entry(detail, h); 312 break; 313 case -EAGAIN: 314 cache_fresh_unlocked(h, detail); 315 break; 316 } 317 } 318 319 if (rv == -EAGAIN) { 320 if (!cache_defer_req(rqstp, h)) { 321 /* 322 * Request was not deferred; handle it as best 323 * we can ourselves: 324 */ 325 rv = cache_is_valid(h); 326 if (rv == -EAGAIN) 327 rv = -ETIMEDOUT; 328 } 329 } 330 331 return rv; 332 } 333 EXPORT_SYMBOL_GPL(cache_check_rcu); 334 335 /* 336 * This is the generic cache management routine for all 337 * the authentication caches. 338 * It checks the currency of a cache item and will (later) 339 * initiate an upcall to fill it if needed. 340 * 341 * 342 * Returns 0 if the cache_head can be used, or cache_puts it and returns 343 * -EAGAIN if upcall is pending and request has been queued 344 * -ETIMEDOUT if upcall failed or request could not be queue or 345 * upcall completed but item is still invalid (implying that 346 * the cache item has been replaced with a newer one). 347 * -ENOENT if cache entry was negative 348 */ 349 int cache_check(struct cache_detail *detail, 350 struct cache_head *h, struct cache_req *rqstp) 351 { 352 int rv; 353 354 rv = cache_check_rcu(detail, h, rqstp); 355 if (rv) 356 cache_put(h, detail); 357 return rv; 358 } 359 EXPORT_SYMBOL_GPL(cache_check); 360 361 /* 362 * caches need to be periodically cleaned. 363 * For this we maintain a list of cache_detail and 364 * a current pointer into that list and into the table 365 * for that entry. 366 * 367 * Each time cache_clean is called it finds the next non-empty entry 368 * in the current table and walks the list in that entry 369 * looking for entries that can be removed. 370 * 371 * An entry gets removed if: 372 * - The expiry is before current time 373 * - The last_refresh time is before the flush_time for that cache 374 * 375 * later we might drop old entries with non-NEVER expiry if that table 376 * is getting 'full' for some definition of 'full' 377 * 378 * The question of "how often to scan a table" is an interesting one 379 * and is answered in part by the use of the "nextcheck" field in the 380 * cache_detail. 381 * When a scan of a table begins, the nextcheck field is set to a time 382 * that is well into the future. 383 * While scanning, if an expiry time is found that is earlier than the 384 * current nextcheck time, nextcheck is set to that expiry time. 385 * If the flush_time is ever set to a time earlier than the nextcheck 386 * time, the nextcheck time is then set to that flush_time. 387 * 388 * A table is then only scanned if the current time is at least 389 * the nextcheck time. 390 * 391 */ 392 393 static LIST_HEAD(cache_list); 394 static DEFINE_SPINLOCK(cache_list_lock); 395 static struct cache_detail *current_detail; 396 static int current_index; 397 398 static void do_cache_clean(struct work_struct *work); 399 static struct delayed_work cache_cleaner; 400 401 void sunrpc_init_cache_detail(struct cache_detail *cd) 402 { 403 spin_lock_init(&cd->hash_lock); 404 INIT_LIST_HEAD(&cd->requests); 405 INIT_LIST_HEAD(&cd->readers); 406 spin_lock_init(&cd->queue_lock); 407 init_waitqueue_head(&cd->queue_wait); 408 cd->next_seqno = 1; 409 spin_lock(&cache_list_lock); 410 cd->nextcheck = 0; 411 cd->entries = 0; 412 atomic_set(&cd->writers, 0); 413 cd->last_close = 0; 414 cd->last_warn = -1; 415 list_add(&cd->others, &cache_list); 416 spin_unlock(&cache_list_lock); 417 418 /* start the cleaning process */ 419 queue_delayed_work(system_power_efficient_wq, &cache_cleaner, 0); 420 } 421 EXPORT_SYMBOL_GPL(sunrpc_init_cache_detail); 422 423 void sunrpc_destroy_cache_detail(struct cache_detail *cd) 424 { 425 cache_purge(cd); 426 spin_lock(&cache_list_lock); 427 spin_lock(&cd->hash_lock); 428 if (current_detail == cd) 429 current_detail = NULL; 430 list_del_init(&cd->others); 431 spin_unlock(&cd->hash_lock); 432 spin_unlock(&cache_list_lock); 433 cancel_delayed_work_sync(&cache_cleaner); 434 if (!list_empty(&cache_list)) 435 queue_delayed_work(system_power_efficient_wq, &cache_cleaner, 0); 436 } 437 EXPORT_SYMBOL_GPL(sunrpc_destroy_cache_detail); 438 439 /* clean cache tries to find something to clean 440 * and cleans it. 441 * It returns 1 if it cleaned something, 442 * 0 if it didn't find anything this time 443 * -1 if it fell off the end of the list. 444 */ 445 static int cache_clean(void) 446 { 447 int rv = 0; 448 struct list_head *next; 449 450 spin_lock(&cache_list_lock); 451 452 /* find a suitable table if we don't already have one */ 453 while (current_detail == NULL || 454 current_index >= current_detail->hash_size) { 455 if (current_detail) 456 next = current_detail->others.next; 457 else 458 next = cache_list.next; 459 if (next == &cache_list) { 460 current_detail = NULL; 461 spin_unlock(&cache_list_lock); 462 return -1; 463 } 464 current_detail = list_entry(next, struct cache_detail, others); 465 if (current_detail->nextcheck > seconds_since_boot()) 466 current_index = current_detail->hash_size; 467 else { 468 current_index = 0; 469 current_detail->nextcheck = seconds_since_boot()+30*60; 470 } 471 } 472 473 spin_lock(¤t_detail->hash_lock); 474 475 /* find a non-empty bucket in the table */ 476 while (current_index < current_detail->hash_size && 477 hlist_empty(¤t_detail->hash_table[current_index])) 478 current_index++; 479 480 /* find a cleanable entry in the bucket and clean it, or set to next bucket */ 481 if (current_index < current_detail->hash_size) { 482 struct cache_head *ch = NULL; 483 struct cache_detail *d; 484 struct hlist_head *head; 485 struct hlist_node *tmp; 486 487 /* Ok, now to clean this strand */ 488 head = ¤t_detail->hash_table[current_index]; 489 hlist_for_each_entry_safe(ch, tmp, head, cache_list) { 490 if (current_detail->nextcheck > ch->expiry_time) 491 current_detail->nextcheck = ch->expiry_time+1; 492 if (!cache_is_expired(current_detail, ch)) 493 continue; 494 495 sunrpc_begin_cache_remove_entry(ch, current_detail); 496 trace_cache_entry_expired(current_detail, ch); 497 rv = 1; 498 break; 499 } 500 501 spin_unlock(¤t_detail->hash_lock); 502 d = current_detail; 503 if (!ch) 504 current_index ++; 505 spin_unlock(&cache_list_lock); 506 if (ch) 507 sunrpc_end_cache_remove_entry(ch, d); 508 } else { 509 spin_unlock(¤t_detail->hash_lock); 510 spin_unlock(&cache_list_lock); 511 } 512 513 return rv; 514 } 515 516 /* 517 * We want to regularly clean the cache, so we need to schedule some work ... 518 */ 519 static void do_cache_clean(struct work_struct *work) 520 { 521 int delay; 522 523 if (list_empty(&cache_list)) 524 return; 525 526 if (cache_clean() == -1) 527 delay = round_jiffies_relative(30*HZ); 528 else 529 delay = 5; 530 531 queue_delayed_work(system_power_efficient_wq, &cache_cleaner, delay); 532 } 533 534 535 /* 536 * Clean all caches promptly. This just calls cache_clean 537 * repeatedly until we are sure that every cache has had a chance to 538 * be fully cleaned 539 */ 540 void cache_flush(void) 541 { 542 while (cache_clean() != -1) 543 cond_resched(); 544 while (cache_clean() != -1) 545 cond_resched(); 546 } 547 EXPORT_SYMBOL_GPL(cache_flush); 548 549 void cache_purge(struct cache_detail *detail) 550 { 551 struct cache_head *ch = NULL; 552 struct hlist_head *head = NULL; 553 int i = 0; 554 555 spin_lock(&detail->hash_lock); 556 if (!detail->entries) { 557 spin_unlock(&detail->hash_lock); 558 return; 559 } 560 561 dprintk("RPC: %d entries in %s cache\n", detail->entries, detail->name); 562 for (i = 0; i < detail->hash_size; i++) { 563 head = &detail->hash_table[i]; 564 while (!hlist_empty(head)) { 565 ch = hlist_entry(head->first, struct cache_head, 566 cache_list); 567 sunrpc_begin_cache_remove_entry(ch, detail); 568 spin_unlock(&detail->hash_lock); 569 sunrpc_end_cache_remove_entry(ch, detail); 570 spin_lock(&detail->hash_lock); 571 } 572 } 573 spin_unlock(&detail->hash_lock); 574 } 575 EXPORT_SYMBOL_GPL(cache_purge); 576 577 578 /* 579 * Deferral and Revisiting of Requests. 580 * 581 * If a cache lookup finds a pending entry, we 582 * need to defer the request and revisit it later. 583 * All deferred requests are stored in a hash table, 584 * indexed by "struct cache_head *". 585 * As it may be wasteful to store a whole request 586 * structure, we allow the request to provide a 587 * deferred form, which must contain a 588 * 'struct cache_deferred_req' 589 * This cache_deferred_req contains a method to allow 590 * it to be revisited when cache info is available 591 */ 592 593 #define DFR_HASHSIZE (PAGE_SIZE/sizeof(struct list_head)) 594 #define DFR_HASH(item) ((((long)item)>>4 ^ (((long)item)>>13)) % DFR_HASHSIZE) 595 596 #define DFR_MAX 300 /* ??? */ 597 598 static DEFINE_SPINLOCK(cache_defer_lock); 599 static LIST_HEAD(cache_defer_list); 600 static struct hlist_head cache_defer_hash[DFR_HASHSIZE]; 601 static int cache_defer_cnt; 602 603 static void __unhash_deferred_req(struct cache_deferred_req *dreq) 604 { 605 hlist_del_init(&dreq->hash); 606 if (!list_empty(&dreq->recent)) { 607 list_del_init(&dreq->recent); 608 cache_defer_cnt--; 609 } 610 } 611 612 static void __hash_deferred_req(struct cache_deferred_req *dreq, struct cache_head *item) 613 { 614 int hash = DFR_HASH(item); 615 616 INIT_LIST_HEAD(&dreq->recent); 617 hlist_add_head(&dreq->hash, &cache_defer_hash[hash]); 618 } 619 620 static void setup_deferral(struct cache_deferred_req *dreq, 621 struct cache_head *item, 622 int count_me) 623 { 624 625 dreq->item = item; 626 627 spin_lock(&cache_defer_lock); 628 629 __hash_deferred_req(dreq, item); 630 631 if (count_me) { 632 cache_defer_cnt++; 633 list_add(&dreq->recent, &cache_defer_list); 634 } 635 636 spin_unlock(&cache_defer_lock); 637 638 } 639 640 struct thread_deferred_req { 641 struct cache_deferred_req handle; 642 struct completion completion; 643 }; 644 645 static void cache_restart_thread(struct cache_deferred_req *dreq, int too_many) 646 { 647 struct thread_deferred_req *dr = 648 container_of(dreq, struct thread_deferred_req, handle); 649 complete(&dr->completion); 650 } 651 652 static void cache_wait_req(struct cache_req *req, struct cache_head *item) 653 { 654 struct thread_deferred_req sleeper; 655 struct cache_deferred_req *dreq = &sleeper.handle; 656 657 sleeper.completion = COMPLETION_INITIALIZER_ONSTACK(sleeper.completion); 658 dreq->revisit = cache_restart_thread; 659 660 setup_deferral(dreq, item, 0); 661 662 if (!test_bit(CACHE_PENDING, &item->flags) || 663 wait_for_completion_interruptible_timeout( 664 &sleeper.completion, req->thread_wait) <= 0) { 665 /* The completion wasn't completed, so we need 666 * to clean up 667 */ 668 spin_lock(&cache_defer_lock); 669 if (!hlist_unhashed(&sleeper.handle.hash)) { 670 __unhash_deferred_req(&sleeper.handle); 671 spin_unlock(&cache_defer_lock); 672 } else { 673 /* cache_revisit_request already removed 674 * this from the hash table, but hasn't 675 * called ->revisit yet. It will very soon 676 * and we need to wait for it. 677 */ 678 spin_unlock(&cache_defer_lock); 679 wait_for_completion(&sleeper.completion); 680 } 681 } 682 } 683 684 static void cache_limit_defers(void) 685 { 686 /* Make sure we haven't exceed the limit of allowed deferred 687 * requests. 688 */ 689 struct cache_deferred_req *discard = NULL; 690 691 if (cache_defer_cnt <= DFR_MAX) 692 return; 693 694 spin_lock(&cache_defer_lock); 695 696 /* Consider removing either the first or the last */ 697 if (cache_defer_cnt > DFR_MAX) { 698 if (get_random_u32_below(2)) 699 discard = list_entry(cache_defer_list.next, 700 struct cache_deferred_req, recent); 701 else 702 discard = list_entry(cache_defer_list.prev, 703 struct cache_deferred_req, recent); 704 __unhash_deferred_req(discard); 705 } 706 spin_unlock(&cache_defer_lock); 707 if (discard) 708 discard->revisit(discard, 1); 709 } 710 711 #if IS_ENABLED(CONFIG_FAIL_SUNRPC) 712 static inline bool cache_defer_immediately(void) 713 { 714 return !fail_sunrpc.ignore_cache_wait && 715 should_fail(&fail_sunrpc.attr, 1); 716 } 717 #else 718 static inline bool cache_defer_immediately(void) 719 { 720 return false; 721 } 722 #endif 723 724 /* Return true if and only if a deferred request is queued. */ 725 static bool cache_defer_req(struct cache_req *req, struct cache_head *item) 726 { 727 struct cache_deferred_req *dreq; 728 729 if (!cache_defer_immediately()) { 730 cache_wait_req(req, item); 731 if (!test_bit(CACHE_PENDING, &item->flags)) 732 return false; 733 } 734 735 dreq = req->defer(req); 736 if (dreq == NULL) 737 return false; 738 setup_deferral(dreq, item, 1); 739 if (!test_bit(CACHE_PENDING, &item->flags)) 740 /* Bit could have been cleared before we managed to 741 * set up the deferral, so need to revisit just in case 742 */ 743 cache_revisit_request(item); 744 745 cache_limit_defers(); 746 return true; 747 } 748 749 static void cache_revisit_request(struct cache_head *item) 750 { 751 struct cache_deferred_req *dreq; 752 struct hlist_node *tmp; 753 int hash = DFR_HASH(item); 754 LIST_HEAD(pending); 755 756 spin_lock(&cache_defer_lock); 757 758 hlist_for_each_entry_safe(dreq, tmp, &cache_defer_hash[hash], hash) 759 if (dreq->item == item) { 760 __unhash_deferred_req(dreq); 761 list_add(&dreq->recent, &pending); 762 } 763 764 spin_unlock(&cache_defer_lock); 765 766 while (!list_empty(&pending)) { 767 dreq = list_entry(pending.next, struct cache_deferred_req, recent); 768 list_del_init(&dreq->recent); 769 dreq->revisit(dreq, 0); 770 } 771 } 772 773 void cache_clean_deferred(void *owner) 774 { 775 struct cache_deferred_req *dreq, *tmp; 776 LIST_HEAD(pending); 777 778 spin_lock(&cache_defer_lock); 779 780 list_for_each_entry_safe(dreq, tmp, &cache_defer_list, recent) { 781 if (dreq->owner == owner) { 782 __unhash_deferred_req(dreq); 783 list_add(&dreq->recent, &pending); 784 } 785 } 786 spin_unlock(&cache_defer_lock); 787 788 while (!list_empty(&pending)) { 789 dreq = list_entry(pending.next, struct cache_deferred_req, recent); 790 list_del_init(&dreq->recent); 791 dreq->revisit(dreq, 1); 792 } 793 } 794 795 /* 796 * communicate with user-space 797 * 798 * We have a magic /proc file - /proc/net/rpc/<cachename>/channel. 799 * On read, you get a full request, or block. 800 * On write, an update request is processed. 801 * Poll works if anything to read, and always allows write. 802 */ 803 804 struct cache_request { 805 struct list_head list; 806 struct cache_head *item; 807 char *buf; 808 int len; 809 int readers; 810 u64 seqno; 811 }; 812 struct cache_reader { 813 struct list_head list; 814 int offset; /* if non-0, we have a refcnt on next request */ 815 u64 next_seqno; 816 }; 817 818 static int cache_request(struct cache_detail *detail, 819 struct cache_request *crq) 820 { 821 char *bp = crq->buf; 822 int len = PAGE_SIZE; 823 824 detail->cache_request(detail, crq->item, &bp, &len); 825 if (len < 0) 826 return -E2BIG; 827 return PAGE_SIZE - len; 828 } 829 830 static struct cache_request * 831 cache_next_request(struct cache_detail *cd, u64 seqno) 832 { 833 struct cache_request *rq; 834 835 list_for_each_entry(rq, &cd->requests, list) 836 if (rq->seqno >= seqno) 837 return rq; 838 return NULL; 839 } 840 841 static ssize_t cache_read(struct file *filp, char __user *buf, size_t count, 842 loff_t *ppos, struct cache_detail *cd) 843 { 844 struct cache_reader *rp = filp->private_data; 845 struct cache_request *rq; 846 struct inode *inode = file_inode(filp); 847 int err; 848 849 if (count == 0) 850 return 0; 851 852 inode_lock(inode); /* protect against multiple concurrent 853 * readers on this file */ 854 again: 855 spin_lock(&cd->queue_lock); 856 /* need to find next request */ 857 rq = cache_next_request(cd, rp->next_seqno); 858 if (!rq) { 859 spin_unlock(&cd->queue_lock); 860 inode_unlock(inode); 861 WARN_ON_ONCE(rp->offset); 862 return 0; 863 } 864 if (rp->offset == 0) 865 rq->readers++; 866 spin_unlock(&cd->queue_lock); 867 868 if (rq->len == 0) { 869 err = cache_request(cd, rq); 870 if (err < 0) 871 goto out; 872 rq->len = err; 873 } 874 875 if (rp->offset == 0 && !test_bit(CACHE_PENDING, &rq->item->flags)) { 876 err = -EAGAIN; 877 rp->next_seqno = rq->seqno + 1; 878 } else { 879 if (rp->offset + count > rq->len) 880 count = rq->len - rp->offset; 881 err = -EFAULT; 882 if (copy_to_user(buf, rq->buf + rp->offset, count)) 883 goto out; 884 rp->offset += count; 885 if (rp->offset >= rq->len) { 886 rp->offset = 0; 887 rp->next_seqno = rq->seqno + 1; 888 } 889 err = 0; 890 } 891 out: 892 if (rp->offset == 0) { 893 /* need to release rq */ 894 spin_lock(&cd->queue_lock); 895 rq->readers--; 896 if (rq->readers == 0 && 897 !test_bit(CACHE_PENDING, &rq->item->flags)) { 898 list_del(&rq->list); 899 spin_unlock(&cd->queue_lock); 900 cache_put(rq->item, cd); 901 kfree(rq->buf); 902 kfree(rq); 903 } else 904 spin_unlock(&cd->queue_lock); 905 } 906 if (err == -EAGAIN) 907 goto again; 908 inode_unlock(inode); 909 return err ? err : count; 910 } 911 912 static ssize_t cache_do_downcall(char *kaddr, const char __user *buf, 913 size_t count, struct cache_detail *cd) 914 { 915 ssize_t ret; 916 917 if (count == 0) 918 return -EINVAL; 919 if (copy_from_user(kaddr, buf, count)) 920 return -EFAULT; 921 kaddr[count] = '\0'; 922 ret = cd->cache_parse(cd, kaddr, count); 923 if (!ret) 924 ret = count; 925 return ret; 926 } 927 928 static ssize_t cache_downcall(struct address_space *mapping, 929 const char __user *buf, 930 size_t count, struct cache_detail *cd) 931 { 932 char *write_buf; 933 ssize_t ret = -ENOMEM; 934 935 if (count >= 32768) { /* 32k is max userland buffer, lets check anyway */ 936 ret = -EINVAL; 937 goto out; 938 } 939 940 write_buf = kvmalloc(count + 1, GFP_KERNEL); 941 if (!write_buf) 942 goto out; 943 944 ret = cache_do_downcall(write_buf, buf, count, cd); 945 kvfree(write_buf); 946 out: 947 return ret; 948 } 949 950 static ssize_t cache_write(struct file *filp, const char __user *buf, 951 size_t count, loff_t *ppos, 952 struct cache_detail *cd) 953 { 954 struct address_space *mapping = filp->f_mapping; 955 struct inode *inode = file_inode(filp); 956 ssize_t ret = -EINVAL; 957 958 if (!cd->cache_parse) 959 goto out; 960 961 inode_lock(inode); 962 ret = cache_downcall(mapping, buf, count, cd); 963 inode_unlock(inode); 964 out: 965 return ret; 966 } 967 968 static __poll_t cache_poll(struct file *filp, poll_table *wait, 969 struct cache_detail *cd) 970 { 971 __poll_t mask; 972 struct cache_reader *rp = filp->private_data; 973 974 poll_wait(filp, &cd->queue_wait, wait); 975 976 /* alway allow write */ 977 mask = EPOLLOUT | EPOLLWRNORM; 978 979 if (!rp) 980 return mask; 981 982 spin_lock(&cd->queue_lock); 983 984 if (cache_next_request(cd, rp->next_seqno)) 985 mask |= EPOLLIN | EPOLLRDNORM; 986 spin_unlock(&cd->queue_lock); 987 return mask; 988 } 989 990 static int cache_ioctl(struct inode *ino, struct file *filp, 991 unsigned int cmd, unsigned long arg, 992 struct cache_detail *cd) 993 { 994 int len = 0; 995 struct cache_reader *rp = filp->private_data; 996 struct cache_request *rq; 997 998 if (cmd != FIONREAD || !rp) 999 return -EINVAL; 1000 1001 spin_lock(&cd->queue_lock); 1002 1003 /* only find the length remaining in current request, 1004 * or the length of the next request 1005 */ 1006 rq = cache_next_request(cd, rp->next_seqno); 1007 if (rq) 1008 len = rq->len - rp->offset; 1009 spin_unlock(&cd->queue_lock); 1010 1011 return put_user(len, (int __user *)arg); 1012 } 1013 1014 static int cache_open(struct inode *inode, struct file *filp, 1015 struct cache_detail *cd) 1016 { 1017 struct cache_reader *rp = NULL; 1018 1019 if (!cd || !try_module_get(cd->owner)) 1020 return -EACCES; 1021 nonseekable_open(inode, filp); 1022 if (filp->f_mode & FMODE_READ) { 1023 rp = kmalloc_obj(*rp); 1024 if (!rp) { 1025 module_put(cd->owner); 1026 return -ENOMEM; 1027 } 1028 rp->offset = 0; 1029 rp->next_seqno = 0; 1030 1031 spin_lock(&cd->queue_lock); 1032 list_add(&rp->list, &cd->readers); 1033 spin_unlock(&cd->queue_lock); 1034 } 1035 if (filp->f_mode & FMODE_WRITE) 1036 atomic_inc(&cd->writers); 1037 filp->private_data = rp; 1038 return 0; 1039 } 1040 1041 static int cache_release(struct inode *inode, struct file *filp, 1042 struct cache_detail *cd) 1043 { 1044 struct cache_reader *rp = filp->private_data; 1045 1046 if (rp) { 1047 struct cache_request *rq = NULL; 1048 1049 spin_lock(&cd->queue_lock); 1050 if (rp->offset) { 1051 struct cache_request *cr; 1052 1053 cr = cache_next_request(cd, rp->next_seqno); 1054 if (cr) { 1055 cr->readers--; 1056 if (cr->readers == 0 && 1057 !test_bit(CACHE_PENDING, 1058 &cr->item->flags)) { 1059 list_del(&cr->list); 1060 rq = cr; 1061 } 1062 } 1063 rp->offset = 0; 1064 } 1065 list_del(&rp->list); 1066 spin_unlock(&cd->queue_lock); 1067 1068 if (rq) { 1069 cache_put(rq->item, cd); 1070 kfree(rq->buf); 1071 kfree(rq); 1072 } 1073 1074 filp->private_data = NULL; 1075 kfree(rp); 1076 } 1077 if (filp->f_mode & FMODE_WRITE) { 1078 atomic_dec(&cd->writers); 1079 cd->last_close = seconds_since_boot(); 1080 } 1081 module_put(cd->owner); 1082 return 0; 1083 } 1084 1085 1086 1087 static void cache_dequeue(struct cache_detail *detail, struct cache_head *ch) 1088 { 1089 struct cache_request *cr, *tmp; 1090 LIST_HEAD(dequeued); 1091 1092 spin_lock(&detail->queue_lock); 1093 list_for_each_entry_safe(cr, tmp, &detail->requests, list) { 1094 if (cr->item != ch) 1095 continue; 1096 if (test_bit(CACHE_PENDING, &ch->flags)) 1097 /* Lost a race and it is pending again */ 1098 break; 1099 if (cr->readers != 0) 1100 continue; 1101 list_move(&cr->list, &dequeued); 1102 } 1103 spin_unlock(&detail->queue_lock); 1104 while (!list_empty(&dequeued)) { 1105 cr = list_entry(dequeued.next, struct cache_request, list); 1106 list_del(&cr->list); 1107 cache_put(cr->item, detail); 1108 kfree(cr->buf); 1109 kfree(cr); 1110 } 1111 } 1112 1113 /* 1114 * Support routines for text-based upcalls. 1115 * Fields are separated by spaces. 1116 * Fields are either mangled to quote space tab newline slosh with slosh 1117 * or a hexified with a leading \x 1118 * Record is terminated with newline. 1119 * 1120 */ 1121 1122 void qword_add(char **bpp, int *lp, char *str) 1123 { 1124 char *bp = *bpp; 1125 int len = *lp; 1126 int ret; 1127 1128 if (len < 0) return; 1129 1130 ret = string_escape_str(str, bp, len, ESCAPE_OCTAL, "\\ \n\t"); 1131 if (ret >= len) { 1132 bp += len; 1133 len = -1; 1134 } else { 1135 bp += ret; 1136 len -= ret; 1137 *bp++ = ' '; 1138 len--; 1139 } 1140 *bpp = bp; 1141 *lp = len; 1142 } 1143 EXPORT_SYMBOL_GPL(qword_add); 1144 1145 void qword_addhex(char **bpp, int *lp, char *buf, int blen) 1146 { 1147 char *bp = *bpp; 1148 int len = *lp; 1149 1150 if (len < 0) return; 1151 1152 if (len > 2) { 1153 *bp++ = '\\'; 1154 *bp++ = 'x'; 1155 len -= 2; 1156 while (blen && len >= 2) { 1157 bp = hex_byte_pack(bp, *buf++); 1158 len -= 2; 1159 blen--; 1160 } 1161 } 1162 if (blen || len<1) len = -1; 1163 else { 1164 *bp++ = ' '; 1165 len--; 1166 } 1167 *bpp = bp; 1168 *lp = len; 1169 } 1170 EXPORT_SYMBOL_GPL(qword_addhex); 1171 1172 static void warn_no_listener(struct cache_detail *detail) 1173 { 1174 if (detail->last_warn != detail->last_close) { 1175 detail->last_warn = detail->last_close; 1176 if (detail->warn_no_listener) 1177 detail->warn_no_listener(detail, detail->last_close != 0); 1178 } 1179 } 1180 1181 static bool cache_listeners_exist(struct cache_detail *detail) 1182 { 1183 if (atomic_read(&detail->writers)) 1184 return true; 1185 if (detail->last_close == 0) 1186 /* This cache was never opened */ 1187 return false; 1188 if (detail->last_close < seconds_since_boot() - 30) 1189 /* 1190 * We allow for the possibility that someone might 1191 * restart a userspace daemon without restarting the 1192 * server; but after 30 seconds, we give up. 1193 */ 1194 return false; 1195 return true; 1196 } 1197 1198 /* 1199 * register an upcall request to user-space and queue it up to be fetched by 1200 * the upcall daemon. 1201 * 1202 * Each request is at most one page long. 1203 */ 1204 static int cache_do_upcall(struct cache_detail *detail, struct cache_head *h) 1205 { 1206 char *buf; 1207 struct cache_request *crq; 1208 int ret = 0; 1209 1210 if (test_bit(CACHE_CLEANED, &h->flags)) 1211 /* Too late to make an upcall */ 1212 return -EAGAIN; 1213 1214 buf = kmalloc(PAGE_SIZE, GFP_KERNEL); 1215 if (!buf) 1216 return -EAGAIN; 1217 1218 crq = kmalloc_obj(*crq); 1219 if (!crq) { 1220 kfree(buf); 1221 return -EAGAIN; 1222 } 1223 1224 crq->buf = buf; 1225 crq->len = 0; 1226 crq->readers = 0; 1227 spin_lock(&detail->queue_lock); 1228 if (test_bit(CACHE_PENDING, &h->flags)) { 1229 crq->item = cache_get(h); 1230 crq->seqno = detail->next_seqno++; 1231 list_add_tail(&crq->list, &detail->requests); 1232 trace_cache_entry_upcall(detail, h); 1233 } else 1234 /* Lost a race, no longer PENDING, so don't enqueue */ 1235 ret = -EAGAIN; 1236 spin_unlock(&detail->queue_lock); 1237 if (ret != -EAGAIN && detail->cache_notify) 1238 detail->cache_notify(detail, h); 1239 wake_up(&detail->queue_wait); 1240 if (ret == -EAGAIN) { 1241 kfree(buf); 1242 kfree(crq); 1243 } 1244 return ret; 1245 } 1246 1247 int sunrpc_cache_upcall(struct cache_detail *detail, struct cache_head *h) 1248 { 1249 if (test_and_set_bit(CACHE_PENDING, &h->flags)) 1250 return 0; 1251 return cache_do_upcall(detail, h); 1252 } 1253 EXPORT_SYMBOL_GPL(sunrpc_cache_upcall); 1254 1255 int sunrpc_cache_upcall_warn(struct cache_detail *detail, 1256 struct cache_head *h) 1257 { 1258 if (!cache_listeners_exist(detail)) { 1259 warn_no_listener(detail); 1260 trace_cache_entry_no_listener(detail, h); 1261 return -EINVAL; 1262 } 1263 return sunrpc_cache_upcall(detail, h); 1264 } 1265 EXPORT_SYMBOL_GPL(sunrpc_cache_upcall_warn); 1266 1267 /* 1268 * parse a message from user-space and pass it 1269 * to an appropriate cache 1270 * Messages are, like requests, separated into fields by 1271 * spaces and dequotes as \xHEXSTRING or embedded \nnn octal 1272 * 1273 * Message is 1274 * reply cachename expiry key ... content.... 1275 * 1276 * key and content are both parsed by cache 1277 */ 1278 1279 int qword_get(char **bpp, char *dest, int bufsize) 1280 { 1281 /* return bytes copied, or -1 on error */ 1282 char *bp = *bpp; 1283 int len = 0; 1284 1285 while (*bp == ' ') bp++; 1286 1287 if (bp[0] == '\\' && bp[1] == 'x') { 1288 /* HEX STRING */ 1289 bp += 2; 1290 while (len < bufsize - 1) { 1291 int h, l; 1292 1293 h = hex_to_bin(bp[0]); 1294 if (h < 0) 1295 break; 1296 1297 l = hex_to_bin(bp[1]); 1298 if (l < 0) 1299 break; 1300 1301 *dest++ = (h << 4) | l; 1302 bp += 2; 1303 len++; 1304 } 1305 } else { 1306 /* text with \nnn octal quoting */ 1307 while (*bp != ' ' && *bp != '\n' && *bp && len < bufsize-1) { 1308 if (*bp == '\\' && 1309 isodigit(bp[1]) && (bp[1] <= '3') && 1310 isodigit(bp[2]) && 1311 isodigit(bp[3])) { 1312 int byte = (*++bp -'0'); 1313 bp++; 1314 byte = (byte << 3) | (*bp++ - '0'); 1315 byte = (byte << 3) | (*bp++ - '0'); 1316 *dest++ = byte; 1317 len++; 1318 } else { 1319 *dest++ = *bp++; 1320 len++; 1321 } 1322 } 1323 } 1324 1325 if (*bp != ' ' && *bp != '\n' && *bp != '\0') 1326 return -1; 1327 while (*bp == ' ') bp++; 1328 *bpp = bp; 1329 *dest = '\0'; 1330 return len; 1331 } 1332 EXPORT_SYMBOL_GPL(qword_get); 1333 1334 1335 /* 1336 * support /proc/net/rpc/$CACHENAME/content 1337 * as a seqfile. 1338 * We call ->cache_show passing NULL for the item to 1339 * get a header, then pass each real item in the cache 1340 */ 1341 1342 static void *__cache_seq_start(struct seq_file *m, loff_t *pos) 1343 { 1344 loff_t n = *pos; 1345 unsigned int hash, entry; 1346 struct cache_head *ch; 1347 struct cache_detail *cd = m->private; 1348 1349 if (!n--) 1350 return SEQ_START_TOKEN; 1351 hash = n >> 32; 1352 entry = n & ((1LL<<32) - 1); 1353 1354 if (hash >= cd->hash_size) 1355 return NULL; 1356 1357 hlist_for_each_entry_rcu(ch, &cd->hash_table[hash], cache_list) 1358 if (!entry--) 1359 return ch; 1360 ch = NULL; 1361 while (!ch && ++hash < cd->hash_size) 1362 ch = hlist_entry_safe(rcu_dereference( 1363 hlist_first_rcu(&cd->hash_table[hash])), 1364 struct cache_head, cache_list); 1365 1366 *pos = ((long long)hash << 32) + 1; 1367 return ch; 1368 } 1369 1370 static void *cache_seq_next(struct seq_file *m, void *p, loff_t *pos) 1371 { 1372 struct cache_head *ch = p; 1373 int hash = (*pos >> 32); 1374 struct cache_detail *cd = m->private; 1375 1376 if (p == SEQ_START_TOKEN) { 1377 hash = 0; 1378 ch = NULL; 1379 } 1380 while (hash < cd->hash_size) { 1381 if (ch) 1382 ch = hlist_entry_safe( 1383 rcu_dereference( 1384 hlist_next_rcu(&ch->cache_list)), 1385 struct cache_head, cache_list); 1386 else 1387 ch = hlist_entry_safe( 1388 rcu_dereference( 1389 hlist_first_rcu(&cd->hash_table[hash])), 1390 struct cache_head, cache_list); 1391 if (ch) { 1392 ++*pos; 1393 return ch; 1394 } 1395 hash++; 1396 *pos = (long long)hash << 32; 1397 } 1398 return NULL; 1399 } 1400 1401 void *cache_seq_start_rcu(struct seq_file *m, loff_t *pos) 1402 __acquires(RCU) 1403 { 1404 rcu_read_lock(); 1405 return __cache_seq_start(m, pos); 1406 } 1407 EXPORT_SYMBOL_GPL(cache_seq_start_rcu); 1408 1409 void *cache_seq_next_rcu(struct seq_file *file, void *p, loff_t *pos) 1410 { 1411 return cache_seq_next(file, p, pos); 1412 } 1413 EXPORT_SYMBOL_GPL(cache_seq_next_rcu); 1414 1415 void cache_seq_stop_rcu(struct seq_file *m, void *p) 1416 __releases(RCU) 1417 { 1418 rcu_read_unlock(); 1419 } 1420 EXPORT_SYMBOL_GPL(cache_seq_stop_rcu); 1421 1422 static int c_show(struct seq_file *m, void *p) 1423 { 1424 struct cache_head *cp = p; 1425 struct cache_detail *cd = m->private; 1426 1427 if (p == SEQ_START_TOKEN) 1428 return cd->cache_show(m, cd, NULL); 1429 1430 ifdebug(CACHE) 1431 seq_printf(m, "# expiry=%lld refcnt=%d flags=%lx\n", 1432 convert_to_wallclock(cp->expiry_time), 1433 kref_read(&cp->ref), cp->flags); 1434 1435 if (cache_check_rcu(cd, cp, NULL)) 1436 seq_puts(m, "# "); 1437 else if (cache_is_expired(cd, cp)) 1438 seq_puts(m, "# "); 1439 1440 return cd->cache_show(m, cd, cp); 1441 } 1442 1443 static const struct seq_operations cache_content_op = { 1444 .start = cache_seq_start_rcu, 1445 .next = cache_seq_next_rcu, 1446 .stop = cache_seq_stop_rcu, 1447 .show = c_show, 1448 }; 1449 1450 static int content_open(struct inode *inode, struct file *file, 1451 struct cache_detail *cd) 1452 { 1453 struct seq_file *seq; 1454 int err; 1455 1456 if (!cd || !try_module_get(cd->owner)) 1457 return -EACCES; 1458 1459 err = seq_open(file, &cache_content_op); 1460 if (err) { 1461 module_put(cd->owner); 1462 return err; 1463 } 1464 1465 seq = file->private_data; 1466 seq->private = cd; 1467 return 0; 1468 } 1469 1470 static int content_release(struct inode *inode, struct file *file, 1471 struct cache_detail *cd) 1472 { 1473 int ret = seq_release(inode, file); 1474 module_put(cd->owner); 1475 return ret; 1476 } 1477 1478 static int open_flush(struct inode *inode, struct file *file, 1479 struct cache_detail *cd) 1480 { 1481 if (!cd || !try_module_get(cd->owner)) 1482 return -EACCES; 1483 return nonseekable_open(inode, file); 1484 } 1485 1486 static int release_flush(struct inode *inode, struct file *file, 1487 struct cache_detail *cd) 1488 { 1489 module_put(cd->owner); 1490 return 0; 1491 } 1492 1493 static ssize_t read_flush(struct file *file, char __user *buf, 1494 size_t count, loff_t *ppos, 1495 struct cache_detail *cd) 1496 { 1497 char tbuf[22]; 1498 size_t len; 1499 1500 len = snprintf(tbuf, sizeof(tbuf), "%llu\n", 1501 convert_to_wallclock(cd->flush_time)); 1502 return simple_read_from_buffer(buf, count, ppos, tbuf, len); 1503 } 1504 1505 static ssize_t write_flush(struct file *file, const char __user *buf, 1506 size_t count, loff_t *ppos, 1507 struct cache_detail *cd) 1508 { 1509 char tbuf[20]; 1510 char *ep; 1511 time64_t now; 1512 1513 if (*ppos || count > sizeof(tbuf)-1) 1514 return -EINVAL; 1515 if (copy_from_user(tbuf, buf, count)) 1516 return -EFAULT; 1517 tbuf[count] = 0; 1518 simple_strtoul(tbuf, &ep, 0); 1519 if (*ep && *ep != '\n') 1520 return -EINVAL; 1521 /* Note that while we check that 'buf' holds a valid number, 1522 * we always ignore the value and just flush everything. 1523 * Making use of the number leads to races. 1524 */ 1525 1526 now = seconds_since_boot(); 1527 /* Always flush everything, so behave like cache_purge() 1528 * Do this by advancing flush_time to the current time, 1529 * or by one second if it has already reached the current time. 1530 * Newly added cache entries will always have ->last_refresh greater 1531 * that ->flush_time, so they don't get flushed prematurely. 1532 */ 1533 1534 if (cd->flush_time >= now) 1535 now = cd->flush_time + 1; 1536 1537 cd->flush_time = now; 1538 cd->nextcheck = now; 1539 cache_flush(); 1540 1541 if (cd->flush) 1542 cd->flush(); 1543 1544 *ppos += count; 1545 return count; 1546 } 1547 1548 static ssize_t cache_read_procfs(struct file *filp, char __user *buf, 1549 size_t count, loff_t *ppos) 1550 { 1551 struct cache_detail *cd = pde_data(file_inode(filp)); 1552 1553 return cache_read(filp, buf, count, ppos, cd); 1554 } 1555 1556 static ssize_t cache_write_procfs(struct file *filp, const char __user *buf, 1557 size_t count, loff_t *ppos) 1558 { 1559 struct cache_detail *cd = pde_data(file_inode(filp)); 1560 1561 return cache_write(filp, buf, count, ppos, cd); 1562 } 1563 1564 static __poll_t cache_poll_procfs(struct file *filp, poll_table *wait) 1565 { 1566 struct cache_detail *cd = pde_data(file_inode(filp)); 1567 1568 return cache_poll(filp, wait, cd); 1569 } 1570 1571 static long cache_ioctl_procfs(struct file *filp, 1572 unsigned int cmd, unsigned long arg) 1573 { 1574 struct inode *inode = file_inode(filp); 1575 struct cache_detail *cd = pde_data(inode); 1576 1577 return cache_ioctl(inode, filp, cmd, arg, cd); 1578 } 1579 1580 static int cache_open_procfs(struct inode *inode, struct file *filp) 1581 { 1582 struct cache_detail *cd = pde_data(inode); 1583 1584 return cache_open(inode, filp, cd); 1585 } 1586 1587 static int cache_release_procfs(struct inode *inode, struct file *filp) 1588 { 1589 struct cache_detail *cd = pde_data(inode); 1590 1591 return cache_release(inode, filp, cd); 1592 } 1593 1594 static const struct proc_ops cache_channel_proc_ops = { 1595 .proc_read = cache_read_procfs, 1596 .proc_write = cache_write_procfs, 1597 .proc_poll = cache_poll_procfs, 1598 .proc_ioctl = cache_ioctl_procfs, /* for FIONREAD */ 1599 .proc_open = cache_open_procfs, 1600 .proc_release = cache_release_procfs, 1601 }; 1602 1603 static int content_open_procfs(struct inode *inode, struct file *filp) 1604 { 1605 struct cache_detail *cd = pde_data(inode); 1606 1607 return content_open(inode, filp, cd); 1608 } 1609 1610 static int content_release_procfs(struct inode *inode, struct file *filp) 1611 { 1612 struct cache_detail *cd = pde_data(inode); 1613 1614 return content_release(inode, filp, cd); 1615 } 1616 1617 static const struct proc_ops content_proc_ops = { 1618 .proc_open = content_open_procfs, 1619 .proc_read = seq_read, 1620 .proc_lseek = seq_lseek, 1621 .proc_release = content_release_procfs, 1622 }; 1623 1624 static int open_flush_procfs(struct inode *inode, struct file *filp) 1625 { 1626 struct cache_detail *cd = pde_data(inode); 1627 1628 return open_flush(inode, filp, cd); 1629 } 1630 1631 static int release_flush_procfs(struct inode *inode, struct file *filp) 1632 { 1633 struct cache_detail *cd = pde_data(inode); 1634 1635 return release_flush(inode, filp, cd); 1636 } 1637 1638 static ssize_t read_flush_procfs(struct file *filp, char __user *buf, 1639 size_t count, loff_t *ppos) 1640 { 1641 struct cache_detail *cd = pde_data(file_inode(filp)); 1642 1643 return read_flush(filp, buf, count, ppos, cd); 1644 } 1645 1646 static ssize_t write_flush_procfs(struct file *filp, 1647 const char __user *buf, 1648 size_t count, loff_t *ppos) 1649 { 1650 struct cache_detail *cd = pde_data(file_inode(filp)); 1651 1652 return write_flush(filp, buf, count, ppos, cd); 1653 } 1654 1655 static const struct proc_ops cache_flush_proc_ops = { 1656 .proc_open = open_flush_procfs, 1657 .proc_read = read_flush_procfs, 1658 .proc_write = write_flush_procfs, 1659 .proc_release = release_flush_procfs, 1660 }; 1661 1662 static void remove_cache_proc_entries(struct cache_detail *cd) 1663 { 1664 if (cd->procfs) { 1665 proc_remove(cd->procfs); 1666 cd->procfs = NULL; 1667 } 1668 } 1669 1670 static int create_cache_proc_entries(struct cache_detail *cd, struct net *net) 1671 { 1672 struct proc_dir_entry *p; 1673 struct sunrpc_net *sn; 1674 1675 if (!IS_ENABLED(CONFIG_PROC_FS)) 1676 return 0; 1677 1678 sn = net_generic(net, sunrpc_net_id); 1679 cd->procfs = proc_mkdir(cd->name, sn->proc_net_rpc); 1680 if (cd->procfs == NULL) 1681 goto out_nomem; 1682 1683 p = proc_create_data("flush", S_IFREG | 0600, 1684 cd->procfs, &cache_flush_proc_ops, cd); 1685 if (p == NULL) 1686 goto out_nomem; 1687 1688 if (cd->cache_request || cd->cache_parse) { 1689 p = proc_create_data("channel", S_IFREG | 0600, cd->procfs, 1690 &cache_channel_proc_ops, cd); 1691 if (p == NULL) 1692 goto out_nomem; 1693 } 1694 if (cd->cache_show) { 1695 p = proc_create_data("content", S_IFREG | 0400, cd->procfs, 1696 &content_proc_ops, cd); 1697 if (p == NULL) 1698 goto out_nomem; 1699 } 1700 return 0; 1701 out_nomem: 1702 remove_cache_proc_entries(cd); 1703 return -ENOMEM; 1704 } 1705 1706 void __init cache_initialize(void) 1707 { 1708 INIT_DEFERRABLE_WORK(&cache_cleaner, do_cache_clean); 1709 } 1710 1711 int cache_register_net(struct cache_detail *cd, struct net *net) 1712 { 1713 int ret; 1714 1715 sunrpc_init_cache_detail(cd); 1716 ret = create_cache_proc_entries(cd, net); 1717 if (ret) 1718 sunrpc_destroy_cache_detail(cd); 1719 return ret; 1720 } 1721 EXPORT_SYMBOL_GPL(cache_register_net); 1722 1723 void cache_unregister_net(struct cache_detail *cd, struct net *net) 1724 { 1725 remove_cache_proc_entries(cd); 1726 sunrpc_destroy_cache_detail(cd); 1727 } 1728 EXPORT_SYMBOL_GPL(cache_unregister_net); 1729 1730 struct cache_detail *cache_create_net(const struct cache_detail *tmpl, struct net *net) 1731 { 1732 struct cache_detail *cd; 1733 int i; 1734 1735 cd = kmemdup(tmpl, sizeof(struct cache_detail), GFP_KERNEL); 1736 if (cd == NULL) 1737 return ERR_PTR(-ENOMEM); 1738 1739 cd->hash_table = kzalloc_objs(struct hlist_head, cd->hash_size); 1740 if (cd->hash_table == NULL) { 1741 kfree(cd); 1742 return ERR_PTR(-ENOMEM); 1743 } 1744 1745 for (i = 0; i < cd->hash_size; i++) 1746 INIT_HLIST_HEAD(&cd->hash_table[i]); 1747 cd->net = net; 1748 return cd; 1749 } 1750 EXPORT_SYMBOL_GPL(cache_create_net); 1751 1752 void cache_destroy_net(struct cache_detail *cd, struct net *net) 1753 { 1754 kfree(cd->hash_table); 1755 kfree(cd); 1756 } 1757 EXPORT_SYMBOL_GPL(cache_destroy_net); 1758 1759 static ssize_t cache_read_pipefs(struct file *filp, char __user *buf, 1760 size_t count, loff_t *ppos) 1761 { 1762 struct cache_detail *cd = RPC_I(file_inode(filp))->private; 1763 1764 return cache_read(filp, buf, count, ppos, cd); 1765 } 1766 1767 static ssize_t cache_write_pipefs(struct file *filp, const char __user *buf, 1768 size_t count, loff_t *ppos) 1769 { 1770 struct cache_detail *cd = RPC_I(file_inode(filp))->private; 1771 1772 return cache_write(filp, buf, count, ppos, cd); 1773 } 1774 1775 static __poll_t cache_poll_pipefs(struct file *filp, poll_table *wait) 1776 { 1777 struct cache_detail *cd = RPC_I(file_inode(filp))->private; 1778 1779 return cache_poll(filp, wait, cd); 1780 } 1781 1782 static long cache_ioctl_pipefs(struct file *filp, 1783 unsigned int cmd, unsigned long arg) 1784 { 1785 struct inode *inode = file_inode(filp); 1786 struct cache_detail *cd = RPC_I(inode)->private; 1787 1788 return cache_ioctl(inode, filp, cmd, arg, cd); 1789 } 1790 1791 static int cache_open_pipefs(struct inode *inode, struct file *filp) 1792 { 1793 struct cache_detail *cd = RPC_I(inode)->private; 1794 1795 return cache_open(inode, filp, cd); 1796 } 1797 1798 static int cache_release_pipefs(struct inode *inode, struct file *filp) 1799 { 1800 struct cache_detail *cd = RPC_I(inode)->private; 1801 1802 return cache_release(inode, filp, cd); 1803 } 1804 1805 const struct file_operations cache_file_operations_pipefs = { 1806 .owner = THIS_MODULE, 1807 .read = cache_read_pipefs, 1808 .write = cache_write_pipefs, 1809 .poll = cache_poll_pipefs, 1810 .unlocked_ioctl = cache_ioctl_pipefs, /* for FIONREAD */ 1811 .open = cache_open_pipefs, 1812 .release = cache_release_pipefs, 1813 }; 1814 1815 static int content_open_pipefs(struct inode *inode, struct file *filp) 1816 { 1817 struct cache_detail *cd = RPC_I(inode)->private; 1818 1819 return content_open(inode, filp, cd); 1820 } 1821 1822 static int content_release_pipefs(struct inode *inode, struct file *filp) 1823 { 1824 struct cache_detail *cd = RPC_I(inode)->private; 1825 1826 return content_release(inode, filp, cd); 1827 } 1828 1829 const struct file_operations content_file_operations_pipefs = { 1830 .open = content_open_pipefs, 1831 .read = seq_read, 1832 .llseek = seq_lseek, 1833 .release = content_release_pipefs, 1834 }; 1835 1836 static int open_flush_pipefs(struct inode *inode, struct file *filp) 1837 { 1838 struct cache_detail *cd = RPC_I(inode)->private; 1839 1840 return open_flush(inode, filp, cd); 1841 } 1842 1843 static int release_flush_pipefs(struct inode *inode, struct file *filp) 1844 { 1845 struct cache_detail *cd = RPC_I(inode)->private; 1846 1847 return release_flush(inode, filp, cd); 1848 } 1849 1850 static ssize_t read_flush_pipefs(struct file *filp, char __user *buf, 1851 size_t count, loff_t *ppos) 1852 { 1853 struct cache_detail *cd = RPC_I(file_inode(filp))->private; 1854 1855 return read_flush(filp, buf, count, ppos, cd); 1856 } 1857 1858 static ssize_t write_flush_pipefs(struct file *filp, 1859 const char __user *buf, 1860 size_t count, loff_t *ppos) 1861 { 1862 struct cache_detail *cd = RPC_I(file_inode(filp))->private; 1863 1864 return write_flush(filp, buf, count, ppos, cd); 1865 } 1866 1867 const struct file_operations cache_flush_operations_pipefs = { 1868 .open = open_flush_pipefs, 1869 .read = read_flush_pipefs, 1870 .write = write_flush_pipefs, 1871 .release = release_flush_pipefs, 1872 }; 1873 1874 int sunrpc_cache_register_pipefs(struct dentry *parent, 1875 const char *name, umode_t umode, 1876 struct cache_detail *cd) 1877 { 1878 struct dentry *dir = rpc_create_cache_dir(parent, name, umode, cd); 1879 if (IS_ERR(dir)) 1880 return PTR_ERR(dir); 1881 cd->pipefs = dir; 1882 return 0; 1883 } 1884 EXPORT_SYMBOL_GPL(sunrpc_cache_register_pipefs); 1885 1886 void sunrpc_cache_unregister_pipefs(struct cache_detail *cd) 1887 { 1888 if (cd->pipefs) { 1889 rpc_remove_cache_dir(cd->pipefs); 1890 cd->pipefs = NULL; 1891 } 1892 } 1893 EXPORT_SYMBOL_GPL(sunrpc_cache_unregister_pipefs); 1894 1895 void sunrpc_cache_unhash(struct cache_detail *cd, struct cache_head *h) 1896 { 1897 spin_lock(&cd->hash_lock); 1898 if (!hlist_unhashed(&h->cache_list)){ 1899 sunrpc_begin_cache_remove_entry(h, cd); 1900 spin_unlock(&cd->hash_lock); 1901 sunrpc_end_cache_remove_entry(h, cd); 1902 } else 1903 spin_unlock(&cd->hash_lock); 1904 } 1905 EXPORT_SYMBOL_GPL(sunrpc_cache_unhash); 1906 1907 /** 1908 * sunrpc_cache_requests_count - count pending upcall requests 1909 * @cd: cache_detail to query 1910 * 1911 * Returns the number of requests on the cache's request list that 1912 * still have CACHE_PENDING set. 1913 */ 1914 int sunrpc_cache_requests_count(struct cache_detail *cd) 1915 { 1916 struct cache_request *crq; 1917 int cnt = 0; 1918 1919 spin_lock(&cd->queue_lock); 1920 list_for_each_entry(crq, &cd->requests, list) { 1921 if (test_bit(CACHE_PENDING, &crq->item->flags)) 1922 cnt++; 1923 } 1924 spin_unlock(&cd->queue_lock); 1925 return cnt; 1926 } 1927 EXPORT_SYMBOL_GPL(sunrpc_cache_requests_count); 1928 1929 /** 1930 * sunrpc_cache_requests_snapshot - snapshot pending upcall requests 1931 * @cd: cache_detail to query 1932 * @items: array to fill with cache_head pointers (caller-allocated) 1933 * @seqnos: array to fill with sequence numbers (caller-allocated) 1934 * @max: size of the arrays 1935 * @min_seqno: only include entries with seqno > min_seqno (0 for all) 1936 * 1937 * Only entries with CACHE_PENDING set are included. Takes a reference 1938 * on each cache_head via cache_get(). Caller must call cache_put() 1939 * on each returned item when done. 1940 * 1941 * Returns the number of entries filled. 1942 */ 1943 int sunrpc_cache_requests_snapshot(struct cache_detail *cd, 1944 struct cache_head **items, 1945 u64 *seqnos, int max, 1946 u64 min_seqno) 1947 { 1948 struct cache_request *crq; 1949 int i = 0; 1950 1951 spin_lock(&cd->queue_lock); 1952 list_for_each_entry(crq, &cd->requests, list) { 1953 if (i >= max) 1954 break; 1955 if (!test_bit(CACHE_PENDING, &crq->item->flags)) 1956 continue; 1957 if (crq->seqno <= min_seqno) 1958 continue; 1959 items[i] = cache_get(crq->item); 1960 seqnos[i] = crq->seqno; 1961 i++; 1962 } 1963 spin_unlock(&cd->queue_lock); 1964 return i; 1965 } 1966 EXPORT_SYMBOL_GPL(sunrpc_cache_requests_snapshot); 1967 1968 /** 1969 * sunrpc_cache_notify - send a netlink notification for a cache event 1970 * @cd: cache_detail for the cache 1971 * @h: cache_head entry (unused, reserved for future use) 1972 * @cache_type: cache type identifier (e.g. SUNRPC_CACHE_TYPE_UNIX_GID) 1973 * 1974 * Sends a SUNRPC_CMD_CACHE_NOTIFY multicast message on the "exportd" 1975 * group if any listeners are present. Returns 0 on success or a 1976 * negative errno. 1977 */ 1978 int sunrpc_cache_notify(struct cache_detail *cd, struct cache_head *h, 1979 u32 cache_type) 1980 { 1981 struct genlmsghdr *hdr; 1982 struct sk_buff *msg; 1983 1984 if (!genl_has_listeners(&sunrpc_nl_family, cd->net, 1985 SUNRPC_NLGRP_EXPORTD)) 1986 return -ENOLINK; 1987 1988 msg = genlmsg_new(nla_total_size(sizeof(u32)), GFP_KERNEL); 1989 if (!msg) 1990 return -ENOMEM; 1991 1992 hdr = genlmsg_put(msg, 0, 0, &sunrpc_nl_family, 0, 1993 SUNRPC_CMD_CACHE_NOTIFY); 1994 if (!hdr) { 1995 nlmsg_free(msg); 1996 return -ENOMEM; 1997 } 1998 1999 if (nla_put_u32(msg, SUNRPC_A_CACHE_NOTIFY_CACHE_TYPE, cache_type)) { 2000 nlmsg_free(msg); 2001 return -ENOMEM; 2002 } 2003 2004 genlmsg_end(msg, hdr); 2005 return genlmsg_multicast_netns(&sunrpc_nl_family, cd->net, msg, 0, 2006 SUNRPC_NLGRP_EXPORTD, GFP_KERNEL); 2007 } 2008 EXPORT_SYMBOL_GPL(sunrpc_cache_notify); 2009