1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright (C) 2018 HUAWEI, Inc. 4 * https://www.huawei.com/ 5 * Copyright (C) 2022 Alibaba Cloud 6 */ 7 #include "compress.h" 8 #include <linux/psi.h> 9 #include <linux/cpuhotplug.h> 10 #include <trace/events/erofs.h> 11 12 #define Z_EROFS_MAX_SYNC_DECOMPRESS_BYTES 12288 13 #define Z_EROFS_PCLUSTER_MAX_PAGES (Z_EROFS_PCLUSTER_MAX_SIZE / PAGE_SIZE) 14 #define Z_EROFS_INLINE_BVECS 2 15 16 struct z_erofs_bvec { 17 struct page *page; 18 int offset; 19 unsigned int end; 20 }; 21 22 #define __Z_EROFS_BVSET(name, total) \ 23 struct name { \ 24 /* point to the next page which contains the following bvecs */ \ 25 struct page *nextpage; \ 26 struct z_erofs_bvec bvec[total]; \ 27 } 28 __Z_EROFS_BVSET(z_erofs_bvset,); 29 __Z_EROFS_BVSET(z_erofs_bvset_inline, Z_EROFS_INLINE_BVECS); 30 31 /* 32 * Structure fields follow one of the following exclusion rules. 33 * 34 * I: Modifiable by initialization/destruction paths and read-only 35 * for everyone else; 36 * 37 * L: Field should be protected by the pcluster lock; 38 * 39 * A: Field should be accessed / updated in atomic for parallelized code. 40 */ 41 struct z_erofs_pcluster { 42 struct mutex lock; 43 struct lockref lockref; 44 45 /* A: point to next chained pcluster or TAILs */ 46 struct z_erofs_pcluster *next; 47 48 /* I: start physical position of this pcluster */ 49 erofs_off_t pos; 50 51 /* L: the maximum decompression size of this round */ 52 unsigned int length; 53 54 /* L: total number of bvecs */ 55 unsigned int vcnt; 56 57 /* I: pcluster size (compressed size) in bytes */ 58 unsigned int pclustersize; 59 60 /* I: page offset of start position of decompression */ 61 unsigned short pageofs_out; 62 63 /* I: page offset of inline compressed data */ 64 unsigned short pageofs_in; 65 66 union { 67 /* L: inline a certain number of bvec for bootstrap */ 68 struct z_erofs_bvset_inline bvset; 69 70 /* I: can be used to free the pcluster by RCU. */ 71 struct rcu_head rcu; 72 }; 73 74 /* I: compression algorithm format */ 75 unsigned char algorithmformat; 76 77 /* I: whether compressed data is in-lined or not */ 78 bool from_meta; 79 80 /* L: whether partial decompression or not */ 81 bool partial; 82 83 /* L: whether extra buffer allocations are best-effort */ 84 bool besteffort; 85 86 /* A: compressed bvecs (can be cached or inplaced pages) */ 87 struct z_erofs_bvec compressed_bvecs[]; 88 }; 89 90 /* the end of a chain of pclusters */ 91 #define Z_EROFS_PCLUSTER_TAIL ((void *) 0x700 + POISON_POINTER_DELTA) 92 93 struct z_erofs_decompressqueue { 94 struct super_block *sb; 95 struct z_erofs_pcluster *head; 96 atomic_t pending_bios; 97 98 union { 99 struct completion done; 100 struct work_struct work; 101 struct kthread_work kthread_work; 102 } u; 103 bool eio, sync; 104 }; 105 106 static inline unsigned int z_erofs_pclusterpages(struct z_erofs_pcluster *pcl) 107 { 108 return PAGE_ALIGN(pcl->pageofs_in + pcl->pclustersize) >> PAGE_SHIFT; 109 } 110 111 static bool erofs_folio_is_managed(struct erofs_sb_info *sbi, struct folio *fo) 112 { 113 return fo->mapping == MNGD_MAPPING(sbi); 114 } 115 116 #define Z_EROFS_ONSTACK_PAGES 32 117 118 /* 119 * since pclustersize is variable for big pcluster feature, introduce slab 120 * pools implementation for different pcluster sizes. 121 */ 122 struct z_erofs_pcluster_slab { 123 struct kmem_cache *slab; 124 unsigned int maxpages; 125 char name[48]; 126 }; 127 128 #define _PCLP(n) { .maxpages = n } 129 130 static struct z_erofs_pcluster_slab pcluster_pool[] __read_mostly = { 131 _PCLP(1), 132 _PCLP(4), 133 #if Z_EROFS_PCLUSTER_MAX_PAGES > 16 134 _PCLP(16), 135 #endif 136 #if Z_EROFS_PCLUSTER_MAX_PAGES > 64 137 _PCLP(64), 138 #endif 139 #if Z_EROFS_PCLUSTER_MAX_PAGES > 128 140 _PCLP(128), 141 #endif 142 _PCLP(Z_EROFS_PCLUSTER_MAX_PAGES + 1) 143 }; 144 145 struct z_erofs_bvec_iter { 146 struct page *bvpage; 147 struct z_erofs_bvset *bvset; 148 unsigned int nr, cur; 149 }; 150 151 static struct page *z_erofs_bvec_iter_end(struct z_erofs_bvec_iter *iter) 152 { 153 if (iter->bvpage) 154 kunmap_local(iter->bvset); 155 return iter->bvpage; 156 } 157 158 static struct page *z_erofs_bvset_flip(struct z_erofs_bvec_iter *iter) 159 { 160 unsigned long base = (unsigned long)((struct z_erofs_bvset *)0)->bvec; 161 /* have to access nextpage in advance, otherwise it will be unmapped */ 162 struct page *nextpage = iter->bvset->nextpage; 163 struct page *oldpage; 164 165 DBG_BUGON(!nextpage); 166 oldpage = z_erofs_bvec_iter_end(iter); 167 iter->bvpage = nextpage; 168 iter->bvset = kmap_local_page(nextpage); 169 iter->nr = (PAGE_SIZE - base) / sizeof(struct z_erofs_bvec); 170 iter->cur = 0; 171 return oldpage; 172 } 173 174 static void z_erofs_bvec_iter_begin(struct z_erofs_bvec_iter *iter, 175 struct z_erofs_bvset_inline *bvset, 176 unsigned int bootstrap_nr, 177 unsigned int cur) 178 { 179 *iter = (struct z_erofs_bvec_iter) { 180 .nr = bootstrap_nr, 181 .bvset = (struct z_erofs_bvset *)bvset, 182 }; 183 184 while (cur > iter->nr) { 185 cur -= iter->nr; 186 z_erofs_bvset_flip(iter); 187 } 188 iter->cur = cur; 189 } 190 191 static int z_erofs_bvec_enqueue(struct z_erofs_bvec_iter *iter, 192 struct z_erofs_bvec *bvec, 193 struct page **candidate_bvpage, 194 struct page **pagepool) 195 { 196 if (iter->cur >= iter->nr) { 197 struct page *nextpage = *candidate_bvpage; 198 199 if (!nextpage) { 200 nextpage = __erofs_allocpage(pagepool, GFP_KERNEL, 201 true); 202 if (!nextpage) 203 return -ENOMEM; 204 set_page_private(nextpage, Z_EROFS_SHORTLIVED_PAGE); 205 } 206 DBG_BUGON(iter->bvset->nextpage); 207 iter->bvset->nextpage = nextpage; 208 z_erofs_bvset_flip(iter); 209 210 iter->bvset->nextpage = NULL; 211 *candidate_bvpage = NULL; 212 } 213 iter->bvset->bvec[iter->cur++] = *bvec; 214 return 0; 215 } 216 217 static void z_erofs_bvec_dequeue(struct z_erofs_bvec_iter *iter, 218 struct z_erofs_bvec *bvec, 219 struct page **old_bvpage) 220 { 221 if (iter->cur == iter->nr) 222 *old_bvpage = z_erofs_bvset_flip(iter); 223 else 224 *old_bvpage = NULL; 225 *bvec = iter->bvset->bvec[iter->cur++]; 226 } 227 228 static void z_erofs_destroy_pcluster_pool(void) 229 { 230 int i; 231 232 for (i = 0; i < ARRAY_SIZE(pcluster_pool); ++i) { 233 if (!pcluster_pool[i].slab) 234 continue; 235 kmem_cache_destroy(pcluster_pool[i].slab); 236 pcluster_pool[i].slab = NULL; 237 } 238 } 239 240 static int z_erofs_create_pcluster_pool(void) 241 { 242 struct z_erofs_pcluster_slab *pcs; 243 struct z_erofs_pcluster *a; 244 unsigned int size; 245 246 for (pcs = pcluster_pool; 247 pcs < pcluster_pool + ARRAY_SIZE(pcluster_pool); ++pcs) { 248 size = struct_size(a, compressed_bvecs, pcs->maxpages); 249 250 sprintf(pcs->name, "erofs_pcluster-%u", pcs->maxpages); 251 pcs->slab = kmem_cache_create(pcs->name, size, 0, 252 SLAB_RECLAIM_ACCOUNT, NULL); 253 if (pcs->slab) 254 continue; 255 256 z_erofs_destroy_pcluster_pool(); 257 return -ENOMEM; 258 } 259 return 0; 260 } 261 262 static struct z_erofs_pcluster *z_erofs_alloc_pcluster(unsigned int size) 263 { 264 unsigned int nrpages = PAGE_ALIGN(size) >> PAGE_SHIFT; 265 struct z_erofs_pcluster_slab *pcs = pcluster_pool; 266 267 for (; pcs < pcluster_pool + ARRAY_SIZE(pcluster_pool); ++pcs) { 268 struct z_erofs_pcluster *pcl; 269 270 if (nrpages > pcs->maxpages) 271 continue; 272 273 pcl = kmem_cache_zalloc(pcs->slab, GFP_KERNEL); 274 if (!pcl) 275 return ERR_PTR(-ENOMEM); 276 return pcl; 277 } 278 return ERR_PTR(-EINVAL); 279 } 280 281 static void z_erofs_free_pcluster(struct z_erofs_pcluster *pcl) 282 { 283 unsigned int pclusterpages = z_erofs_pclusterpages(pcl); 284 int i; 285 286 for (i = 0; i < ARRAY_SIZE(pcluster_pool); ++i) { 287 struct z_erofs_pcluster_slab *pcs = pcluster_pool + i; 288 289 if (pclusterpages > pcs->maxpages) 290 continue; 291 292 kmem_cache_free(pcs->slab, pcl); 293 return; 294 } 295 DBG_BUGON(1); 296 } 297 298 static struct workqueue_struct *z_erofs_workqueue __read_mostly; 299 300 #ifdef CONFIG_EROFS_FS_PCPU_KTHREAD 301 static struct kthread_worker __rcu **z_erofs_pcpu_workers; 302 static atomic_t erofs_percpu_workers_initialized = ATOMIC_INIT(0); 303 304 static void erofs_destroy_percpu_workers(void) 305 { 306 struct kthread_worker *worker; 307 unsigned int cpu; 308 309 for_each_possible_cpu(cpu) { 310 worker = rcu_dereference_protected( 311 z_erofs_pcpu_workers[cpu], 1); 312 rcu_assign_pointer(z_erofs_pcpu_workers[cpu], NULL); 313 if (worker) 314 kthread_destroy_worker(worker); 315 } 316 kfree(z_erofs_pcpu_workers); 317 } 318 319 static struct kthread_worker *erofs_init_percpu_worker(int cpu) 320 { 321 struct kthread_worker *worker = 322 kthread_run_worker_on_cpu(cpu, 0, "erofs_worker/%u"); 323 324 if (IS_ERR(worker)) 325 return worker; 326 if (IS_ENABLED(CONFIG_EROFS_FS_PCPU_KTHREAD_HIPRI)) 327 sched_set_fifo_low(worker->task); 328 return worker; 329 } 330 331 static int erofs_init_percpu_workers(void) 332 { 333 struct kthread_worker *worker; 334 unsigned int cpu; 335 336 z_erofs_pcpu_workers = kzalloc_objs(struct kthread_worker *, 337 num_possible_cpus(), GFP_ATOMIC); 338 if (!z_erofs_pcpu_workers) 339 return -ENOMEM; 340 341 for_each_online_cpu(cpu) { /* could miss cpu{off,on}line? */ 342 worker = erofs_init_percpu_worker(cpu); 343 if (!IS_ERR(worker)) 344 rcu_assign_pointer(z_erofs_pcpu_workers[cpu], worker); 345 } 346 return 0; 347 } 348 349 #ifdef CONFIG_HOTPLUG_CPU 350 static DEFINE_SPINLOCK(z_erofs_pcpu_worker_lock); 351 static enum cpuhp_state erofs_cpuhp_state; 352 353 static int erofs_cpu_online(unsigned int cpu) 354 { 355 struct kthread_worker *worker, *old; 356 357 worker = erofs_init_percpu_worker(cpu); 358 if (IS_ERR(worker)) 359 return PTR_ERR(worker); 360 361 spin_lock(&z_erofs_pcpu_worker_lock); 362 old = rcu_dereference_protected(z_erofs_pcpu_workers[cpu], 363 lockdep_is_held(&z_erofs_pcpu_worker_lock)); 364 if (!old) 365 rcu_assign_pointer(z_erofs_pcpu_workers[cpu], worker); 366 spin_unlock(&z_erofs_pcpu_worker_lock); 367 if (old) 368 kthread_destroy_worker(worker); 369 return 0; 370 } 371 372 static int erofs_cpu_offline(unsigned int cpu) 373 { 374 struct kthread_worker *worker; 375 376 spin_lock(&z_erofs_pcpu_worker_lock); 377 worker = rcu_dereference_protected(z_erofs_pcpu_workers[cpu], 378 lockdep_is_held(&z_erofs_pcpu_worker_lock)); 379 rcu_assign_pointer(z_erofs_pcpu_workers[cpu], NULL); 380 spin_unlock(&z_erofs_pcpu_worker_lock); 381 382 synchronize_rcu(); 383 if (worker) 384 kthread_destroy_worker(worker); 385 return 0; 386 } 387 388 static int erofs_cpu_hotplug_init(void) 389 { 390 int state; 391 392 state = cpuhp_setup_state_nocalls(CPUHP_AP_ONLINE_DYN, 393 "fs/erofs:online", erofs_cpu_online, erofs_cpu_offline); 394 if (state < 0) 395 return state; 396 397 erofs_cpuhp_state = state; 398 return 0; 399 } 400 401 static void erofs_cpu_hotplug_destroy(void) 402 { 403 if (erofs_cpuhp_state) 404 cpuhp_remove_state_nocalls(erofs_cpuhp_state); 405 } 406 #else /* !CONFIG_HOTPLUG_CPU */ 407 static inline int erofs_cpu_hotplug_init(void) { return 0; } 408 static inline void erofs_cpu_hotplug_destroy(void) {} 409 #endif/* CONFIG_HOTPLUG_CPU */ 410 static int z_erofs_init_pcpu_workers(struct super_block *sb) 411 { 412 int err; 413 414 if (atomic_xchg(&erofs_percpu_workers_initialized, 1)) 415 return 0; 416 417 err = erofs_init_percpu_workers(); 418 if (err) { 419 erofs_err(sb, "per-cpu workers: failed to allocate."); 420 goto err_init_percpu_workers; 421 } 422 423 err = erofs_cpu_hotplug_init(); 424 if (err < 0) { 425 erofs_err(sb, "per-cpu workers: failed CPU hotplug init."); 426 goto err_cpuhp_init; 427 } 428 erofs_info(sb, "initialized per-cpu workers successfully."); 429 return err; 430 431 err_cpuhp_init: 432 erofs_destroy_percpu_workers(); 433 err_init_percpu_workers: 434 atomic_set(&erofs_percpu_workers_initialized, 0); 435 return err; 436 } 437 438 static void z_erofs_destroy_pcpu_workers(void) 439 { 440 if (!atomic_xchg(&erofs_percpu_workers_initialized, 0)) 441 return; 442 erofs_cpu_hotplug_destroy(); 443 erofs_destroy_percpu_workers(); 444 } 445 #else /* !CONFIG_EROFS_FS_PCPU_KTHREAD */ 446 static inline int z_erofs_init_pcpu_workers(struct super_block *sb) { return 0; } 447 static inline void z_erofs_destroy_pcpu_workers(void) {} 448 #endif/* CONFIG_EROFS_FS_PCPU_KTHREAD */ 449 450 void z_erofs_exit_subsystem(void) 451 { 452 z_erofs_destroy_pcpu_workers(); 453 destroy_workqueue(z_erofs_workqueue); 454 z_erofs_destroy_pcluster_pool(); 455 z_erofs_crypto_disable_all_engines(); 456 z_erofs_exit_decompressor(); 457 } 458 459 int __init z_erofs_init_subsystem(void) 460 { 461 int err = z_erofs_init_decompressor(); 462 463 if (err) 464 goto err_decompressor; 465 466 err = z_erofs_create_pcluster_pool(); 467 if (err) 468 goto err_pcluster_pool; 469 470 z_erofs_workqueue = alloc_workqueue("erofs_worker", 471 WQ_UNBOUND | WQ_HIGHPRI, num_possible_cpus()); 472 if (!z_erofs_workqueue) { 473 err = -ENOMEM; 474 goto err_workqueue_init; 475 } 476 477 return err; 478 479 err_workqueue_init: 480 z_erofs_destroy_pcluster_pool(); 481 err_pcluster_pool: 482 z_erofs_exit_decompressor(); 483 err_decompressor: 484 return err; 485 } 486 487 enum z_erofs_pclustermode { 488 /* It has previously been linked into another processing chain */ 489 Z_EROFS_PCLUSTER_INFLIGHT, 490 /* 491 * A weaker form of Z_EROFS_PCLUSTER_FOLLOWED; the difference is that it 492 * may be dispatched to the bypass queue later due to uptodated managed 493 * folios. All file-backed folios related to this pcluster cannot be 494 * reused for in-place I/O (or bvpage) since the pcluster may be decoded 495 * in a separate queue (and thus out of order). 496 */ 497 Z_EROFS_PCLUSTER_FOLLOWED_NOINPLACE, 498 /* 499 * The pcluster has just been linked to our processing chain. 500 * File-backed folios (except for the head page) related to it can be 501 * used for in-place I/O (or bvpage). 502 */ 503 Z_EROFS_PCLUSTER_FOLLOWED, 504 }; 505 506 struct z_erofs_frontend { 507 struct inode *inode, *sharedinode; 508 struct erofs_map_blocks map; 509 struct z_erofs_bvec_iter biter; 510 511 struct page *pagepool; 512 struct page *candidate_bvpage; 513 struct z_erofs_pcluster *pcl, *head; 514 enum z_erofs_pclustermode mode; 515 516 erofs_off_t headoffset; 517 518 /* a pointer used to pick up inplace I/O pages */ 519 unsigned int icur; 520 }; 521 522 #define Z_EROFS_DEFINE_FRONTEND(fe, i, si, ho) struct z_erofs_frontend fe = { \ 523 .inode = i, .sharedinode = si, .head = Z_EROFS_PCLUSTER_TAIL, \ 524 .mode = Z_EROFS_PCLUSTER_FOLLOWED, .headoffset = ho } 525 526 static bool z_erofs_should_alloc_cache(struct z_erofs_frontend *fe) 527 { 528 unsigned int cachestrategy = EROFS_I_SB(fe->inode)->opt.cache_strategy; 529 530 if (cachestrategy <= EROFS_ZIP_CACHE_DISABLED) 531 return false; 532 533 if (fe->map.m_flags & EROFS_MAP_PARTIAL_MAPPED) 534 return true; 535 536 if (cachestrategy >= EROFS_ZIP_CACHE_READAROUND && 537 fe->map.m_la < fe->headoffset) 538 return true; 539 540 return false; 541 } 542 543 static void z_erofs_bind_cache(struct z_erofs_frontend *fe) 544 { 545 struct address_space *mc = MNGD_MAPPING(EROFS_I_SB(fe->inode)); 546 struct z_erofs_pcluster *pcl = fe->pcl; 547 unsigned int pclusterpages = z_erofs_pclusterpages(pcl); 548 bool shouldalloc = z_erofs_should_alloc_cache(fe); 549 pgoff_t poff = pcl->pos >> PAGE_SHIFT; 550 bool may_bypass = true; 551 /* Optimistic allocation, as in-place I/O can be used as a fallback */ 552 gfp_t gfp = (mapping_gfp_mask(mc) & ~__GFP_DIRECT_RECLAIM) | 553 __GFP_NOMEMALLOC | __GFP_NORETRY | __GFP_NOWARN; 554 struct folio *folio, *newfolio; 555 unsigned int i; 556 557 if (i_blocksize(fe->inode) != PAGE_SIZE || 558 fe->mode < Z_EROFS_PCLUSTER_FOLLOWED) 559 return; 560 561 for (i = 0; i < pclusterpages; ++i) { 562 /* Inaccurate check w/o locking to avoid unneeded lookups */ 563 if (READ_ONCE(pcl->compressed_bvecs[i].page)) 564 continue; 565 566 folio = filemap_get_folio(mc, poff + i); 567 if (IS_ERR(folio)) { 568 may_bypass = false; 569 if (!shouldalloc) 570 continue; 571 572 /* 573 * Allocate a managed folio for cached I/O, or it may be 574 * then filled with a file-backed folio for in-place I/O 575 */ 576 newfolio = filemap_alloc_folio(gfp, 0, NULL); 577 if (!newfolio) 578 continue; 579 newfolio->private = Z_EROFS_PREALLOCATED_FOLIO; 580 folio = NULL; 581 } 582 spin_lock(&pcl->lockref.lock); 583 if (!pcl->compressed_bvecs[i].page) { 584 pcl->compressed_bvecs[i].page = 585 folio_page(folio ?: newfolio, 0); 586 spin_unlock(&pcl->lockref.lock); 587 continue; 588 } 589 spin_unlock(&pcl->lockref.lock); 590 folio_put(folio ?: newfolio); 591 } 592 593 /* 594 * Don't perform in-place I/O if all compressed pages are available in 595 * the managed cache, as the pcluster can be moved to the bypass queue. 596 */ 597 if (may_bypass) 598 fe->mode = Z_EROFS_PCLUSTER_FOLLOWED_NOINPLACE; 599 } 600 601 /* (erofs_shrinker) disconnect cached encoded data with pclusters */ 602 static int erofs_try_to_free_all_cached_folios(struct erofs_sb_info *sbi, 603 struct z_erofs_pcluster *pcl) 604 { 605 unsigned int pclusterpages = z_erofs_pclusterpages(pcl); 606 struct folio *folio; 607 int i; 608 609 DBG_BUGON(pcl->from_meta); 610 /* Each cached folio contains one page unless bs > ps is supported */ 611 for (i = 0; i < pclusterpages; ++i) { 612 if (pcl->compressed_bvecs[i].page) { 613 folio = page_folio(pcl->compressed_bvecs[i].page); 614 /* Avoid reclaiming or migrating this folio */ 615 if (!folio_trylock(folio)) 616 return -EBUSY; 617 618 DBG_BUGON(!erofs_folio_is_managed(sbi, folio)); 619 pcl->compressed_bvecs[i].page = NULL; 620 folio_detach_private(folio); 621 folio_unlock(folio); 622 } 623 } 624 return 0; 625 } 626 627 static bool z_erofs_cache_release_folio(struct folio *folio, gfp_t gfp) 628 { 629 struct z_erofs_pcluster *pcl = folio_get_private(folio); 630 struct z_erofs_bvec *bvec = pcl->compressed_bvecs; 631 struct z_erofs_bvec *end = bvec + z_erofs_pclusterpages(pcl); 632 bool ret; 633 634 if (!folio_test_private(folio)) 635 return true; 636 637 ret = false; 638 spin_lock(&pcl->lockref.lock); 639 if (pcl->lockref.count <= 0) { 640 DBG_BUGON(pcl->from_meta); 641 for (; bvec < end; ++bvec) { 642 if (bvec->page && page_folio(bvec->page) == folio) { 643 bvec->page = NULL; 644 folio_detach_private(folio); 645 ret = true; 646 break; 647 } 648 } 649 } 650 spin_unlock(&pcl->lockref.lock); 651 return ret; 652 } 653 654 /* 655 * It will be called only on inode eviction. In case that there are still some 656 * decompression requests in progress, wait with rescheduling for a bit here. 657 * An extra lock could be introduced instead but it seems unnecessary. 658 */ 659 static void z_erofs_cache_invalidate_folio(struct folio *folio, 660 size_t offset, size_t length) 661 { 662 const size_t stop = length + offset; 663 664 /* Check for potential overflow in debug mode */ 665 DBG_BUGON(stop > folio_size(folio) || stop < length); 666 667 if (offset == 0 && stop == folio_size(folio)) 668 while (!z_erofs_cache_release_folio(folio, 0)) 669 cond_resched(); 670 } 671 672 static const struct address_space_operations z_erofs_cache_aops = { 673 .release_folio = z_erofs_cache_release_folio, 674 .invalidate_folio = z_erofs_cache_invalidate_folio, 675 }; 676 677 int z_erofs_init_super(struct super_block *sb) 678 { 679 int err; 680 681 err = z_erofs_init_pcpu_workers(sb); 682 if (err) 683 return err; 684 685 err = erofs_setup_managed_cache(sb); 686 if (err) 687 return err; 688 EROFS_SB(sb)->managed_cache->i_mapping->a_ops = &z_erofs_cache_aops; 689 xa_init(&EROFS_SB(sb)->managed_pslots); 690 return 0; 691 } 692 693 /* callers must be with pcluster lock held */ 694 static int z_erofs_attach_page(struct z_erofs_frontend *fe, 695 struct z_erofs_bvec *bvec, bool exclusive) 696 { 697 struct z_erofs_pcluster *pcl = fe->pcl; 698 int ret; 699 700 if (exclusive) { 701 /* Inplace I/O is limited to one page for uncompressed data */ 702 if (pcl->algorithmformat < Z_EROFS_COMPRESSION_MAX || 703 fe->icur <= 1) { 704 /* Try to prioritize inplace I/O here */ 705 spin_lock(&pcl->lockref.lock); 706 while (fe->icur > 0) { 707 if (pcl->compressed_bvecs[--fe->icur].page) 708 continue; 709 pcl->compressed_bvecs[fe->icur] = *bvec; 710 spin_unlock(&pcl->lockref.lock); 711 return 0; 712 } 713 spin_unlock(&pcl->lockref.lock); 714 } 715 716 /* otherwise, check if it can be used as a bvpage */ 717 if (fe->mode >= Z_EROFS_PCLUSTER_FOLLOWED && 718 !fe->candidate_bvpage) 719 fe->candidate_bvpage = bvec->page; 720 } 721 ret = z_erofs_bvec_enqueue(&fe->biter, bvec, &fe->candidate_bvpage, 722 &fe->pagepool); 723 fe->pcl->vcnt += (ret >= 0); 724 return ret; 725 } 726 727 static bool z_erofs_get_pcluster(struct z_erofs_pcluster *pcl) 728 { 729 if (lockref_get_not_zero(&pcl->lockref)) 730 return true; 731 732 spin_lock(&pcl->lockref.lock); 733 if (lockref_is_dead(&pcl->lockref)) { 734 spin_unlock(&pcl->lockref.lock); 735 return false; 736 } 737 738 if (!pcl->lockref.count++) 739 atomic_long_dec(&erofs_global_shrink_cnt); 740 spin_unlock(&pcl->lockref.lock); 741 return true; 742 } 743 744 static int z_erofs_register_pcluster(struct z_erofs_frontend *fe) 745 { 746 struct erofs_map_blocks *map = &fe->map; 747 struct super_block *sb = fe->inode->i_sb; 748 struct erofs_sb_info *sbi = EROFS_SB(sb); 749 struct z_erofs_pcluster *pcl, *pre; 750 unsigned int pageofs_in; 751 int err; 752 753 pageofs_in = erofs_blkoff(sb, map->m_pa); 754 pcl = z_erofs_alloc_pcluster(pageofs_in + map->m_plen); 755 if (IS_ERR(pcl)) 756 return PTR_ERR(pcl); 757 758 lockref_init(&pcl->lockref); /* one ref for this request */ 759 pcl->algorithmformat = map->m_algorithmformat; 760 pcl->pclustersize = map->m_plen; 761 pcl->length = 0; 762 pcl->partial = true; 763 pcl->next = fe->head; 764 pcl->pos = map->m_pa; 765 pcl->pageofs_in = pageofs_in; 766 pcl->pageofs_out = map->m_la & ~PAGE_MASK; 767 pcl->from_meta = map->m_flags & EROFS_MAP_META; 768 fe->mode = Z_EROFS_PCLUSTER_FOLLOWED; 769 770 /* 771 * lock all primary followed works before visible to others 772 * and mutex_trylock *never* fails for a new pcluster. 773 */ 774 mutex_init(&pcl->lock); 775 DBG_BUGON(!mutex_trylock(&pcl->lock)); 776 777 if (!pcl->from_meta) { 778 while (1) { 779 xa_lock(&sbi->managed_pslots); 780 pre = __xa_cmpxchg(&sbi->managed_pslots, pcl->pos, 781 NULL, pcl, GFP_KERNEL); 782 if (!pre || xa_is_err(pre) || z_erofs_get_pcluster(pre)) { 783 xa_unlock(&sbi->managed_pslots); 784 break; 785 } 786 /* try to legitimize the current in-tree one */ 787 xa_unlock(&sbi->managed_pslots); 788 cond_resched(); 789 } 790 if (xa_is_err(pre)) { 791 err = xa_err(pre); 792 goto err_out; 793 } else if (pre) { 794 fe->pcl = pre; 795 err = -EEXIST; 796 goto err_out; 797 } 798 } 799 fe->head = fe->pcl = pcl; 800 return 0; 801 802 err_out: 803 mutex_unlock(&pcl->lock); 804 z_erofs_free_pcluster(pcl); 805 return err; 806 } 807 808 static int z_erofs_pcluster_begin(struct z_erofs_frontend *fe) 809 { 810 struct erofs_map_blocks *map = &fe->map; 811 struct super_block *sb = fe->inode->i_sb; 812 struct z_erofs_pcluster *pcl = NULL; 813 void *ptr = NULL; 814 bool needretry; 815 int ret; 816 817 DBG_BUGON(fe->pcl); 818 /* must be Z_EROFS_PCLUSTER_TAIL or pointed to previous pcluster */ 819 DBG_BUGON(!fe->head); 820 821 if (map->m_flags & EROFS_MAP_META) { 822 ret = erofs_init_metabuf(&map->buf, sb, 823 erofs_inode_in_metabox(fe->inode)); 824 if (ret) 825 return ret; 826 ptr = erofs_bread(&map->buf, map->m_pa, false); 827 if (IS_ERR(ptr)) { 828 erofs_err(sb, "failed to read inline data %pe @ pa %llu of nid %llu", 829 ptr, map->m_pa, EROFS_I(fe->inode)->nid); 830 return PTR_ERR(ptr); 831 } 832 ptr = map->buf.page; 833 } else { 834 do { 835 rcu_read_lock(); 836 pcl = xa_load(&EROFS_SB(sb)->managed_pslots, map->m_pa); 837 needretry = pcl && !z_erofs_get_pcluster(pcl); 838 rcu_read_unlock(); 839 } while (needretry); 840 } 841 842 if (pcl) { 843 DBG_BUGON(map->m_pa != pcl->pos); 844 fe->pcl = pcl; 845 ret = -EEXIST; 846 } else { 847 ret = z_erofs_register_pcluster(fe); 848 } 849 850 if (ret == -EEXIST) { 851 mutex_lock(&fe->pcl->lock); 852 /* check if this pcluster hasn't been linked into any chain. */ 853 if (!cmpxchg(&fe->pcl->next, NULL, fe->head)) { 854 /* .. so it can be attached to our submission chain */ 855 fe->head = fe->pcl; 856 fe->mode = Z_EROFS_PCLUSTER_FOLLOWED; 857 } else { /* otherwise, it belongs to an inflight chain */ 858 fe->mode = Z_EROFS_PCLUSTER_INFLIGHT; 859 } 860 } else if (ret) { 861 return ret; 862 } 863 864 z_erofs_bvec_iter_begin(&fe->biter, &fe->pcl->bvset, 865 Z_EROFS_INLINE_BVECS, fe->pcl->vcnt); 866 if (!fe->pcl->from_meta) { 867 /* bind cache first when cached decompression is preferred */ 868 z_erofs_bind_cache(fe); 869 } else { 870 folio_get(page_folio((struct page *)ptr)); 871 WRITE_ONCE(fe->pcl->compressed_bvecs[0].page, ptr); 872 fe->pcl->pageofs_in = map->m_pa & ~PAGE_MASK; 873 fe->mode = Z_EROFS_PCLUSTER_FOLLOWED_NOINPLACE; 874 } 875 /* file-backed inplace I/O pages are traversed in reverse order */ 876 fe->icur = z_erofs_pclusterpages(fe->pcl); 877 return 0; 878 } 879 880 static void z_erofs_rcu_callback(struct rcu_head *head) 881 { 882 z_erofs_free_pcluster(container_of(head, struct z_erofs_pcluster, rcu)); 883 } 884 885 static bool __erofs_try_to_release_pcluster(struct erofs_sb_info *sbi, 886 struct z_erofs_pcluster *pcl) 887 { 888 if (pcl->lockref.count) 889 return false; 890 891 /* 892 * Note that all cached folios should be detached before deleted from 893 * the XArray. Otherwise some folios could be still attached to the 894 * orphan old pcluster when the new one is available in the tree. 895 */ 896 if (erofs_try_to_free_all_cached_folios(sbi, pcl)) 897 return false; 898 899 /* 900 * It's impossible to fail after the pcluster is freezed, but in order 901 * to avoid some race conditions, add a DBG_BUGON to observe this. 902 */ 903 DBG_BUGON(__xa_erase(&sbi->managed_pslots, pcl->pos) != pcl); 904 905 lockref_mark_dead(&pcl->lockref); 906 return true; 907 } 908 909 static bool erofs_try_to_release_pcluster(struct erofs_sb_info *sbi, 910 struct z_erofs_pcluster *pcl) 911 { 912 bool free; 913 914 spin_lock(&pcl->lockref.lock); 915 free = __erofs_try_to_release_pcluster(sbi, pcl); 916 spin_unlock(&pcl->lockref.lock); 917 if (free) { 918 atomic_long_dec(&erofs_global_shrink_cnt); 919 call_rcu(&pcl->rcu, z_erofs_rcu_callback); 920 } 921 return free; 922 } 923 924 unsigned long z_erofs_shrink_scan(struct erofs_sb_info *sbi, unsigned long nr) 925 { 926 struct z_erofs_pcluster *pcl; 927 unsigned long index, freed = 0; 928 929 xa_lock(&sbi->managed_pslots); 930 xa_for_each(&sbi->managed_pslots, index, pcl) { 931 /* try to shrink each valid pcluster */ 932 if (!erofs_try_to_release_pcluster(sbi, pcl)) 933 continue; 934 xa_unlock(&sbi->managed_pslots); 935 936 ++freed; 937 if (!--nr) 938 return freed; 939 xa_lock(&sbi->managed_pslots); 940 } 941 xa_unlock(&sbi->managed_pslots); 942 return freed; 943 } 944 945 static void z_erofs_put_pcluster(struct erofs_sb_info *sbi, 946 struct z_erofs_pcluster *pcl, bool try_free) 947 { 948 bool free = false; 949 950 if (lockref_put_or_lock(&pcl->lockref)) 951 return; 952 953 DBG_BUGON(lockref_is_dead(&pcl->lockref)); 954 if (!--pcl->lockref.count) { 955 if (try_free && xa_trylock(&sbi->managed_pslots)) { 956 free = __erofs_try_to_release_pcluster(sbi, pcl); 957 xa_unlock(&sbi->managed_pslots); 958 } 959 atomic_long_add(!free, &erofs_global_shrink_cnt); 960 } 961 spin_unlock(&pcl->lockref.lock); 962 if (free) 963 call_rcu(&pcl->rcu, z_erofs_rcu_callback); 964 } 965 966 static void z_erofs_pcluster_end(struct z_erofs_frontend *fe) 967 { 968 struct z_erofs_pcluster *pcl = fe->pcl; 969 970 if (!pcl) 971 return; 972 973 z_erofs_bvec_iter_end(&fe->biter); 974 mutex_unlock(&pcl->lock); 975 976 if (fe->candidate_bvpage) 977 fe->candidate_bvpage = NULL; 978 979 /* Drop refcount if it doesn't belong to our processing chain */ 980 if (fe->mode < Z_EROFS_PCLUSTER_FOLLOWED_NOINPLACE) 981 z_erofs_put_pcluster(EROFS_I_SB(fe->inode), pcl, false); 982 fe->pcl = NULL; 983 } 984 985 static int z_erofs_read_fragment(struct super_block *sb, struct folio *folio, 986 unsigned int cur, unsigned int end, erofs_off_t pos) 987 { 988 struct inode *packed_inode = EROFS_SB(sb)->packed_inode; 989 struct erofs_buf buf = __EROFS_BUF_INITIALIZER; 990 unsigned int cnt; 991 u8 *src; 992 993 if (!packed_inode) 994 return -EFSCORRUPTED; 995 996 buf.mapping = packed_inode->i_mapping; 997 for (; cur < end; cur += cnt, pos += cnt) { 998 cnt = min(end - cur, sb->s_blocksize - erofs_blkoff(sb, pos)); 999 src = erofs_bread(&buf, pos, true); 1000 if (IS_ERR(src)) { 1001 erofs_put_metabuf(&buf); 1002 return PTR_ERR(src); 1003 } 1004 memcpy_to_folio(folio, cur, src, cnt); 1005 } 1006 erofs_put_metabuf(&buf); 1007 return 0; 1008 } 1009 1010 static int z_erofs_scan_folio(struct z_erofs_frontend *f, 1011 struct folio *folio, bool ra) 1012 { 1013 struct inode *const inode = f->inode; 1014 struct erofs_map_blocks *const map = &f->map; 1015 const loff_t offset = folio_pos(folio); 1016 const unsigned int bs = i_blocksize(inode); 1017 unsigned int end = folio_size(folio), split = 0, cur, pgs; 1018 bool tight, excl; 1019 int err = 0; 1020 1021 tight = (bs == PAGE_SIZE); 1022 erofs_onlinefolio_init(folio); 1023 do { 1024 if (offset + end - 1 < map->m_la || 1025 offset + end - 1 >= map->m_la + map->m_llen) { 1026 z_erofs_pcluster_end(f); 1027 map->m_la = offset + end - 1; 1028 map->m_llen = 0; 1029 err = z_erofs_map_blocks_iter(inode, map, 0); 1030 if (err) 1031 break; 1032 } 1033 1034 cur = offset > map->m_la ? 0 : map->m_la - offset; 1035 pgs = round_down(cur, PAGE_SIZE); 1036 /* bump split parts first to avoid several separate cases */ 1037 ++split; 1038 1039 if (map->m_flags & EROFS_MAP_FRAGMENT) { 1040 erofs_off_t fpos = offset + cur - map->m_la; 1041 1042 err = z_erofs_read_fragment(inode->i_sb, folio, cur, 1043 cur + min(map->m_llen - fpos, end - cur), 1044 EROFS_I(inode)->z_fragmentoff + fpos); 1045 if (err) 1046 break; 1047 tight = false; 1048 } else if (!(map->m_flags & EROFS_MAP_MAPPED)) { 1049 folio_zero_segment(folio, cur, end); 1050 tight = false; 1051 } else { 1052 if (!f->pcl) { 1053 err = z_erofs_pcluster_begin(f); 1054 if (err) 1055 break; 1056 f->pcl->besteffort |= !ra; 1057 } 1058 1059 pgs = round_down(end - 1, PAGE_SIZE); 1060 /* 1061 * Ensure this partial page belongs to this submit chain 1062 * rather than other concurrent submit chains or 1063 * noio(bypass) chains since those chains are handled 1064 * asynchronously thus it cannot be used for inplace I/O 1065 * or bvpage (should be processed in the strict order.) 1066 */ 1067 tight &= (f->mode >= Z_EROFS_PCLUSTER_FOLLOWED); 1068 excl = false; 1069 if (cur <= pgs) { 1070 excl = (split <= 1) || tight; 1071 cur = pgs; 1072 } 1073 1074 err = z_erofs_attach_page(f, &((struct z_erofs_bvec) { 1075 .page = folio_page(folio, pgs >> PAGE_SHIFT), 1076 .offset = offset + pgs - map->m_la, 1077 .end = end - pgs, }), excl); 1078 if (err) 1079 break; 1080 1081 erofs_onlinefolio_split(folio); 1082 if (f->pcl->length < offset + end - map->m_la) { 1083 f->pcl->length = offset + end - map->m_la; 1084 f->pcl->pageofs_out = map->m_la & ~PAGE_MASK; 1085 } 1086 if (EROFS_MAP_FULL(map->m_flags) && 1087 f->pcl->length == map->m_llen) 1088 f->pcl->partial = false; 1089 } 1090 /* shorten the remaining extent to update progress */ 1091 map->m_llen = offset + cur - map->m_la; 1092 map->m_flags |= EROFS_MAP_PARTIAL_MAPPED; 1093 if (cur <= pgs) { 1094 split = cur < pgs; 1095 tight = (bs == PAGE_SIZE); 1096 } 1097 } while ((end = cur) > 0); 1098 erofs_onlinefolio_end(folio, err, false); 1099 return err; 1100 } 1101 1102 static bool z_erofs_page_is_invalidated(struct page *page) 1103 { 1104 return !page_folio(page)->mapping && !z_erofs_is_shortlived_page(page); 1105 } 1106 1107 struct z_erofs_backend { 1108 struct page *onstack_pages[Z_EROFS_ONSTACK_PAGES]; 1109 struct super_block *sb; 1110 struct z_erofs_pcluster *pcl; 1111 /* pages with the longest decompressed length for deduplication */ 1112 struct page **decompressed_pages; 1113 /* pages to keep the compressed data */ 1114 struct page **compressed_pages; 1115 1116 struct list_head decompressed_secondary_bvecs; 1117 struct page **pagepool; 1118 unsigned int onstack_used, nr_pages; 1119 /* indicate if temporary copies should be preserved for later use */ 1120 bool keepxcpy; 1121 }; 1122 1123 struct z_erofs_bvec_item { 1124 struct z_erofs_bvec bvec; 1125 struct list_head list; 1126 }; 1127 1128 static void z_erofs_do_decompressed_bvec(struct z_erofs_backend *be, 1129 struct z_erofs_bvec *bvec) 1130 { 1131 int poff = bvec->offset + be->pcl->pageofs_out; 1132 struct z_erofs_bvec_item *item; 1133 struct page **page; 1134 1135 if (!(poff & ~PAGE_MASK) && (bvec->end == PAGE_SIZE || 1136 bvec->offset + bvec->end == be->pcl->length)) { 1137 DBG_BUGON((poff >> PAGE_SHIFT) >= be->nr_pages); 1138 page = be->decompressed_pages + (poff >> PAGE_SHIFT); 1139 if (!*page) { 1140 *page = bvec->page; 1141 return; 1142 } 1143 } else { 1144 be->keepxcpy = true; 1145 } 1146 1147 /* (cold path) one pcluster is requested multiple times */ 1148 item = kmalloc_obj(*item, GFP_KERNEL | __GFP_NOFAIL); 1149 item->bvec = *bvec; 1150 list_add(&item->list, &be->decompressed_secondary_bvecs); 1151 } 1152 1153 static void z_erofs_fill_other_copies(struct z_erofs_backend *be, int err) 1154 { 1155 unsigned int off0 = be->pcl->pageofs_out; 1156 struct list_head *p, *n; 1157 1158 list_for_each_safe(p, n, &be->decompressed_secondary_bvecs) { 1159 struct z_erofs_bvec_item *bvi; 1160 unsigned int end, cur; 1161 void *dst, *src; 1162 1163 bvi = container_of(p, struct z_erofs_bvec_item, list); 1164 cur = bvi->bvec.offset < 0 ? -bvi->bvec.offset : 0; 1165 end = min_t(unsigned int, be->pcl->length - bvi->bvec.offset, 1166 bvi->bvec.end); 1167 dst = kmap_local_page(bvi->bvec.page); 1168 while (cur < end) { 1169 unsigned int pgnr, scur, len; 1170 1171 pgnr = (bvi->bvec.offset + cur + off0) >> PAGE_SHIFT; 1172 DBG_BUGON(pgnr >= be->nr_pages); 1173 1174 scur = bvi->bvec.offset + cur - 1175 ((pgnr << PAGE_SHIFT) - off0); 1176 len = min_t(unsigned int, end - cur, PAGE_SIZE - scur); 1177 if (!be->decompressed_pages[pgnr]) { 1178 err = -EFSCORRUPTED; 1179 cur += len; 1180 continue; 1181 } 1182 src = kmap_local_page(be->decompressed_pages[pgnr]); 1183 memcpy(dst + cur, src + scur, len); 1184 kunmap_local(src); 1185 cur += len; 1186 } 1187 kunmap_local(dst); 1188 erofs_onlinefolio_end(page_folio(bvi->bvec.page), err, true); 1189 list_del(p); 1190 kfree(bvi); 1191 } 1192 } 1193 1194 static void z_erofs_parse_out_bvecs(struct z_erofs_backend *be) 1195 { 1196 struct z_erofs_pcluster *pcl = be->pcl; 1197 struct z_erofs_bvec_iter biter; 1198 struct page *old_bvpage; 1199 int i; 1200 1201 z_erofs_bvec_iter_begin(&biter, &pcl->bvset, Z_EROFS_INLINE_BVECS, 0); 1202 for (i = 0; i < pcl->vcnt; ++i) { 1203 struct z_erofs_bvec bvec; 1204 1205 z_erofs_bvec_dequeue(&biter, &bvec, &old_bvpage); 1206 1207 if (old_bvpage) 1208 z_erofs_put_shortlivedpage(be->pagepool, old_bvpage); 1209 1210 DBG_BUGON(z_erofs_page_is_invalidated(bvec.page)); 1211 z_erofs_do_decompressed_bvec(be, &bvec); 1212 } 1213 1214 old_bvpage = z_erofs_bvec_iter_end(&biter); 1215 if (old_bvpage) 1216 z_erofs_put_shortlivedpage(be->pagepool, old_bvpage); 1217 } 1218 1219 static int z_erofs_parse_in_bvecs(struct z_erofs_backend *be, bool *overlapped) 1220 { 1221 struct z_erofs_pcluster *pcl = be->pcl; 1222 unsigned int pclusterpages = z_erofs_pclusterpages(pcl); 1223 int i, err = 0; 1224 1225 *overlapped = false; 1226 for (i = 0; i < pclusterpages; ++i) { 1227 struct z_erofs_bvec *bvec = &pcl->compressed_bvecs[i]; 1228 struct page *page = bvec->page; 1229 1230 /* compressed data ought to be valid when decompressing */ 1231 if (IS_ERR(page) || !page) { 1232 bvec->page = NULL; /* clear the failure reason */ 1233 err = page ? PTR_ERR(page) : -EIO; 1234 continue; 1235 } 1236 be->compressed_pages[i] = page; 1237 1238 if (pcl->from_meta || 1239 erofs_folio_is_managed(EROFS_SB(be->sb), page_folio(page))) { 1240 if (!PageUptodate(page)) 1241 err = -EIO; 1242 continue; 1243 } 1244 1245 DBG_BUGON(z_erofs_page_is_invalidated(page)); 1246 if (z_erofs_is_shortlived_page(page)) 1247 continue; 1248 z_erofs_do_decompressed_bvec(be, bvec); 1249 *overlapped = true; 1250 } 1251 return err; 1252 } 1253 1254 static int z_erofs_decompress_pcluster(struct z_erofs_backend *be, bool eio) 1255 { 1256 struct erofs_sb_info *const sbi = EROFS_SB(be->sb); 1257 struct z_erofs_pcluster *pcl = be->pcl; 1258 unsigned int pclusterpages = z_erofs_pclusterpages(pcl); 1259 const struct z_erofs_decompressor *alg = 1260 z_erofs_decomp[pcl->algorithmformat]; 1261 bool try_free = true; 1262 int i, err2, err = eio ? -EIO : 0; 1263 struct page *page; 1264 bool overlapped; 1265 const char *reason; 1266 1267 mutex_lock(&pcl->lock); 1268 be->nr_pages = PAGE_ALIGN(pcl->length + pcl->pageofs_out) >> PAGE_SHIFT; 1269 1270 /* allocate (de)compressed page arrays if cannot be kept on stack */ 1271 be->decompressed_pages = NULL; 1272 be->compressed_pages = NULL; 1273 be->onstack_used = 0; 1274 if (be->nr_pages <= Z_EROFS_ONSTACK_PAGES) { 1275 be->decompressed_pages = be->onstack_pages; 1276 be->onstack_used = be->nr_pages; 1277 memset(be->decompressed_pages, 0, 1278 sizeof(struct page *) * be->nr_pages); 1279 } 1280 1281 if (pclusterpages + be->onstack_used <= Z_EROFS_ONSTACK_PAGES) 1282 be->compressed_pages = be->onstack_pages + be->onstack_used; 1283 1284 if (!be->decompressed_pages) 1285 be->decompressed_pages = 1286 kvzalloc_objs(struct page *, be->nr_pages, 1287 GFP_KERNEL | __GFP_NOFAIL); 1288 if (!be->compressed_pages) 1289 be->compressed_pages = 1290 kvzalloc_objs(struct page *, pclusterpages, 1291 GFP_KERNEL | __GFP_NOFAIL); 1292 1293 z_erofs_parse_out_bvecs(be); 1294 err2 = z_erofs_parse_in_bvecs(be, &overlapped); 1295 if (err2) 1296 err = err2; 1297 if (!err) { 1298 reason = alg->decompress(&(struct z_erofs_decompress_req) { 1299 .sb = be->sb, 1300 .in = be->compressed_pages, 1301 .out = be->decompressed_pages, 1302 .inpages = pclusterpages, 1303 .outpages = be->nr_pages, 1304 .pageofs_in = pcl->pageofs_in, 1305 .pageofs_out = pcl->pageofs_out, 1306 .inputsize = pcl->pclustersize, 1307 .outputsize = pcl->length, 1308 .alg = pcl->algorithmformat, 1309 .inplace_io = overlapped, 1310 .partial_decoding = pcl->partial, 1311 .fillgaps = be->keepxcpy, 1312 .gfp = pcl->besteffort ? GFP_KERNEL : 1313 GFP_NOWAIT | __GFP_NORETRY 1314 }, be->pagepool); 1315 if (IS_ERR(reason)) { 1316 if (pcl->besteffort || reason != ERR_PTR(-ENOMEM)) 1317 erofs_err(be->sb, "failed to decompress (%s) %pe @ pa %llu size %u => %u", 1318 alg->name, reason, pcl->pos, 1319 pcl->pclustersize, pcl->length); 1320 err = PTR_ERR(reason); 1321 } else if (unlikely(reason)) { 1322 erofs_err(be->sb, "failed to decompress (%s) %s @ pa %llu size %u => %u", 1323 alg->name, reason, pcl->pos, 1324 pcl->pclustersize, pcl->length); 1325 err = -EFSCORRUPTED; 1326 } 1327 } 1328 1329 /* must handle all compressed pages before actual file pages */ 1330 if (pcl->from_meta) { 1331 folio_put(page_folio(pcl->compressed_bvecs[0].page)); 1332 WRITE_ONCE(pcl->compressed_bvecs[0].page, NULL); 1333 } else { 1334 /* managed folios are still left in compressed_bvecs[] */ 1335 for (i = 0; i < pclusterpages; ++i) { 1336 page = be->compressed_pages[i]; 1337 if (!page) 1338 continue; 1339 if (erofs_folio_is_managed(sbi, page_folio(page))) { 1340 try_free = false; 1341 continue; 1342 } 1343 (void)z_erofs_put_shortlivedpage(be->pagepool, page); 1344 WRITE_ONCE(pcl->compressed_bvecs[i].page, NULL); 1345 } 1346 } 1347 if (be->compressed_pages < be->onstack_pages || 1348 be->compressed_pages >= be->onstack_pages + Z_EROFS_ONSTACK_PAGES) 1349 kvfree(be->compressed_pages); 1350 1351 z_erofs_fill_other_copies(be, err); 1352 for (i = 0; i < be->nr_pages; ++i) { 1353 page = be->decompressed_pages[i]; 1354 if (!page) 1355 continue; 1356 1357 DBG_BUGON(z_erofs_page_is_invalidated(page)); 1358 if (!z_erofs_is_shortlived_page(page)) 1359 erofs_onlinefolio_end(page_folio(page), err, true); 1360 else 1361 erofs_pagepool_add(be->pagepool, page); 1362 } 1363 if (be->decompressed_pages != be->onstack_pages) 1364 kvfree(be->decompressed_pages); 1365 1366 pcl->length = 0; 1367 pcl->partial = true; 1368 pcl->besteffort = false; 1369 pcl->bvset.nextpage = NULL; 1370 pcl->vcnt = 0; 1371 1372 /* pcluster lock MUST be taken before the following line */ 1373 WRITE_ONCE(pcl->next, NULL); 1374 mutex_unlock(&pcl->lock); 1375 1376 if (pcl->from_meta) 1377 z_erofs_free_pcluster(pcl); 1378 else 1379 z_erofs_put_pcluster(sbi, pcl, try_free); 1380 return err; 1381 } 1382 1383 static int z_erofs_decompress_queue(const struct z_erofs_decompressqueue *io, 1384 struct page **pagepool) 1385 { 1386 struct z_erofs_backend be = { 1387 .sb = io->sb, 1388 .pagepool = pagepool, 1389 .decompressed_secondary_bvecs = 1390 LIST_HEAD_INIT(be.decompressed_secondary_bvecs), 1391 .pcl = io->head, 1392 }; 1393 struct z_erofs_pcluster *next; 1394 int err = 0; 1395 1396 for (; be.pcl != Z_EROFS_PCLUSTER_TAIL; be.pcl = next) { 1397 DBG_BUGON(!be.pcl); 1398 next = READ_ONCE(be.pcl->next); 1399 err = z_erofs_decompress_pcluster(&be, io->eio) ?: err; 1400 } 1401 return err; 1402 } 1403 1404 static void z_erofs_decompressqueue_work(struct work_struct *work) 1405 { 1406 struct z_erofs_decompressqueue *bgq = 1407 container_of(work, struct z_erofs_decompressqueue, u.work); 1408 struct page *pagepool = NULL; 1409 1410 DBG_BUGON(bgq->head == Z_EROFS_PCLUSTER_TAIL); 1411 z_erofs_decompress_queue(bgq, &pagepool); 1412 erofs_release_pages(&pagepool); 1413 kvfree(bgq); 1414 } 1415 1416 #ifdef CONFIG_EROFS_FS_PCPU_KTHREAD 1417 static void z_erofs_decompressqueue_kthread_work(struct kthread_work *work) 1418 { 1419 z_erofs_decompressqueue_work((struct work_struct *)work); 1420 } 1421 #endif 1422 1423 1424 static void z_erofs_decompress_kickoff(struct z_erofs_decompressqueue *io, 1425 int bios) 1426 { 1427 struct erofs_sb_info *const sbi = EROFS_SB(io->sb); 1428 int gfp_flag; 1429 1430 /* wake up the caller thread for sync decompression */ 1431 if (io->sync) { 1432 if (!atomic_add_return(bios, &io->pending_bios)) 1433 complete(&io->u.done); 1434 return; 1435 } 1436 1437 if (atomic_add_return(bios, &io->pending_bios)) 1438 return; 1439 if (bio_in_atomic()) { 1440 /* See `sync_decompress` in sysfs-fs-erofs for more details */ 1441 if (sbi->sync_decompress == EROFS_SYNC_DECOMPRESS_AUTO) 1442 sbi->sync_decompress = EROFS_SYNC_DECOMPRESS_FORCE_ON; 1443 #ifdef CONFIG_EROFS_FS_PCPU_KTHREAD 1444 scoped_guard(rcu) { 1445 struct kthread_worker *worker; 1446 1447 worker = rcu_dereference( 1448 z_erofs_pcpu_workers[raw_smp_processor_id()]); 1449 if (worker) { 1450 kthread_queue_work(worker, &io->u.kthread_work); 1451 return; 1452 } 1453 } 1454 INIT_WORK(&io->u.work, z_erofs_decompressqueue_work); 1455 #endif 1456 queue_work(z_erofs_workqueue, &io->u.work); 1457 return; 1458 } 1459 gfp_flag = memalloc_noio_save(); 1460 z_erofs_decompressqueue_work(&io->u.work); 1461 memalloc_noio_restore(gfp_flag); 1462 } 1463 1464 static void z_erofs_fill_bio_vec(struct bio_vec *bvec, 1465 struct z_erofs_frontend *f, 1466 struct z_erofs_pcluster *pcl, 1467 unsigned int nr, 1468 struct address_space *mc) 1469 { 1470 gfp_t gfp = mapping_gfp_mask(mc); 1471 bool tocache = false; 1472 struct z_erofs_bvec zbv; 1473 struct address_space *mapping; 1474 struct folio *folio; 1475 struct page *page; 1476 int bs = i_blocksize(f->inode); 1477 1478 /* Except for inplace folios, the entire folio can be used for I/Os */ 1479 bvec->bv_offset = 0; 1480 bvec->bv_len = PAGE_SIZE; 1481 repeat: 1482 spin_lock(&pcl->lockref.lock); 1483 zbv = pcl->compressed_bvecs[nr]; 1484 spin_unlock(&pcl->lockref.lock); 1485 if (!zbv.page) 1486 goto out_allocfolio; 1487 1488 bvec->bv_page = zbv.page; 1489 DBG_BUGON(z_erofs_is_shortlived_page(bvec->bv_page)); 1490 1491 folio = page_folio(zbv.page); 1492 /* 1493 * Preallocated folios are added to the managed cache here rather than 1494 * in z_erofs_bind_cache() in order to keep these folios locked in 1495 * increasing (physical) address order. 1496 * Clear folio->private before these folios become visible to others in 1497 * the managed cache to avoid duplicate additions for unaligned extents. 1498 */ 1499 if (folio->private == Z_EROFS_PREALLOCATED_FOLIO) { 1500 folio->private = NULL; 1501 tocache = true; 1502 goto out_tocache; 1503 } 1504 1505 mapping = READ_ONCE(folio->mapping); 1506 /* 1507 * File-backed folios for inplace I/Os are all locked steady, 1508 * therefore it is impossible for `mapping` to be NULL. 1509 */ 1510 if (mapping && mapping != mc) { 1511 if (zbv.offset < 0) 1512 bvec->bv_offset = round_up(-zbv.offset, bs); 1513 bvec->bv_len = round_up(zbv.end, bs) - bvec->bv_offset; 1514 return; 1515 } 1516 1517 folio_lock(folio); 1518 if (likely(folio->mapping == mc)) { 1519 /* 1520 * The cached folio is still in managed cache but without 1521 * a valid `->private` pcluster hint. Let's reconnect them. 1522 */ 1523 if (!folio_test_private(folio)) { 1524 folio_attach_private(folio, pcl); 1525 /* compressed_bvecs[] already takes a ref before */ 1526 folio_put(folio); 1527 } 1528 if (likely(folio->private == pcl)) { 1529 /* don't submit cache I/Os again if already uptodate */ 1530 if (folio_test_uptodate(folio)) { 1531 folio_unlock(folio); 1532 bvec->bv_page = NULL; 1533 } 1534 return; 1535 } 1536 } else { 1537 DBG_BUGON(1); /* referenced managed folios can't be truncated */ 1538 } 1539 folio_unlock(folio); 1540 folio_put(folio); 1541 out_allocfolio: 1542 page = __erofs_allocpage(&f->pagepool, gfp, true); 1543 spin_lock(&pcl->lockref.lock); 1544 if (unlikely(pcl->compressed_bvecs[nr].page != zbv.page)) { 1545 if (page) 1546 erofs_pagepool_add(&f->pagepool, page); 1547 spin_unlock(&pcl->lockref.lock); 1548 cond_resched(); 1549 goto repeat; 1550 } 1551 pcl->compressed_bvecs[nr].page = page ? page : ERR_PTR(-ENOMEM); 1552 spin_unlock(&pcl->lockref.lock); 1553 bvec->bv_page = page; 1554 if (!page) 1555 return; 1556 folio = page_folio(page); 1557 out_tocache: 1558 if (!tocache || bs != PAGE_SIZE || 1559 filemap_add_folio(mc, folio, (pcl->pos >> PAGE_SHIFT) + nr, gfp)) { 1560 /* turn into a temporary shortlived folio (1 ref) */ 1561 folio->private = (void *)Z_EROFS_SHORTLIVED_PAGE; 1562 return; 1563 } 1564 folio_attach_private(folio, pcl); 1565 /* drop a refcount added by allocpage (then 2 refs in total here) */ 1566 folio_put(folio); 1567 } 1568 1569 static struct z_erofs_decompressqueue *jobqueue_init(struct super_block *sb, 1570 struct z_erofs_decompressqueue *fgq, bool *fg) 1571 { 1572 struct z_erofs_decompressqueue *q; 1573 1574 if (fg && !*fg) { 1575 q = kvzalloc_obj(*q, GFP_KERNEL | __GFP_NOWARN); 1576 if (!q) { 1577 *fg = true; 1578 goto fg_out; 1579 } 1580 #ifdef CONFIG_EROFS_FS_PCPU_KTHREAD 1581 kthread_init_work(&q->u.kthread_work, 1582 z_erofs_decompressqueue_kthread_work); 1583 #else 1584 INIT_WORK(&q->u.work, z_erofs_decompressqueue_work); 1585 #endif 1586 } else { 1587 fg_out: 1588 q = fgq; 1589 init_completion(&fgq->u.done); 1590 atomic_set(&fgq->pending_bios, 0); 1591 q->eio = false; 1592 q->sync = true; 1593 } 1594 q->sb = sb; 1595 q->head = Z_EROFS_PCLUSTER_TAIL; 1596 return q; 1597 } 1598 1599 /* define decompression jobqueue types */ 1600 enum { 1601 JQ_BYPASS, 1602 JQ_SUBMIT, 1603 NR_JOBQUEUES, 1604 }; 1605 1606 static void z_erofs_move_to_bypass_queue(struct z_erofs_pcluster *pcl, 1607 struct z_erofs_pcluster *next, 1608 struct z_erofs_pcluster **qtail[]) 1609 { 1610 WRITE_ONCE(pcl->next, Z_EROFS_PCLUSTER_TAIL); 1611 WRITE_ONCE(*qtail[JQ_SUBMIT], next); 1612 WRITE_ONCE(*qtail[JQ_BYPASS], pcl); 1613 qtail[JQ_BYPASS] = &pcl->next; 1614 } 1615 1616 static void z_erofs_endio(struct bio *bio) 1617 { 1618 struct z_erofs_decompressqueue *q = bio->bi_private; 1619 blk_status_t err = bio->bi_status; 1620 struct folio_iter fi; 1621 1622 bio_for_each_folio_all(fi, bio) { 1623 struct folio *folio = fi.folio; 1624 1625 DBG_BUGON(folio_test_uptodate(folio)); 1626 DBG_BUGON(z_erofs_page_is_invalidated(&folio->page)); 1627 if (!erofs_folio_is_managed(EROFS_SB(q->sb), folio)) 1628 continue; 1629 1630 if (!err) 1631 folio_mark_uptodate(folio); 1632 folio_unlock(folio); 1633 } 1634 if (err) 1635 q->eio = true; 1636 z_erofs_decompress_kickoff(q, -1); 1637 if (bio->bi_bdev) 1638 bio_put(bio); 1639 } 1640 1641 static void z_erofs_submit_queue(struct z_erofs_frontend *f, 1642 struct z_erofs_decompressqueue *fgq, 1643 bool *force_fg, bool readahead) 1644 { 1645 struct super_block *sb = f->inode->i_sb; 1646 struct address_space *mc = MNGD_MAPPING(EROFS_SB(sb)); 1647 struct z_erofs_pcluster **qtail[NR_JOBQUEUES]; 1648 struct z_erofs_decompressqueue *q[NR_JOBQUEUES]; 1649 struct z_erofs_pcluster *pcl, *next; 1650 /* bio is NULL initially, so no need to initialize last_{index,bdev} */ 1651 erofs_off_t last_pa; 1652 unsigned int nr_bios = 0; 1653 struct bio *bio = NULL; 1654 unsigned long pflags; 1655 int memstall = 0; 1656 1657 /* No need to read from device for pclusters in the bypass queue. */ 1658 q[JQ_BYPASS] = jobqueue_init(sb, fgq + JQ_BYPASS, NULL); 1659 q[JQ_SUBMIT] = jobqueue_init(sb, fgq + JQ_SUBMIT, force_fg); 1660 1661 qtail[JQ_BYPASS] = &q[JQ_BYPASS]->head; 1662 qtail[JQ_SUBMIT] = &q[JQ_SUBMIT]->head; 1663 1664 /* by default, all need io submission */ 1665 q[JQ_SUBMIT]->head = next = f->head; 1666 1667 do { 1668 struct erofs_map_dev mdev; 1669 erofs_off_t cur, end; 1670 struct bio_vec bvec; 1671 unsigned int i = 0; 1672 bool bypass = true; 1673 1674 pcl = next; 1675 next = READ_ONCE(pcl->next); 1676 if (pcl->from_meta) { 1677 z_erofs_move_to_bypass_queue(pcl, next, qtail); 1678 continue; 1679 } 1680 1681 /* no device id here, thus it will always succeed */ 1682 mdev = (struct erofs_map_dev) { 1683 .m_pa = round_down(pcl->pos, sb->s_blocksize), 1684 }; 1685 (void)erofs_map_dev(sb, &mdev); 1686 1687 cur = mdev.m_pa; 1688 end = round_up(cur + pcl->pageofs_in + pcl->pclustersize, 1689 sb->s_blocksize); 1690 do { 1691 bvec.bv_page = NULL; 1692 if (bio && (cur != last_pa || 1693 bio->bi_bdev != mdev.m_bdev)) { 1694 drain_io: 1695 if (erofs_is_fileio_mode(EROFS_SB(sb))) 1696 erofs_fileio_submit_bio(bio); 1697 else 1698 submit_bio(bio); 1699 1700 if (memstall) { 1701 psi_memstall_leave(&pflags); 1702 memstall = 0; 1703 } 1704 bio = NULL; 1705 } 1706 1707 if (!bvec.bv_page) { 1708 z_erofs_fill_bio_vec(&bvec, f, pcl, i++, mc); 1709 if (!bvec.bv_page) 1710 continue; 1711 if (cur + bvec.bv_len > end) 1712 bvec.bv_len = end - cur; 1713 DBG_BUGON(bvec.bv_len < sb->s_blocksize); 1714 } 1715 1716 if (unlikely(PageWorkingset(bvec.bv_page)) && 1717 !memstall) { 1718 psi_memstall_enter(&pflags); 1719 memstall = 1; 1720 } 1721 1722 if (!bio) { 1723 if (erofs_is_fileio_mode(EROFS_SB(sb))) 1724 bio = erofs_fileio_bio_alloc(&mdev); 1725 else 1726 bio = bio_alloc(mdev.m_bdev, BIO_MAX_VECS, 1727 REQ_OP_READ, GFP_NOIO); 1728 bio->bi_end_io = z_erofs_endio; 1729 bio->bi_iter.bi_sector = 1730 (mdev.m_dif->fsoff + cur) >> 9; 1731 bio->bi_private = q[JQ_SUBMIT]; 1732 if (readahead) 1733 bio->bi_opf |= REQ_RAHEAD; 1734 ++nr_bios; 1735 } 1736 1737 if (!bio_add_page(bio, bvec.bv_page, bvec.bv_len, 1738 bvec.bv_offset)) 1739 goto drain_io; 1740 last_pa = cur + bvec.bv_len; 1741 bypass = false; 1742 } while ((cur += bvec.bv_len) < end); 1743 1744 if (!bypass) 1745 qtail[JQ_SUBMIT] = &pcl->next; 1746 else 1747 z_erofs_move_to_bypass_queue(pcl, next, qtail); 1748 } while (next != Z_EROFS_PCLUSTER_TAIL); 1749 1750 if (bio) { 1751 if (erofs_is_fileio_mode(EROFS_SB(sb))) 1752 erofs_fileio_submit_bio(bio); 1753 else 1754 submit_bio(bio); 1755 } 1756 if (memstall) 1757 psi_memstall_leave(&pflags); 1758 1759 /* 1760 * although background is preferred, no one is pending for submission. 1761 * don't issue decompression but drop it directly instead. 1762 */ 1763 if (!*force_fg && !nr_bios) { 1764 kvfree(q[JQ_SUBMIT]); 1765 return; 1766 } 1767 z_erofs_decompress_kickoff(q[JQ_SUBMIT], nr_bios); 1768 } 1769 1770 static int z_erofs_runqueue(struct z_erofs_frontend *f, unsigned int rabytes) 1771 { 1772 struct z_erofs_decompressqueue io[NR_JOBQUEUES]; 1773 struct erofs_sb_info *sbi = EROFS_I_SB(f->inode); 1774 int syncmode = sbi->sync_decompress; 1775 bool force_fg; 1776 int err; 1777 1778 force_fg = (syncmode == EROFS_SYNC_DECOMPRESS_AUTO && !rabytes) || 1779 (syncmode == EROFS_SYNC_DECOMPRESS_FORCE_ON && 1780 (rabytes <= Z_EROFS_MAX_SYNC_DECOMPRESS_BYTES)); 1781 1782 if (f->head == Z_EROFS_PCLUSTER_TAIL) 1783 return 0; 1784 z_erofs_submit_queue(f, io, &force_fg, !!rabytes); 1785 1786 /* handle bypass queue (no i/o pclusters) immediately */ 1787 err = z_erofs_decompress_queue(&io[JQ_BYPASS], &f->pagepool); 1788 if (!force_fg) 1789 return err; 1790 1791 /* wait until all bios are completed */ 1792 wait_for_completion_io(&io[JQ_SUBMIT].u.done); 1793 1794 /* handle synchronous decompress queue in the caller context */ 1795 return z_erofs_decompress_queue(&io[JQ_SUBMIT], &f->pagepool) ?: err; 1796 } 1797 1798 /* 1799 * Since partial uptodate is still unimplemented for now, we have to use 1800 * approximate readmore strategies as a start. 1801 */ 1802 static void z_erofs_pcluster_readmore(struct z_erofs_frontend *f, 1803 struct readahead_control *rac, bool backmost) 1804 { 1805 struct inode *inode = f->inode; 1806 struct erofs_map_blocks *map = &f->map; 1807 erofs_off_t cur, end, headoffset = f->headoffset; 1808 int err; 1809 1810 if (backmost) { 1811 if (rac) 1812 end = headoffset + readahead_length(rac) - 1; 1813 else 1814 end = headoffset + PAGE_SIZE - 1; 1815 map->m_la = end; 1816 err = z_erofs_map_blocks_iter(inode, map, 1817 EROFS_GET_BLOCKS_READMORE); 1818 if (err || !(map->m_flags & EROFS_MAP_MAPPED)) 1819 return; 1820 1821 /* expand ra for the trailing edge if readahead */ 1822 if (rac) { 1823 cur = round_up(map->m_la + map->m_llen, PAGE_SIZE); 1824 readahead_expand(rac, headoffset, cur - headoffset); 1825 return; 1826 } 1827 end = round_up(end, PAGE_SIZE); 1828 } else { 1829 end = round_up(map->m_la, PAGE_SIZE); 1830 if (!(map->m_flags & EROFS_MAP_MAPPED) || !map->m_llen) 1831 return; 1832 } 1833 1834 cur = map->m_la + map->m_llen - 1; 1835 while ((cur >= end) && (cur < i_size_read(inode))) { 1836 pgoff_t index = cur >> PAGE_SHIFT; 1837 struct folio *folio; 1838 1839 folio = erofs_grab_folio_nowait(f->sharedinode->i_mapping, index); 1840 if (!IS_ERR_OR_NULL(folio)) { 1841 if (folio_test_uptodate(folio)) 1842 folio_unlock(folio); 1843 else 1844 z_erofs_scan_folio(f, folio, !!rac); 1845 folio_put(folio); 1846 } 1847 1848 if (cur < PAGE_SIZE) 1849 break; 1850 cur = ((loff_t)index << PAGE_SHIFT) - 1; 1851 } 1852 } 1853 1854 static int z_erofs_read_folio(struct file *file, struct folio *folio) 1855 { 1856 struct inode *sharedinode = folio->mapping->host; 1857 bool need_iput; 1858 struct inode *realinode = erofs_real_inode(sharedinode, &need_iput); 1859 Z_EROFS_DEFINE_FRONTEND(f, realinode, sharedinode, folio_pos(folio)); 1860 int err; 1861 1862 trace_erofs_read_folio(realinode, folio, false); 1863 z_erofs_pcluster_readmore(&f, NULL, true); 1864 err = z_erofs_scan_folio(&f, folio, false); 1865 z_erofs_pcluster_readmore(&f, NULL, false); 1866 z_erofs_pcluster_end(&f); 1867 1868 /* if some pclusters are ready, need submit them anyway */ 1869 err = z_erofs_runqueue(&f, 0) ?: err; 1870 if (err && err != -EINTR) 1871 erofs_err(realinode->i_sb, "read error %d @ %lu of nid %llu", 1872 err, folio->index, EROFS_I(realinode)->nid); 1873 1874 erofs_put_metabuf(&f.map.buf); 1875 erofs_release_pages(&f.pagepool); 1876 1877 if (need_iput) 1878 iput(realinode); 1879 return err; 1880 } 1881 1882 static void z_erofs_readahead(struct readahead_control *rac) 1883 { 1884 struct inode *sharedinode = rac->mapping->host; 1885 bool need_iput; 1886 struct inode *realinode = erofs_real_inode(sharedinode, &need_iput); 1887 Z_EROFS_DEFINE_FRONTEND(f, realinode, sharedinode, readahead_pos(rac)); 1888 unsigned int nrpages = readahead_count(rac); 1889 struct folio *head = NULL, *folio; 1890 int err; 1891 1892 trace_erofs_readahead(realinode, readahead_index(rac), nrpages, false); 1893 z_erofs_pcluster_readmore(&f, rac, true); 1894 while ((folio = readahead_folio(rac))) { 1895 folio->private = head; 1896 head = folio; 1897 } 1898 1899 /* traverse in reverse order for best metadata I/O performance */ 1900 while (head) { 1901 folio = head; 1902 head = folio_get_private(folio); 1903 1904 err = z_erofs_scan_folio(&f, folio, true); 1905 if (err && err != -EINTR) 1906 erofs_err(realinode->i_sb, "readahead error at folio %lu @ nid %llu", 1907 folio->index, EROFS_I(realinode)->nid); 1908 } 1909 z_erofs_pcluster_readmore(&f, rac, false); 1910 z_erofs_pcluster_end(&f); 1911 1912 (void)z_erofs_runqueue(&f, nrpages << PAGE_SHIFT); 1913 erofs_put_metabuf(&f.map.buf); 1914 erofs_release_pages(&f.pagepool); 1915 1916 if (need_iput) 1917 iput(realinode); 1918 } 1919 1920 const struct address_space_operations z_erofs_aops = { 1921 .read_folio = z_erofs_read_folio, 1922 .readahead = z_erofs_readahead, 1923 }; 1924