1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright (C) 2008 Oracle. All rights reserved. 4 */ 5 6 #include <linux/kernel.h> 7 #include <linux/bio.h> 8 #include <linux/file.h> 9 #include <linux/fs.h> 10 #include <linux/pagemap.h> 11 #include <linux/folio_batch.h> 12 #include <linux/highmem.h> 13 #include <linux/kthread.h> 14 #include <linux/time.h> 15 #include <linux/init.h> 16 #include <linux/string.h> 17 #include <linux/backing-dev.h> 18 #include <linux/writeback.h> 19 #include <linux/psi.h> 20 #include <linux/slab.h> 21 #include <linux/sched/mm.h> 22 #include <linux/log2.h> 23 #include <linux/shrinker.h> 24 #include "misc.h" 25 #include "ctree.h" 26 #include "fs.h" 27 #include "btrfs_inode.h" 28 #include "bio.h" 29 #include "ordered-data.h" 30 #include "compression.h" 31 #include "extent_io.h" 32 #include "extent_map.h" 33 #include "subpage.h" 34 #include "messages.h" 35 #include "super.h" 36 37 static struct bio_set btrfs_compressed_bioset; 38 39 static const char* const btrfs_compress_types[] = { "", "zlib", "lzo", "zstd" }; 40 41 const char* btrfs_compress_type2str(enum btrfs_compression_type type) 42 { 43 switch (type) { 44 case BTRFS_COMPRESS_ZLIB: 45 case BTRFS_COMPRESS_LZO: 46 case BTRFS_COMPRESS_ZSTD: 47 case BTRFS_COMPRESS_NONE: 48 return btrfs_compress_types[type]; 49 default: 50 break; 51 } 52 53 return NULL; 54 } 55 56 static inline struct compressed_bio *to_compressed_bio(struct btrfs_bio *bbio) 57 { 58 return container_of(bbio, struct compressed_bio, bbio); 59 } 60 61 static struct compressed_bio *alloc_compressed_bio(struct btrfs_inode *inode, 62 u64 start, blk_opf_t op, 63 btrfs_bio_end_io_t end_io) 64 { 65 struct btrfs_bio *bbio; 66 67 bbio = btrfs_bio(bio_alloc_bioset(NULL, BTRFS_MAX_COMPRESSED_PAGES, op, 68 GFP_NOFS, &btrfs_compressed_bioset)); 69 btrfs_bio_init(bbio, inode, start, end_io, NULL); 70 return to_compressed_bio(bbio); 71 } 72 73 bool btrfs_compress_is_valid_type(const char *str, size_t len) 74 { 75 int i; 76 77 for (i = 1; i < ARRAY_SIZE(btrfs_compress_types); i++) { 78 size_t comp_len = strlen(btrfs_compress_types[i]); 79 80 if (len < comp_len) 81 continue; 82 83 if (!strncmp(btrfs_compress_types[i], str, comp_len)) 84 return true; 85 } 86 return false; 87 } 88 89 static int compression_decompress_bio(struct list_head *ws, 90 struct compressed_bio *cb) 91 { 92 switch (cb->compress_type) { 93 case BTRFS_COMPRESS_ZLIB: return zlib_decompress_bio(ws, cb); 94 case BTRFS_COMPRESS_LZO: return lzo_decompress_bio(ws, cb); 95 case BTRFS_COMPRESS_ZSTD: return zstd_decompress_bio(ws, cb); 96 case BTRFS_COMPRESS_NONE: 97 default: 98 /* 99 * This can't happen, the type is validated several times 100 * before we get here. 101 */ 102 BUG(); 103 } 104 } 105 106 static int compression_decompress(int type, struct list_head *ws, 107 const u8 *data_in, struct folio *dest_folio, 108 unsigned long dest_pgoff, size_t srclen, size_t destlen) 109 { 110 switch (type) { 111 case BTRFS_COMPRESS_ZLIB: return zlib_decompress(ws, data_in, dest_folio, 112 dest_pgoff, srclen, destlen); 113 case BTRFS_COMPRESS_LZO: return lzo_decompress(ws, data_in, dest_folio, 114 dest_pgoff, srclen, destlen); 115 case BTRFS_COMPRESS_ZSTD: return zstd_decompress(ws, data_in, dest_folio, 116 dest_pgoff, srclen, destlen); 117 case BTRFS_COMPRESS_NONE: 118 default: 119 /* 120 * This can't happen, the type is validated several times 121 * before we get here. 122 */ 123 BUG(); 124 } 125 } 126 127 static int btrfs_decompress_bio(struct compressed_bio *cb); 128 129 /* 130 * Global cache of last unused pages for compression/decompression. 131 */ 132 static struct btrfs_compr_pool { 133 struct shrinker *shrinker; 134 spinlock_t lock; 135 struct list_head list; 136 int count; 137 int thresh; 138 } compr_pool; 139 140 static unsigned long btrfs_compr_pool_count(struct shrinker *sh, struct shrink_control *sc) 141 { 142 int ret; 143 144 /* 145 * We must not read the values more than once if 'ret' gets expanded in 146 * the return statement so we don't accidentally return a negative 147 * number, even if the first condition finds it positive. 148 */ 149 ret = READ_ONCE(compr_pool.count) - READ_ONCE(compr_pool.thresh); 150 151 return ret > 0 ? ret : 0; 152 } 153 154 static unsigned long btrfs_compr_pool_scan(struct shrinker *sh, struct shrink_control *sc) 155 { 156 LIST_HEAD(remove); 157 struct list_head *tmp, *next; 158 int freed; 159 160 if (compr_pool.count == 0) 161 return SHRINK_STOP; 162 163 /* For now, just simply drain the whole list. */ 164 spin_lock(&compr_pool.lock); 165 list_splice_init(&compr_pool.list, &remove); 166 freed = compr_pool.count; 167 compr_pool.count = 0; 168 spin_unlock(&compr_pool.lock); 169 170 list_for_each_safe(tmp, next, &remove) { 171 struct page *page = list_entry(tmp, struct page, lru); 172 173 ASSERT(page_ref_count(page) == 1); 174 put_page(page); 175 } 176 177 return freed; 178 } 179 180 /* 181 * Common wrappers for page allocation from compression wrappers 182 */ 183 struct folio *btrfs_alloc_compr_folio(struct btrfs_fs_info *fs_info, gfp_t gfp) 184 { 185 struct folio *folio = NULL; 186 187 /* For bs > ps cases, no cached folio pool for now. */ 188 if (fs_info->block_min_order) 189 goto alloc; 190 191 spin_lock(&compr_pool.lock); 192 if (compr_pool.count > 0) { 193 folio = list_first_entry(&compr_pool.list, struct folio, lru); 194 list_del_init(&folio->lru); 195 compr_pool.count--; 196 } 197 spin_unlock(&compr_pool.lock); 198 199 if (folio) 200 return folio; 201 202 alloc: 203 return folio_alloc(gfp, fs_info->block_min_order); 204 } 205 206 void btrfs_free_compr_folio(struct folio *folio) 207 { 208 bool do_free = false; 209 210 /* The folio is from bs > ps fs, no cached pool for now. */ 211 if (folio_order(folio)) 212 goto free; 213 214 spin_lock(&compr_pool.lock); 215 if (compr_pool.count > compr_pool.thresh) { 216 do_free = true; 217 } else { 218 list_add(&folio->lru, &compr_pool.list); 219 compr_pool.count++; 220 } 221 spin_unlock(&compr_pool.lock); 222 223 if (!do_free) 224 return; 225 226 free: 227 ASSERT(folio_ref_count(folio) == 1); 228 folio_put(folio); 229 } 230 231 static void end_bbio_compressed_read(struct btrfs_bio *bbio) 232 { 233 struct compressed_bio *cb = to_compressed_bio(bbio); 234 blk_status_t status = bbio->bio.bi_status; 235 struct folio_iter fi; 236 237 if (!status) 238 status = errno_to_blk_status(btrfs_decompress_bio(cb)); 239 240 btrfs_bio_end_io(cb->orig_bbio, status); 241 bio_for_each_folio_all(fi, &bbio->bio) 242 btrfs_free_compr_folio(fi.folio); 243 bio_put(&bbio->bio); 244 } 245 246 /* 247 * Clear the writeback bits on all of the file 248 * pages for a compressed write 249 */ 250 static noinline void end_compressed_writeback(const struct compressed_bio *cb) 251 { 252 struct inode *inode = &cb->bbio.inode->vfs_inode; 253 struct btrfs_fs_info *fs_info = inode_to_fs_info(inode); 254 pgoff_t index = cb->start >> PAGE_SHIFT; 255 const pgoff_t end_index = (cb->start + cb->len - 1) >> PAGE_SHIFT; 256 struct folio_batch fbatch; 257 int i; 258 int ret; 259 260 ret = blk_status_to_errno(cb->bbio.bio.bi_status); 261 if (ret) 262 mapping_set_error(inode->i_mapping, ret); 263 264 folio_batch_init(&fbatch); 265 while (index <= end_index) { 266 ret = filemap_get_folios(inode->i_mapping, &index, end_index, 267 &fbatch); 268 269 if (ret == 0) 270 return; 271 272 for (i = 0; i < ret; i++) { 273 struct folio *folio = fbatch.folios[i]; 274 275 btrfs_folio_clamp_clear_writeback(fs_info, folio, 276 cb->start, cb->len); 277 } 278 folio_batch_release(&fbatch); 279 } 280 /* the inode may be gone now */ 281 } 282 283 /* 284 * Do the cleanup once all the compressed pages hit the disk. This will clear 285 * writeback on the file pages and free the compressed pages. 286 * 287 * This also calls the writeback end hooks for the file pages so that metadata 288 * and checksums can be updated in the file. 289 */ 290 static void end_bbio_compressed_write(struct btrfs_bio *bbio) 291 { 292 struct compressed_bio *cb = to_compressed_bio(bbio); 293 struct folio_iter fi; 294 295 btrfs_finish_ordered_extent(cb->bbio.ordered, cb->start, cb->len, 296 cb->bbio.bio.bi_status == BLK_STS_OK); 297 298 if (cb->writeback) 299 end_compressed_writeback(cb); 300 /* Note, our inode could be gone now. */ 301 bio_for_each_folio_all(fi, &bbio->bio) 302 btrfs_free_compr_folio(fi.folio); 303 bio_put(&cb->bbio.bio); 304 } 305 306 /* 307 * worker function to build and submit bios for previously compressed pages. 308 * The corresponding pages in the inode should be marked for writeback 309 * and the compressed pages should have a reference on them for dropping 310 * when the IO is complete. 311 * 312 * This also checksums the file bytes and gets things ready for 313 * the end io hooks. 314 */ 315 void btrfs_submit_compressed_write(struct btrfs_ordered_extent *ordered, 316 struct compressed_bio *cb) 317 { 318 struct btrfs_inode *inode = ordered->inode; 319 struct btrfs_fs_info *fs_info = inode->root->fs_info; 320 321 ASSERT(IS_ALIGNED(ordered->file_offset, fs_info->sectorsize)); 322 ASSERT(IS_ALIGNED(ordered->num_bytes, fs_info->sectorsize)); 323 /* 324 * This flag determines if we should clear the writeback flag from the 325 * page cache. But this function is only utilized by encoded writes, it 326 * never goes through the page cache. 327 */ 328 ASSERT(!cb->writeback); 329 330 cb->start = ordered->file_offset; 331 cb->len = ordered->num_bytes; 332 ASSERT(cb->bbio.bio.bi_iter.bi_size == ordered->disk_num_bytes); 333 cb->bbio.bio.bi_iter.bi_sector = ordered->disk_bytenr >> SECTOR_SHIFT; 334 cb->bbio.ordered = ordered; 335 336 btrfs_submit_bbio(&cb->bbio, 0); 337 } 338 339 /* 340 * Allocate a compressed write bio for @inode file offset @start length @len. 341 * 342 * The caller still needs to properly queue all folios and populate involved 343 * members. 344 */ 345 struct compressed_bio *btrfs_alloc_compressed_write(struct btrfs_inode *inode, 346 u64 start, u64 len) 347 { 348 struct compressed_bio *cb; 349 350 cb = alloc_compressed_bio(inode, start, REQ_OP_WRITE, end_bbio_compressed_write); 351 cb->start = start; 352 cb->len = len; 353 cb->writeback = false; 354 return cb; 355 } 356 357 /* 358 * Add extra folios in the same compressed file extent so that we don't need to 359 * re-read the same extent again and again. 360 * 361 * If in the same folio, we have several non-contiguous blocks which are pointing 362 * to the same on-disk compressed data, we will re-read the same extent many 363 * times, as this function can only help cross folio situations. 364 */ 365 static noinline int add_ra_bio_folios(struct inode *inode, u64 compressed_end, 366 struct compressed_bio *cb, int *memstall, 367 unsigned long *pflags, bool direct_reclaim) 368 { 369 struct btrfs_fs_info *fs_info = inode_to_fs_info(inode); 370 pgoff_t end_index; 371 struct bio *orig_bio = &cb->orig_bbio->bio; 372 u64 cur = cb->orig_bbio->file_offset + orig_bio->bi_iter.bi_size; 373 u64 isize = i_size_read(inode); 374 int ret; 375 gfp_t constraint_gfp, cache_gfp; 376 struct folio *folio; 377 struct extent_map *em; 378 struct address_space *mapping = inode->i_mapping; 379 struct extent_map_tree *em_tree; 380 struct extent_io_tree *tree; 381 int sectors_missed = 0; 382 383 em_tree = &BTRFS_I(inode)->extent_tree; 384 tree = &BTRFS_I(inode)->io_tree; 385 386 if (isize == 0) 387 return 0; 388 389 /* For bs > ps cases, we don't support readahead for compressed folios for now. */ 390 if (fs_info->block_min_order) 391 return 0; 392 393 end_index = (i_size_read(inode) - 1) >> PAGE_SHIFT; 394 395 /* Avoid direct reclaim when the caller does not allow it. */ 396 constraint_gfp = ~__GFP_FS; 397 cache_gfp = GFP_NOFS | __GFP_NOWARN; 398 if (!direct_reclaim) { 399 constraint_gfp &= ~__GFP_DIRECT_RECLAIM; 400 cache_gfp &= ~__GFP_DIRECT_RECLAIM; 401 } 402 403 while (cur < compressed_end) { 404 u64 folio_end; 405 pgoff_t pg_index = cur >> PAGE_SHIFT; 406 gfp_t masked_constraint_gfp; 407 u32 add_size; 408 409 if (pg_index > end_index) 410 break; 411 412 folio = filemap_get_folio(mapping, pg_index); 413 if (!IS_ERR(folio)) { 414 u64 folio_sz = folio_size(folio); 415 u64 offset = offset_in_folio(folio, cur); 416 417 folio_put(folio); 418 sectors_missed += (folio_sz - offset) >> 419 fs_info->sectorsize_bits; 420 421 /* Beyond threshold, no need to continue */ 422 if (sectors_missed > 4) 423 break; 424 425 /* 426 * Jump to the next folio as we already have a folio for 427 * the current offset. 428 */ 429 cur += (folio_sz - offset); 430 continue; 431 } 432 433 /* 434 * Since add_ra_bio_pages() is always speculative, suppress 435 * allocation warnings. 436 */ 437 masked_constraint_gfp = mapping_gfp_constraint(mapping, constraint_gfp); 438 masked_constraint_gfp |= __GFP_NOWARN; 439 440 folio = filemap_alloc_folio(masked_constraint_gfp, 0, NULL); 441 if (!folio) 442 break; 443 444 if (filemap_add_folio(mapping, folio, pg_index, cache_gfp)) { 445 /* There is already a folio, skip to the folio end. */ 446 cur += folio_size(folio) - offset_in_folio(folio, cur); 447 folio_put(folio); 448 continue; 449 } 450 451 if (!*memstall && folio_test_workingset(folio)) { 452 psi_memstall_enter(pflags); 453 *memstall = 1; 454 } 455 456 ret = set_folio_extent_mapped(folio); 457 if (ret < 0) { 458 folio_unlock(folio); 459 folio_put(folio); 460 break; 461 } 462 463 folio_end = folio_next_pos(folio) - 1; 464 btrfs_lock_extent(tree, cur, folio_end, NULL); 465 read_lock(&em_tree->lock); 466 em = btrfs_lookup_extent_mapping(em_tree, cur, folio_end + 1 - cur); 467 read_unlock(&em_tree->lock); 468 469 /* 470 * At this point, we have a locked folio in the page cache for 471 * these bytes in the file. But, we have to make sure they map 472 * to this compressed extent on disk. 473 */ 474 if (!em || cur < em->start || 475 (cur + fs_info->sectorsize > btrfs_extent_map_end(em)) || 476 (btrfs_extent_map_block_start(em) >> SECTOR_SHIFT) != 477 orig_bio->bi_iter.bi_sector) { 478 btrfs_free_extent_map(em); 479 btrfs_unlock_extent(tree, cur, folio_end, NULL); 480 folio_unlock(folio); 481 folio_put(folio); 482 break; 483 } 484 add_size = min(btrfs_extent_map_end(em), folio_end + 1) - cur; 485 btrfs_free_extent_map(em); 486 btrfs_unlock_extent(tree, cur, folio_end, NULL); 487 488 if (folio_contains(folio, end_index)) { 489 size_t zero_offset = offset_in_folio(folio, isize); 490 491 if (zero_offset) { 492 int zeros; 493 zeros = folio_size(folio) - zero_offset; 494 folio_zero_range(folio, zero_offset, zeros); 495 } 496 } 497 498 if (!bio_add_folio(orig_bio, folio, add_size, 499 offset_in_folio(folio, cur))) { 500 folio_unlock(folio); 501 folio_put(folio); 502 break; 503 } 504 btrfs_folio_set_lock(fs_info, folio, cur, add_size); 505 folio_put(folio); 506 cur += add_size; 507 } 508 return 0; 509 } 510 511 /* 512 * for a compressed read, the bio we get passed has all the inode pages 513 * in it. We don't actually do IO on those pages but allocate new ones 514 * to hold the compressed pages on disk. 515 * 516 * bio->bi_iter.bi_sector points to the compressed extent on disk 517 * bio->bi_io_vec points to all of the inode pages 518 * 519 * After the compressed pages are read, we copy the bytes into the 520 * bio we were passed and then call the bio end_io calls 521 */ 522 void btrfs_submit_compressed_read(struct btrfs_bio *bbio) 523 { 524 struct btrfs_inode *inode = bbio->inode; 525 struct btrfs_fs_info *fs_info = inode->root->fs_info; 526 struct extent_map_tree *em_tree = &inode->extent_tree; 527 struct compressed_bio *cb; 528 unsigned int compressed_len; 529 const u32 min_folio_size = btrfs_min_folio_size(fs_info); 530 u64 file_offset = bbio->file_offset; 531 gfp_t gfp; 532 u64 em_len; 533 u64 em_start; 534 struct extent_map *em; 535 unsigned long pflags; 536 int memstall = 0; 537 int ret; 538 539 /* 540 * If this is a readahead bio, prevent direct reclaim. This is done to 541 * avoid stalling on speculative allocations when memory pressure is 542 * high. The demand fault will retry with GFP_NOFS and enter direct 543 * reclaim if needed. 544 */ 545 if (bbio->bio.bi_opf & REQ_RAHEAD) 546 gfp = (GFP_NOFS & ~__GFP_DIRECT_RECLAIM) | __GFP_NOWARN; 547 else 548 gfp = GFP_NOFS; 549 550 /* we need the actual starting offset of this extent in the file */ 551 read_lock(&em_tree->lock); 552 em = btrfs_lookup_extent_mapping(em_tree, file_offset, fs_info->sectorsize); 553 read_unlock(&em_tree->lock); 554 if (!em) { 555 ret = -EIO; 556 goto out; 557 } 558 559 ASSERT(btrfs_extent_map_is_compressed(em)); 560 compressed_len = em->disk_num_bytes; 561 562 cb = alloc_compressed_bio(inode, file_offset, REQ_OP_READ, 563 end_bbio_compressed_read); 564 565 cb->start = em->start - em->offset; 566 em_len = em->len; 567 em_start = em->start; 568 569 cb->len = bbio->bio.bi_iter.bi_size; 570 cb->compress_type = btrfs_extent_map_compression(em); 571 cb->orig_bbio = bbio; 572 cb->bbio.csum_search_commit_root = bbio->csum_search_commit_root; 573 574 btrfs_free_extent_map(em); 575 576 for (int i = 0; i * min_folio_size < compressed_len; i++) { 577 struct folio *folio; 578 u32 cur_len = min(compressed_len - i * min_folio_size, min_folio_size); 579 580 folio = btrfs_alloc_compr_folio(fs_info, gfp); 581 if (!folio) { 582 ret = -ENOMEM; 583 goto out_free_bio; 584 } 585 586 ret = bio_add_folio(&cb->bbio.bio, folio, cur_len, 0); 587 if (unlikely(!ret)) { 588 folio_put(folio); 589 ret = -EINVAL; 590 goto out_free_bio; 591 } 592 } 593 ASSERT(cb->bbio.bio.bi_iter.bi_size == compressed_len); 594 595 add_ra_bio_folios(&inode->vfs_inode, em_start + em_len, cb, &memstall, 596 &pflags, !(bbio->bio.bi_opf & REQ_RAHEAD)); 597 598 cb->len = bbio->bio.bi_iter.bi_size; 599 cb->bbio.bio.bi_iter.bi_sector = bbio->bio.bi_iter.bi_sector; 600 601 if (memstall) 602 psi_memstall_leave(&pflags); 603 604 btrfs_submit_bbio(&cb->bbio, 0); 605 return; 606 607 out_free_bio: 608 cleanup_compressed_bio(cb); 609 out: 610 btrfs_bio_end_io(bbio, errno_to_blk_status(ret)); 611 } 612 613 /* 614 * Heuristic uses systematic sampling to collect data from the input data 615 * range, the logic can be tuned by the following constants: 616 * 617 * @SAMPLING_READ_SIZE - how many bytes will be copied from for each sample 618 * @SAMPLING_INTERVAL - range from which the sampled data can be collected 619 */ 620 #define SAMPLING_READ_SIZE (16) 621 #define SAMPLING_INTERVAL (256) 622 623 /* 624 * For statistical analysis of the input data we consider bytes that form a 625 * Galois Field of 256 objects. Each object has an attribute count, ie. how 626 * many times the object appeared in the sample. 627 */ 628 #define BUCKET_SIZE (256) 629 630 /* 631 * The size of the sample is based on a statistical sampling rule of thumb. 632 * The common way is to perform sampling tests as long as the number of 633 * elements in each cell is at least 5. 634 * 635 * Instead of 5, we choose 32 to obtain more accurate results. 636 * If the data contain the maximum number of symbols, which is 256, we obtain a 637 * sample size bound by 8192. 638 * 639 * For a sample of at most 8KB of data per data range: 16 consecutive bytes 640 * from up to 512 locations. 641 */ 642 #define MAX_SAMPLE_SIZE (BTRFS_MAX_UNCOMPRESSED * \ 643 SAMPLING_READ_SIZE / SAMPLING_INTERVAL) 644 645 struct bucket_item { 646 u32 count; 647 }; 648 649 struct heuristic_ws { 650 /* Partial copy of input data */ 651 u8 *sample; 652 u32 sample_size; 653 /* Buckets store counters for each byte value */ 654 struct bucket_item bucket[BUCKET_SIZE]; 655 /* Sorting buffer */ 656 struct bucket_item bucket_b[BUCKET_SIZE]; 657 struct list_head list; 658 }; 659 660 static void free_heuristic_ws(struct list_head *ws) 661 { 662 struct heuristic_ws *workspace; 663 664 workspace = list_entry(ws, struct heuristic_ws, list); 665 666 kvfree(workspace->sample); 667 kfree(workspace); 668 } 669 670 static struct list_head *alloc_heuristic_ws(struct btrfs_fs_info *fs_info) 671 { 672 struct heuristic_ws *ws; 673 674 ws = kzalloc_obj(*ws); 675 if (!ws) 676 return ERR_PTR(-ENOMEM); 677 678 ws->sample = kvmalloc(MAX_SAMPLE_SIZE, GFP_KERNEL); 679 if (!ws->sample) 680 goto fail; 681 682 INIT_LIST_HEAD(&ws->list); 683 return &ws->list; 684 fail: 685 free_heuristic_ws(&ws->list); 686 return ERR_PTR(-ENOMEM); 687 } 688 689 const struct btrfs_compress_levels btrfs_heuristic_compress = { 0 }; 690 691 static const struct btrfs_compress_levels * const btrfs_compress_levels[] = { 692 /* The heuristic is represented as compression type 0 */ 693 &btrfs_heuristic_compress, 694 &btrfs_zlib_compress, 695 &btrfs_lzo_compress, 696 &btrfs_zstd_compress, 697 }; 698 699 static struct list_head *alloc_workspace(struct btrfs_fs_info *fs_info, int type, int level) 700 { 701 switch (type) { 702 case BTRFS_COMPRESS_NONE: return alloc_heuristic_ws(fs_info); 703 case BTRFS_COMPRESS_ZLIB: return zlib_alloc_workspace(fs_info, level); 704 case BTRFS_COMPRESS_LZO: return lzo_alloc_workspace(fs_info); 705 case BTRFS_COMPRESS_ZSTD: return zstd_alloc_workspace(fs_info, level); 706 default: 707 /* 708 * This can't happen, the type is validated several times 709 * before we get here. 710 */ 711 BUG(); 712 } 713 } 714 715 static void free_workspace(int type, struct list_head *ws) 716 { 717 switch (type) { 718 case BTRFS_COMPRESS_NONE: return free_heuristic_ws(ws); 719 case BTRFS_COMPRESS_ZLIB: return zlib_free_workspace(ws); 720 case BTRFS_COMPRESS_LZO: return lzo_free_workspace(ws); 721 case BTRFS_COMPRESS_ZSTD: return zstd_free_workspace(ws); 722 default: 723 /* 724 * This can't happen, the type is validated several times 725 * before we get here. 726 */ 727 BUG(); 728 } 729 } 730 731 static int alloc_workspace_manager(struct btrfs_fs_info *fs_info, 732 enum btrfs_compression_type type) 733 { 734 struct workspace_manager *gwsm; 735 struct list_head *workspace; 736 737 ASSERT(fs_info->compr_wsm[type] == NULL); 738 gwsm = kzalloc_obj(*gwsm); 739 if (!gwsm) 740 return -ENOMEM; 741 742 INIT_LIST_HEAD(&gwsm->idle_ws); 743 spin_lock_init(&gwsm->ws_lock); 744 atomic_set(&gwsm->total_ws, 0); 745 init_waitqueue_head(&gwsm->ws_wait); 746 fs_info->compr_wsm[type] = gwsm; 747 748 /* 749 * Preallocate one workspace for each compression type so we can 750 * guarantee forward progress in the worst case 751 */ 752 workspace = alloc_workspace(fs_info, type, 0); 753 if (IS_ERR(workspace)) { 754 btrfs_warn(fs_info, 755 "cannot preallocate compression workspace for %s, will try later", 756 btrfs_compress_type2str(type)); 757 } else { 758 atomic_set(&gwsm->total_ws, 1); 759 gwsm->free_ws = 1; 760 list_add(workspace, &gwsm->idle_ws); 761 } 762 return 0; 763 } 764 765 static void free_workspace_manager(struct btrfs_fs_info *fs_info, 766 enum btrfs_compression_type type) 767 { 768 struct list_head *ws; 769 struct workspace_manager *gwsm = fs_info->compr_wsm[type]; 770 771 /* ZSTD uses its own workspace manager, should enter here. */ 772 ASSERT(type != BTRFS_COMPRESS_ZSTD && type < BTRFS_NR_COMPRESS_TYPES); 773 if (!gwsm) 774 return; 775 fs_info->compr_wsm[type] = NULL; 776 while (!list_empty(&gwsm->idle_ws)) { 777 ws = gwsm->idle_ws.next; 778 list_del(ws); 779 free_workspace(type, ws); 780 atomic_dec(&gwsm->total_ws); 781 } 782 kfree(gwsm); 783 } 784 785 /* 786 * This finds an available workspace or allocates a new one. 787 * If it's not possible to allocate a new one, waits until there's one. 788 * Preallocation makes a forward progress guarantees and we do not return 789 * errors. 790 */ 791 struct list_head *btrfs_get_workspace(struct btrfs_fs_info *fs_info, int type, int level) 792 { 793 struct workspace_manager *wsm = fs_info->compr_wsm[type]; 794 struct list_head *workspace; 795 int cpus = num_online_cpus(); 796 unsigned nofs_flag; 797 struct list_head *idle_ws; 798 spinlock_t *ws_lock; 799 atomic_t *total_ws; 800 wait_queue_head_t *ws_wait; 801 int *free_ws; 802 803 ASSERT(wsm); 804 idle_ws = &wsm->idle_ws; 805 ws_lock = &wsm->ws_lock; 806 total_ws = &wsm->total_ws; 807 ws_wait = &wsm->ws_wait; 808 free_ws = &wsm->free_ws; 809 810 again: 811 spin_lock(ws_lock); 812 if (!list_empty(idle_ws)) { 813 workspace = idle_ws->next; 814 list_del(workspace); 815 (*free_ws)--; 816 spin_unlock(ws_lock); 817 return workspace; 818 819 } 820 if (atomic_read(total_ws) > cpus) { 821 DEFINE_WAIT(wait); 822 823 spin_unlock(ws_lock); 824 prepare_to_wait(ws_wait, &wait, TASK_UNINTERRUPTIBLE); 825 if (atomic_read(total_ws) > cpus && !*free_ws) 826 schedule(); 827 finish_wait(ws_wait, &wait); 828 goto again; 829 } 830 atomic_inc(total_ws); 831 spin_unlock(ws_lock); 832 833 /* 834 * Allocation helpers call vmalloc that can't use GFP_NOFS, so we have 835 * to turn it off here because we might get called from the restricted 836 * context of btrfs_compress_bio/btrfs_compress_pages 837 */ 838 nofs_flag = memalloc_nofs_save(); 839 workspace = alloc_workspace(fs_info, type, level); 840 memalloc_nofs_restore(nofs_flag); 841 842 if (IS_ERR(workspace)) { 843 atomic_dec(total_ws); 844 wake_up(ws_wait); 845 846 /* 847 * Do not return the error but go back to waiting. There's a 848 * workspace preallocated for each type and the compression 849 * time is bounded so we get to a workspace eventually. This 850 * makes our caller's life easier. 851 * 852 * To prevent silent and low-probability deadlocks (when the 853 * initial preallocation fails), check if there are any 854 * workspaces at all. 855 */ 856 if (atomic_read(total_ws) == 0) { 857 static DEFINE_RATELIMIT_STATE(_rs, 858 /* once per minute */ 60 * HZ, 859 /* no burst */ 1); 860 861 if (__ratelimit(&_rs)) 862 btrfs_warn(fs_info, 863 "no compression workspaces, low memory, retrying"); 864 } 865 goto again; 866 } 867 return workspace; 868 } 869 870 static struct list_head *get_workspace(struct btrfs_fs_info *fs_info, int type, int level) 871 { 872 switch (type) { 873 case BTRFS_COMPRESS_NONE: return btrfs_get_workspace(fs_info, type, level); 874 case BTRFS_COMPRESS_ZLIB: return zlib_get_workspace(fs_info, level); 875 case BTRFS_COMPRESS_LZO: return btrfs_get_workspace(fs_info, type, level); 876 case BTRFS_COMPRESS_ZSTD: return zstd_get_workspace(fs_info, level); 877 default: 878 /* 879 * This can't happen, the type is validated several times 880 * before we get here. 881 */ 882 BUG(); 883 } 884 } 885 886 /* 887 * put a workspace struct back on the list or free it if we have enough 888 * idle ones sitting around 889 */ 890 void btrfs_put_workspace(struct btrfs_fs_info *fs_info, int type, struct list_head *ws) 891 { 892 struct workspace_manager *gwsm = fs_info->compr_wsm[type]; 893 struct list_head *idle_ws; 894 spinlock_t *ws_lock; 895 atomic_t *total_ws; 896 wait_queue_head_t *ws_wait; 897 int *free_ws; 898 899 ASSERT(gwsm); 900 idle_ws = &gwsm->idle_ws; 901 ws_lock = &gwsm->ws_lock; 902 total_ws = &gwsm->total_ws; 903 ws_wait = &gwsm->ws_wait; 904 free_ws = &gwsm->free_ws; 905 906 spin_lock(ws_lock); 907 if (*free_ws <= num_online_cpus()) { 908 list_add(ws, idle_ws); 909 (*free_ws)++; 910 spin_unlock(ws_lock); 911 goto wake; 912 } 913 spin_unlock(ws_lock); 914 915 free_workspace(type, ws); 916 atomic_dec(total_ws); 917 wake: 918 cond_wake_up(ws_wait); 919 } 920 921 static void put_workspace(struct btrfs_fs_info *fs_info, int type, struct list_head *ws) 922 { 923 switch (type) { 924 case BTRFS_COMPRESS_NONE: return btrfs_put_workspace(fs_info, type, ws); 925 case BTRFS_COMPRESS_ZLIB: return btrfs_put_workspace(fs_info, type, ws); 926 case BTRFS_COMPRESS_LZO: return btrfs_put_workspace(fs_info, type, ws); 927 case BTRFS_COMPRESS_ZSTD: return zstd_put_workspace(fs_info, ws); 928 default: 929 /* 930 * This can't happen, the type is validated several times 931 * before we get here. 932 */ 933 BUG(); 934 } 935 } 936 937 /* 938 * Adjust @level according to the limits of the compression algorithm or 939 * fallback to default 940 */ 941 static int btrfs_compress_set_level(unsigned int type, int level) 942 { 943 const struct btrfs_compress_levels *levels = btrfs_compress_levels[type]; 944 945 if (level == 0) 946 level = levels->default_level; 947 else 948 level = clamp(level, levels->min_level, levels->max_level); 949 950 return level; 951 } 952 953 /* 954 * Check whether the @level is within the valid range for the given type. 955 */ 956 bool btrfs_compress_level_valid(unsigned int type, int level) 957 { 958 const struct btrfs_compress_levels *levels = btrfs_compress_levels[type]; 959 960 return levels->min_level <= level && level <= levels->max_level; 961 } 962 963 /* Wrapper around find_get_page(), with extra error message. */ 964 int btrfs_compress_filemap_get_folio(struct address_space *mapping, u64 start, 965 struct folio **in_folio_ret) 966 { 967 struct folio *in_folio; 968 969 /* 970 * The compressed write path should have the folio locked already, thus 971 * we only need to grab one reference. 972 */ 973 in_folio = filemap_get_folio(mapping, start >> PAGE_SHIFT); 974 if (IS_ERR(in_folio)) { 975 struct btrfs_inode *inode = BTRFS_I(mapping->host); 976 977 btrfs_crit(inode->root->fs_info, 978 "failed to get page cache, root %lld ino %llu file offset %llu", 979 btrfs_root_id(inode->root), btrfs_ino(inode), start); 980 return -ENOENT; 981 } 982 *in_folio_ret = in_folio; 983 return 0; 984 } 985 986 /* 987 * Given an address space and start and length, compress the page cache 988 * contents into @cb. 989 * 990 * @type_level: is encoded algorithm and level, where level 0 means whatever 991 * default the algorithm chooses and is opaque here; 992 * - compression algo are 0-3 993 * - the level are bits 4-7 994 * 995 * @cb->bbio.bio.bi_iter.bi_size will indicate the compressed data size. 996 * The bi_size may not be sectorsize aligned, thus the caller still need 997 * to do the round up before submission. 998 * 999 * This function will allocate compressed folios with btrfs_alloc_compr_folio(), 1000 * thus callers must make sure the endio function and error handling are using 1001 * btrfs_free_compr_folio() to release those folios. 1002 * This is already done in end_bbio_compressed_write() and cleanup_compressed_bio(). 1003 */ 1004 struct compressed_bio *btrfs_compress_bio(struct btrfs_inode *inode, 1005 u64 start, u32 len, unsigned int type, 1006 int level, blk_opf_t write_flags) 1007 { 1008 struct btrfs_fs_info *fs_info = inode->root->fs_info; 1009 struct list_head *workspace; 1010 struct compressed_bio *cb; 1011 int ret; 1012 1013 cb = alloc_compressed_bio(inode, start, REQ_OP_WRITE | write_flags, 1014 end_bbio_compressed_write); 1015 cb->start = start; 1016 cb->len = len; 1017 cb->writeback = true; 1018 cb->compress_type = type; 1019 1020 level = btrfs_compress_set_level(type, level); 1021 workspace = get_workspace(fs_info, type, level); 1022 switch (type) { 1023 case BTRFS_COMPRESS_ZLIB: 1024 ret = zlib_compress_bio(workspace, cb); 1025 break; 1026 case BTRFS_COMPRESS_LZO: 1027 ret = lzo_compress_bio(workspace, cb); 1028 break; 1029 case BTRFS_COMPRESS_ZSTD: 1030 ret = zstd_compress_bio(workspace, cb); 1031 break; 1032 case BTRFS_COMPRESS_NONE: 1033 default: 1034 /* 1035 * This can happen when compression races with remount setting 1036 * it to 'no compress', while caller doesn't call 1037 * inode_need_compress() to check if we really need to 1038 * compress. 1039 * 1040 * Not a big deal, just need to inform caller that we 1041 * haven't allocated any pages yet. 1042 */ 1043 ret = -E2BIG; 1044 } 1045 1046 put_workspace(fs_info, type, workspace); 1047 if (ret < 0) { 1048 cleanup_compressed_bio(cb); 1049 return ERR_PTR(ret); 1050 } 1051 return cb; 1052 } 1053 1054 static int btrfs_decompress_bio(struct compressed_bio *cb) 1055 { 1056 struct btrfs_fs_info *fs_info = cb_to_fs_info(cb); 1057 struct list_head *workspace; 1058 int ret; 1059 int type = cb->compress_type; 1060 1061 workspace = get_workspace(fs_info, type, 0); 1062 ret = compression_decompress_bio(workspace, cb); 1063 put_workspace(fs_info, type, workspace); 1064 1065 if (!ret) 1066 zero_fill_bio(&cb->orig_bbio->bio); 1067 return ret; 1068 } 1069 1070 /* 1071 * a less complex decompression routine. Our compressed data fits in a 1072 * single page, and we want to read a single page out of it. 1073 * dest_pgoff tells us the offset into the destination folio where we write the 1074 * decompressed data. 1075 */ 1076 int btrfs_decompress(int type, const u8 *data_in, struct folio *dest_folio, 1077 unsigned long dest_pgoff, size_t srclen, size_t destlen) 1078 { 1079 struct btrfs_fs_info *fs_info = folio_to_fs_info(dest_folio); 1080 struct list_head *workspace; 1081 const u32 sectorsize = fs_info->sectorsize; 1082 int ret; 1083 1084 /* 1085 * The full destination folio range should not exceed the folio size. 1086 * And the @destlen should not exceed sectorsize, as this is only called for 1087 * inline file extents, which should not exceed sectorsize. 1088 */ 1089 ASSERT(dest_pgoff + destlen <= folio_size(dest_folio) && destlen <= sectorsize); 1090 1091 workspace = get_workspace(fs_info, type, 0); 1092 ret = compression_decompress(type, workspace, data_in, dest_folio, 1093 dest_pgoff, srclen, destlen); 1094 put_workspace(fs_info, type, workspace); 1095 1096 return ret; 1097 } 1098 1099 int btrfs_alloc_compress_wsm(struct btrfs_fs_info *fs_info) 1100 { 1101 int ret; 1102 1103 ret = alloc_workspace_manager(fs_info, BTRFS_COMPRESS_NONE); 1104 if (ret < 0) 1105 goto error; 1106 ret = alloc_workspace_manager(fs_info, BTRFS_COMPRESS_ZLIB); 1107 if (ret < 0) 1108 goto error; 1109 ret = alloc_workspace_manager(fs_info, BTRFS_COMPRESS_LZO); 1110 if (ret < 0) 1111 goto error; 1112 ret = zstd_alloc_workspace_manager(fs_info); 1113 if (ret < 0) 1114 goto error; 1115 return 0; 1116 error: 1117 btrfs_free_compress_wsm(fs_info); 1118 return ret; 1119 } 1120 1121 void btrfs_free_compress_wsm(struct btrfs_fs_info *fs_info) 1122 { 1123 free_workspace_manager(fs_info, BTRFS_COMPRESS_NONE); 1124 free_workspace_manager(fs_info, BTRFS_COMPRESS_ZLIB); 1125 free_workspace_manager(fs_info, BTRFS_COMPRESS_LZO); 1126 zstd_free_workspace_manager(fs_info); 1127 } 1128 1129 int __init btrfs_init_compress(void) 1130 { 1131 if (bioset_init(&btrfs_compressed_bioset, BIO_POOL_SIZE, 1132 offsetof(struct compressed_bio, bbio.bio), 1133 BIOSET_NEED_BVECS)) 1134 return -ENOMEM; 1135 1136 compr_pool.shrinker = shrinker_alloc(SHRINKER_NONSLAB, "btrfs-compr-pages"); 1137 if (!compr_pool.shrinker) 1138 return -ENOMEM; 1139 1140 spin_lock_init(&compr_pool.lock); 1141 INIT_LIST_HEAD(&compr_pool.list); 1142 compr_pool.count = 0; 1143 /* 128K / 4K = 32, for 8 threads is 256 pages. */ 1144 compr_pool.thresh = BTRFS_MAX_COMPRESSED / PAGE_SIZE * 8; 1145 compr_pool.shrinker->count_objects = btrfs_compr_pool_count; 1146 compr_pool.shrinker->scan_objects = btrfs_compr_pool_scan; 1147 compr_pool.shrinker->batch = 32; 1148 compr_pool.shrinker->seeks = DEFAULT_SEEKS; 1149 shrinker_register(compr_pool.shrinker); 1150 1151 return 0; 1152 } 1153 1154 void __cold btrfs_exit_compress(void) 1155 { 1156 /* For now scan drains all pages and does not touch the parameters. */ 1157 btrfs_compr_pool_scan(NULL, NULL); 1158 shrinker_free(compr_pool.shrinker); 1159 1160 bioset_exit(&btrfs_compressed_bioset); 1161 } 1162 1163 /* 1164 * Copy decompressed data from working buffer to pages. 1165 * 1166 * @buf: The decompressed data buffer 1167 * @buf_len: The decompressed data length 1168 * @decompressed: Number of bytes that are already decompressed inside the 1169 * compressed extent 1170 * @cb: The compressed extent descriptor 1171 * @orig_bio: The original bio that the caller wants to read for 1172 * 1173 * An easier to understand graph is like below: 1174 * 1175 * |<- orig_bio ->| |<- orig_bio->| 1176 * |<------- full decompressed extent ----->| 1177 * |<----------- @cb range ---->| 1178 * | |<-- @buf_len -->| 1179 * |<--- @decompressed --->| 1180 * 1181 * Note that, @cb can be a subpage of the full decompressed extent, but 1182 * @cb->start always has the same as the orig_file_offset value of the full 1183 * decompressed extent. 1184 * 1185 * When reading compressed extent, we have to read the full compressed extent, 1186 * while @orig_bio may only want part of the range. 1187 * Thus this function will ensure only data covered by @orig_bio will be copied 1188 * to. 1189 * 1190 * Return 0 if we have copied all needed contents for @orig_bio. 1191 * Return >0 if we need continue decompress. 1192 */ 1193 int btrfs_decompress_buf2page(const char *buf, u32 buf_len, 1194 struct compressed_bio *cb, u32 decompressed) 1195 { 1196 struct bio *orig_bio = &cb->orig_bbio->bio; 1197 /* Offset inside the full decompressed extent */ 1198 u32 cur_offset; 1199 1200 cur_offset = decompressed; 1201 /* The main loop to do the copy */ 1202 while (cur_offset < decompressed + buf_len) { 1203 struct bio_vec bvec; 1204 size_t copy_len; 1205 u32 copy_start; 1206 /* Offset inside the full decompressed extent */ 1207 u32 bvec_offset; 1208 void *kaddr; 1209 1210 bvec = bio_iter_iovec(orig_bio, orig_bio->bi_iter); 1211 /* 1212 * cb->start may underflow, but subtracting that value can still 1213 * give us correct offset inside the full decompressed extent. 1214 */ 1215 bvec_offset = page_offset(bvec.bv_page) + bvec.bv_offset - cb->start; 1216 1217 /* Haven't reached the bvec range, exit */ 1218 if (decompressed + buf_len <= bvec_offset) 1219 return 1; 1220 1221 copy_start = max(cur_offset, bvec_offset); 1222 copy_len = min(bvec_offset + bvec.bv_len, 1223 decompressed + buf_len) - copy_start; 1224 ASSERT(copy_len); 1225 1226 /* 1227 * Extra range check to ensure we didn't go beyond 1228 * @buf + @buf_len. 1229 */ 1230 ASSERT(copy_start - decompressed < buf_len); 1231 1232 kaddr = bvec_kmap_local(&bvec); 1233 memcpy(kaddr, buf + copy_start - decompressed, copy_len); 1234 kunmap_local(kaddr); 1235 1236 cur_offset += copy_len; 1237 bio_advance(orig_bio, copy_len); 1238 /* Finished the bio */ 1239 if (!orig_bio->bi_iter.bi_size) 1240 return 0; 1241 } 1242 return 1; 1243 } 1244 1245 /* 1246 * Shannon Entropy calculation 1247 * 1248 * Pure byte distribution analysis fails to determine compressibility of data. 1249 * Try calculating entropy to estimate the average minimum number of bits 1250 * needed to encode the sampled data. 1251 * 1252 * For convenience, return the percentage of needed bits, instead of amount of 1253 * bits directly. 1254 * 1255 * @ENTROPY_LVL_ACEPTABLE - below that threshold, sample has low byte entropy 1256 * and can be compressible with high probability 1257 * 1258 * @ENTROPY_LVL_HIGH - data are not compressible with high probability 1259 * 1260 * Use of ilog2() decreases precision, we lower the LVL to 5 to compensate. 1261 */ 1262 #define ENTROPY_LVL_ACEPTABLE (65) 1263 #define ENTROPY_LVL_HIGH (80) 1264 1265 /* 1266 * For increased precision in shannon_entropy calculation, 1267 * let's do pow(n, M) to save more digits after comma: 1268 * 1269 * - maximum int bit length is 64 1270 * - ilog2(MAX_SAMPLE_SIZE) -> 13 1271 * - 13 * 4 = 52 < 64 -> M = 4 1272 * 1273 * So use pow(n, 4). 1274 */ 1275 static inline u32 ilog2_w(u64 n) 1276 { 1277 return ilog2(n * n * n * n); 1278 } 1279 1280 static u32 shannon_entropy(struct heuristic_ws *ws) 1281 { 1282 const u32 entropy_max = 8 * ilog2_w(2); 1283 u32 entropy_sum = 0; 1284 u32 p, p_base, sz_base; 1285 u32 i; 1286 1287 sz_base = ilog2_w(ws->sample_size); 1288 for (i = 0; i < BUCKET_SIZE && ws->bucket[i].count > 0; i++) { 1289 p = ws->bucket[i].count; 1290 p_base = ilog2_w(p); 1291 entropy_sum += p * (sz_base - p_base); 1292 } 1293 1294 entropy_sum /= ws->sample_size; 1295 return entropy_sum * 100 / entropy_max; 1296 } 1297 1298 #define RADIX_BASE 4U 1299 #define COUNTERS_SIZE (1U << RADIX_BASE) 1300 1301 static u8 get4bits(u64 num, int shift) { 1302 u8 low4bits; 1303 1304 num >>= shift; 1305 /* Reverse order */ 1306 low4bits = (COUNTERS_SIZE - 1) - (num % COUNTERS_SIZE); 1307 return low4bits; 1308 } 1309 1310 /* 1311 * Use 4 bits as radix base 1312 * Use 16 u32 counters for calculating new position in buf array 1313 * 1314 * @array - array that will be sorted 1315 * @array_buf - buffer array to store sorting results 1316 * must be equal in size to @array 1317 * @num - array size 1318 */ 1319 static void radix_sort(struct bucket_item *array, struct bucket_item *array_buf, 1320 int num) 1321 { 1322 u64 max_num; 1323 u64 buf_num; 1324 u32 counters[COUNTERS_SIZE]; 1325 u32 new_addr; 1326 u32 addr; 1327 int bitlen; 1328 int shift; 1329 int i; 1330 1331 /* 1332 * Try avoid useless loop iterations for small numbers stored in big 1333 * counters. Example: 48 33 4 ... in 64bit array 1334 */ 1335 max_num = array[0].count; 1336 for (i = 1; i < num; i++) { 1337 buf_num = array[i].count; 1338 if (buf_num > max_num) 1339 max_num = buf_num; 1340 } 1341 1342 buf_num = ilog2(max_num); 1343 bitlen = ALIGN(buf_num, RADIX_BASE * 2); 1344 1345 shift = 0; 1346 while (shift < bitlen) { 1347 memset(counters, 0, sizeof(counters)); 1348 1349 for (i = 0; i < num; i++) { 1350 buf_num = array[i].count; 1351 addr = get4bits(buf_num, shift); 1352 counters[addr]++; 1353 } 1354 1355 for (i = 1; i < COUNTERS_SIZE; i++) 1356 counters[i] += counters[i - 1]; 1357 1358 for (i = num - 1; i >= 0; i--) { 1359 buf_num = array[i].count; 1360 addr = get4bits(buf_num, shift); 1361 counters[addr]--; 1362 new_addr = counters[addr]; 1363 array_buf[new_addr] = array[i]; 1364 } 1365 1366 shift += RADIX_BASE; 1367 1368 /* 1369 * Normal radix expects to move data from a temporary array, to 1370 * the main one. But that requires some CPU time. Avoid that 1371 * by doing another sort iteration to original array instead of 1372 * memcpy() 1373 */ 1374 memset(counters, 0, sizeof(counters)); 1375 1376 for (i = 0; i < num; i ++) { 1377 buf_num = array_buf[i].count; 1378 addr = get4bits(buf_num, shift); 1379 counters[addr]++; 1380 } 1381 1382 for (i = 1; i < COUNTERS_SIZE; i++) 1383 counters[i] += counters[i - 1]; 1384 1385 for (i = num - 1; i >= 0; i--) { 1386 buf_num = array_buf[i].count; 1387 addr = get4bits(buf_num, shift); 1388 counters[addr]--; 1389 new_addr = counters[addr]; 1390 array[new_addr] = array_buf[i]; 1391 } 1392 1393 shift += RADIX_BASE; 1394 } 1395 } 1396 1397 /* 1398 * Size of the core byte set - how many bytes cover 90% of the sample 1399 * 1400 * There are several types of structured binary data that use nearly all byte 1401 * values. The distribution can be uniform and counts in all buckets will be 1402 * nearly the same (eg. encrypted data). Unlikely to be compressible. 1403 * 1404 * Other possibility is normal (Gaussian) distribution, where the data could 1405 * be potentially compressible, but we have to take a few more steps to decide 1406 * how much. 1407 * 1408 * @BYTE_CORE_SET_LOW - main part of byte values repeated frequently, 1409 * compression algo can easy fix that 1410 * @BYTE_CORE_SET_HIGH - data have uniform distribution and with high 1411 * probability is not compressible 1412 */ 1413 #define BYTE_CORE_SET_LOW (64) 1414 #define BYTE_CORE_SET_HIGH (200) 1415 1416 static int byte_core_set_size(struct heuristic_ws *ws) 1417 { 1418 u32 i; 1419 u32 coreset_sum = 0; 1420 const u32 core_set_threshold = ws->sample_size * 90 / 100; 1421 struct bucket_item *bucket = ws->bucket; 1422 1423 /* Sort in reverse order */ 1424 radix_sort(ws->bucket, ws->bucket_b, BUCKET_SIZE); 1425 1426 for (i = 0; i < BYTE_CORE_SET_LOW; i++) 1427 coreset_sum += bucket[i].count; 1428 1429 if (coreset_sum > core_set_threshold) 1430 return i; 1431 1432 for (; i < BYTE_CORE_SET_HIGH && bucket[i].count > 0; i++) { 1433 coreset_sum += bucket[i].count; 1434 if (coreset_sum > core_set_threshold) 1435 break; 1436 } 1437 1438 return i; 1439 } 1440 1441 /* 1442 * Count byte values in buckets. 1443 * This heuristic can detect textual data (configs, xml, json, html, etc). 1444 * Because in most text-like data byte set is restricted to limited number of 1445 * possible characters, and that restriction in most cases makes data easy to 1446 * compress. 1447 * 1448 * @BYTE_SET_THRESHOLD - consider all data within this byte set size: 1449 * less - compressible 1450 * more - need additional analysis 1451 */ 1452 #define BYTE_SET_THRESHOLD (64) 1453 1454 static u32 byte_set_size(const struct heuristic_ws *ws) 1455 { 1456 u32 i; 1457 u32 byte_set_size = 0; 1458 1459 for (i = 0; i < BYTE_SET_THRESHOLD; i++) { 1460 if (ws->bucket[i].count > 0) 1461 byte_set_size++; 1462 } 1463 1464 /* 1465 * Continue collecting count of byte values in buckets. If the byte 1466 * set size is bigger then the threshold, it's pointless to continue, 1467 * the detection technique would fail for this type of data. 1468 */ 1469 for (; i < BUCKET_SIZE; i++) { 1470 if (ws->bucket[i].count > 0) { 1471 byte_set_size++; 1472 if (byte_set_size > BYTE_SET_THRESHOLD) 1473 return byte_set_size; 1474 } 1475 } 1476 1477 return byte_set_size; 1478 } 1479 1480 static bool sample_repeated_patterns(struct heuristic_ws *ws) 1481 { 1482 const u32 half_of_sample = ws->sample_size / 2; 1483 const u8 *data = ws->sample; 1484 1485 return memcmp(&data[0], &data[half_of_sample], half_of_sample) == 0; 1486 } 1487 1488 static void heuristic_collect_sample(struct inode *inode, u64 start, u64 end, 1489 struct heuristic_ws *ws) 1490 { 1491 struct page *page; 1492 pgoff_t index, index_end; 1493 u32 i, curr_sample_pos; 1494 u8 *in_data; 1495 1496 /* 1497 * Compression handles the input data by chunks of 128KiB 1498 * (defined by BTRFS_MAX_UNCOMPRESSED) 1499 * 1500 * We do the same for the heuristic and loop over the whole range. 1501 * 1502 * MAX_SAMPLE_SIZE - calculated under assumption that heuristic will 1503 * process no more than BTRFS_MAX_UNCOMPRESSED at a time. 1504 */ 1505 if (end - start > BTRFS_MAX_UNCOMPRESSED) 1506 end = start + BTRFS_MAX_UNCOMPRESSED; 1507 1508 index = start >> PAGE_SHIFT; 1509 index_end = end >> PAGE_SHIFT; 1510 1511 /* Don't miss unaligned end */ 1512 if (!PAGE_ALIGNED(end)) 1513 index_end++; 1514 1515 curr_sample_pos = 0; 1516 while (index < index_end) { 1517 page = find_get_page(inode->i_mapping, index); 1518 in_data = kmap_local_page(page); 1519 /* Handle case where the start is not aligned to PAGE_SIZE */ 1520 i = start % PAGE_SIZE; 1521 while (i < PAGE_SIZE - SAMPLING_READ_SIZE) { 1522 /* Don't sample any garbage from the last page */ 1523 if (start > end - SAMPLING_READ_SIZE) 1524 break; 1525 memcpy(&ws->sample[curr_sample_pos], &in_data[i], 1526 SAMPLING_READ_SIZE); 1527 i += SAMPLING_INTERVAL; 1528 start += SAMPLING_INTERVAL; 1529 curr_sample_pos += SAMPLING_READ_SIZE; 1530 } 1531 kunmap_local(in_data); 1532 put_page(page); 1533 1534 index++; 1535 } 1536 1537 ws->sample_size = curr_sample_pos; 1538 } 1539 1540 /* 1541 * Compression heuristic. 1542 * 1543 * The following types of analysis can be performed: 1544 * - detect mostly zero data 1545 * - detect data with low "byte set" size (text, etc) 1546 * - detect data with low/high "core byte" set 1547 * 1548 * Return non-zero if the compression should be done, 0 otherwise. 1549 */ 1550 int btrfs_compress_heuristic(struct btrfs_inode *inode, u64 start, u64 end) 1551 { 1552 struct btrfs_fs_info *fs_info = inode->root->fs_info; 1553 struct list_head *ws_list = get_workspace(fs_info, 0, 0); 1554 struct heuristic_ws *ws; 1555 u32 i; 1556 u8 byte; 1557 int ret = 0; 1558 1559 ws = list_entry(ws_list, struct heuristic_ws, list); 1560 1561 heuristic_collect_sample(&inode->vfs_inode, start, end, ws); 1562 1563 if (sample_repeated_patterns(ws)) { 1564 ret = 1; 1565 goto out; 1566 } 1567 1568 memset(ws->bucket, 0, sizeof(*ws->bucket)*BUCKET_SIZE); 1569 1570 for (i = 0; i < ws->sample_size; i++) { 1571 byte = ws->sample[i]; 1572 ws->bucket[byte].count++; 1573 } 1574 1575 i = byte_set_size(ws); 1576 if (i < BYTE_SET_THRESHOLD) { 1577 ret = 2; 1578 goto out; 1579 } 1580 1581 i = byte_core_set_size(ws); 1582 if (i <= BYTE_CORE_SET_LOW) { 1583 ret = 3; 1584 goto out; 1585 } 1586 1587 if (i >= BYTE_CORE_SET_HIGH) { 1588 ret = 0; 1589 goto out; 1590 } 1591 1592 i = shannon_entropy(ws); 1593 if (i <= ENTROPY_LVL_ACEPTABLE) { 1594 ret = 4; 1595 goto out; 1596 } 1597 1598 /* 1599 * For the levels below ENTROPY_LVL_HIGH, additional analysis would be 1600 * needed to give green light to compression. 1601 * 1602 * For now just assume that compression at that level is not worth the 1603 * resources because: 1604 * 1605 * 1. it is possible to defrag the data later 1606 * 1607 * 2. the data would turn out to be hardly compressible, eg. 150 byte 1608 * values, every bucket has counter at level ~54. The heuristic would 1609 * be confused. This can happen when data have some internal repeated 1610 * patterns like "abbacbbc...". This can be detected by analyzing 1611 * pairs of bytes, which is too costly. 1612 */ 1613 if (i < ENTROPY_LVL_HIGH) { 1614 ret = 5; 1615 goto out; 1616 } else { 1617 ret = 0; 1618 goto out; 1619 } 1620 1621 out: 1622 put_workspace(fs_info, 0, ws_list); 1623 return ret; 1624 } 1625 1626 /* 1627 * Convert the compression suffix (eg. after "zlib" starting with ":") to level. 1628 * 1629 * If the resulting level exceeds the algo's supported levels, it will be clamped. 1630 * 1631 * Return <0 if no valid string can be found. 1632 * Return 0 if everything is fine. 1633 */ 1634 int btrfs_compress_str2level(unsigned int type, const char *str, int *level_ret) 1635 { 1636 int level = 0; 1637 int ret; 1638 1639 if (!type) { 1640 *level_ret = btrfs_compress_set_level(type, level); 1641 return 0; 1642 } 1643 1644 if (str[0] == ':') { 1645 ret = kstrtoint(str + 1, 10, &level); 1646 if (ret) 1647 return ret; 1648 } 1649 1650 *level_ret = btrfs_compress_set_level(type, level); 1651 return 0; 1652 } 1653