1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Copyright (c) 2003-2006, Cluster File Systems, Inc, info@clusterfs.com 4 * Written by Alex Tomas <alex@clusterfs.com> 5 */ 6 7 8 /* 9 * mballoc.c contains the multiblocks allocation routines 10 */ 11 12 #include "ext4_jbd2.h" 13 #include "mballoc.h" 14 #include <linux/log2.h> 15 #include <linux/module.h> 16 #include <linux/slab.h> 17 #include <linux/nospec.h> 18 #include <linux/backing-dev.h> 19 #include <linux/freezer.h> 20 #include <trace/events/ext4.h> 21 #include <kunit/static_stub.h> 22 23 /* 24 * MUSTDO: 25 * - test ext4_ext_search_left() and ext4_ext_search_right() 26 * - search for metadata in few groups 27 * 28 * TODO v4: 29 * - normalization should take into account whether file is still open 30 * - discard preallocations if no free space left (policy?) 31 * - don't normalize tails 32 * - quota 33 * - reservation for superuser 34 * 35 * TODO v3: 36 * - bitmap read-ahead (proposed by Oleg Drokin aka green) 37 * - track min/max extents in each group for better group selection 38 * - mb_mark_used() may allocate chunk right after splitting buddy 39 * - tree of groups sorted by number of free blocks 40 * - error handling 41 */ 42 43 /* 44 * The allocation request involve request for multiple number of blocks 45 * near to the goal(block) value specified. 46 * 47 * During initialization phase of the allocator we decide to use the 48 * group preallocation or inode preallocation depending on the size of 49 * the file. The size of the file could be the resulting file size we 50 * would have after allocation, or the current file size, which ever 51 * is larger. If the size is less than sbi->s_mb_stream_request we 52 * select to use the group preallocation. The default value of 53 * s_mb_stream_request is 16 blocks. This can also be tuned via 54 * /sys/fs/ext4/<partition>/mb_stream_req. The value is represented in 55 * terms of number of blocks. 56 * 57 * The main motivation for having small file use group preallocation is to 58 * ensure that we have small files closer together on the disk. 59 * 60 * First stage the allocator looks at the inode prealloc list, 61 * ext4_inode_info->i_prealloc_list, which contains list of prealloc 62 * spaces for this particular inode. The inode prealloc space is 63 * represented as: 64 * 65 * pa_lstart -> the logical start block for this prealloc space 66 * pa_pstart -> the physical start block for this prealloc space 67 * pa_len -> length for this prealloc space (in clusters) 68 * pa_free -> free space available in this prealloc space (in clusters) 69 * 70 * The inode preallocation space is used looking at the _logical_ start 71 * block. If only the logical file block falls within the range of prealloc 72 * space we will consume the particular prealloc space. This makes sure that 73 * we have contiguous physical blocks representing the file blocks 74 * 75 * The important thing to be noted in case of inode prealloc space is that 76 * we don't modify the values associated to inode prealloc space except 77 * pa_free. 78 * 79 * If we are not able to find blocks in the inode prealloc space and if we 80 * have the group allocation flag set then we look at the locality group 81 * prealloc space. These are per CPU prealloc list represented as 82 * 83 * ext4_sb_info.s_locality_groups[smp_processor_id()] 84 * 85 * The reason for having a per cpu locality group is to reduce the contention 86 * between CPUs. It is possible to get scheduled at this point. 87 * 88 * The locality group prealloc space is used looking at whether we have 89 * enough free space (pa_free) within the prealloc space. 90 * 91 * If we can't allocate blocks via inode prealloc or/and locality group 92 * prealloc then we look at the buddy cache. The buddy cache is represented 93 * by ext4_sb_info.s_buddy_cache (struct inode) whose file offset gets 94 * mapped to the buddy and bitmap information regarding different 95 * groups. The buddy information is attached to buddy cache inode so that 96 * we can access them through the page cache. The information regarding 97 * each group is loaded via ext4_mb_load_buddy. The information involve 98 * block bitmap and buddy information. The information are stored in the 99 * inode as: 100 * 101 * { folio } 102 * [ group 0 bitmap][ group 0 buddy] [group 1][ group 1]... 103 * 104 * 105 * one block each for bitmap and buddy information. So for each group we 106 * take up 2 blocks. A folio can contain blocks_per_folio (folio_size / 107 * blocksize) blocks. So it can have information regarding groups_per_folio 108 * which is blocks_per_folio/2 109 * 110 * The buddy cache inode is not stored on disk. The inode is thrown 111 * away when the filesystem is unmounted. 112 * 113 * We look for count number of blocks in the buddy cache. If we were able 114 * to locate that many free blocks we return with additional information 115 * regarding rest of the contiguous physical block available 116 * 117 * Before allocating blocks via buddy cache we normalize the request 118 * blocks. This ensure we ask for more blocks that we needed. The extra 119 * blocks that we get after allocation is added to the respective prealloc 120 * list. In case of inode preallocation we follow a list of heuristics 121 * based on file size. This can be found in ext4_mb_normalize_request. If 122 * we are doing a group prealloc we try to normalize the request to 123 * sbi->s_mb_group_prealloc. The default value of s_mb_group_prealloc is 124 * dependent on the cluster size; for non-bigalloc file systems, it is 125 * 512 blocks. This can be tuned via 126 * /sys/fs/ext4/<partition>/mb_group_prealloc. The value is represented in 127 * terms of number of blocks. If we have mounted the file system with -O 128 * stripe=<value> option the group prealloc request is normalized to the 129 * smallest multiple of the stripe value (sbi->s_stripe) which is 130 * greater than the default mb_group_prealloc. 131 * 132 * If "mb_optimize_scan" mount option is set, we maintain in memory group info 133 * structures in two data structures: 134 * 135 * 1) Array of largest free order xarrays (sbi->s_mb_largest_free_orders) 136 * 137 * Locking: Writers use xa_lock, readers use rcu_read_lock. 138 * 139 * This is an array of xarrays where the index in the array represents the 140 * largest free order in the buddy bitmap of the participating group infos of 141 * that xarray. So, there are exactly MB_NUM_ORDERS(sb) (which means total 142 * number of buddy bitmap orders possible) number of xarrays. Group-infos are 143 * placed in appropriate xarrays. 144 * 145 * 2) Average fragment size xarrays (sbi->s_mb_avg_fragment_size) 146 * 147 * Locking: Writers use xa_lock, readers use rcu_read_lock. 148 * 149 * This is an array of xarrays where in the i-th xarray there are groups with 150 * average fragment size >= 2^i and < 2^(i+1). The average fragment size 151 * is computed as ext4_group_info->bb_free / ext4_group_info->bb_fragments. 152 * Note that we don't bother with a special xarray for completely empty 153 * groups so we only have MB_NUM_ORDERS(sb) xarrays. Group-infos are placed 154 * in appropriate xarrays. 155 * 156 * In xarray, the index is the block group number, the value is the block group 157 * information, and a non-empty value indicates the block group is present in 158 * the current xarray. 159 * 160 * When "mb_optimize_scan" mount option is set, mballoc consults the above data 161 * structures to decide the order in which groups are to be traversed for 162 * fulfilling an allocation request. 163 * 164 * At CR_POWER2_ALIGNED , we look for groups which have the largest_free_order 165 * >= the order of the request. We directly look at the largest free order list 166 * in the data structure (1) above where largest_free_order = order of the 167 * request. If that list is empty, we look at remaining list in the increasing 168 * order of largest_free_order. This allows us to perform CR_POWER2_ALIGNED 169 * lookup in O(1) time. 170 * 171 * At CR_GOAL_LEN_FAST, we only consider groups where 172 * average fragment size > request size. So, we lookup a group which has average 173 * fragment size just above or equal to request size using our average fragment 174 * size group lists (data structure 2) in O(1) time. 175 * 176 * At CR_BEST_AVAIL_LEN, we aim to optimize allocations which can't be satisfied 177 * in CR_GOAL_LEN_FAST. The fact that we couldn't find a group in 178 * CR_GOAL_LEN_FAST suggests that there is no BG that has avg 179 * fragment size > goal length. So before falling to the slower 180 * CR_GOAL_LEN_SLOW, in CR_BEST_AVAIL_LEN we proactively trim goal length and 181 * then use the same fragment lists as CR_GOAL_LEN_FAST to find a BG with a big 182 * enough average fragment size. This increases the chances of finding a 183 * suitable block group in O(1) time and results in faster allocation at the 184 * cost of reduced size of allocation. 185 * 186 * If "mb_optimize_scan" mount option is not set, mballoc traverses groups in 187 * linear order which requires O(N) search time for each CR_POWER2_ALIGNED and 188 * CR_GOAL_LEN_FAST phase. 189 * 190 * The regular allocator (using the buddy cache) supports a few tunables. 191 * 192 * /sys/fs/ext4/<partition>/mb_min_to_scan 193 * /sys/fs/ext4/<partition>/mb_max_to_scan 194 * /sys/fs/ext4/<partition>/mb_order2_req 195 * /sys/fs/ext4/<partition>/mb_max_linear_groups 196 * 197 * The regular allocator uses buddy scan only if the request len is power of 198 * 2 blocks and the order of allocation is >= sbi->s_mb_order2_reqs. The 199 * value of s_mb_order2_reqs can be tuned via 200 * /sys/fs/ext4/<partition>/mb_order2_req. If the request len is equal to 201 * stripe size (sbi->s_stripe), we try to search for contiguous block in 202 * stripe size. This should result in better allocation on RAID setups. If 203 * not, we search in the specific group using bitmap for best extents. The 204 * tunable min_to_scan and max_to_scan control the behaviour here. 205 * min_to_scan indicate how long the mballoc __must__ look for a best 206 * extent and max_to_scan indicates how long the mballoc __can__ look for a 207 * best extent in the found extents. Searching for the blocks starts with 208 * the group specified as the goal value in allocation context via 209 * ac_g_ex. Each group is first checked based on the criteria whether it 210 * can be used for allocation. ext4_mb_good_group explains how the groups are 211 * checked. 212 * 213 * When "mb_optimize_scan" is turned on, as mentioned above, the groups may not 214 * get traversed linearly. That may result in subsequent allocations being not 215 * close to each other. And so, the underlying device may get filled up in a 216 * non-linear fashion. While that may not matter on non-rotational devices, for 217 * rotational devices that may result in higher seek times. "mb_max_linear_groups" 218 * tells mballoc how many groups mballoc should search linearly before 219 * performing consulting above data structures for more efficient lookups. For 220 * non rotational devices, this value defaults to 0 and for rotational devices 221 * this is set to MB_DEFAULT_LINEAR_LIMIT. 222 * 223 * Both the prealloc space are getting populated as above. So for the first 224 * request we will hit the buddy cache which will result in this prealloc 225 * space getting filled. The prealloc space is then later used for the 226 * subsequent request. 227 */ 228 229 /* 230 * mballoc operates on the following data: 231 * - on-disk bitmap 232 * - in-core buddy (actually includes buddy and bitmap) 233 * - preallocation descriptors (PAs) 234 * 235 * there are two types of preallocations: 236 * - inode 237 * assiged to specific inode and can be used for this inode only. 238 * it describes part of inode's space preallocated to specific 239 * physical blocks. any block from that preallocated can be used 240 * independent. the descriptor just tracks number of blocks left 241 * unused. so, before taking some block from descriptor, one must 242 * make sure corresponded logical block isn't allocated yet. this 243 * also means that freeing any block within descriptor's range 244 * must discard all preallocated blocks. 245 * - locality group 246 * assigned to specific locality group which does not translate to 247 * permanent set of inodes: inode can join and leave group. space 248 * from this type of preallocation can be used for any inode. thus 249 * it's consumed from the beginning to the end. 250 * 251 * relation between them can be expressed as: 252 * in-core buddy = on-disk bitmap + preallocation descriptors 253 * 254 * this mean blocks mballoc considers used are: 255 * - allocated blocks (persistent) 256 * - preallocated blocks (non-persistent) 257 * 258 * consistency in mballoc world means that at any time a block is either 259 * free or used in ALL structures. notice: "any time" should not be read 260 * literally -- time is discrete and delimited by locks. 261 * 262 * to keep it simple, we don't use block numbers, instead we count number of 263 * blocks: how many blocks marked used/free in on-disk bitmap, buddy and PA. 264 * 265 * all operations can be expressed as: 266 * - init buddy: buddy = on-disk + PAs 267 * - new PA: buddy += N; PA = N 268 * - use inode PA: on-disk += N; PA -= N 269 * - discard inode PA buddy -= on-disk - PA; PA = 0 270 * - use locality group PA on-disk += N; PA -= N 271 * - discard locality group PA buddy -= PA; PA = 0 272 * note: 'buddy -= on-disk - PA' is used to show that on-disk bitmap 273 * is used in real operation because we can't know actual used 274 * bits from PA, only from on-disk bitmap 275 * 276 * if we follow this strict logic, then all operations above should be atomic. 277 * given some of them can block, we'd have to use something like semaphores 278 * killing performance on high-end SMP hardware. let's try to relax it using 279 * the following knowledge: 280 * 1) if buddy is referenced, it's already initialized 281 * 2) while block is used in buddy and the buddy is referenced, 282 * nobody can re-allocate that block 283 * 3) we work on bitmaps and '+' actually means 'set bits'. if on-disk has 284 * bit set and PA claims same block, it's OK. IOW, one can set bit in 285 * on-disk bitmap if buddy has same bit set or/and PA covers corresponded 286 * block 287 * 288 * so, now we're building a concurrency table: 289 * - init buddy vs. 290 * - new PA 291 * blocks for PA are allocated in the buddy, buddy must be referenced 292 * until PA is linked to allocation group to avoid concurrent buddy init 293 * - use inode PA 294 * we need to make sure that either on-disk bitmap or PA has uptodate data 295 * given (3) we care that PA-=N operation doesn't interfere with init 296 * - discard inode PA 297 * the simplest way would be to have buddy initialized by the discard 298 * - use locality group PA 299 * again PA-=N must be serialized with init 300 * - discard locality group PA 301 * the simplest way would be to have buddy initialized by the discard 302 * - new PA vs. 303 * - use inode PA 304 * i_data_sem serializes them 305 * - discard inode PA 306 * discard process must wait until PA isn't used by another process 307 * - use locality group PA 308 * some mutex should serialize them 309 * - discard locality group PA 310 * discard process must wait until PA isn't used by another process 311 * - use inode PA 312 * - use inode PA 313 * i_data_sem or another mutex should serializes them 314 * - discard inode PA 315 * discard process must wait until PA isn't used by another process 316 * - use locality group PA 317 * nothing wrong here -- they're different PAs covering different blocks 318 * - discard locality group PA 319 * discard process must wait until PA isn't used by another process 320 * 321 * now we're ready to make few consequences: 322 * - PA is referenced and while it is no discard is possible 323 * - PA is referenced until block isn't marked in on-disk bitmap 324 * - PA changes only after on-disk bitmap 325 * - discard must not compete with init. either init is done before 326 * any discard or they're serialized somehow 327 * - buddy init as sum of on-disk bitmap and PAs is done atomically 328 * 329 * a special case when we've used PA to emptiness. no need to modify buddy 330 * in this case, but we should care about concurrent init 331 * 332 */ 333 334 /* 335 * Logic in few words: 336 * 337 * - allocation: 338 * load group 339 * find blocks 340 * mark bits in on-disk bitmap 341 * release group 342 * 343 * - use preallocation: 344 * find proper PA (per-inode or group) 345 * load group 346 * mark bits in on-disk bitmap 347 * release group 348 * release PA 349 * 350 * - free: 351 * load group 352 * mark bits in on-disk bitmap 353 * release group 354 * 355 * - discard preallocations in group: 356 * mark PAs deleted 357 * move them onto local list 358 * load on-disk bitmap 359 * load group 360 * remove PA from object (inode or locality group) 361 * mark free blocks in-core 362 * 363 * - discard inode's preallocations: 364 */ 365 366 /* 367 * Locking rules 368 * 369 * Locks: 370 * - bitlock on a group (group) 371 * - object (inode/locality) (object) 372 * - per-pa lock (pa) 373 * - cr_power2_aligned lists lock (cr_power2_aligned) 374 * - cr_goal_len_fast lists lock (cr_goal_len_fast) 375 * 376 * Paths: 377 * - new pa 378 * object 379 * group 380 * 381 * - find and use pa: 382 * pa 383 * 384 * - release consumed pa: 385 * pa 386 * group 387 * object 388 * 389 * - generate in-core bitmap: 390 * group 391 * pa 392 * 393 * - discard all for given object (inode, locality group): 394 * object 395 * pa 396 * group 397 * 398 * - discard all for given group: 399 * group 400 * pa 401 * group 402 * object 403 * 404 * - allocation path (ext4_mb_regular_allocator) 405 * group 406 * cr_power2_aligned/cr_goal_len_fast 407 */ 408 static struct kmem_cache *ext4_pspace_cachep; 409 static struct kmem_cache *ext4_ac_cachep; 410 static struct kmem_cache *ext4_free_data_cachep; 411 412 /* We create slab caches for groupinfo data structures based on the 413 * superblock block size. There will be one per mounted filesystem for 414 * each unique s_blocksize_bits */ 415 #define NR_GRPINFO_CACHES 8 416 static struct kmem_cache *ext4_groupinfo_caches[NR_GRPINFO_CACHES]; 417 418 static const char * const ext4_groupinfo_slab_names[NR_GRPINFO_CACHES] = { 419 "ext4_groupinfo_1k", "ext4_groupinfo_2k", "ext4_groupinfo_4k", 420 "ext4_groupinfo_8k", "ext4_groupinfo_16k", "ext4_groupinfo_32k", 421 "ext4_groupinfo_64k", "ext4_groupinfo_128k" 422 }; 423 424 static void ext4_mb_generate_from_pa(struct super_block *sb, void *bitmap, 425 ext4_group_t group); 426 static void ext4_mb_new_preallocation(struct ext4_allocation_context *ac); 427 428 static int ext4_mb_scan_group(struct ext4_allocation_context *ac, 429 ext4_group_t group); 430 431 static int ext4_try_to_trim_range(struct super_block *sb, 432 struct ext4_buddy *e4b, ext4_grpblk_t start, 433 ext4_grpblk_t max, ext4_grpblk_t minblocks); 434 435 /* 436 * The algorithm using this percpu seq counter goes below: 437 * 1. We sample the percpu discard_pa_seq counter before trying for block 438 * allocation in ext4_mb_new_blocks(). 439 * 2. We increment this percpu discard_pa_seq counter when we either allocate 440 * or free these blocks i.e. while marking those blocks as used/free in 441 * mb_mark_used()/mb_free_blocks(). 442 * 3. We also increment this percpu seq counter when we successfully identify 443 * that the bb_prealloc_list is not empty and hence proceed for discarding 444 * of those PAs inside ext4_mb_discard_group_preallocations(). 445 * 446 * Now to make sure that the regular fast path of block allocation is not 447 * affected, as a small optimization we only sample the percpu seq counter 448 * on that cpu. Only when the block allocation fails and when freed blocks 449 * found were 0, that is when we sample percpu seq counter for all cpus using 450 * below function ext4_get_discard_pa_seq_sum(). This happens after making 451 * sure that all the PAs on grp->bb_prealloc_list got freed or if it's empty. 452 */ 453 static DEFINE_PER_CPU(u64, discard_pa_seq); 454 static inline u64 ext4_get_discard_pa_seq_sum(void) 455 { 456 int __cpu; 457 u64 __seq = 0; 458 459 for_each_possible_cpu(__cpu) 460 __seq += per_cpu(discard_pa_seq, __cpu); 461 return __seq; 462 } 463 464 static inline void *mb_correct_addr_and_bit(int *bit, void *addr) 465 { 466 #if BITS_PER_LONG == 64 467 *bit += ((unsigned long) addr & 7UL) << 3; 468 addr = (void *) ((unsigned long) addr & ~7UL); 469 #elif BITS_PER_LONG == 32 470 *bit += ((unsigned long) addr & 3UL) << 3; 471 addr = (void *) ((unsigned long) addr & ~3UL); 472 #else 473 #error "how many bits you are?!" 474 #endif 475 return addr; 476 } 477 478 static inline int mb_test_bit(int bit, void *addr) 479 { 480 /* 481 * ext4_test_bit on architecture like powerpc 482 * needs unsigned long aligned address 483 */ 484 addr = mb_correct_addr_and_bit(&bit, addr); 485 return ext4_test_bit(bit, addr); 486 } 487 488 static inline void mb_set_bit(int bit, void *addr) 489 { 490 addr = mb_correct_addr_and_bit(&bit, addr); 491 ext4_set_bit(bit, addr); 492 } 493 494 static inline void mb_clear_bit(int bit, void *addr) 495 { 496 addr = mb_correct_addr_and_bit(&bit, addr); 497 ext4_clear_bit(bit, addr); 498 } 499 500 static inline int mb_test_and_clear_bit(int bit, void *addr) 501 { 502 addr = mb_correct_addr_and_bit(&bit, addr); 503 return ext4_test_and_clear_bit(bit, addr); 504 } 505 506 static inline int mb_find_next_zero_bit(void *addr, int max, int start) 507 { 508 int fix = 0, ret, tmpmax; 509 addr = mb_correct_addr_and_bit(&fix, addr); 510 tmpmax = max + fix; 511 start += fix; 512 513 ret = ext4_find_next_zero_bit(addr, tmpmax, start) - fix; 514 if (ret > max) 515 return max; 516 return ret; 517 } 518 519 static inline int mb_find_next_bit(void *addr, int max, int start) 520 { 521 int fix = 0, ret, tmpmax; 522 addr = mb_correct_addr_and_bit(&fix, addr); 523 tmpmax = max + fix; 524 start += fix; 525 526 ret = ext4_find_next_bit(addr, tmpmax, start) - fix; 527 if (ret > max) 528 return max; 529 return ret; 530 } 531 532 static void *mb_find_buddy(struct ext4_buddy *e4b, int order, int *max) 533 { 534 char *bb; 535 536 BUG_ON(e4b->bd_bitmap == e4b->bd_buddy); 537 BUG_ON(max == NULL); 538 539 if (order > e4b->bd_blkbits + 1) { 540 *max = 0; 541 return NULL; 542 } 543 544 /* at order 0 we see each particular block */ 545 if (order == 0) { 546 *max = 1 << (e4b->bd_blkbits + 3); 547 return e4b->bd_bitmap; 548 } 549 550 bb = e4b->bd_buddy + EXT4_SB(e4b->bd_sb)->s_mb_offsets[order]; 551 *max = EXT4_SB(e4b->bd_sb)->s_mb_maxs[order]; 552 553 return bb; 554 } 555 556 #ifdef DOUBLE_CHECK 557 static void mb_free_blocks_double(struct inode *inode, struct ext4_buddy *e4b, 558 int first, int count) 559 { 560 int i; 561 struct super_block *sb = e4b->bd_sb; 562 563 if (unlikely(e4b->bd_info->bb_bitmap == NULL)) 564 return; 565 assert_spin_locked(ext4_group_lock_ptr(sb, e4b->bd_group)); 566 for (i = 0; i < count; i++) { 567 if (!mb_test_bit(first + i, e4b->bd_info->bb_bitmap)) { 568 ext4_fsblk_t blocknr; 569 570 blocknr = ext4_group_first_block_no(sb, e4b->bd_group); 571 blocknr += EXT4_C2B(EXT4_SB(sb), first + i); 572 ext4_mark_group_bitmap_corrupted(sb, e4b->bd_group, 573 EXT4_GROUP_INFO_BBITMAP_CORRUPT); 574 ext4_grp_locked_error(sb, e4b->bd_group, 575 inode ? inode->i_ino : 0, 576 blocknr, 577 "freeing block already freed " 578 "(bit %u)", 579 first + i); 580 } 581 mb_clear_bit(first + i, e4b->bd_info->bb_bitmap); 582 } 583 } 584 585 static void mb_mark_used_double(struct ext4_buddy *e4b, int first, int count) 586 { 587 int i; 588 589 if (unlikely(e4b->bd_info->bb_bitmap == NULL)) 590 return; 591 assert_spin_locked(ext4_group_lock_ptr(e4b->bd_sb, e4b->bd_group)); 592 for (i = 0; i < count; i++) { 593 BUG_ON(mb_test_bit(first + i, e4b->bd_info->bb_bitmap)); 594 mb_set_bit(first + i, e4b->bd_info->bb_bitmap); 595 } 596 } 597 598 static void mb_cmp_bitmaps(struct ext4_buddy *e4b, void *bitmap) 599 { 600 if (unlikely(e4b->bd_info->bb_bitmap == NULL)) 601 return; 602 if (memcmp(e4b->bd_info->bb_bitmap, bitmap, e4b->bd_sb->s_blocksize)) { 603 unsigned char *b1, *b2; 604 int i; 605 b1 = (unsigned char *) e4b->bd_info->bb_bitmap; 606 b2 = (unsigned char *) bitmap; 607 for (i = 0; i < e4b->bd_sb->s_blocksize; i++) { 608 if (b1[i] != b2[i]) { 609 ext4_msg(e4b->bd_sb, KERN_ERR, 610 "corruption in group %u " 611 "at byte %u(%u): %x in copy != %x " 612 "on disk/prealloc", 613 e4b->bd_group, i, i * 8, b1[i], b2[i]); 614 BUG(); 615 } 616 } 617 } 618 } 619 620 static void mb_group_bb_bitmap_alloc(struct super_block *sb, 621 struct ext4_group_info *grp, ext4_group_t group) 622 { 623 struct buffer_head *bh; 624 625 grp->bb_bitmap = kmalloc(sb->s_blocksize, GFP_NOFS); 626 if (!grp->bb_bitmap) 627 return; 628 629 bh = ext4_read_block_bitmap(sb, group); 630 if (IS_ERR_OR_NULL(bh)) { 631 kfree(grp->bb_bitmap); 632 grp->bb_bitmap = NULL; 633 return; 634 } 635 636 memcpy(grp->bb_bitmap, bh->b_data, sb->s_blocksize); 637 put_bh(bh); 638 } 639 640 static void mb_group_bb_bitmap_free(struct ext4_group_info *grp) 641 { 642 kfree(grp->bb_bitmap); 643 } 644 645 #else 646 static inline void mb_free_blocks_double(struct inode *inode, 647 struct ext4_buddy *e4b, int first, int count) 648 { 649 return; 650 } 651 static inline void mb_mark_used_double(struct ext4_buddy *e4b, 652 int first, int count) 653 { 654 return; 655 } 656 static inline void mb_cmp_bitmaps(struct ext4_buddy *e4b, void *bitmap) 657 { 658 return; 659 } 660 661 static inline void mb_group_bb_bitmap_alloc(struct super_block *sb, 662 struct ext4_group_info *grp, ext4_group_t group) 663 { 664 return; 665 } 666 667 static inline void mb_group_bb_bitmap_free(struct ext4_group_info *grp) 668 { 669 return; 670 } 671 #endif 672 673 #ifdef AGGRESSIVE_CHECK 674 675 #define MB_CHECK_ASSERT(assert) \ 676 do { \ 677 if (!(assert)) { \ 678 printk(KERN_EMERG \ 679 "Assertion failure in %s() at %s:%d: \"%s\"\n", \ 680 function, file, line, # assert); \ 681 BUG(); \ 682 } \ 683 } while (0) 684 685 /* 686 * Perform buddy integrity check with the following steps: 687 * 688 * 1. Top-down validation (from highest order down to order 1, excluding order-0 bitmap): 689 * For each pair of adjacent orders, if a higher-order bit is set (indicating a free block), 690 * at most one of the two corresponding lower-order bits may be clear (free). 691 * 692 * 2. Order-0 (bitmap) validation, performed on bit pairs: 693 * - If either bit in a pair is set (1, allocated), then all corresponding higher-order bits 694 * must not be free (0). 695 * - If both bits in a pair are clear (0, free), then exactly one of the corresponding 696 * higher-order bits must be free (0). 697 * 698 * 3. Preallocation (pa) list validation: 699 * For each preallocated block (pa) in the group: 700 * - Verify that pa_pstart falls within the bounds of this block group. 701 * - Ensure the corresponding bit(s) in the order-0 bitmap are marked as allocated (1). 702 */ 703 static void __mb_check_buddy(struct ext4_buddy *e4b, char *file, 704 const char *function, int line) 705 { 706 struct super_block *sb = e4b->bd_sb; 707 int order = e4b->bd_blkbits + 1; 708 int max; 709 int max2; 710 int i; 711 int j; 712 int k; 713 int count; 714 struct ext4_group_info *grp; 715 int fragments = 0; 716 int fstart; 717 struct list_head *cur; 718 void *buddy; 719 void *buddy2; 720 721 if (e4b->bd_info->bb_check_counter++ % 10) 722 return; 723 724 while (order > 1) { 725 buddy = mb_find_buddy(e4b, order, &max); 726 MB_CHECK_ASSERT(buddy); 727 buddy2 = mb_find_buddy(e4b, order - 1, &max2); 728 MB_CHECK_ASSERT(buddy2); 729 MB_CHECK_ASSERT(buddy != buddy2); 730 MB_CHECK_ASSERT(max * 2 == max2); 731 732 count = 0; 733 for (i = 0; i < max; i++) { 734 735 if (mb_test_bit(i, buddy)) { 736 /* only single bit in buddy2 may be 0 */ 737 if (!mb_test_bit(i << 1, buddy2)) { 738 MB_CHECK_ASSERT( 739 mb_test_bit((i<<1)+1, buddy2)); 740 } 741 continue; 742 } 743 744 count++; 745 } 746 MB_CHECK_ASSERT(e4b->bd_info->bb_counters[order] == count); 747 order--; 748 } 749 750 fstart = -1; 751 buddy = mb_find_buddy(e4b, 0, &max); 752 for (i = 0; i < max; i++) { 753 if (!mb_test_bit(i, buddy)) { 754 MB_CHECK_ASSERT(i >= e4b->bd_info->bb_first_free); 755 if (fstart == -1) { 756 fragments++; 757 fstart = i; 758 } 759 } else { 760 fstart = -1; 761 } 762 if (!(i & 1)) { 763 int in_use, zero_bit_count = 0; 764 765 in_use = mb_test_bit(i, buddy) || mb_test_bit(i + 1, buddy); 766 for (j = 1; j < e4b->bd_blkbits + 2; j++) { 767 buddy2 = mb_find_buddy(e4b, j, &max2); 768 k = i >> j; 769 MB_CHECK_ASSERT(k < max2); 770 if (!mb_test_bit(k, buddy2)) 771 zero_bit_count++; 772 } 773 MB_CHECK_ASSERT(zero_bit_count == !in_use); 774 } 775 } 776 MB_CHECK_ASSERT(!EXT4_MB_GRP_NEED_INIT(e4b->bd_info)); 777 MB_CHECK_ASSERT(e4b->bd_info->bb_fragments == fragments); 778 779 grp = ext4_get_group_info(sb, e4b->bd_group); 780 if (!grp) 781 return; 782 list_for_each(cur, &grp->bb_prealloc_list) { 783 ext4_group_t groupnr; 784 struct ext4_prealloc_space *pa; 785 pa = list_entry(cur, struct ext4_prealloc_space, pa_group_list); 786 if (!pa->pa_len) 787 continue; 788 ext4_get_group_no_and_offset(sb, pa->pa_pstart, &groupnr, &k); 789 MB_CHECK_ASSERT(groupnr == e4b->bd_group); 790 for (i = 0; i < pa->pa_len; i++) 791 MB_CHECK_ASSERT(mb_test_bit(k + i, buddy)); 792 } 793 } 794 #undef MB_CHECK_ASSERT 795 #define mb_check_buddy(e4b) __mb_check_buddy(e4b, \ 796 __FILE__, __func__, __LINE__) 797 #else 798 #define mb_check_buddy(e4b) 799 #endif 800 801 /* 802 * Divide blocks started from @first with length @len into 803 * smaller chunks with power of 2 blocks. 804 * Clear the bits in bitmap which the blocks of the chunk(s) covered, 805 * then increase bb_counters[] for corresponded chunk size. 806 */ 807 static void ext4_mb_mark_free_simple(struct super_block *sb, 808 void *buddy, ext4_grpblk_t first, ext4_grpblk_t len, 809 struct ext4_group_info *grp) 810 { 811 struct ext4_sb_info *sbi = EXT4_SB(sb); 812 ext4_grpblk_t min; 813 ext4_grpblk_t max; 814 ext4_grpblk_t chunk; 815 unsigned int border; 816 817 BUG_ON(len > EXT4_CLUSTERS_PER_GROUP(sb)); 818 819 border = 2 << sb->s_blocksize_bits; 820 821 while (len > 0) { 822 /* find how many blocks can be covered since this position */ 823 max = ffs(first | border) - 1; 824 825 /* find how many blocks of power 2 we need to mark */ 826 min = fls(len) - 1; 827 828 if (max < min) 829 min = max; 830 chunk = 1 << min; 831 832 /* mark multiblock chunks only */ 833 grp->bb_counters[min]++; 834 if (min > 0) 835 mb_clear_bit(first >> min, 836 buddy + sbi->s_mb_offsets[min]); 837 838 len -= chunk; 839 first += chunk; 840 } 841 } 842 843 static int mb_avg_fragment_size_order(struct super_block *sb, ext4_grpblk_t len) 844 { 845 int order; 846 847 /* 848 * We don't bother with a special lists groups with only 1 block free 849 * extents and for completely empty groups. 850 */ 851 order = fls(len) - 2; 852 if (order < 0) 853 return 0; 854 if (order == MB_NUM_ORDERS(sb)) 855 order--; 856 if (WARN_ON_ONCE(order > MB_NUM_ORDERS(sb))) 857 order = MB_NUM_ORDERS(sb) - 1; 858 return order; 859 } 860 861 /* Move group to appropriate avg_fragment_size list */ 862 static void 863 mb_update_avg_fragment_size(struct super_block *sb, struct ext4_group_info *grp) 864 { 865 struct ext4_sb_info *sbi = EXT4_SB(sb); 866 int new, old; 867 868 if (!test_opt2(sb, MB_OPTIMIZE_SCAN)) 869 return; 870 871 old = grp->bb_avg_fragment_size_order; 872 new = grp->bb_fragments == 0 ? -1 : 873 mb_avg_fragment_size_order(sb, grp->bb_free / grp->bb_fragments); 874 if (new == old) 875 return; 876 877 if (old >= 0) 878 xa_erase(&sbi->s_mb_avg_fragment_size[old], grp->bb_group); 879 880 grp->bb_avg_fragment_size_order = new; 881 if (new >= 0) { 882 /* 883 * Cannot use __GFP_NOFAIL because we hold the group lock. 884 * Although allocation for insertion may fails, it's not fatal 885 * as we have linear traversal to fall back on. 886 */ 887 int err = xa_insert(&sbi->s_mb_avg_fragment_size[new], 888 grp->bb_group, grp, GFP_ATOMIC); 889 if (err) 890 mb_debug(sb, "insert group: %u to s_mb_avg_fragment_size[%d] failed, err %d", 891 grp->bb_group, new, err); 892 } 893 } 894 895 static ext4_group_t ext4_get_allocation_groups_count( 896 struct ext4_allocation_context *ac) 897 { 898 ext4_group_t ngroups = ext4_get_groups_count(ac->ac_sb); 899 900 /* non-extent files are limited to low blocks/groups */ 901 if (!(ext4_test_inode_flag(ac->ac_inode, EXT4_INODE_EXTENTS))) 902 ngroups = EXT4_SB(ac->ac_sb)->s_blockfile_groups; 903 904 /* Pairs with smp_wmb() in ext4_update_super() */ 905 smp_rmb(); 906 907 return ngroups; 908 } 909 910 static int ext4_mb_scan_groups_xa_range(struct ext4_allocation_context *ac, 911 struct xarray *xa, 912 ext4_group_t start, ext4_group_t end) 913 { 914 struct super_block *sb = ac->ac_sb; 915 struct ext4_sb_info *sbi = EXT4_SB(sb); 916 enum criteria cr = ac->ac_criteria; 917 ext4_group_t ngroups = ext4_get_allocation_groups_count(ac); 918 unsigned long group = start; 919 struct ext4_group_info *grp; 920 921 if (WARN_ON_ONCE(end > ngroups || start >= end)) 922 return 0; 923 924 xa_for_each_range(xa, group, grp, start, end - 1) { 925 int err; 926 927 if (sbi->s_mb_stats) 928 atomic64_inc(&sbi->s_bal_cX_groups_considered[cr]); 929 930 err = ext4_mb_scan_group(ac, grp->bb_group); 931 if (err || ac->ac_status != AC_STATUS_CONTINUE) 932 return err; 933 934 cond_resched(); 935 } 936 937 return 0; 938 } 939 940 /* 941 * Find a suitable group of given order from the largest free orders xarray. 942 */ 943 static inline int 944 ext4_mb_scan_groups_largest_free_order_range(struct ext4_allocation_context *ac, 945 int order, ext4_group_t start, 946 ext4_group_t end) 947 { 948 struct xarray *xa = &EXT4_SB(ac->ac_sb)->s_mb_largest_free_orders[order]; 949 950 if (xa_empty(xa)) 951 return 0; 952 953 return ext4_mb_scan_groups_xa_range(ac, xa, start, end); 954 } 955 956 /* 957 * Choose next group by traversing largest_free_order lists. Updates *new_cr if 958 * cr level needs an update. 959 */ 960 static int ext4_mb_scan_groups_p2_aligned(struct ext4_allocation_context *ac, 961 ext4_group_t group) 962 { 963 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 964 int i; 965 int ret = 0; 966 ext4_group_t start, end; 967 968 start = group; 969 end = ext4_get_allocation_groups_count(ac); 970 wrap_around: 971 for (i = ac->ac_2order; i < MB_NUM_ORDERS(ac->ac_sb); i++) { 972 ret = ext4_mb_scan_groups_largest_free_order_range(ac, i, 973 start, end); 974 if (ret || ac->ac_status != AC_STATUS_CONTINUE) 975 return ret; 976 } 977 if (start) { 978 end = start; 979 start = 0; 980 goto wrap_around; 981 } 982 983 if (sbi->s_mb_stats) 984 atomic64_inc(&sbi->s_bal_cX_failed[ac->ac_criteria]); 985 986 /* Increment cr and search again if no group is found */ 987 ac->ac_criteria = CR_GOAL_LEN_FAST; 988 return ret; 989 } 990 991 /* 992 * Find a suitable group of given order from the average fragments xarray. 993 */ 994 static int 995 ext4_mb_scan_groups_avg_frag_order_range(struct ext4_allocation_context *ac, 996 int order, ext4_group_t start, 997 ext4_group_t end) 998 { 999 struct xarray *xa = &EXT4_SB(ac->ac_sb)->s_mb_avg_fragment_size[order]; 1000 1001 if (xa_empty(xa)) 1002 return 0; 1003 1004 return ext4_mb_scan_groups_xa_range(ac, xa, start, end); 1005 } 1006 1007 /* 1008 * Choose next group by traversing average fragment size list of suitable 1009 * order. Updates *new_cr if cr level needs an update. 1010 */ 1011 static int ext4_mb_scan_groups_goal_fast(struct ext4_allocation_context *ac, 1012 ext4_group_t group) 1013 { 1014 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 1015 int i, ret = 0; 1016 ext4_group_t start, end; 1017 1018 start = group; 1019 end = ext4_get_allocation_groups_count(ac); 1020 wrap_around: 1021 i = mb_avg_fragment_size_order(ac->ac_sb, ac->ac_g_ex.fe_len); 1022 for (; i < MB_NUM_ORDERS(ac->ac_sb); i++) { 1023 ret = ext4_mb_scan_groups_avg_frag_order_range(ac, i, 1024 start, end); 1025 if (ret || ac->ac_status != AC_STATUS_CONTINUE) 1026 return ret; 1027 } 1028 if (start) { 1029 end = start; 1030 start = 0; 1031 goto wrap_around; 1032 } 1033 1034 if (sbi->s_mb_stats) 1035 atomic64_inc(&sbi->s_bal_cX_failed[ac->ac_criteria]); 1036 /* 1037 * CR_BEST_AVAIL_LEN works based on the concept that we have 1038 * a larger normalized goal len request which can be trimmed to 1039 * a smaller goal len such that it can still satisfy original 1040 * request len. However, allocation request for non-regular 1041 * files never gets normalized. 1042 * See function ext4_mb_normalize_request() (EXT4_MB_HINT_DATA). 1043 */ 1044 if (ac->ac_flags & EXT4_MB_HINT_DATA) 1045 ac->ac_criteria = CR_BEST_AVAIL_LEN; 1046 else 1047 ac->ac_criteria = CR_GOAL_LEN_SLOW; 1048 1049 return ret; 1050 } 1051 1052 /* 1053 * We couldn't find a group in CR_GOAL_LEN_FAST so try to find the highest free fragment 1054 * order we have and proactively trim the goal request length to that order to 1055 * find a suitable group faster. 1056 * 1057 * This optimizes allocation speed at the cost of slightly reduced 1058 * preallocations. However, we make sure that we don't trim the request too 1059 * much and fall to CR_GOAL_LEN_SLOW in that case. 1060 */ 1061 static int ext4_mb_scan_groups_best_avail(struct ext4_allocation_context *ac, 1062 ext4_group_t group) 1063 { 1064 int ret = 0; 1065 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 1066 int i, order, min_order; 1067 unsigned long num_stripe_clusters = 0; 1068 ext4_group_t start, end; 1069 1070 /* 1071 * mb_avg_fragment_size_order() returns order in a way that makes 1072 * retrieving back the length using (1 << order) inaccurate. Hence, use 1073 * fls() instead since we need to know the actual length while modifying 1074 * goal length. 1075 */ 1076 order = fls(ac->ac_g_ex.fe_len) - 1; 1077 if (WARN_ON_ONCE(order - 1 > MB_NUM_ORDERS(ac->ac_sb))) 1078 order = MB_NUM_ORDERS(ac->ac_sb); 1079 min_order = order - sbi->s_mb_best_avail_max_trim_order; 1080 if (min_order < 0) 1081 min_order = 0; 1082 1083 if (sbi->s_stripe > 0) { 1084 /* 1085 * We are assuming that stripe size is always a multiple of 1086 * cluster ratio otherwise __ext4_fill_super exists early. 1087 */ 1088 num_stripe_clusters = EXT4_NUM_B2C(sbi, sbi->s_stripe); 1089 if (1 << min_order < num_stripe_clusters) 1090 /* 1091 * We consider 1 order less because later we round 1092 * up the goal len to num_stripe_clusters 1093 */ 1094 min_order = fls(num_stripe_clusters) - 1; 1095 } 1096 1097 if (1 << min_order < ac->ac_o_ex.fe_len) 1098 min_order = fls(ac->ac_o_ex.fe_len); 1099 1100 start = group; 1101 end = ext4_get_allocation_groups_count(ac); 1102 wrap_around: 1103 for (i = order; i >= min_order; i--) { 1104 int frag_order; 1105 /* 1106 * Scale down goal len to make sure we find something 1107 * in the free fragments list. Basically, reduce 1108 * preallocations. 1109 */ 1110 ac->ac_g_ex.fe_len = 1 << i; 1111 1112 if (num_stripe_clusters > 0) { 1113 /* 1114 * Try to round up the adjusted goal length to 1115 * stripe size (in cluster units) multiple for 1116 * efficiency. 1117 */ 1118 ac->ac_g_ex.fe_len = roundup(ac->ac_g_ex.fe_len, 1119 num_stripe_clusters); 1120 } 1121 1122 frag_order = mb_avg_fragment_size_order(ac->ac_sb, 1123 ac->ac_g_ex.fe_len); 1124 1125 ret = ext4_mb_scan_groups_avg_frag_order_range(ac, frag_order, 1126 start, end); 1127 if (ret || ac->ac_status != AC_STATUS_CONTINUE) 1128 return ret; 1129 } 1130 if (start) { 1131 end = start; 1132 start = 0; 1133 goto wrap_around; 1134 } 1135 1136 /* Reset goal length to original goal length before falling into CR_GOAL_LEN_SLOW */ 1137 ac->ac_g_ex.fe_len = ac->ac_orig_goal_len; 1138 if (sbi->s_mb_stats) 1139 atomic64_inc(&sbi->s_bal_cX_failed[ac->ac_criteria]); 1140 ac->ac_criteria = CR_GOAL_LEN_SLOW; 1141 1142 return ret; 1143 } 1144 1145 static inline int should_optimize_scan(struct ext4_allocation_context *ac) 1146 { 1147 if (unlikely(!test_opt2(ac->ac_sb, MB_OPTIMIZE_SCAN))) 1148 return 0; 1149 if (ac->ac_criteria >= CR_GOAL_LEN_SLOW) 1150 return 0; 1151 return 1; 1152 } 1153 1154 /* 1155 * next linear group for allocation. 1156 */ 1157 static void next_linear_group(ext4_group_t *group, ext4_group_t ngroups) 1158 { 1159 /* 1160 * Artificially restricted ngroups for non-extent 1161 * files makes group > ngroups possible on first loop. 1162 */ 1163 *group = *group + 1 >= ngroups ? 0 : *group + 1; 1164 } 1165 1166 static int ext4_mb_scan_groups_linear(struct ext4_allocation_context *ac, 1167 ext4_group_t ngroups, ext4_group_t *start, ext4_group_t count) 1168 { 1169 int ret, i; 1170 enum criteria cr = ac->ac_criteria; 1171 struct super_block *sb = ac->ac_sb; 1172 struct ext4_sb_info *sbi = EXT4_SB(sb); 1173 ext4_group_t group = *start; 1174 1175 for (i = 0; i < count; i++, next_linear_group(&group, ngroups)) { 1176 ret = ext4_mb_scan_group(ac, group); 1177 if (ret || ac->ac_status != AC_STATUS_CONTINUE) 1178 return ret; 1179 cond_resched(); 1180 } 1181 1182 *start = group; 1183 if (count == ngroups) 1184 ac->ac_criteria++; 1185 1186 /* Processed all groups and haven't found blocks */ 1187 if (sbi->s_mb_stats && i == ngroups) 1188 atomic64_inc(&sbi->s_bal_cX_failed[cr]); 1189 1190 return 0; 1191 } 1192 1193 static int ext4_mb_scan_groups(struct ext4_allocation_context *ac) 1194 { 1195 int ret = 0; 1196 ext4_group_t start; 1197 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 1198 ext4_group_t ngroups = ext4_get_allocation_groups_count(ac); 1199 1200 /* searching for the right group start from the goal value specified */ 1201 start = ac->ac_g_ex.fe_group; 1202 if (start >= ngroups) 1203 start = 0; 1204 ac->ac_prefetch_grp = start; 1205 ac->ac_prefetch_nr = 0; 1206 1207 if (!should_optimize_scan(ac)) 1208 return ext4_mb_scan_groups_linear(ac, ngroups, &start, ngroups); 1209 1210 /* 1211 * Optimized scanning can return non adjacent groups which can cause 1212 * seek overhead for rotational disks. So try few linear groups before 1213 * trying optimized scan. 1214 */ 1215 if (sbi->s_mb_max_linear_groups) 1216 ret = ext4_mb_scan_groups_linear(ac, ngroups, &start, 1217 sbi->s_mb_max_linear_groups); 1218 if (ret || ac->ac_status != AC_STATUS_CONTINUE) 1219 return ret; 1220 1221 switch (ac->ac_criteria) { 1222 case CR_POWER2_ALIGNED: 1223 return ext4_mb_scan_groups_p2_aligned(ac, start); 1224 case CR_GOAL_LEN_FAST: 1225 return ext4_mb_scan_groups_goal_fast(ac, start); 1226 case CR_BEST_AVAIL_LEN: 1227 return ext4_mb_scan_groups_best_avail(ac, start); 1228 default: 1229 /* 1230 * TODO: For CR_GOAL_LEN_SLOW, we can arrange groups in an 1231 * rb tree sorted by bb_free. But until that happens, we should 1232 * never come here. 1233 */ 1234 WARN_ON(1); 1235 } 1236 1237 return 0; 1238 } 1239 1240 /* 1241 * Cache the order of the largest free extent we have available in this block 1242 * group. 1243 */ 1244 static void 1245 mb_set_largest_free_order(struct super_block *sb, struct ext4_group_info *grp) 1246 { 1247 struct ext4_sb_info *sbi = EXT4_SB(sb); 1248 int new, old = grp->bb_largest_free_order; 1249 1250 for (new = MB_NUM_ORDERS(sb) - 1; new >= 0; new--) 1251 if (grp->bb_counters[new] > 0) 1252 break; 1253 1254 /* No need to move between order lists? */ 1255 if (new == old) 1256 return; 1257 1258 if (old >= 0) { 1259 struct xarray *xa = &sbi->s_mb_largest_free_orders[old]; 1260 1261 if (!xa_empty(xa) && xa_load(xa, grp->bb_group)) 1262 xa_erase(xa, grp->bb_group); 1263 } 1264 1265 grp->bb_largest_free_order = new; 1266 if (test_opt2(sb, MB_OPTIMIZE_SCAN) && new >= 0 && grp->bb_free) { 1267 /* 1268 * Cannot use __GFP_NOFAIL because we hold the group lock. 1269 * Although allocation for insertion may fails, it's not fatal 1270 * as we have linear traversal to fall back on. 1271 */ 1272 int err = xa_insert(&sbi->s_mb_largest_free_orders[new], 1273 grp->bb_group, grp, GFP_ATOMIC); 1274 if (err) 1275 mb_debug(sb, "insert group: %u to s_mb_largest_free_orders[%d] failed, err %d", 1276 grp->bb_group, new, err); 1277 } 1278 } 1279 1280 static noinline_for_stack 1281 void ext4_mb_generate_buddy(struct super_block *sb, 1282 void *buddy, void *bitmap, ext4_group_t group, 1283 struct ext4_group_info *grp) 1284 { 1285 struct ext4_sb_info *sbi = EXT4_SB(sb); 1286 ext4_grpblk_t max = EXT4_CLUSTERS_PER_GROUP(sb); 1287 ext4_grpblk_t i = 0; 1288 ext4_grpblk_t first; 1289 ext4_grpblk_t len; 1290 unsigned free = 0; 1291 unsigned fragments = 0; 1292 unsigned long long period = get_cycles(); 1293 1294 /* initialize buddy from bitmap which is aggregation 1295 * of on-disk bitmap and preallocations */ 1296 i = mb_find_next_zero_bit(bitmap, max, 0); 1297 grp->bb_first_free = i; 1298 while (i < max) { 1299 fragments++; 1300 first = i; 1301 i = mb_find_next_bit(bitmap, max, i); 1302 len = i - first; 1303 free += len; 1304 if (len > 1) 1305 ext4_mb_mark_free_simple(sb, buddy, first, len, grp); 1306 else 1307 grp->bb_counters[0]++; 1308 if (i < max) 1309 i = mb_find_next_zero_bit(bitmap, max, i); 1310 } 1311 grp->bb_fragments = fragments; 1312 1313 if (free != grp->bb_free) { 1314 ext4_grp_locked_error(sb, group, 0, 0, 1315 "block bitmap and bg descriptor " 1316 "inconsistent: %u vs %u free clusters", 1317 free, grp->bb_free); 1318 /* 1319 * If we intend to continue, we consider group descriptor 1320 * corrupt and update bb_free using bitmap value 1321 */ 1322 grp->bb_free = free; 1323 ext4_mark_group_bitmap_corrupted(sb, group, 1324 EXT4_GROUP_INFO_BBITMAP_CORRUPT); 1325 } 1326 mb_set_largest_free_order(sb, grp); 1327 mb_update_avg_fragment_size(sb, grp); 1328 1329 clear_bit(EXT4_GROUP_INFO_NEED_INIT_BIT, &(grp->bb_state)); 1330 1331 period = get_cycles() - period; 1332 atomic_inc(&sbi->s_mb_buddies_generated); 1333 atomic64_add(period, &sbi->s_mb_generation_time); 1334 } 1335 1336 static void mb_regenerate_buddy(struct ext4_buddy *e4b) 1337 { 1338 int count; 1339 int order = 1; 1340 void *buddy; 1341 1342 while ((buddy = mb_find_buddy(e4b, order++, &count))) 1343 mb_set_bits(buddy, 0, count); 1344 1345 e4b->bd_info->bb_fragments = 0; 1346 memset(e4b->bd_info->bb_counters, 0, 1347 sizeof(*e4b->bd_info->bb_counters) * 1348 (e4b->bd_sb->s_blocksize_bits + 2)); 1349 1350 ext4_mb_generate_buddy(e4b->bd_sb, e4b->bd_buddy, 1351 e4b->bd_bitmap, e4b->bd_group, e4b->bd_info); 1352 } 1353 1354 /* The buddy information is attached the buddy cache inode 1355 * for convenience. The information regarding each group 1356 * is loaded via ext4_mb_load_buddy. The information involve 1357 * block bitmap and buddy information. The information are 1358 * stored in the inode as 1359 * 1360 * { folio } 1361 * [ group 0 bitmap][ group 0 buddy] [group 1][ group 1]... 1362 * 1363 * 1364 * one block each for bitmap and buddy information. 1365 * So for each group we take up 2 blocks. A folio can 1366 * contain blocks_per_folio (folio_size / blocksize) blocks. 1367 * So it can have information regarding groups_per_folio which 1368 * is blocks_per_folio/2 1369 * 1370 * Locking note: This routine takes the block group lock of all groups 1371 * for this folio; do not hold this lock when calling this routine! 1372 */ 1373 static int ext4_mb_init_cache(struct folio *folio, char *incore, gfp_t gfp) 1374 { 1375 ext4_group_t ngroups; 1376 unsigned int blocksize; 1377 int blocks_per_folio; 1378 int groups_per_folio; 1379 int err = 0; 1380 int i; 1381 ext4_group_t first_group, group; 1382 int first_block; 1383 struct super_block *sb; 1384 struct buffer_head *bhs; 1385 struct buffer_head **bh = NULL; 1386 struct inode *inode; 1387 char *data; 1388 char *bitmap; 1389 struct ext4_group_info *grinfo; 1390 1391 inode = folio->mapping->host; 1392 sb = inode->i_sb; 1393 ngroups = ext4_get_groups_count(sb); 1394 blocksize = i_blocksize(inode); 1395 blocks_per_folio = folio_size(folio) / blocksize; 1396 WARN_ON_ONCE(!blocks_per_folio); 1397 groups_per_folio = DIV_ROUND_UP(blocks_per_folio, 2); 1398 1399 mb_debug(sb, "init folio %lu\n", folio->index); 1400 1401 /* allocate buffer_heads to read bitmaps */ 1402 if (groups_per_folio > 1) { 1403 i = sizeof(struct buffer_head *) * groups_per_folio; 1404 bh = kzalloc(i, gfp); 1405 if (bh == NULL) 1406 return -ENOMEM; 1407 } else 1408 bh = &bhs; 1409 1410 /* read all groups the folio covers into the cache */ 1411 first_group = EXT4_PG_TO_LBLK(inode, folio->index) / 2; 1412 for (i = 0, group = first_group; i < groups_per_folio; i++, group++) { 1413 if (group >= ngroups) 1414 break; 1415 1416 grinfo = ext4_get_group_info(sb, group); 1417 if (!grinfo) 1418 continue; 1419 /* 1420 * If folio is uptodate then we came here after online resize 1421 * which added some new uninitialized group info structs, so 1422 * we must skip all initialized uptodate buddies on the folio, 1423 * which may be currently in use by an allocating task. 1424 */ 1425 if (folio_test_uptodate(folio) && 1426 !EXT4_MB_GRP_NEED_INIT(grinfo)) { 1427 bh[i] = NULL; 1428 continue; 1429 } 1430 bh[i] = ext4_read_block_bitmap_nowait(sb, group, false); 1431 if (IS_ERR(bh[i])) { 1432 err = PTR_ERR(bh[i]); 1433 bh[i] = NULL; 1434 goto out; 1435 } 1436 mb_debug(sb, "read bitmap for group %u\n", group); 1437 } 1438 1439 /* wait for I/O completion */ 1440 for (i = 0, group = first_group; i < groups_per_folio; i++, group++) { 1441 int err2; 1442 1443 if (!bh[i]) 1444 continue; 1445 err2 = ext4_wait_block_bitmap(sb, group, bh[i]); 1446 if (!err) 1447 err = err2; 1448 } 1449 1450 first_block = EXT4_PG_TO_LBLK(inode, folio->index); 1451 for (i = 0; i < blocks_per_folio; i++) { 1452 group = (first_block + i) >> 1; 1453 if (group >= ngroups) 1454 break; 1455 1456 if (!bh[group - first_group]) 1457 /* skip initialized uptodate buddy */ 1458 continue; 1459 1460 if (!buffer_verified(bh[group - first_group])) 1461 /* Skip faulty bitmaps */ 1462 continue; 1463 err = 0; 1464 1465 /* 1466 * data carry information regarding this 1467 * particular group in the format specified 1468 * above 1469 * 1470 */ 1471 data = folio_address(folio) + (i * blocksize); 1472 bitmap = bh[group - first_group]->b_data; 1473 1474 /* 1475 * We place the buddy block and bitmap block 1476 * close together 1477 */ 1478 grinfo = ext4_get_group_info(sb, group); 1479 if (!grinfo) { 1480 err = -EFSCORRUPTED; 1481 goto out; 1482 } 1483 if ((first_block + i) & 1) { 1484 /* this is block of buddy */ 1485 BUG_ON(incore == NULL); 1486 mb_debug(sb, "put buddy for group %u in folio %lu/%x\n", 1487 group, folio->index, i * blocksize); 1488 trace_ext4_mb_buddy_bitmap_load(sb, group); 1489 grinfo->bb_fragments = 0; 1490 memset(grinfo->bb_counters, 0, 1491 sizeof(*grinfo->bb_counters) * 1492 (MB_NUM_ORDERS(sb))); 1493 /* 1494 * incore got set to the group block bitmap below 1495 */ 1496 ext4_lock_group(sb, group); 1497 /* init the buddy */ 1498 memset(data, 0xff, blocksize); 1499 ext4_mb_generate_buddy(sb, data, incore, group, grinfo); 1500 ext4_unlock_group(sb, group); 1501 incore = NULL; 1502 } else { 1503 /* this is block of bitmap */ 1504 BUG_ON(incore != NULL); 1505 mb_debug(sb, "put bitmap for group %u in folio %lu/%x\n", 1506 group, folio->index, i * blocksize); 1507 trace_ext4_mb_bitmap_load(sb, group); 1508 1509 /* see comments in ext4_mb_put_pa() */ 1510 ext4_lock_group(sb, group); 1511 memcpy(data, bitmap, blocksize); 1512 1513 /* mark all preallocated blks used in in-core bitmap */ 1514 ext4_mb_generate_from_pa(sb, data, group); 1515 WARN_ON_ONCE(!RB_EMPTY_ROOT(&grinfo->bb_free_root)); 1516 ext4_unlock_group(sb, group); 1517 1518 /* set incore so that the buddy information can be 1519 * generated using this 1520 */ 1521 incore = data; 1522 } 1523 } 1524 folio_mark_uptodate(folio); 1525 1526 out: 1527 if (bh) { 1528 for (i = 0; i < groups_per_folio; i++) 1529 brelse(bh[i]); 1530 if (bh != &bhs) 1531 kfree(bh); 1532 } 1533 return err; 1534 } 1535 1536 /* 1537 * Lock the buddy and bitmap folios. This makes sure other parallel init_group 1538 * on the same buddy folio doesn't happen while holding the buddy folio lock. 1539 * Return locked buddy and bitmap folios on e4b struct. If buddy and bitmap 1540 * are on the same folio e4b->bd_buddy_folio is NULL and return value is 0. 1541 */ 1542 static int ext4_mb_get_buddy_folio_lock(struct super_block *sb, 1543 ext4_group_t group, struct ext4_buddy *e4b, gfp_t gfp) 1544 { 1545 struct inode *inode = EXT4_SB(sb)->s_buddy_cache; 1546 int block, pnum; 1547 struct folio *folio; 1548 1549 e4b->bd_buddy_folio = NULL; 1550 e4b->bd_bitmap_folio = NULL; 1551 1552 /* 1553 * the buddy cache inode stores the block bitmap 1554 * and buddy information in consecutive blocks. 1555 * So for each group we need two blocks. 1556 */ 1557 block = group * 2; 1558 pnum = EXT4_LBLK_TO_PG(inode, block); 1559 folio = __filemap_get_folio(inode->i_mapping, pnum, 1560 FGP_LOCK | FGP_ACCESSED | FGP_CREAT, gfp); 1561 if (IS_ERR(folio)) 1562 return PTR_ERR(folio); 1563 BUG_ON(folio->mapping != inode->i_mapping); 1564 WARN_ON_ONCE(folio_size(folio) < sb->s_blocksize); 1565 e4b->bd_bitmap_folio = folio; 1566 e4b->bd_bitmap = folio_address(folio) + 1567 offset_in_folio(folio, EXT4_LBLK_TO_B(inode, block)); 1568 1569 block++; 1570 pnum = EXT4_LBLK_TO_PG(inode, block); 1571 if (folio_contains(folio, pnum)) { 1572 /* buddy and bitmap are on the same folio */ 1573 return 0; 1574 } 1575 1576 /* we need another folio for the buddy */ 1577 folio = __filemap_get_folio(inode->i_mapping, pnum, 1578 FGP_LOCK | FGP_ACCESSED | FGP_CREAT, gfp); 1579 if (IS_ERR(folio)) 1580 return PTR_ERR(folio); 1581 BUG_ON(folio->mapping != inode->i_mapping); 1582 WARN_ON_ONCE(folio_size(folio) < sb->s_blocksize); 1583 e4b->bd_buddy_folio = folio; 1584 return 0; 1585 } 1586 1587 static void ext4_mb_put_buddy_folio_lock(struct ext4_buddy *e4b) 1588 { 1589 if (e4b->bd_bitmap_folio) { 1590 folio_unlock(e4b->bd_bitmap_folio); 1591 folio_put(e4b->bd_bitmap_folio); 1592 } 1593 if (e4b->bd_buddy_folio) { 1594 folio_unlock(e4b->bd_buddy_folio); 1595 folio_put(e4b->bd_buddy_folio); 1596 } 1597 } 1598 1599 /* 1600 * Locking note: This routine calls ext4_mb_init_cache(), which takes the 1601 * block group lock of all groups for this folio; do not hold the BG lock when 1602 * calling this routine! 1603 */ 1604 static noinline_for_stack 1605 int ext4_mb_init_group(struct super_block *sb, ext4_group_t group, gfp_t gfp) 1606 { 1607 1608 struct ext4_group_info *this_grp; 1609 struct ext4_buddy e4b; 1610 struct folio *folio; 1611 int ret = 0; 1612 1613 might_sleep(); 1614 mb_debug(sb, "init group %u\n", group); 1615 this_grp = ext4_get_group_info(sb, group); 1616 if (!this_grp) 1617 return -EFSCORRUPTED; 1618 1619 /* 1620 * This ensures that we don't reinit the buddy cache 1621 * folio which map to the group from which we are already 1622 * allocating. If we are looking at the buddy cache we would 1623 * have taken a reference using ext4_mb_load_buddy and that 1624 * would have pinned buddy folio to page cache. 1625 * The call to ext4_mb_get_buddy_folio_lock will mark the 1626 * folio accessed. 1627 */ 1628 ret = ext4_mb_get_buddy_folio_lock(sb, group, &e4b, gfp); 1629 if (ret || !EXT4_MB_GRP_NEED_INIT(this_grp)) { 1630 /* 1631 * somebody initialized the group 1632 * return without doing anything 1633 */ 1634 goto err; 1635 } 1636 1637 folio = e4b.bd_bitmap_folio; 1638 ret = ext4_mb_init_cache(folio, NULL, gfp); 1639 if (ret) 1640 goto err; 1641 if (!folio_test_uptodate(folio)) { 1642 ret = -EIO; 1643 goto err; 1644 } 1645 1646 if (e4b.bd_buddy_folio == NULL) { 1647 /* 1648 * If both the bitmap and buddy are in 1649 * the same folio we don't need to force 1650 * init the buddy 1651 */ 1652 ret = 0; 1653 goto err; 1654 } 1655 /* init buddy cache */ 1656 folio = e4b.bd_buddy_folio; 1657 ret = ext4_mb_init_cache(folio, e4b.bd_bitmap, gfp); 1658 if (ret) 1659 goto err; 1660 if (!folio_test_uptodate(folio)) { 1661 ret = -EIO; 1662 goto err; 1663 } 1664 err: 1665 ext4_mb_put_buddy_folio_lock(&e4b); 1666 return ret; 1667 } 1668 1669 /* 1670 * Locking note: This routine calls ext4_mb_init_cache(), which takes the 1671 * block group lock of all groups for this folio; do not hold the BG lock when 1672 * calling this routine! 1673 */ 1674 static noinline_for_stack int 1675 ext4_mb_load_buddy_gfp(struct super_block *sb, ext4_group_t group, 1676 struct ext4_buddy *e4b, gfp_t gfp) 1677 { 1678 int block; 1679 int pnum; 1680 struct folio *folio; 1681 int ret; 1682 struct ext4_group_info *grp; 1683 struct ext4_sb_info *sbi = EXT4_SB(sb); 1684 struct inode *inode = sbi->s_buddy_cache; 1685 1686 might_sleep(); 1687 mb_debug(sb, "load group %u\n", group); 1688 1689 grp = ext4_get_group_info(sb, group); 1690 if (!grp) 1691 return -EFSCORRUPTED; 1692 1693 e4b->bd_blkbits = sb->s_blocksize_bits; 1694 e4b->bd_info = grp; 1695 e4b->bd_sb = sb; 1696 e4b->bd_group = group; 1697 e4b->bd_buddy_folio = NULL; 1698 e4b->bd_bitmap_folio = NULL; 1699 1700 if (unlikely(EXT4_MB_GRP_NEED_INIT(grp))) { 1701 /* 1702 * we need full data about the group 1703 * to make a good selection 1704 */ 1705 ret = ext4_mb_init_group(sb, group, gfp); 1706 if (ret) 1707 return ret; 1708 } 1709 1710 /* 1711 * the buddy cache inode stores the block bitmap 1712 * and buddy information in consecutive blocks. 1713 * So for each group we need two blocks. 1714 */ 1715 block = group * 2; 1716 pnum = EXT4_LBLK_TO_PG(inode, block); 1717 1718 /* Avoid locking the folio in the fast path ... */ 1719 folio = __filemap_get_folio(inode->i_mapping, pnum, FGP_ACCESSED, 0); 1720 if (IS_ERR(folio) || !folio_test_uptodate(folio) || folio_test_locked(folio)) { 1721 /* 1722 * folio_test_locked is employed to detect ongoing folio 1723 * migrations, since concurrent migrations can lead to 1724 * bitmap inconsistency. And if we are not uptodate that 1725 * implies somebody just created the folio but is yet to 1726 * initialize it. We can drop the folio reference and 1727 * try to get the folio with lock in both cases to avoid 1728 * concurrency. 1729 */ 1730 if (!IS_ERR(folio)) 1731 folio_put(folio); 1732 folio = __filemap_get_folio(inode->i_mapping, pnum, 1733 FGP_LOCK | FGP_ACCESSED | FGP_CREAT, gfp); 1734 if (!IS_ERR(folio)) { 1735 if (WARN_RATELIMIT(folio->mapping != inode->i_mapping, 1736 "ext4: bitmap's mapping != inode->i_mapping\n")) { 1737 /* should never happen */ 1738 folio_unlock(folio); 1739 ret = -EINVAL; 1740 goto err; 1741 } 1742 if (!folio_test_uptodate(folio)) { 1743 ret = ext4_mb_init_cache(folio, NULL, gfp); 1744 if (ret) { 1745 folio_unlock(folio); 1746 goto err; 1747 } 1748 mb_cmp_bitmaps(e4b, folio_address(folio) + 1749 offset_in_folio(folio, 1750 EXT4_LBLK_TO_B(inode, block))); 1751 } 1752 folio_unlock(folio); 1753 } 1754 } 1755 if (IS_ERR(folio)) { 1756 ret = PTR_ERR(folio); 1757 goto err; 1758 } 1759 if (!folio_test_uptodate(folio)) { 1760 ret = -EIO; 1761 goto err; 1762 } 1763 1764 /* Folios marked accessed already */ 1765 e4b->bd_bitmap_folio = folio; 1766 e4b->bd_bitmap = folio_address(folio) + 1767 offset_in_folio(folio, EXT4_LBLK_TO_B(inode, block)); 1768 1769 block++; 1770 pnum = EXT4_LBLK_TO_PG(inode, block); 1771 /* buddy and bitmap are on the same folio? */ 1772 if (folio_contains(folio, pnum)) { 1773 folio_get(folio); 1774 goto update_buddy; 1775 } 1776 1777 /* we need another folio for the buddy */ 1778 folio = __filemap_get_folio(inode->i_mapping, pnum, FGP_ACCESSED, 0); 1779 if (IS_ERR(folio) || !folio_test_uptodate(folio) || folio_test_locked(folio)) { 1780 if (!IS_ERR(folio)) 1781 folio_put(folio); 1782 folio = __filemap_get_folio(inode->i_mapping, pnum, 1783 FGP_LOCK | FGP_ACCESSED | FGP_CREAT, gfp); 1784 if (!IS_ERR(folio)) { 1785 if (WARN_RATELIMIT(folio->mapping != inode->i_mapping, 1786 "ext4: buddy bitmap's mapping != inode->i_mapping\n")) { 1787 /* should never happen */ 1788 folio_unlock(folio); 1789 ret = -EINVAL; 1790 goto err; 1791 } 1792 if (!folio_test_uptodate(folio)) { 1793 ret = ext4_mb_init_cache(folio, e4b->bd_bitmap, 1794 gfp); 1795 if (ret) { 1796 folio_unlock(folio); 1797 goto err; 1798 } 1799 } 1800 folio_unlock(folio); 1801 } 1802 } 1803 if (IS_ERR(folio)) { 1804 ret = PTR_ERR(folio); 1805 goto err; 1806 } 1807 if (!folio_test_uptodate(folio)) { 1808 ret = -EIO; 1809 goto err; 1810 } 1811 1812 update_buddy: 1813 /* Folios marked accessed already */ 1814 e4b->bd_buddy_folio = folio; 1815 e4b->bd_buddy = folio_address(folio) + 1816 offset_in_folio(folio, EXT4_LBLK_TO_B(inode, block)); 1817 1818 return 0; 1819 1820 err: 1821 if (!IS_ERR_OR_NULL(folio)) 1822 folio_put(folio); 1823 if (e4b->bd_bitmap_folio) 1824 folio_put(e4b->bd_bitmap_folio); 1825 1826 e4b->bd_buddy = NULL; 1827 e4b->bd_bitmap = NULL; 1828 return ret; 1829 } 1830 1831 static int ext4_mb_load_buddy(struct super_block *sb, ext4_group_t group, 1832 struct ext4_buddy *e4b) 1833 { 1834 return ext4_mb_load_buddy_gfp(sb, group, e4b, GFP_NOFS); 1835 } 1836 1837 static void ext4_mb_unload_buddy(struct ext4_buddy *e4b) 1838 { 1839 if (e4b->bd_bitmap_folio) 1840 folio_put(e4b->bd_bitmap_folio); 1841 if (e4b->bd_buddy_folio) 1842 folio_put(e4b->bd_buddy_folio); 1843 } 1844 1845 1846 static int mb_find_order_for_block(struct ext4_buddy *e4b, int block) 1847 { 1848 int order = 1, max; 1849 void *bb; 1850 1851 BUG_ON(e4b->bd_bitmap == e4b->bd_buddy); 1852 BUG_ON(block >= (1 << (e4b->bd_blkbits + 3))); 1853 1854 while (order <= e4b->bd_blkbits + 1) { 1855 bb = mb_find_buddy(e4b, order, &max); 1856 if (!mb_test_bit(block >> order, bb)) { 1857 /* this block is part of buddy of order 'order' */ 1858 return order; 1859 } 1860 order++; 1861 } 1862 return 0; 1863 } 1864 1865 static void mb_clear_bits(void *bm, int cur, int len) 1866 { 1867 __u32 *addr; 1868 1869 len = cur + len; 1870 while (cur < len) { 1871 if ((cur & 31) == 0 && (len - cur) >= 32) { 1872 /* fast path: clear whole word at once */ 1873 addr = bm + (cur >> 3); 1874 *addr = 0; 1875 cur += 32; 1876 continue; 1877 } 1878 mb_clear_bit(cur, bm); 1879 cur++; 1880 } 1881 } 1882 1883 /* clear bits in given range 1884 * will return first found zero bit if any, -1 otherwise 1885 */ 1886 static int mb_test_and_clear_bits(void *bm, int cur, int len) 1887 { 1888 __u32 *addr; 1889 int zero_bit = -1; 1890 1891 len = cur + len; 1892 while (cur < len) { 1893 if ((cur & 31) == 0 && (len - cur) >= 32) { 1894 /* fast path: clear whole word at once */ 1895 addr = bm + (cur >> 3); 1896 if (*addr != (__u32)(-1) && zero_bit == -1) 1897 zero_bit = cur + mb_find_next_zero_bit(addr, 32, 0); 1898 *addr = 0; 1899 cur += 32; 1900 continue; 1901 } 1902 if (!mb_test_and_clear_bit(cur, bm) && zero_bit == -1) 1903 zero_bit = cur; 1904 cur++; 1905 } 1906 1907 return zero_bit; 1908 } 1909 1910 void mb_set_bits(void *bm, int cur, int len) 1911 { 1912 __u32 *addr; 1913 1914 len = cur + len; 1915 while (cur < len) { 1916 if ((cur & 31) == 0 && (len - cur) >= 32) { 1917 /* fast path: set whole word at once */ 1918 addr = bm + (cur >> 3); 1919 *addr = 0xffffffff; 1920 cur += 32; 1921 continue; 1922 } 1923 mb_set_bit(cur, bm); 1924 cur++; 1925 } 1926 } 1927 1928 static inline int mb_buddy_adjust_border(int* bit, void* bitmap, int side) 1929 { 1930 if (mb_test_bit(*bit + side, bitmap)) { 1931 mb_clear_bit(*bit, bitmap); 1932 (*bit) -= side; 1933 return 1; 1934 } 1935 else { 1936 (*bit) += side; 1937 mb_set_bit(*bit, bitmap); 1938 return -1; 1939 } 1940 } 1941 1942 static void mb_buddy_mark_free(struct ext4_buddy *e4b, int first, int last) 1943 { 1944 int max; 1945 int order = 1; 1946 void *buddy = mb_find_buddy(e4b, order, &max); 1947 1948 while (buddy) { 1949 void *buddy2; 1950 1951 /* Bits in range [first; last] are known to be set since 1952 * corresponding blocks were allocated. Bits in range 1953 * (first; last) will stay set because they form buddies on 1954 * upper layer. We just deal with borders if they don't 1955 * align with upper layer and then go up. 1956 * Releasing entire group is all about clearing 1957 * single bit of highest order buddy. 1958 */ 1959 1960 /* Example: 1961 * --------------------------------- 1962 * | 1 | 1 | 1 | 1 | 1963 * --------------------------------- 1964 * | 0 | 1 | 1 | 1 | 1 | 1 | 1 | 1 | 1965 * --------------------------------- 1966 * 0 1 2 3 4 5 6 7 1967 * \_____________________/ 1968 * 1969 * Neither [1] nor [6] is aligned to above layer. 1970 * Left neighbour [0] is free, so mark it busy, 1971 * decrease bb_counters and extend range to 1972 * [0; 6] 1973 * Right neighbour [7] is busy. It can't be coaleasced with [6], so 1974 * mark [6] free, increase bb_counters and shrink range to 1975 * [0; 5]. 1976 * Then shift range to [0; 2], go up and do the same. 1977 */ 1978 1979 1980 if (first & 1) 1981 e4b->bd_info->bb_counters[order] += mb_buddy_adjust_border(&first, buddy, -1); 1982 if (!(last & 1)) 1983 e4b->bd_info->bb_counters[order] += mb_buddy_adjust_border(&last, buddy, 1); 1984 if (first > last) 1985 break; 1986 order++; 1987 1988 buddy2 = mb_find_buddy(e4b, order, &max); 1989 if (!buddy2) { 1990 mb_clear_bits(buddy, first, last - first + 1); 1991 e4b->bd_info->bb_counters[order - 1] += last - first + 1; 1992 break; 1993 } 1994 first >>= 1; 1995 last >>= 1; 1996 buddy = buddy2; 1997 } 1998 } 1999 2000 static void mb_free_blocks(struct inode *inode, struct ext4_buddy *e4b, 2001 int first, int count) 2002 { 2003 int left_is_free = 0; 2004 int right_is_free = 0; 2005 int block; 2006 int last = first + count - 1; 2007 struct super_block *sb = e4b->bd_sb; 2008 2009 if (WARN_ON(count == 0)) 2010 return; 2011 BUG_ON(last >= (sb->s_blocksize << 3)); 2012 assert_spin_locked(ext4_group_lock_ptr(sb, e4b->bd_group)); 2013 /* Don't bother if the block group is corrupt. */ 2014 if (unlikely(EXT4_MB_GRP_BBITMAP_CORRUPT(e4b->bd_info))) 2015 return; 2016 2017 mb_check_buddy(e4b); 2018 mb_free_blocks_double(inode, e4b, first, count); 2019 2020 /* access memory sequentially: check left neighbour, 2021 * clear range and then check right neighbour 2022 */ 2023 if (first != 0) 2024 left_is_free = !mb_test_bit(first - 1, e4b->bd_bitmap); 2025 block = mb_test_and_clear_bits(e4b->bd_bitmap, first, count); 2026 if (last + 1 < EXT4_SB(sb)->s_mb_maxs[0]) 2027 right_is_free = !mb_test_bit(last + 1, e4b->bd_bitmap); 2028 2029 if (unlikely(block != -1)) { 2030 struct ext4_sb_info *sbi = EXT4_SB(sb); 2031 ext4_fsblk_t blocknr; 2032 2033 /* 2034 * Fastcommit replay can free already freed blocks which 2035 * corrupts allocation info. Regenerate it. 2036 */ 2037 if (sbi->s_mount_state & EXT4_FC_REPLAY) { 2038 mb_regenerate_buddy(e4b); 2039 goto check; 2040 } 2041 2042 blocknr = ext4_group_first_block_no(sb, e4b->bd_group); 2043 blocknr += EXT4_C2B(sbi, block); 2044 ext4_mark_group_bitmap_corrupted(sb, e4b->bd_group, 2045 EXT4_GROUP_INFO_BBITMAP_CORRUPT); 2046 ext4_grp_locked_error(sb, e4b->bd_group, 2047 inode ? inode->i_ino : 0, blocknr, 2048 "freeing already freed block (bit %u); block bitmap corrupt.", 2049 block); 2050 return; 2051 } 2052 2053 this_cpu_inc(discard_pa_seq); 2054 e4b->bd_info->bb_free += count; 2055 if (first < e4b->bd_info->bb_first_free) 2056 e4b->bd_info->bb_first_free = first; 2057 2058 /* let's maintain fragments counter */ 2059 if (left_is_free && right_is_free) 2060 e4b->bd_info->bb_fragments--; 2061 else if (!left_is_free && !right_is_free) 2062 e4b->bd_info->bb_fragments++; 2063 2064 /* buddy[0] == bd_bitmap is a special case, so handle 2065 * it right away and let mb_buddy_mark_free stay free of 2066 * zero order checks. 2067 * Check if neighbours are to be coaleasced, 2068 * adjust bitmap bb_counters and borders appropriately. 2069 */ 2070 if (first & 1) { 2071 first += !left_is_free; 2072 e4b->bd_info->bb_counters[0] += left_is_free ? -1 : 1; 2073 } 2074 if (!(last & 1)) { 2075 last -= !right_is_free; 2076 e4b->bd_info->bb_counters[0] += right_is_free ? -1 : 1; 2077 } 2078 2079 if (first <= last) 2080 mb_buddy_mark_free(e4b, first >> 1, last >> 1); 2081 2082 mb_set_largest_free_order(sb, e4b->bd_info); 2083 mb_update_avg_fragment_size(sb, e4b->bd_info); 2084 check: 2085 mb_check_buddy(e4b); 2086 } 2087 2088 static int mb_find_extent(struct ext4_buddy *e4b, int block, 2089 int needed, struct ext4_free_extent *ex) 2090 { 2091 int max, order, next; 2092 void *buddy; 2093 2094 assert_spin_locked(ext4_group_lock_ptr(e4b->bd_sb, e4b->bd_group)); 2095 BUG_ON(ex == NULL); 2096 2097 buddy = mb_find_buddy(e4b, 0, &max); 2098 BUG_ON(buddy == NULL); 2099 BUG_ON(block >= max); 2100 if (mb_test_bit(block, buddy)) { 2101 ex->fe_len = 0; 2102 ex->fe_start = 0; 2103 ex->fe_group = 0; 2104 return 0; 2105 } 2106 2107 /* find actual order */ 2108 order = mb_find_order_for_block(e4b, block); 2109 2110 ex->fe_len = (1 << order) - (block & ((1 << order) - 1)); 2111 ex->fe_start = block; 2112 ex->fe_group = e4b->bd_group; 2113 2114 block = block >> order; 2115 2116 while (needed > ex->fe_len && 2117 mb_find_buddy(e4b, order, &max)) { 2118 2119 if (block + 1 >= max) 2120 break; 2121 2122 next = (block + 1) * (1 << order); 2123 if (mb_test_bit(next, e4b->bd_bitmap)) 2124 break; 2125 2126 order = mb_find_order_for_block(e4b, next); 2127 2128 block = next >> order; 2129 ex->fe_len += 1 << order; 2130 } 2131 2132 if (ex->fe_start + ex->fe_len > EXT4_CLUSTERS_PER_GROUP(e4b->bd_sb)) { 2133 /* Should never happen! (but apparently sometimes does?!?) */ 2134 WARN_ON(1); 2135 ext4_grp_locked_error(e4b->bd_sb, e4b->bd_group, 0, 0, 2136 "corruption or bug in mb_find_extent " 2137 "block=%d, order=%d needed=%d ex=%u/%d/%d@%u", 2138 block, order, needed, ex->fe_group, ex->fe_start, 2139 ex->fe_len, ex->fe_logical); 2140 ex->fe_len = 0; 2141 ex->fe_start = 0; 2142 ex->fe_group = 0; 2143 } 2144 return ex->fe_len; 2145 } 2146 2147 static int mb_mark_used(struct ext4_buddy *e4b, struct ext4_free_extent *ex) 2148 { 2149 int ord; 2150 int mlen = 0; 2151 int max = 0; 2152 int start = ex->fe_start; 2153 int len = ex->fe_len; 2154 unsigned ret = 0; 2155 int len0 = len; 2156 void *buddy; 2157 int ord_start, ord_end; 2158 2159 BUG_ON(start + len > (e4b->bd_sb->s_blocksize << 3)); 2160 BUG_ON(e4b->bd_group != ex->fe_group); 2161 assert_spin_locked(ext4_group_lock_ptr(e4b->bd_sb, e4b->bd_group)); 2162 mb_check_buddy(e4b); 2163 mb_mark_used_double(e4b, start, len); 2164 2165 this_cpu_inc(discard_pa_seq); 2166 e4b->bd_info->bb_free -= len; 2167 if (e4b->bd_info->bb_first_free == start) 2168 e4b->bd_info->bb_first_free += len; 2169 2170 /* let's maintain fragments counter */ 2171 if (start != 0) 2172 mlen = !mb_test_bit(start - 1, e4b->bd_bitmap); 2173 if (start + len < EXT4_SB(e4b->bd_sb)->s_mb_maxs[0]) 2174 max = !mb_test_bit(start + len, e4b->bd_bitmap); 2175 if (mlen && max) 2176 e4b->bd_info->bb_fragments++; 2177 else if (!mlen && !max) 2178 e4b->bd_info->bb_fragments--; 2179 2180 /* let's maintain buddy itself */ 2181 while (len) { 2182 ord = mb_find_order_for_block(e4b, start); 2183 2184 if (((start >> ord) << ord) == start && len >= (1 << ord)) { 2185 /* the whole chunk may be allocated at once! */ 2186 mlen = 1 << ord; 2187 buddy = mb_find_buddy(e4b, ord, &max); 2188 BUG_ON((start >> ord) >= max); 2189 mb_set_bit(start >> ord, buddy); 2190 e4b->bd_info->bb_counters[ord]--; 2191 start += mlen; 2192 len -= mlen; 2193 BUG_ON(len < 0); 2194 continue; 2195 } 2196 2197 /* store for history */ 2198 if (ret == 0) 2199 ret = len | (ord << 16); 2200 2201 BUG_ON(ord <= 0); 2202 buddy = mb_find_buddy(e4b, ord, &max); 2203 mb_set_bit(start >> ord, buddy); 2204 e4b->bd_info->bb_counters[ord]--; 2205 2206 ord_start = (start >> ord) << ord; 2207 ord_end = ord_start + (1 << ord); 2208 /* first chunk */ 2209 if (start > ord_start) 2210 ext4_mb_mark_free_simple(e4b->bd_sb, e4b->bd_buddy, 2211 ord_start, start - ord_start, 2212 e4b->bd_info); 2213 2214 /* last chunk */ 2215 if (start + len < ord_end) { 2216 ext4_mb_mark_free_simple(e4b->bd_sb, e4b->bd_buddy, 2217 start + len, 2218 ord_end - (start + len), 2219 e4b->bd_info); 2220 break; 2221 } 2222 len = start + len - ord_end; 2223 start = ord_end; 2224 } 2225 mb_set_largest_free_order(e4b->bd_sb, e4b->bd_info); 2226 2227 mb_update_avg_fragment_size(e4b->bd_sb, e4b->bd_info); 2228 mb_set_bits(e4b->bd_bitmap, ex->fe_start, len0); 2229 mb_check_buddy(e4b); 2230 2231 return ret; 2232 } 2233 2234 /* 2235 * Must be called under group lock! 2236 */ 2237 static void ext4_mb_use_best_found(struct ext4_allocation_context *ac, 2238 struct ext4_buddy *e4b) 2239 { 2240 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 2241 int ret; 2242 2243 BUG_ON(ac->ac_b_ex.fe_group != e4b->bd_group); 2244 BUG_ON(ac->ac_status == AC_STATUS_FOUND); 2245 2246 ac->ac_b_ex.fe_len = min(ac->ac_b_ex.fe_len, ac->ac_g_ex.fe_len); 2247 ac->ac_b_ex.fe_logical = ac->ac_g_ex.fe_logical; 2248 ret = mb_mark_used(e4b, &ac->ac_b_ex); 2249 2250 /* preallocation can change ac_b_ex, thus we store actually 2251 * allocated blocks for history */ 2252 ac->ac_f_ex = ac->ac_b_ex; 2253 2254 ac->ac_status = AC_STATUS_FOUND; 2255 ac->ac_tail = ret & 0xffff; 2256 ac->ac_buddy = ret >> 16; 2257 2258 /* 2259 * take the folio reference. We want the folio to be pinned 2260 * so that we don't get a ext4_mb_init_cache_call for this 2261 * group until we update the bitmap. That would mean we 2262 * double allocate blocks. The reference is dropped 2263 * in ext4_mb_release_context 2264 */ 2265 ac->ac_bitmap_folio = e4b->bd_bitmap_folio; 2266 folio_get(ac->ac_bitmap_folio); 2267 ac->ac_buddy_folio = e4b->bd_buddy_folio; 2268 folio_get(ac->ac_buddy_folio); 2269 /* store last allocated for subsequent stream allocation */ 2270 if (ac->ac_flags & EXT4_MB_STREAM_ALLOC) { 2271 int hash = (unsigned int)ac->ac_inode->i_ino % sbi->s_mb_nr_global_goals; 2272 2273 WRITE_ONCE(sbi->s_mb_last_groups[hash], ac->ac_f_ex.fe_group); 2274 } 2275 2276 /* 2277 * As we've just preallocated more space than 2278 * user requested originally, we store allocated 2279 * space in a special descriptor. 2280 */ 2281 if (ac->ac_o_ex.fe_len < ac->ac_b_ex.fe_len) 2282 ext4_mb_new_preallocation(ac); 2283 2284 } 2285 2286 static void ext4_mb_check_limits(struct ext4_allocation_context *ac, 2287 struct ext4_buddy *e4b, 2288 int finish_group) 2289 { 2290 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 2291 struct ext4_free_extent *bex = &ac->ac_b_ex; 2292 struct ext4_free_extent *gex = &ac->ac_g_ex; 2293 2294 if (ac->ac_status == AC_STATUS_FOUND) 2295 return; 2296 /* 2297 * We don't want to scan for a whole year 2298 */ 2299 if (ac->ac_found > sbi->s_mb_max_to_scan && 2300 !(ac->ac_flags & EXT4_MB_HINT_FIRST)) { 2301 ac->ac_status = AC_STATUS_BREAK; 2302 return; 2303 } 2304 2305 /* 2306 * Haven't found good chunk so far, let's continue 2307 */ 2308 if (bex->fe_len < gex->fe_len) 2309 return; 2310 2311 if (finish_group || ac->ac_found > sbi->s_mb_min_to_scan) 2312 ext4_mb_use_best_found(ac, e4b); 2313 } 2314 2315 /* 2316 * The routine checks whether found extent is good enough. If it is, 2317 * then the extent gets marked used and flag is set to the context 2318 * to stop scanning. Otherwise, the extent is compared with the 2319 * previous found extent and if new one is better, then it's stored 2320 * in the context. Later, the best found extent will be used, if 2321 * mballoc can't find good enough extent. 2322 * 2323 * The algorithm used is roughly as follows: 2324 * 2325 * * If free extent found is exactly as big as goal, then 2326 * stop the scan and use it immediately 2327 * 2328 * * If free extent found is smaller than goal, then keep retrying 2329 * upto a max of sbi->s_mb_max_to_scan times (default 200). After 2330 * that stop scanning and use whatever we have. 2331 * 2332 * * If free extent found is bigger than goal, then keep retrying 2333 * upto a max of sbi->s_mb_min_to_scan times (default 10) before 2334 * stopping the scan and using the extent. 2335 * 2336 * 2337 * FIXME: real allocation policy is to be designed yet! 2338 */ 2339 static void ext4_mb_measure_extent(struct ext4_allocation_context *ac, 2340 struct ext4_free_extent *ex, 2341 struct ext4_buddy *e4b) 2342 { 2343 struct ext4_free_extent *bex = &ac->ac_b_ex; 2344 struct ext4_free_extent *gex = &ac->ac_g_ex; 2345 2346 BUG_ON(ex->fe_len <= 0); 2347 BUG_ON(ex->fe_len > EXT4_CLUSTERS_PER_GROUP(ac->ac_sb)); 2348 BUG_ON(ex->fe_start >= EXT4_CLUSTERS_PER_GROUP(ac->ac_sb)); 2349 BUG_ON(ac->ac_status != AC_STATUS_CONTINUE); 2350 2351 ac->ac_found++; 2352 ac->ac_cX_found[ac->ac_criteria]++; 2353 2354 /* 2355 * The special case - take what you catch first 2356 */ 2357 if (unlikely(ac->ac_flags & EXT4_MB_HINT_FIRST)) { 2358 *bex = *ex; 2359 ext4_mb_use_best_found(ac, e4b); 2360 return; 2361 } 2362 2363 /* 2364 * Let's check whether the chuck is good enough 2365 */ 2366 if (ex->fe_len == gex->fe_len) { 2367 *bex = *ex; 2368 ext4_mb_use_best_found(ac, e4b); 2369 return; 2370 } 2371 2372 /* 2373 * If this is first found extent, just store it in the context 2374 */ 2375 if (bex->fe_len == 0) { 2376 *bex = *ex; 2377 return; 2378 } 2379 2380 /* 2381 * If new found extent is better, store it in the context 2382 */ 2383 if (bex->fe_len < gex->fe_len) { 2384 /* if the request isn't satisfied, any found extent 2385 * larger than previous best one is better */ 2386 if (ex->fe_len > bex->fe_len) 2387 *bex = *ex; 2388 } else if (ex->fe_len > gex->fe_len) { 2389 /* if the request is satisfied, then we try to find 2390 * an extent that still satisfy the request, but is 2391 * smaller than previous one */ 2392 if (ex->fe_len < bex->fe_len) 2393 *bex = *ex; 2394 } 2395 2396 ext4_mb_check_limits(ac, e4b, 0); 2397 } 2398 2399 static noinline_for_stack 2400 void ext4_mb_try_best_found(struct ext4_allocation_context *ac, 2401 struct ext4_buddy *e4b) 2402 { 2403 struct ext4_free_extent ex = ac->ac_b_ex; 2404 ext4_group_t group = ex.fe_group; 2405 int max; 2406 int err; 2407 2408 BUG_ON(ex.fe_len <= 0); 2409 err = ext4_mb_load_buddy(ac->ac_sb, group, e4b); 2410 if (err) 2411 return; 2412 2413 ext4_lock_group(ac->ac_sb, group); 2414 if (unlikely(EXT4_MB_GRP_BBITMAP_CORRUPT(e4b->bd_info))) 2415 goto out; 2416 2417 max = mb_find_extent(e4b, ex.fe_start, ex.fe_len, &ex); 2418 2419 if (max > 0) { 2420 ac->ac_b_ex = ex; 2421 ext4_mb_use_best_found(ac, e4b); 2422 } 2423 2424 out: 2425 ext4_unlock_group(ac->ac_sb, group); 2426 ext4_mb_unload_buddy(e4b); 2427 } 2428 2429 static noinline_for_stack 2430 int ext4_mb_find_by_goal(struct ext4_allocation_context *ac, 2431 struct ext4_buddy *e4b) 2432 { 2433 ext4_group_t group = ac->ac_g_ex.fe_group; 2434 int max; 2435 int err; 2436 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 2437 struct ext4_group_info *grp = ext4_get_group_info(ac->ac_sb, group); 2438 struct ext4_free_extent ex; 2439 2440 if (!grp) 2441 return -EFSCORRUPTED; 2442 if (!(ac->ac_flags & (EXT4_MB_HINT_TRY_GOAL | EXT4_MB_HINT_GOAL_ONLY))) 2443 return 0; 2444 if (grp->bb_free == 0) 2445 return 0; 2446 2447 err = ext4_mb_load_buddy(ac->ac_sb, group, e4b); 2448 if (err) { 2449 if (EXT4_MB_GRP_BBITMAP_CORRUPT(e4b->bd_info) && 2450 !(ac->ac_flags & EXT4_MB_HINT_GOAL_ONLY)) 2451 return 0; 2452 return err; 2453 } 2454 2455 ext4_lock_group(ac->ac_sb, group); 2456 if (unlikely(EXT4_MB_GRP_BBITMAP_CORRUPT(e4b->bd_info))) 2457 goto out; 2458 2459 max = mb_find_extent(e4b, ac->ac_g_ex.fe_start, 2460 ac->ac_g_ex.fe_len, &ex); 2461 ex.fe_logical = 0xDEADFA11; /* debug value */ 2462 2463 if (max >= ac->ac_g_ex.fe_len && 2464 ac->ac_g_ex.fe_len == EXT4_NUM_B2C(sbi, sbi->s_stripe)) { 2465 ext4_fsblk_t start; 2466 2467 start = ext4_grp_offs_to_block(ac->ac_sb, &ex); 2468 /* use do_div to get remainder (would be 64-bit modulo) */ 2469 if (do_div(start, sbi->s_stripe) == 0) { 2470 ac->ac_found++; 2471 ac->ac_b_ex = ex; 2472 ext4_mb_use_best_found(ac, e4b); 2473 } 2474 } else if (max >= ac->ac_g_ex.fe_len) { 2475 BUG_ON(ex.fe_len <= 0); 2476 BUG_ON(ex.fe_group != ac->ac_g_ex.fe_group); 2477 BUG_ON(ex.fe_start != ac->ac_g_ex.fe_start); 2478 ac->ac_found++; 2479 ac->ac_b_ex = ex; 2480 ext4_mb_use_best_found(ac, e4b); 2481 } else if (max > 0 && (ac->ac_flags & EXT4_MB_HINT_MERGE)) { 2482 /* Sometimes, caller may want to merge even small 2483 * number of blocks to an existing extent */ 2484 BUG_ON(ex.fe_len <= 0); 2485 BUG_ON(ex.fe_group != ac->ac_g_ex.fe_group); 2486 BUG_ON(ex.fe_start != ac->ac_g_ex.fe_start); 2487 ac->ac_found++; 2488 ac->ac_b_ex = ex; 2489 ext4_mb_use_best_found(ac, e4b); 2490 } 2491 out: 2492 ext4_unlock_group(ac->ac_sb, group); 2493 ext4_mb_unload_buddy(e4b); 2494 2495 return 0; 2496 } 2497 2498 /* 2499 * The routine scans buddy structures (not bitmap!) from given order 2500 * to max order and tries to find big enough chunk to satisfy the req 2501 */ 2502 static noinline_for_stack 2503 void ext4_mb_simple_scan_group(struct ext4_allocation_context *ac, 2504 struct ext4_buddy *e4b) 2505 { 2506 struct super_block *sb = ac->ac_sb; 2507 struct ext4_group_info *grp = e4b->bd_info; 2508 void *buddy; 2509 int i; 2510 int k; 2511 int max; 2512 2513 BUG_ON(ac->ac_2order <= 0); 2514 for (i = ac->ac_2order; i < MB_NUM_ORDERS(sb); i++) { 2515 if (grp->bb_counters[i] == 0) 2516 continue; 2517 2518 buddy = mb_find_buddy(e4b, i, &max); 2519 if (WARN_RATELIMIT(buddy == NULL, 2520 "ext4: mb_simple_scan_group: mb_find_buddy failed, (%d)\n", i)) 2521 continue; 2522 2523 k = mb_find_next_zero_bit(buddy, max, 0); 2524 if (k >= max) { 2525 ext4_mark_group_bitmap_corrupted(ac->ac_sb, 2526 e4b->bd_group, 2527 EXT4_GROUP_INFO_BBITMAP_CORRUPT); 2528 ext4_grp_locked_error(ac->ac_sb, e4b->bd_group, 0, 0, 2529 "%d free clusters of order %d. But found 0", 2530 grp->bb_counters[i], i); 2531 break; 2532 } 2533 ac->ac_found++; 2534 ac->ac_cX_found[ac->ac_criteria]++; 2535 2536 ac->ac_b_ex.fe_len = 1 << i; 2537 ac->ac_b_ex.fe_start = k << i; 2538 ac->ac_b_ex.fe_group = e4b->bd_group; 2539 2540 ext4_mb_use_best_found(ac, e4b); 2541 2542 BUG_ON(ac->ac_f_ex.fe_len != ac->ac_g_ex.fe_len); 2543 2544 if (EXT4_SB(sb)->s_mb_stats) 2545 atomic_inc(&EXT4_SB(sb)->s_bal_2orders); 2546 2547 break; 2548 } 2549 } 2550 2551 /* 2552 * The routine scans the group and measures all found extents. 2553 * In order to optimize scanning, caller must pass number of 2554 * free blocks in the group, so the routine can know upper limit. 2555 */ 2556 static noinline_for_stack 2557 void ext4_mb_complex_scan_group(struct ext4_allocation_context *ac, 2558 struct ext4_buddy *e4b) 2559 { 2560 struct super_block *sb = ac->ac_sb; 2561 void *bitmap = e4b->bd_bitmap; 2562 struct ext4_free_extent ex; 2563 int i, j, freelen; 2564 int free; 2565 2566 free = e4b->bd_info->bb_free; 2567 if (WARN_ON(free <= 0)) 2568 return; 2569 2570 i = e4b->bd_info->bb_first_free; 2571 2572 while (free && ac->ac_status == AC_STATUS_CONTINUE) { 2573 i = mb_find_next_zero_bit(bitmap, 2574 EXT4_CLUSTERS_PER_GROUP(sb), i); 2575 if (i >= EXT4_CLUSTERS_PER_GROUP(sb)) { 2576 /* 2577 * IF we have corrupt bitmap, we won't find any 2578 * free blocks even though group info says we 2579 * have free blocks 2580 */ 2581 ext4_mark_group_bitmap_corrupted(sb, e4b->bd_group, 2582 EXT4_GROUP_INFO_BBITMAP_CORRUPT); 2583 ext4_grp_locked_error(sb, e4b->bd_group, 0, 0, 2584 "%d free clusters as per " 2585 "group info. But bitmap says 0", 2586 free); 2587 break; 2588 } 2589 2590 if (!ext4_mb_cr_expensive(ac->ac_criteria)) { 2591 /* 2592 * In CR_GOAL_LEN_FAST and CR_BEST_AVAIL_LEN, we are 2593 * sure that this group will have a large enough 2594 * continuous free extent, so skip over the smaller free 2595 * extents 2596 */ 2597 j = mb_find_next_bit(bitmap, 2598 EXT4_CLUSTERS_PER_GROUP(sb), i); 2599 freelen = j - i; 2600 2601 if (freelen < ac->ac_g_ex.fe_len) { 2602 i = j; 2603 free -= freelen; 2604 continue; 2605 } 2606 } 2607 2608 mb_find_extent(e4b, i, ac->ac_g_ex.fe_len, &ex); 2609 if (WARN_ON(ex.fe_len <= 0)) 2610 break; 2611 if (free < ex.fe_len) { 2612 ext4_mark_group_bitmap_corrupted(sb, e4b->bd_group, 2613 EXT4_GROUP_INFO_BBITMAP_CORRUPT); 2614 ext4_grp_locked_error(sb, e4b->bd_group, 0, 0, 2615 "%d free clusters as per " 2616 "group info. But got %d blocks", 2617 free, ex.fe_len); 2618 /* 2619 * The number of free blocks differs. This mostly 2620 * indicate that the bitmap is corrupt. So exit 2621 * without claiming the space. 2622 */ 2623 break; 2624 } 2625 ex.fe_logical = 0xDEADC0DE; /* debug value */ 2626 ext4_mb_measure_extent(ac, &ex, e4b); 2627 2628 i += ex.fe_len; 2629 free -= ex.fe_len; 2630 } 2631 2632 ext4_mb_check_limits(ac, e4b, 1); 2633 } 2634 2635 /* 2636 * This is a special case for storages like raid5 2637 * we try to find stripe-aligned chunks for stripe-size-multiple requests 2638 */ 2639 static noinline_for_stack 2640 void ext4_mb_scan_aligned(struct ext4_allocation_context *ac, 2641 struct ext4_buddy *e4b) 2642 { 2643 struct super_block *sb = ac->ac_sb; 2644 struct ext4_sb_info *sbi = EXT4_SB(sb); 2645 void *bitmap = e4b->bd_bitmap; 2646 struct ext4_free_extent ex; 2647 ext4_fsblk_t first_group_block; 2648 ext4_fsblk_t a; 2649 ext4_grpblk_t i, stripe; 2650 int max; 2651 2652 BUG_ON(sbi->s_stripe == 0); 2653 2654 /* find first stripe-aligned block in group */ 2655 first_group_block = ext4_group_first_block_no(sb, e4b->bd_group); 2656 2657 a = first_group_block + sbi->s_stripe - 1; 2658 do_div(a, sbi->s_stripe); 2659 i = (a * sbi->s_stripe) - first_group_block; 2660 2661 stripe = EXT4_NUM_B2C(sbi, sbi->s_stripe); 2662 i = EXT4_B2C(sbi, i); 2663 while (i < EXT4_CLUSTERS_PER_GROUP(sb)) { 2664 if (!mb_test_bit(i, bitmap)) { 2665 max = mb_find_extent(e4b, i, stripe, &ex); 2666 if (max >= stripe) { 2667 ac->ac_found++; 2668 ac->ac_cX_found[ac->ac_criteria]++; 2669 ex.fe_logical = 0xDEADF00D; /* debug value */ 2670 ac->ac_b_ex = ex; 2671 ext4_mb_use_best_found(ac, e4b); 2672 break; 2673 } 2674 } 2675 i += stripe; 2676 } 2677 } 2678 2679 static void __ext4_mb_scan_group(struct ext4_allocation_context *ac) 2680 { 2681 bool is_stripe_aligned; 2682 struct ext4_sb_info *sbi; 2683 enum criteria cr = ac->ac_criteria; 2684 2685 ac->ac_groups_scanned++; 2686 if (cr == CR_POWER2_ALIGNED) 2687 return ext4_mb_simple_scan_group(ac, ac->ac_e4b); 2688 2689 sbi = EXT4_SB(ac->ac_sb); 2690 is_stripe_aligned = false; 2691 if ((sbi->s_stripe >= sbi->s_cluster_ratio) && 2692 !(ac->ac_g_ex.fe_len % EXT4_NUM_B2C(sbi, sbi->s_stripe))) 2693 is_stripe_aligned = true; 2694 2695 if ((cr == CR_GOAL_LEN_FAST || cr == CR_BEST_AVAIL_LEN) && 2696 is_stripe_aligned) 2697 ext4_mb_scan_aligned(ac, ac->ac_e4b); 2698 2699 if (ac->ac_status == AC_STATUS_CONTINUE) 2700 ext4_mb_complex_scan_group(ac, ac->ac_e4b); 2701 } 2702 2703 /* 2704 * This is also called BEFORE we load the buddy bitmap. 2705 * Returns either 1 or 0 indicating that the group is either suitable 2706 * for the allocation or not. 2707 */ 2708 static bool ext4_mb_good_group(struct ext4_allocation_context *ac, 2709 ext4_group_t group, enum criteria cr) 2710 { 2711 ext4_grpblk_t free, fragments; 2712 int flex_size = ext4_flex_bg_size(EXT4_SB(ac->ac_sb)); 2713 struct ext4_group_info *grp = ext4_get_group_info(ac->ac_sb, group); 2714 2715 BUG_ON(cr < CR_POWER2_ALIGNED || cr >= EXT4_MB_NUM_CRS); 2716 2717 if (unlikely(!grp || EXT4_MB_GRP_BBITMAP_CORRUPT(grp))) 2718 return false; 2719 2720 free = grp->bb_free; 2721 if (free == 0) 2722 return false; 2723 2724 fragments = grp->bb_fragments; 2725 if (fragments == 0) 2726 return false; 2727 2728 switch (cr) { 2729 case CR_POWER2_ALIGNED: 2730 BUG_ON(ac->ac_2order == 0); 2731 2732 /* Avoid using the first bg of a flexgroup for data files */ 2733 if ((ac->ac_flags & EXT4_MB_HINT_DATA) && 2734 (flex_size >= EXT4_FLEX_SIZE_DIR_ALLOC_SCHEME) && 2735 ((group % flex_size) == 0)) 2736 return false; 2737 2738 if (free < ac->ac_g_ex.fe_len) 2739 return false; 2740 2741 if (ac->ac_2order >= MB_NUM_ORDERS(ac->ac_sb)) 2742 return true; 2743 2744 if (grp->bb_largest_free_order < ac->ac_2order) 2745 return false; 2746 2747 return true; 2748 case CR_GOAL_LEN_FAST: 2749 case CR_BEST_AVAIL_LEN: 2750 if ((free / fragments) >= ac->ac_g_ex.fe_len) 2751 return true; 2752 break; 2753 case CR_GOAL_LEN_SLOW: 2754 if (free >= ac->ac_g_ex.fe_len) 2755 return true; 2756 break; 2757 case CR_ANY_FREE: 2758 return true; 2759 default: 2760 BUG(); 2761 } 2762 2763 return false; 2764 } 2765 2766 /* 2767 * This could return negative error code if something goes wrong 2768 * during ext4_mb_init_group(). This should not be called with 2769 * ext4_lock_group() held. 2770 * 2771 * Note: because we are conditionally operating with the group lock in 2772 * the EXT4_MB_STRICT_CHECK case, we need to fake out sparse in this 2773 * function using __acquire and __release. This means we need to be 2774 * super careful before messing with the error path handling via "goto 2775 * out"! 2776 */ 2777 static int ext4_mb_good_group_nolock(struct ext4_allocation_context *ac, 2778 ext4_group_t group, enum criteria cr) 2779 { 2780 struct ext4_group_info *grp = ext4_get_group_info(ac->ac_sb, group); 2781 struct super_block *sb = ac->ac_sb; 2782 struct ext4_sb_info *sbi = EXT4_SB(sb); 2783 bool should_lock = ac->ac_flags & EXT4_MB_STRICT_CHECK; 2784 ext4_grpblk_t free; 2785 int ret = 0; 2786 2787 if (!grp) 2788 return -EFSCORRUPTED; 2789 if (sbi->s_mb_stats) 2790 atomic64_inc(&sbi->s_bal_cX_groups_considered[ac->ac_criteria]); 2791 if (should_lock) { 2792 ext4_lock_group(sb, group); 2793 __release(ext4_group_lock_ptr(sb, group)); 2794 } 2795 free = grp->bb_free; 2796 if (free == 0) 2797 goto out; 2798 /* 2799 * In all criterias except CR_ANY_FREE we try to avoid groups that 2800 * can't possibly satisfy the full goal request due to insufficient 2801 * free blocks. 2802 */ 2803 if (cr < CR_ANY_FREE && free < ac->ac_g_ex.fe_len) 2804 goto out; 2805 if (unlikely(EXT4_MB_GRP_BBITMAP_CORRUPT(grp))) 2806 goto out; 2807 if (should_lock) { 2808 __acquire(ext4_group_lock_ptr(sb, group)); 2809 ext4_unlock_group(sb, group); 2810 } 2811 2812 /* We only do this if the grp has never been initialized */ 2813 if (unlikely(EXT4_MB_GRP_NEED_INIT(grp))) { 2814 struct ext4_group_desc *gdp = 2815 ext4_get_group_desc(sb, group, NULL); 2816 int ret; 2817 2818 /* 2819 * CR_POWER2_ALIGNED/CR_GOAL_LEN_FAST is a very optimistic 2820 * search to find large good chunks almost for free. If buddy 2821 * data is not ready, then this optimization makes no sense. But 2822 * we never skip the first block group in a flex_bg, since this 2823 * gets used for metadata block allocation, and we want to make 2824 * sure we locate metadata blocks in the first block group in 2825 * the flex_bg if possible. 2826 */ 2827 if (!ext4_mb_cr_expensive(cr) && 2828 (!sbi->s_log_groups_per_flex || 2829 ((group & ((1 << sbi->s_log_groups_per_flex) - 1)) != 0)) && 2830 !(ext4_has_group_desc_csum(sb) && 2831 (gdp->bg_flags & cpu_to_le16(EXT4_BG_BLOCK_UNINIT)))) 2832 return 0; 2833 ret = ext4_mb_init_group(sb, group, GFP_NOFS); 2834 if (ret) 2835 return ret; 2836 } 2837 2838 if (should_lock) { 2839 ext4_lock_group(sb, group); 2840 __release(ext4_group_lock_ptr(sb, group)); 2841 } 2842 ret = ext4_mb_good_group(ac, group, cr); 2843 out: 2844 if (should_lock) { 2845 __acquire(ext4_group_lock_ptr(sb, group)); 2846 ext4_unlock_group(sb, group); 2847 } 2848 return ret; 2849 } 2850 2851 /* 2852 * Start prefetching @nr block bitmaps starting at @group. 2853 * Return the next group which needs to be prefetched. 2854 */ 2855 ext4_group_t ext4_mb_prefetch(struct super_block *sb, ext4_group_t group, 2856 unsigned int nr, int *cnt) 2857 { 2858 ext4_group_t ngroups = ext4_get_groups_count(sb); 2859 struct buffer_head *bh; 2860 struct blk_plug plug; 2861 2862 blk_start_plug(&plug); 2863 while (nr-- > 0) { 2864 struct ext4_group_info *grp = ext4_get_group_info(sb, group); 2865 2866 /* 2867 * Prefetch block groups with free blocks; but don't 2868 * bother if it is marked uninitialized on disk, since 2869 * it won't require I/O to read. Also only try to 2870 * prefetch once, so we avoid getblk() call, which can 2871 * be expensive. 2872 */ 2873 if (grp && !EXT4_MB_GRP_TEST_AND_SET_READ(grp) && 2874 EXT4_MB_GRP_NEED_INIT(grp)) { 2875 struct ext4_group_desc *gdp = ext4_get_group_desc(sb, group, NULL); 2876 2877 if (gdp && ext4_free_group_clusters(sb, gdp) > 0) { 2878 bh = ext4_read_block_bitmap_nowait(sb, group, true); 2879 if (!IS_ERR_OR_NULL(bh)) { 2880 if (!buffer_uptodate(bh) && cnt) 2881 (*cnt)++; 2882 brelse(bh); 2883 } 2884 } 2885 } 2886 if (++group >= ngroups) 2887 group = 0; 2888 } 2889 blk_finish_plug(&plug); 2890 return group; 2891 } 2892 2893 /* 2894 * Batch reads of the block allocation bitmaps to get 2895 * multiple READs in flight; limit prefetching at inexpensive 2896 * CR, otherwise mballoc can spend a lot of time loading 2897 * imperfect groups 2898 */ 2899 static void ext4_mb_might_prefetch(struct ext4_allocation_context *ac, 2900 ext4_group_t group) 2901 { 2902 struct ext4_sb_info *sbi; 2903 2904 if (ac->ac_prefetch_grp != group) 2905 return; 2906 2907 sbi = EXT4_SB(ac->ac_sb); 2908 if (ext4_mb_cr_expensive(ac->ac_criteria) || 2909 ac->ac_prefetch_ios < sbi->s_mb_prefetch_limit) { 2910 unsigned int nr = sbi->s_mb_prefetch; 2911 2912 if (ext4_has_feature_flex_bg(ac->ac_sb)) { 2913 nr = 1 << sbi->s_log_groups_per_flex; 2914 nr -= group & (nr - 1); 2915 nr = umin(nr, sbi->s_mb_prefetch); 2916 } 2917 2918 ac->ac_prefetch_nr = nr; 2919 ac->ac_prefetch_grp = ext4_mb_prefetch(ac->ac_sb, group, nr, 2920 &ac->ac_prefetch_ios); 2921 } 2922 } 2923 2924 /* 2925 * Prefetching reads the block bitmap into the buffer cache; but we 2926 * need to make sure that the buddy bitmap in the page cache has been 2927 * initialized. Note that ext4_mb_init_group() will block if the I/O 2928 * is not yet completed, or indeed if it was not initiated by 2929 * ext4_mb_prefetch did not start the I/O. 2930 * 2931 * TODO: We should actually kick off the buddy bitmap setup in a work 2932 * queue when the buffer I/O is completed, so that we don't block 2933 * waiting for the block allocation bitmap read to finish when 2934 * ext4_mb_prefetch_fini is called from ext4_mb_regular_allocator(). 2935 */ 2936 void ext4_mb_prefetch_fini(struct super_block *sb, ext4_group_t group, 2937 unsigned int nr) 2938 { 2939 struct ext4_group_desc *gdp; 2940 struct ext4_group_info *grp; 2941 2942 while (nr-- > 0) { 2943 if (!group) 2944 group = ext4_get_groups_count(sb); 2945 group--; 2946 gdp = ext4_get_group_desc(sb, group, NULL); 2947 grp = ext4_get_group_info(sb, group); 2948 2949 if (grp && gdp && EXT4_MB_GRP_NEED_INIT(grp) && 2950 ext4_free_group_clusters(sb, gdp) > 0) { 2951 if (ext4_mb_init_group(sb, group, GFP_NOFS)) 2952 break; 2953 } 2954 } 2955 } 2956 2957 static int ext4_mb_scan_group(struct ext4_allocation_context *ac, 2958 ext4_group_t group) 2959 { 2960 int ret; 2961 struct super_block *sb = ac->ac_sb; 2962 enum criteria cr = ac->ac_criteria; 2963 2964 ext4_mb_might_prefetch(ac, group); 2965 2966 /* prevent unnecessary buddy loading. */ 2967 if (cr < CR_ANY_FREE && spin_is_locked(ext4_group_lock_ptr(sb, group))) 2968 return 0; 2969 2970 /* This now checks without needing the buddy folio */ 2971 ret = ext4_mb_good_group_nolock(ac, group, cr); 2972 if (ret <= 0) { 2973 if (!ac->ac_first_err) 2974 ac->ac_first_err = ret; 2975 return 0; 2976 } 2977 2978 ret = ext4_mb_load_buddy(sb, group, ac->ac_e4b); 2979 if (ret) 2980 return ret; 2981 2982 /* skip busy group */ 2983 if (cr >= CR_ANY_FREE) 2984 ext4_lock_group(sb, group); 2985 else if (!ext4_try_lock_group(sb, group)) 2986 goto out_unload; 2987 2988 /* We need to check again after locking the block group. */ 2989 if (unlikely(!ext4_mb_good_group(ac, group, cr))) 2990 goto out_unlock; 2991 2992 __ext4_mb_scan_group(ac); 2993 2994 out_unlock: 2995 ext4_unlock_group(sb, group); 2996 out_unload: 2997 ext4_mb_unload_buddy(ac->ac_e4b); 2998 return ret; 2999 } 3000 3001 static noinline_for_stack int 3002 ext4_mb_regular_allocator(struct ext4_allocation_context *ac) 3003 { 3004 ext4_group_t i; 3005 int err = 0; 3006 struct super_block *sb = ac->ac_sb; 3007 struct ext4_sb_info *sbi = EXT4_SB(sb); 3008 struct ext4_buddy e4b; 3009 3010 BUG_ON(ac->ac_status == AC_STATUS_FOUND); 3011 3012 /* first, try the goal */ 3013 err = ext4_mb_find_by_goal(ac, &e4b); 3014 if (err || ac->ac_status == AC_STATUS_FOUND) 3015 goto out; 3016 3017 if (unlikely(ac->ac_flags & EXT4_MB_HINT_GOAL_ONLY)) 3018 goto out; 3019 3020 /* 3021 * ac->ac_2order is set only if the fe_len is a power of 2 3022 * if ac->ac_2order is set we also set criteria to CR_POWER2_ALIGNED 3023 * so that we try exact allocation using buddy. 3024 */ 3025 i = fls(ac->ac_g_ex.fe_len); 3026 ac->ac_2order = 0; 3027 /* 3028 * We search using buddy data only if the order of the request 3029 * is greater than equal to the sbi_s_mb_order2_reqs 3030 * You can tune it via /sys/fs/ext4/<partition>/mb_order2_req 3031 * We also support searching for power-of-two requests only for 3032 * requests upto maximum buddy size we have constructed. 3033 */ 3034 if (i >= sbi->s_mb_order2_reqs && i <= MB_NUM_ORDERS(sb)) { 3035 if (is_power_of_2(ac->ac_g_ex.fe_len)) 3036 ac->ac_2order = array_index_nospec(i - 1, 3037 MB_NUM_ORDERS(sb)); 3038 } 3039 3040 /* if stream allocation is enabled, use global goal */ 3041 if (ac->ac_flags & EXT4_MB_STREAM_ALLOC) { 3042 int hash = (unsigned int)ac->ac_inode->i_ino % sbi->s_mb_nr_global_goals; 3043 3044 ac->ac_g_ex.fe_group = READ_ONCE(sbi->s_mb_last_groups[hash]); 3045 ac->ac_g_ex.fe_start = -1; 3046 ac->ac_flags &= ~EXT4_MB_HINT_TRY_GOAL; 3047 } 3048 3049 /* 3050 * Let's just scan groups to find more-less suitable blocks We 3051 * start with CR_GOAL_LEN_FAST, unless it is power of 2 3052 * aligned, in which case let's do that faster approach first. 3053 */ 3054 ac->ac_criteria = CR_GOAL_LEN_FAST; 3055 if (ac->ac_2order) 3056 ac->ac_criteria = CR_POWER2_ALIGNED; 3057 3058 ac->ac_e4b = &e4b; 3059 ac->ac_prefetch_ios = 0; 3060 ac->ac_first_err = 0; 3061 repeat: 3062 while (ac->ac_criteria < EXT4_MB_NUM_CRS) { 3063 err = ext4_mb_scan_groups(ac); 3064 if (err) 3065 goto out; 3066 3067 if (ac->ac_status != AC_STATUS_CONTINUE) 3068 break; 3069 } 3070 3071 if (ac->ac_b_ex.fe_len > 0 && ac->ac_status != AC_STATUS_FOUND && 3072 !(ac->ac_flags & EXT4_MB_HINT_FIRST)) { 3073 /* 3074 * We've been searching too long. Let's try to allocate 3075 * the best chunk we've found so far 3076 */ 3077 ext4_mb_try_best_found(ac, &e4b); 3078 if (ac->ac_status != AC_STATUS_FOUND) { 3079 int lost; 3080 3081 /* 3082 * Someone more lucky has already allocated it. 3083 * The only thing we can do is just take first 3084 * found block(s) 3085 */ 3086 lost = atomic_inc_return(&sbi->s_mb_lost_chunks); 3087 mb_debug(sb, "lost chunk, group: %u, start: %d, len: %d, lost: %d\n", 3088 ac->ac_b_ex.fe_group, ac->ac_b_ex.fe_start, 3089 ac->ac_b_ex.fe_len, lost); 3090 3091 ac->ac_b_ex.fe_group = 0; 3092 ac->ac_b_ex.fe_start = 0; 3093 ac->ac_b_ex.fe_len = 0; 3094 ac->ac_status = AC_STATUS_CONTINUE; 3095 ac->ac_flags |= EXT4_MB_HINT_FIRST; 3096 ac->ac_criteria = CR_ANY_FREE; 3097 goto repeat; 3098 } 3099 } 3100 3101 if (sbi->s_mb_stats && ac->ac_status == AC_STATUS_FOUND) { 3102 atomic64_inc(&sbi->s_bal_cX_hits[ac->ac_criteria]); 3103 if (ac->ac_flags & EXT4_MB_STREAM_ALLOC && 3104 ac->ac_b_ex.fe_group == ac->ac_g_ex.fe_group) 3105 atomic_inc(&sbi->s_bal_stream_goals); 3106 } 3107 out: 3108 if (!err && ac->ac_status != AC_STATUS_FOUND && ac->ac_first_err) 3109 err = ac->ac_first_err; 3110 3111 mb_debug(sb, "Best len %d, origin len %d, ac_status %u, ac_flags 0x%x, cr %d ret %d\n", 3112 ac->ac_b_ex.fe_len, ac->ac_o_ex.fe_len, ac->ac_status, 3113 ac->ac_flags, ac->ac_criteria, err); 3114 3115 if (ac->ac_prefetch_nr) 3116 ext4_mb_prefetch_fini(sb, ac->ac_prefetch_grp, ac->ac_prefetch_nr); 3117 3118 return err; 3119 } 3120 3121 static void *ext4_mb_seq_groups_start(struct seq_file *seq, loff_t *pos) 3122 { 3123 struct super_block *sb = pde_data(file_inode(seq->file)); 3124 ext4_group_t group; 3125 3126 if (*pos < 0 || *pos >= ext4_get_groups_count(sb)) 3127 return NULL; 3128 group = *pos + 1; 3129 return (void *) ((unsigned long) group); 3130 } 3131 3132 static void *ext4_mb_seq_groups_next(struct seq_file *seq, void *v, loff_t *pos) 3133 { 3134 struct super_block *sb = pde_data(file_inode(seq->file)); 3135 ext4_group_t group; 3136 3137 ++*pos; 3138 if (*pos < 0 || *pos >= ext4_get_groups_count(sb)) 3139 return NULL; 3140 group = *pos + 1; 3141 return (void *) ((unsigned long) group); 3142 } 3143 3144 static int ext4_mb_seq_groups_show(struct seq_file *seq, void *v) 3145 { 3146 struct super_block *sb = pde_data(file_inode(seq->file)); 3147 ext4_group_t group = (ext4_group_t) ((unsigned long) v); 3148 int i, err; 3149 char nbuf[16]; 3150 struct ext4_buddy e4b; 3151 struct ext4_group_info *grinfo; 3152 unsigned char blocksize_bits = min_t(unsigned char, 3153 sb->s_blocksize_bits, 3154 EXT4_MAX_BLOCK_LOG_SIZE); 3155 DEFINE_RAW_FLEX(struct ext4_group_info, sg, bb_counters, 3156 EXT4_MAX_BLOCK_LOG_SIZE + 2); 3157 3158 group--; 3159 if (group == 0) 3160 seq_puts(seq, "#group: free frags first [" 3161 " 2^0 2^1 2^2 2^3 2^4 2^5 2^6 " 3162 " 2^7 2^8 2^9 2^10 2^11 2^12 2^13 ]\n"); 3163 3164 i = (blocksize_bits + 2) * sizeof(sg->bb_counters[0]) + 3165 sizeof(struct ext4_group_info); 3166 3167 grinfo = ext4_get_group_info(sb, group); 3168 if (!grinfo) 3169 return 0; 3170 /* Load the group info in memory only if not already loaded. */ 3171 if (unlikely(EXT4_MB_GRP_NEED_INIT(grinfo))) { 3172 err = ext4_mb_load_buddy(sb, group, &e4b); 3173 if (err) { 3174 seq_printf(seq, "#%-5u: %s\n", group, ext4_decode_error(NULL, err, nbuf)); 3175 return 0; 3176 } 3177 ext4_mb_unload_buddy(&e4b); 3178 } 3179 3180 /* 3181 * We care only about free space counters in the group info and 3182 * these are safe to access even after the buddy has been unloaded 3183 */ 3184 memcpy(sg, grinfo, i); 3185 seq_printf(seq, "#%-5u: %-5u %-5u %-5u [", group, sg->bb_free, 3186 sg->bb_fragments, sg->bb_first_free); 3187 for (i = 0; i <= 13; i++) 3188 seq_printf(seq, " %-5u", i <= blocksize_bits + 1 ? 3189 sg->bb_counters[i] : 0); 3190 seq_puts(seq, " ]"); 3191 if (EXT4_MB_GRP_BBITMAP_CORRUPT(sg)) 3192 seq_puts(seq, " Block bitmap corrupted!"); 3193 seq_putc(seq, '\n'); 3194 return 0; 3195 } 3196 3197 static void ext4_mb_seq_groups_stop(struct seq_file *seq, void *v) 3198 { 3199 } 3200 3201 const struct seq_operations ext4_mb_seq_groups_ops = { 3202 .start = ext4_mb_seq_groups_start, 3203 .next = ext4_mb_seq_groups_next, 3204 .stop = ext4_mb_seq_groups_stop, 3205 .show = ext4_mb_seq_groups_show, 3206 }; 3207 3208 int ext4_seq_mb_stats_show(struct seq_file *seq, void *offset) 3209 { 3210 struct super_block *sb = seq->private; 3211 struct ext4_sb_info *sbi = EXT4_SB(sb); 3212 3213 seq_puts(seq, "mballoc:\n"); 3214 if (!sbi->s_mb_stats) { 3215 seq_puts(seq, "\tmb stats collection turned off.\n"); 3216 seq_puts( 3217 seq, 3218 "\tTo enable, please write \"1\" to sysfs file mb_stats.\n"); 3219 return 0; 3220 } 3221 seq_printf(seq, "\treqs: %u\n", atomic_read(&sbi->s_bal_reqs)); 3222 seq_printf(seq, "\tsuccess: %u\n", atomic_read(&sbi->s_bal_success)); 3223 3224 seq_printf(seq, "\tgroups_scanned: %u\n", 3225 atomic_read(&sbi->s_bal_groups_scanned)); 3226 3227 /* CR_POWER2_ALIGNED stats */ 3228 seq_puts(seq, "\tcr_p2_aligned_stats:\n"); 3229 seq_printf(seq, "\t\thits: %llu\n", 3230 atomic64_read(&sbi->s_bal_cX_hits[CR_POWER2_ALIGNED])); 3231 seq_printf( 3232 seq, "\t\tgroups_considered: %llu\n", 3233 atomic64_read( 3234 &sbi->s_bal_cX_groups_considered[CR_POWER2_ALIGNED])); 3235 seq_printf(seq, "\t\textents_scanned: %u\n", 3236 atomic_read(&sbi->s_bal_cX_ex_scanned[CR_POWER2_ALIGNED])); 3237 seq_printf(seq, "\t\tuseless_loops: %llu\n", 3238 atomic64_read(&sbi->s_bal_cX_failed[CR_POWER2_ALIGNED])); 3239 3240 /* CR_GOAL_LEN_FAST stats */ 3241 seq_puts(seq, "\tcr_goal_fast_stats:\n"); 3242 seq_printf(seq, "\t\thits: %llu\n", 3243 atomic64_read(&sbi->s_bal_cX_hits[CR_GOAL_LEN_FAST])); 3244 seq_printf(seq, "\t\tgroups_considered: %llu\n", 3245 atomic64_read( 3246 &sbi->s_bal_cX_groups_considered[CR_GOAL_LEN_FAST])); 3247 seq_printf(seq, "\t\textents_scanned: %u\n", 3248 atomic_read(&sbi->s_bal_cX_ex_scanned[CR_GOAL_LEN_FAST])); 3249 seq_printf(seq, "\t\tuseless_loops: %llu\n", 3250 atomic64_read(&sbi->s_bal_cX_failed[CR_GOAL_LEN_FAST])); 3251 3252 /* CR_BEST_AVAIL_LEN stats */ 3253 seq_puts(seq, "\tcr_best_avail_stats:\n"); 3254 seq_printf(seq, "\t\thits: %llu\n", 3255 atomic64_read(&sbi->s_bal_cX_hits[CR_BEST_AVAIL_LEN])); 3256 seq_printf( 3257 seq, "\t\tgroups_considered: %llu\n", 3258 atomic64_read( 3259 &sbi->s_bal_cX_groups_considered[CR_BEST_AVAIL_LEN])); 3260 seq_printf(seq, "\t\textents_scanned: %u\n", 3261 atomic_read(&sbi->s_bal_cX_ex_scanned[CR_BEST_AVAIL_LEN])); 3262 seq_printf(seq, "\t\tuseless_loops: %llu\n", 3263 atomic64_read(&sbi->s_bal_cX_failed[CR_BEST_AVAIL_LEN])); 3264 3265 /* CR_GOAL_LEN_SLOW stats */ 3266 seq_puts(seq, "\tcr_goal_slow_stats:\n"); 3267 seq_printf(seq, "\t\thits: %llu\n", 3268 atomic64_read(&sbi->s_bal_cX_hits[CR_GOAL_LEN_SLOW])); 3269 seq_printf(seq, "\t\tgroups_considered: %llu\n", 3270 atomic64_read( 3271 &sbi->s_bal_cX_groups_considered[CR_GOAL_LEN_SLOW])); 3272 seq_printf(seq, "\t\textents_scanned: %u\n", 3273 atomic_read(&sbi->s_bal_cX_ex_scanned[CR_GOAL_LEN_SLOW])); 3274 seq_printf(seq, "\t\tuseless_loops: %llu\n", 3275 atomic64_read(&sbi->s_bal_cX_failed[CR_GOAL_LEN_SLOW])); 3276 3277 /* CR_ANY_FREE stats */ 3278 seq_puts(seq, "\tcr_any_free_stats:\n"); 3279 seq_printf(seq, "\t\thits: %llu\n", 3280 atomic64_read(&sbi->s_bal_cX_hits[CR_ANY_FREE])); 3281 seq_printf( 3282 seq, "\t\tgroups_considered: %llu\n", 3283 atomic64_read(&sbi->s_bal_cX_groups_considered[CR_ANY_FREE])); 3284 seq_printf(seq, "\t\textents_scanned: %u\n", 3285 atomic_read(&sbi->s_bal_cX_ex_scanned[CR_ANY_FREE])); 3286 seq_printf(seq, "\t\tuseless_loops: %llu\n", 3287 atomic64_read(&sbi->s_bal_cX_failed[CR_ANY_FREE])); 3288 3289 /* Aggregates */ 3290 seq_printf(seq, "\textents_scanned: %u\n", 3291 atomic_read(&sbi->s_bal_ex_scanned)); 3292 seq_printf(seq, "\t\tgoal_hits: %u\n", atomic_read(&sbi->s_bal_goals)); 3293 seq_printf(seq, "\t\tstream_goal_hits: %u\n", 3294 atomic_read(&sbi->s_bal_stream_goals)); 3295 seq_printf(seq, "\t\tlen_goal_hits: %u\n", 3296 atomic_read(&sbi->s_bal_len_goals)); 3297 seq_printf(seq, "\t\t2^n_hits: %u\n", atomic_read(&sbi->s_bal_2orders)); 3298 seq_printf(seq, "\t\tbreaks: %u\n", atomic_read(&sbi->s_bal_breaks)); 3299 seq_printf(seq, "\t\tlost: %u\n", atomic_read(&sbi->s_mb_lost_chunks)); 3300 seq_printf(seq, "\tbuddies_generated: %u/%u\n", 3301 atomic_read(&sbi->s_mb_buddies_generated), 3302 ext4_get_groups_count(sb)); 3303 seq_printf(seq, "\tbuddies_time_used: %llu\n", 3304 atomic64_read(&sbi->s_mb_generation_time)); 3305 seq_printf(seq, "\tpreallocated: %u\n", 3306 atomic_read(&sbi->s_mb_preallocated)); 3307 seq_printf(seq, "\tdiscarded: %u\n", atomic_read(&sbi->s_mb_discarded)); 3308 return 0; 3309 } 3310 3311 static void *ext4_mb_seq_structs_summary_start(struct seq_file *seq, loff_t *pos) 3312 { 3313 struct super_block *sb = pde_data(file_inode(seq->file)); 3314 unsigned long position; 3315 3316 if (*pos < 0 || *pos >= 2*MB_NUM_ORDERS(sb)) 3317 return NULL; 3318 position = *pos + 1; 3319 return (void *) ((unsigned long) position); 3320 } 3321 3322 static void *ext4_mb_seq_structs_summary_next(struct seq_file *seq, void *v, loff_t *pos) 3323 { 3324 struct super_block *sb = pde_data(file_inode(seq->file)); 3325 unsigned long position; 3326 3327 ++*pos; 3328 if (*pos < 0 || *pos >= 2*MB_NUM_ORDERS(sb)) 3329 return NULL; 3330 position = *pos + 1; 3331 return (void *) ((unsigned long) position); 3332 } 3333 3334 static int ext4_mb_seq_structs_summary_show(struct seq_file *seq, void *v) 3335 { 3336 struct super_block *sb = pde_data(file_inode(seq->file)); 3337 struct ext4_sb_info *sbi = EXT4_SB(sb); 3338 unsigned long position = ((unsigned long) v); 3339 struct ext4_group_info *grp; 3340 unsigned int count; 3341 unsigned long idx; 3342 3343 position--; 3344 if (position >= MB_NUM_ORDERS(sb)) { 3345 position -= MB_NUM_ORDERS(sb); 3346 if (position == 0) 3347 seq_puts(seq, "avg_fragment_size_lists:\n"); 3348 3349 count = 0; 3350 xa_for_each(&sbi->s_mb_avg_fragment_size[position], idx, grp) 3351 count++; 3352 seq_printf(seq, "\tlist_order_%u_groups: %u\n", 3353 (unsigned int)position, count); 3354 return 0; 3355 } 3356 3357 if (position == 0) { 3358 seq_printf(seq, "optimize_scan: %d\n", 3359 test_opt2(sb, MB_OPTIMIZE_SCAN) ? 1 : 0); 3360 seq_puts(seq, "max_free_order_lists:\n"); 3361 } 3362 count = 0; 3363 xa_for_each(&sbi->s_mb_largest_free_orders[position], idx, grp) 3364 count++; 3365 seq_printf(seq, "\tlist_order_%u_groups: %u\n", 3366 (unsigned int)position, count); 3367 3368 return 0; 3369 } 3370 3371 static void ext4_mb_seq_structs_summary_stop(struct seq_file *seq, void *v) 3372 { 3373 } 3374 3375 const struct seq_operations ext4_mb_seq_structs_summary_ops = { 3376 .start = ext4_mb_seq_structs_summary_start, 3377 .next = ext4_mb_seq_structs_summary_next, 3378 .stop = ext4_mb_seq_structs_summary_stop, 3379 .show = ext4_mb_seq_structs_summary_show, 3380 }; 3381 3382 static struct kmem_cache *get_groupinfo_cache(int blocksize_bits) 3383 { 3384 int cache_index = blocksize_bits - EXT4_MIN_BLOCK_LOG_SIZE; 3385 struct kmem_cache *cachep = ext4_groupinfo_caches[cache_index]; 3386 3387 BUG_ON(!cachep); 3388 return cachep; 3389 } 3390 3391 /* 3392 * Allocate the top-level s_group_info array for the specified number 3393 * of groups 3394 */ 3395 int ext4_mb_alloc_groupinfo(struct super_block *sb, ext4_group_t ngroups) 3396 { 3397 struct ext4_sb_info *sbi = EXT4_SB(sb); 3398 unsigned size; 3399 struct ext4_group_info ***old_groupinfo, ***new_groupinfo; 3400 3401 size = (ngroups + EXT4_DESC_PER_BLOCK(sb) - 1) >> 3402 EXT4_DESC_PER_BLOCK_BITS(sb); 3403 if (size <= sbi->s_group_info_size) 3404 return 0; 3405 3406 size = roundup_pow_of_two(sizeof(*sbi->s_group_info) * size); 3407 new_groupinfo = kvzalloc(size, GFP_KERNEL); 3408 if (!new_groupinfo) { 3409 ext4_msg(sb, KERN_ERR, "can't allocate buddy meta group"); 3410 return -ENOMEM; 3411 } 3412 rcu_read_lock(); 3413 old_groupinfo = rcu_dereference(sbi->s_group_info); 3414 if (old_groupinfo) 3415 memcpy(new_groupinfo, old_groupinfo, 3416 sbi->s_group_info_size * sizeof(*sbi->s_group_info)); 3417 rcu_read_unlock(); 3418 rcu_assign_pointer(sbi->s_group_info, new_groupinfo); 3419 sbi->s_group_info_size = size / sizeof(*sbi->s_group_info); 3420 if (old_groupinfo) 3421 ext4_kvfree_array_rcu(old_groupinfo); 3422 ext4_debug("allocated s_groupinfo array for %d meta_bg's\n", 3423 sbi->s_group_info_size); 3424 return 0; 3425 } 3426 3427 /* Create and initialize ext4_group_info data for the given group. */ 3428 int ext4_mb_add_groupinfo(struct super_block *sb, ext4_group_t group, 3429 struct ext4_group_desc *desc) 3430 { 3431 int i; 3432 int metalen = 0; 3433 int idx = group >> EXT4_DESC_PER_BLOCK_BITS(sb); 3434 struct ext4_sb_info *sbi = EXT4_SB(sb); 3435 struct ext4_group_info **meta_group_info; 3436 struct kmem_cache *cachep = get_groupinfo_cache(sb->s_blocksize_bits); 3437 3438 /* 3439 * First check if this group is the first of a reserved block. 3440 * If it's true, we have to allocate a new table of pointers 3441 * to ext4_group_info structures 3442 */ 3443 if (group % EXT4_DESC_PER_BLOCK(sb) == 0) { 3444 metalen = sizeof(*meta_group_info) << 3445 EXT4_DESC_PER_BLOCK_BITS(sb); 3446 meta_group_info = kmalloc(metalen, GFP_NOFS); 3447 if (meta_group_info == NULL) { 3448 ext4_msg(sb, KERN_ERR, "can't allocate mem " 3449 "for a buddy group"); 3450 return -ENOMEM; 3451 } 3452 rcu_read_lock(); 3453 rcu_dereference(sbi->s_group_info)[idx] = meta_group_info; 3454 rcu_read_unlock(); 3455 } 3456 3457 meta_group_info = sbi_array_rcu_deref(sbi, s_group_info, idx); 3458 i = group & (EXT4_DESC_PER_BLOCK(sb) - 1); 3459 3460 meta_group_info[i] = kmem_cache_zalloc(cachep, GFP_NOFS); 3461 if (meta_group_info[i] == NULL) { 3462 ext4_msg(sb, KERN_ERR, "can't allocate buddy mem"); 3463 goto exit_group_info; 3464 } 3465 set_bit(EXT4_GROUP_INFO_NEED_INIT_BIT, 3466 &(meta_group_info[i]->bb_state)); 3467 3468 /* 3469 * initialize bb_free to be able to skip 3470 * empty groups without initialization 3471 */ 3472 if (ext4_has_group_desc_csum(sb) && 3473 (desc->bg_flags & cpu_to_le16(EXT4_BG_BLOCK_UNINIT))) { 3474 meta_group_info[i]->bb_free = 3475 ext4_free_clusters_after_init(sb, group, desc); 3476 } else { 3477 meta_group_info[i]->bb_free = 3478 ext4_free_group_clusters(sb, desc); 3479 } 3480 3481 INIT_LIST_HEAD(&meta_group_info[i]->bb_prealloc_list); 3482 init_rwsem(&meta_group_info[i]->alloc_sem); 3483 meta_group_info[i]->bb_free_root = RB_ROOT; 3484 meta_group_info[i]->bb_largest_free_order = -1; /* uninit */ 3485 meta_group_info[i]->bb_avg_fragment_size_order = -1; /* uninit */ 3486 meta_group_info[i]->bb_group = group; 3487 3488 mb_group_bb_bitmap_alloc(sb, meta_group_info[i], group); 3489 return 0; 3490 3491 exit_group_info: 3492 /* If a meta_group_info table has been allocated, release it now */ 3493 if (group % EXT4_DESC_PER_BLOCK(sb) == 0) { 3494 struct ext4_group_info ***group_info; 3495 3496 rcu_read_lock(); 3497 group_info = rcu_dereference(sbi->s_group_info); 3498 kfree(group_info[idx]); 3499 group_info[idx] = NULL; 3500 rcu_read_unlock(); 3501 } 3502 return -ENOMEM; 3503 } /* ext4_mb_add_groupinfo */ 3504 3505 static int ext4_mb_init_backend(struct super_block *sb) 3506 { 3507 ext4_group_t ngroups = ext4_get_groups_count(sb); 3508 ext4_group_t i; 3509 struct ext4_sb_info *sbi = EXT4_SB(sb); 3510 int err; 3511 struct ext4_group_desc *desc; 3512 struct ext4_group_info ***group_info; 3513 struct kmem_cache *cachep; 3514 3515 err = ext4_mb_alloc_groupinfo(sb, ngroups); 3516 if (err) 3517 return err; 3518 3519 sbi->s_buddy_cache = new_inode(sb); 3520 if (sbi->s_buddy_cache == NULL) { 3521 ext4_msg(sb, KERN_ERR, "can't get new inode"); 3522 goto err_freesgi; 3523 } 3524 /* To avoid potentially colliding with an valid on-disk inode number, 3525 * use EXT4_BAD_INO for the buddy cache inode number. This inode is 3526 * not in the inode hash, so it should never be found by iget(), but 3527 * this will avoid confusion if it ever shows up during debugging. */ 3528 sbi->s_buddy_cache->i_ino = EXT4_BAD_INO; 3529 EXT4_I(sbi->s_buddy_cache)->i_disksize = 0; 3530 ext4_set_inode_mapping_order(sbi->s_buddy_cache); 3531 3532 for (i = 0; i < ngroups; i++) { 3533 cond_resched(); 3534 desc = ext4_get_group_desc(sb, i, NULL); 3535 if (desc == NULL) { 3536 ext4_msg(sb, KERN_ERR, "can't read descriptor %u", i); 3537 goto err_freebuddy; 3538 } 3539 if (ext4_mb_add_groupinfo(sb, i, desc) != 0) 3540 goto err_freebuddy; 3541 } 3542 3543 if (ext4_has_feature_flex_bg(sb)) { 3544 /* a single flex group is supposed to be read by a single IO. 3545 * 2 ^ s_log_groups_per_flex != UINT_MAX as s_mb_prefetch is 3546 * unsigned integer, so the maximum shift is 32. 3547 */ 3548 if (sbi->s_es->s_log_groups_per_flex >= 32) { 3549 ext4_msg(sb, KERN_ERR, "too many log groups per flexible block group"); 3550 goto err_freebuddy; 3551 } 3552 sbi->s_mb_prefetch = min_t(uint, 1 << sbi->s_es->s_log_groups_per_flex, 3553 BLK_MAX_SEGMENT_SIZE >> (sb->s_blocksize_bits - 9)); 3554 sbi->s_mb_prefetch *= 8; /* 8 prefetch IOs in flight at most */ 3555 } else { 3556 sbi->s_mb_prefetch = 32; 3557 } 3558 if (sbi->s_mb_prefetch > ext4_get_groups_count(sb)) 3559 sbi->s_mb_prefetch = ext4_get_groups_count(sb); 3560 /* 3561 * now many real IOs to prefetch within a single allocation at 3562 * CR_POWER2_ALIGNED. Given CR_POWER2_ALIGNED is an CPU-related 3563 * optimization we shouldn't try to load too many groups, at some point 3564 * we should start to use what we've got in memory. 3565 * with an average random access time 5ms, it'd take a second to get 3566 * 200 groups (* N with flex_bg), so let's make this limit 4 3567 */ 3568 sbi->s_mb_prefetch_limit = sbi->s_mb_prefetch * 4; 3569 if (sbi->s_mb_prefetch_limit > ext4_get_groups_count(sb)) 3570 sbi->s_mb_prefetch_limit = ext4_get_groups_count(sb); 3571 3572 return 0; 3573 3574 err_freebuddy: 3575 cachep = get_groupinfo_cache(sb->s_blocksize_bits); 3576 while (i-- > 0) { 3577 struct ext4_group_info *grp = ext4_get_group_info(sb, i); 3578 3579 if (grp) 3580 kmem_cache_free(cachep, grp); 3581 } 3582 i = sbi->s_group_info_size; 3583 rcu_read_lock(); 3584 group_info = rcu_dereference(sbi->s_group_info); 3585 while (i-- > 0) 3586 kfree(group_info[i]); 3587 rcu_read_unlock(); 3588 iput(sbi->s_buddy_cache); 3589 err_freesgi: 3590 kvfree(rcu_access_pointer(sbi->s_group_info)); 3591 return -ENOMEM; 3592 } 3593 3594 static void ext4_groupinfo_destroy_slabs(void) 3595 { 3596 int i; 3597 3598 for (i = 0; i < NR_GRPINFO_CACHES; i++) { 3599 kmem_cache_destroy(ext4_groupinfo_caches[i]); 3600 ext4_groupinfo_caches[i] = NULL; 3601 } 3602 } 3603 3604 static int ext4_groupinfo_create_slab(size_t size) 3605 { 3606 static DEFINE_MUTEX(ext4_grpinfo_slab_create_mutex); 3607 int slab_size; 3608 int blocksize_bits = order_base_2(size); 3609 int cache_index = blocksize_bits - EXT4_MIN_BLOCK_LOG_SIZE; 3610 struct kmem_cache *cachep; 3611 3612 if (cache_index >= NR_GRPINFO_CACHES) 3613 return -EINVAL; 3614 3615 if (unlikely(cache_index < 0)) 3616 cache_index = 0; 3617 3618 mutex_lock(&ext4_grpinfo_slab_create_mutex); 3619 if (ext4_groupinfo_caches[cache_index]) { 3620 mutex_unlock(&ext4_grpinfo_slab_create_mutex); 3621 return 0; /* Already created */ 3622 } 3623 3624 slab_size = offsetof(struct ext4_group_info, 3625 bb_counters[blocksize_bits + 2]); 3626 3627 cachep = kmem_cache_create(ext4_groupinfo_slab_names[cache_index], 3628 slab_size, 0, SLAB_RECLAIM_ACCOUNT, 3629 NULL); 3630 3631 ext4_groupinfo_caches[cache_index] = cachep; 3632 3633 mutex_unlock(&ext4_grpinfo_slab_create_mutex); 3634 if (!cachep) { 3635 printk(KERN_EMERG 3636 "EXT4-fs: no memory for groupinfo slab cache\n"); 3637 return -ENOMEM; 3638 } 3639 3640 return 0; 3641 } 3642 3643 static void ext4_discard_work(struct work_struct *work) 3644 { 3645 struct ext4_sb_info *sbi = container_of(work, 3646 struct ext4_sb_info, s_discard_work); 3647 struct super_block *sb = sbi->s_sb; 3648 struct ext4_free_data *fd, *nfd; 3649 struct ext4_buddy e4b; 3650 LIST_HEAD(discard_list); 3651 ext4_group_t grp, load_grp; 3652 int err = 0; 3653 3654 spin_lock(&sbi->s_md_lock); 3655 list_splice_init(&sbi->s_discard_list, &discard_list); 3656 spin_unlock(&sbi->s_md_lock); 3657 3658 load_grp = UINT_MAX; 3659 list_for_each_entry_safe(fd, nfd, &discard_list, efd_list) { 3660 /* 3661 * If filesystem is umounting or no memory or suffering 3662 * from no space, give up the discard 3663 */ 3664 if ((sb->s_flags & SB_ACTIVE) && !err && 3665 !atomic_read(&sbi->s_retry_alloc_pending)) { 3666 grp = fd->efd_group; 3667 if (grp != load_grp) { 3668 if (load_grp != UINT_MAX) 3669 ext4_mb_unload_buddy(&e4b); 3670 3671 err = ext4_mb_load_buddy(sb, grp, &e4b); 3672 if (err) { 3673 kmem_cache_free(ext4_free_data_cachep, fd); 3674 load_grp = UINT_MAX; 3675 continue; 3676 } else { 3677 load_grp = grp; 3678 } 3679 } 3680 3681 ext4_lock_group(sb, grp); 3682 ext4_try_to_trim_range(sb, &e4b, fd->efd_start_cluster, 3683 fd->efd_start_cluster + fd->efd_count - 1, 1); 3684 ext4_unlock_group(sb, grp); 3685 } 3686 kmem_cache_free(ext4_free_data_cachep, fd); 3687 } 3688 3689 if (load_grp != UINT_MAX) 3690 ext4_mb_unload_buddy(&e4b); 3691 } 3692 3693 static inline void ext4_mb_avg_fragment_size_destroy(struct ext4_sb_info *sbi) 3694 { 3695 if (!sbi->s_mb_avg_fragment_size) 3696 return; 3697 3698 for (int i = 0; i < MB_NUM_ORDERS(sbi->s_sb); i++) 3699 xa_destroy(&sbi->s_mb_avg_fragment_size[i]); 3700 3701 kfree(sbi->s_mb_avg_fragment_size); 3702 sbi->s_mb_avg_fragment_size = NULL; 3703 } 3704 3705 static inline void ext4_mb_largest_free_orders_destroy(struct ext4_sb_info *sbi) 3706 { 3707 if (!sbi->s_mb_largest_free_orders) 3708 return; 3709 3710 for (int i = 0; i < MB_NUM_ORDERS(sbi->s_sb); i++) 3711 xa_destroy(&sbi->s_mb_largest_free_orders[i]); 3712 3713 kfree(sbi->s_mb_largest_free_orders); 3714 sbi->s_mb_largest_free_orders = NULL; 3715 } 3716 3717 int ext4_mb_init(struct super_block *sb) 3718 { 3719 struct ext4_sb_info *sbi = EXT4_SB(sb); 3720 unsigned i, j; 3721 unsigned offset, offset_incr; 3722 unsigned max; 3723 int ret; 3724 3725 i = MB_NUM_ORDERS(sb) * sizeof(*sbi->s_mb_offsets); 3726 3727 sbi->s_mb_offsets = kmalloc(i, GFP_KERNEL); 3728 if (sbi->s_mb_offsets == NULL) { 3729 ret = -ENOMEM; 3730 goto out; 3731 } 3732 3733 i = MB_NUM_ORDERS(sb) * sizeof(*sbi->s_mb_maxs); 3734 sbi->s_mb_maxs = kmalloc(i, GFP_KERNEL); 3735 if (sbi->s_mb_maxs == NULL) { 3736 ret = -ENOMEM; 3737 goto out; 3738 } 3739 3740 ret = ext4_groupinfo_create_slab(sb->s_blocksize); 3741 if (ret < 0) 3742 goto out; 3743 3744 /* order 0 is regular bitmap */ 3745 sbi->s_mb_maxs[0] = sb->s_blocksize << 3; 3746 sbi->s_mb_offsets[0] = 0; 3747 3748 i = 1; 3749 offset = 0; 3750 offset_incr = 1 << (sb->s_blocksize_bits - 1); 3751 max = sb->s_blocksize << 2; 3752 do { 3753 sbi->s_mb_offsets[i] = offset; 3754 sbi->s_mb_maxs[i] = max; 3755 offset += offset_incr; 3756 offset_incr = offset_incr >> 1; 3757 max = max >> 1; 3758 i++; 3759 } while (i < MB_NUM_ORDERS(sb)); 3760 3761 sbi->s_mb_avg_fragment_size = 3762 kmalloc_objs(struct xarray, MB_NUM_ORDERS(sb)); 3763 if (!sbi->s_mb_avg_fragment_size) { 3764 ret = -ENOMEM; 3765 goto out; 3766 } 3767 for (i = 0; i < MB_NUM_ORDERS(sb); i++) 3768 xa_init(&sbi->s_mb_avg_fragment_size[i]); 3769 3770 sbi->s_mb_largest_free_orders = 3771 kmalloc_objs(struct xarray, MB_NUM_ORDERS(sb)); 3772 if (!sbi->s_mb_largest_free_orders) { 3773 ret = -ENOMEM; 3774 goto out; 3775 } 3776 for (i = 0; i < MB_NUM_ORDERS(sb); i++) 3777 xa_init(&sbi->s_mb_largest_free_orders[i]); 3778 3779 spin_lock_init(&sbi->s_md_lock); 3780 atomic_set(&sbi->s_mb_free_pending, 0); 3781 INIT_LIST_HEAD(&sbi->s_freed_data_list[0]); 3782 INIT_LIST_HEAD(&sbi->s_freed_data_list[1]); 3783 INIT_LIST_HEAD(&sbi->s_discard_list); 3784 INIT_WORK(&sbi->s_discard_work, ext4_discard_work); 3785 atomic_set(&sbi->s_retry_alloc_pending, 0); 3786 3787 sbi->s_mb_max_to_scan = MB_DEFAULT_MAX_TO_SCAN; 3788 sbi->s_mb_min_to_scan = MB_DEFAULT_MIN_TO_SCAN; 3789 sbi->s_mb_stats = MB_DEFAULT_STATS; 3790 sbi->s_mb_stream_request = MB_DEFAULT_STREAM_THRESHOLD; 3791 sbi->s_mb_order2_reqs = MB_DEFAULT_ORDER2_REQS; 3792 sbi->s_mb_best_avail_max_trim_order = MB_DEFAULT_BEST_AVAIL_TRIM_ORDER; 3793 3794 /* 3795 * The default group preallocation is 512, which for 4k block 3796 * sizes translates to 2 megabytes. However for bigalloc file 3797 * systems, this is probably too big (i.e, if the cluster size 3798 * is 1 megabyte, then group preallocation size becomes half a 3799 * gigabyte!). As a default, we will keep a two megabyte 3800 * group pralloc size for cluster sizes up to 64k, and after 3801 * that, we will force a minimum group preallocation size of 3802 * 32 clusters. This translates to 8 megs when the cluster 3803 * size is 256k, and 32 megs when the cluster size is 1 meg, 3804 * which seems reasonable as a default. 3805 */ 3806 sbi->s_mb_group_prealloc = max(MB_DEFAULT_GROUP_PREALLOC >> 3807 sbi->s_cluster_bits, 32); 3808 /* 3809 * If there is a s_stripe > 1, then we set the s_mb_group_prealloc 3810 * to the lowest multiple of s_stripe which is bigger than 3811 * the s_mb_group_prealloc as determined above. We want 3812 * the preallocation size to be an exact multiple of the 3813 * RAID stripe size so that preallocations don't fragment 3814 * the stripes. 3815 */ 3816 if (sbi->s_stripe > 1) { 3817 sbi->s_mb_group_prealloc = roundup( 3818 sbi->s_mb_group_prealloc, EXT4_NUM_B2C(sbi, sbi->s_stripe)); 3819 } 3820 3821 sbi->s_mb_nr_global_goals = umin(num_possible_cpus(), 3822 DIV_ROUND_UP(sbi->s_groups_count, 4)); 3823 sbi->s_mb_last_groups = kzalloc_objs(ext4_group_t, 3824 sbi->s_mb_nr_global_goals); 3825 if (sbi->s_mb_last_groups == NULL) { 3826 ret = -ENOMEM; 3827 goto out; 3828 } 3829 3830 sbi->s_locality_groups = alloc_percpu(struct ext4_locality_group); 3831 if (sbi->s_locality_groups == NULL) { 3832 ret = -ENOMEM; 3833 goto out_free_last_groups; 3834 } 3835 for_each_possible_cpu(i) { 3836 struct ext4_locality_group *lg; 3837 lg = per_cpu_ptr(sbi->s_locality_groups, i); 3838 mutex_init(&lg->lg_mutex); 3839 for (j = 0; j < PREALLOC_TB_SIZE; j++) 3840 INIT_LIST_HEAD(&lg->lg_prealloc_list[j]); 3841 spin_lock_init(&lg->lg_prealloc_lock); 3842 } 3843 3844 if (!bdev_rot(sb->s_bdev)) 3845 sbi->s_mb_max_linear_groups = 0; 3846 else 3847 sbi->s_mb_max_linear_groups = MB_DEFAULT_LINEAR_LIMIT; 3848 /* init file for buddy data */ 3849 ret = ext4_mb_init_backend(sb); 3850 if (ret != 0) 3851 goto out_free_locality_groups; 3852 3853 return 0; 3854 3855 out_free_locality_groups: 3856 free_percpu(sbi->s_locality_groups); 3857 sbi->s_locality_groups = NULL; 3858 out_free_last_groups: 3859 kfree(sbi->s_mb_last_groups); 3860 sbi->s_mb_last_groups = NULL; 3861 out: 3862 ext4_mb_avg_fragment_size_destroy(sbi); 3863 ext4_mb_largest_free_orders_destroy(sbi); 3864 kfree(sbi->s_mb_offsets); 3865 sbi->s_mb_offsets = NULL; 3866 kfree(sbi->s_mb_maxs); 3867 sbi->s_mb_maxs = NULL; 3868 return ret; 3869 } 3870 3871 /* need to called with the ext4 group lock held */ 3872 static int ext4_mb_cleanup_pa(struct ext4_group_info *grp) 3873 { 3874 struct ext4_prealloc_space *pa; 3875 struct list_head *cur, *tmp; 3876 int count = 0; 3877 3878 list_for_each_safe(cur, tmp, &grp->bb_prealloc_list) { 3879 pa = list_entry(cur, struct ext4_prealloc_space, pa_group_list); 3880 list_del(&pa->pa_group_list); 3881 count++; 3882 kmem_cache_free(ext4_pspace_cachep, pa); 3883 } 3884 return count; 3885 } 3886 3887 void ext4_mb_release(struct super_block *sb) 3888 { 3889 ext4_group_t ngroups = ext4_get_groups_count(sb); 3890 ext4_group_t i; 3891 int num_meta_group_infos; 3892 struct ext4_group_info *grinfo, ***group_info; 3893 struct ext4_sb_info *sbi = EXT4_SB(sb); 3894 struct kmem_cache *cachep = get_groupinfo_cache(sb->s_blocksize_bits); 3895 int count; 3896 3897 /* 3898 * wait the discard work to drain all of ext4_free_data 3899 */ 3900 flush_work(&sbi->s_discard_work); 3901 WARN_ON_ONCE(!list_empty(&sbi->s_discard_list)); 3902 3903 group_info = rcu_access_pointer(sbi->s_group_info); 3904 if (group_info) { 3905 for (i = 0; i < ngroups; i++) { 3906 cond_resched(); 3907 grinfo = ext4_get_group_info(sb, i); 3908 if (!grinfo) 3909 continue; 3910 mb_group_bb_bitmap_free(grinfo); 3911 ext4_lock_group(sb, i); 3912 count = ext4_mb_cleanup_pa(grinfo); 3913 if (count) 3914 mb_debug(sb, "mballoc: %d PAs left\n", 3915 count); 3916 ext4_unlock_group(sb, i); 3917 kmem_cache_free(cachep, grinfo); 3918 } 3919 num_meta_group_infos = (ngroups + 3920 EXT4_DESC_PER_BLOCK(sb) - 1) >> 3921 EXT4_DESC_PER_BLOCK_BITS(sb); 3922 for (i = 0; i < num_meta_group_infos; i++) 3923 kfree(group_info[i]); 3924 kvfree(group_info); 3925 } 3926 ext4_mb_avg_fragment_size_destroy(sbi); 3927 ext4_mb_largest_free_orders_destroy(sbi); 3928 kfree(sbi->s_mb_offsets); 3929 kfree(sbi->s_mb_maxs); 3930 iput(sbi->s_buddy_cache); 3931 if (sbi->s_mb_stats) { 3932 ext4_msg(sb, KERN_INFO, 3933 "mballoc: %u blocks %u reqs (%u success)", 3934 atomic_read(&sbi->s_bal_allocated), 3935 atomic_read(&sbi->s_bal_reqs), 3936 atomic_read(&sbi->s_bal_success)); 3937 ext4_msg(sb, KERN_INFO, 3938 "mballoc: %u extents scanned, %u groups scanned, %u goal hits, " 3939 "%u 2^N hits, %u breaks, %u lost", 3940 atomic_read(&sbi->s_bal_ex_scanned), 3941 atomic_read(&sbi->s_bal_groups_scanned), 3942 atomic_read(&sbi->s_bal_goals), 3943 atomic_read(&sbi->s_bal_2orders), 3944 atomic_read(&sbi->s_bal_breaks), 3945 atomic_read(&sbi->s_mb_lost_chunks)); 3946 ext4_msg(sb, KERN_INFO, 3947 "mballoc: %u generated and it took %llu", 3948 atomic_read(&sbi->s_mb_buddies_generated), 3949 atomic64_read(&sbi->s_mb_generation_time)); 3950 ext4_msg(sb, KERN_INFO, 3951 "mballoc: %u preallocated, %u discarded", 3952 atomic_read(&sbi->s_mb_preallocated), 3953 atomic_read(&sbi->s_mb_discarded)); 3954 } 3955 3956 free_percpu(sbi->s_locality_groups); 3957 kfree(sbi->s_mb_last_groups); 3958 } 3959 3960 static inline int ext4_issue_discard(struct super_block *sb, 3961 ext4_group_t block_group, ext4_grpblk_t cluster, int count) 3962 { 3963 ext4_fsblk_t discard_block; 3964 3965 discard_block = (EXT4_C2B(EXT4_SB(sb), cluster) + 3966 ext4_group_first_block_no(sb, block_group)); 3967 count = EXT4_C2B(EXT4_SB(sb), count); 3968 trace_ext4_discard_blocks(sb, 3969 (unsigned long long) discard_block, count); 3970 3971 return sb_issue_discard(sb, discard_block, count, GFP_NOFS, 0); 3972 } 3973 3974 static void ext4_free_data_in_buddy(struct super_block *sb, 3975 struct ext4_free_data *entry) 3976 { 3977 struct ext4_buddy e4b; 3978 struct ext4_group_info *db; 3979 int err, count = 0; 3980 3981 mb_debug(sb, "gonna free %u blocks in group %u (0x%p):", 3982 entry->efd_count, entry->efd_group, entry); 3983 3984 err = ext4_mb_load_buddy(sb, entry->efd_group, &e4b); 3985 /* we expect to find existing buddy because it's pinned */ 3986 BUG_ON(err != 0); 3987 3988 atomic_sub(entry->efd_count, &EXT4_SB(sb)->s_mb_free_pending); 3989 db = e4b.bd_info; 3990 /* there are blocks to put in buddy to make them really free */ 3991 count += entry->efd_count; 3992 ext4_lock_group(sb, entry->efd_group); 3993 /* Take it out of per group rb tree */ 3994 rb_erase(&entry->efd_node, &(db->bb_free_root)); 3995 mb_free_blocks(NULL, &e4b, entry->efd_start_cluster, entry->efd_count); 3996 3997 /* 3998 * Clear the trimmed flag for the group so that the next 3999 * ext4_trim_fs can trim it. 4000 */ 4001 EXT4_MB_GRP_CLEAR_TRIMMED(db); 4002 4003 if (!db->bb_free_root.rb_node) { 4004 /* No more items in the per group rb tree 4005 * balance refcounts from ext4_mb_free_metadata() 4006 */ 4007 folio_put(e4b.bd_buddy_folio); 4008 folio_put(e4b.bd_bitmap_folio); 4009 } 4010 ext4_unlock_group(sb, entry->efd_group); 4011 ext4_mb_unload_buddy(&e4b); 4012 4013 mb_debug(sb, "freed %d blocks in 1 structures\n", count); 4014 } 4015 4016 /* 4017 * This function is called by the jbd2 layer once the commit has finished, 4018 * so we know we can free the blocks that were released with that commit. 4019 */ 4020 void ext4_process_freed_data(struct super_block *sb, tid_t commit_tid) 4021 { 4022 struct ext4_sb_info *sbi = EXT4_SB(sb); 4023 struct ext4_free_data *entry, *tmp; 4024 LIST_HEAD(freed_data_list); 4025 struct list_head *s_freed_head = &sbi->s_freed_data_list[commit_tid & 1]; 4026 bool wake; 4027 4028 list_replace_init(s_freed_head, &freed_data_list); 4029 4030 list_for_each_entry(entry, &freed_data_list, efd_list) 4031 ext4_free_data_in_buddy(sb, entry); 4032 4033 if (test_opt(sb, DISCARD)) { 4034 spin_lock(&sbi->s_md_lock); 4035 wake = list_empty(&sbi->s_discard_list); 4036 list_splice_tail(&freed_data_list, &sbi->s_discard_list); 4037 spin_unlock(&sbi->s_md_lock); 4038 if (wake) 4039 queue_work(system_dfl_wq, &sbi->s_discard_work); 4040 } else { 4041 list_for_each_entry_safe(entry, tmp, &freed_data_list, efd_list) 4042 kmem_cache_free(ext4_free_data_cachep, entry); 4043 } 4044 } 4045 4046 int __init ext4_init_mballoc(void) 4047 { 4048 ext4_pspace_cachep = KMEM_CACHE(ext4_prealloc_space, 4049 SLAB_RECLAIM_ACCOUNT); 4050 if (ext4_pspace_cachep == NULL) 4051 goto out; 4052 4053 ext4_ac_cachep = KMEM_CACHE(ext4_allocation_context, 4054 SLAB_RECLAIM_ACCOUNT); 4055 if (ext4_ac_cachep == NULL) 4056 goto out_pa_free; 4057 4058 ext4_free_data_cachep = KMEM_CACHE(ext4_free_data, 4059 SLAB_RECLAIM_ACCOUNT); 4060 if (ext4_free_data_cachep == NULL) 4061 goto out_ac_free; 4062 4063 return 0; 4064 4065 out_ac_free: 4066 kmem_cache_destroy(ext4_ac_cachep); 4067 out_pa_free: 4068 kmem_cache_destroy(ext4_pspace_cachep); 4069 out: 4070 return -ENOMEM; 4071 } 4072 4073 void ext4_exit_mballoc(void) 4074 { 4075 /* 4076 * Wait for completion of call_rcu()'s on ext4_pspace_cachep 4077 * before destroying the slab cache. 4078 */ 4079 rcu_barrier(); 4080 kmem_cache_destroy(ext4_pspace_cachep); 4081 kmem_cache_destroy(ext4_ac_cachep); 4082 kmem_cache_destroy(ext4_free_data_cachep); 4083 ext4_groupinfo_destroy_slabs(); 4084 } 4085 4086 #define EXT4_MB_BITMAP_MARKED_CHECK 0x0001 4087 #define EXT4_MB_SYNC_UPDATE 0x0002 4088 int 4089 ext4_mb_mark_context(handle_t *handle, struct super_block *sb, bool state, 4090 ext4_group_t group, ext4_grpblk_t blkoff, 4091 ext4_grpblk_t len, int flags, ext4_grpblk_t *ret_changed) 4092 { 4093 struct ext4_sb_info *sbi = EXT4_SB(sb); 4094 struct buffer_head *bitmap_bh = NULL; 4095 struct ext4_group_desc *gdp; 4096 struct buffer_head *gdp_bh; 4097 int err; 4098 unsigned int i, already, changed = len; 4099 4100 KUNIT_STATIC_STUB_REDIRECT(ext4_mb_mark_context, 4101 handle, sb, state, group, blkoff, len, 4102 flags, ret_changed); 4103 4104 if (ret_changed) 4105 *ret_changed = 0; 4106 bitmap_bh = ext4_read_block_bitmap(sb, group); 4107 if (IS_ERR(bitmap_bh)) 4108 return PTR_ERR(bitmap_bh); 4109 4110 if (handle) { 4111 BUFFER_TRACE(bitmap_bh, "getting write access"); 4112 err = ext4_journal_get_write_access(handle, sb, bitmap_bh, 4113 EXT4_JTR_NONE); 4114 if (err) 4115 goto out_err; 4116 } 4117 4118 err = -EIO; 4119 gdp = ext4_get_group_desc(sb, group, &gdp_bh); 4120 if (!gdp) 4121 goto out_err; 4122 4123 if (handle) { 4124 BUFFER_TRACE(gdp_bh, "get_write_access"); 4125 err = ext4_journal_get_write_access(handle, sb, gdp_bh, 4126 EXT4_JTR_NONE); 4127 if (err) 4128 goto out_err; 4129 } 4130 4131 ext4_lock_group(sb, group); 4132 if (ext4_has_group_desc_csum(sb) && 4133 (gdp->bg_flags & cpu_to_le16(EXT4_BG_BLOCK_UNINIT))) { 4134 gdp->bg_flags &= cpu_to_le16(~EXT4_BG_BLOCK_UNINIT); 4135 ext4_free_group_clusters_set(sb, gdp, 4136 ext4_free_clusters_after_init(sb, group, gdp)); 4137 } 4138 4139 if (flags & EXT4_MB_BITMAP_MARKED_CHECK) { 4140 already = 0; 4141 for (i = 0; i < len; i++) 4142 if (mb_test_bit(blkoff + i, bitmap_bh->b_data) == 4143 state) 4144 already++; 4145 changed = len - already; 4146 } 4147 4148 if (state) { 4149 mb_set_bits(bitmap_bh->b_data, blkoff, len); 4150 ext4_free_group_clusters_set(sb, gdp, 4151 ext4_free_group_clusters(sb, gdp) - changed); 4152 } else { 4153 mb_clear_bits(bitmap_bh->b_data, blkoff, len); 4154 ext4_free_group_clusters_set(sb, gdp, 4155 ext4_free_group_clusters(sb, gdp) + changed); 4156 } 4157 4158 ext4_block_bitmap_csum_set(sb, gdp, bitmap_bh); 4159 ext4_group_desc_csum_set(sb, group, gdp); 4160 ext4_unlock_group(sb, group); 4161 if (ret_changed) 4162 *ret_changed = changed; 4163 4164 if (sbi->s_log_groups_per_flex) { 4165 ext4_group_t flex_group = ext4_flex_group(sbi, group); 4166 struct flex_groups *fg = sbi_array_rcu_deref(sbi, 4167 s_flex_groups, flex_group); 4168 4169 if (state) 4170 atomic64_sub(changed, &fg->free_clusters); 4171 else 4172 atomic64_add(changed, &fg->free_clusters); 4173 } 4174 4175 err = ext4_handle_dirty_metadata(handle, NULL, bitmap_bh); 4176 if (err) 4177 goto out_err; 4178 err = ext4_handle_dirty_metadata(handle, NULL, gdp_bh); 4179 if (err) 4180 goto out_err; 4181 4182 if (flags & EXT4_MB_SYNC_UPDATE) { 4183 sync_dirty_buffer(bitmap_bh); 4184 sync_dirty_buffer(gdp_bh); 4185 } 4186 4187 out_err: 4188 brelse(bitmap_bh); 4189 return err; 4190 } 4191 4192 /* 4193 * Check quota and mark chosen space (ac->ac_b_ex) non-free in bitmaps 4194 * Returns 0 if success or error code 4195 */ 4196 static noinline_for_stack int 4197 ext4_mb_mark_diskspace_used(struct ext4_allocation_context *ac, handle_t *handle) 4198 { 4199 struct ext4_group_desc *gdp; 4200 struct ext4_sb_info *sbi; 4201 struct super_block *sb; 4202 ext4_fsblk_t block; 4203 int err, len; 4204 int flags = 0; 4205 ext4_grpblk_t changed; 4206 4207 BUG_ON(ac->ac_status != AC_STATUS_FOUND); 4208 BUG_ON(ac->ac_b_ex.fe_len <= 0); 4209 4210 sb = ac->ac_sb; 4211 sbi = EXT4_SB(sb); 4212 4213 gdp = ext4_get_group_desc(sb, ac->ac_b_ex.fe_group, NULL); 4214 if (!gdp) 4215 return -EIO; 4216 ext4_debug("using block group %u(%d)\n", ac->ac_b_ex.fe_group, 4217 ext4_free_group_clusters(sb, gdp)); 4218 4219 block = ext4_grp_offs_to_block(sb, &ac->ac_b_ex); 4220 len = EXT4_C2B(sbi, ac->ac_b_ex.fe_len); 4221 if (!ext4_inode_block_valid(ac->ac_inode, block, len)) { 4222 ext4_error(sb, "Allocating blocks %llu-%llu which overlap " 4223 "fs metadata", block, block+len); 4224 /* File system mounted not to panic on error 4225 * Fix the bitmap and return EFSCORRUPTED 4226 * We leak some of the blocks here. 4227 */ 4228 err = ext4_mb_mark_context(handle, sb, true, 4229 ac->ac_b_ex.fe_group, 4230 ac->ac_b_ex.fe_start, 4231 ac->ac_b_ex.fe_len, 4232 0, NULL); 4233 if (!err) 4234 err = -EFSCORRUPTED; 4235 return err; 4236 } 4237 4238 #ifdef AGGRESSIVE_CHECK 4239 flags |= EXT4_MB_BITMAP_MARKED_CHECK; 4240 #endif 4241 err = ext4_mb_mark_context(handle, sb, true, ac->ac_b_ex.fe_group, 4242 ac->ac_b_ex.fe_start, ac->ac_b_ex.fe_len, 4243 flags, &changed); 4244 4245 if (err && changed == 0) 4246 return err; 4247 4248 #ifdef AGGRESSIVE_CHECK 4249 BUG_ON(changed != ac->ac_b_ex.fe_len); 4250 #endif 4251 percpu_counter_sub(&sbi->s_freeclusters_counter, ac->ac_b_ex.fe_len); 4252 4253 return err; 4254 } 4255 4256 /* 4257 * Idempotent helper for Ext4 fast commit replay path to set the state of 4258 * blocks in bitmaps and update counters. 4259 */ 4260 void ext4_mb_mark_bb(struct super_block *sb, ext4_fsblk_t block, 4261 int len, bool state) 4262 { 4263 struct ext4_sb_info *sbi = EXT4_SB(sb); 4264 ext4_group_t group; 4265 ext4_grpblk_t blkoff; 4266 int err = 0; 4267 unsigned int clen, thisgrp_len; 4268 4269 while (len > 0) { 4270 ext4_get_group_no_and_offset(sb, block, &group, &blkoff); 4271 4272 /* 4273 * Check to see if we are freeing blocks across a group 4274 * boundary. 4275 * In case of flex_bg, this can happen that (block, len) may 4276 * span across more than one group. In that case we need to 4277 * get the corresponding group metadata to work with. 4278 * For this we have goto again loop. 4279 */ 4280 thisgrp_len = min(len, EXT4_BLOCKS_PER_GROUP(sb) - EXT4_C2B(sbi, blkoff)); 4281 clen = EXT4_NUM_B2C(sbi, thisgrp_len); 4282 4283 if (!ext4_sb_block_valid(sb, NULL, block, thisgrp_len)) { 4284 ext4_error(sb, "Marking blocks in system zone - " 4285 "Block = %llu, len = %u", 4286 block, thisgrp_len); 4287 break; 4288 } 4289 4290 err = ext4_mb_mark_context(NULL, sb, state, 4291 group, blkoff, clen, 4292 EXT4_MB_BITMAP_MARKED_CHECK | 4293 EXT4_MB_SYNC_UPDATE, 4294 NULL); 4295 if (err) 4296 break; 4297 4298 block += thisgrp_len; 4299 len -= thisgrp_len; 4300 BUG_ON(len < 0); 4301 } 4302 } 4303 4304 /* 4305 * here we normalize request for locality group 4306 * Group request are normalized to s_mb_group_prealloc, which goes to 4307 * s_strip if we set the same via mount option. 4308 * s_mb_group_prealloc can be configured via 4309 * /sys/fs/ext4/<partition>/mb_group_prealloc 4310 * 4311 * XXX: should we try to preallocate more than the group has now? 4312 */ 4313 static void ext4_mb_normalize_group_request(struct ext4_allocation_context *ac) 4314 { 4315 struct super_block *sb = ac->ac_sb; 4316 struct ext4_locality_group *lg = ac->ac_lg; 4317 4318 BUG_ON(lg == NULL); 4319 ac->ac_g_ex.fe_len = EXT4_SB(sb)->s_mb_group_prealloc; 4320 mb_debug(sb, "goal %u blocks for locality group\n", ac->ac_g_ex.fe_len); 4321 } 4322 4323 /* 4324 * This function returns the next element to look at during inode 4325 * PA rbtree walk. We assume that we have held the inode PA rbtree lock 4326 * (ei->i_prealloc_lock) 4327 * 4328 * new_start The start of the range we want to compare 4329 * cur_start The existing start that we are comparing against 4330 * node The node of the rb_tree 4331 */ 4332 static inline struct rb_node* 4333 ext4_mb_pa_rb_next_iter(ext4_lblk_t new_start, ext4_lblk_t cur_start, struct rb_node *node) 4334 { 4335 if (new_start < cur_start) 4336 return node->rb_left; 4337 else 4338 return node->rb_right; 4339 } 4340 4341 static inline void 4342 ext4_mb_pa_assert_overlap(struct ext4_allocation_context *ac, 4343 ext4_lblk_t start, loff_t end) 4344 { 4345 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 4346 struct ext4_inode_info *ei = EXT4_I(ac->ac_inode); 4347 struct ext4_prealloc_space *tmp_pa; 4348 ext4_lblk_t tmp_pa_start; 4349 loff_t tmp_pa_end; 4350 struct rb_node *iter; 4351 4352 read_lock(&ei->i_prealloc_lock); 4353 for (iter = ei->i_prealloc_node.rb_node; iter; 4354 iter = ext4_mb_pa_rb_next_iter(start, tmp_pa_start, iter)) { 4355 tmp_pa = rb_entry(iter, struct ext4_prealloc_space, 4356 pa_node.inode_node); 4357 tmp_pa_start = tmp_pa->pa_lstart; 4358 tmp_pa_end = pa_logical_end(sbi, tmp_pa); 4359 4360 spin_lock(&tmp_pa->pa_lock); 4361 if (tmp_pa->pa_deleted == 0) 4362 BUG_ON(!(start >= tmp_pa_end || end <= tmp_pa_start)); 4363 spin_unlock(&tmp_pa->pa_lock); 4364 } 4365 read_unlock(&ei->i_prealloc_lock); 4366 } 4367 4368 /* 4369 * Given an allocation context "ac" and a range "start", "end", check 4370 * and adjust boundaries if the range overlaps with any of the existing 4371 * preallocatoins stored in the corresponding inode of the allocation context. 4372 * 4373 * Parameters: 4374 * ac allocation context 4375 * start start of the new range 4376 * end end of the new range 4377 */ 4378 static inline void 4379 ext4_mb_pa_adjust_overlap(struct ext4_allocation_context *ac, 4380 ext4_lblk_t *start, loff_t *end) 4381 { 4382 struct ext4_inode_info *ei = EXT4_I(ac->ac_inode); 4383 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 4384 struct ext4_prealloc_space *tmp_pa = NULL, *left_pa = NULL, *right_pa = NULL; 4385 struct rb_node *iter; 4386 ext4_lblk_t new_start, tmp_pa_start, right_pa_start = -1; 4387 loff_t new_end, tmp_pa_end, left_pa_end = -1; 4388 4389 new_start = *start; 4390 new_end = *end; 4391 4392 /* 4393 * Adjust the normalized range so that it doesn't overlap with any 4394 * existing preallocated blocks(PAs). Make sure to hold the rbtree lock 4395 * so it doesn't change underneath us. 4396 */ 4397 read_lock(&ei->i_prealloc_lock); 4398 4399 /* Step 1: find any one immediate neighboring PA of the normalized range */ 4400 for (iter = ei->i_prealloc_node.rb_node; iter; 4401 iter = ext4_mb_pa_rb_next_iter(ac->ac_o_ex.fe_logical, 4402 tmp_pa_start, iter)) { 4403 tmp_pa = rb_entry(iter, struct ext4_prealloc_space, 4404 pa_node.inode_node); 4405 tmp_pa_start = tmp_pa->pa_lstart; 4406 tmp_pa_end = pa_logical_end(sbi, tmp_pa); 4407 4408 /* PA must not overlap original request */ 4409 spin_lock(&tmp_pa->pa_lock); 4410 if (tmp_pa->pa_deleted == 0) 4411 BUG_ON(!(ac->ac_o_ex.fe_logical >= tmp_pa_end || 4412 ac->ac_o_ex.fe_logical < tmp_pa_start)); 4413 spin_unlock(&tmp_pa->pa_lock); 4414 } 4415 4416 /* 4417 * Step 2: check if the found PA is left or right neighbor and 4418 * get the other neighbor 4419 */ 4420 if (tmp_pa) { 4421 if (tmp_pa->pa_lstart < ac->ac_o_ex.fe_logical) { 4422 struct rb_node *tmp; 4423 4424 left_pa = tmp_pa; 4425 tmp = rb_next(&left_pa->pa_node.inode_node); 4426 if (tmp) { 4427 right_pa = rb_entry(tmp, 4428 struct ext4_prealloc_space, 4429 pa_node.inode_node); 4430 } 4431 } else { 4432 struct rb_node *tmp; 4433 4434 right_pa = tmp_pa; 4435 tmp = rb_prev(&right_pa->pa_node.inode_node); 4436 if (tmp) { 4437 left_pa = rb_entry(tmp, 4438 struct ext4_prealloc_space, 4439 pa_node.inode_node); 4440 } 4441 } 4442 } 4443 4444 /* Step 3: get the non deleted neighbors */ 4445 if (left_pa) { 4446 for (iter = &left_pa->pa_node.inode_node;; 4447 iter = rb_prev(iter)) { 4448 if (!iter) { 4449 left_pa = NULL; 4450 break; 4451 } 4452 4453 tmp_pa = rb_entry(iter, struct ext4_prealloc_space, 4454 pa_node.inode_node); 4455 left_pa = tmp_pa; 4456 spin_lock(&tmp_pa->pa_lock); 4457 if (tmp_pa->pa_deleted == 0) { 4458 spin_unlock(&tmp_pa->pa_lock); 4459 break; 4460 } 4461 spin_unlock(&tmp_pa->pa_lock); 4462 } 4463 } 4464 4465 if (right_pa) { 4466 for (iter = &right_pa->pa_node.inode_node;; 4467 iter = rb_next(iter)) { 4468 if (!iter) { 4469 right_pa = NULL; 4470 break; 4471 } 4472 4473 tmp_pa = rb_entry(iter, struct ext4_prealloc_space, 4474 pa_node.inode_node); 4475 right_pa = tmp_pa; 4476 spin_lock(&tmp_pa->pa_lock); 4477 if (tmp_pa->pa_deleted == 0) { 4478 spin_unlock(&tmp_pa->pa_lock); 4479 break; 4480 } 4481 spin_unlock(&tmp_pa->pa_lock); 4482 } 4483 } 4484 4485 if (left_pa) { 4486 left_pa_end = pa_logical_end(sbi, left_pa); 4487 BUG_ON(left_pa_end > ac->ac_o_ex.fe_logical); 4488 } 4489 4490 if (right_pa) { 4491 right_pa_start = right_pa->pa_lstart; 4492 BUG_ON(right_pa_start <= ac->ac_o_ex.fe_logical); 4493 } 4494 4495 /* Step 4: trim our normalized range to not overlap with the neighbors */ 4496 if (left_pa) { 4497 if (left_pa_end > new_start) 4498 new_start = left_pa_end; 4499 } 4500 4501 if (right_pa) { 4502 if (right_pa_start < new_end) 4503 new_end = right_pa_start; 4504 } 4505 read_unlock(&ei->i_prealloc_lock); 4506 4507 /* XXX: extra loop to check we really don't overlap preallocations */ 4508 ext4_mb_pa_assert_overlap(ac, new_start, new_end); 4509 4510 *start = new_start; 4511 *end = new_end; 4512 } 4513 4514 /* 4515 * Normalization means making request better in terms of 4516 * size and alignment 4517 */ 4518 static noinline_for_stack void 4519 ext4_mb_normalize_request(struct ext4_allocation_context *ac, 4520 struct ext4_allocation_request *ar) 4521 { 4522 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 4523 struct ext4_super_block *es = sbi->s_es; 4524 int bsbits, max; 4525 loff_t size, start_off, end; 4526 loff_t orig_size __maybe_unused; 4527 ext4_lblk_t start; 4528 4529 /* do normalize only data requests, metadata requests 4530 do not need preallocation */ 4531 if (!(ac->ac_flags & EXT4_MB_HINT_DATA)) 4532 return; 4533 4534 /* sometime caller may want exact blocks */ 4535 if (unlikely(ac->ac_flags & EXT4_MB_HINT_GOAL_ONLY)) 4536 return; 4537 4538 /* caller may indicate that preallocation isn't 4539 * required (it's a tail, for example) */ 4540 if (ac->ac_flags & EXT4_MB_HINT_NOPREALLOC) 4541 return; 4542 4543 if (ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC) { 4544 ext4_mb_normalize_group_request(ac); 4545 return ; 4546 } 4547 4548 bsbits = ac->ac_sb->s_blocksize_bits; 4549 4550 /* first, let's learn actual file size 4551 * given current request is allocated */ 4552 size = extent_logical_end(sbi, &ac->ac_o_ex); 4553 size = size << bsbits; 4554 if (size < i_size_read(ac->ac_inode)) 4555 size = i_size_read(ac->ac_inode); 4556 orig_size = size; 4557 4558 /* max size of free chunks */ 4559 max = 2 << bsbits; 4560 4561 #define NRL_CHECK_SIZE(req, size, max, chunk_size) \ 4562 (req <= (size) || max <= (chunk_size)) 4563 4564 /* first, try to predict filesize */ 4565 start_off = 0; 4566 if (size <= SZ_1M) { 4567 /* 4568 * For files up to 1MB, round up the preallocation size to 4569 * the next power of two, with a minimum of 16KB. 4570 */ 4571 if (size <= (unsigned long)SZ_16K) 4572 size = SZ_16K; 4573 else 4574 size = roundup_pow_of_two(size); 4575 } else if (NRL_CHECK_SIZE(size, 4 * 1024 * 1024, max, 2 * 1024)) { 4576 start_off = ((loff_t)ac->ac_o_ex.fe_logical >> 4577 (21 - bsbits)) << 21; 4578 size = 2 * 1024 * 1024; 4579 } else if (NRL_CHECK_SIZE(size, 8 * 1024 * 1024, max, 4 * 1024)) { 4580 start_off = ((loff_t)ac->ac_o_ex.fe_logical >> 4581 (22 - bsbits)) << 22; 4582 size = 4 * 1024 * 1024; 4583 } else if (NRL_CHECK_SIZE(EXT4_C2B(sbi, ac->ac_o_ex.fe_len), 4584 (8<<20)>>bsbits, max, 8 * 1024)) { 4585 start_off = ((loff_t)ac->ac_o_ex.fe_logical >> 4586 (23 - bsbits)) << 23; 4587 size = 8 * 1024 * 1024; 4588 } else { 4589 start_off = (loff_t) ac->ac_o_ex.fe_logical << bsbits; 4590 size = (loff_t) EXT4_C2B(sbi, 4591 ac->ac_o_ex.fe_len) << bsbits; 4592 } 4593 size = size >> bsbits; 4594 start = start_off >> bsbits; 4595 4596 /* 4597 * For tiny groups (smaller than 8MB) the chosen allocation 4598 * alignment may be larger than group size. Make sure the 4599 * alignment does not move allocation to a different group which 4600 * makes mballoc fail assertions later. 4601 */ 4602 start = max(start, rounddown(ac->ac_o_ex.fe_logical, 4603 (ext4_lblk_t)EXT4_BLOCKS_PER_GROUP(ac->ac_sb))); 4604 4605 /* avoid unnecessary preallocation that may trigger assertions */ 4606 if (start + size > EXT_MAX_BLOCKS) 4607 size = EXT_MAX_BLOCKS - start; 4608 4609 /* don't cover already allocated blocks in selected range */ 4610 if (ar->pleft && start <= ar->lleft) { 4611 size -= ar->lleft + 1 - start; 4612 start = ar->lleft + 1; 4613 } 4614 if (ar->pright && start + size - 1 >= ar->lright) 4615 size -= start + size - ar->lright; 4616 4617 /* 4618 * Trim allocation request for filesystems with artificially small 4619 * groups. 4620 */ 4621 if (size > EXT4_BLOCKS_PER_GROUP(ac->ac_sb)) 4622 size = EXT4_BLOCKS_PER_GROUP(ac->ac_sb); 4623 4624 end = start + size; 4625 4626 ext4_mb_pa_adjust_overlap(ac, &start, &end); 4627 4628 size = end - start; 4629 4630 /* 4631 * In this function "start" and "size" are normalized for better 4632 * alignment and length such that we could preallocate more blocks. 4633 * This normalization is done such that original request of 4634 * ac->ac_o_ex.fe_logical & fe_len should always lie within "start" and 4635 * "size" boundaries. 4636 * (Note fe_len can be relaxed since FS block allocation API does not 4637 * provide gurantee on number of contiguous blocks allocation since that 4638 * depends upon free space left, etc). 4639 * In case of inode pa, later we use the allocated blocks 4640 * [pa_pstart + fe_logical - pa_lstart, fe_len/size] from the preallocated 4641 * range of goal/best blocks [start, size] to put it at the 4642 * ac_o_ex.fe_logical extent of this inode. 4643 * (See ext4_mb_use_inode_pa() for more details) 4644 */ 4645 if (start + size <= ac->ac_o_ex.fe_logical || 4646 start > ac->ac_o_ex.fe_logical) { 4647 ext4_msg(ac->ac_sb, KERN_ERR, 4648 "start %lu, size %lu, fe_logical %lu", 4649 (unsigned long) start, (unsigned long) size, 4650 (unsigned long) ac->ac_o_ex.fe_logical); 4651 BUG(); 4652 } 4653 BUG_ON(size <= 0 || size > EXT4_BLOCKS_PER_GROUP(ac->ac_sb)); 4654 4655 /* now prepare goal request */ 4656 4657 /* XXX: is it better to align blocks WRT to logical 4658 * placement or satisfy big request as is */ 4659 ac->ac_g_ex.fe_logical = start; 4660 ac->ac_g_ex.fe_len = EXT4_NUM_B2C(sbi, size); 4661 ac->ac_orig_goal_len = ac->ac_g_ex.fe_len; 4662 4663 /* define goal start in order to merge */ 4664 if (ar->pright && (ar->lright == (start + size)) && 4665 ar->pright >= size && 4666 ar->pright - size >= le32_to_cpu(es->s_first_data_block)) { 4667 /* merge to the right */ 4668 ext4_get_group_no_and_offset(ac->ac_sb, ar->pright - size, 4669 &ac->ac_g_ex.fe_group, 4670 &ac->ac_g_ex.fe_start); 4671 ac->ac_flags |= EXT4_MB_HINT_TRY_GOAL; 4672 } 4673 if (ar->pleft && (ar->lleft + 1 == start) && 4674 ar->pleft + 1 < ext4_blocks_count(es)) { 4675 /* merge to the left */ 4676 ext4_get_group_no_and_offset(ac->ac_sb, ar->pleft + 1, 4677 &ac->ac_g_ex.fe_group, 4678 &ac->ac_g_ex.fe_start); 4679 ac->ac_flags |= EXT4_MB_HINT_TRY_GOAL; 4680 } 4681 4682 mb_debug(ac->ac_sb, "goal: %lld(was %lld) blocks at %u\n", size, 4683 orig_size, start); 4684 } 4685 4686 static void ext4_mb_collect_stats(struct ext4_allocation_context *ac) 4687 { 4688 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 4689 4690 if (sbi->s_mb_stats && ac->ac_g_ex.fe_len >= 1) { 4691 atomic_inc(&sbi->s_bal_reqs); 4692 atomic_add(ac->ac_b_ex.fe_len, &sbi->s_bal_allocated); 4693 if (ac->ac_b_ex.fe_len >= ac->ac_o_ex.fe_len) 4694 atomic_inc(&sbi->s_bal_success); 4695 4696 atomic_add(ac->ac_found, &sbi->s_bal_ex_scanned); 4697 for (int i=0; i<EXT4_MB_NUM_CRS; i++) { 4698 atomic_add(ac->ac_cX_found[i], &sbi->s_bal_cX_ex_scanned[i]); 4699 } 4700 4701 atomic_add(ac->ac_groups_scanned, &sbi->s_bal_groups_scanned); 4702 if (ac->ac_g_ex.fe_start == ac->ac_b_ex.fe_start && 4703 ac->ac_g_ex.fe_group == ac->ac_b_ex.fe_group) 4704 atomic_inc(&sbi->s_bal_goals); 4705 /* did we allocate as much as normalizer originally wanted? */ 4706 if (ac->ac_f_ex.fe_len == ac->ac_orig_goal_len) 4707 atomic_inc(&sbi->s_bal_len_goals); 4708 4709 if (ac->ac_found > sbi->s_mb_max_to_scan) 4710 atomic_inc(&sbi->s_bal_breaks); 4711 } 4712 4713 if (ac->ac_op == EXT4_MB_HISTORY_ALLOC) 4714 trace_ext4_mballoc_alloc(ac); 4715 else 4716 trace_ext4_mballoc_prealloc(ac); 4717 } 4718 4719 /* 4720 * Called on failure; free up any blocks from the inode PA for this 4721 * context. We don't need this for MB_GROUP_PA because we only change 4722 * pa_free in ext4_mb_release_context(), but on failure, we've already 4723 * zeroed out ac->ac_b_ex.fe_len, so group_pa->pa_free is not changed. 4724 */ 4725 static void ext4_discard_allocated_blocks(struct ext4_allocation_context *ac) 4726 { 4727 struct ext4_prealloc_space *pa = ac->ac_pa; 4728 struct ext4_buddy e4b; 4729 int err; 4730 4731 if (pa == NULL) { 4732 if (ac->ac_f_ex.fe_len == 0) 4733 return; 4734 err = ext4_mb_load_buddy(ac->ac_sb, ac->ac_f_ex.fe_group, &e4b); 4735 if (WARN_RATELIMIT(err, 4736 "ext4: mb_load_buddy failed (%d)", err)) 4737 /* 4738 * This should never happen since we pin the 4739 * folios in the ext4_allocation_context so 4740 * ext4_mb_load_buddy() should never fail. 4741 */ 4742 return; 4743 ext4_lock_group(ac->ac_sb, ac->ac_f_ex.fe_group); 4744 mb_free_blocks(ac->ac_inode, &e4b, ac->ac_f_ex.fe_start, 4745 ac->ac_f_ex.fe_len); 4746 ext4_unlock_group(ac->ac_sb, ac->ac_f_ex.fe_group); 4747 ext4_mb_unload_buddy(&e4b); 4748 return; 4749 } 4750 if (pa->pa_type == MB_INODE_PA) { 4751 spin_lock(&pa->pa_lock); 4752 pa->pa_free += ac->ac_b_ex.fe_len; 4753 spin_unlock(&pa->pa_lock); 4754 } 4755 } 4756 4757 /* 4758 * use blocks preallocated to inode 4759 */ 4760 static void ext4_mb_use_inode_pa(struct ext4_allocation_context *ac, 4761 struct ext4_prealloc_space *pa) 4762 { 4763 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 4764 ext4_fsblk_t start; 4765 ext4_fsblk_t end; 4766 int len; 4767 4768 /* found preallocated blocks, use them */ 4769 start = pa->pa_pstart + (ac->ac_o_ex.fe_logical - pa->pa_lstart); 4770 end = min(pa->pa_pstart + EXT4_C2B(sbi, pa->pa_len), 4771 start + EXT4_C2B(sbi, ac->ac_o_ex.fe_len)); 4772 len = EXT4_NUM_B2C(sbi, end - start); 4773 ext4_get_group_no_and_offset(ac->ac_sb, start, &ac->ac_b_ex.fe_group, 4774 &ac->ac_b_ex.fe_start); 4775 ac->ac_b_ex.fe_len = len; 4776 ac->ac_status = AC_STATUS_FOUND; 4777 ac->ac_pa = pa; 4778 4779 BUG_ON(start < pa->pa_pstart); 4780 BUG_ON(end > pa->pa_pstart + EXT4_C2B(sbi, pa->pa_len)); 4781 BUG_ON(pa->pa_free < len); 4782 BUG_ON(ac->ac_b_ex.fe_len <= 0); 4783 pa->pa_free -= len; 4784 4785 mb_debug(ac->ac_sb, "use %llu/%d from inode pa %p\n", start, len, pa); 4786 } 4787 4788 /* 4789 * use blocks preallocated to locality group 4790 */ 4791 static void ext4_mb_use_group_pa(struct ext4_allocation_context *ac, 4792 struct ext4_prealloc_space *pa) 4793 { 4794 unsigned int len = ac->ac_o_ex.fe_len; 4795 4796 ext4_get_group_no_and_offset(ac->ac_sb, pa->pa_pstart, 4797 &ac->ac_b_ex.fe_group, 4798 &ac->ac_b_ex.fe_start); 4799 ac->ac_b_ex.fe_len = len; 4800 ac->ac_status = AC_STATUS_FOUND; 4801 ac->ac_pa = pa; 4802 4803 /* we don't correct pa_pstart or pa_len here to avoid 4804 * possible race when the group is being loaded concurrently 4805 * instead we correct pa later, after blocks are marked 4806 * in on-disk bitmap -- see ext4_mb_release_context() 4807 * Other CPUs are prevented from allocating from this pa by lg_mutex 4808 */ 4809 mb_debug(ac->ac_sb, "use %u/%u from group pa %p\n", 4810 pa->pa_lstart, len, pa); 4811 } 4812 4813 /* 4814 * Return the prealloc space that have minimal distance 4815 * from the goal block. @cpa is the prealloc 4816 * space that is having currently known minimal distance 4817 * from the goal block. 4818 */ 4819 static struct ext4_prealloc_space * 4820 ext4_mb_check_group_pa(ext4_fsblk_t goal_block, 4821 struct ext4_prealloc_space *pa, 4822 struct ext4_prealloc_space *cpa) 4823 { 4824 ext4_fsblk_t cur_distance, new_distance; 4825 4826 if (cpa == NULL) { 4827 atomic_inc(&pa->pa_count); 4828 return pa; 4829 } 4830 cur_distance = abs(goal_block - cpa->pa_pstart); 4831 new_distance = abs(goal_block - pa->pa_pstart); 4832 4833 if (cur_distance <= new_distance) 4834 return cpa; 4835 4836 /* drop the previous reference */ 4837 atomic_dec(&cpa->pa_count); 4838 atomic_inc(&pa->pa_count); 4839 return pa; 4840 } 4841 4842 /* 4843 * check if found pa meets EXT4_MB_HINT_GOAL_ONLY 4844 */ 4845 static bool 4846 ext4_mb_pa_goal_check(struct ext4_allocation_context *ac, 4847 struct ext4_prealloc_space *pa) 4848 { 4849 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 4850 ext4_fsblk_t start; 4851 4852 if (likely(!(ac->ac_flags & EXT4_MB_HINT_GOAL_ONLY))) 4853 return true; 4854 4855 /* 4856 * If EXT4_MB_HINT_GOAL_ONLY is set, ac_g_ex will not be adjusted 4857 * in ext4_mb_normalize_request and will keep same with ac_o_ex 4858 * from ext4_mb_initialize_context. Choose ac_g_ex here to keep 4859 * consistent with ext4_mb_find_by_goal. 4860 */ 4861 start = pa->pa_pstart + 4862 (ac->ac_g_ex.fe_logical - pa->pa_lstart); 4863 if (ext4_grp_offs_to_block(ac->ac_sb, &ac->ac_g_ex) != start) 4864 return false; 4865 4866 if (ac->ac_g_ex.fe_len > pa->pa_len - 4867 EXT4_B2C(sbi, ac->ac_g_ex.fe_logical - pa->pa_lstart)) 4868 return false; 4869 4870 return true; 4871 } 4872 4873 /* 4874 * search goal blocks in preallocated space 4875 */ 4876 static noinline_for_stack bool 4877 ext4_mb_use_preallocated(struct ext4_allocation_context *ac) 4878 { 4879 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 4880 int order, i; 4881 struct ext4_inode_info *ei = EXT4_I(ac->ac_inode); 4882 struct ext4_locality_group *lg; 4883 struct ext4_prealloc_space *tmp_pa = NULL, *cpa = NULL; 4884 struct rb_node *iter; 4885 ext4_fsblk_t goal_block; 4886 4887 /* only data can be preallocated */ 4888 if (!(ac->ac_flags & EXT4_MB_HINT_DATA)) 4889 return false; 4890 4891 /* 4892 * first, try per-file preallocation by searching the inode pa rbtree. 4893 * 4894 * Here, we can't do a direct traversal of the tree because 4895 * ext4_mb_discard_group_preallocation() can paralelly mark the pa 4896 * deleted and that can cause direct traversal to skip some entries. 4897 */ 4898 read_lock(&ei->i_prealloc_lock); 4899 4900 if (RB_EMPTY_ROOT(&ei->i_prealloc_node)) { 4901 goto try_group_pa; 4902 } 4903 4904 /* 4905 * Step 1: Find a pa with logical start immediately adjacent to the 4906 * original logical start. This could be on the left or right. 4907 * 4908 * (tmp_pa->pa_lstart never changes so we can skip locking for it). 4909 */ 4910 for (iter = ei->i_prealloc_node.rb_node; iter; 4911 iter = ext4_mb_pa_rb_next_iter(ac->ac_o_ex.fe_logical, 4912 tmp_pa->pa_lstart, iter)) { 4913 tmp_pa = rb_entry(iter, struct ext4_prealloc_space, 4914 pa_node.inode_node); 4915 } 4916 4917 /* 4918 * Step 2: The adjacent pa might be to the right of logical start, find 4919 * the left adjacent pa. After this step we'd have a valid tmp_pa whose 4920 * logical start is towards the left of original request's logical start 4921 */ 4922 if (tmp_pa->pa_lstart > ac->ac_o_ex.fe_logical) { 4923 struct rb_node *tmp; 4924 tmp = rb_prev(&tmp_pa->pa_node.inode_node); 4925 4926 if (tmp) { 4927 tmp_pa = rb_entry(tmp, struct ext4_prealloc_space, 4928 pa_node.inode_node); 4929 } else { 4930 /* 4931 * If there is no adjacent pa to the left then finding 4932 * an overlapping pa is not possible hence stop searching 4933 * inode pa tree 4934 */ 4935 goto try_group_pa; 4936 } 4937 } 4938 4939 BUG_ON(!(tmp_pa && tmp_pa->pa_lstart <= ac->ac_o_ex.fe_logical)); 4940 4941 /* 4942 * Step 3: If the left adjacent pa is deleted, keep moving left to find 4943 * the first non deleted adjacent pa. After this step we should have a 4944 * valid tmp_pa which is guaranteed to be non deleted. 4945 */ 4946 for (iter = &tmp_pa->pa_node.inode_node;; iter = rb_prev(iter)) { 4947 if (!iter) { 4948 /* 4949 * no non deleted left adjacent pa, so stop searching 4950 * inode pa tree 4951 */ 4952 goto try_group_pa; 4953 } 4954 tmp_pa = rb_entry(iter, struct ext4_prealloc_space, 4955 pa_node.inode_node); 4956 spin_lock(&tmp_pa->pa_lock); 4957 if (tmp_pa->pa_deleted == 0) { 4958 /* 4959 * We will keep holding the pa_lock from 4960 * this point on because we don't want group discard 4961 * to delete this pa underneath us. Since group 4962 * discard is anyways an ENOSPC operation it 4963 * should be okay for it to wait a few more cycles. 4964 */ 4965 break; 4966 } else { 4967 spin_unlock(&tmp_pa->pa_lock); 4968 } 4969 } 4970 4971 BUG_ON(!(tmp_pa && tmp_pa->pa_lstart <= ac->ac_o_ex.fe_logical)); 4972 BUG_ON(tmp_pa->pa_deleted == 1); 4973 4974 /* 4975 * Step 4: We now have the non deleted left adjacent pa. Only this 4976 * pa can possibly satisfy the request hence check if it overlaps 4977 * original logical start and stop searching if it doesn't. 4978 */ 4979 if (ac->ac_o_ex.fe_logical >= pa_logical_end(sbi, tmp_pa)) { 4980 spin_unlock(&tmp_pa->pa_lock); 4981 goto try_group_pa; 4982 } 4983 4984 /* non-extent files can't have physical blocks past 2^32 */ 4985 if (!(ext4_test_inode_flag(ac->ac_inode, EXT4_INODE_EXTENTS)) && 4986 (tmp_pa->pa_pstart + EXT4_C2B(sbi, tmp_pa->pa_len) > 4987 EXT4_MAX_BLOCK_FILE_PHYS)) { 4988 /* 4989 * Since PAs don't overlap, we won't find any other PA to 4990 * satisfy this. 4991 */ 4992 spin_unlock(&tmp_pa->pa_lock); 4993 goto try_group_pa; 4994 } 4995 4996 if (tmp_pa->pa_free && likely(ext4_mb_pa_goal_check(ac, tmp_pa))) { 4997 atomic_inc(&tmp_pa->pa_count); 4998 ext4_mb_use_inode_pa(ac, tmp_pa); 4999 spin_unlock(&tmp_pa->pa_lock); 5000 read_unlock(&ei->i_prealloc_lock); 5001 return true; 5002 } else { 5003 /* 5004 * We found a valid overlapping pa but couldn't use it because 5005 * it had no free blocks. This should ideally never happen 5006 * because: 5007 * 5008 * 1. When a new inode pa is added to rbtree it must have 5009 * pa_free > 0 since otherwise we won't actually need 5010 * preallocation. 5011 * 5012 * 2. An inode pa that is in the rbtree can only have it's 5013 * pa_free become zero when another thread calls: 5014 * ext4_mb_new_blocks 5015 * ext4_mb_use_preallocated 5016 * ext4_mb_use_inode_pa 5017 * 5018 * 3. Further, after the above calls make pa_free == 0, we will 5019 * immediately remove it from the rbtree in: 5020 * ext4_mb_new_blocks 5021 * ext4_mb_release_context 5022 * ext4_mb_put_pa 5023 * 5024 * 4. Since the pa_free becoming 0 and pa_free getting removed 5025 * from tree both happen in ext4_mb_new_blocks, which is always 5026 * called with i_data_sem held for data allocations, we can be 5027 * sure that another process will never see a pa in rbtree with 5028 * pa_free == 0. 5029 */ 5030 WARN_ON_ONCE(tmp_pa->pa_free == 0); 5031 } 5032 spin_unlock(&tmp_pa->pa_lock); 5033 try_group_pa: 5034 read_unlock(&ei->i_prealloc_lock); 5035 5036 /* can we use group allocation? */ 5037 if (!(ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC)) 5038 return false; 5039 5040 /* inode may have no locality group for some reason */ 5041 lg = ac->ac_lg; 5042 if (lg == NULL) 5043 return false; 5044 order = fls(ac->ac_o_ex.fe_len) - 1; 5045 if (order > PREALLOC_TB_SIZE - 1) 5046 /* The max size of hash table is PREALLOC_TB_SIZE */ 5047 order = PREALLOC_TB_SIZE - 1; 5048 5049 goal_block = ext4_grp_offs_to_block(ac->ac_sb, &ac->ac_g_ex); 5050 /* 5051 * search for the prealloc space that is having 5052 * minimal distance from the goal block. 5053 */ 5054 for (i = order; i < PREALLOC_TB_SIZE; i++) { 5055 rcu_read_lock(); 5056 list_for_each_entry_rcu(tmp_pa, &lg->lg_prealloc_list[i], 5057 pa_node.lg_list) { 5058 spin_lock(&tmp_pa->pa_lock); 5059 if (tmp_pa->pa_deleted == 0 && 5060 tmp_pa->pa_free >= ac->ac_o_ex.fe_len) { 5061 5062 cpa = ext4_mb_check_group_pa(goal_block, 5063 tmp_pa, cpa); 5064 } 5065 spin_unlock(&tmp_pa->pa_lock); 5066 } 5067 rcu_read_unlock(); 5068 } 5069 if (cpa) { 5070 ext4_mb_use_group_pa(ac, cpa); 5071 return true; 5072 } 5073 return false; 5074 } 5075 5076 /* 5077 * the function goes through all preallocation in this group and marks them 5078 * used in in-core bitmap. buddy must be generated from this bitmap 5079 * Need to be called with ext4 group lock held 5080 */ 5081 static noinline_for_stack 5082 void ext4_mb_generate_from_pa(struct super_block *sb, void *bitmap, 5083 ext4_group_t group) 5084 { 5085 struct ext4_group_info *grp = ext4_get_group_info(sb, group); 5086 struct ext4_prealloc_space *pa; 5087 struct list_head *cur; 5088 ext4_group_t groupnr; 5089 ext4_grpblk_t start; 5090 int preallocated = 0; 5091 int len; 5092 5093 if (!grp) 5094 return; 5095 5096 /* all form of preallocation discards first load group, 5097 * so the only competing code is preallocation use. 5098 * we don't need any locking here 5099 * notice we do NOT ignore preallocations with pa_deleted 5100 * otherwise we could leave used blocks available for 5101 * allocation in buddy when concurrent ext4_mb_put_pa() 5102 * is dropping preallocation 5103 */ 5104 list_for_each(cur, &grp->bb_prealloc_list) { 5105 pa = list_entry(cur, struct ext4_prealloc_space, pa_group_list); 5106 spin_lock(&pa->pa_lock); 5107 ext4_get_group_no_and_offset(sb, pa->pa_pstart, 5108 &groupnr, &start); 5109 len = pa->pa_len; 5110 spin_unlock(&pa->pa_lock); 5111 if (unlikely(len == 0)) 5112 continue; 5113 BUG_ON(groupnr != group); 5114 mb_set_bits(bitmap, start, len); 5115 preallocated += len; 5116 } 5117 mb_debug(sb, "preallocated %d for group %u\n", preallocated, group); 5118 } 5119 5120 static void ext4_mb_mark_pa_deleted(struct super_block *sb, 5121 struct ext4_prealloc_space *pa) 5122 { 5123 struct ext4_inode_info *ei; 5124 5125 if (pa->pa_deleted) { 5126 ext4_warning(sb, "deleted pa, type:%d, pblk:%llu, lblk:%u, len:%d\n", 5127 pa->pa_type, pa->pa_pstart, pa->pa_lstart, 5128 pa->pa_len); 5129 return; 5130 } 5131 5132 pa->pa_deleted = 1; 5133 5134 if (pa->pa_type == MB_INODE_PA) { 5135 ei = EXT4_I(pa->pa_inode); 5136 atomic_dec(&ei->i_prealloc_active); 5137 } 5138 } 5139 5140 static inline void ext4_mb_pa_free(struct ext4_prealloc_space *pa) 5141 { 5142 BUG_ON(!pa); 5143 BUG_ON(atomic_read(&pa->pa_count)); 5144 BUG_ON(pa->pa_deleted == 0); 5145 kmem_cache_free(ext4_pspace_cachep, pa); 5146 } 5147 5148 static void ext4_mb_pa_callback(struct rcu_head *head) 5149 { 5150 struct ext4_prealloc_space *pa; 5151 5152 pa = container_of(head, struct ext4_prealloc_space, u.pa_rcu); 5153 ext4_mb_pa_free(pa); 5154 } 5155 5156 /* 5157 * drops a reference to preallocated space descriptor 5158 * if this was the last reference and the space is consumed 5159 */ 5160 static void ext4_mb_put_pa(struct ext4_allocation_context *ac, 5161 struct super_block *sb, struct ext4_prealloc_space *pa) 5162 { 5163 ext4_group_t grp; 5164 ext4_fsblk_t grp_blk; 5165 struct ext4_inode_info *ei = EXT4_I(ac->ac_inode); 5166 5167 /* in this short window concurrent discard can set pa_deleted */ 5168 spin_lock(&pa->pa_lock); 5169 if (!atomic_dec_and_test(&pa->pa_count) || pa->pa_free != 0) { 5170 spin_unlock(&pa->pa_lock); 5171 return; 5172 } 5173 5174 if (pa->pa_deleted == 1) { 5175 spin_unlock(&pa->pa_lock); 5176 return; 5177 } 5178 5179 ext4_mb_mark_pa_deleted(sb, pa); 5180 spin_unlock(&pa->pa_lock); 5181 5182 grp_blk = pa->pa_pstart; 5183 /* 5184 * If doing group-based preallocation, pa_pstart may be in the 5185 * next group when pa is used up 5186 */ 5187 if (pa->pa_type == MB_GROUP_PA) 5188 grp_blk--; 5189 5190 grp = ext4_get_group_number(sb, grp_blk); 5191 5192 /* 5193 * possible race: 5194 * 5195 * P1 (buddy init) P2 (regular allocation) 5196 * find block B in PA 5197 * copy on-disk bitmap to buddy 5198 * mark B in on-disk bitmap 5199 * drop PA from group 5200 * mark all PAs in buddy 5201 * 5202 * thus, P1 initializes buddy with B available. to prevent this 5203 * we make "copy" and "mark all PAs" atomic and serialize "drop PA" 5204 * against that pair 5205 */ 5206 ext4_lock_group(sb, grp); 5207 list_del(&pa->pa_group_list); 5208 ext4_unlock_group(sb, grp); 5209 5210 if (pa->pa_type == MB_INODE_PA) { 5211 write_lock(pa->pa_node_lock.inode_lock); 5212 rb_erase(&pa->pa_node.inode_node, &ei->i_prealloc_node); 5213 write_unlock(pa->pa_node_lock.inode_lock); 5214 ext4_mb_pa_free(pa); 5215 } else { 5216 spin_lock(pa->pa_node_lock.lg_lock); 5217 list_del_rcu(&pa->pa_node.lg_list); 5218 spin_unlock(pa->pa_node_lock.lg_lock); 5219 call_rcu(&(pa)->u.pa_rcu, ext4_mb_pa_callback); 5220 } 5221 } 5222 5223 static void ext4_mb_pa_rb_insert(struct rb_root *root, struct rb_node *new) 5224 { 5225 struct rb_node **iter = &root->rb_node, *parent = NULL; 5226 struct ext4_prealloc_space *iter_pa, *new_pa; 5227 ext4_lblk_t iter_start, new_start; 5228 5229 while (*iter) { 5230 iter_pa = rb_entry(*iter, struct ext4_prealloc_space, 5231 pa_node.inode_node); 5232 new_pa = rb_entry(new, struct ext4_prealloc_space, 5233 pa_node.inode_node); 5234 iter_start = iter_pa->pa_lstart; 5235 new_start = new_pa->pa_lstart; 5236 5237 parent = *iter; 5238 if (new_start < iter_start) 5239 iter = &((*iter)->rb_left); 5240 else 5241 iter = &((*iter)->rb_right); 5242 } 5243 5244 rb_link_node(new, parent, iter); 5245 rb_insert_color(new, root); 5246 } 5247 5248 /* 5249 * creates new preallocated space for given inode 5250 */ 5251 static noinline_for_stack void 5252 ext4_mb_new_inode_pa(struct ext4_allocation_context *ac) 5253 { 5254 struct super_block *sb = ac->ac_sb; 5255 struct ext4_sb_info *sbi = EXT4_SB(sb); 5256 struct ext4_prealloc_space *pa; 5257 struct ext4_group_info *grp; 5258 struct ext4_inode_info *ei; 5259 5260 /* preallocate only when found space is larger then requested */ 5261 BUG_ON(ac->ac_o_ex.fe_len >= ac->ac_b_ex.fe_len); 5262 BUG_ON(ac->ac_status != AC_STATUS_FOUND); 5263 BUG_ON(!S_ISREG(ac->ac_inode->i_mode)); 5264 BUG_ON(ac->ac_pa == NULL); 5265 5266 pa = ac->ac_pa; 5267 5268 if (ac->ac_b_ex.fe_len < ac->ac_orig_goal_len) { 5269 struct ext4_free_extent ex = { 5270 .fe_logical = ac->ac_g_ex.fe_logical, 5271 .fe_len = ac->ac_orig_goal_len, 5272 }; 5273 loff_t orig_goal_end = extent_logical_end(sbi, &ex); 5274 loff_t o_ex_end = extent_logical_end(sbi, &ac->ac_o_ex); 5275 5276 /* 5277 * We can't allocate as much as normalizer wants, so we try 5278 * to get proper lstart to cover the original request, except 5279 * when the goal doesn't cover the original request as below: 5280 * 5281 * orig_ex:2045/2055(10), isize:8417280 -> normalized:0/2048 5282 * best_ex:0/200(200) -> adjusted: 1848/2048(200) 5283 */ 5284 BUG_ON(ac->ac_g_ex.fe_logical > ac->ac_o_ex.fe_logical); 5285 BUG_ON(ac->ac_g_ex.fe_len < ac->ac_o_ex.fe_len); 5286 5287 /* 5288 * Use the below logic for adjusting best extent as it keeps 5289 * fragmentation in check while ensuring logical range of best 5290 * extent doesn't overflow out of goal extent: 5291 * 5292 * 1. Check if best ex can be kept at end of goal (before 5293 * cr_best_avail trimmed it) and still cover original start 5294 * 2. Else, check if best ex can be kept at start of goal and 5295 * still cover original end 5296 * 3. Else, keep the best ex at start of original request. 5297 */ 5298 ex.fe_len = ac->ac_b_ex.fe_len; 5299 5300 ex.fe_logical = orig_goal_end - EXT4_C2B(sbi, ex.fe_len); 5301 if (ac->ac_o_ex.fe_logical >= ex.fe_logical) 5302 goto adjust_bex; 5303 5304 ex.fe_logical = ac->ac_g_ex.fe_logical; 5305 if (o_ex_end <= extent_logical_end(sbi, &ex)) 5306 goto adjust_bex; 5307 5308 ex.fe_logical = ac->ac_o_ex.fe_logical; 5309 adjust_bex: 5310 ac->ac_b_ex.fe_logical = ex.fe_logical; 5311 5312 BUG_ON(ac->ac_o_ex.fe_logical < ac->ac_b_ex.fe_logical); 5313 BUG_ON(extent_logical_end(sbi, &ex) > orig_goal_end); 5314 } 5315 5316 pa->pa_lstart = ac->ac_b_ex.fe_logical; 5317 pa->pa_pstart = ext4_grp_offs_to_block(sb, &ac->ac_b_ex); 5318 pa->pa_len = ac->ac_b_ex.fe_len; 5319 pa->pa_free = pa->pa_len; 5320 spin_lock_init(&pa->pa_lock); 5321 INIT_LIST_HEAD(&pa->pa_group_list); 5322 pa->pa_deleted = 0; 5323 pa->pa_type = MB_INODE_PA; 5324 5325 mb_debug(sb, "new inode pa %p: %llu/%d for %u\n", pa, pa->pa_pstart, 5326 pa->pa_len, pa->pa_lstart); 5327 trace_ext4_mb_new_inode_pa(ac, pa); 5328 5329 atomic_add(pa->pa_free, &sbi->s_mb_preallocated); 5330 ext4_mb_use_inode_pa(ac, pa); 5331 5332 ei = EXT4_I(ac->ac_inode); 5333 grp = ext4_get_group_info(sb, ac->ac_b_ex.fe_group); 5334 if (!grp) 5335 return; 5336 5337 pa->pa_node_lock.inode_lock = &ei->i_prealloc_lock; 5338 pa->pa_inode = ac->ac_inode; 5339 5340 list_add(&pa->pa_group_list, &grp->bb_prealloc_list); 5341 5342 write_lock(pa->pa_node_lock.inode_lock); 5343 ext4_mb_pa_rb_insert(&ei->i_prealloc_node, &pa->pa_node.inode_node); 5344 write_unlock(pa->pa_node_lock.inode_lock); 5345 atomic_inc(&ei->i_prealloc_active); 5346 } 5347 5348 /* 5349 * creates new preallocated space for locality group inodes belongs to 5350 */ 5351 static noinline_for_stack void 5352 ext4_mb_new_group_pa(struct ext4_allocation_context *ac) 5353 { 5354 struct super_block *sb = ac->ac_sb; 5355 struct ext4_locality_group *lg; 5356 struct ext4_prealloc_space *pa; 5357 struct ext4_group_info *grp; 5358 5359 /* preallocate only when found space is larger then requested */ 5360 BUG_ON(ac->ac_o_ex.fe_len >= ac->ac_b_ex.fe_len); 5361 BUG_ON(ac->ac_status != AC_STATUS_FOUND); 5362 BUG_ON(!S_ISREG(ac->ac_inode->i_mode)); 5363 BUG_ON(ac->ac_pa == NULL); 5364 5365 pa = ac->ac_pa; 5366 5367 pa->pa_pstart = ext4_grp_offs_to_block(sb, &ac->ac_b_ex); 5368 pa->pa_lstart = pa->pa_pstart; 5369 pa->pa_len = ac->ac_b_ex.fe_len; 5370 pa->pa_free = pa->pa_len; 5371 spin_lock_init(&pa->pa_lock); 5372 INIT_LIST_HEAD(&pa->pa_node.lg_list); 5373 INIT_LIST_HEAD(&pa->pa_group_list); 5374 pa->pa_deleted = 0; 5375 pa->pa_type = MB_GROUP_PA; 5376 5377 mb_debug(sb, "new group pa %p: %llu/%d for %u\n", pa, pa->pa_pstart, 5378 pa->pa_len, pa->pa_lstart); 5379 trace_ext4_mb_new_group_pa(ac, pa); 5380 5381 ext4_mb_use_group_pa(ac, pa); 5382 atomic_add(pa->pa_free, &EXT4_SB(sb)->s_mb_preallocated); 5383 5384 grp = ext4_get_group_info(sb, ac->ac_b_ex.fe_group); 5385 if (!grp) 5386 return; 5387 lg = ac->ac_lg; 5388 BUG_ON(lg == NULL); 5389 5390 pa->pa_node_lock.lg_lock = &lg->lg_prealloc_lock; 5391 pa->pa_inode = NULL; 5392 5393 list_add(&pa->pa_group_list, &grp->bb_prealloc_list); 5394 5395 /* 5396 * We will later add the new pa to the right bucket 5397 * after updating the pa_free in ext4_mb_release_context 5398 */ 5399 } 5400 5401 static void ext4_mb_new_preallocation(struct ext4_allocation_context *ac) 5402 { 5403 if (ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC) 5404 ext4_mb_new_group_pa(ac); 5405 else 5406 ext4_mb_new_inode_pa(ac); 5407 } 5408 5409 /* 5410 * finds all unused blocks in on-disk bitmap, frees them in 5411 * in-core bitmap and buddy. 5412 * @pa must be unlinked from inode and group lists, so that 5413 * nobody else can find/use it. 5414 * the caller MUST hold group/inode locks. 5415 * TODO: optimize the case when there are no in-core structures yet 5416 */ 5417 static noinline_for_stack void 5418 ext4_mb_release_inode_pa(struct ext4_buddy *e4b, struct buffer_head *bitmap_bh, 5419 struct ext4_prealloc_space *pa) 5420 { 5421 struct super_block *sb = e4b->bd_sb; 5422 struct ext4_sb_info *sbi = EXT4_SB(sb); 5423 unsigned int end; 5424 unsigned int next; 5425 ext4_group_t group; 5426 ext4_grpblk_t bit; 5427 unsigned long long grp_blk_start; 5428 int free = 0; 5429 5430 BUG_ON(pa->pa_deleted == 0); 5431 ext4_get_group_no_and_offset(sb, pa->pa_pstart, &group, &bit); 5432 grp_blk_start = pa->pa_pstart - EXT4_C2B(sbi, bit); 5433 BUG_ON(group != e4b->bd_group && pa->pa_len != 0); 5434 end = bit + pa->pa_len; 5435 5436 while (bit < end) { 5437 bit = mb_find_next_zero_bit(bitmap_bh->b_data, end, bit); 5438 if (bit >= end) 5439 break; 5440 next = mb_find_next_bit(bitmap_bh->b_data, end, bit); 5441 mb_debug(sb, "free preallocated %u/%u in group %u\n", 5442 (unsigned) ext4_group_first_block_no(sb, group) + bit, 5443 (unsigned) next - bit, (unsigned) group); 5444 free += next - bit; 5445 5446 trace_ext4_mballoc_discard(sb, NULL, group, bit, next - bit); 5447 trace_ext4_mb_release_inode_pa(pa, (grp_blk_start + 5448 EXT4_C2B(sbi, bit)), 5449 next - bit); 5450 mb_free_blocks(pa->pa_inode, e4b, bit, next - bit); 5451 bit = next + 1; 5452 } 5453 if (free != pa->pa_free) { 5454 ext4_msg(e4b->bd_sb, KERN_CRIT, 5455 "pa %p: logic %lu, phys. %lu, len %d", 5456 pa, (unsigned long) pa->pa_lstart, 5457 (unsigned long) pa->pa_pstart, 5458 pa->pa_len); 5459 ext4_grp_locked_error(sb, group, 0, 0, "free %u, pa_free %u", 5460 free, pa->pa_free); 5461 /* 5462 * pa is already deleted so we use the value obtained 5463 * from the bitmap and continue. 5464 */ 5465 } 5466 atomic_add(free, &sbi->s_mb_discarded); 5467 } 5468 5469 static noinline_for_stack void 5470 ext4_mb_release_group_pa(struct ext4_buddy *e4b, 5471 struct ext4_prealloc_space *pa) 5472 { 5473 struct super_block *sb = e4b->bd_sb; 5474 ext4_group_t group; 5475 ext4_grpblk_t bit; 5476 5477 trace_ext4_mb_release_group_pa(sb, pa); 5478 BUG_ON(pa->pa_deleted == 0); 5479 ext4_get_group_no_and_offset(sb, pa->pa_pstart, &group, &bit); 5480 if (unlikely(group != e4b->bd_group && pa->pa_len != 0)) { 5481 ext4_warning(sb, "bad group: expected %u, group %u, pa_start %llu", 5482 e4b->bd_group, group, pa->pa_pstart); 5483 return; 5484 } 5485 mb_free_blocks(pa->pa_inode, e4b, bit, pa->pa_len); 5486 atomic_add(pa->pa_len, &EXT4_SB(sb)->s_mb_discarded); 5487 trace_ext4_mballoc_discard(sb, NULL, group, bit, pa->pa_len); 5488 } 5489 5490 /* 5491 * releases all preallocations in given group 5492 * 5493 * first, we need to decide discard policy: 5494 * - when do we discard 5495 * 1) ENOSPC 5496 * - how many do we discard 5497 * 1) how many requested 5498 */ 5499 static noinline_for_stack int 5500 ext4_mb_discard_group_preallocations(struct super_block *sb, 5501 ext4_group_t group, int *busy) 5502 { 5503 struct ext4_group_info *grp = ext4_get_group_info(sb, group); 5504 struct buffer_head *bitmap_bh = NULL; 5505 struct ext4_prealloc_space *pa, *tmp; 5506 LIST_HEAD(list); 5507 struct ext4_buddy e4b; 5508 struct ext4_inode_info *ei; 5509 int err; 5510 int free = 0; 5511 5512 if (!grp) 5513 return 0; 5514 mb_debug(sb, "discard preallocation for group %u\n", group); 5515 if (list_empty(&grp->bb_prealloc_list)) 5516 goto out_dbg; 5517 5518 bitmap_bh = ext4_read_block_bitmap(sb, group); 5519 if (IS_ERR(bitmap_bh)) { 5520 err = PTR_ERR(bitmap_bh); 5521 ext4_error_err(sb, -err, 5522 "Error %d reading block bitmap for %u", 5523 err, group); 5524 goto out_dbg; 5525 } 5526 5527 err = ext4_mb_load_buddy(sb, group, &e4b); 5528 if (err) { 5529 ext4_warning(sb, "Error %d loading buddy information for %u", 5530 err, group); 5531 put_bh(bitmap_bh); 5532 goto out_dbg; 5533 } 5534 5535 ext4_lock_group(sb, group); 5536 list_for_each_entry_safe(pa, tmp, 5537 &grp->bb_prealloc_list, pa_group_list) { 5538 spin_lock(&pa->pa_lock); 5539 if (atomic_read(&pa->pa_count)) { 5540 spin_unlock(&pa->pa_lock); 5541 *busy = 1; 5542 continue; 5543 } 5544 if (pa->pa_deleted) { 5545 spin_unlock(&pa->pa_lock); 5546 continue; 5547 } 5548 5549 /* seems this one can be freed ... */ 5550 ext4_mb_mark_pa_deleted(sb, pa); 5551 5552 if (!free) 5553 this_cpu_inc(discard_pa_seq); 5554 5555 /* we can trust pa_free ... */ 5556 free += pa->pa_free; 5557 5558 spin_unlock(&pa->pa_lock); 5559 5560 list_del(&pa->pa_group_list); 5561 list_add(&pa->u.pa_tmp_list, &list); 5562 } 5563 5564 /* now free all selected PAs */ 5565 list_for_each_entry_safe(pa, tmp, &list, u.pa_tmp_list) { 5566 5567 /* remove from object (inode or locality group) */ 5568 if (pa->pa_type == MB_GROUP_PA) { 5569 spin_lock(pa->pa_node_lock.lg_lock); 5570 list_del_rcu(&pa->pa_node.lg_list); 5571 spin_unlock(pa->pa_node_lock.lg_lock); 5572 } else { 5573 write_lock(pa->pa_node_lock.inode_lock); 5574 ei = EXT4_I(pa->pa_inode); 5575 rb_erase(&pa->pa_node.inode_node, &ei->i_prealloc_node); 5576 write_unlock(pa->pa_node_lock.inode_lock); 5577 } 5578 5579 list_del(&pa->u.pa_tmp_list); 5580 5581 if (pa->pa_type == MB_GROUP_PA) { 5582 ext4_mb_release_group_pa(&e4b, pa); 5583 call_rcu(&(pa)->u.pa_rcu, ext4_mb_pa_callback); 5584 } else { 5585 ext4_mb_release_inode_pa(&e4b, bitmap_bh, pa); 5586 ext4_mb_pa_free(pa); 5587 } 5588 } 5589 5590 ext4_unlock_group(sb, group); 5591 ext4_mb_unload_buddy(&e4b); 5592 put_bh(bitmap_bh); 5593 out_dbg: 5594 mb_debug(sb, "discarded (%d) blocks preallocated for group %u bb_free (%d)\n", 5595 free, group, grp->bb_free); 5596 return free; 5597 } 5598 5599 /* 5600 * releases all non-used preallocated blocks for given inode 5601 * 5602 * It's important to discard preallocations under i_data_sem 5603 * We don't want another block to be served from the prealloc 5604 * space when we are discarding the inode prealloc space. 5605 * 5606 * FIXME!! Make sure it is valid at all the call sites 5607 */ 5608 void ext4_discard_preallocations(struct inode *inode) 5609 { 5610 struct ext4_inode_info *ei = EXT4_I(inode); 5611 struct super_block *sb = inode->i_sb; 5612 struct buffer_head *bitmap_bh = NULL; 5613 struct ext4_prealloc_space *pa, *tmp; 5614 ext4_group_t group = 0; 5615 LIST_HEAD(list); 5616 struct ext4_buddy e4b; 5617 struct rb_node *iter; 5618 int err; 5619 5620 if (!S_ISREG(inode->i_mode)) 5621 return; 5622 5623 if (EXT4_SB(sb)->s_mount_state & EXT4_FC_REPLAY) 5624 return; 5625 5626 mb_debug(sb, "discard preallocation for inode %llu\n", 5627 inode->i_ino); 5628 trace_ext4_discard_preallocations(inode, 5629 atomic_read(&ei->i_prealloc_active)); 5630 5631 repeat: 5632 /* first, collect all pa's in the inode */ 5633 write_lock(&ei->i_prealloc_lock); 5634 for (iter = rb_first(&ei->i_prealloc_node); iter; 5635 iter = rb_next(iter)) { 5636 pa = rb_entry(iter, struct ext4_prealloc_space, 5637 pa_node.inode_node); 5638 BUG_ON(pa->pa_node_lock.inode_lock != &ei->i_prealloc_lock); 5639 5640 spin_lock(&pa->pa_lock); 5641 if (atomic_read(&pa->pa_count)) { 5642 /* this shouldn't happen often - nobody should 5643 * use preallocation while we're discarding it */ 5644 spin_unlock(&pa->pa_lock); 5645 write_unlock(&ei->i_prealloc_lock); 5646 ext4_msg(sb, KERN_ERR, 5647 "uh-oh! used pa while discarding"); 5648 WARN_ON(1); 5649 schedule_timeout_uninterruptible(HZ); 5650 goto repeat; 5651 5652 } 5653 if (pa->pa_deleted == 0) { 5654 ext4_mb_mark_pa_deleted(sb, pa); 5655 spin_unlock(&pa->pa_lock); 5656 rb_erase(&pa->pa_node.inode_node, &ei->i_prealloc_node); 5657 list_add(&pa->u.pa_tmp_list, &list); 5658 continue; 5659 } 5660 5661 /* someone is deleting pa right now */ 5662 spin_unlock(&pa->pa_lock); 5663 write_unlock(&ei->i_prealloc_lock); 5664 5665 /* we have to wait here because pa_deleted 5666 * doesn't mean pa is already unlinked from 5667 * the list. as we might be called from 5668 * ->clear_inode() the inode will get freed 5669 * and concurrent thread which is unlinking 5670 * pa from inode's list may access already 5671 * freed memory, bad-bad-bad */ 5672 5673 /* XXX: if this happens too often, we can 5674 * add a flag to force wait only in case 5675 * of ->clear_inode(), but not in case of 5676 * regular truncate */ 5677 schedule_timeout_uninterruptible(HZ); 5678 goto repeat; 5679 } 5680 write_unlock(&ei->i_prealloc_lock); 5681 5682 list_for_each_entry_safe(pa, tmp, &list, u.pa_tmp_list) { 5683 BUG_ON(pa->pa_type != MB_INODE_PA); 5684 group = ext4_get_group_number(sb, pa->pa_pstart); 5685 5686 err = ext4_mb_load_buddy_gfp(sb, group, &e4b, 5687 GFP_NOFS|__GFP_NOFAIL); 5688 if (err) { 5689 ext4_error_err(sb, -err, "Error %d loading buddy information for %u", 5690 err, group); 5691 continue; 5692 } 5693 5694 bitmap_bh = ext4_read_block_bitmap(sb, group); 5695 if (IS_ERR(bitmap_bh)) { 5696 err = PTR_ERR(bitmap_bh); 5697 ext4_error_err(sb, -err, "Error %d reading block bitmap for %u", 5698 err, group); 5699 ext4_mb_unload_buddy(&e4b); 5700 continue; 5701 } 5702 5703 ext4_lock_group(sb, group); 5704 list_del(&pa->pa_group_list); 5705 ext4_mb_release_inode_pa(&e4b, bitmap_bh, pa); 5706 ext4_unlock_group(sb, group); 5707 5708 ext4_mb_unload_buddy(&e4b); 5709 put_bh(bitmap_bh); 5710 5711 list_del(&pa->u.pa_tmp_list); 5712 ext4_mb_pa_free(pa); 5713 } 5714 } 5715 5716 static int ext4_mb_pa_alloc(struct ext4_allocation_context *ac) 5717 { 5718 struct ext4_prealloc_space *pa; 5719 5720 BUG_ON(ext4_pspace_cachep == NULL); 5721 pa = kmem_cache_zalloc(ext4_pspace_cachep, GFP_NOFS); 5722 if (!pa) 5723 return -ENOMEM; 5724 atomic_set(&pa->pa_count, 1); 5725 ac->ac_pa = pa; 5726 return 0; 5727 } 5728 5729 static void ext4_mb_pa_put_free(struct ext4_allocation_context *ac) 5730 { 5731 struct ext4_prealloc_space *pa = ac->ac_pa; 5732 5733 BUG_ON(!pa); 5734 ac->ac_pa = NULL; 5735 WARN_ON(!atomic_dec_and_test(&pa->pa_count)); 5736 /* 5737 * current function is only called due to an error or due to 5738 * len of found blocks < len of requested blocks hence the PA has not 5739 * been added to grp->bb_prealloc_list. So we don't need to lock it 5740 */ 5741 pa->pa_deleted = 1; 5742 ext4_mb_pa_free(pa); 5743 } 5744 5745 #ifdef CONFIG_EXT4_DEBUG 5746 static inline void ext4_mb_show_pa(struct super_block *sb) 5747 { 5748 ext4_group_t i, ngroups; 5749 5750 if (ext4_emergency_state(sb)) 5751 return; 5752 5753 ngroups = ext4_get_groups_count(sb); 5754 mb_debug(sb, "groups: "); 5755 for (i = 0; i < ngroups; i++) { 5756 struct ext4_group_info *grp = ext4_get_group_info(sb, i); 5757 struct ext4_prealloc_space *pa; 5758 ext4_grpblk_t start; 5759 struct list_head *cur; 5760 5761 if (!grp) 5762 continue; 5763 ext4_lock_group(sb, i); 5764 list_for_each(cur, &grp->bb_prealloc_list) { 5765 pa = list_entry(cur, struct ext4_prealloc_space, 5766 pa_group_list); 5767 spin_lock(&pa->pa_lock); 5768 ext4_get_group_no_and_offset(sb, pa->pa_pstart, 5769 NULL, &start); 5770 spin_unlock(&pa->pa_lock); 5771 mb_debug(sb, "PA:%u:%d:%d\n", i, start, 5772 pa->pa_len); 5773 } 5774 ext4_unlock_group(sb, i); 5775 mb_debug(sb, "%u: %d/%d\n", i, grp->bb_free, 5776 grp->bb_fragments); 5777 } 5778 } 5779 5780 static void ext4_mb_show_ac(struct ext4_allocation_context *ac) 5781 { 5782 struct super_block *sb = ac->ac_sb; 5783 5784 if (ext4_emergency_state(sb)) 5785 return; 5786 5787 mb_debug(sb, "Can't allocate:" 5788 " Allocation context details:"); 5789 mb_debug(sb, "status %u flags 0x%x", 5790 ac->ac_status, ac->ac_flags); 5791 mb_debug(sb, "orig %lu/%lu/%lu@%lu, " 5792 "goal %lu/%lu/%lu@%lu, " 5793 "best %lu/%lu/%lu@%lu cr %d", 5794 (unsigned long)ac->ac_o_ex.fe_group, 5795 (unsigned long)ac->ac_o_ex.fe_start, 5796 (unsigned long)ac->ac_o_ex.fe_len, 5797 (unsigned long)ac->ac_o_ex.fe_logical, 5798 (unsigned long)ac->ac_g_ex.fe_group, 5799 (unsigned long)ac->ac_g_ex.fe_start, 5800 (unsigned long)ac->ac_g_ex.fe_len, 5801 (unsigned long)ac->ac_g_ex.fe_logical, 5802 (unsigned long)ac->ac_b_ex.fe_group, 5803 (unsigned long)ac->ac_b_ex.fe_start, 5804 (unsigned long)ac->ac_b_ex.fe_len, 5805 (unsigned long)ac->ac_b_ex.fe_logical, 5806 (int)ac->ac_criteria); 5807 mb_debug(sb, "%u found", ac->ac_found); 5808 mb_debug(sb, "used pa: %s, ", str_yes_no(ac->ac_pa)); 5809 if (ac->ac_pa) 5810 mb_debug(sb, "pa_type %s\n", ac->ac_pa->pa_type == MB_GROUP_PA ? 5811 "group pa" : "inode pa"); 5812 ext4_mb_show_pa(sb); 5813 } 5814 #else 5815 static inline void ext4_mb_show_pa(struct super_block *sb) 5816 { 5817 } 5818 static inline void ext4_mb_show_ac(struct ext4_allocation_context *ac) 5819 { 5820 ext4_mb_show_pa(ac->ac_sb); 5821 } 5822 #endif 5823 5824 /* 5825 * We use locality group preallocation for small size file. The size of the 5826 * file is determined by the current size or the resulting size after 5827 * allocation which ever is larger 5828 * 5829 * One can tune this size via /sys/fs/ext4/<partition>/mb_stream_req 5830 */ 5831 static void ext4_mb_group_or_file(struct ext4_allocation_context *ac) 5832 { 5833 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 5834 int bsbits = ac->ac_sb->s_blocksize_bits; 5835 loff_t size, isize; 5836 bool inode_pa_eligible, group_pa_eligible; 5837 5838 if (!(ac->ac_flags & EXT4_MB_HINT_DATA)) 5839 return; 5840 5841 if (unlikely(ac->ac_flags & EXT4_MB_HINT_GOAL_ONLY)) 5842 return; 5843 5844 group_pa_eligible = sbi->s_mb_group_prealloc > 0; 5845 inode_pa_eligible = true; 5846 size = extent_logical_end(sbi, &ac->ac_o_ex); 5847 isize = (i_size_read(ac->ac_inode) + ac->ac_sb->s_blocksize - 1) 5848 >> bsbits; 5849 5850 /* No point in using inode preallocation for closed files */ 5851 if ((size == isize) && !ext4_fs_is_busy(sbi) && 5852 !inode_is_open_for_write(ac->ac_inode)) 5853 inode_pa_eligible = false; 5854 5855 size = max(size, isize); 5856 /* Don't use group allocation for large files */ 5857 if (size > sbi->s_mb_stream_request) 5858 group_pa_eligible = false; 5859 5860 if (!group_pa_eligible) { 5861 if (inode_pa_eligible) 5862 ac->ac_flags |= EXT4_MB_STREAM_ALLOC; 5863 else 5864 ac->ac_flags |= EXT4_MB_HINT_NOPREALLOC; 5865 return; 5866 } 5867 5868 BUG_ON(ac->ac_lg != NULL); 5869 /* 5870 * locality group prealloc space are per cpu. The reason for having 5871 * per cpu locality group is to reduce the contention between block 5872 * request from multiple CPUs. 5873 */ 5874 ac->ac_lg = raw_cpu_ptr(sbi->s_locality_groups); 5875 5876 /* we're going to use group allocation */ 5877 ac->ac_flags |= EXT4_MB_HINT_GROUP_ALLOC; 5878 5879 /* serialize all allocations in the group */ 5880 mutex_lock(&ac->ac_lg->lg_mutex); 5881 } 5882 5883 static noinline_for_stack void 5884 ext4_mb_initialize_context(struct ext4_allocation_context *ac, 5885 struct ext4_allocation_request *ar) 5886 { 5887 struct super_block *sb = ar->inode->i_sb; 5888 struct ext4_sb_info *sbi = EXT4_SB(sb); 5889 struct ext4_super_block *es = sbi->s_es; 5890 ext4_group_t group; 5891 unsigned int len; 5892 ext4_fsblk_t goal; 5893 ext4_grpblk_t block; 5894 5895 /* we can't allocate > group size */ 5896 len = ar->len; 5897 5898 /* just a dirty hack to filter too big requests */ 5899 if (len >= EXT4_CLUSTERS_PER_GROUP(sb)) 5900 len = EXT4_CLUSTERS_PER_GROUP(sb); 5901 5902 /* start searching from the goal */ 5903 goal = ar->goal; 5904 if (goal < le32_to_cpu(es->s_first_data_block) || 5905 goal >= ext4_blocks_count(es)) 5906 goal = le32_to_cpu(es->s_first_data_block); 5907 ext4_get_group_no_and_offset(sb, goal, &group, &block); 5908 5909 /* set up allocation goals */ 5910 ac->ac_b_ex.fe_logical = EXT4_LBLK_CMASK(sbi, ar->logical); 5911 ac->ac_status = AC_STATUS_CONTINUE; 5912 ac->ac_sb = sb; 5913 ac->ac_inode = ar->inode; 5914 ac->ac_o_ex.fe_logical = ac->ac_b_ex.fe_logical; 5915 ac->ac_o_ex.fe_group = group; 5916 ac->ac_o_ex.fe_start = block; 5917 ac->ac_o_ex.fe_len = len; 5918 ac->ac_g_ex = ac->ac_o_ex; 5919 ac->ac_orig_goal_len = ac->ac_g_ex.fe_len; 5920 ac->ac_flags = ar->flags; 5921 5922 /* we have to define context: we'll work with a file or 5923 * locality group. this is a policy, actually */ 5924 ext4_mb_group_or_file(ac); 5925 5926 mb_debug(sb, "init ac: %u blocks @ %u, goal %u, flags 0x%x, 2^%d, " 5927 "left: %u/%u, right %u/%u to %swritable\n", 5928 (unsigned) ar->len, (unsigned) ar->logical, 5929 (unsigned) ar->goal, ac->ac_flags, ac->ac_2order, 5930 (unsigned) ar->lleft, (unsigned) ar->pleft, 5931 (unsigned) ar->lright, (unsigned) ar->pright, 5932 inode_is_open_for_write(ar->inode) ? "" : "non-"); 5933 } 5934 5935 static noinline_for_stack void 5936 ext4_mb_discard_lg_preallocations(struct super_block *sb, 5937 struct ext4_locality_group *lg, 5938 int order, int total_entries) 5939 { 5940 ext4_group_t group = 0; 5941 struct ext4_buddy e4b; 5942 LIST_HEAD(discard_list); 5943 struct ext4_prealloc_space *pa, *tmp; 5944 5945 mb_debug(sb, "discard locality group preallocation\n"); 5946 5947 spin_lock(&lg->lg_prealloc_lock); 5948 list_for_each_entry_rcu(pa, &lg->lg_prealloc_list[order], 5949 pa_node.lg_list, 5950 lockdep_is_held(&lg->lg_prealloc_lock)) { 5951 spin_lock(&pa->pa_lock); 5952 if (atomic_read(&pa->pa_count)) { 5953 /* 5954 * This is the pa that we just used 5955 * for block allocation. So don't 5956 * free that 5957 */ 5958 spin_unlock(&pa->pa_lock); 5959 continue; 5960 } 5961 if (pa->pa_deleted) { 5962 spin_unlock(&pa->pa_lock); 5963 continue; 5964 } 5965 /* only lg prealloc space */ 5966 BUG_ON(pa->pa_type != MB_GROUP_PA); 5967 5968 /* seems this one can be freed ... */ 5969 ext4_mb_mark_pa_deleted(sb, pa); 5970 spin_unlock(&pa->pa_lock); 5971 5972 list_del_rcu(&pa->pa_node.lg_list); 5973 list_add(&pa->u.pa_tmp_list, &discard_list); 5974 5975 total_entries--; 5976 if (total_entries <= 5) { 5977 /* 5978 * we want to keep only 5 entries 5979 * allowing it to grow to 8. This 5980 * mak sure we don't call discard 5981 * soon for this list. 5982 */ 5983 break; 5984 } 5985 } 5986 spin_unlock(&lg->lg_prealloc_lock); 5987 5988 list_for_each_entry_safe(pa, tmp, &discard_list, u.pa_tmp_list) { 5989 int err; 5990 5991 group = ext4_get_group_number(sb, pa->pa_pstart); 5992 err = ext4_mb_load_buddy_gfp(sb, group, &e4b, 5993 GFP_NOFS|__GFP_NOFAIL); 5994 if (err) { 5995 ext4_error_err(sb, -err, "Error %d loading buddy information for %u", 5996 err, group); 5997 continue; 5998 } 5999 ext4_lock_group(sb, group); 6000 list_del(&pa->pa_group_list); 6001 ext4_mb_release_group_pa(&e4b, pa); 6002 ext4_unlock_group(sb, group); 6003 6004 ext4_mb_unload_buddy(&e4b); 6005 list_del(&pa->u.pa_tmp_list); 6006 call_rcu(&(pa)->u.pa_rcu, ext4_mb_pa_callback); 6007 } 6008 } 6009 6010 /* 6011 * We have incremented pa_count. So it cannot be freed at this 6012 * point. Also we hold lg_mutex. So no parallel allocation is 6013 * possible from this lg. That means pa_free cannot be updated. 6014 * 6015 * A parallel ext4_mb_discard_group_preallocations is possible. 6016 * which can cause the lg_prealloc_list to be updated. 6017 */ 6018 6019 static void ext4_mb_add_n_trim(struct ext4_allocation_context *ac) 6020 { 6021 int order, added = 0, lg_prealloc_count = 1; 6022 struct super_block *sb = ac->ac_sb; 6023 struct ext4_locality_group *lg = ac->ac_lg; 6024 struct ext4_prealloc_space *tmp_pa, *pa = ac->ac_pa; 6025 6026 order = fls(pa->pa_free) - 1; 6027 if (order > PREALLOC_TB_SIZE - 1) 6028 /* The max size of hash table is PREALLOC_TB_SIZE */ 6029 order = PREALLOC_TB_SIZE - 1; 6030 /* Add the prealloc space to lg */ 6031 spin_lock(&lg->lg_prealloc_lock); 6032 list_for_each_entry_rcu(tmp_pa, &lg->lg_prealloc_list[order], 6033 pa_node.lg_list, 6034 lockdep_is_held(&lg->lg_prealloc_lock)) { 6035 spin_lock(&tmp_pa->pa_lock); 6036 if (tmp_pa->pa_deleted) { 6037 spin_unlock(&tmp_pa->pa_lock); 6038 continue; 6039 } 6040 if (!added && pa->pa_free < tmp_pa->pa_free) { 6041 /* Add to the tail of the previous entry */ 6042 list_add_tail_rcu(&pa->pa_node.lg_list, 6043 &tmp_pa->pa_node.lg_list); 6044 added = 1; 6045 /* 6046 * we want to count the total 6047 * number of entries in the list 6048 */ 6049 } 6050 spin_unlock(&tmp_pa->pa_lock); 6051 lg_prealloc_count++; 6052 } 6053 if (!added) 6054 list_add_tail_rcu(&pa->pa_node.lg_list, 6055 &lg->lg_prealloc_list[order]); 6056 spin_unlock(&lg->lg_prealloc_lock); 6057 6058 /* Now trim the list to be not more than 8 elements */ 6059 if (lg_prealloc_count > 8) 6060 ext4_mb_discard_lg_preallocations(sb, lg, 6061 order, lg_prealloc_count); 6062 } 6063 6064 /* 6065 * release all resource we used in allocation 6066 */ 6067 static void ext4_mb_release_context(struct ext4_allocation_context *ac) 6068 { 6069 struct ext4_sb_info *sbi = EXT4_SB(ac->ac_sb); 6070 struct ext4_prealloc_space *pa = ac->ac_pa; 6071 if (pa) { 6072 if (pa->pa_type == MB_GROUP_PA) { 6073 /* see comment in ext4_mb_use_group_pa() */ 6074 spin_lock(&pa->pa_lock); 6075 pa->pa_pstart += EXT4_C2B(sbi, ac->ac_b_ex.fe_len); 6076 pa->pa_lstart += EXT4_C2B(sbi, ac->ac_b_ex.fe_len); 6077 pa->pa_free -= ac->ac_b_ex.fe_len; 6078 pa->pa_len -= ac->ac_b_ex.fe_len; 6079 spin_unlock(&pa->pa_lock); 6080 6081 /* 6082 * We want to add the pa to the right bucket. 6083 * Remove it from the list and while adding 6084 * make sure the list to which we are adding 6085 * doesn't grow big. 6086 */ 6087 if (likely(pa->pa_free)) { 6088 spin_lock(pa->pa_node_lock.lg_lock); 6089 list_del_rcu(&pa->pa_node.lg_list); 6090 spin_unlock(pa->pa_node_lock.lg_lock); 6091 ext4_mb_add_n_trim(ac); 6092 } 6093 } 6094 6095 ext4_mb_put_pa(ac, ac->ac_sb, pa); 6096 } 6097 if (ac->ac_bitmap_folio) 6098 folio_put(ac->ac_bitmap_folio); 6099 if (ac->ac_buddy_folio) 6100 folio_put(ac->ac_buddy_folio); 6101 if (ac->ac_flags & EXT4_MB_HINT_GROUP_ALLOC) 6102 mutex_unlock(&ac->ac_lg->lg_mutex); 6103 ext4_mb_collect_stats(ac); 6104 } 6105 6106 static int ext4_mb_discard_preallocations(struct super_block *sb, int needed) 6107 { 6108 ext4_group_t i, ngroups = ext4_get_groups_count(sb); 6109 int ret; 6110 int freed = 0, busy = 0; 6111 int retry = 0; 6112 6113 trace_ext4_mb_discard_preallocations(sb, needed); 6114 6115 if (needed == 0) 6116 needed = EXT4_CLUSTERS_PER_GROUP(sb) + 1; 6117 repeat: 6118 for (i = 0; i < ngroups && needed > 0; i++) { 6119 ret = ext4_mb_discard_group_preallocations(sb, i, &busy); 6120 freed += ret; 6121 needed -= ret; 6122 cond_resched(); 6123 } 6124 6125 if (needed > 0 && busy && ++retry < 3) { 6126 busy = 0; 6127 goto repeat; 6128 } 6129 6130 return freed; 6131 } 6132 6133 static bool ext4_mb_discard_preallocations_should_retry(struct super_block *sb, 6134 struct ext4_allocation_context *ac, u64 *seq) 6135 { 6136 int freed; 6137 u64 seq_retry = 0; 6138 bool ret = false; 6139 6140 freed = ext4_mb_discard_preallocations(sb, ac->ac_o_ex.fe_len); 6141 if (freed) { 6142 ret = true; 6143 goto out_dbg; 6144 } 6145 seq_retry = ext4_get_discard_pa_seq_sum(); 6146 if (!(ac->ac_flags & EXT4_MB_STRICT_CHECK) || seq_retry != *seq) { 6147 ac->ac_flags |= EXT4_MB_STRICT_CHECK; 6148 *seq = seq_retry; 6149 ret = true; 6150 } 6151 6152 out_dbg: 6153 mb_debug(sb, "freed %d, retry ? %s\n", freed, str_yes_no(ret)); 6154 return ret; 6155 } 6156 6157 /* 6158 * Simple allocator for Ext4 fast commit replay path. It searches for blocks 6159 * linearly starting at the goal block and also excludes the blocks which 6160 * are going to be in use after fast commit replay. 6161 */ 6162 static ext4_fsblk_t 6163 ext4_mb_new_blocks_simple(struct ext4_allocation_request *ar, int *errp) 6164 { 6165 struct buffer_head *bitmap_bh; 6166 struct super_block *sb = ar->inode->i_sb; 6167 struct ext4_sb_info *sbi = EXT4_SB(sb); 6168 ext4_group_t group, nr; 6169 ext4_grpblk_t blkoff; 6170 ext4_grpblk_t max = EXT4_CLUSTERS_PER_GROUP(sb); 6171 ext4_grpblk_t i = 0; 6172 ext4_fsblk_t goal, block; 6173 struct ext4_super_block *es = sbi->s_es; 6174 6175 goal = ar->goal; 6176 if (goal < le32_to_cpu(es->s_first_data_block) || 6177 goal >= ext4_blocks_count(es)) 6178 goal = le32_to_cpu(es->s_first_data_block); 6179 6180 ar->len = 0; 6181 ext4_get_group_no_and_offset(sb, goal, &group, &blkoff); 6182 for (nr = ext4_get_groups_count(sb); nr > 0; nr--) { 6183 bitmap_bh = ext4_read_block_bitmap(sb, group); 6184 if (IS_ERR(bitmap_bh)) { 6185 *errp = PTR_ERR(bitmap_bh); 6186 pr_warn("Failed to read block bitmap\n"); 6187 return 0; 6188 } 6189 6190 while (1) { 6191 i = mb_find_next_zero_bit(bitmap_bh->b_data, max, 6192 blkoff); 6193 if (i >= max) 6194 break; 6195 if (ext4_fc_replay_check_excluded(sb, 6196 ext4_group_first_block_no(sb, group) + 6197 EXT4_C2B(sbi, i))) { 6198 blkoff = i + 1; 6199 } else 6200 break; 6201 } 6202 brelse(bitmap_bh); 6203 if (i < max) 6204 break; 6205 6206 if (++group >= ext4_get_groups_count(sb)) 6207 group = 0; 6208 6209 blkoff = 0; 6210 } 6211 6212 if (i >= max) { 6213 *errp = -ENOSPC; 6214 return 0; 6215 } 6216 6217 block = ext4_group_first_block_no(sb, group) + EXT4_C2B(sbi, i); 6218 ext4_mb_mark_bb(sb, block, 1, true); 6219 ar->len = 1; 6220 6221 *errp = 0; 6222 return block; 6223 } 6224 6225 /* 6226 * Main entry point into mballoc to allocate blocks 6227 * it tries to use preallocation first, then falls back 6228 * to usual allocation 6229 */ 6230 ext4_fsblk_t ext4_mb_new_blocks(handle_t *handle, 6231 struct ext4_allocation_request *ar, int *errp) 6232 { 6233 struct ext4_allocation_context *ac = NULL; 6234 struct ext4_sb_info *sbi; 6235 struct super_block *sb; 6236 ext4_fsblk_t block = 0; 6237 unsigned int inquota = 0; 6238 unsigned int reserv_clstrs = 0; 6239 int retries = 0; 6240 u64 seq; 6241 6242 might_sleep(); 6243 sb = ar->inode->i_sb; 6244 sbi = EXT4_SB(sb); 6245 6246 trace_ext4_request_blocks(ar); 6247 if (sbi->s_mount_state & EXT4_FC_REPLAY) 6248 return ext4_mb_new_blocks_simple(ar, errp); 6249 6250 /* Allow to use superuser reservation for quota file */ 6251 if (ext4_is_quota_file(ar->inode)) 6252 ar->flags |= EXT4_MB_USE_ROOT_BLOCKS; 6253 6254 if ((ar->flags & EXT4_MB_DELALLOC_RESERVED) == 0) { 6255 /* Without delayed allocation we need to verify 6256 * there is enough free blocks to do block allocation 6257 * and verify allocation doesn't exceed the quota limits. 6258 */ 6259 while (ar->len && 6260 ext4_claim_free_clusters(sbi, ar->len, ar->flags)) { 6261 6262 /* let others to free the space */ 6263 cond_resched(); 6264 ar->len = ar->len >> 1; 6265 } 6266 if (!ar->len) { 6267 ext4_mb_show_pa(sb); 6268 *errp = -ENOSPC; 6269 return 0; 6270 } 6271 reserv_clstrs = ar->len; 6272 if (ar->flags & EXT4_MB_USE_ROOT_BLOCKS) { 6273 dquot_alloc_block_nofail(ar->inode, 6274 EXT4_C2B(sbi, ar->len)); 6275 } else { 6276 while (ar->len && 6277 dquot_alloc_block(ar->inode, 6278 EXT4_C2B(sbi, ar->len))) { 6279 6280 ar->flags |= EXT4_MB_HINT_NOPREALLOC; 6281 ar->len--; 6282 } 6283 } 6284 inquota = ar->len; 6285 if (ar->len == 0) { 6286 *errp = -EDQUOT; 6287 goto out; 6288 } 6289 } 6290 6291 ac = kmem_cache_zalloc(ext4_ac_cachep, GFP_NOFS); 6292 if (!ac) { 6293 ar->len = 0; 6294 *errp = -ENOMEM; 6295 goto out; 6296 } 6297 6298 ext4_mb_initialize_context(ac, ar); 6299 6300 ac->ac_op = EXT4_MB_HISTORY_PREALLOC; 6301 seq = this_cpu_read(discard_pa_seq); 6302 if (!ext4_mb_use_preallocated(ac)) { 6303 ac->ac_op = EXT4_MB_HISTORY_ALLOC; 6304 ext4_mb_normalize_request(ac, ar); 6305 6306 *errp = ext4_mb_pa_alloc(ac); 6307 if (*errp) 6308 goto errout; 6309 repeat: 6310 /* allocate space in core */ 6311 *errp = ext4_mb_regular_allocator(ac); 6312 /* 6313 * pa allocated above is added to grp->bb_prealloc_list only 6314 * when we were able to allocate some block i.e. when 6315 * ac->ac_status == AC_STATUS_FOUND. 6316 * And error from above mean ac->ac_status != AC_STATUS_FOUND 6317 * So we have to free this pa here itself. 6318 */ 6319 if (*errp) { 6320 ext4_mb_pa_put_free(ac); 6321 ext4_discard_allocated_blocks(ac); 6322 goto errout; 6323 } 6324 if (ac->ac_status == AC_STATUS_FOUND && 6325 ac->ac_o_ex.fe_len >= ac->ac_f_ex.fe_len) 6326 ext4_mb_pa_put_free(ac); 6327 } 6328 if (likely(ac->ac_status == AC_STATUS_FOUND)) { 6329 *errp = ext4_mb_mark_diskspace_used(ac, handle); 6330 if (*errp) { 6331 ext4_discard_allocated_blocks(ac); 6332 goto errout; 6333 } else { 6334 block = ext4_grp_offs_to_block(sb, &ac->ac_b_ex); 6335 ar->len = ac->ac_b_ex.fe_len; 6336 } 6337 } else { 6338 if (++retries < 3 && 6339 ext4_mb_discard_preallocations_should_retry(sb, ac, &seq)) 6340 goto repeat; 6341 /* 6342 * If block allocation fails then the pa allocated above 6343 * needs to be freed here itself. 6344 */ 6345 ext4_mb_pa_put_free(ac); 6346 *errp = -ENOSPC; 6347 } 6348 6349 if (*errp) { 6350 errout: 6351 ac->ac_b_ex.fe_len = 0; 6352 ar->len = 0; 6353 ext4_mb_show_ac(ac); 6354 } 6355 ext4_mb_release_context(ac); 6356 kmem_cache_free(ext4_ac_cachep, ac); 6357 out: 6358 if (inquota && ar->len < inquota) 6359 dquot_free_block(ar->inode, EXT4_C2B(sbi, inquota - ar->len)); 6360 /* release any reserved blocks */ 6361 if (reserv_clstrs) 6362 percpu_counter_sub(&sbi->s_dirtyclusters_counter, reserv_clstrs); 6363 6364 trace_ext4_allocate_blocks(ar, (unsigned long long)block); 6365 6366 return block; 6367 } 6368 6369 /* 6370 * We can merge two free data extents only if the physical blocks 6371 * are contiguous, AND the extents were freed by the same transaction, 6372 * AND the blocks are associated with the same group. 6373 */ 6374 static inline bool 6375 ext4_freed_extents_can_be_merged(struct ext4_free_data *entry1, 6376 struct ext4_free_data *entry2) 6377 { 6378 if (entry1->efd_tid != entry2->efd_tid) 6379 return false; 6380 if (entry1->efd_start_cluster + entry1->efd_count != 6381 entry2->efd_start_cluster) 6382 return false; 6383 if (WARN_ON_ONCE(entry1->efd_group != entry2->efd_group)) 6384 return false; 6385 return true; 6386 } 6387 6388 static inline void 6389 ext4_merge_freed_extents(struct ext4_sb_info *sbi, struct rb_root *root, 6390 struct ext4_free_data *entry1, 6391 struct ext4_free_data *entry2) 6392 { 6393 entry1->efd_count += entry2->efd_count; 6394 spin_lock(&sbi->s_md_lock); 6395 list_del(&entry2->efd_list); 6396 spin_unlock(&sbi->s_md_lock); 6397 rb_erase(&entry2->efd_node, root); 6398 kmem_cache_free(ext4_free_data_cachep, entry2); 6399 } 6400 6401 static inline void 6402 ext4_try_merge_freed_extent_prev(struct ext4_sb_info *sbi, struct rb_root *root, 6403 struct ext4_free_data *entry) 6404 { 6405 struct ext4_free_data *prev; 6406 struct rb_node *node; 6407 6408 node = rb_prev(&entry->efd_node); 6409 if (!node) 6410 return; 6411 6412 prev = rb_entry(node, struct ext4_free_data, efd_node); 6413 if (ext4_freed_extents_can_be_merged(prev, entry)) 6414 ext4_merge_freed_extents(sbi, root, prev, entry); 6415 } 6416 6417 static inline void 6418 ext4_try_merge_freed_extent_next(struct ext4_sb_info *sbi, struct rb_root *root, 6419 struct ext4_free_data *entry) 6420 { 6421 struct ext4_free_data *next; 6422 struct rb_node *node; 6423 6424 node = rb_next(&entry->efd_node); 6425 if (!node) 6426 return; 6427 6428 next = rb_entry(node, struct ext4_free_data, efd_node); 6429 if (ext4_freed_extents_can_be_merged(entry, next)) 6430 ext4_merge_freed_extents(sbi, root, entry, next); 6431 } 6432 6433 static noinline_for_stack void 6434 ext4_mb_free_metadata(handle_t *handle, struct ext4_buddy *e4b, 6435 struct ext4_free_data *new_entry) 6436 { 6437 ext4_group_t group = e4b->bd_group; 6438 ext4_grpblk_t cluster; 6439 ext4_grpblk_t clusters = new_entry->efd_count; 6440 struct ext4_free_data *entry = NULL; 6441 struct ext4_group_info *db = e4b->bd_info; 6442 struct super_block *sb = e4b->bd_sb; 6443 struct ext4_sb_info *sbi = EXT4_SB(sb); 6444 struct rb_root *root = &db->bb_free_root; 6445 struct rb_node **n = &root->rb_node; 6446 struct rb_node *parent = NULL, *new_node; 6447 6448 BUG_ON(!ext4_handle_valid(handle)); 6449 BUG_ON(e4b->bd_bitmap_folio == NULL); 6450 BUG_ON(e4b->bd_buddy_folio == NULL); 6451 6452 new_node = &new_entry->efd_node; 6453 cluster = new_entry->efd_start_cluster; 6454 6455 if (!*n) { 6456 /* first free block exent. We need to 6457 protect buddy cache from being freed, 6458 * otherwise we'll refresh it from 6459 * on-disk bitmap and lose not-yet-available 6460 * blocks */ 6461 folio_get(e4b->bd_buddy_folio); 6462 folio_get(e4b->bd_bitmap_folio); 6463 } 6464 while (*n) { 6465 parent = *n; 6466 entry = rb_entry(parent, struct ext4_free_data, efd_node); 6467 if (cluster < entry->efd_start_cluster) 6468 n = &(*n)->rb_left; 6469 else if (cluster >= (entry->efd_start_cluster + entry->efd_count)) 6470 n = &(*n)->rb_right; 6471 else { 6472 ext4_grp_locked_error(sb, group, 0, 6473 ext4_group_first_block_no(sb, group) + 6474 EXT4_C2B(sbi, cluster), 6475 "Block already on to-be-freed list"); 6476 kmem_cache_free(ext4_free_data_cachep, new_entry); 6477 return; 6478 } 6479 } 6480 6481 atomic_add(clusters, &sbi->s_mb_free_pending); 6482 if (!entry) 6483 goto insert; 6484 6485 /* Now try to see the extent can be merged to prev and next */ 6486 if (ext4_freed_extents_can_be_merged(new_entry, entry)) { 6487 entry->efd_start_cluster = cluster; 6488 entry->efd_count += new_entry->efd_count; 6489 kmem_cache_free(ext4_free_data_cachep, new_entry); 6490 ext4_try_merge_freed_extent_prev(sbi, root, entry); 6491 return; 6492 } 6493 if (ext4_freed_extents_can_be_merged(entry, new_entry)) { 6494 entry->efd_count += new_entry->efd_count; 6495 kmem_cache_free(ext4_free_data_cachep, new_entry); 6496 ext4_try_merge_freed_extent_next(sbi, root, entry); 6497 return; 6498 } 6499 insert: 6500 rb_link_node(new_node, parent, n); 6501 rb_insert_color(new_node, root); 6502 6503 spin_lock(&sbi->s_md_lock); 6504 list_add_tail(&new_entry->efd_list, &sbi->s_freed_data_list[new_entry->efd_tid & 1]); 6505 spin_unlock(&sbi->s_md_lock); 6506 } 6507 6508 static void ext4_free_blocks_simple(struct inode *inode, ext4_fsblk_t block, 6509 unsigned long count) 6510 { 6511 struct super_block *sb = inode->i_sb; 6512 ext4_group_t group; 6513 ext4_grpblk_t blkoff; 6514 6515 ext4_get_group_no_and_offset(sb, block, &group, &blkoff); 6516 ext4_mb_mark_context(NULL, sb, false, group, blkoff, count, 6517 EXT4_MB_BITMAP_MARKED_CHECK | 6518 EXT4_MB_SYNC_UPDATE, 6519 NULL); 6520 } 6521 6522 /** 6523 * ext4_mb_clear_bb() -- helper function for freeing blocks. 6524 * Used by ext4_free_blocks() 6525 * @handle: handle for this transaction 6526 * @inode: inode 6527 * @block: starting physical block to be freed 6528 * @count: number of blocks to be freed 6529 * @flags: flags used by ext4_free_blocks 6530 */ 6531 static void ext4_mb_clear_bb(handle_t *handle, struct inode *inode, 6532 ext4_fsblk_t block, unsigned long count, 6533 int flags) 6534 { 6535 struct super_block *sb = inode->i_sb; 6536 struct ext4_group_info *grp; 6537 unsigned int overflow; 6538 ext4_grpblk_t bit; 6539 ext4_group_t block_group; 6540 struct ext4_sb_info *sbi; 6541 struct ext4_buddy e4b; 6542 unsigned int count_clusters; 6543 int err = 0; 6544 int mark_flags = 0; 6545 ext4_grpblk_t changed; 6546 6547 sbi = EXT4_SB(sb); 6548 6549 if (!(flags & EXT4_FREE_BLOCKS_VALIDATED) && 6550 !ext4_inode_block_valid(inode, block, count)) { 6551 ext4_error(sb, "Freeing blocks in system zone - " 6552 "Block = %llu, count = %lu", block, count); 6553 /* err = 0. ext4_std_error should be a no op */ 6554 goto error_out; 6555 } 6556 flags |= EXT4_FREE_BLOCKS_VALIDATED; 6557 6558 do_more: 6559 overflow = 0; 6560 ext4_get_group_no_and_offset(sb, block, &block_group, &bit); 6561 6562 grp = ext4_get_group_info(sb, block_group); 6563 if (unlikely(!grp || EXT4_MB_GRP_BBITMAP_CORRUPT(grp))) 6564 return; 6565 6566 /* 6567 * Check to see if we are freeing blocks across a group 6568 * boundary. 6569 */ 6570 if (EXT4_C2B(sbi, bit) + count > EXT4_BLOCKS_PER_GROUP(sb)) { 6571 overflow = EXT4_C2B(sbi, bit) + count - 6572 EXT4_BLOCKS_PER_GROUP(sb); 6573 count -= overflow; 6574 /* The range changed so it's no longer validated */ 6575 flags &= ~EXT4_FREE_BLOCKS_VALIDATED; 6576 } 6577 count_clusters = EXT4_NUM_B2C(sbi, count); 6578 trace_ext4_mballoc_free(sb, inode, block_group, bit, count_clusters); 6579 6580 /* __GFP_NOFAIL: retry infinitely, ignore TIF_MEMDIE and memcg limit. */ 6581 err = ext4_mb_load_buddy_gfp(sb, block_group, &e4b, 6582 GFP_NOFS|__GFP_NOFAIL); 6583 if (err) 6584 goto error_out; 6585 6586 if (!(flags & EXT4_FREE_BLOCKS_VALIDATED) && 6587 !ext4_inode_block_valid(inode, block, count)) { 6588 ext4_error(sb, "Freeing blocks in system zone - " 6589 "Block = %llu, count = %lu", block, count); 6590 /* err = 0. ext4_std_error should be a no op */ 6591 goto error_clean; 6592 } 6593 6594 #ifdef AGGRESSIVE_CHECK 6595 mark_flags |= EXT4_MB_BITMAP_MARKED_CHECK; 6596 #endif 6597 err = ext4_mb_mark_context(handle, sb, false, block_group, bit, 6598 count_clusters, mark_flags, &changed); 6599 6600 6601 if (err && changed == 0) 6602 goto error_clean; 6603 6604 #ifdef AGGRESSIVE_CHECK 6605 BUG_ON(changed != count_clusters); 6606 #endif 6607 6608 /* 6609 * We need to make sure we don't reuse the freed block until after the 6610 * transaction is committed. We make an exception if the inode is to be 6611 * written in writeback mode since writeback mode has weak data 6612 * consistency guarantees. 6613 */ 6614 if (ext4_handle_valid(handle) && 6615 ((flags & EXT4_FREE_BLOCKS_METADATA) || 6616 !ext4_should_writeback_data(inode))) { 6617 struct ext4_free_data *new_entry; 6618 /* 6619 * We use __GFP_NOFAIL because ext4_free_blocks() is not allowed 6620 * to fail. 6621 */ 6622 new_entry = kmem_cache_alloc(ext4_free_data_cachep, 6623 GFP_NOFS|__GFP_NOFAIL); 6624 new_entry->efd_start_cluster = bit; 6625 new_entry->efd_group = block_group; 6626 new_entry->efd_count = count_clusters; 6627 new_entry->efd_tid = handle->h_transaction->t_tid; 6628 6629 ext4_lock_group(sb, block_group); 6630 ext4_mb_free_metadata(handle, &e4b, new_entry); 6631 } else { 6632 if (test_opt(sb, DISCARD)) { 6633 err = ext4_issue_discard(sb, block_group, bit, 6634 count_clusters); 6635 /* 6636 * Ignore EOPNOTSUPP error. This is consistent with 6637 * what happens when using journal. 6638 */ 6639 if (err == -EOPNOTSUPP) 6640 err = 0; 6641 if (err) 6642 ext4_msg(sb, KERN_WARNING, "discard request in" 6643 " group:%u block:%d count:%lu failed" 6644 " with %d", block_group, bit, count, 6645 err); 6646 } 6647 6648 EXT4_MB_GRP_CLEAR_TRIMMED(e4b.bd_info); 6649 6650 ext4_lock_group(sb, block_group); 6651 mb_free_blocks(inode, &e4b, bit, count_clusters); 6652 } 6653 6654 ext4_unlock_group(sb, block_group); 6655 6656 /* 6657 * on a bigalloc file system, defer the s_freeclusters_counter 6658 * update to the caller (ext4_remove_space and friends) so they 6659 * can determine if a cluster freed here should be rereserved 6660 */ 6661 if (!(flags & EXT4_FREE_BLOCKS_RERESERVE_CLUSTER)) { 6662 if (!(flags & EXT4_FREE_BLOCKS_NO_QUOT_UPDATE)) 6663 dquot_free_block(inode, EXT4_C2B(sbi, count_clusters)); 6664 percpu_counter_add(&sbi->s_freeclusters_counter, 6665 count_clusters); 6666 } 6667 6668 if (overflow && !err) { 6669 block += count; 6670 count = overflow; 6671 ext4_mb_unload_buddy(&e4b); 6672 /* The range changed so it's no longer validated */ 6673 flags &= ~EXT4_FREE_BLOCKS_VALIDATED; 6674 goto do_more; 6675 } 6676 6677 error_clean: 6678 ext4_mb_unload_buddy(&e4b); 6679 error_out: 6680 ext4_std_error(sb, err); 6681 } 6682 6683 /** 6684 * ext4_free_blocks() -- Free given blocks and update quota 6685 * @handle: handle for this transaction 6686 * @inode: inode 6687 * @bh: optional buffer of the block to be freed 6688 * @block: starting physical block to be freed 6689 * @count: number of blocks to be freed 6690 * @flags: flags used by ext4_free_blocks 6691 */ 6692 void ext4_free_blocks(handle_t *handle, struct inode *inode, 6693 struct buffer_head *bh, ext4_fsblk_t block, 6694 unsigned long count, int flags) 6695 { 6696 struct super_block *sb = inode->i_sb; 6697 unsigned int overflow; 6698 struct ext4_sb_info *sbi; 6699 6700 sbi = EXT4_SB(sb); 6701 6702 if (bh) { 6703 if (block) 6704 BUG_ON(block != bh->b_blocknr); 6705 else 6706 block = bh->b_blocknr; 6707 } 6708 6709 if (sbi->s_mount_state & EXT4_FC_REPLAY) { 6710 ext4_free_blocks_simple(inode, block, EXT4_NUM_B2C(sbi, count)); 6711 return; 6712 } 6713 6714 might_sleep(); 6715 6716 if (!(flags & EXT4_FREE_BLOCKS_VALIDATED) && 6717 !ext4_inode_block_valid(inode, block, count)) { 6718 ext4_error(sb, "Freeing blocks not in datazone - " 6719 "block = %llu, count = %lu", block, count); 6720 return; 6721 } 6722 flags |= EXT4_FREE_BLOCKS_VALIDATED; 6723 6724 ext4_debug("freeing block %llu\n", block); 6725 trace_ext4_free_blocks(inode, block, count, flags); 6726 6727 if (bh && (flags & EXT4_FREE_BLOCKS_FORGET)) { 6728 BUG_ON(count > 1); 6729 6730 ext4_forget(handle, flags & EXT4_FREE_BLOCKS_METADATA, 6731 inode, bh, block); 6732 } 6733 6734 /* 6735 * If the extent to be freed does not begin on a cluster 6736 * boundary, we need to deal with partial clusters at the 6737 * beginning and end of the extent. Normally we will free 6738 * blocks at the beginning or the end unless we are explicitly 6739 * requested to avoid doing so. 6740 */ 6741 overflow = EXT4_PBLK_COFF(sbi, block); 6742 if (overflow) { 6743 if (flags & EXT4_FREE_BLOCKS_NOFREE_FIRST_CLUSTER) { 6744 overflow = sbi->s_cluster_ratio - overflow; 6745 block += overflow; 6746 if (count > overflow) 6747 count -= overflow; 6748 else 6749 return; 6750 } else { 6751 block -= overflow; 6752 count += overflow; 6753 } 6754 /* The range changed so it's no longer validated */ 6755 flags &= ~EXT4_FREE_BLOCKS_VALIDATED; 6756 } 6757 overflow = EXT4_LBLK_COFF(sbi, count); 6758 if (overflow) { 6759 if (flags & EXT4_FREE_BLOCKS_NOFREE_LAST_CLUSTER) { 6760 if (count > overflow) 6761 count -= overflow; 6762 else 6763 return; 6764 } else 6765 count += sbi->s_cluster_ratio - overflow; 6766 /* The range changed so it's no longer validated */ 6767 flags &= ~EXT4_FREE_BLOCKS_VALIDATED; 6768 } 6769 6770 if (!bh && (flags & EXT4_FREE_BLOCKS_FORGET)) { 6771 int i; 6772 int is_metadata = flags & EXT4_FREE_BLOCKS_METADATA; 6773 6774 for (i = 0; i < count; i++) { 6775 cond_resched(); 6776 if (is_metadata) 6777 bh = sb_find_get_block_nonatomic(inode->i_sb, 6778 block + i); 6779 ext4_forget(handle, is_metadata, inode, bh, block + i); 6780 } 6781 } 6782 6783 ext4_mb_clear_bb(handle, inode, block, count, flags); 6784 } 6785 6786 /** 6787 * ext4_group_add_blocks() -- Add given blocks to an existing group 6788 * @handle: handle to this transaction 6789 * @sb: super block 6790 * @block: start physical block to add to the block group 6791 * @count: number of blocks to free 6792 * 6793 * This marks the blocks as free in the bitmap and buddy. 6794 */ 6795 int ext4_group_add_blocks(handle_t *handle, struct super_block *sb, 6796 ext4_fsblk_t block, unsigned long count) 6797 { 6798 ext4_group_t block_group; 6799 ext4_grpblk_t bit; 6800 struct ext4_sb_info *sbi = EXT4_SB(sb); 6801 struct ext4_buddy e4b; 6802 int err = 0; 6803 ext4_fsblk_t first_cluster = EXT4_B2C(sbi, block); 6804 ext4_fsblk_t last_cluster = EXT4_B2C(sbi, block + count - 1); 6805 unsigned long cluster_count = last_cluster - first_cluster + 1; 6806 ext4_grpblk_t changed; 6807 6808 ext4_debug("Adding block(s) %llu-%llu\n", block, block + count - 1); 6809 6810 if (cluster_count == 0) 6811 return 0; 6812 6813 ext4_get_group_no_and_offset(sb, block, &block_group, &bit); 6814 /* 6815 * Check to see if we are freeing blocks across a group 6816 * boundary. 6817 */ 6818 if (bit + cluster_count > EXT4_CLUSTERS_PER_GROUP(sb)) { 6819 ext4_warning(sb, "too many blocks added to group %u", 6820 block_group); 6821 err = -EINVAL; 6822 goto error_out; 6823 } 6824 6825 err = ext4_mb_load_buddy(sb, block_group, &e4b); 6826 if (err) 6827 goto error_out; 6828 6829 if (!ext4_sb_block_valid(sb, NULL, block, count)) { 6830 ext4_error(sb, "Adding blocks in system zones - " 6831 "Block = %llu, count = %lu", 6832 block, count); 6833 err = -EINVAL; 6834 goto error_clean; 6835 } 6836 6837 err = ext4_mb_mark_context(handle, sb, false, block_group, bit, 6838 cluster_count, EXT4_MB_BITMAP_MARKED_CHECK, 6839 &changed); 6840 if (err && changed == 0) 6841 goto error_clean; 6842 6843 if (changed != cluster_count) 6844 ext4_error(sb, "bit already cleared in group %u", block_group); 6845 6846 ext4_lock_group(sb, block_group); 6847 mb_free_blocks(NULL, &e4b, bit, cluster_count); 6848 ext4_unlock_group(sb, block_group); 6849 percpu_counter_add(&sbi->s_freeclusters_counter, 6850 changed); 6851 6852 error_clean: 6853 ext4_mb_unload_buddy(&e4b); 6854 error_out: 6855 ext4_std_error(sb, err); 6856 return err; 6857 } 6858 6859 /** 6860 * ext4_trim_extent -- function to TRIM one single free extent in the group 6861 * @sb: super block for the file system 6862 * @start: starting block of the free extent in the alloc. group 6863 * @count: number of blocks to TRIM 6864 * @e4b: ext4 buddy for the group 6865 * 6866 * Trim "count" blocks starting at "start" in the "group". To assure that no 6867 * one will allocate those blocks, mark it as used in buddy bitmap. This must 6868 * be called with under the group lock. 6869 */ 6870 static int ext4_trim_extent(struct super_block *sb, 6871 int start, int count, struct ext4_buddy *e4b) 6872 __releases(bitlock) 6873 __acquires(bitlock) 6874 { 6875 struct ext4_free_extent ex; 6876 ext4_group_t group = e4b->bd_group; 6877 int ret = 0; 6878 6879 trace_ext4_trim_extent(sb, group, start, count); 6880 6881 assert_spin_locked(ext4_group_lock_ptr(sb, group)); 6882 6883 ex.fe_start = start; 6884 ex.fe_group = group; 6885 ex.fe_len = count; 6886 6887 /* 6888 * Mark blocks used, so no one can reuse them while 6889 * being trimmed. 6890 */ 6891 mb_mark_used(e4b, &ex); 6892 ext4_unlock_group(sb, group); 6893 ret = ext4_issue_discard(sb, group, start, count); 6894 ext4_lock_group(sb, group); 6895 mb_free_blocks(NULL, e4b, start, ex.fe_len); 6896 return ret; 6897 } 6898 6899 static ext4_grpblk_t ext4_last_grp_cluster(struct super_block *sb, 6900 ext4_group_t grp) 6901 { 6902 unsigned long nr_clusters_in_group; 6903 6904 if (grp < (ext4_get_groups_count(sb) - 1)) 6905 nr_clusters_in_group = EXT4_CLUSTERS_PER_GROUP(sb); 6906 else 6907 nr_clusters_in_group = (ext4_blocks_count(EXT4_SB(sb)->s_es) - 6908 ext4_group_first_block_no(sb, grp)) 6909 >> EXT4_CLUSTER_BITS(sb); 6910 6911 return nr_clusters_in_group - 1; 6912 } 6913 6914 static bool ext4_trim_interrupted(void) 6915 { 6916 return fatal_signal_pending(current) || freezing(current); 6917 } 6918 6919 static int ext4_try_to_trim_range(struct super_block *sb, 6920 struct ext4_buddy *e4b, ext4_grpblk_t start, 6921 ext4_grpblk_t max, ext4_grpblk_t minblocks) 6922 __acquires(ext4_group_lock_ptr(sb, e4b->bd_group)) 6923 __releases(ext4_group_lock_ptr(sb, e4b->bd_group)) 6924 { 6925 ext4_grpblk_t next, count, free_count, last, origin_start; 6926 bool set_trimmed = false; 6927 void *bitmap; 6928 6929 if (unlikely(EXT4_MB_GRP_BBITMAP_CORRUPT(e4b->bd_info))) 6930 return 0; 6931 6932 last = ext4_last_grp_cluster(sb, e4b->bd_group); 6933 bitmap = e4b->bd_bitmap; 6934 if (start == 0 && max >= last) 6935 set_trimmed = true; 6936 origin_start = start; 6937 start = max(e4b->bd_info->bb_first_free, start); 6938 count = 0; 6939 free_count = 0; 6940 6941 while (start <= max) { 6942 start = mb_find_next_zero_bit(bitmap, max + 1, start); 6943 if (start > max) 6944 break; 6945 6946 next = mb_find_next_bit(bitmap, last + 1, start); 6947 if (origin_start == 0 && next >= last) 6948 set_trimmed = true; 6949 6950 if ((next - start) >= minblocks) { 6951 int ret = ext4_trim_extent(sb, start, next - start, e4b); 6952 6953 if (ret && ret != -EOPNOTSUPP) 6954 return count; 6955 count += next - start; 6956 } 6957 free_count += next - start; 6958 start = next + 1; 6959 6960 if (ext4_trim_interrupted()) 6961 return count; 6962 6963 if (need_resched()) { 6964 ext4_unlock_group(sb, e4b->bd_group); 6965 cond_resched(); 6966 ext4_lock_group(sb, e4b->bd_group); 6967 } 6968 6969 if ((e4b->bd_info->bb_free - free_count) < minblocks) 6970 break; 6971 } 6972 6973 if (set_trimmed) 6974 EXT4_MB_GRP_SET_TRIMMED(e4b->bd_info); 6975 6976 return count; 6977 } 6978 6979 /** 6980 * ext4_trim_all_free -- function to trim all free space in alloc. group 6981 * @sb: super block for file system 6982 * @group: group to be trimmed 6983 * @start: first group block to examine 6984 * @max: last group block to examine 6985 * @minblocks: minimum extent block count 6986 * 6987 * ext4_trim_all_free walks through group's block bitmap searching for free 6988 * extents. When the free extent is found, mark it as used in group buddy 6989 * bitmap. Then issue a TRIM command on this extent and free the extent in 6990 * the group buddy bitmap. 6991 */ 6992 static ext4_grpblk_t 6993 ext4_trim_all_free(struct super_block *sb, ext4_group_t group, 6994 ext4_grpblk_t start, ext4_grpblk_t max, 6995 ext4_grpblk_t minblocks) 6996 { 6997 struct ext4_buddy e4b; 6998 int ret; 6999 7000 trace_ext4_trim_all_free(sb, group, start, max); 7001 7002 ret = ext4_mb_load_buddy(sb, group, &e4b); 7003 if (ret) { 7004 ext4_warning(sb, "Error %d loading buddy information for %u", 7005 ret, group); 7006 return ret; 7007 } 7008 7009 ext4_lock_group(sb, group); 7010 7011 if (!EXT4_MB_GRP_WAS_TRIMMED(e4b.bd_info) || 7012 minblocks < EXT4_SB(sb)->s_last_trim_minblks) 7013 ret = ext4_try_to_trim_range(sb, &e4b, start, max, minblocks); 7014 else 7015 ret = 0; 7016 7017 ext4_unlock_group(sb, group); 7018 ext4_mb_unload_buddy(&e4b); 7019 7020 ext4_debug("trimmed %d blocks in the group %d\n", 7021 ret, group); 7022 7023 return ret; 7024 } 7025 7026 /** 7027 * ext4_trim_fs() -- trim ioctl handle function 7028 * @sb: superblock for filesystem 7029 * @range: fstrim_range structure 7030 * 7031 * start: First Byte to trim 7032 * len: number of Bytes to trim from start 7033 * minlen: minimum extent length in Bytes 7034 * ext4_trim_fs goes through all allocation groups containing Bytes from 7035 * start to start+len. For each such a group ext4_trim_all_free function 7036 * is invoked to trim all free space. 7037 */ 7038 int ext4_trim_fs(struct super_block *sb, struct fstrim_range *range) 7039 { 7040 unsigned int discard_granularity = bdev_discard_granularity(sb->s_bdev); 7041 struct ext4_group_info *grp; 7042 ext4_group_t group, first_group, last_group; 7043 ext4_grpblk_t cnt = 0, first_cluster, last_cluster; 7044 uint64_t start, end, minlen, trimmed = 0; 7045 ext4_fsblk_t first_data_blk = 7046 le32_to_cpu(EXT4_SB(sb)->s_es->s_first_data_block); 7047 ext4_fsblk_t max_blks = ext4_blocks_count(EXT4_SB(sb)->s_es); 7048 int ret = 0; 7049 7050 start = range->start >> sb->s_blocksize_bits; 7051 end = start + (range->len >> sb->s_blocksize_bits) - 1; 7052 minlen = EXT4_NUM_B2C(EXT4_SB(sb), 7053 range->minlen >> sb->s_blocksize_bits); 7054 7055 if (minlen > EXT4_CLUSTERS_PER_GROUP(sb) || 7056 start >= max_blks || 7057 range->len < sb->s_blocksize) 7058 return -EINVAL; 7059 /* No point to try to trim less than discard granularity */ 7060 if (range->minlen < discard_granularity) { 7061 minlen = EXT4_NUM_B2C(EXT4_SB(sb), 7062 discard_granularity >> sb->s_blocksize_bits); 7063 if (minlen > EXT4_CLUSTERS_PER_GROUP(sb)) 7064 goto out; 7065 } 7066 if (end >= max_blks - 1) 7067 end = max_blks - 1; 7068 if (end <= first_data_blk) 7069 goto out; 7070 if (start < first_data_blk) 7071 start = first_data_blk; 7072 7073 /* Determine first and last group to examine based on start and end */ 7074 ext4_get_group_no_and_offset(sb, (ext4_fsblk_t) start, 7075 &first_group, &first_cluster); 7076 ext4_get_group_no_and_offset(sb, (ext4_fsblk_t) end, 7077 &last_group, &last_cluster); 7078 7079 /* end now represents the last cluster to discard in this group */ 7080 end = EXT4_CLUSTERS_PER_GROUP(sb) - 1; 7081 7082 for (group = first_group; group <= last_group; group++) { 7083 if (ext4_trim_interrupted()) 7084 break; 7085 grp = ext4_get_group_info(sb, group); 7086 if (!grp) 7087 continue; 7088 /* We only do this if the grp has never been initialized */ 7089 if (unlikely(EXT4_MB_GRP_NEED_INIT(grp))) { 7090 ret = ext4_mb_init_group(sb, group, GFP_NOFS); 7091 if (ret) 7092 break; 7093 } 7094 7095 /* 7096 * For all the groups except the last one, last cluster will 7097 * always be EXT4_CLUSTERS_PER_GROUP(sb)-1, so we only need to 7098 * change it for the last group, note that last_cluster is 7099 * already computed earlier by ext4_get_group_no_and_offset() 7100 */ 7101 if (group == last_group) 7102 end = last_cluster; 7103 if (grp->bb_free >= minlen) { 7104 cnt = ext4_trim_all_free(sb, group, first_cluster, 7105 end, minlen); 7106 if (cnt < 0) { 7107 ret = cnt; 7108 break; 7109 } 7110 trimmed += cnt; 7111 } 7112 7113 /* 7114 * For every group except the first one, we are sure 7115 * that the first cluster to discard will be cluster #0. 7116 */ 7117 first_cluster = 0; 7118 } 7119 7120 if (!ret) 7121 EXT4_SB(sb)->s_last_trim_minblks = minlen; 7122 7123 out: 7124 range->len = EXT4_C2B(EXT4_SB(sb), trimmed) << sb->s_blocksize_bits; 7125 return ret; 7126 } 7127 7128 /* Iterate all the free extents in the group. */ 7129 int 7130 ext4_mballoc_query_range( 7131 struct super_block *sb, 7132 ext4_group_t group, 7133 ext4_grpblk_t first, 7134 ext4_grpblk_t end, 7135 ext4_mballoc_query_range_fn meta_formatter, 7136 ext4_mballoc_query_range_fn formatter, 7137 void *priv) 7138 { 7139 void *bitmap; 7140 ext4_grpblk_t start, next; 7141 struct ext4_buddy e4b; 7142 int error; 7143 7144 error = ext4_mb_load_buddy(sb, group, &e4b); 7145 if (error) 7146 return error; 7147 bitmap = e4b.bd_bitmap; 7148 7149 ext4_lock_group(sb, group); 7150 7151 start = max(e4b.bd_info->bb_first_free, first); 7152 if (end >= EXT4_CLUSTERS_PER_GROUP(sb)) 7153 end = EXT4_CLUSTERS_PER_GROUP(sb) - 1; 7154 if (meta_formatter && start != first) { 7155 if (start > end) 7156 start = end; 7157 ext4_unlock_group(sb, group); 7158 error = meta_formatter(sb, group, first, start - first, 7159 priv); 7160 if (error) 7161 goto out_unload; 7162 ext4_lock_group(sb, group); 7163 } 7164 while (start <= end) { 7165 start = mb_find_next_zero_bit(bitmap, end + 1, start); 7166 if (start > end) 7167 break; 7168 next = mb_find_next_bit(bitmap, end + 1, start); 7169 7170 ext4_unlock_group(sb, group); 7171 error = formatter(sb, group, start, next - start, priv); 7172 if (error) 7173 goto out_unload; 7174 ext4_lock_group(sb, group); 7175 7176 start = next + 1; 7177 } 7178 7179 ext4_unlock_group(sb, group); 7180 out_unload: 7181 ext4_mb_unload_buddy(&e4b); 7182 7183 return error; 7184 } 7185 7186 #if IS_ENABLED(CONFIG_EXT4_KUNIT_TESTS) 7187 void mb_clear_bits_test(void *bm, int cur, int len) 7188 { 7189 mb_clear_bits(bm, cur, len); 7190 } 7191 EXPORT_SYMBOL_FOR_EXT4_TEST(mb_clear_bits_test); 7192 7193 ext4_fsblk_t 7194 ext4_mb_new_blocks_simple_test(struct ext4_allocation_request *ar, 7195 int *errp) 7196 { 7197 return ext4_mb_new_blocks_simple(ar, errp); 7198 } 7199 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_mb_new_blocks_simple_test); 7200 7201 int mb_find_next_zero_bit_test(void *addr, int max, int start) 7202 { 7203 return mb_find_next_zero_bit(addr, max, start); 7204 } 7205 EXPORT_SYMBOL_FOR_EXT4_TEST(mb_find_next_zero_bit_test); 7206 7207 int mb_find_next_bit_test(void *addr, int max, int start) 7208 { 7209 return mb_find_next_bit(addr, max, start); 7210 } 7211 EXPORT_SYMBOL_FOR_EXT4_TEST(mb_find_next_bit_test); 7212 7213 void mb_clear_bit_test(int bit, void *addr) 7214 { 7215 mb_clear_bit(bit, addr); 7216 } 7217 EXPORT_SYMBOL_FOR_EXT4_TEST(mb_clear_bit_test); 7218 7219 int mb_test_bit_test(int bit, void *addr) 7220 { 7221 return mb_test_bit(bit, addr); 7222 } 7223 EXPORT_SYMBOL_FOR_EXT4_TEST(mb_test_bit_test); 7224 7225 int ext4_mb_mark_diskspace_used_test(struct ext4_allocation_context *ac, 7226 handle_t *handle) 7227 { 7228 return ext4_mb_mark_diskspace_used(ac, handle); 7229 } 7230 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_mb_mark_diskspace_used_test); 7231 7232 int mb_mark_used_test(struct ext4_buddy *e4b, struct ext4_free_extent *ex) 7233 { 7234 return mb_mark_used(e4b, ex); 7235 } 7236 EXPORT_SYMBOL_FOR_EXT4_TEST(mb_mark_used_test); 7237 7238 void ext4_mb_generate_buddy_test(struct super_block *sb, void *buddy, 7239 void *bitmap, ext4_group_t group, 7240 struct ext4_group_info *grp) 7241 { 7242 ext4_mb_generate_buddy(sb, buddy, bitmap, group, grp); 7243 } 7244 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_mb_generate_buddy_test); 7245 7246 int ext4_mb_load_buddy_test(struct super_block *sb, ext4_group_t group, 7247 struct ext4_buddy *e4b) 7248 { 7249 return ext4_mb_load_buddy(sb, group, e4b); 7250 } 7251 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_mb_load_buddy_test); 7252 7253 void ext4_mb_unload_buddy_test(struct ext4_buddy *e4b) 7254 { 7255 ext4_mb_unload_buddy(e4b); 7256 } 7257 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_mb_unload_buddy_test); 7258 7259 void mb_free_blocks_test(struct inode *inode, struct ext4_buddy *e4b, 7260 int first, int count) 7261 { 7262 mb_free_blocks(inode, e4b, first, count); 7263 } 7264 EXPORT_SYMBOL_FOR_EXT4_TEST(mb_free_blocks_test); 7265 7266 void ext4_free_blocks_simple_test(struct inode *inode, ext4_fsblk_t block, 7267 unsigned long count) 7268 { 7269 return ext4_free_blocks_simple(inode, block, count); 7270 } 7271 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_free_blocks_simple_test); 7272 7273 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_wait_block_bitmap); 7274 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_mb_init); 7275 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_get_group_desc); 7276 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_count_free_clusters); 7277 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_get_group_info); 7278 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_free_group_clusters_set); 7279 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_mb_release); 7280 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_read_block_bitmap_nowait); 7281 EXPORT_SYMBOL_FOR_EXT4_TEST(mb_set_bits); 7282 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_fc_init_inode); 7283 EXPORT_SYMBOL_FOR_EXT4_TEST(ext4_mb_mark_context); 7284 #endif 7285