1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright (C) Sistina Software, Inc. 1997-2003 All rights reserved. 4 * Copyright (C) 2004-2006 Red Hat, Inc. All rights reserved. 5 */ 6 7 #include <linux/spinlock.h> 8 #include <linux/completion.h> 9 #include <linux/buffer_head.h> 10 #include <linux/blkdev.h> 11 #include <linux/gfs2_ondisk.h> 12 #include <linux/crc32.h> 13 #include <linux/iomap.h> 14 #include <linux/ktime.h> 15 16 #include "gfs2.h" 17 #include "incore.h" 18 #include "bmap.h" 19 #include "glock.h" 20 #include "inode.h" 21 #include "meta_io.h" 22 #include "quota.h" 23 #include "rgrp.h" 24 #include "log.h" 25 #include "super.h" 26 #include "trans.h" 27 #include "dir.h" 28 #include "util.h" 29 #include "aops.h" 30 #include "trace_gfs2.h" 31 32 /* This doesn't need to be that large as max 64 bit pointers in a 4k 33 * block is 512, so __u16 is fine for that. It saves stack space to 34 * keep it small. 35 */ 36 struct metapath { 37 struct buffer_head *mp_bh[GFS2_MAX_META_HEIGHT]; 38 __u16 mp_list[GFS2_MAX_META_HEIGHT]; 39 int mp_fheight; /* find_metapath height */ 40 int mp_aheight; /* actual height (lookup height) */ 41 }; 42 43 static int punch_hole(struct gfs2_inode *ip, u64 offset, u64 length); 44 45 /** 46 * gfs2_unstuffer_folio - unstuff a stuffed inode into a block cached by a folio 47 * @ip: the inode 48 * @dibh: the dinode buffer 49 * @block: the block number that was allocated 50 * @folio: The folio. 51 * 52 * Returns: errno 53 */ 54 static int gfs2_unstuffer_folio(struct gfs2_inode *ip, struct buffer_head *dibh, 55 u64 block, struct folio *folio) 56 { 57 struct inode *inode = &ip->i_inode; 58 59 if (!folio_test_uptodate(folio)) { 60 void *kaddr = kmap_local_folio(folio, 0); 61 u64 dsize = i_size_read(inode); 62 63 memcpy(kaddr, dibh->b_data + sizeof(struct gfs2_dinode), dsize); 64 memset(kaddr + dsize, 0, folio_size(folio) - dsize); 65 kunmap_local(kaddr); 66 67 folio_mark_uptodate(folio); 68 } 69 70 if (gfs2_is_jdata(ip)) { 71 struct buffer_head *bh = folio_buffers(folio); 72 73 if (!bh) 74 bh = create_empty_buffers(folio, 75 BIT(inode->i_blkbits), BIT(BH_Uptodate)); 76 77 if (!buffer_mapped(bh)) 78 map_bh(bh, inode->i_sb, block); 79 80 set_buffer_uptodate(bh); 81 gfs2_trans_add_data(ip->i_gl, bh); 82 } else { 83 folio_mark_dirty(folio); 84 gfs2_ordered_add_inode(ip); 85 } 86 87 return 0; 88 } 89 90 static int __gfs2_unstuff_inode(struct gfs2_inode *ip, struct folio *folio) 91 { 92 struct buffer_head *bh, *dibh; 93 struct gfs2_dinode *di; 94 u64 block = 0; 95 int isdir = gfs2_is_dir(ip); 96 int error; 97 98 error = gfs2_meta_inode_buffer(ip, &dibh); 99 if (error) 100 return error; 101 102 if (i_size_read(&ip->i_inode)) { 103 /* Get a free block, fill it with the stuffed data, 104 and write it out to disk */ 105 106 unsigned int n = 1; 107 error = gfs2_alloc_blocks(ip, &block, &n, 0); 108 if (error) 109 goto out_brelse; 110 if (isdir) { 111 gfs2_trans_remove_revoke(GFS2_SB(&ip->i_inode), block, 1); 112 error = gfs2_dir_get_new_buffer(ip, block, &bh); 113 if (error) 114 goto out_brelse; 115 gfs2_buffer_copy_tail(bh, sizeof(struct gfs2_meta_header), 116 dibh, sizeof(struct gfs2_dinode)); 117 brelse(bh); 118 } else { 119 error = gfs2_unstuffer_folio(ip, dibh, block, folio); 120 if (error) 121 goto out_brelse; 122 } 123 } 124 125 /* Set up the pointer to the new block */ 126 127 gfs2_trans_add_meta(ip->i_gl, dibh); 128 di = (struct gfs2_dinode *)dibh->b_data; 129 gfs2_buffer_clear_tail(dibh, sizeof(struct gfs2_dinode)); 130 131 if (i_size_read(&ip->i_inode)) { 132 *(__be64 *)(di + 1) = cpu_to_be64(block); 133 gfs2_add_inode_blocks(&ip->i_inode, 1); 134 di->di_blocks = cpu_to_be64(gfs2_get_inode_blocks(&ip->i_inode)); 135 } 136 137 ip->i_height = 1; 138 di->di_height = cpu_to_be16(1); 139 140 out_brelse: 141 brelse(dibh); 142 return error; 143 } 144 145 /** 146 * gfs2_unstuff_dinode - Unstuff a dinode when the data has grown too big 147 * @ip: The GFS2 inode to unstuff 148 * 149 * This routine unstuffs a dinode and returns it to a "normal" state such 150 * that the height can be grown in the traditional way. 151 * 152 * Returns: errno 153 */ 154 155 int gfs2_unstuff_dinode(struct gfs2_inode *ip) 156 { 157 struct inode *inode = &ip->i_inode; 158 struct folio *folio; 159 int error; 160 161 down_write(&ip->i_rw_mutex); 162 folio = filemap_grab_folio(inode->i_mapping, 0); 163 error = PTR_ERR(folio); 164 if (IS_ERR(folio)) 165 goto out; 166 error = __gfs2_unstuff_inode(ip, folio); 167 folio_unlock(folio); 168 folio_put(folio); 169 out: 170 up_write(&ip->i_rw_mutex); 171 return error; 172 } 173 174 /** 175 * find_metapath - Find path through the metadata tree 176 * @sdp: The superblock 177 * @block: The disk block to look up 178 * @mp: The metapath to return the result in 179 * @height: The pre-calculated height of the metadata tree 180 * 181 * This routine returns a struct metapath structure that defines a path 182 * through the metadata of inode "ip" to get to block "block". 183 * 184 * Example: 185 * Given: "ip" is a height 3 file, "offset" is 101342453, and this is a 186 * filesystem with a blocksize of 4096. 187 * 188 * find_metapath() would return a struct metapath structure set to: 189 * mp_fheight = 3, mp_list[0] = 0, mp_list[1] = 48, and mp_list[2] = 165. 190 * 191 * That means that in order to get to the block containing the byte at 192 * offset 101342453, we would load the indirect block pointed to by pointer 193 * 0 in the dinode. We would then load the indirect block pointed to by 194 * pointer 48 in that indirect block. We would then load the data block 195 * pointed to by pointer 165 in that indirect block. 196 * 197 * ---------------------------------------- 198 * | Dinode | | 199 * | | 4| 200 * | |0 1 2 3 4 5 9| 201 * | | 6| 202 * ---------------------------------------- 203 * | 204 * | 205 * V 206 * ---------------------------------------- 207 * | Indirect Block | 208 * | 5| 209 * | 4 4 4 4 4 5 5 1| 210 * |0 5 6 7 8 9 0 1 2| 211 * ---------------------------------------- 212 * | 213 * | 214 * V 215 * ---------------------------------------- 216 * | Indirect Block | 217 * | 1 1 1 1 1 5| 218 * | 6 6 6 6 6 1| 219 * |0 3 4 5 6 7 2| 220 * ---------------------------------------- 221 * | 222 * | 223 * V 224 * ---------------------------------------- 225 * | Data block containing offset | 226 * | 101342453 | 227 * | | 228 * | | 229 * ---------------------------------------- 230 * 231 */ 232 233 static void find_metapath(const struct gfs2_sbd *sdp, u64 block, 234 struct metapath *mp, unsigned int height) 235 { 236 unsigned int i; 237 238 mp->mp_fheight = height; 239 for (i = height; i--;) 240 mp->mp_list[i] = do_div(block, sdp->sd_inptrs); 241 } 242 243 static inline unsigned int metapath_branch_start(const struct metapath *mp) 244 { 245 if (mp->mp_list[0] == 0) 246 return 2; 247 return 1; 248 } 249 250 /** 251 * metaptr1 - Return the first possible metadata pointer in a metapath buffer 252 * @height: The metadata height (0 = dinode) 253 * @mp: The metapath 254 */ 255 static inline __be64 *metaptr1(unsigned int height, const struct metapath *mp) 256 { 257 struct buffer_head *bh = mp->mp_bh[height]; 258 if (height == 0) 259 return ((__be64 *)(bh->b_data + sizeof(struct gfs2_dinode))); 260 return ((__be64 *)(bh->b_data + sizeof(struct gfs2_meta_header))); 261 } 262 263 /** 264 * metapointer - Return pointer to start of metadata in a buffer 265 * @height: The metadata height (0 = dinode) 266 * @mp: The metapath 267 * 268 * Return a pointer to the block number of the next height of the metadata 269 * tree given a buffer containing the pointer to the current height of the 270 * metadata tree. 271 */ 272 273 static inline __be64 *metapointer(unsigned int height, const struct metapath *mp) 274 { 275 __be64 *p = metaptr1(height, mp); 276 return p + mp->mp_list[height]; 277 } 278 279 static inline const __be64 *metaend(unsigned int height, const struct metapath *mp) 280 { 281 const struct buffer_head *bh = mp->mp_bh[height]; 282 return (const __be64 *)(bh->b_data + bh->b_size); 283 } 284 285 static void clone_metapath(struct metapath *clone, struct metapath *mp) 286 { 287 unsigned int hgt; 288 289 *clone = *mp; 290 for (hgt = 0; hgt < mp->mp_aheight; hgt++) 291 get_bh(clone->mp_bh[hgt]); 292 } 293 294 static void gfs2_metapath_ra(struct gfs2_glock *gl, __be64 *start, __be64 *end) 295 { 296 const __be64 *t; 297 298 for (t = start; t < end; t++) { 299 struct buffer_head *rabh; 300 301 if (!*t) 302 continue; 303 304 rabh = gfs2_getbuf(gl, be64_to_cpu(*t), CREATE); 305 if (trylock_buffer(rabh)) { 306 if (!buffer_uptodate(rabh)) { 307 rabh->b_end_io = end_buffer_read_sync; 308 submit_bh(REQ_OP_READ | REQ_RAHEAD | REQ_META | 309 REQ_PRIO, rabh); 310 continue; 311 } 312 unlock_buffer(rabh); 313 } 314 brelse(rabh); 315 } 316 } 317 318 static inline struct buffer_head * 319 metapath_dibh(struct metapath *mp) 320 { 321 return mp->mp_bh[0]; 322 } 323 324 static int __fillup_metapath(struct gfs2_inode *ip, struct metapath *mp, 325 unsigned int x, unsigned int h) 326 { 327 for (; x < h; x++) { 328 __be64 *ptr = metapointer(x, mp); 329 u64 dblock = be64_to_cpu(*ptr); 330 int ret; 331 332 if (!dblock) 333 break; 334 ret = gfs2_meta_buffer(ip, GFS2_METATYPE_IN, dblock, &mp->mp_bh[x + 1]); 335 if (ret) 336 return ret; 337 } 338 mp->mp_aheight = x + 1; 339 return 0; 340 } 341 342 /** 343 * lookup_metapath - Walk the metadata tree to a specific point 344 * @ip: The inode 345 * @mp: The metapath 346 * 347 * Assumes that the inode's buffer has already been looked up and 348 * hooked onto mp->mp_bh[0] and that the metapath has been initialised 349 * by find_metapath(). 350 * 351 * If this function encounters part of the tree which has not been 352 * allocated, it returns the current height of the tree at the point 353 * at which it found the unallocated block. Blocks which are found are 354 * added to the mp->mp_bh[] list. 355 * 356 * Returns: error 357 */ 358 359 static int lookup_metapath(struct gfs2_inode *ip, struct metapath *mp) 360 { 361 return __fillup_metapath(ip, mp, 0, ip->i_height - 1); 362 } 363 364 /** 365 * fillup_metapath - fill up buffers for the metadata path to a specific height 366 * @ip: The inode 367 * @mp: The metapath 368 * @h: The height to which it should be mapped 369 * 370 * Similar to lookup_metapath, but does lookups for a range of heights 371 * 372 * Returns: error or the number of buffers filled 373 */ 374 375 static int fillup_metapath(struct gfs2_inode *ip, struct metapath *mp, int h) 376 { 377 unsigned int x = 0; 378 int ret; 379 380 if (h) { 381 /* find the first buffer we need to look up. */ 382 for (x = h - 1; x > 0; x--) { 383 if (mp->mp_bh[x]) 384 break; 385 } 386 } 387 ret = __fillup_metapath(ip, mp, x, h); 388 if (ret) 389 return ret; 390 return mp->mp_aheight - x - 1; 391 } 392 393 static sector_t metapath_to_block(struct gfs2_sbd *sdp, struct metapath *mp) 394 { 395 sector_t factor = 1, block = 0; 396 int hgt; 397 398 for (hgt = mp->mp_fheight - 1; hgt >= 0; hgt--) { 399 if (hgt < mp->mp_aheight) 400 block += mp->mp_list[hgt] * factor; 401 factor *= sdp->sd_inptrs; 402 } 403 return block; 404 } 405 406 static void release_metapath(struct metapath *mp) 407 { 408 int i; 409 410 for (i = 0; i < GFS2_MAX_META_HEIGHT; i++) { 411 if (mp->mp_bh[i] == NULL) 412 break; 413 brelse(mp->mp_bh[i]); 414 mp->mp_bh[i] = NULL; 415 } 416 } 417 418 /** 419 * gfs2_extent_length - Returns length of an extent of blocks 420 * @bh: The metadata block 421 * @ptr: Current position in @bh 422 * @eob: Set to 1 if we hit "end of block" 423 * 424 * Returns: The length of the extent (minimum of one block) 425 */ 426 427 static inline unsigned int gfs2_extent_length(struct buffer_head *bh, __be64 *ptr, int *eob) 428 { 429 const __be64 *end = (__be64 *)(bh->b_data + bh->b_size); 430 const __be64 *first = ptr; 431 u64 d = be64_to_cpu(*ptr); 432 433 *eob = 0; 434 do { 435 ptr++; 436 if (ptr >= end) 437 break; 438 d++; 439 } while(be64_to_cpu(*ptr) == d); 440 if (ptr >= end) 441 *eob = 1; 442 return ptr - first; 443 } 444 445 enum walker_status { WALK_STOP, WALK_FOLLOW, WALK_CONTINUE }; 446 447 /* 448 * gfs2_metadata_walker - walk an indirect block 449 * @mp: Metapath to indirect block 450 * @ptrs: Number of pointers to look at 451 * 452 * When returning WALK_FOLLOW, the walker must update @mp to point at the right 453 * indirect block to follow. 454 */ 455 typedef enum walker_status (*gfs2_metadata_walker)(struct metapath *mp, 456 unsigned int ptrs); 457 458 /* 459 * gfs2_walk_metadata - walk a tree of indirect blocks 460 * @inode: The inode 461 * @mp: Starting point of walk 462 * @max_len: Maximum number of blocks to walk 463 * @walker: Called during the walk 464 * 465 * Returns 1 if the walk was stopped by @walker, 0 if we went past @max_len or 466 * past the end of metadata, and a negative error code otherwise. 467 */ 468 469 static int gfs2_walk_metadata(struct inode *inode, struct metapath *mp, 470 u64 max_len, gfs2_metadata_walker walker) 471 { 472 struct gfs2_inode *ip = GFS2_I(inode); 473 struct gfs2_sbd *sdp = GFS2_SB(inode); 474 u64 factor = 1; 475 unsigned int hgt; 476 int ret; 477 478 /* 479 * The walk starts in the lowest allocated indirect block, which may be 480 * before the position indicated by @mp. Adjust @max_len accordingly 481 * to avoid a short walk. 482 */ 483 for (hgt = mp->mp_fheight - 1; hgt >= mp->mp_aheight; hgt--) { 484 max_len += mp->mp_list[hgt] * factor; 485 mp->mp_list[hgt] = 0; 486 factor *= sdp->sd_inptrs; 487 } 488 489 for (;;) { 490 u16 start = mp->mp_list[hgt]; 491 enum walker_status status; 492 unsigned int ptrs; 493 u64 len; 494 495 /* Walk indirect block. */ 496 ptrs = (hgt >= 1 ? sdp->sd_inptrs : sdp->sd_diptrs) - start; 497 len = ptrs * factor; 498 if (len > max_len) 499 ptrs = DIV_ROUND_UP_ULL(max_len, factor); 500 status = walker(mp, ptrs); 501 switch (status) { 502 case WALK_STOP: 503 return 1; 504 case WALK_FOLLOW: 505 BUG_ON(mp->mp_aheight == mp->mp_fheight); 506 ptrs = mp->mp_list[hgt] - start; 507 len = ptrs * factor; 508 break; 509 case WALK_CONTINUE: 510 break; 511 } 512 if (len >= max_len) 513 break; 514 max_len -= len; 515 if (status == WALK_FOLLOW) 516 goto fill_up_metapath; 517 518 lower_metapath: 519 /* Decrease height of metapath. */ 520 brelse(mp->mp_bh[hgt]); 521 mp->mp_bh[hgt] = NULL; 522 mp->mp_list[hgt] = 0; 523 if (!hgt) 524 break; 525 hgt--; 526 factor *= sdp->sd_inptrs; 527 528 /* Advance in metadata tree. */ 529 (mp->mp_list[hgt])++; 530 if (hgt) { 531 if (mp->mp_list[hgt] >= sdp->sd_inptrs) 532 goto lower_metapath; 533 } else { 534 if (mp->mp_list[hgt] >= sdp->sd_diptrs) 535 break; 536 } 537 538 fill_up_metapath: 539 /* Increase height of metapath. */ 540 ret = fillup_metapath(ip, mp, ip->i_height - 1); 541 if (ret < 0) 542 return ret; 543 hgt += ret; 544 for (; ret; ret--) 545 do_div(factor, sdp->sd_inptrs); 546 mp->mp_aheight = hgt + 1; 547 } 548 return 0; 549 } 550 551 static enum walker_status gfs2_hole_walker(struct metapath *mp, 552 unsigned int ptrs) 553 { 554 const __be64 *start, *ptr, *end; 555 unsigned int hgt; 556 557 hgt = mp->mp_aheight - 1; 558 start = metapointer(hgt, mp); 559 end = start + ptrs; 560 561 for (ptr = start; ptr < end; ptr++) { 562 if (*ptr) { 563 mp->mp_list[hgt] += ptr - start; 564 if (mp->mp_aheight == mp->mp_fheight) 565 return WALK_STOP; 566 return WALK_FOLLOW; 567 } 568 } 569 return WALK_CONTINUE; 570 } 571 572 /** 573 * gfs2_hole_size - figure out the size of a hole 574 * @inode: The inode 575 * @lblock: The logical starting block number 576 * @len: How far to look (in blocks) 577 * @mp: The metapath at lblock 578 * @iomap: The iomap to store the hole size in 579 * 580 * This function modifies @mp. 581 * 582 * Returns: errno on error 583 */ 584 static int gfs2_hole_size(struct inode *inode, sector_t lblock, u64 len, 585 struct metapath *mp, struct iomap *iomap) 586 { 587 struct metapath clone; 588 u64 hole_size; 589 int ret; 590 591 clone_metapath(&clone, mp); 592 ret = gfs2_walk_metadata(inode, &clone, len, gfs2_hole_walker); 593 if (ret < 0) 594 goto out; 595 596 if (ret == 1) 597 hole_size = metapath_to_block(GFS2_SB(inode), &clone) - lblock; 598 else 599 hole_size = len; 600 iomap->length = hole_size << inode->i_blkbits; 601 ret = 0; 602 603 out: 604 release_metapath(&clone); 605 return ret; 606 } 607 608 static inline void gfs2_indirect_init(struct metapath *mp, 609 struct gfs2_glock *gl, unsigned int i, 610 unsigned offset, u64 bn) 611 { 612 __be64 *ptr = (__be64 *)(mp->mp_bh[i - 1]->b_data + 613 ((i > 1) ? sizeof(struct gfs2_meta_header) : 614 sizeof(struct gfs2_dinode))); 615 BUG_ON(i < 1); 616 BUG_ON(mp->mp_bh[i] != NULL); 617 mp->mp_bh[i] = gfs2_meta_new(gl, bn); 618 gfs2_trans_add_meta(gl, mp->mp_bh[i]); 619 gfs2_metatype_set(mp->mp_bh[i], GFS2_METATYPE_IN, GFS2_FORMAT_IN); 620 gfs2_buffer_clear_tail(mp->mp_bh[i], sizeof(struct gfs2_meta_header)); 621 ptr += offset; 622 *ptr = cpu_to_be64(bn); 623 } 624 625 enum alloc_state { 626 ALLOC_DATA = 0, 627 ALLOC_GROW_DEPTH = 1, 628 ALLOC_GROW_HEIGHT = 2, 629 /* ALLOC_UNSTUFF = 3, TBD and rather complicated */ 630 }; 631 632 /** 633 * __gfs2_iomap_alloc - Build a metadata tree of the requested height 634 * @inode: The GFS2 inode 635 * @iomap: The iomap structure 636 * @mp: The metapath, with proper height information calculated 637 * 638 * In this routine we may have to alloc: 639 * i) Indirect blocks to grow the metadata tree height 640 * ii) Indirect blocks to fill in lower part of the metadata tree 641 * iii) Data blocks 642 * 643 * This function is called after __gfs2_iomap_get, which works out the 644 * total number of blocks which we need via gfs2_alloc_size. 645 * 646 * We then do the actual allocation asking for an extent at a time (if 647 * enough contiguous free blocks are available, there will only be one 648 * allocation request per call) and uses the state machine to initialise 649 * the blocks in order. 650 * 651 * Right now, this function will allocate at most one indirect block 652 * worth of data -- with a default block size of 4K, that's slightly 653 * less than 2M. If this limitation is ever removed to allow huge 654 * allocations, we would probably still want to limit the iomap size we 655 * return to avoid stalling other tasks during huge writes; the next 656 * iomap iteration would then find the blocks already allocated. 657 * 658 * Returns: errno on error 659 */ 660 661 static int __gfs2_iomap_alloc(struct inode *inode, struct iomap *iomap, 662 struct metapath *mp) 663 { 664 struct gfs2_inode *ip = GFS2_I(inode); 665 struct gfs2_sbd *sdp = GFS2_SB(inode); 666 struct buffer_head *dibh = metapath_dibh(mp); 667 u64 bn; 668 unsigned n, i, blks, alloced = 0, iblks = 0, branch_start = 0; 669 size_t dblks = iomap->length >> inode->i_blkbits; 670 const unsigned end_of_metadata = mp->mp_fheight - 1; 671 int ret; 672 enum alloc_state state; 673 __be64 *ptr; 674 __be64 zero_bn = 0; 675 676 BUG_ON(mp->mp_aheight < 1); 677 BUG_ON(dibh == NULL); 678 BUG_ON(dblks < 1); 679 680 gfs2_trans_add_meta(ip->i_gl, dibh); 681 682 down_write(&ip->i_rw_mutex); 683 684 if (mp->mp_fheight == mp->mp_aheight) { 685 /* Bottom indirect block exists */ 686 state = ALLOC_DATA; 687 } else { 688 /* Need to allocate indirect blocks */ 689 if (mp->mp_fheight == ip->i_height) { 690 /* Writing into existing tree, extend tree down */ 691 iblks = mp->mp_fheight - mp->mp_aheight; 692 state = ALLOC_GROW_DEPTH; 693 } else { 694 /* Building up tree height */ 695 state = ALLOC_GROW_HEIGHT; 696 iblks = mp->mp_fheight - ip->i_height; 697 branch_start = metapath_branch_start(mp); 698 iblks += (mp->mp_fheight - branch_start); 699 } 700 } 701 702 /* start of the second part of the function (state machine) */ 703 704 blks = dblks + iblks; 705 i = mp->mp_aheight; 706 do { 707 n = blks - alloced; 708 ret = gfs2_alloc_blocks(ip, &bn, &n, 0); 709 if (ret) 710 goto out; 711 alloced += n; 712 if (state != ALLOC_DATA || gfs2_is_jdata(ip)) 713 gfs2_trans_remove_revoke(sdp, bn, n); 714 switch (state) { 715 /* Growing height of tree */ 716 case ALLOC_GROW_HEIGHT: 717 if (i == 1) { 718 ptr = (__be64 *)(dibh->b_data + 719 sizeof(struct gfs2_dinode)); 720 zero_bn = *ptr; 721 } 722 for (; i - 1 < mp->mp_fheight - ip->i_height && n > 0; 723 i++, n--) 724 gfs2_indirect_init(mp, ip->i_gl, i, 0, bn++); 725 if (i - 1 == mp->mp_fheight - ip->i_height) { 726 i--; 727 gfs2_buffer_copy_tail(mp->mp_bh[i], 728 sizeof(struct gfs2_meta_header), 729 dibh, sizeof(struct gfs2_dinode)); 730 gfs2_buffer_clear_tail(dibh, 731 sizeof(struct gfs2_dinode) + 732 sizeof(__be64)); 733 ptr = (__be64 *)(mp->mp_bh[i]->b_data + 734 sizeof(struct gfs2_meta_header)); 735 *ptr = zero_bn; 736 state = ALLOC_GROW_DEPTH; 737 for(i = branch_start; i < mp->mp_fheight; i++) { 738 if (mp->mp_bh[i] == NULL) 739 break; 740 brelse(mp->mp_bh[i]); 741 mp->mp_bh[i] = NULL; 742 } 743 i = branch_start; 744 } 745 if (n == 0) 746 break; 747 fallthrough; /* To branching from existing tree */ 748 case ALLOC_GROW_DEPTH: 749 if (i > 1 && i < mp->mp_fheight) 750 gfs2_trans_add_meta(ip->i_gl, mp->mp_bh[i-1]); 751 for (; i < mp->mp_fheight && n > 0; i++, n--) 752 gfs2_indirect_init(mp, ip->i_gl, i, 753 mp->mp_list[i-1], bn++); 754 if (i == mp->mp_fheight) 755 state = ALLOC_DATA; 756 if (n == 0) 757 break; 758 fallthrough; /* To tree complete, adding data blocks */ 759 case ALLOC_DATA: 760 BUG_ON(n > dblks); 761 BUG_ON(mp->mp_bh[end_of_metadata] == NULL); 762 gfs2_trans_add_meta(ip->i_gl, mp->mp_bh[end_of_metadata]); 763 dblks = n; 764 ptr = metapointer(end_of_metadata, mp); 765 iomap->addr = bn << inode->i_blkbits; 766 iomap->flags |= IOMAP_F_MERGED | IOMAP_F_NEW; 767 while (n-- > 0) 768 *ptr++ = cpu_to_be64(bn++); 769 break; 770 } 771 } while (iomap->addr == IOMAP_NULL_ADDR); 772 773 iomap->type = IOMAP_MAPPED; 774 iomap->length = (u64)dblks << inode->i_blkbits; 775 ip->i_height = mp->mp_fheight; 776 gfs2_add_inode_blocks(&ip->i_inode, alloced); 777 gfs2_dinode_out(ip, dibh->b_data); 778 out: 779 up_write(&ip->i_rw_mutex); 780 return ret; 781 } 782 783 #define IOMAP_F_GFS2_BOUNDARY IOMAP_F_PRIVATE 784 785 /** 786 * gfs2_alloc_size - Compute the maximum allocation size 787 * @inode: The inode 788 * @mp: The metapath 789 * @size: Requested size in blocks 790 * 791 * Compute the maximum size of the next allocation at @mp. 792 * 793 * Returns: size in blocks 794 */ 795 static u64 gfs2_alloc_size(struct inode *inode, struct metapath *mp, u64 size) 796 { 797 struct gfs2_inode *ip = GFS2_I(inode); 798 struct gfs2_sbd *sdp = GFS2_SB(inode); 799 const __be64 *first, *ptr, *end; 800 801 /* 802 * For writes to stuffed files, this function is called twice via 803 * __gfs2_iomap_get, before and after unstuffing. The size we return the 804 * first time needs to be large enough to get the reservation and 805 * allocation sizes right. The size we return the second time must 806 * be exact or else __gfs2_iomap_alloc won't do the right thing. 807 */ 808 809 if (gfs2_is_stuffed(ip) || mp->mp_fheight != mp->mp_aheight) { 810 unsigned int maxsize = mp->mp_fheight > 1 ? 811 sdp->sd_inptrs : sdp->sd_diptrs; 812 maxsize -= mp->mp_list[mp->mp_fheight - 1]; 813 if (size > maxsize) 814 size = maxsize; 815 return size; 816 } 817 818 first = metapointer(ip->i_height - 1, mp); 819 end = metaend(ip->i_height - 1, mp); 820 if (end - first > size) 821 end = first + size; 822 for (ptr = first; ptr < end; ptr++) { 823 if (*ptr) 824 break; 825 } 826 return ptr - first; 827 } 828 829 /** 830 * __gfs2_iomap_get - Map blocks from an inode to disk blocks 831 * @inode: The inode 832 * @pos: Starting position in bytes 833 * @length: Length to map, in bytes 834 * @flags: iomap flags 835 * @iomap: The iomap structure 836 * @mp: The metapath 837 * 838 * Returns: errno 839 */ 840 static int __gfs2_iomap_get(struct inode *inode, loff_t pos, loff_t length, 841 unsigned flags, struct iomap *iomap, 842 struct metapath *mp) 843 { 844 struct gfs2_inode *ip = GFS2_I(inode); 845 struct gfs2_sbd *sdp = GFS2_SB(inode); 846 loff_t size = i_size_read(inode); 847 __be64 *ptr; 848 sector_t lblock; 849 sector_t lblock_stop; 850 int ret; 851 int eob; 852 u64 len; 853 struct buffer_head *dibh = NULL, *bh; 854 u8 height; 855 856 if (!length) 857 return -EINVAL; 858 859 down_read(&ip->i_rw_mutex); 860 861 ret = gfs2_meta_inode_buffer(ip, &dibh); 862 if (ret) 863 goto unlock; 864 mp->mp_bh[0] = dibh; 865 866 if (gfs2_is_stuffed(ip)) { 867 if (flags & IOMAP_WRITE) { 868 loff_t max_size = gfs2_max_stuffed_size(ip); 869 870 if (pos + length > max_size) 871 goto unstuff; 872 iomap->length = max_size; 873 } else { 874 if (pos >= size) { 875 if (flags & IOMAP_REPORT) { 876 ret = -ENOENT; 877 goto unlock; 878 } else { 879 iomap->offset = pos; 880 iomap->length = length; 881 goto hole_found; 882 } 883 } 884 iomap->length = size; 885 } 886 iomap->addr = (ip->i_no_addr << inode->i_blkbits) + 887 sizeof(struct gfs2_dinode); 888 iomap->type = IOMAP_INLINE; 889 iomap->inline_data = dibh->b_data + sizeof(struct gfs2_dinode); 890 goto out; 891 } 892 893 unstuff: 894 lblock = pos >> inode->i_blkbits; 895 iomap->offset = lblock << inode->i_blkbits; 896 lblock_stop = (pos + length - 1) >> inode->i_blkbits; 897 len = lblock_stop - lblock + 1; 898 iomap->length = len << inode->i_blkbits; 899 900 height = ip->i_height; 901 while ((lblock + 1) * sdp->sd_sb.sb_bsize > sdp->sd_heightsize[height]) 902 height++; 903 find_metapath(sdp, lblock, mp, height); 904 if (height > ip->i_height || gfs2_is_stuffed(ip)) 905 goto do_alloc; 906 907 ret = lookup_metapath(ip, mp); 908 if (ret) 909 goto unlock; 910 911 if (mp->mp_aheight != ip->i_height) 912 goto do_alloc; 913 914 ptr = metapointer(ip->i_height - 1, mp); 915 if (*ptr == 0) 916 goto do_alloc; 917 918 bh = mp->mp_bh[ip->i_height - 1]; 919 len = gfs2_extent_length(bh, ptr, &eob); 920 921 iomap->addr = be64_to_cpu(*ptr) << inode->i_blkbits; 922 iomap->length = len << inode->i_blkbits; 923 iomap->type = IOMAP_MAPPED; 924 iomap->flags |= IOMAP_F_MERGED; 925 if (eob) 926 iomap->flags |= IOMAP_F_GFS2_BOUNDARY; 927 928 out: 929 iomap->bdev = inode->i_sb->s_bdev; 930 unlock: 931 up_read(&ip->i_rw_mutex); 932 return ret; 933 934 do_alloc: 935 if (flags & IOMAP_REPORT) { 936 if (pos >= size) 937 ret = -ENOENT; 938 else if (height == ip->i_height) 939 ret = gfs2_hole_size(inode, lblock, len, mp, iomap); 940 else 941 iomap->length = size - iomap->offset; 942 } else if (flags & IOMAP_WRITE) { 943 u64 alloc_size; 944 945 if (flags & IOMAP_DIRECT) 946 goto out; /* (see gfs2_file_direct_write) */ 947 948 len = gfs2_alloc_size(inode, mp, len); 949 alloc_size = len << inode->i_blkbits; 950 if (alloc_size < iomap->length) 951 iomap->length = alloc_size; 952 } else { 953 if (pos < size && height == ip->i_height) 954 ret = gfs2_hole_size(inode, lblock, len, mp, iomap); 955 } 956 hole_found: 957 iomap->addr = IOMAP_NULL_ADDR; 958 iomap->type = IOMAP_HOLE; 959 goto out; 960 } 961 962 static struct folio * 963 gfs2_iomap_get_folio(struct iomap_iter *iter, loff_t pos, unsigned len) 964 { 965 struct inode *inode = iter->inode; 966 unsigned int blockmask = i_blocksize(inode) - 1; 967 struct gfs2_sbd *sdp = GFS2_SB(inode); 968 unsigned int blocks; 969 struct folio *folio; 970 int status; 971 972 blocks = ((pos & blockmask) + len + blockmask) >> inode->i_blkbits; 973 status = gfs2_trans_begin(sdp, RES_DINODE + blocks, 0); 974 if (status) 975 return ERR_PTR(status); 976 977 folio = iomap_get_folio(iter, pos, len); 978 if (IS_ERR(folio)) 979 gfs2_trans_end(sdp); 980 return folio; 981 } 982 983 static void gfs2_iomap_put_folio(struct inode *inode, loff_t pos, 984 unsigned copied, struct folio *folio) 985 { 986 struct gfs2_trans *tr = current->journal_info; 987 struct gfs2_inode *ip = GFS2_I(inode); 988 struct gfs2_sbd *sdp = GFS2_SB(inode); 989 990 if (!gfs2_is_stuffed(ip)) 991 gfs2_trans_add_databufs(ip, folio, offset_in_folio(folio, pos), 992 copied); 993 994 folio_unlock(folio); 995 folio_put(folio); 996 997 if (tr->tr_num_buf_new) 998 __mark_inode_dirty(inode, I_DIRTY_DATASYNC); 999 1000 gfs2_trans_end(sdp); 1001 } 1002 1003 static const struct iomap_folio_ops gfs2_iomap_folio_ops = { 1004 .get_folio = gfs2_iomap_get_folio, 1005 .put_folio = gfs2_iomap_put_folio, 1006 }; 1007 1008 static int gfs2_iomap_begin_write(struct inode *inode, loff_t pos, 1009 loff_t length, unsigned flags, 1010 struct iomap *iomap, 1011 struct metapath *mp) 1012 { 1013 struct gfs2_inode *ip = GFS2_I(inode); 1014 struct gfs2_sbd *sdp = GFS2_SB(inode); 1015 bool unstuff; 1016 int ret; 1017 1018 unstuff = gfs2_is_stuffed(ip) && 1019 pos + length > gfs2_max_stuffed_size(ip); 1020 1021 if (unstuff || iomap->type == IOMAP_HOLE) { 1022 unsigned int data_blocks, ind_blocks; 1023 struct gfs2_alloc_parms ap = {}; 1024 unsigned int rblocks; 1025 struct gfs2_trans *tr; 1026 1027 gfs2_write_calc_reserv(ip, iomap->length, &data_blocks, 1028 &ind_blocks); 1029 ap.target = data_blocks + ind_blocks; 1030 ret = gfs2_quota_lock_check(ip, &ap); 1031 if (ret) 1032 return ret; 1033 1034 ret = gfs2_inplace_reserve(ip, &ap); 1035 if (ret) 1036 goto out_qunlock; 1037 1038 rblocks = RES_DINODE + ind_blocks; 1039 if (gfs2_is_jdata(ip)) 1040 rblocks += data_blocks; 1041 if (ind_blocks || data_blocks) 1042 rblocks += RES_STATFS + RES_QUOTA; 1043 if (inode == sdp->sd_rindex) 1044 rblocks += 2 * RES_STATFS; 1045 rblocks += gfs2_rg_blocks(ip, data_blocks + ind_blocks); 1046 1047 ret = gfs2_trans_begin(sdp, rblocks, 1048 iomap->length >> inode->i_blkbits); 1049 if (ret) 1050 goto out_trans_fail; 1051 1052 if (unstuff) { 1053 ret = gfs2_unstuff_dinode(ip); 1054 if (ret) 1055 goto out_trans_end; 1056 release_metapath(mp); 1057 ret = __gfs2_iomap_get(inode, iomap->offset, 1058 iomap->length, flags, iomap, mp); 1059 if (ret) 1060 goto out_trans_end; 1061 } 1062 1063 if (iomap->type == IOMAP_HOLE) { 1064 ret = __gfs2_iomap_alloc(inode, iomap, mp); 1065 if (ret) { 1066 gfs2_trans_end(sdp); 1067 gfs2_inplace_release(ip); 1068 punch_hole(ip, iomap->offset, iomap->length); 1069 goto out_qunlock; 1070 } 1071 } 1072 1073 tr = current->journal_info; 1074 if (tr->tr_num_buf_new) 1075 __mark_inode_dirty(inode, I_DIRTY_DATASYNC); 1076 1077 gfs2_trans_end(sdp); 1078 } 1079 1080 if (gfs2_is_stuffed(ip) || gfs2_is_jdata(ip)) 1081 iomap->folio_ops = &gfs2_iomap_folio_ops; 1082 return 0; 1083 1084 out_trans_end: 1085 gfs2_trans_end(sdp); 1086 out_trans_fail: 1087 gfs2_inplace_release(ip); 1088 out_qunlock: 1089 gfs2_quota_unlock(ip); 1090 return ret; 1091 } 1092 1093 static int gfs2_iomap_begin(struct inode *inode, loff_t pos, loff_t length, 1094 unsigned flags, struct iomap *iomap, 1095 struct iomap *srcmap) 1096 { 1097 struct gfs2_inode *ip = GFS2_I(inode); 1098 struct metapath mp = { .mp_aheight = 1, }; 1099 int ret; 1100 1101 if (gfs2_is_jdata(ip)) 1102 iomap->flags |= IOMAP_F_BUFFER_HEAD; 1103 1104 trace_gfs2_iomap_start(ip, pos, length, flags); 1105 ret = __gfs2_iomap_get(inode, pos, length, flags, iomap, &mp); 1106 if (ret) 1107 goto out_unlock; 1108 1109 switch(flags & (IOMAP_WRITE | IOMAP_ZERO)) { 1110 case IOMAP_WRITE: 1111 if (flags & IOMAP_DIRECT) { 1112 /* 1113 * Silently fall back to buffered I/O for stuffed files 1114 * or if we've got a hole (see gfs2_file_direct_write). 1115 */ 1116 if (iomap->type != IOMAP_MAPPED) 1117 ret = -ENOTBLK; 1118 goto out_unlock; 1119 } 1120 break; 1121 case IOMAP_ZERO: 1122 if (iomap->type == IOMAP_HOLE) 1123 goto out_unlock; 1124 break; 1125 default: 1126 goto out_unlock; 1127 } 1128 1129 ret = gfs2_iomap_begin_write(inode, pos, length, flags, iomap, &mp); 1130 1131 out_unlock: 1132 release_metapath(&mp); 1133 trace_gfs2_iomap_end(ip, iomap, ret); 1134 return ret; 1135 } 1136 1137 static int gfs2_iomap_end(struct inode *inode, loff_t pos, loff_t length, 1138 ssize_t written, unsigned flags, struct iomap *iomap) 1139 { 1140 struct gfs2_inode *ip = GFS2_I(inode); 1141 struct gfs2_sbd *sdp = GFS2_SB(inode); 1142 1143 switch (flags & (IOMAP_WRITE | IOMAP_ZERO)) { 1144 case IOMAP_WRITE: 1145 if (flags & IOMAP_DIRECT) 1146 return 0; 1147 break; 1148 case IOMAP_ZERO: 1149 if (iomap->type == IOMAP_HOLE) 1150 return 0; 1151 break; 1152 default: 1153 return 0; 1154 } 1155 1156 if (!gfs2_is_stuffed(ip)) 1157 gfs2_ordered_add_inode(ip); 1158 1159 if (inode == sdp->sd_rindex) 1160 adjust_fs_space(inode); 1161 1162 gfs2_inplace_release(ip); 1163 1164 if (ip->i_qadata && ip->i_qadata->qa_qd_num) 1165 gfs2_quota_unlock(ip); 1166 1167 if (length != written && (iomap->flags & IOMAP_F_NEW)) { 1168 /* Deallocate blocks that were just allocated. */ 1169 loff_t hstart = round_up(pos + written, i_blocksize(inode)); 1170 loff_t hend = iomap->offset + iomap->length; 1171 1172 if (hstart < hend) { 1173 truncate_pagecache_range(inode, hstart, hend - 1); 1174 punch_hole(ip, hstart, hend - hstart); 1175 } 1176 } 1177 1178 if (unlikely(!written)) 1179 return 0; 1180 1181 if (iomap->flags & IOMAP_F_SIZE_CHANGED) 1182 mark_inode_dirty(inode); 1183 set_bit(GLF_DIRTY, &ip->i_gl->gl_flags); 1184 return 0; 1185 } 1186 1187 const struct iomap_ops gfs2_iomap_ops = { 1188 .iomap_begin = gfs2_iomap_begin, 1189 .iomap_end = gfs2_iomap_end, 1190 }; 1191 1192 /** 1193 * gfs2_block_map - Map one or more blocks of an inode to a disk block 1194 * @inode: The inode 1195 * @lblock: The logical block number 1196 * @bh_map: The bh to be mapped 1197 * @create: True if its ok to alloc blocks to satify the request 1198 * 1199 * The size of the requested mapping is defined in bh_map->b_size. 1200 * 1201 * Clears buffer_mapped(bh_map) and leaves bh_map->b_size unchanged 1202 * when @lblock is not mapped. Sets buffer_mapped(bh_map) and 1203 * bh_map->b_size to indicate the size of the mapping when @lblock and 1204 * successive blocks are mapped, up to the requested size. 1205 * 1206 * Sets buffer_boundary() if a read of metadata will be required 1207 * before the next block can be mapped. Sets buffer_new() if new 1208 * blocks were allocated. 1209 * 1210 * Returns: errno 1211 */ 1212 1213 int gfs2_block_map(struct inode *inode, sector_t lblock, 1214 struct buffer_head *bh_map, int create) 1215 { 1216 struct gfs2_inode *ip = GFS2_I(inode); 1217 loff_t pos = (loff_t)lblock << inode->i_blkbits; 1218 loff_t length = bh_map->b_size; 1219 struct iomap iomap = { }; 1220 int ret; 1221 1222 clear_buffer_mapped(bh_map); 1223 clear_buffer_new(bh_map); 1224 clear_buffer_boundary(bh_map); 1225 trace_gfs2_bmap(ip, bh_map, lblock, create, 1); 1226 1227 if (!create) 1228 ret = gfs2_iomap_get(inode, pos, length, &iomap); 1229 else 1230 ret = gfs2_iomap_alloc(inode, pos, length, &iomap); 1231 if (ret) 1232 goto out; 1233 1234 if (iomap.length > bh_map->b_size) { 1235 iomap.length = bh_map->b_size; 1236 iomap.flags &= ~IOMAP_F_GFS2_BOUNDARY; 1237 } 1238 if (iomap.addr != IOMAP_NULL_ADDR) 1239 map_bh(bh_map, inode->i_sb, iomap.addr >> inode->i_blkbits); 1240 bh_map->b_size = iomap.length; 1241 if (iomap.flags & IOMAP_F_GFS2_BOUNDARY) 1242 set_buffer_boundary(bh_map); 1243 if (iomap.flags & IOMAP_F_NEW) 1244 set_buffer_new(bh_map); 1245 1246 out: 1247 trace_gfs2_bmap(ip, bh_map, lblock, create, ret); 1248 return ret; 1249 } 1250 1251 int gfs2_get_extent(struct inode *inode, u64 lblock, u64 *dblock, 1252 unsigned int *extlen) 1253 { 1254 unsigned int blkbits = inode->i_blkbits; 1255 struct iomap iomap = { }; 1256 unsigned int len; 1257 int ret; 1258 1259 ret = gfs2_iomap_get(inode, lblock << blkbits, *extlen << blkbits, 1260 &iomap); 1261 if (ret) 1262 return ret; 1263 if (iomap.type != IOMAP_MAPPED) 1264 return -EIO; 1265 *dblock = iomap.addr >> blkbits; 1266 len = iomap.length >> blkbits; 1267 if (len < *extlen) 1268 *extlen = len; 1269 return 0; 1270 } 1271 1272 int gfs2_alloc_extent(struct inode *inode, u64 lblock, u64 *dblock, 1273 unsigned int *extlen, bool *new) 1274 { 1275 unsigned int blkbits = inode->i_blkbits; 1276 struct iomap iomap = { }; 1277 unsigned int len; 1278 int ret; 1279 1280 ret = gfs2_iomap_alloc(inode, lblock << blkbits, *extlen << blkbits, 1281 &iomap); 1282 if (ret) 1283 return ret; 1284 if (iomap.type != IOMAP_MAPPED) 1285 return -EIO; 1286 *dblock = iomap.addr >> blkbits; 1287 len = iomap.length >> blkbits; 1288 if (len < *extlen) 1289 *extlen = len; 1290 *new = iomap.flags & IOMAP_F_NEW; 1291 return 0; 1292 } 1293 1294 /* 1295 * NOTE: Never call gfs2_block_zero_range with an open transaction because it 1296 * uses iomap write to perform its actions, which begin their own transactions 1297 * (iomap_begin, get_folio, etc.) 1298 */ 1299 static int gfs2_block_zero_range(struct inode *inode, loff_t from, 1300 unsigned int length) 1301 { 1302 BUG_ON(current->journal_info); 1303 return iomap_zero_range(inode, from, length, NULL, &gfs2_iomap_ops, 1304 NULL); 1305 } 1306 1307 #define GFS2_JTRUNC_REVOKES 8192 1308 1309 /** 1310 * gfs2_journaled_truncate - Wrapper for truncate_pagecache for jdata files 1311 * @inode: The inode being truncated 1312 * @oldsize: The original (larger) size 1313 * @newsize: The new smaller size 1314 * 1315 * With jdata files, we have to journal a revoke for each block which is 1316 * truncated. As a result, we need to split this into separate transactions 1317 * if the number of pages being truncated gets too large. 1318 */ 1319 1320 static int gfs2_journaled_truncate(struct inode *inode, u64 oldsize, u64 newsize) 1321 { 1322 struct gfs2_sbd *sdp = GFS2_SB(inode); 1323 u64 max_chunk = GFS2_JTRUNC_REVOKES * sdp->sd_vfs->s_blocksize; 1324 u64 chunk; 1325 int error; 1326 1327 while (oldsize != newsize) { 1328 struct gfs2_trans *tr; 1329 unsigned int offs; 1330 1331 chunk = oldsize - newsize; 1332 if (chunk > max_chunk) 1333 chunk = max_chunk; 1334 1335 offs = oldsize & ~PAGE_MASK; 1336 if (offs && chunk > PAGE_SIZE) 1337 chunk = offs + ((chunk - offs) & PAGE_MASK); 1338 1339 truncate_pagecache(inode, oldsize - chunk); 1340 oldsize -= chunk; 1341 1342 tr = current->journal_info; 1343 if (!test_bit(TR_TOUCHED, &tr->tr_flags)) 1344 continue; 1345 1346 gfs2_trans_end(sdp); 1347 error = gfs2_trans_begin(sdp, RES_DINODE, GFS2_JTRUNC_REVOKES); 1348 if (error) 1349 return error; 1350 } 1351 1352 return 0; 1353 } 1354 1355 static int trunc_start(struct inode *inode, u64 newsize) 1356 { 1357 struct gfs2_inode *ip = GFS2_I(inode); 1358 struct gfs2_sbd *sdp = GFS2_SB(inode); 1359 struct buffer_head *dibh = NULL; 1360 int journaled = gfs2_is_jdata(ip); 1361 u64 oldsize = inode->i_size; 1362 int error; 1363 1364 if (!gfs2_is_stuffed(ip)) { 1365 unsigned int blocksize = i_blocksize(inode); 1366 unsigned int offs = newsize & (blocksize - 1); 1367 if (offs) { 1368 error = gfs2_block_zero_range(inode, newsize, 1369 blocksize - offs); 1370 if (error) 1371 return error; 1372 } 1373 } 1374 if (journaled) 1375 error = gfs2_trans_begin(sdp, RES_DINODE + RES_JDATA, GFS2_JTRUNC_REVOKES); 1376 else 1377 error = gfs2_trans_begin(sdp, RES_DINODE, 0); 1378 if (error) 1379 return error; 1380 1381 error = gfs2_meta_inode_buffer(ip, &dibh); 1382 if (error) 1383 goto out; 1384 1385 gfs2_trans_add_meta(ip->i_gl, dibh); 1386 1387 if (gfs2_is_stuffed(ip)) 1388 gfs2_buffer_clear_tail(dibh, sizeof(struct gfs2_dinode) + newsize); 1389 else 1390 ip->i_diskflags |= GFS2_DIF_TRUNC_IN_PROG; 1391 1392 i_size_write(inode, newsize); 1393 inode_set_mtime_to_ts(&ip->i_inode, inode_set_ctime_current(&ip->i_inode)); 1394 gfs2_dinode_out(ip, dibh->b_data); 1395 1396 if (journaled) 1397 error = gfs2_journaled_truncate(inode, oldsize, newsize); 1398 else 1399 truncate_pagecache(inode, newsize); 1400 1401 out: 1402 brelse(dibh); 1403 if (current->journal_info) 1404 gfs2_trans_end(sdp); 1405 return error; 1406 } 1407 1408 int gfs2_iomap_get(struct inode *inode, loff_t pos, loff_t length, 1409 struct iomap *iomap) 1410 { 1411 struct metapath mp = { .mp_aheight = 1, }; 1412 int ret; 1413 1414 ret = __gfs2_iomap_get(inode, pos, length, 0, iomap, &mp); 1415 release_metapath(&mp); 1416 return ret; 1417 } 1418 1419 int gfs2_iomap_alloc(struct inode *inode, loff_t pos, loff_t length, 1420 struct iomap *iomap) 1421 { 1422 struct metapath mp = { .mp_aheight = 1, }; 1423 int ret; 1424 1425 ret = __gfs2_iomap_get(inode, pos, length, IOMAP_WRITE, iomap, &mp); 1426 if (!ret && iomap->type == IOMAP_HOLE) 1427 ret = __gfs2_iomap_alloc(inode, iomap, &mp); 1428 release_metapath(&mp); 1429 return ret; 1430 } 1431 1432 /** 1433 * sweep_bh_for_rgrps - find an rgrp in a meta buffer and free blocks therein 1434 * @ip: inode 1435 * @rd_gh: holder of resource group glock 1436 * @bh: buffer head to sweep 1437 * @start: starting point in bh 1438 * @end: end point in bh 1439 * @meta: true if bh points to metadata (rather than data) 1440 * @btotal: place to keep count of total blocks freed 1441 * 1442 * We sweep a metadata buffer (provided by the metapath) for blocks we need to 1443 * free, and free them all. However, we do it one rgrp at a time. If this 1444 * block has references to multiple rgrps, we break it into individual 1445 * transactions. This allows other processes to use the rgrps while we're 1446 * focused on a single one, for better concurrency / performance. 1447 * At every transaction boundary, we rewrite the inode into the journal. 1448 * That way the bitmaps are kept consistent with the inode and we can recover 1449 * if we're interrupted by power-outages. 1450 * 1451 * Returns: 0, or return code if an error occurred. 1452 * *btotal has the total number of blocks freed 1453 */ 1454 static int sweep_bh_for_rgrps(struct gfs2_inode *ip, struct gfs2_holder *rd_gh, 1455 struct buffer_head *bh, __be64 *start, __be64 *end, 1456 bool meta, u32 *btotal) 1457 { 1458 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 1459 struct gfs2_rgrpd *rgd; 1460 struct gfs2_trans *tr; 1461 __be64 *p; 1462 int blks_outside_rgrp; 1463 u64 bn, bstart, isize_blks; 1464 s64 blen; /* needs to be s64 or gfs2_add_inode_blocks breaks */ 1465 int ret = 0; 1466 bool buf_in_tr = false; /* buffer was added to transaction */ 1467 1468 more_rgrps: 1469 rgd = NULL; 1470 if (gfs2_holder_initialized(rd_gh)) { 1471 rgd = gfs2_glock2rgrp(rd_gh->gh_gl); 1472 gfs2_assert_withdraw(sdp, 1473 gfs2_glock_is_locked_by_me(rd_gh->gh_gl)); 1474 } 1475 blks_outside_rgrp = 0; 1476 bstart = 0; 1477 blen = 0; 1478 1479 for (p = start; p < end; p++) { 1480 if (!*p) 1481 continue; 1482 bn = be64_to_cpu(*p); 1483 1484 if (rgd) { 1485 if (!rgrp_contains_block(rgd, bn)) { 1486 blks_outside_rgrp++; 1487 continue; 1488 } 1489 } else { 1490 rgd = gfs2_blk2rgrpd(sdp, bn, true); 1491 if (unlikely(!rgd)) { 1492 ret = -EIO; 1493 goto out; 1494 } 1495 ret = gfs2_glock_nq_init(rgd->rd_gl, LM_ST_EXCLUSIVE, 1496 LM_FLAG_NODE_SCOPE, rd_gh); 1497 if (ret) 1498 goto out; 1499 1500 /* Must be done with the rgrp glock held: */ 1501 if (gfs2_rs_active(&ip->i_res) && 1502 rgd == ip->i_res.rs_rgd) 1503 gfs2_rs_deltree(&ip->i_res); 1504 } 1505 1506 /* The size of our transactions will be unknown until we 1507 actually process all the metadata blocks that relate to 1508 the rgrp. So we estimate. We know it can't be more than 1509 the dinode's i_blocks and we don't want to exceed the 1510 journal flush threshold, sd_log_thresh2. */ 1511 if (current->journal_info == NULL) { 1512 unsigned int jblocks_rqsted, revokes; 1513 1514 jblocks_rqsted = rgd->rd_length + RES_DINODE + 1515 RES_INDIRECT; 1516 isize_blks = gfs2_get_inode_blocks(&ip->i_inode); 1517 if (isize_blks > atomic_read(&sdp->sd_log_thresh2)) 1518 jblocks_rqsted += 1519 atomic_read(&sdp->sd_log_thresh2); 1520 else 1521 jblocks_rqsted += isize_blks; 1522 revokes = jblocks_rqsted; 1523 if (meta) 1524 revokes += end - start; 1525 else if (ip->i_depth) 1526 revokes += sdp->sd_inptrs; 1527 ret = gfs2_trans_begin(sdp, jblocks_rqsted, revokes); 1528 if (ret) 1529 goto out_unlock; 1530 down_write(&ip->i_rw_mutex); 1531 } 1532 /* check if we will exceed the transaction blocks requested */ 1533 tr = current->journal_info; 1534 if (tr->tr_num_buf_new + RES_STATFS + 1535 RES_QUOTA >= atomic_read(&sdp->sd_log_thresh2)) { 1536 /* We set blks_outside_rgrp to ensure the loop will 1537 be repeated for the same rgrp, but with a new 1538 transaction. */ 1539 blks_outside_rgrp++; 1540 /* This next part is tricky. If the buffer was added 1541 to the transaction, we've already set some block 1542 pointers to 0, so we better follow through and free 1543 them, or we will introduce corruption (so break). 1544 This may be impossible, or at least rare, but I 1545 decided to cover the case regardless. 1546 1547 If the buffer was not added to the transaction 1548 (this call), doing so would exceed our transaction 1549 size, so we need to end the transaction and start a 1550 new one (so goto). */ 1551 1552 if (buf_in_tr) 1553 break; 1554 goto out_unlock; 1555 } 1556 1557 gfs2_trans_add_meta(ip->i_gl, bh); 1558 buf_in_tr = true; 1559 *p = 0; 1560 if (bstart + blen == bn) { 1561 blen++; 1562 continue; 1563 } 1564 if (bstart) { 1565 __gfs2_free_blocks(ip, rgd, bstart, (u32)blen, meta); 1566 (*btotal) += blen; 1567 gfs2_add_inode_blocks(&ip->i_inode, -blen); 1568 } 1569 bstart = bn; 1570 blen = 1; 1571 } 1572 if (bstart) { 1573 __gfs2_free_blocks(ip, rgd, bstart, (u32)blen, meta); 1574 (*btotal) += blen; 1575 gfs2_add_inode_blocks(&ip->i_inode, -blen); 1576 } 1577 out_unlock: 1578 if (!ret && blks_outside_rgrp) { /* If buffer still has non-zero blocks 1579 outside the rgrp we just processed, 1580 do it all over again. */ 1581 if (current->journal_info) { 1582 struct buffer_head *dibh; 1583 1584 ret = gfs2_meta_inode_buffer(ip, &dibh); 1585 if (ret) 1586 goto out; 1587 1588 /* Every transaction boundary, we rewrite the dinode 1589 to keep its di_blocks current in case of failure. */ 1590 inode_set_mtime_to_ts(&ip->i_inode, inode_set_ctime_current(&ip->i_inode)); 1591 gfs2_trans_add_meta(ip->i_gl, dibh); 1592 gfs2_dinode_out(ip, dibh->b_data); 1593 brelse(dibh); 1594 up_write(&ip->i_rw_mutex); 1595 gfs2_trans_end(sdp); 1596 buf_in_tr = false; 1597 } 1598 gfs2_glock_dq_uninit(rd_gh); 1599 cond_resched(); 1600 goto more_rgrps; 1601 } 1602 out: 1603 return ret; 1604 } 1605 1606 static bool mp_eq_to_hgt(struct metapath *mp, __u16 *list, unsigned int h) 1607 { 1608 if (memcmp(mp->mp_list, list, h * sizeof(mp->mp_list[0]))) 1609 return false; 1610 return true; 1611 } 1612 1613 /** 1614 * find_nonnull_ptr - find a non-null pointer given a metapath and height 1615 * @sdp: The superblock 1616 * @mp: starting metapath 1617 * @h: desired height to search 1618 * @end_list: See punch_hole(). 1619 * @end_aligned: See punch_hole(). 1620 * 1621 * Assumes the metapath is valid (with buffers) out to height h. 1622 * Returns: true if a non-null pointer was found in the metapath buffer 1623 * false if all remaining pointers are NULL in the buffer 1624 */ 1625 static bool find_nonnull_ptr(struct gfs2_sbd *sdp, struct metapath *mp, 1626 unsigned int h, 1627 __u16 *end_list, unsigned int end_aligned) 1628 { 1629 struct buffer_head *bh = mp->mp_bh[h]; 1630 __be64 *first, *ptr, *end; 1631 1632 first = metaptr1(h, mp); 1633 ptr = first + mp->mp_list[h]; 1634 end = (__be64 *)(bh->b_data + bh->b_size); 1635 if (end_list && mp_eq_to_hgt(mp, end_list, h)) { 1636 bool keep_end = h < end_aligned; 1637 end = first + end_list[h] + keep_end; 1638 } 1639 1640 while (ptr < end) { 1641 if (*ptr) { /* if we have a non-null pointer */ 1642 mp->mp_list[h] = ptr - first; 1643 h++; 1644 if (h < GFS2_MAX_META_HEIGHT) 1645 mp->mp_list[h] = 0; 1646 return true; 1647 } 1648 ptr++; 1649 } 1650 return false; 1651 } 1652 1653 enum dealloc_states { 1654 DEALLOC_MP_FULL = 0, /* Strip a metapath with all buffers read in */ 1655 DEALLOC_MP_LOWER = 1, /* lower the metapath strip height */ 1656 DEALLOC_FILL_MP = 2, /* Fill in the metapath to the given height. */ 1657 DEALLOC_DONE = 3, /* process complete */ 1658 }; 1659 1660 static inline void 1661 metapointer_range(struct metapath *mp, int height, 1662 __u16 *start_list, unsigned int start_aligned, 1663 __u16 *end_list, unsigned int end_aligned, 1664 __be64 **start, __be64 **end) 1665 { 1666 struct buffer_head *bh = mp->mp_bh[height]; 1667 __be64 *first; 1668 1669 first = metaptr1(height, mp); 1670 *start = first; 1671 if (mp_eq_to_hgt(mp, start_list, height)) { 1672 bool keep_start = height < start_aligned; 1673 *start = first + start_list[height] + keep_start; 1674 } 1675 *end = (__be64 *)(bh->b_data + bh->b_size); 1676 if (end_list && mp_eq_to_hgt(mp, end_list, height)) { 1677 bool keep_end = height < end_aligned; 1678 *end = first + end_list[height] + keep_end; 1679 } 1680 } 1681 1682 static inline bool walk_done(struct gfs2_sbd *sdp, 1683 struct metapath *mp, int height, 1684 __u16 *end_list, unsigned int end_aligned) 1685 { 1686 __u16 end; 1687 1688 if (end_list) { 1689 bool keep_end = height < end_aligned; 1690 if (!mp_eq_to_hgt(mp, end_list, height)) 1691 return false; 1692 end = end_list[height] + keep_end; 1693 } else 1694 end = (height > 0) ? sdp->sd_inptrs : sdp->sd_diptrs; 1695 return mp->mp_list[height] >= end; 1696 } 1697 1698 /** 1699 * punch_hole - deallocate blocks in a file 1700 * @ip: inode to truncate 1701 * @offset: the start of the hole 1702 * @length: the size of the hole (or 0 for truncate) 1703 * 1704 * Punch a hole into a file or truncate a file at a given position. This 1705 * function operates in whole blocks (@offset and @length are rounded 1706 * accordingly); partially filled blocks must be cleared otherwise. 1707 * 1708 * This function works from the bottom up, and from the right to the left. In 1709 * other words, it strips off the highest layer (data) before stripping any of 1710 * the metadata. Doing it this way is best in case the operation is interrupted 1711 * by power failure, etc. The dinode is rewritten in every transaction to 1712 * guarantee integrity. 1713 */ 1714 static int punch_hole(struct gfs2_inode *ip, u64 offset, u64 length) 1715 { 1716 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 1717 u64 maxsize = sdp->sd_heightsize[ip->i_height]; 1718 struct metapath mp = {}; 1719 struct buffer_head *dibh, *bh; 1720 struct gfs2_holder rd_gh; 1721 unsigned int bsize_shift = sdp->sd_sb.sb_bsize_shift; 1722 unsigned int bsize = 1 << bsize_shift; 1723 u64 lblock = (offset + bsize - 1) >> bsize_shift; 1724 __u16 start_list[GFS2_MAX_META_HEIGHT]; 1725 __u16 __end_list[GFS2_MAX_META_HEIGHT], *end_list = NULL; 1726 unsigned int start_aligned, end_aligned; 1727 unsigned int strip_h = ip->i_height - 1; 1728 u32 btotal = 0; 1729 int ret, state; 1730 int mp_h; /* metapath buffers are read in to this height */ 1731 u64 prev_bnr = 0; 1732 __be64 *start, *end; 1733 1734 if (offset + bsize - 1 >= maxsize) { 1735 /* 1736 * The starting point lies beyond the allocated metadata; 1737 * there are no blocks to deallocate. 1738 */ 1739 return 0; 1740 } 1741 1742 /* 1743 * The start position of the hole is defined by lblock, start_list, and 1744 * start_aligned. The end position of the hole is defined by lend, 1745 * end_list, and end_aligned. 1746 * 1747 * start_aligned and end_aligned define down to which height the start 1748 * and end positions are aligned to the metadata tree (i.e., the 1749 * position is a multiple of the metadata granularity at the height 1750 * above). This determines at which heights additional meta pointers 1751 * needs to be preserved for the remaining data. 1752 */ 1753 1754 if (length) { 1755 u64 end_offset = offset + length; 1756 u64 lend; 1757 1758 /* 1759 * Clip the end at the maximum file size for the given height: 1760 * that's how far the metadata goes; files bigger than that 1761 * will have additional layers of indirection. 1762 */ 1763 if (end_offset > maxsize) 1764 end_offset = maxsize; 1765 lend = end_offset >> bsize_shift; 1766 1767 if (lblock >= lend) 1768 return 0; 1769 1770 find_metapath(sdp, lend, &mp, ip->i_height); 1771 end_list = __end_list; 1772 memcpy(end_list, mp.mp_list, sizeof(mp.mp_list)); 1773 1774 for (mp_h = ip->i_height - 1; mp_h > 0; mp_h--) { 1775 if (end_list[mp_h]) 1776 break; 1777 } 1778 end_aligned = mp_h; 1779 } 1780 1781 find_metapath(sdp, lblock, &mp, ip->i_height); 1782 memcpy(start_list, mp.mp_list, sizeof(start_list)); 1783 1784 for (mp_h = ip->i_height - 1; mp_h > 0; mp_h--) { 1785 if (start_list[mp_h]) 1786 break; 1787 } 1788 start_aligned = mp_h; 1789 1790 ret = gfs2_meta_inode_buffer(ip, &dibh); 1791 if (ret) 1792 return ret; 1793 1794 mp.mp_bh[0] = dibh; 1795 ret = lookup_metapath(ip, &mp); 1796 if (ret) 1797 goto out_metapath; 1798 1799 /* issue read-ahead on metadata */ 1800 for (mp_h = 0; mp_h < mp.mp_aheight - 1; mp_h++) { 1801 metapointer_range(&mp, mp_h, start_list, start_aligned, 1802 end_list, end_aligned, &start, &end); 1803 gfs2_metapath_ra(ip->i_gl, start, end); 1804 } 1805 1806 if (mp.mp_aheight == ip->i_height) 1807 state = DEALLOC_MP_FULL; /* We have a complete metapath */ 1808 else 1809 state = DEALLOC_FILL_MP; /* deal with partial metapath */ 1810 1811 ret = gfs2_rindex_update(sdp); 1812 if (ret) 1813 goto out_metapath; 1814 1815 ret = gfs2_quota_hold(ip, NO_UID_QUOTA_CHANGE, NO_GID_QUOTA_CHANGE); 1816 if (ret) 1817 goto out_metapath; 1818 gfs2_holder_mark_uninitialized(&rd_gh); 1819 1820 mp_h = strip_h; 1821 1822 while (state != DEALLOC_DONE) { 1823 switch (state) { 1824 /* Truncate a full metapath at the given strip height. 1825 * Note that strip_h == mp_h in order to be in this state. */ 1826 case DEALLOC_MP_FULL: 1827 bh = mp.mp_bh[mp_h]; 1828 gfs2_assert_withdraw(sdp, bh); 1829 if (gfs2_assert_withdraw(sdp, 1830 prev_bnr != bh->b_blocknr)) { 1831 fs_emerg(sdp, "inode %llu, block:%llu, i_h:%u, " 1832 "s_h:%u, mp_h:%u\n", 1833 (unsigned long long)ip->i_no_addr, 1834 prev_bnr, ip->i_height, strip_h, mp_h); 1835 } 1836 prev_bnr = bh->b_blocknr; 1837 1838 if (gfs2_metatype_check(sdp, bh, 1839 (mp_h ? GFS2_METATYPE_IN : 1840 GFS2_METATYPE_DI))) { 1841 ret = -EIO; 1842 goto out; 1843 } 1844 1845 /* 1846 * Below, passing end_aligned as 0 gives us the 1847 * metapointer range excluding the end point: the end 1848 * point is the first metapath we must not deallocate! 1849 */ 1850 1851 metapointer_range(&mp, mp_h, start_list, start_aligned, 1852 end_list, 0 /* end_aligned */, 1853 &start, &end); 1854 ret = sweep_bh_for_rgrps(ip, &rd_gh, mp.mp_bh[mp_h], 1855 start, end, 1856 mp_h != ip->i_height - 1, 1857 &btotal); 1858 1859 /* If we hit an error or just swept dinode buffer, 1860 just exit. */ 1861 if (ret || !mp_h) { 1862 state = DEALLOC_DONE; 1863 break; 1864 } 1865 state = DEALLOC_MP_LOWER; 1866 break; 1867 1868 /* lower the metapath strip height */ 1869 case DEALLOC_MP_LOWER: 1870 /* We're done with the current buffer, so release it, 1871 unless it's the dinode buffer. Then back up to the 1872 previous pointer. */ 1873 if (mp_h) { 1874 brelse(mp.mp_bh[mp_h]); 1875 mp.mp_bh[mp_h] = NULL; 1876 } 1877 /* If we can't get any lower in height, we've stripped 1878 off all we can. Next step is to back up and start 1879 stripping the previous level of metadata. */ 1880 if (mp_h == 0) { 1881 strip_h--; 1882 memcpy(mp.mp_list, start_list, sizeof(start_list)); 1883 mp_h = strip_h; 1884 state = DEALLOC_FILL_MP; 1885 break; 1886 } 1887 mp.mp_list[mp_h] = 0; 1888 mp_h--; /* search one metadata height down */ 1889 mp.mp_list[mp_h]++; 1890 if (walk_done(sdp, &mp, mp_h, end_list, end_aligned)) 1891 break; 1892 /* Here we've found a part of the metapath that is not 1893 * allocated. We need to search at that height for the 1894 * next non-null pointer. */ 1895 if (find_nonnull_ptr(sdp, &mp, mp_h, end_list, end_aligned)) { 1896 state = DEALLOC_FILL_MP; 1897 mp_h++; 1898 } 1899 /* No more non-null pointers at this height. Back up 1900 to the previous height and try again. */ 1901 break; /* loop around in the same state */ 1902 1903 /* Fill the metapath with buffers to the given height. */ 1904 case DEALLOC_FILL_MP: 1905 /* Fill the buffers out to the current height. */ 1906 ret = fillup_metapath(ip, &mp, mp_h); 1907 if (ret < 0) 1908 goto out; 1909 1910 /* On the first pass, issue read-ahead on metadata. */ 1911 if (mp.mp_aheight > 1 && strip_h == ip->i_height - 1) { 1912 unsigned int height = mp.mp_aheight - 1; 1913 1914 /* No read-ahead for data blocks. */ 1915 if (mp.mp_aheight - 1 == strip_h) 1916 height--; 1917 1918 for (; height >= mp.mp_aheight - ret; height--) { 1919 metapointer_range(&mp, height, 1920 start_list, start_aligned, 1921 end_list, end_aligned, 1922 &start, &end); 1923 gfs2_metapath_ra(ip->i_gl, start, end); 1924 } 1925 } 1926 1927 /* If buffers found for the entire strip height */ 1928 if (mp.mp_aheight - 1 == strip_h) { 1929 state = DEALLOC_MP_FULL; 1930 break; 1931 } 1932 if (mp.mp_aheight < ip->i_height) /* We have a partial height */ 1933 mp_h = mp.mp_aheight - 1; 1934 1935 /* If we find a non-null block pointer, crawl a bit 1936 higher up in the metapath and try again, otherwise 1937 we need to look lower for a new starting point. */ 1938 if (find_nonnull_ptr(sdp, &mp, mp_h, end_list, end_aligned)) 1939 mp_h++; 1940 else 1941 state = DEALLOC_MP_LOWER; 1942 break; 1943 } 1944 } 1945 1946 if (btotal) { 1947 if (current->journal_info == NULL) { 1948 ret = gfs2_trans_begin(sdp, RES_DINODE + RES_STATFS + 1949 RES_QUOTA, 0); 1950 if (ret) 1951 goto out; 1952 down_write(&ip->i_rw_mutex); 1953 } 1954 gfs2_statfs_change(sdp, 0, +btotal, 0); 1955 gfs2_quota_change(ip, -(s64)btotal, ip->i_inode.i_uid, 1956 ip->i_inode.i_gid); 1957 inode_set_mtime_to_ts(&ip->i_inode, inode_set_ctime_current(&ip->i_inode)); 1958 gfs2_trans_add_meta(ip->i_gl, dibh); 1959 gfs2_dinode_out(ip, dibh->b_data); 1960 up_write(&ip->i_rw_mutex); 1961 gfs2_trans_end(sdp); 1962 } 1963 1964 out: 1965 if (gfs2_holder_initialized(&rd_gh)) 1966 gfs2_glock_dq_uninit(&rd_gh); 1967 if (current->journal_info) { 1968 up_write(&ip->i_rw_mutex); 1969 gfs2_trans_end(sdp); 1970 cond_resched(); 1971 } 1972 gfs2_quota_unhold(ip); 1973 out_metapath: 1974 release_metapath(&mp); 1975 return ret; 1976 } 1977 1978 static int trunc_end(struct gfs2_inode *ip) 1979 { 1980 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 1981 struct buffer_head *dibh; 1982 int error; 1983 1984 error = gfs2_trans_begin(sdp, RES_DINODE, 0); 1985 if (error) 1986 return error; 1987 1988 down_write(&ip->i_rw_mutex); 1989 1990 error = gfs2_meta_inode_buffer(ip, &dibh); 1991 if (error) 1992 goto out; 1993 1994 if (!i_size_read(&ip->i_inode)) { 1995 ip->i_height = 0; 1996 ip->i_goal = ip->i_no_addr; 1997 gfs2_buffer_clear_tail(dibh, sizeof(struct gfs2_dinode)); 1998 gfs2_ordered_del_inode(ip); 1999 } 2000 inode_set_mtime_to_ts(&ip->i_inode, inode_set_ctime_current(&ip->i_inode)); 2001 ip->i_diskflags &= ~GFS2_DIF_TRUNC_IN_PROG; 2002 2003 gfs2_trans_add_meta(ip->i_gl, dibh); 2004 gfs2_dinode_out(ip, dibh->b_data); 2005 brelse(dibh); 2006 2007 out: 2008 up_write(&ip->i_rw_mutex); 2009 gfs2_trans_end(sdp); 2010 return error; 2011 } 2012 2013 /** 2014 * do_shrink - make a file smaller 2015 * @inode: the inode 2016 * @newsize: the size to make the file 2017 * 2018 * Called with an exclusive lock on @inode. The @size must 2019 * be equal to or smaller than the current inode size. 2020 * 2021 * Returns: errno 2022 */ 2023 2024 static int do_shrink(struct inode *inode, u64 newsize) 2025 { 2026 struct gfs2_inode *ip = GFS2_I(inode); 2027 int error; 2028 2029 error = trunc_start(inode, newsize); 2030 if (error < 0) 2031 return error; 2032 if (gfs2_is_stuffed(ip)) 2033 return 0; 2034 2035 error = punch_hole(ip, newsize, 0); 2036 if (error == 0) 2037 error = trunc_end(ip); 2038 2039 return error; 2040 } 2041 2042 /** 2043 * do_grow - Touch and update inode size 2044 * @inode: The inode 2045 * @size: The new size 2046 * 2047 * This function updates the timestamps on the inode and 2048 * may also increase the size of the inode. This function 2049 * must not be called with @size any smaller than the current 2050 * inode size. 2051 * 2052 * Although it is not strictly required to unstuff files here, 2053 * earlier versions of GFS2 have a bug in the stuffed file reading 2054 * code which will result in a buffer overrun if the size is larger 2055 * than the max stuffed file size. In order to prevent this from 2056 * occurring, such files are unstuffed, but in other cases we can 2057 * just update the inode size directly. 2058 * 2059 * Returns: 0 on success, or -ve on error 2060 */ 2061 2062 static int do_grow(struct inode *inode, u64 size) 2063 { 2064 struct gfs2_inode *ip = GFS2_I(inode); 2065 struct gfs2_sbd *sdp = GFS2_SB(inode); 2066 struct gfs2_alloc_parms ap = { .target = 1, }; 2067 struct buffer_head *dibh; 2068 int error; 2069 int unstuff = 0; 2070 2071 if (gfs2_is_stuffed(ip) && size > gfs2_max_stuffed_size(ip)) { 2072 error = gfs2_quota_lock_check(ip, &ap); 2073 if (error) 2074 return error; 2075 2076 error = gfs2_inplace_reserve(ip, &ap); 2077 if (error) 2078 goto do_grow_qunlock; 2079 unstuff = 1; 2080 } 2081 2082 error = gfs2_trans_begin(sdp, RES_DINODE + RES_STATFS + RES_RG_BIT + 2083 (unstuff && 2084 gfs2_is_jdata(ip) ? RES_JDATA : 0) + 2085 (sdp->sd_args.ar_quota == GFS2_QUOTA_OFF ? 2086 0 : RES_QUOTA), 0); 2087 if (error) 2088 goto do_grow_release; 2089 2090 if (unstuff) { 2091 error = gfs2_unstuff_dinode(ip); 2092 if (error) 2093 goto do_end_trans; 2094 } 2095 2096 error = gfs2_meta_inode_buffer(ip, &dibh); 2097 if (error) 2098 goto do_end_trans; 2099 2100 truncate_setsize(inode, size); 2101 inode_set_mtime_to_ts(&ip->i_inode, inode_set_ctime_current(&ip->i_inode)); 2102 gfs2_trans_add_meta(ip->i_gl, dibh); 2103 gfs2_dinode_out(ip, dibh->b_data); 2104 brelse(dibh); 2105 2106 do_end_trans: 2107 gfs2_trans_end(sdp); 2108 do_grow_release: 2109 if (unstuff) { 2110 gfs2_inplace_release(ip); 2111 do_grow_qunlock: 2112 gfs2_quota_unlock(ip); 2113 } 2114 return error; 2115 } 2116 2117 /** 2118 * gfs2_setattr_size - make a file a given size 2119 * @inode: the inode 2120 * @newsize: the size to make the file 2121 * 2122 * The file size can grow, shrink, or stay the same size. This 2123 * is called holding i_rwsem and an exclusive glock on the inode 2124 * in question. 2125 * 2126 * Returns: errno 2127 */ 2128 2129 int gfs2_setattr_size(struct inode *inode, u64 newsize) 2130 { 2131 struct gfs2_inode *ip = GFS2_I(inode); 2132 int ret; 2133 2134 BUG_ON(!S_ISREG(inode->i_mode)); 2135 2136 ret = inode_newsize_ok(inode, newsize); 2137 if (ret) 2138 return ret; 2139 2140 inode_dio_wait(inode); 2141 2142 ret = gfs2_qa_get(ip); 2143 if (ret) 2144 goto out; 2145 2146 if (newsize >= inode->i_size) { 2147 ret = do_grow(inode, newsize); 2148 goto out; 2149 } 2150 2151 ret = do_shrink(inode, newsize); 2152 out: 2153 gfs2_rs_delete(ip); 2154 gfs2_qa_put(ip); 2155 return ret; 2156 } 2157 2158 int gfs2_truncatei_resume(struct gfs2_inode *ip) 2159 { 2160 int error; 2161 error = punch_hole(ip, i_size_read(&ip->i_inode), 0); 2162 if (!error) 2163 error = trunc_end(ip); 2164 return error; 2165 } 2166 2167 int gfs2_file_dealloc(struct gfs2_inode *ip) 2168 { 2169 return punch_hole(ip, 0, 0); 2170 } 2171 2172 /** 2173 * gfs2_free_journal_extents - Free cached journal bmap info 2174 * @jd: The journal 2175 * 2176 */ 2177 2178 void gfs2_free_journal_extents(struct gfs2_jdesc *jd) 2179 { 2180 struct gfs2_journal_extent *jext; 2181 2182 while(!list_empty(&jd->extent_list)) { 2183 jext = list_first_entry(&jd->extent_list, struct gfs2_journal_extent, list); 2184 list_del(&jext->list); 2185 kfree(jext); 2186 } 2187 } 2188 2189 /** 2190 * gfs2_add_jextent - Add or merge a new extent to extent cache 2191 * @jd: The journal descriptor 2192 * @lblock: The logical block at start of new extent 2193 * @dblock: The physical block at start of new extent 2194 * @blocks: Size of extent in fs blocks 2195 * 2196 * Returns: 0 on success or -ENOMEM 2197 */ 2198 2199 static int gfs2_add_jextent(struct gfs2_jdesc *jd, u64 lblock, u64 dblock, u64 blocks) 2200 { 2201 struct gfs2_journal_extent *jext; 2202 2203 if (!list_empty(&jd->extent_list)) { 2204 jext = list_last_entry(&jd->extent_list, struct gfs2_journal_extent, list); 2205 if ((jext->dblock + jext->blocks) == dblock) { 2206 jext->blocks += blocks; 2207 return 0; 2208 } 2209 } 2210 2211 jext = kzalloc(sizeof(struct gfs2_journal_extent), GFP_NOFS); 2212 if (jext == NULL) 2213 return -ENOMEM; 2214 jext->dblock = dblock; 2215 jext->lblock = lblock; 2216 jext->blocks = blocks; 2217 list_add_tail(&jext->list, &jd->extent_list); 2218 jd->nr_extents++; 2219 return 0; 2220 } 2221 2222 /** 2223 * gfs2_map_journal_extents - Cache journal bmap info 2224 * @sdp: The super block 2225 * @jd: The journal to map 2226 * 2227 * Create a reusable "extent" mapping from all logical 2228 * blocks to all physical blocks for the given journal. This will save 2229 * us time when writing journal blocks. Most journals will have only one 2230 * extent that maps all their logical blocks. That's because gfs2.mkfs 2231 * arranges the journal blocks sequentially to maximize performance. 2232 * So the extent would map the first block for the entire file length. 2233 * However, gfs2_jadd can happen while file activity is happening, so 2234 * those journals may not be sequential. Less likely is the case where 2235 * the users created their own journals by mounting the metafs and 2236 * laying it out. But it's still possible. These journals might have 2237 * several extents. 2238 * 2239 * Returns: 0 on success, or error on failure 2240 */ 2241 2242 int gfs2_map_journal_extents(struct gfs2_sbd *sdp, struct gfs2_jdesc *jd) 2243 { 2244 u64 lblock = 0; 2245 u64 lblock_stop; 2246 struct gfs2_inode *ip = GFS2_I(jd->jd_inode); 2247 struct buffer_head bh; 2248 unsigned int shift = sdp->sd_sb.sb_bsize_shift; 2249 u64 size; 2250 int rc; 2251 ktime_t start, end; 2252 2253 start = ktime_get(); 2254 lblock_stop = i_size_read(jd->jd_inode) >> shift; 2255 size = (lblock_stop - lblock) << shift; 2256 jd->nr_extents = 0; 2257 WARN_ON(!list_empty(&jd->extent_list)); 2258 2259 do { 2260 bh.b_state = 0; 2261 bh.b_blocknr = 0; 2262 bh.b_size = size; 2263 rc = gfs2_block_map(jd->jd_inode, lblock, &bh, 0); 2264 if (rc || !buffer_mapped(&bh)) 2265 goto fail; 2266 rc = gfs2_add_jextent(jd, lblock, bh.b_blocknr, bh.b_size >> shift); 2267 if (rc) 2268 goto fail; 2269 size -= bh.b_size; 2270 lblock += (bh.b_size >> ip->i_inode.i_blkbits); 2271 } while(size > 0); 2272 2273 end = ktime_get(); 2274 fs_info(sdp, "journal %d mapped with %u extents in %lldms\n", jd->jd_jid, 2275 jd->nr_extents, ktime_ms_delta(end, start)); 2276 return 0; 2277 2278 fail: 2279 fs_warn(sdp, "error %d mapping journal %u at offset %llu (extent %u)\n", 2280 rc, jd->jd_jid, 2281 (unsigned long long)(i_size_read(jd->jd_inode) - size), 2282 jd->nr_extents); 2283 fs_warn(sdp, "bmap=%d lblock=%llu block=%llu, state=0x%08lx, size=%llu\n", 2284 rc, (unsigned long long)lblock, (unsigned long long)bh.b_blocknr, 2285 bh.b_state, (unsigned long long)bh.b_size); 2286 gfs2_free_journal_extents(jd); 2287 return rc; 2288 } 2289 2290 /** 2291 * gfs2_write_alloc_required - figure out if a write will require an allocation 2292 * @ip: the file being written to 2293 * @offset: the offset to write to 2294 * @len: the number of bytes being written 2295 * 2296 * Returns: 1 if an alloc is required, 0 otherwise 2297 */ 2298 2299 int gfs2_write_alloc_required(struct gfs2_inode *ip, u64 offset, 2300 unsigned int len) 2301 { 2302 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 2303 struct buffer_head bh; 2304 unsigned int shift; 2305 u64 lblock, lblock_stop, size; 2306 u64 end_of_file; 2307 2308 if (!len) 2309 return 0; 2310 2311 if (gfs2_is_stuffed(ip)) { 2312 if (offset + len > gfs2_max_stuffed_size(ip)) 2313 return 1; 2314 return 0; 2315 } 2316 2317 shift = sdp->sd_sb.sb_bsize_shift; 2318 BUG_ON(gfs2_is_dir(ip)); 2319 end_of_file = (i_size_read(&ip->i_inode) + sdp->sd_sb.sb_bsize - 1) >> shift; 2320 lblock = offset >> shift; 2321 lblock_stop = (offset + len + sdp->sd_sb.sb_bsize - 1) >> shift; 2322 if (lblock_stop > end_of_file && ip != GFS2_I(sdp->sd_rindex)) 2323 return 1; 2324 2325 size = (lblock_stop - lblock) << shift; 2326 do { 2327 bh.b_state = 0; 2328 bh.b_size = size; 2329 gfs2_block_map(&ip->i_inode, lblock, &bh, 0); 2330 if (!buffer_mapped(&bh)) 2331 return 1; 2332 size -= bh.b_size; 2333 lblock += (bh.b_size >> ip->i_inode.i_blkbits); 2334 } while(size > 0); 2335 2336 return 0; 2337 } 2338 2339 static int stuffed_zero_range(struct inode *inode, loff_t offset, loff_t length) 2340 { 2341 struct gfs2_inode *ip = GFS2_I(inode); 2342 struct buffer_head *dibh; 2343 int error; 2344 2345 if (offset >= inode->i_size) 2346 return 0; 2347 if (offset + length > inode->i_size) 2348 length = inode->i_size - offset; 2349 2350 error = gfs2_meta_inode_buffer(ip, &dibh); 2351 if (error) 2352 return error; 2353 gfs2_trans_add_meta(ip->i_gl, dibh); 2354 memset(dibh->b_data + sizeof(struct gfs2_dinode) + offset, 0, 2355 length); 2356 brelse(dibh); 2357 return 0; 2358 } 2359 2360 static int gfs2_journaled_truncate_range(struct inode *inode, loff_t offset, 2361 loff_t length) 2362 { 2363 struct gfs2_sbd *sdp = GFS2_SB(inode); 2364 loff_t max_chunk = GFS2_JTRUNC_REVOKES * sdp->sd_vfs->s_blocksize; 2365 int error; 2366 2367 while (length) { 2368 struct gfs2_trans *tr; 2369 loff_t chunk; 2370 unsigned int offs; 2371 2372 chunk = length; 2373 if (chunk > max_chunk) 2374 chunk = max_chunk; 2375 2376 offs = offset & ~PAGE_MASK; 2377 if (offs && chunk > PAGE_SIZE) 2378 chunk = offs + ((chunk - offs) & PAGE_MASK); 2379 2380 truncate_pagecache_range(inode, offset, chunk); 2381 offset += chunk; 2382 length -= chunk; 2383 2384 tr = current->journal_info; 2385 if (!test_bit(TR_TOUCHED, &tr->tr_flags)) 2386 continue; 2387 2388 gfs2_trans_end(sdp); 2389 error = gfs2_trans_begin(sdp, RES_DINODE, GFS2_JTRUNC_REVOKES); 2390 if (error) 2391 return error; 2392 } 2393 return 0; 2394 } 2395 2396 int __gfs2_punch_hole(struct file *file, loff_t offset, loff_t length) 2397 { 2398 struct inode *inode = file_inode(file); 2399 struct gfs2_inode *ip = GFS2_I(inode); 2400 struct gfs2_sbd *sdp = GFS2_SB(inode); 2401 unsigned int blocksize = i_blocksize(inode); 2402 loff_t start, end; 2403 int error; 2404 2405 if (!gfs2_is_stuffed(ip)) { 2406 unsigned int start_off, end_len; 2407 2408 start_off = offset & (blocksize - 1); 2409 end_len = (offset + length) & (blocksize - 1); 2410 if (start_off) { 2411 unsigned int len = length; 2412 if (length > blocksize - start_off) 2413 len = blocksize - start_off; 2414 error = gfs2_block_zero_range(inode, offset, len); 2415 if (error) 2416 goto out; 2417 if (start_off + length < blocksize) 2418 end_len = 0; 2419 } 2420 if (end_len) { 2421 error = gfs2_block_zero_range(inode, 2422 offset + length - end_len, end_len); 2423 if (error) 2424 goto out; 2425 } 2426 } 2427 2428 start = round_down(offset, blocksize); 2429 end = round_up(offset + length, blocksize) - 1; 2430 error = filemap_write_and_wait_range(inode->i_mapping, start, end); 2431 if (error) 2432 return error; 2433 2434 if (gfs2_is_jdata(ip)) 2435 error = gfs2_trans_begin(sdp, RES_DINODE + 2 * RES_JDATA, 2436 GFS2_JTRUNC_REVOKES); 2437 else 2438 error = gfs2_trans_begin(sdp, RES_DINODE, 0); 2439 if (error) 2440 return error; 2441 2442 if (gfs2_is_stuffed(ip)) { 2443 error = stuffed_zero_range(inode, offset, length); 2444 if (error) 2445 goto out; 2446 } 2447 2448 if (gfs2_is_jdata(ip)) { 2449 BUG_ON(!current->journal_info); 2450 gfs2_journaled_truncate_range(inode, offset, length); 2451 } else 2452 truncate_pagecache_range(inode, offset, offset + length - 1); 2453 2454 file_update_time(file); 2455 mark_inode_dirty(inode); 2456 2457 if (current->journal_info) 2458 gfs2_trans_end(sdp); 2459 2460 if (!gfs2_is_stuffed(ip)) 2461 error = punch_hole(ip, offset, length); 2462 2463 out: 2464 if (current->journal_info) 2465 gfs2_trans_end(sdp); 2466 return error; 2467 } 2468 2469 static int gfs2_map_blocks(struct iomap_writepage_ctx *wpc, struct inode *inode, 2470 loff_t offset, unsigned int len) 2471 { 2472 int ret; 2473 2474 if (WARN_ON_ONCE(gfs2_is_stuffed(GFS2_I(inode)))) 2475 return -EIO; 2476 2477 if (offset >= wpc->iomap.offset && 2478 offset < wpc->iomap.offset + wpc->iomap.length) 2479 return 0; 2480 2481 memset(&wpc->iomap, 0, sizeof(wpc->iomap)); 2482 ret = gfs2_iomap_get(inode, offset, INT_MAX, &wpc->iomap); 2483 return ret; 2484 } 2485 2486 const struct iomap_writeback_ops gfs2_writeback_ops = { 2487 .map_blocks = gfs2_map_blocks, 2488 }; 2489