1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * NTFS kernel mft record operations. 4 * Part of this file is based on code from the NTFS-3G. 5 * 6 * Copyright (c) 2001-2012 Anton Altaparmakov and Tuxera Inc. 7 * Copyright (c) 2002 Richard Russon 8 * Copyright (c) 2025 LG Electronics Co., Ltd. 9 */ 10 11 #include <linux/writeback.h> 12 #include <linux/bio.h> 13 #include <linux/iomap.h> 14 15 #include "bitmap.h" 16 #include "lcnalloc.h" 17 #include "mft.h" 18 #include "ntfs.h" 19 20 /* 21 * ntfs_mft_record_check - Check the consistency of an MFT record 22 * 23 * Make sure its general fields are safe, then examine all its 24 * attributes and apply generic checks to them. 25 * 26 * Returns 0 if the checks are successful. If not, return -EIO. 27 */ 28 int ntfs_mft_record_check(const struct ntfs_volume *vol, struct mft_record *m, 29 u64 mft_no) 30 { 31 struct attr_record *a; 32 struct super_block *sb = vol->sb; 33 u16 attrs_offset; 34 u32 bytes_in_use; 35 36 if (!ntfs_is_file_record(m->magic)) { 37 ntfs_error(sb, "Record %llu has no FILE magic (0x%x)\n", 38 mft_no, le32_to_cpu(*(__le32 *)m)); 39 goto err_out; 40 } 41 42 if (le16_to_cpu(m->usa_ofs) & 0x1 || 43 (vol->mft_record_size >> NTFS_BLOCK_SIZE_BITS) + 1 != le16_to_cpu(m->usa_count) || 44 le16_to_cpu(m->usa_ofs) + le16_to_cpu(m->usa_count) * 2 > vol->mft_record_size) { 45 ntfs_error(sb, "Record %llu has corrupt fix-up values fields\n", 46 mft_no); 47 goto err_out; 48 } 49 50 if (le32_to_cpu(m->bytes_allocated) != vol->mft_record_size) { 51 ntfs_error(sb, "Record %llu has corrupt allocation size (%u <> %u)\n", 52 mft_no, vol->mft_record_size, 53 le32_to_cpu(m->bytes_allocated)); 54 goto err_out; 55 } 56 57 if (le32_to_cpu(m->bytes_in_use) > vol->mft_record_size) { 58 ntfs_error(sb, "Record %llu has corrupt in-use size (%u > %u)\n", 59 mft_no, le32_to_cpu(m->bytes_in_use), 60 vol->mft_record_size); 61 goto err_out; 62 } 63 64 if (le16_to_cpu(m->attrs_offset) & 7) { 65 ntfs_error(sb, "Attributes badly aligned in record %llu\n", 66 mft_no); 67 goto err_out; 68 } 69 70 attrs_offset = le16_to_cpu(m->attrs_offset); 71 bytes_in_use = le32_to_cpu(m->bytes_in_use); 72 73 if (attrs_offset > bytes_in_use || 74 bytes_in_use - attrs_offset < sizeof_field(struct attr_record, type)) { 75 ntfs_error(sb, "Record %llu has corrupt attribute offset\n", mft_no); 76 goto err_out; 77 } 78 79 a = (struct attr_record *)((char *)m + attrs_offset); 80 if ((char *)a < (char *)m || (char *)a > (char *)m + vol->mft_record_size) { 81 ntfs_error(sb, "Record %llu is corrupt\n", mft_no); 82 goto err_out; 83 } 84 85 return 0; 86 87 err_out: 88 return -EIO; 89 } 90 91 /* 92 * map_mft_record_folio - map the folio in which a specific mft record resides 93 * @ni: ntfs inode whose mft record page to map 94 * 95 * This maps the folio in which the mft record of the ntfs inode @ni is 96 * situated. 97 * 98 * This allocates a new buffer (@ni->mrec), copies the MFT record data from 99 * the mapped folio into this buffer, and applies the MST (Multi Sector 100 * Transfer) fixups on the copy. 101 * 102 * The folio is pinned (referenced) in @ni->folio to ensure the data remains 103 * valid in the page cache, but the returned pointer is the allocated copy. 104 * 105 * Return: A pointer to the allocated and fixed-up mft record (@ni->mrec). 106 * The return value needs to be checked with IS_ERR(). If it is true, 107 * PTR_ERR() contains the negative error code. 108 */ 109 static inline struct mft_record *map_mft_record_folio(struct ntfs_inode *ni) 110 { 111 loff_t i_size; 112 struct ntfs_volume *vol = ni->vol; 113 struct inode *mft_vi = vol->mft_ino; 114 struct folio *folio; 115 unsigned long index, end_index; 116 unsigned int ofs; 117 118 WARN_ON(ni->folio); 119 /* 120 * The index into the page cache and the offset within the page cache 121 * page of the wanted mft record. 122 */ 123 index = NTFS_MFT_NR_TO_PIDX(vol, ni->mft_no); 124 ofs = NTFS_MFT_NR_TO_POFS(vol, ni->mft_no); 125 126 i_size = i_size_read(mft_vi); 127 /* The maximum valid index into the page cache for $MFT's data. */ 128 end_index = i_size >> PAGE_SHIFT; 129 130 /* If the wanted index is out of bounds the mft record doesn't exist. */ 131 if (unlikely(index >= end_index)) { 132 if (index > end_index || (i_size & ~PAGE_MASK) < ofs + 133 vol->mft_record_size) { 134 folio = ERR_PTR(-ENOENT); 135 ntfs_error(vol->sb, 136 "Attempt to read mft record 0x%llx, which is beyond the end of the mft. This is probably a bug in the ntfs driver.", 137 ni->mft_no); 138 goto err_out; 139 } 140 } 141 142 /* Read, map, and pin the folio. */ 143 folio = read_mapping_folio(mft_vi->i_mapping, index, NULL); 144 if (!IS_ERR(folio)) { 145 u8 *addr; 146 147 ni->mrec = kmalloc(vol->mft_record_size, GFP_NOFS); 148 if (!ni->mrec) { 149 folio_put(folio); 150 folio = ERR_PTR(-ENOMEM); 151 goto err_out; 152 } 153 154 addr = kmap_local_folio(folio, 0); 155 memcpy(ni->mrec, addr + ofs, vol->mft_record_size); 156 post_read_mst_fixup((struct ntfs_record *)ni->mrec, vol->mft_record_size); 157 158 /* Catch multi sector transfer fixup errors. */ 159 if (!ntfs_mft_record_check(vol, (struct mft_record *)ni->mrec, ni->mft_no)) { 160 kunmap_local(addr); 161 ni->folio = folio; 162 ni->folio_ofs = ofs; 163 return ni->mrec; 164 } 165 kunmap_local(addr); 166 folio_put(folio); 167 kfree(ni->mrec); 168 ni->mrec = NULL; 169 folio = ERR_PTR(-EIO); 170 NVolSetErrors(vol); 171 } 172 err_out: 173 ni->folio = NULL; 174 ni->folio_ofs = 0; 175 return (struct mft_record *)folio; 176 } 177 178 /* 179 * map_mft_record - map and pin an mft record 180 * @ni: ntfs inode whose MFT record to map 181 * 182 * This function ensures the MFT record for the given inode is mapped and 183 * accessible. 184 * 185 * It increments the reference count of the ntfs inode. If the record is 186 * already mapped (@ni->folio is set), it returns the cached record 187 * immediately. 188 * 189 * Otherwise, it calls map_mft_record_folio() to read the folio from disk 190 * (if necessary via read_mapping_folio), allocate a buffer, and copy the 191 * record data. 192 * 193 * Return: A pointer to the mft record. You need to check the returned 194 * pointer with IS_ERR(). 195 */ 196 struct mft_record *map_mft_record(struct ntfs_inode *ni) 197 { 198 struct mft_record *m; 199 200 if (!ni) 201 return ERR_PTR(-EINVAL); 202 203 ntfs_debug("Entering for mft_no 0x%llx.", ni->mft_no); 204 205 /* Make sure the ntfs inode doesn't go away. */ 206 atomic_inc(&ni->count); 207 208 if (ni->folio) 209 return (struct mft_record *)ni->mrec; 210 211 m = map_mft_record_folio(ni); 212 if (!IS_ERR(m)) 213 return m; 214 215 atomic_dec(&ni->count); 216 if (PTR_ERR(m) != -EINTR && PTR_ERR(m) != -ERESTARTSYS) 217 ntfs_error(ni->vol->sb, "Failed with error code %lu.", -PTR_ERR(m)); 218 return m; 219 } 220 221 /* 222 * unmap_mft_record - release a reference to a mapped mft record 223 * @ni: ntfs inode whose MFT record to unmap 224 * 225 * This decrements the reference count of the ntfs inode. 226 * 227 * It releases the caller's hold on the inode. If the reference count indicates 228 * that there are still other users (count > 1), the function returns 229 * immediately, keeping the resources (folio and mrec buffer) pinned for 230 * those users. 231 * 232 * NOTE: If caller has modified the mft record, it is imperative to set the mft 233 * record dirty BEFORE calling unmap_mft_record(). 234 */ 235 void unmap_mft_record(struct ntfs_inode *ni) 236 { 237 struct folio *folio; 238 239 if (!ni) 240 return; 241 242 ntfs_debug("Entering for mft_no 0x%llx.", ni->mft_no); 243 244 folio = ni->folio; 245 if (atomic_dec_return(&ni->count) > 1) 246 return; 247 WARN_ON(!folio); 248 } 249 250 /* 251 * map_extent_mft_record - load an extent inode and attach it to its base 252 * @base_ni: base ntfs inode 253 * @mref: mft reference of the extent inode to load 254 * @ntfs_ino: on successful return, pointer to the struct ntfs_inode structure 255 * 256 * Load the extent mft record @mref and attach it to its base inode @base_ni. 257 * Return the mapped extent mft record if IS_ERR(result) is false. Otherwise 258 * PTR_ERR(result) gives the negative error code. 259 * 260 * On successful return, @ntfs_ino contains a pointer to the ntfs_inode 261 * structure of the mapped extent inode. 262 */ 263 struct mft_record *map_extent_mft_record(struct ntfs_inode *base_ni, u64 mref, 264 struct ntfs_inode **ntfs_ino) 265 { 266 struct mft_record *m; 267 struct ntfs_inode *ni = NULL; 268 struct ntfs_inode **extent_nis = NULL; 269 int i; 270 u64 mft_no = MREF(mref); 271 u16 seq_no = MSEQNO(mref); 272 bool destroy_ni = false; 273 274 ntfs_debug("Mapping extent mft record 0x%llx (base mft record 0x%llx).", 275 mft_no, base_ni->mft_no); 276 /* Make sure the base ntfs inode doesn't go away. */ 277 atomic_inc(&base_ni->count); 278 /* 279 * Check if this extent inode has already been added to the base inode, 280 * in which case just return it. If not found, add it to the base 281 * inode before returning it. 282 */ 283 retry: 284 mutex_lock(&base_ni->extent_lock); 285 if (base_ni->nr_extents > 0) { 286 extent_nis = base_ni->ext.extent_ntfs_inos; 287 for (i = 0; i < base_ni->nr_extents; i++) { 288 if (mft_no != extent_nis[i]->mft_no) 289 continue; 290 ni = extent_nis[i]; 291 /* Make sure the ntfs inode doesn't go away. */ 292 atomic_inc(&ni->count); 293 break; 294 } 295 } 296 if (likely(ni != NULL)) { 297 mutex_unlock(&base_ni->extent_lock); 298 atomic_dec(&base_ni->count); 299 /* We found the record; just have to map and return it. */ 300 m = map_mft_record(ni); 301 /* map_mft_record() has incremented this on success. */ 302 atomic_dec(&ni->count); 303 if (!IS_ERR(m)) { 304 /* Verify the sequence number. */ 305 if (likely(le16_to_cpu(m->sequence_number) == seq_no)) { 306 ntfs_debug("Done 1."); 307 *ntfs_ino = ni; 308 return m; 309 } 310 unmap_mft_record(ni); 311 ntfs_error(base_ni->vol->sb, 312 "Found stale extent mft reference! Corrupt filesystem. Run chkdsk."); 313 return ERR_PTR(-EIO); 314 } 315 map_err_out: 316 ntfs_error(base_ni->vol->sb, 317 "Failed to map extent mft record, error code %ld.", 318 -PTR_ERR(m)); 319 return m; 320 } 321 mutex_unlock(&base_ni->extent_lock); 322 323 /* Record wasn't there. Get a new ntfs inode and initialize it. */ 324 ni = ntfs_new_extent_inode(base_ni->vol->sb, mft_no); 325 if (unlikely(!ni)) { 326 atomic_dec(&base_ni->count); 327 return ERR_PTR(-ENOMEM); 328 } 329 ni->vol = base_ni->vol; 330 ni->seq_no = seq_no; 331 ni->nr_extents = -1; 332 ni->ext.base_ntfs_ino = base_ni; 333 /* Now map the record. */ 334 m = map_mft_record(ni); 335 if (IS_ERR(m)) { 336 atomic_dec(&base_ni->count); 337 ntfs_clear_extent_inode(ni); 338 goto map_err_out; 339 } 340 /* Verify the sequence number if it is present. */ 341 if (seq_no && (le16_to_cpu(m->sequence_number) != seq_no)) { 342 ntfs_error(base_ni->vol->sb, 343 "Found stale extent mft reference! Corrupt filesystem. Run chkdsk."); 344 destroy_ni = true; 345 m = ERR_PTR(-EIO); 346 goto unm_nolock_err_out; 347 } 348 349 mutex_lock(&base_ni->extent_lock); 350 for (i = 0; i < base_ni->nr_extents; i++) { 351 if (mft_no == extent_nis[i]->mft_no) { 352 mutex_unlock(&base_ni->extent_lock); 353 ntfs_clear_extent_inode(ni); 354 goto retry; 355 } 356 } 357 /* Attach extent inode to base inode, reallocating memory if needed. */ 358 if (!(base_ni->nr_extents & 3)) { 359 struct ntfs_inode **tmp; 360 int new_size = (base_ni->nr_extents + 4) * sizeof(struct ntfs_inode *); 361 362 tmp = kvzalloc(new_size, GFP_NOFS); 363 if (unlikely(!tmp)) { 364 ntfs_error(base_ni->vol->sb, "Failed to allocate internal buffer."); 365 destroy_ni = true; 366 m = ERR_PTR(-ENOMEM); 367 goto unm_err_out; 368 } 369 if (base_ni->nr_extents) { 370 WARN_ON(!base_ni->ext.extent_ntfs_inos); 371 memcpy(tmp, base_ni->ext.extent_ntfs_inos, new_size - 372 4 * sizeof(struct ntfs_inode *)); 373 kvfree(base_ni->ext.extent_ntfs_inos); 374 } 375 base_ni->ext.extent_ntfs_inos = tmp; 376 } 377 base_ni->ext.extent_ntfs_inos[base_ni->nr_extents++] = ni; 378 mutex_unlock(&base_ni->extent_lock); 379 atomic_dec(&base_ni->count); 380 ntfs_debug("Done 2."); 381 *ntfs_ino = ni; 382 return m; 383 unm_err_out: 384 mutex_unlock(&base_ni->extent_lock); 385 unm_nolock_err_out: 386 unmap_mft_record(ni); 387 atomic_dec(&base_ni->count); 388 /* 389 * If the extent inode was not attached to the base inode we need to 390 * release it or we will leak memory. 391 */ 392 if (destroy_ni) 393 ntfs_clear_extent_inode(ni); 394 return m; 395 } 396 397 /* 398 * __mark_mft_record_dirty - mark the base vfs inode dirty 399 * @ni: ntfs inode describing the mapped mft record 400 * 401 * Internal function. Users should call mark_mft_record_dirty() instead. 402 * 403 * This function determines the base ntfs inode (in case @ni is an extent 404 * inode) and marks the corresponding VFS inode dirty. 405 * 406 * NOTE: We only set I_DIRTY_DATASYNC (and not I_DIRTY_PAGES) 407 * on the base vfs inode, because even though file data may have been modified, 408 * it is dirty in the inode meta data rather than the data page cache of the 409 * inode, and thus there are no data pages that need writing out. Therefore, a 410 * full mark_inode_dirty() is overkill. A mark_inode_dirty_sync(), on the 411 * other hand, is not sufficient, because ->write_inode needs to be called even 412 * in case of fdatasync. This needs to happen or the file data would not 413 * necessarily hit the device synchronously, even though the vfs inode has the 414 * O_SYNC flag set. Also, I_DIRTY_DATASYNC simply "feels" better than just 415 * I_DIRTY_SYNC, since the file data has not actually hit the block device yet, 416 * which is not what I_DIRTY_SYNC on its own would suggest. 417 */ 418 void __mark_mft_record_dirty(struct ntfs_inode *ni) 419 { 420 struct ntfs_inode *base_ni; 421 422 ntfs_debug("Entering for inode 0x%llx.", ni->mft_no); 423 WARN_ON(NInoAttr(ni)); 424 /* Determine the base vfs inode and mark it dirty, too. */ 425 if (likely(ni->nr_extents >= 0)) 426 base_ni = ni; 427 else 428 base_ni = ni->ext.base_ntfs_ino; 429 __mark_inode_dirty(VFS_I(base_ni), I_DIRTY_DATASYNC); 430 } 431 432 /* 433 * ntfs_bio_end_io - bio completion callback for MFT record writes 434 * 435 * Decrements the folio reference count that was incremented before 436 * submit_bio(). This prevents a race condition where umount could 437 * evict the inode and release the folio while I/O is still in flight, 438 * potentially causing data corruption or use-after-free. 439 */ 440 static void ntfs_bio_end_io(struct bio *bio) 441 { 442 if (bio->bi_private) 443 folio_put((struct folio *)bio->bi_private); 444 bio_put(bio); 445 } 446 447 /* 448 * ntfs_sync_mft_mirror - synchronize an mft record to the mft mirror 449 * @vol: ntfs volume on which the mft record to synchronize resides 450 * @mft_no: mft record number of mft record to synchronize 451 * @m: mapped, mst protected (extent) mft record to synchronize 452 * 453 * Write the mapped, mst protected (extent) mft record @m with mft record 454 * number @mft_no to the mft mirror ($MFTMirr) of the ntfs volume @vol. 455 * 456 * On success return 0. On error return -errno and set the volume errors flag 457 * in the ntfs volume @vol. 458 * 459 * NOTE: We always perform synchronous i/o. 460 */ 461 int ntfs_sync_mft_mirror(struct ntfs_volume *vol, const u64 mft_no, 462 struct mft_record *m) 463 { 464 u8 *kmirr; 465 struct folio *folio; 466 unsigned int folio_ofs; 467 int err = 0; 468 struct bio *bio; 469 470 ntfs_debug("Entering for inode 0x%llx.", mft_no); 471 472 if (unlikely(!vol->mftmirr_ino)) { 473 /* This could happen during umount... */ 474 err = -EIO; 475 goto err_out; 476 } 477 /* Get the page containing the mirror copy of the mft record @m. */ 478 folio = read_mapping_folio(vol->mftmirr_ino->i_mapping, 479 NTFS_MFT_NR_TO_PIDX(vol, mft_no), NULL); 480 if (IS_ERR(folio)) { 481 ntfs_error(vol->sb, "Failed to map mft mirror page."); 482 err = PTR_ERR(folio); 483 goto err_out; 484 } 485 486 folio_lock(folio); 487 folio_clear_uptodate(folio); 488 /* Offset of the mft mirror record inside the page. */ 489 folio_ofs = NTFS_MFT_NR_TO_POFS(vol, mft_no); 490 /* The address in the page of the mirror copy of the mft record @m. */ 491 kmirr = kmap_local_folio(folio, 0) + folio_ofs; 492 /* Copy the mst protected mft record to the mirror. */ 493 memcpy(kmirr, m, vol->mft_record_size); 494 kunmap_local(kmirr); 495 496 bio = bio_alloc(vol->sb->s_bdev, 1, REQ_OP_WRITE, GFP_NOIO); 497 bio->bi_iter.bi_sector = 498 ntfs_bytes_to_bio_sector(NTFS_CLU_TO_B(vol, vol->mftmirr_lcn) + 499 ((u64)folio->index << PAGE_SHIFT) + 500 folio_ofs); 501 502 if (bio_add_folio(bio, folio, vol->mft_record_size, folio_ofs)) 503 err = submit_bio_wait(bio); 504 else 505 err = -EIO; 506 bio_put(bio); 507 508 /* 509 * The in-memory mirror is now valid because we just memcpy()'d the 510 * mst-protected mft record into it. Mark the folio uptodate even on 511 * write error so a subsequent read_mapping_folio() does not refetch 512 * the stale on-disk mirror and overwrite this copy. The error is 513 * propagated to the caller via @err. 514 */ 515 folio_mark_uptodate(folio); 516 517 folio_unlock(folio); 518 folio_put(folio); 519 if (likely(!err)) { 520 ntfs_debug("Done."); 521 } else { 522 ntfs_error(vol->sb, "I/O error while writing mft mirror record 0x%llx!", mft_no); 523 err_out: 524 ntfs_error(vol->sb, 525 "Failed to synchronize $MFTMirr (error code %i). Volume will be left marked dirty on umount. Run chkdsk on the partition after umounting to correct this.", 526 err); 527 NVolSetErrors(vol); 528 } 529 return err; 530 } 531 532 /* 533 * write_mft_record_nolock - write out a mapped (extent) mft record 534 * @ni: ntfs inode describing the mapped (extent) mft record 535 * @m: mapped (extent) mft record to write 536 * @sync: if true, wait for i/o completion 537 * 538 * Write the mapped (extent) mft record @m described by the (regular or extent) 539 * ntfs inode @ni to backing store. If the mft record @m has a counterpart in 540 * the mft mirror, that is also updated. 541 * 542 * We only write the mft record if the ntfs inode @ni is dirty. 543 * 544 * On success, clean the mft record and return 0. 545 * On error (specifically ENOMEM), we redirty the record so it can be retried. 546 * For other errors, we mark the volume with errors. 547 */ 548 int write_mft_record_nolock(struct ntfs_inode *ni, struct mft_record *m, int sync) 549 { 550 struct ntfs_volume *vol = ni->vol; 551 struct folio *folio = ni->folio; 552 int err = 0, i = 0; 553 u8 *kaddr; 554 struct mft_record *fixup_m; 555 struct bio *bio; 556 unsigned int offset = 0, folio_size; 557 558 ntfs_debug("Entering for inode 0x%llx.", ni->mft_no); 559 560 WARN_ON(NInoAttr(ni)); 561 WARN_ON(!folio_test_locked(folio)); 562 563 /* 564 * If the struct ntfs_inode is clean no need to do anything. If it is dirty, 565 * mark it as clean now so that it can be redirtied later on if needed. 566 * There is no danger of races since the caller is holding the locks 567 * for the mft record @m and the page it is in. 568 */ 569 if (!NInoTestClearDirty(ni)) 570 goto done; 571 572 kaddr = kmap_local_folio(folio, 0); 573 fixup_m = (struct mft_record *)(kaddr + ni->folio_ofs); 574 memcpy(fixup_m, m, vol->mft_record_size); 575 576 /* Apply the mst protection fixups. */ 577 err = pre_write_mst_fixup((struct ntfs_record *)fixup_m, vol->mft_record_size); 578 if (err) { 579 ntfs_error(vol->sb, "Failed to apply mst fixups!"); 580 goto unmap_err_out; 581 } 582 583 folio_size = vol->mft_record_size / ni->mft_lcn_count; 584 while (i < ni->mft_lcn_count) { 585 unsigned int clu_off; 586 587 clu_off = (unsigned int)((s64)ni->mft_no * vol->mft_record_size + offset) & 588 vol->cluster_size_mask; 589 590 bio = bio_alloc(vol->sb->s_bdev, 1, REQ_OP_WRITE, GFP_NOIO); 591 bio->bi_iter.bi_sector = 592 ntfs_bytes_to_bio_sector(NTFS_CLU_TO_B(vol, ni->mft_lcn[i]) + 593 clu_off); 594 595 if (!bio_add_folio(bio, folio, folio_size, 596 ni->folio_ofs + offset)) { 597 err = -EIO; 598 goto put_bio_out; 599 } 600 601 /* Synchronize the mft mirror now if not @sync. */ 602 if (!sync && ni->mft_no < vol->mftmirr_size) { 603 int sub_err = ntfs_sync_mft_mirror(vol, ni->mft_no, 604 fixup_m); 605 if (unlikely(sub_err) && !err) 606 err = sub_err; 607 } 608 609 if (sync) { 610 int sub_err = submit_bio_wait(bio); 611 612 bio_put(bio); 613 if (unlikely(sub_err) && !err) 614 err = sub_err; 615 } else { 616 folio_get(folio); 617 bio->bi_private = folio; 618 bio->bi_end_io = ntfs_bio_end_io; 619 submit_bio(bio); 620 } 621 offset += vol->cluster_size; 622 i++; 623 } 624 625 /* If @sync, now synchronize the mft mirror. */ 626 if (sync && ni->mft_no < vol->mftmirr_size) { 627 int sub_err = ntfs_sync_mft_mirror(vol, ni->mft_no, fixup_m); 628 629 if (unlikely(sub_err) && !err) 630 err = sub_err; 631 } 632 kunmap_local(kaddr); 633 if (unlikely(err)) { 634 /* I/O error during writing. This is really bad! */ 635 ntfs_error(vol->sb, 636 "I/O error while writing mft record 0x%llx! Marking base inode as bad. You should unmount the volume and run chkdsk.", 637 ni->mft_no); 638 goto err_out; 639 } 640 done: 641 ntfs_debug("Done."); 642 return 0; 643 put_bio_out: 644 bio_put(bio); 645 unmap_err_out: 646 kunmap_local(kaddr); 647 err_out: 648 /* 649 * The caller should mark the base inode as bad so no more I/O 650 * happens. ->drop_inode() will still be invoked so all extent inodes 651 * and other allocated memory will be freed. ENOMEM is retried by 652 * redirtying the mft record below. 653 */ 654 if (err == -ENOMEM) { 655 ntfs_error(vol->sb, 656 "Not enough memory to write mft record. Redirtying so the write is retried later."); 657 mark_mft_record_dirty(ni); 658 err = 0; 659 } else 660 NVolSetErrors(vol); 661 return err; 662 } 663 664 static int ntfs_test_inode_wb(struct inode *vi, u64 ino, void *data) 665 { 666 struct ntfs_attr *na = data; 667 668 if (!ntfs_test_inode(vi, na)) 669 return 0; 670 671 /* 672 * Without this, ntfs_write_mst_block() could call iput_final() 673 * , and ntfs_evict_big_inode() could try to unlink this inode 674 * and the contex could be blocked infinitly in map_mft_record(). 675 */ 676 if (NInoBeingDeleted(NTFS_I(vi))) { 677 na->state = NI_BeingDeleted; 678 return -1; 679 } 680 681 /* 682 * This condition can prevent ntfs_write_mst_block() 683 * from applying/undo fixups while ntfs_create() being 684 * called 685 */ 686 spin_lock(&vi->i_lock); 687 if (inode_state_read_once(vi) & I_CREATING) { 688 spin_unlock(&vi->i_lock); 689 na->state = NI_BeingCreated; 690 return -1; 691 } 692 spin_unlock(&vi->i_lock); 693 694 return igrab(vi) ? 1 : -1; 695 } 696 697 /* 698 * ntfs_may_write_mft_record - check if an mft record may be written out 699 * @vol: [IN] ntfs volume on which the mft record to check resides 700 * @mft_no: [IN] mft record number of the mft record to check 701 * @m: [IN] mapped mft record to check 702 * @locked_ni: [OUT] caller has to unlock this ntfs inode if one is returned 703 * @ref_vi: [OUT] caller has to drop this vfs inode if one is returned 704 * 705 * Check if the mapped (base or extent) mft record @m with mft record number 706 * @mft_no belonging to the ntfs volume @vol may be written out. If necessary 707 * and possible the ntfs inode of the mft record is locked and the base vfs 708 * inode is pinned. The locked ntfs inode is then returned in @locked_ni. The 709 * caller is responsible for unlocking the ntfs inode and unpinning the base 710 * vfs inode. 711 * 712 * To avoid deadlock when the caller holds a folio lock, if the function 713 * returns @ref_vi it defers dropping the vfs inode reference by returning 714 * it in @ref_vi instead of calling iput() directly. The caller must call 715 * iput() on @ref_vi after releasing the folio lock. 716 * 717 * Return 'true' if the mft record may be written out and 'false' if not. 718 * 719 * The caller has locked the page and cleared the uptodate flag on it which 720 * means that we can safely write out any dirty mft records that do not have 721 * their inodes in icache as determined by find_inode_nowait(). 722 * 723 * Here is a description of the tests we perform: 724 * 725 * If the inode is found in icache we know the mft record must be a base mft 726 * record. If it is dirty, we do not write it and return 'false' as the vfs 727 * inode write paths will result in the access times being updated which would 728 * cause the base mft record to be redirtied and written out again. 729 * 730 * If the inode is in icache and not dirty, we attempt to lock the mft record 731 * and if we find the lock was already taken, it is not safe to write the mft 732 * record and we return 'false'. 733 * 734 * If we manage to obtain the lock we have exclusive access to the mft record, 735 * which also allows us safe writeout of the mft record. We then set 736 * @locked_ni to the locked ntfs inode and return 'true'. 737 * 738 * Note we cannot just lock the mft record and sleep while waiting for the lock 739 * because this would deadlock due to lock reversal. 740 * 741 * If the inode is not in icache we need to perform further checks. 742 * 743 * If the mft record is not a FILE record or it is a base mft record, we can 744 * safely write it and return 'true'. 745 */ 746 static bool ntfs_may_write_mft_record(struct ntfs_volume *vol, const u64 mft_no, 747 const struct mft_record *m, struct ntfs_inode **locked_ni, 748 struct inode **ref_vi) 749 { 750 struct super_block *sb = vol->sb; 751 struct inode *mft_vi = vol->mft_ino; 752 struct inode *vi; 753 struct ntfs_inode *ni; 754 struct ntfs_attr na = {0}; 755 756 ntfs_debug("Entering for inode 0x%llx.", mft_no); 757 /* 758 * Normally we do not return a locked inode so set @locked_ni to NULL. 759 */ 760 *locked_ni = NULL; 761 *ref_vi = NULL; 762 763 /* 764 * Check if the inode corresponding to this mft record is in the VFS 765 * inode cache and obtain a reference to it if it is. 766 */ 767 ntfs_debug("Looking for inode 0x%llx in icache.", mft_no); 768 na.mft_no = mft_no; 769 na.type = AT_UNUSED; 770 /* 771 * Optimize inode 0, i.e. $MFT itself, since we have it in memory and 772 * we get here for it rather often. 773 */ 774 if (!mft_no) { 775 /* Balance the below iput(). */ 776 vi = igrab(mft_vi); 777 WARN_ON(vi != mft_vi); 778 } else { 779 /* 780 * Have to use find_inode_nowait() since ilookup5_nowait() 781 * waits for inode with I_FREEING, which causes ntfs to deadlock 782 * when inodes are unlinked concurrently 783 */ 784 vi = find_inode_nowait(sb, mft_no, ntfs_test_inode_wb, &na); 785 if (na.state == NI_BeingDeleted || na.state == NI_BeingCreated) 786 return false; 787 } 788 if (vi) { 789 ntfs_debug("Base inode 0x%llx is in icache.", mft_no); 790 /* The inode is in icache. */ 791 ni = NTFS_I(vi); 792 /* Take a reference to the ntfs inode. */ 793 atomic_inc(&ni->count); 794 /* If the inode is dirty, do not write this record. */ 795 if (NInoDirty(ni)) { 796 ntfs_debug("Inode 0x%llx is dirty, do not write it.", 797 mft_no); 798 atomic_dec(&ni->count); 799 *ref_vi = vi; 800 return false; 801 } 802 ntfs_debug("Inode 0x%llx is not dirty.", mft_no); 803 /* The inode is not dirty, try to take the mft record lock. */ 804 if (unlikely(!mutex_trylock(&ni->mrec_lock))) { 805 ntfs_debug("Mft record 0x%llx is already locked, do not write it.", mft_no); 806 atomic_dec(&ni->count); 807 *ref_vi = vi; 808 return false; 809 } 810 ntfs_debug("Managed to lock mft record 0x%llx, write it.", 811 mft_no); 812 /* 813 * The write has to occur while we hold the mft record lock so 814 * return the locked ntfs inode. 815 */ 816 *locked_ni = ni; 817 return true; 818 } 819 ntfs_debug("Inode 0x%llx is not in icache.", mft_no); 820 /* The inode is not in icache. */ 821 /* Write the record if it is not a mft record (type "FILE"). */ 822 if (!ntfs_is_mft_record(m->magic)) { 823 ntfs_debug("Mft record 0x%llx is not a FILE record, write it.", 824 mft_no); 825 return true; 826 } 827 /* Write the mft record if it is a base inode. */ 828 if (!m->base_mft_record) { 829 ntfs_debug("Mft record 0x%llx is a base record, write it.", 830 mft_no); 831 return true; 832 } 833 834 ntfs_debug("Mft record 0x%llx is an extent record, skip it.", 835 mft_no); 836 return false; 837 } 838 839 static const char *es = " Leaving inconsistent metadata. Unmount and run chkdsk."; 840 841 #define FIRST_NORMAL_MFT_RECORD 24 842 #define MFT_RECORD_RESERVE 4 843 844 /* 845 * Records 12-15 are marked in use by Windows but normally have no name 846 * and no links. Keep them as the last bootstrap option when a volume 847 * mounted without an in-memory tail reserve needs its first $MFT metadata 848 * extent. 849 */ 850 static bool mft_reserved_is_free(struct ntfs_volume *vol, 851 struct ntfs_inode *mft_ni, s64 mft_no) 852 { 853 struct attr_record *a; 854 struct mft_record *m; 855 struct folio *folio; 856 void *mapped; 857 pgoff_t index = NTFS_MFT_NR_TO_PIDX(vol, mft_no); 858 unsigned int ofs = NTFS_MFT_NR_TO_POFS(vol, mft_no); 859 u32 attrs_offset, bytes_in_use; 860 bool available = false, have_std = false; 861 int i; 862 863 for (i = 0; i < mft_ni->nr_extents; i++) { 864 if (mft_ni->ext.extent_ntfs_inos[i] && 865 mft_ni->ext.extent_ntfs_inos[i]->mft_no == mft_no) 866 return false; 867 } 868 m = kmalloc(vol->mft_record_size, GFP_NOFS); 869 if (!m) 870 return false; 871 872 folio = read_mapping_folio(vol->mft_ino->i_mapping, index, NULL); 873 if (IS_ERR(folio)) 874 goto free_m; 875 876 folio_lock(folio); 877 mapped = kmap_local_folio(folio, 0); 878 memcpy(m, (u8 *)mapped + ofs, vol->mft_record_size); 879 kunmap_local(mapped); 880 folio_unlock(folio); 881 folio_put(folio); 882 if (post_read_mst_fixup((struct ntfs_record *)m, vol->mft_record_size)) 883 goto free_m; 884 885 if (!ntfs_is_mft_record(m->magic) || 886 !(m->flags & MFT_RECORD_IN_USE) || m->base_mft_record || 887 m->link_count) 888 goto out; 889 890 attrs_offset = le16_to_cpu(m->attrs_offset); 891 bytes_in_use = le32_to_cpu(m->bytes_in_use); 892 if (attrs_offset > bytes_in_use || bytes_in_use > vol->mft_record_size || 893 bytes_in_use - attrs_offset < sizeof(a->type)) 894 goto out; 895 896 for (a = (struct attr_record *)((u8 *)m + attrs_offset); 897 (u8 *)a + sizeof(a->type) <= (u8 *)m + bytes_in_use;) { 898 u32 len; 899 900 if (a->type == AT_END) { 901 if ((u8 *)a + sizeof(a->type) + sizeof(a->length) > 902 (u8 *)m + bytes_in_use) 903 break; 904 /* Also accept a record emptied by an earlier bootstrap. */ 905 available = have_std || 906 (u8 *)a == (u8 *)m + attrs_offset; 907 break; 908 } 909 if (a->type == AT_FILE_NAME) 910 break; 911 len = le32_to_cpu(a->length); 912 if (len < offsetof(struct attr_record, data) || 913 (u8 *)a + len > (u8 *)m + bytes_in_use) 914 break; 915 if (a->type == AT_STANDARD_INFORMATION) { 916 u32 value_len, value_ofs; 917 918 if (have_std || a->non_resident || 919 len < offsetof(struct attr_record, 920 data.resident.reserved) + 1) 921 break; 922 value_len = le32_to_cpu(a->data.resident.value_length); 923 value_ofs = le16_to_cpu(a->data.resident.value_offset); 924 if (value_ofs > len || value_len > len - value_ofs) 925 break; 926 have_std = true; 927 } 928 a = (struct attr_record *)((u8 *)a + len); 929 } 930 out: 931 kfree(m); 932 return available; 933 free_m: 934 kfree(m); 935 return false; 936 } 937 938 static s64 mft_reserve_end(const u8 *buf, s64 buf_start, s64 buf_end, 939 s64 start, s64 pass_end, s64 initialized_mft_records) 940 { 941 s64 end = start + 1; 942 s64 limit = min_t(s64, start + MFT_RECORD_RESERVE, pass_end); 943 944 if (limit > initialized_mft_records) 945 limit = initialized_mft_records; 946 if (limit > buf_end) 947 limit = buf_end; 948 while (end < limit && 949 !(buf[(end - buf_start) >> 3] & 950 (1 << ((end - buf_start) & 7)))) 951 end++; 952 return end; 953 } 954 955 /* 956 * mft_bitmap_alloc_free_rec - find and allocate a free MFT record 957 * @vol: volume on which to search for a free mft record 958 * @base_ni: open base inode if allocating an extent mft record or NULL 959 * @max_mft_no: first record which must not be allocated, or -1 960 * @new_reserve_end: if not NULL, end of a free run starting after the result 961 * 962 * Search for a free mft record in the mft bitmap attribute on the ntfs volume 963 * @vol. 964 * 965 * If @base_ni is NULL start the search at the default allocator position. 966 * 967 * If @base_ni is not NULL start the search at the mft record after the base 968 * mft record @base_ni. 969 * 970 * Return the free mft record on success and -errno on error. An error code of 971 * -ENOSPC means that there are no free mft records in the currently 972 * initialized mft bitmap. 973 * 974 * Locking: Caller must hold vol->mftbmp_lock for writing. 975 */ 976 static s64 mft_bitmap_alloc_free_rec(struct ntfs_volume *vol, 977 struct ntfs_inode *base_ni, 978 s64 max_mft_no, s64 *new_reserve_end) 979 { 980 s64 pass_end, ll, data_pos, pass_start, ofs, bit; 981 s64 initialized_mft_records; 982 unsigned long flags; 983 struct address_space *mftbmp_mapping; 984 u8 *buf = NULL, *byte; 985 struct folio *folio; 986 unsigned int folio_ofs, size; 987 u8 pass, b; 988 989 ntfs_debug("Searching for free mft record in the currently initialized mft bitmap."); 990 mftbmp_mapping = vol->mftbmp_ino->i_mapping; 991 /* 992 * Set the end of the pass making sure we do not overflow the mft 993 * bitmap. 994 */ 995 read_lock_irqsave(&NTFS_I(vol->mft_ino)->size_lock, flags); 996 pass_end = NTFS_I(vol->mft_ino)->allocated_size >> 997 vol->mft_record_size_bits; 998 initialized_mft_records = NTFS_I(vol->mft_ino)->initialized_size >> 999 vol->mft_record_size_bits; 1000 read_unlock_irqrestore(&NTFS_I(vol->mft_ino)->size_lock, flags); 1001 read_lock_irqsave(&NTFS_I(vol->mftbmp_ino)->size_lock, flags); 1002 ll = NTFS_I(vol->mftbmp_ino)->initialized_size << 3; 1003 read_unlock_irqrestore(&NTFS_I(vol->mftbmp_ino)->size_lock, flags); 1004 if (pass_end > ll) 1005 pass_end = ll; 1006 if (max_mft_no >= 0 && pass_end > max_mft_no) 1007 pass_end = max_mft_no; 1008 if (base_ni && base_ni->mft_no == FILE_MFT) { 1009 data_pos = FILE_first_user; 1010 pass = 2; 1011 if (data_pos >= pass_end) 1012 return -ENOSPC; 1013 } else { 1014 pass = 1; 1015 if (!base_ni) 1016 data_pos = vol->mft_data_pos; 1017 else 1018 data_pos = base_ni->mft_no + 1; 1019 if (data_pos < FIRST_NORMAL_MFT_RECORD) 1020 data_pos = FIRST_NORMAL_MFT_RECORD; 1021 if (data_pos >= pass_end) { 1022 data_pos = FIRST_NORMAL_MFT_RECORD; 1023 pass = 2; 1024 /* This happens on a freshly formatted volume. */ 1025 if (data_pos >= pass_end) 1026 return -ENOSPC; 1027 } 1028 } 1029 1030 pass_start = data_pos; 1031 ntfs_debug("Starting bitmap search: pass %u, pass_start 0x%llx, pass_end 0x%llx, data_pos 0x%llx.", 1032 pass, pass_start, pass_end, data_pos); 1033 /* Loop until a free mft record is found. */ 1034 for (; pass <= 2;) { 1035 /* Cap size to pass_end. */ 1036 ofs = data_pos >> 3; 1037 folio_ofs = ofs & ~PAGE_MASK; 1038 size = PAGE_SIZE - folio_ofs; 1039 ll = ((pass_end + 7) >> 3) - ofs; 1040 if (size > ll) 1041 size = ll; 1042 size <<= 3; 1043 /* 1044 * If we are still within the active pass, search the next page 1045 * for a zero bit. 1046 */ 1047 if (size) { 1048 folio = read_mapping_folio(mftbmp_mapping, 1049 ofs >> PAGE_SHIFT, NULL); 1050 if (IS_ERR(folio)) { 1051 ntfs_error(vol->sb, "Failed to read mft bitmap, aborting."); 1052 return PTR_ERR(folio); 1053 } 1054 folio_lock(folio); 1055 buf = (u8 *)kmap_local_folio(folio, 0) + folio_ofs; 1056 bit = data_pos & 7; 1057 data_pos &= ~7ull; 1058 ntfs_debug("Before inner for loop: size 0x%x, data_pos 0x%llx, bit 0x%llx", 1059 size, data_pos, bit); 1060 for (; bit < size && data_pos + bit < pass_end; 1061 bit &= ~7ull, bit += 8) { 1062 byte = buf + (bit >> 3); 1063 if (*byte == 0xff) 1064 continue; 1065 b = bit & 7; 1066 for (; b < 8; b++) { 1067 if (*byte & (1 << b)) 1068 continue; 1069 ll = data_pos + (bit & ~7ull) + b; 1070 if (ll >= pass_end) 1071 break; 1072 /* Keep the dynamic tail reserve for $MFT metadata. */ 1073 if ((!base_ni || base_ni->mft_no != FILE_MFT) && 1074 ll >= vol->mft_record_reserve_pos && 1075 ll < vol->mft_record_reserve_end) 1076 continue; 1077 if (unlikely(ll >= (1ll << 32))) { 1078 folio_unlock(folio); 1079 kunmap_local(buf); 1080 folio_put(folio); 1081 return -ENOSPC; 1082 } 1083 goto found; 1084 } 1085 } 1086 ntfs_debug("After inner for loop: size 0x%x, data_pos 0x%llx, bit 0x%llx", 1087 size, data_pos, bit); 1088 data_pos += size; 1089 folio_unlock(folio); 1090 kunmap_local(buf); 1091 folio_put(folio); 1092 /* 1093 * If the end of the pass has not been reached yet, 1094 * continue searching the mft bitmap for a zero bit. 1095 */ 1096 if (data_pos < pass_end) 1097 continue; 1098 } 1099 /* Do the next pass. */ 1100 if (++pass == 2) { 1101 /* 1102 * Starting the second pass, in which we scan the first 1103 * part of the zone which we omitted earlier. 1104 */ 1105 pass_end = pass_start; 1106 data_pos = FIRST_NORMAL_MFT_RECORD; 1107 pass_start = FIRST_NORMAL_MFT_RECORD; 1108 ntfs_debug("pass %i, pass_start 0x%llx, pass_end 0x%llx.", 1109 pass, pass_start, pass_end); 1110 if (data_pos >= pass_end) 1111 break; 1112 } 1113 } 1114 /* No free mft records in currently initialized mft bitmap. */ 1115 ntfs_debug("Done. (No free mft records left in currently initialized mft bitmap.)"); 1116 return -ENOSPC; 1117 found: 1118 if (new_reserve_end) 1119 *new_reserve_end = mft_reserve_end(buf, data_pos, 1120 data_pos + size, ll, pass_end, 1121 initialized_mft_records); 1122 *byte |= 1 << b; 1123 folio_mark_dirty(folio); 1124 folio_unlock(folio); 1125 kunmap_local(buf); 1126 folio_put(folio); 1127 ntfs_debug("Done. (Found and allocated mft record 0x%llx.)", ll); 1128 return ll; 1129 } 1130 1131 static int ntfs_mft_attr_extend(struct ntfs_inode *ni, 1132 struct ntfs_inode *locked_ni) 1133 { 1134 int ret = 0; 1135 struct ntfs_inode *base_ni; 1136 1137 if (NInoAttr(ni)) 1138 base_ni = ni->ext.base_ntfs_ino; 1139 else 1140 base_ni = ni; 1141 1142 if (!NInoAttrList(base_ni)) { 1143 ret = ntfs_inode_add_attrlist(base_ni); 1144 if (ret) { 1145 pr_err("Can not add attrlist\n"); 1146 goto out; 1147 } else { 1148 ret = -EAGAIN; 1149 goto out; 1150 } 1151 } 1152 1153 ret = ntfs_attr_update_mapping_pairs_locked(ni, 0, locked_ni); 1154 if (ret) 1155 pr_err("MP update failed\n"); 1156 1157 out: 1158 return ret; 1159 } 1160 1161 /* 1162 * ntfs_mft_bitmap_extend_allocation_nolock - extend mft bitmap by a cluster 1163 * @vol: volume on which to extend the mft bitmap attribute 1164 * 1165 * Extend the mft bitmap attribute on the ntfs volume @vol by one cluster. 1166 * 1167 * Note: Only changes allocated_size, i.e. does not touch initialized_size or 1168 * data_size. 1169 * 1170 * Return 0 on success and -errno on error. 1171 * 1172 * Locking: - Caller must hold vol->mftbmp_lock for writing. 1173 * - This function takes NTFS_I(vol->mftbmp_ino)->runlist.lock for 1174 * writing and releases it before returning. 1175 * - This function takes vol->lcnbmp_lock for writing and releases it 1176 * before returning. 1177 */ 1178 static int ntfs_mft_bitmap_extend_allocation_nolock(struct ntfs_volume *vol) 1179 { 1180 s64 lcn; 1181 s64 ll; 1182 unsigned long flags; 1183 struct folio *folio; 1184 struct ntfs_inode *mft_ni, *mftbmp_ni; 1185 struct runlist_element *rl, *rl2 = NULL; 1186 struct ntfs_attr_search_ctx *ctx = NULL; 1187 struct mft_record *mrec; 1188 struct attr_record *a = NULL; 1189 int ret, mp_size; 1190 u32 old_alen = 0; 1191 u8 *b, tb; 1192 struct { 1193 u8 added_cluster:1; 1194 u8 added_run:1; 1195 u8 mp_rebuilt:1; 1196 u8 mp_extended:1; 1197 } status = { 0, 0, 0, 0 }; 1198 size_t new_rl_count; 1199 1200 ntfs_debug("Extending mft bitmap allocation."); 1201 mft_ni = NTFS_I(vol->mft_ino); 1202 mftbmp_ni = NTFS_I(vol->mftbmp_ino); 1203 /* 1204 * Determine the last lcn of the mft bitmap. The allocated size of the 1205 * mft bitmap cannot be zero so we are ok to do this. 1206 */ 1207 down_write(&mftbmp_ni->runlist.lock); 1208 read_lock_irqsave(&mftbmp_ni->size_lock, flags); 1209 ll = mftbmp_ni->allocated_size; 1210 read_unlock_irqrestore(&mftbmp_ni->size_lock, flags); 1211 rl = ntfs_attr_find_vcn_nolock(mftbmp_ni, 1212 NTFS_B_TO_CLU(vol, ll - 1), NULL); 1213 if (IS_ERR(rl) || unlikely(!rl->length || rl->lcn < 0)) { 1214 up_write(&mftbmp_ni->runlist.lock); 1215 ntfs_error(vol->sb, 1216 "Failed to determine last allocated cluster of mft bitmap attribute."); 1217 if (!IS_ERR(rl)) 1218 ret = -EIO; 1219 else 1220 ret = PTR_ERR(rl); 1221 return ret; 1222 } 1223 lcn = rl->lcn + rl->length; 1224 ntfs_debug("Last lcn of mft bitmap attribute is 0x%llx.", 1225 (long long)lcn); 1226 /* 1227 * Attempt to get the cluster following the last allocated cluster by 1228 * hand as it may be in the MFT zone so the allocator would not give it 1229 * to us. 1230 */ 1231 ll = lcn >> 3; 1232 folio = read_mapping_folio(vol->lcnbmp_ino->i_mapping, 1233 ll >> PAGE_SHIFT, NULL); 1234 if (IS_ERR(folio)) { 1235 up_write(&mftbmp_ni->runlist.lock); 1236 ntfs_error(vol->sb, "Failed to read from lcn bitmap."); 1237 return PTR_ERR(folio); 1238 } 1239 1240 down_write(&vol->lcnbmp_lock); 1241 folio_lock(folio); 1242 b = (u8 *)kmap_local_folio(folio, 0) + (ll & ~PAGE_MASK); 1243 tb = 1 << (lcn & 7ull); 1244 if (*b != 0xff && !(*b & tb)) { 1245 /* Next cluster is free, allocate it. */ 1246 *b |= tb; 1247 folio_mark_dirty(folio); 1248 folio_unlock(folio); 1249 kunmap_local(b); 1250 folio_put(folio); 1251 up_write(&vol->lcnbmp_lock); 1252 /* Update the mft bitmap runlist. */ 1253 rl->length++; 1254 rl[1].vcn++; 1255 status.added_cluster = 1; 1256 ntfs_debug("Appending one cluster to mft bitmap."); 1257 } else { 1258 folio_unlock(folio); 1259 kunmap_local(b); 1260 folio_put(folio); 1261 up_write(&vol->lcnbmp_lock); 1262 /* Allocate a cluster from the DATA_ZONE. */ 1263 rl2 = ntfs_cluster_alloc(vol, rl[1].vcn, 1, lcn, DATA_ZONE, 1264 true, false, false); 1265 if (IS_ERR(rl2)) { 1266 up_write(&mftbmp_ni->runlist.lock); 1267 ntfs_error(vol->sb, 1268 "Failed to allocate a cluster for the mft bitmap."); 1269 return PTR_ERR(rl2); 1270 } 1271 rl = ntfs_runlists_merge(&mftbmp_ni->runlist, rl2, 0, &new_rl_count); 1272 if (IS_ERR(rl)) { 1273 up_write(&mftbmp_ni->runlist.lock); 1274 ntfs_error(vol->sb, "Failed to merge runlists for mft bitmap."); 1275 if (ntfs_cluster_free_from_rl(vol, rl2)) { 1276 ntfs_error(vol->sb, "Failed to deallocate allocated cluster.%s", 1277 es); 1278 NVolSetErrors(vol); 1279 } 1280 kvfree(rl2); 1281 return PTR_ERR(rl); 1282 } 1283 mftbmp_ni->runlist.rl = rl; 1284 mftbmp_ni->runlist.count = new_rl_count; 1285 status.added_run = 1; 1286 ntfs_debug("Adding one run to mft bitmap."); 1287 /* Find the last run in the new runlist. */ 1288 for (; rl[1].length; rl++) 1289 ; 1290 } 1291 /* 1292 * Update the attribute record as well. Note: @rl is the last 1293 * (non-terminator) runlist element of mft bitmap. 1294 */ 1295 mrec = map_mft_record(mft_ni); 1296 if (IS_ERR(mrec)) { 1297 ntfs_error(vol->sb, "Failed to map mft record."); 1298 ret = PTR_ERR(mrec); 1299 goto undo_alloc; 1300 } 1301 ctx = ntfs_attr_get_search_ctx(mft_ni, mrec); 1302 if (unlikely(!ctx)) { 1303 ntfs_error(vol->sb, "Failed to get search context."); 1304 ret = -ENOMEM; 1305 goto undo_alloc; 1306 } 1307 ret = ntfs_attr_lookup(mftbmp_ni->type, mftbmp_ni->name, 1308 mftbmp_ni->name_len, CASE_SENSITIVE, rl[1].vcn, NULL, 1309 0, ctx); 1310 if (unlikely(ret)) { 1311 ntfs_error(vol->sb, 1312 "Failed to find last attribute extent of mft bitmap attribute."); 1313 if (ret == -ENOENT) 1314 ret = -EIO; 1315 goto undo_alloc; 1316 } 1317 a = ctx->attr; 1318 ll = le64_to_cpu(a->data.non_resident.lowest_vcn); 1319 /* Search back for the previous last allocated cluster of mft bitmap. */ 1320 for (rl2 = rl; rl2 > mftbmp_ni->runlist.rl; rl2--) { 1321 if (ll >= rl2->vcn) 1322 break; 1323 } 1324 WARN_ON(ll < rl2->vcn); 1325 WARN_ON(ll >= rl2->vcn + rl2->length); 1326 /* Get the size for the new mapping pairs array for this extent. */ 1327 mp_size = ntfs_get_size_for_mapping_pairs(vol, rl2, ll, -1, -1); 1328 if (unlikely(mp_size <= 0)) { 1329 ntfs_error(vol->sb, 1330 "Get size for mapping pairs failed for mft bitmap attribute extent."); 1331 ret = mp_size; 1332 if (!ret) 1333 ret = -EIO; 1334 goto undo_alloc; 1335 } 1336 /* Expand the attribute record if necessary. */ 1337 old_alen = le32_to_cpu(a->length); 1338 ret = ntfs_attr_record_resize(ctx->mrec, a, mp_size + 1339 le16_to_cpu(a->data.non_resident.mapping_pairs_offset)); 1340 if (unlikely(ret)) { 1341 ret = ntfs_mft_attr_extend(mftbmp_ni, mftbmp_ni); 1342 if (!ret) 1343 goto extended_ok; 1344 if (ret != -EAGAIN) 1345 status.mp_extended = 1; 1346 goto undo_alloc; 1347 } 1348 status.mp_rebuilt = 1; 1349 /* Generate the mapping pairs array directly into the attr record. */ 1350 ret = ntfs_mapping_pairs_build(vol, (u8 *)a + 1351 le16_to_cpu(a->data.non_resident.mapping_pairs_offset), 1352 mp_size, rl2, ll, -1, NULL, NULL, NULL); 1353 if (unlikely(ret)) { 1354 ntfs_error(vol->sb, 1355 "Failed to build mapping pairs array for mft bitmap attribute."); 1356 goto undo_alloc; 1357 } 1358 /* Update the highest_vcn. */ 1359 a->data.non_resident.highest_vcn = cpu_to_le64(rl[1].vcn - 1); 1360 /* 1361 * We now have extended the mft bitmap allocated_size by one cluster. 1362 * Reflect this in the struct ntfs_inode structure and the attribute record. 1363 */ 1364 if (a->data.non_resident.lowest_vcn) { 1365 /* 1366 * We are not in the first attribute extent, switch to it, but 1367 * first ensure the changes will make it to disk later. 1368 */ 1369 mark_mft_record_dirty(ctx->ntfs_ino); 1370 extended_ok: 1371 ntfs_attr_reinit_search_ctx(ctx); 1372 ret = ntfs_attr_lookup(mftbmp_ni->type, mftbmp_ni->name, 1373 mftbmp_ni->name_len, CASE_SENSITIVE, 0, NULL, 1374 0, ctx); 1375 if (unlikely(ret)) { 1376 ntfs_error(vol->sb, 1377 "Failed to find first attribute extent of mft bitmap attribute."); 1378 goto restore_undo_alloc; 1379 } 1380 a = ctx->attr; 1381 } 1382 1383 write_lock_irqsave(&mftbmp_ni->size_lock, flags); 1384 mftbmp_ni->allocated_size += vol->cluster_size; 1385 a->data.non_resident.allocated_size = 1386 cpu_to_le64(mftbmp_ni->allocated_size); 1387 write_unlock_irqrestore(&mftbmp_ni->size_lock, flags); 1388 /* Ensure the changes make it to disk. */ 1389 mark_mft_record_dirty(ctx->ntfs_ino); 1390 ntfs_attr_put_search_ctx(ctx); 1391 unmap_mft_record(mft_ni); 1392 up_write(&mftbmp_ni->runlist.lock); 1393 ntfs_debug("Done."); 1394 return 0; 1395 1396 restore_undo_alloc: 1397 ntfs_attr_reinit_search_ctx(ctx); 1398 if (ntfs_attr_lookup(mftbmp_ni->type, mftbmp_ni->name, 1399 mftbmp_ni->name_len, CASE_SENSITIVE, rl[1].vcn, NULL, 1400 0, ctx)) { 1401 ntfs_error(vol->sb, 1402 "Failed to find last attribute extent of mft bitmap attribute.%s", es); 1403 write_lock_irqsave(&mftbmp_ni->size_lock, flags); 1404 mftbmp_ni->allocated_size += vol->cluster_size; 1405 write_unlock_irqrestore(&mftbmp_ni->size_lock, flags); 1406 ntfs_attr_put_search_ctx(ctx); 1407 unmap_mft_record(mft_ni); 1408 up_write(&mftbmp_ni->runlist.lock); 1409 /* 1410 * The only thing that is now wrong is ->allocated_size of the 1411 * base attribute extent which chkdsk should be able to fix. 1412 */ 1413 NVolSetErrors(vol); 1414 return ret; 1415 } 1416 a = ctx->attr; 1417 a->data.non_resident.highest_vcn = cpu_to_le64(rl[1].vcn - 2); 1418 undo_alloc: 1419 if (status.added_cluster) { 1420 /* Truncate the last run in the runlist by one cluster. */ 1421 rl->length--; 1422 rl[1].vcn--; 1423 } else if (status.added_run) { 1424 lcn = rl->lcn; 1425 /* Remove the last run from the runlist. */ 1426 rl->lcn = rl[1].lcn; 1427 rl->length = 0; 1428 mftbmp_ni->runlist.count--; 1429 } 1430 /* Deallocate the cluster. */ 1431 down_write(&vol->lcnbmp_lock); 1432 if (ntfs_bitmap_clear_bit(vol->lcnbmp_ino, lcn)) { 1433 ntfs_error(vol->sb, "Failed to free allocated cluster.%s", es); 1434 NVolSetErrors(vol); 1435 } else 1436 ntfs_inc_free_clusters(vol, 1); 1437 up_write(&vol->lcnbmp_lock); 1438 if (status.mp_rebuilt) { 1439 if (ntfs_mapping_pairs_build(vol, (u8 *)a + le16_to_cpu( 1440 a->data.non_resident.mapping_pairs_offset), 1441 old_alen - le16_to_cpu( 1442 a->data.non_resident.mapping_pairs_offset), 1443 rl2, ll, -1, NULL, NULL, NULL)) { 1444 ntfs_error(vol->sb, "Failed to restore mapping pairs array.%s", es); 1445 NVolSetErrors(vol); 1446 } 1447 if (ntfs_attr_record_resize(ctx->mrec, a, old_alen)) { 1448 ntfs_error(vol->sb, "Failed to restore attribute record.%s", es); 1449 NVolSetErrors(vol); 1450 } 1451 mark_mft_record_dirty(ctx->ntfs_ino); 1452 } else if (status.mp_extended && 1453 ntfs_attr_update_mapping_pairs_locked(mftbmp_ni, 0, 1454 mftbmp_ni)) { 1455 ntfs_error(vol->sb, "Failed to restore mapping pairs.%s", es); 1456 NVolSetErrors(vol); 1457 } 1458 if (ctx) 1459 ntfs_attr_put_search_ctx(ctx); 1460 if (!IS_ERR(mrec)) 1461 unmap_mft_record(mft_ni); 1462 up_write(&mftbmp_ni->runlist.lock); 1463 return ret; 1464 } 1465 1466 /* 1467 * ntfs_mft_bitmap_extend_initialized_nolock - extend mftbmp initialized data 1468 * @vol: volume on which to extend the mft bitmap attribute 1469 * 1470 * Extend the initialized portion of the mft bitmap attribute on the ntfs 1471 * volume @vol by 8 bytes. 1472 * 1473 * Note: Only changes initialized_size and data_size, i.e. requires that 1474 * allocated_size is big enough to fit the new initialized_size. 1475 * 1476 * Return 0 on success and -error on error. 1477 * 1478 * Locking: Caller must hold vol->mftbmp_lock for writing. 1479 */ 1480 static int ntfs_mft_bitmap_extend_initialized_nolock(struct ntfs_volume *vol) 1481 { 1482 s64 old_data_size, old_initialized_size; 1483 unsigned long flags; 1484 struct inode *mftbmp_vi; 1485 struct ntfs_inode *mft_ni, *mftbmp_ni; 1486 struct ntfs_attr_search_ctx *ctx; 1487 struct mft_record *mrec; 1488 struct attr_record *a; 1489 int ret; 1490 1491 ntfs_debug("Extending mft bitmap initialized (and data) size."); 1492 mft_ni = NTFS_I(vol->mft_ino); 1493 mftbmp_vi = vol->mftbmp_ino; 1494 mftbmp_ni = NTFS_I(mftbmp_vi); 1495 /* Get the attribute record. */ 1496 mrec = map_mft_record(mft_ni); 1497 if (IS_ERR(mrec)) { 1498 ntfs_error(vol->sb, "Failed to map mft record."); 1499 return PTR_ERR(mrec); 1500 } 1501 ctx = ntfs_attr_get_search_ctx(mft_ni, mrec); 1502 if (unlikely(!ctx)) { 1503 ntfs_error(vol->sb, "Failed to get search context."); 1504 ret = -ENOMEM; 1505 goto unm_err_out; 1506 } 1507 ret = ntfs_attr_lookup(mftbmp_ni->type, mftbmp_ni->name, 1508 mftbmp_ni->name_len, CASE_SENSITIVE, 0, NULL, 0, ctx); 1509 if (unlikely(ret)) { 1510 ntfs_error(vol->sb, 1511 "Failed to find first attribute extent of mft bitmap attribute."); 1512 if (ret == -ENOENT) 1513 ret = -EIO; 1514 goto put_err_out; 1515 } 1516 a = ctx->attr; 1517 write_lock_irqsave(&mftbmp_ni->size_lock, flags); 1518 old_data_size = i_size_read(mftbmp_vi); 1519 old_initialized_size = mftbmp_ni->initialized_size; 1520 /* 1521 * We can simply update the initialized_size before filling the space 1522 * with zeroes because the caller is holding the mft bitmap lock for 1523 * writing which ensures that no one else is trying to access the data. 1524 */ 1525 mftbmp_ni->initialized_size += 8; 1526 a->data.non_resident.initialized_size = 1527 cpu_to_le64(mftbmp_ni->initialized_size); 1528 if (mftbmp_ni->initialized_size > old_data_size) { 1529 i_size_write(mftbmp_vi, mftbmp_ni->initialized_size); 1530 a->data.non_resident.data_size = 1531 cpu_to_le64(mftbmp_ni->initialized_size); 1532 } 1533 write_unlock_irqrestore(&mftbmp_ni->size_lock, flags); 1534 /* Ensure the changes make it to disk. */ 1535 mark_mft_record_dirty(ctx->ntfs_ino); 1536 ntfs_attr_put_search_ctx(ctx); 1537 unmap_mft_record(mft_ni); 1538 /* Initialize the mft bitmap attribute value with zeroes. */ 1539 ret = ntfs_attr_set(mftbmp_ni, old_initialized_size, 8, 0); 1540 if (likely(!ret)) { 1541 ntfs_debug("Done. (Wrote eight initialized bytes to mft bitmap."); 1542 return 0; 1543 } 1544 ntfs_error(vol->sb, "Failed to write to mft bitmap."); 1545 /* Try to recover from the error. */ 1546 mrec = map_mft_record(mft_ni); 1547 if (IS_ERR(mrec)) { 1548 ntfs_error(vol->sb, "Failed to map mft record.%s", es); 1549 NVolSetErrors(vol); 1550 return ret; 1551 } 1552 ctx = ntfs_attr_get_search_ctx(mft_ni, mrec); 1553 if (unlikely(!ctx)) { 1554 ntfs_error(vol->sb, "Failed to get search context.%s", es); 1555 NVolSetErrors(vol); 1556 goto unm_err_out; 1557 } 1558 if (ntfs_attr_lookup(mftbmp_ni->type, mftbmp_ni->name, 1559 mftbmp_ni->name_len, CASE_SENSITIVE, 0, NULL, 0, ctx)) { 1560 ntfs_error(vol->sb, 1561 "Failed to find first attribute extent of mft bitmap attribute.%s", es); 1562 NVolSetErrors(vol); 1563 put_err_out: 1564 ntfs_attr_put_search_ctx(ctx); 1565 unm_err_out: 1566 unmap_mft_record(mft_ni); 1567 goto err_out; 1568 } 1569 a = ctx->attr; 1570 write_lock_irqsave(&mftbmp_ni->size_lock, flags); 1571 mftbmp_ni->initialized_size = old_initialized_size; 1572 a->data.non_resident.initialized_size = 1573 cpu_to_le64(old_initialized_size); 1574 if (i_size_read(mftbmp_vi) != old_data_size) { 1575 i_size_write(mftbmp_vi, old_data_size); 1576 a->data.non_resident.data_size = cpu_to_le64(old_data_size); 1577 } 1578 write_unlock_irqrestore(&mftbmp_ni->size_lock, flags); 1579 mark_mft_record_dirty(ctx->ntfs_ino); 1580 ntfs_attr_put_search_ctx(ctx); 1581 unmap_mft_record(mft_ni); 1582 #ifdef DEBUG 1583 read_lock_irqsave(&mftbmp_ni->size_lock, flags); 1584 ntfs_debug("Restored status of mftbmp: allocated_size 0x%llx, data_size 0x%llx, initialized_size 0x%llx.", 1585 mftbmp_ni->allocated_size, i_size_read(mftbmp_vi), 1586 mftbmp_ni->initialized_size); 1587 read_unlock_irqrestore(&mftbmp_ni->size_lock, flags); 1588 #endif /* DEBUG */ 1589 err_out: 1590 return ret; 1591 } 1592 1593 /* 1594 * ntfs_mft_data_extend_allocation_nolock - extend mft data attribute 1595 * @vol: volume on which to extend the mft data attribute 1596 * 1597 * Extend the mft data attribute on the ntfs volume @vol by 16 mft records 1598 * worth of clusters or if not enough space for this by two mft records worth 1599 * of clusters. Keeping at least two new records breaks the recursion between 1600 * extending $MFT and allocating a record for a new $MFT attribute extent. 1601 * 1602 * Note: Only changes allocated_size, i.e. does not touch initialized_size or 1603 * data_size. 1604 * 1605 * Return 0 on success and -errno on error. 1606 * 1607 * Locking: - Caller must hold vol->mftbmp_lock for writing. 1608 * - This function takes NTFS_I(vol->mft_ino)->runlist.lock for 1609 * writing and releases it before returning. 1610 * - This function calls functions which take vol->lcnbmp_lock for 1611 * writing and release it before returning. 1612 */ 1613 static int ntfs_mft_data_extend_allocation_nolock(struct ntfs_volume *vol) 1614 { 1615 s64 lcn; 1616 s64 old_last_vcn; 1617 s64 min_nr, nr, ll; 1618 unsigned long flags; 1619 struct ntfs_inode *mft_ni; 1620 struct runlist_element *rl, *rl2; 1621 struct ntfs_attr_search_ctx *ctx = NULL; 1622 struct mft_record *mrec; 1623 struct attr_record *a = NULL; 1624 int ret, mp_size; 1625 u32 old_alen = 0; 1626 bool mp_rebuilt = false, mp_extended = false; 1627 size_t new_rl_count; 1628 1629 ntfs_debug("Extending mft data allocation."); 1630 mft_ni = NTFS_I(vol->mft_ino); 1631 /* 1632 * Determine the preferred allocation location, i.e. the last lcn of 1633 * the mft data attribute. The allocated size of the mft data 1634 * attribute cannot be zero so we are ok to do this. 1635 */ 1636 down_write(&mft_ni->runlist.lock); 1637 read_lock_irqsave(&mft_ni->size_lock, flags); 1638 ll = mft_ni->allocated_size; 1639 read_unlock_irqrestore(&mft_ni->size_lock, flags); 1640 rl = ntfs_attr_find_vcn_nolock(mft_ni, 1641 NTFS_B_TO_CLU(vol, ll - 1), NULL); 1642 if (IS_ERR(rl) || unlikely(!rl->length || rl->lcn < 0)) { 1643 up_write(&mft_ni->runlist.lock); 1644 ntfs_error(vol->sb, 1645 "Failed to determine last allocated cluster of mft data attribute."); 1646 if (!IS_ERR(rl)) 1647 ret = -EIO; 1648 else 1649 ret = PTR_ERR(rl); 1650 return ret; 1651 } 1652 lcn = rl->lcn + rl->length; 1653 ntfs_debug("Last lcn of mft data attribute is 0x%llx.", lcn); 1654 /* Keep room for the allocating record and at least one MFT reserve. */ 1655 min_nr = DIV_ROUND_UP_ULL((u64)vol->mft_record_size * 2, vol->cluster_size); 1656 /* Want to allocate 16 mft records worth of clusters. */ 1657 nr = vol->mft_record_size << 4 >> vol->cluster_size_bits; 1658 if (!nr) 1659 nr = min_nr; 1660 /* Ensure we do not go above 2^32-1 mft records. */ 1661 read_lock_irqsave(&mft_ni->size_lock, flags); 1662 ll = mft_ni->allocated_size; 1663 read_unlock_irqrestore(&mft_ni->size_lock, flags); 1664 if (unlikely((ll + NTFS_CLU_TO_B(vol, nr)) >> 1665 vol->mft_record_size_bits >= (1ll << 32))) { 1666 nr = min_nr; 1667 if (unlikely((ll + NTFS_CLU_TO_B(vol, nr)) >> 1668 vol->mft_record_size_bits >= (1ll << 32))) { 1669 ntfs_warning(vol->sb, 1670 "Cannot allocate mft record because the maximum number of inodes (2^32) has already been reached."); 1671 up_write(&mft_ni->runlist.lock); 1672 return -ENOSPC; 1673 } 1674 } 1675 ntfs_debug("Trying mft data allocation with %s cluster count %lli.", 1676 nr > min_nr ? "default" : "minimal", (long long)nr); 1677 old_last_vcn = rl[1].vcn; 1678 /* 1679 * We can release the mft_ni runlist lock, Because this function is 1680 * the only one that expends $MFT data attribute and is called with 1681 * mft_ni->mrec_lock. 1682 * This is required for the lock order, vol->lcnbmp_lock => 1683 * mft_ni->runlist.lock. 1684 */ 1685 up_write(&mft_ni->runlist.lock); 1686 1687 do { 1688 rl2 = ntfs_cluster_alloc(vol, old_last_vcn, nr, lcn, MFT_ZONE, 1689 true, false, false); 1690 if (!IS_ERR(rl2)) 1691 break; 1692 if (PTR_ERR(rl2) != -ENOSPC || nr == min_nr) { 1693 ntfs_error(vol->sb, 1694 "Failed to allocate the minimal number of clusters (%lli) for the mft data attribute.", 1695 nr); 1696 return PTR_ERR(rl2); 1697 } 1698 /* 1699 * There is not enough space to do the allocation, but there 1700 * might be enough space to do a minimal allocation so try that 1701 * before failing. 1702 */ 1703 nr = min_nr; 1704 ntfs_debug("Retrying mft data allocation with minimal cluster count %lli.", nr); 1705 } while (1); 1706 1707 down_write(&mft_ni->runlist.lock); 1708 rl = ntfs_runlists_merge(&mft_ni->runlist, rl2, 0, &new_rl_count); 1709 if (IS_ERR(rl)) { 1710 up_write(&mft_ni->runlist.lock); 1711 ntfs_error(vol->sb, "Failed to merge runlists for mft data attribute."); 1712 if (ntfs_cluster_free_from_rl(vol, rl2)) { 1713 ntfs_error(vol->sb, 1714 "Failed to deallocate clusters from the mft data attribute.%s", es); 1715 NVolSetErrors(vol); 1716 } 1717 kvfree(rl2); 1718 return PTR_ERR(rl); 1719 } 1720 mft_ni->runlist.rl = rl; 1721 mft_ni->runlist.count = new_rl_count; 1722 ntfs_debug("Allocated %lli clusters.", (long long)nr); 1723 /* Find the last run in the new runlist. */ 1724 for (; rl[1].length; rl++) 1725 ; 1726 up_write(&mft_ni->runlist.lock); 1727 1728 /* Update the attribute record as well. */ 1729 mrec = map_mft_record(mft_ni); 1730 if (IS_ERR(mrec)) { 1731 ntfs_error(vol->sb, "Failed to map mft record."); 1732 ret = PTR_ERR(mrec); 1733 down_write(&mft_ni->runlist.lock); 1734 goto undo_alloc; 1735 } 1736 ctx = ntfs_attr_get_search_ctx(mft_ni, mrec); 1737 if (unlikely(!ctx)) { 1738 ntfs_error(vol->sb, "Failed to get search context."); 1739 ret = -ENOMEM; 1740 goto undo_alloc; 1741 } 1742 ret = ntfs_attr_lookup(mft_ni->type, mft_ni->name, mft_ni->name_len, 1743 CASE_SENSITIVE, rl[1].vcn, NULL, 0, ctx); 1744 if (unlikely(ret)) { 1745 ntfs_error(vol->sb, "Failed to find last attribute extent of mft data attribute."); 1746 if (ret == -ENOENT) 1747 ret = -EIO; 1748 goto undo_alloc; 1749 } 1750 a = ctx->attr; 1751 ll = le64_to_cpu(a->data.non_resident.lowest_vcn); 1752 1753 down_write(&mft_ni->runlist.lock); 1754 /* Search back for the previous last allocated cluster of mft bitmap. */ 1755 for (rl2 = rl; rl2 > mft_ni->runlist.rl; rl2--) { 1756 if (ll >= rl2->vcn) 1757 break; 1758 } 1759 WARN_ON(ll < rl2->vcn); 1760 WARN_ON(ll >= rl2->vcn + rl2->length); 1761 /* Get the size for the new mapping pairs array for this extent. */ 1762 mp_size = ntfs_get_size_for_mapping_pairs(vol, rl2, ll, -1, -1); 1763 if (unlikely(mp_size <= 0)) { 1764 ntfs_error(vol->sb, 1765 "Get size for mapping pairs failed for mft data attribute extent."); 1766 ret = mp_size; 1767 if (!ret) 1768 ret = -EIO; 1769 up_write(&mft_ni->runlist.lock); 1770 goto undo_alloc; 1771 } 1772 up_write(&mft_ni->runlist.lock); 1773 1774 /* Expand the attribute record if necessary. */ 1775 old_alen = le32_to_cpu(a->length); 1776 ret = ntfs_attr_record_resize(ctx->mrec, a, mp_size + 1777 le16_to_cpu(a->data.non_resident.mapping_pairs_offset)); 1778 if (unlikely(ret)) { 1779 ret = ntfs_mft_attr_extend(mft_ni, NULL); 1780 if (!ret) 1781 goto extended_ok; 1782 if (ret != -EAGAIN) 1783 mp_extended = true; 1784 goto undo_alloc; 1785 } 1786 mp_rebuilt = true; 1787 /* Generate the mapping pairs array directly into the attr record. */ 1788 ret = ntfs_mapping_pairs_build(vol, (u8 *)a + 1789 le16_to_cpu(a->data.non_resident.mapping_pairs_offset), 1790 mp_size, rl2, ll, -1, NULL, NULL, NULL); 1791 if (unlikely(ret)) { 1792 ntfs_error(vol->sb, "Failed to build mapping pairs array of mft data attribute."); 1793 goto undo_alloc; 1794 } 1795 /* Update the highest_vcn. */ 1796 a->data.non_resident.highest_vcn = cpu_to_le64(rl[1].vcn - 1); 1797 /* 1798 * We now have extended the mft data allocated_size by nr clusters. 1799 * Reflect this in the struct ntfs_inode structure and the attribute record. 1800 * @rl is the last (non-terminator) runlist element of mft data 1801 * attribute. 1802 */ 1803 if (a->data.non_resident.lowest_vcn) { 1804 /* 1805 * We are not in the first attribute extent, switch to it, but 1806 * first ensure the changes will make it to disk later. 1807 */ 1808 mark_mft_record_dirty(ctx->ntfs_ino); 1809 extended_ok: 1810 ntfs_attr_reinit_search_ctx(ctx); 1811 ret = ntfs_attr_lookup(mft_ni->type, mft_ni->name, 1812 mft_ni->name_len, CASE_SENSITIVE, 0, NULL, 0, 1813 ctx); 1814 if (unlikely(ret)) { 1815 ntfs_error(vol->sb, 1816 "Failed to find first attribute extent of mft data attribute."); 1817 goto restore_undo_alloc; 1818 } 1819 a = ctx->attr; 1820 } 1821 1822 write_lock_irqsave(&mft_ni->size_lock, flags); 1823 mft_ni->allocated_size += NTFS_CLU_TO_B(vol, nr); 1824 a->data.non_resident.allocated_size = 1825 cpu_to_le64(mft_ni->allocated_size); 1826 write_unlock_irqrestore(&mft_ni->size_lock, flags); 1827 /* Ensure the changes make it to disk. */ 1828 mark_mft_record_dirty(ctx->ntfs_ino); 1829 ntfs_attr_put_search_ctx(ctx); 1830 unmap_mft_record(mft_ni); 1831 ntfs_debug("Done."); 1832 return 0; 1833 restore_undo_alloc: 1834 ntfs_attr_reinit_search_ctx(ctx); 1835 if (ntfs_attr_lookup(mft_ni->type, mft_ni->name, mft_ni->name_len, 1836 CASE_SENSITIVE, rl[1].vcn, NULL, 0, ctx)) { 1837 ntfs_error(vol->sb, 1838 "Failed to find last attribute extent of mft data attribute.%s", es); 1839 write_lock_irqsave(&mft_ni->size_lock, flags); 1840 mft_ni->allocated_size += NTFS_CLU_TO_B(vol, nr); 1841 write_unlock_irqrestore(&mft_ni->size_lock, flags); 1842 ntfs_attr_put_search_ctx(ctx); 1843 unmap_mft_record(mft_ni); 1844 up_write(&mft_ni->runlist.lock); 1845 /* 1846 * The only thing that is now wrong is ->allocated_size of the 1847 * base attribute extent which chkdsk should be able to fix. 1848 */ 1849 NVolSetErrors(vol); 1850 return ret; 1851 } 1852 ctx->attr->data.non_resident.highest_vcn = 1853 cpu_to_le64(old_last_vcn - 1); 1854 undo_alloc: 1855 if (ntfs_cluster_free(mft_ni, old_last_vcn, -1, ctx) < 0) { 1856 ntfs_error(vol->sb, "Failed to free clusters from mft data attribute.%s", es); 1857 NVolSetErrors(vol); 1858 } 1859 1860 if (ntfs_rl_truncate_nolock(vol, &mft_ni->runlist, old_last_vcn)) { 1861 ntfs_error(vol->sb, "Failed to truncate mft data attribute runlist.%s", es); 1862 NVolSetErrors(vol); 1863 } 1864 if (mp_extended && ntfs_attr_update_mapping_pairs(mft_ni, 0)) { 1865 ntfs_error(vol->sb, "Failed to restore mapping pairs.%s", 1866 es); 1867 NVolSetErrors(vol); 1868 } 1869 if (ctx) { 1870 a = ctx->attr; 1871 if (mp_rebuilt && !IS_ERR(ctx->mrec)) { 1872 if (ntfs_mapping_pairs_build(vol, (u8 *)a + le16_to_cpu( 1873 a->data.non_resident.mapping_pairs_offset), 1874 old_alen - le16_to_cpu( 1875 a->data.non_resident.mapping_pairs_offset), 1876 rl2, ll, -1, NULL, NULL, NULL)) { 1877 ntfs_error(vol->sb, "Failed to restore mapping pairs array.%s", es); 1878 NVolSetErrors(vol); 1879 } 1880 if (ntfs_attr_record_resize(ctx->mrec, a, old_alen)) { 1881 ntfs_error(vol->sb, "Failed to restore attribute record.%s", es); 1882 NVolSetErrors(vol); 1883 } 1884 mark_mft_record_dirty(ctx->ntfs_ino); 1885 } else if (IS_ERR(ctx->mrec)) { 1886 ntfs_error(vol->sb, "Failed to restore attribute search context.%s", es); 1887 NVolSetErrors(vol); 1888 } 1889 ntfs_attr_put_search_ctx(ctx); 1890 } 1891 if (!IS_ERR(mrec)) 1892 unmap_mft_record(mft_ni); 1893 return ret; 1894 } 1895 1896 /* 1897 * ntfs_mft_record_layout - layout an mft record into a memory buffer 1898 * @vol: volume to which the mft record will belong 1899 * @mft_no: mft reference specifying the mft record number 1900 * @m: destination buffer of size >= @vol->mft_record_size bytes 1901 * 1902 * Layout an empty, unused mft record with the mft record number @mft_no into 1903 * the buffer @m. The volume @vol is needed because the mft record structure 1904 * was modified in NTFS 3.1 so we need to know which volume version this mft 1905 * record will be used on. 1906 * 1907 * Return 0 on success and -errno on error. 1908 */ 1909 static int ntfs_mft_record_layout(const struct ntfs_volume *vol, const s64 mft_no, 1910 struct mft_record *m) 1911 { 1912 struct attr_record *a; 1913 1914 ntfs_debug("Entering for mft record 0x%llx.", (long long)mft_no); 1915 if (mft_no >= (1ll << 32)) { 1916 ntfs_error(vol->sb, "Mft record number 0x%llx exceeds maximum of 2^32.", 1917 (long long)mft_no); 1918 return -ERANGE; 1919 } 1920 /* Start by clearing the whole mft record to gives us a clean slate. */ 1921 memset(m, 0, vol->mft_record_size); 1922 /* Aligned to 2-byte boundary. */ 1923 if (vol->major_ver < 3 || (vol->major_ver == 3 && !vol->minor_ver)) 1924 m->usa_ofs = cpu_to_le16((sizeof(struct mft_record_old) + 1) & ~1); 1925 else { 1926 m->usa_ofs = cpu_to_le16((sizeof(struct mft_record) + 1) & ~1); 1927 /* 1928 * Set the NTFS 3.1+ specific fields while we know that the 1929 * volume version is 3.1+. 1930 */ 1931 m->reserved = 0; 1932 m->mft_record_number = cpu_to_le32((u32)mft_no); 1933 } 1934 m->magic = magic_FILE; 1935 if (vol->mft_record_size >= NTFS_BLOCK_SIZE) 1936 m->usa_count = cpu_to_le16(vol->mft_record_size / 1937 NTFS_BLOCK_SIZE + 1); 1938 else { 1939 m->usa_count = cpu_to_le16(1); 1940 ntfs_warning(vol->sb, 1941 "Sector size is bigger than mft record size. Setting usa_count to 1. If chkdsk reports this as corruption"); 1942 } 1943 /* Set the update sequence number to 1. */ 1944 *(__le16 *)((u8 *)m + le16_to_cpu(m->usa_ofs)) = cpu_to_le16(1); 1945 m->lsn = 0; 1946 m->sequence_number = cpu_to_le16(1); 1947 m->link_count = 0; 1948 /* 1949 * Place the attributes straight after the update sequence array, 1950 * aligned to 8-byte boundary. 1951 */ 1952 m->attrs_offset = cpu_to_le16((le16_to_cpu(m->usa_ofs) + 1953 (le16_to_cpu(m->usa_count) << 1) + 7) & ~7); 1954 m->flags = 0; 1955 /* 1956 * Using attrs_offset plus eight bytes (for the termination attribute). 1957 * attrs_offset is already aligned to 8-byte boundary, so no need to 1958 * align again. 1959 */ 1960 m->bytes_in_use = cpu_to_le32(le16_to_cpu(m->attrs_offset) + 8); 1961 m->bytes_allocated = cpu_to_le32(vol->mft_record_size); 1962 m->base_mft_record = 0; 1963 m->next_attr_instance = 0; 1964 /* Add the termination attribute. */ 1965 a = (struct attr_record *)((u8 *)m + le16_to_cpu(m->attrs_offset)); 1966 a->type = AT_END; 1967 a->length = 0; 1968 ntfs_debug("Done."); 1969 return 0; 1970 } 1971 1972 /* 1973 * ntfs_mft_record_format - format an mft record on an ntfs volume 1974 * @vol: volume on which to format the mft record 1975 * @mft_no: mft record number to format 1976 * 1977 * Format the mft record @mft_no in $MFT/$DATA, i.e. lay out an empty, unused 1978 * mft record into the appropriate place of the mft data attribute. This is 1979 * used when extending the mft data attribute. 1980 * 1981 * Return 0 on success and -errno on error. 1982 */ 1983 static int ntfs_mft_record_format(const struct ntfs_volume *vol, const s64 mft_no) 1984 { 1985 loff_t i_size; 1986 struct inode *mft_vi = vol->mft_ino; 1987 struct folio *folio; 1988 struct mft_record *m; 1989 pgoff_t index, end_index; 1990 unsigned int ofs; 1991 int err; 1992 1993 ntfs_debug("Entering for mft record 0x%llx.", (long long)mft_no); 1994 /* 1995 * The index into the page cache and the offset within the page cache 1996 * page of the wanted mft record. 1997 */ 1998 index = NTFS_MFT_NR_TO_PIDX(vol, mft_no); 1999 ofs = NTFS_MFT_NR_TO_POFS(vol, mft_no); 2000 /* The maximum valid index into the page cache for $MFT's data. */ 2001 i_size = i_size_read(mft_vi); 2002 end_index = i_size >> PAGE_SHIFT; 2003 if (unlikely(index >= end_index)) { 2004 if (unlikely(index > end_index || 2005 ofs + vol->mft_record_size > (i_size & ~PAGE_MASK))) { 2006 ntfs_error(vol->sb, "Tried to format non-existing mft record 0x%llx.", 2007 (long long)mft_no); 2008 return -ENOENT; 2009 } 2010 } 2011 2012 /* Read, map, and pin the folio containing the mft record. */ 2013 folio = read_mapping_folio(mft_vi->i_mapping, index, NULL); 2014 if (IS_ERR(folio)) { 2015 ntfs_error(vol->sb, "Failed to map page containing mft record to format 0x%llx.", 2016 (long long)mft_no); 2017 return PTR_ERR(folio); 2018 } 2019 folio_lock(folio); 2020 folio_clear_uptodate(folio); 2021 m = (struct mft_record *)((u8 *)kmap_local_folio(folio, 0) + ofs); 2022 err = ntfs_mft_record_layout(vol, mft_no, m); 2023 if (unlikely(err)) { 2024 ntfs_error(vol->sb, "Failed to layout mft record 0x%llx.", 2025 (long long)mft_no); 2026 folio_mark_uptodate(folio); 2027 folio_unlock(folio); 2028 kunmap_local(m); 2029 folio_put(folio); 2030 return err; 2031 } 2032 pre_write_mst_fixup((struct ntfs_record *)m, vol->mft_record_size); 2033 folio_mark_uptodate(folio); 2034 /* 2035 * Make sure the mft record is written out to disk. We could use 2036 * ilookup5() to check if an inode is in icache and so on but this is 2037 * unnecessary as ntfs_writepage() will write the dirty record anyway. 2038 */ 2039 ntfs_mft_mark_dirty(folio); 2040 folio_unlock(folio); 2041 kunmap_local(m); 2042 folio_put(folio); 2043 ntfs_debug("Done."); 2044 return 0; 2045 } 2046 2047 /* 2048 * ntfs_mft_record_alloc - allocate an mft record on an ntfs volume 2049 * @vol: [IN] volume on which to allocate the mft record 2050 * @mode: [IN] mode if want a file or directory, i.e. base inode or 0 2051 * @ni: [OUT] on success, set to the allocated ntfs inode 2052 * @base_ni: [IN] open base inode if allocating an extent mft record or NULL 2053 * @ni_mrec: [OUT] on successful return this is the mapped mft record 2054 * @mft_data_vcn: [IN] lowest VCN of a new $MFT/$DATA extent, or -1 2055 * 2056 * Allocate an mft record in $MFT/$DATA of an open ntfs volume @vol. 2057 * 2058 * If @base_ni is NULL make the mft record a base mft record, i.e. a file or 2059 * direvctory inode, and allocate it at the default allocator position. In 2060 * this case @mode is the file mode as given to us by the caller. We in 2061 * particular use @mode to distinguish whether a file or a directory is being 2062 * created (S_IFDIR(mode) and S_IFREG(mode), respectively). 2063 * 2064 * If @base_ni is not NULL make the allocated mft record an extent record, 2065 * allocate it starting at the mft record after the base mft record and attach 2066 * the allocated and opened ntfs inode to the base inode @base_ni. In this 2067 * case @mode must be 0 as it is meaningless for extent inodes. 2068 * 2069 * You need to check the return value with IS_ERR(). If false, the function 2070 * was successful and the return value is the now opened ntfs inode of the 2071 * allocated mft record. *@mrec is then set to the allocated, mapped, pinned, 2072 * and locked mft record. If IS_ERR() is true, the function failed and the 2073 * error code is obtained from PTR_ERR(return value). *@mrec is undefined in 2074 * this case. 2075 * 2076 * Allocation strategy: 2077 * 2078 * To find a free mft record, we scan the mft bitmap for a zero bit. To 2079 * optimize this we start scanning at the place specified by @base_ni or if 2080 * @base_ni is NULL we start where we last stopped and we perform wrap around 2081 * when we reach the end. Note, we do not try to allocate mft records below 2082 * number 24 because numbers 0 to 15 are the defined system files and records 2083 * 16 to 23 are kept for metadata compatibility. Records reserved dynamically 2084 * at the initialized MFT tail are skipped by normal allocation and consumed by 2085 * $MFT metadata extent allocation. 2086 * 2087 * When scanning the mft bitmap, we only search up to the last allocated mft 2088 * record. If there are no free records left in the range 24 to number of 2089 * allocated mft records, then we extend the $MFT/$DATA attribute in order to 2090 * create free mft records. We extend the allocated size of $MFT/$DATA by 16 2091 * records at a time or one cluster, if cluster size is above 16kiB. If there 2092 * is not sufficient space to do this, we try to extend by two mft records or 2093 * one cluster, if a cluster already contains at least two mft records. 2094 * 2095 * When extending the initialized MFT tail, we also initialize up to four 2096 * additional records and reserve them in memory for future $MFT metadata 2097 * extents. If there are less than 24 mft records, records are initialized 2098 * until record 24, which is the first record used for normal files. 2099 * 2100 * If during any stage we overflow the initialized data in the mft bitmap, we 2101 * extend the initialized size (and data size) by 8 bytes, allocating another 2102 * cluster if required. The bitmap data size has to be at least equal to the 2103 * number of mft records in the mft, but it can be bigger, in which case the 2104 * superfluous bits are padded with zeroes. 2105 * 2106 * Thus, when we return successfully (IS_ERR() is false), we will have: 2107 * - initialized / extended the mft bitmap if necessary, 2108 * - initialized / extended the mft data if necessary, 2109 * - set the bit corresponding to the mft record being allocated in the 2110 * mft bitmap, 2111 * - opened an struct ntfs_inode for the allocated mft record, and we will have 2112 * - returned the struct ntfs_inode as well as the allocated mapped, pinned, and 2113 * locked mft record. 2114 * 2115 * On error, the volume will be left in a consistent state and no record will 2116 * be allocated. If rolling back a partial operation fails, we may leave some 2117 * inconsistent metadata in which case we set NVolErrors() so the volume is 2118 * left dirty when unmounted. 2119 * 2120 * Note, this function cannot make use of most of the normal functions, like 2121 * for example for attribute resizing, etc, because when the run list overflows 2122 * the base mft record and an attribute list is used, it is very important that 2123 * the extension mft records used to store the $DATA attribute of $MFT can be 2124 * reached without having to read the information contained inside them, as 2125 * this would make it impossible to find them in the first place after the 2126 * volume is unmounted. $MFT/$BITMAP probably does not need to follow this 2127 * rule because the bitmap is not essential for finding the mft records, but on 2128 * the other hand, handling the bitmap in this special way would make life 2129 * easier because otherwise there might be circular invocations of functions 2130 * when reading the bitmap. 2131 */ 2132 int ntfs_mft_record_alloc(struct ntfs_volume *vol, const int mode, 2133 struct ntfs_inode **ni, struct ntfs_inode *base_ni, 2134 struct mft_record **ni_mrec, const s64 mft_data_vcn) 2135 { 2136 s64 ll, bit, old_data_initialized, old_data_size; 2137 s64 nr_new_mft_records = 0; 2138 s64 max_mft_no = -1, reserve_start = -1, reserve_end = -1; 2139 s64 candidate_reserve_end = -1; 2140 s64 *reserve_endp; 2141 unsigned long flags; 2142 struct folio *folio; 2143 struct ntfs_inode *mft_ni, *mftbmp_ni; 2144 struct ntfs_attr_search_ctx *ctx; 2145 struct mft_record *m = NULL; 2146 struct attr_record *a; 2147 pgoff_t index; 2148 unsigned int ofs; 2149 int err; 2150 __le16 seq_no, usn; 2151 bool record_formatted = false, from_reserve = false, tail_alloc = false; 2152 bool reserve_created = false; 2153 bool forced_reserved_record = false; 2154 unsigned int memalloc_flags; 2155 2156 if (base_ni && *ni) 2157 return -EINVAL; 2158 2159 /* @mode and @base_ni are mutually exclusive. */ 2160 if (mode && base_ni) 2161 return -EINVAL; 2162 if (mft_data_vcn >= 0 && 2163 (!base_ni || base_ni->mft_no != FILE_MFT)) 2164 return -EINVAL; 2165 if (mft_data_vcn >= 0) { 2166 u64 vbo; 2167 2168 if ((u64)mft_data_vcn > (U64_MAX >> vol->cluster_size_bits)) 2169 return -EOVERFLOW; 2170 vbo = (u64)mft_data_vcn << vol->cluster_size_bits; 2171 /* 2172 * The whole extent record must be reachable without this 2173 * extent, including when an MFT record spans multiple clusters. 2174 */ 2175 max_mft_no = vbo >> vol->mft_record_size_bits; 2176 } 2177 2178 if (base_ni) 2179 ntfs_debug("Entering (allocating an extent mft record for base mft record 0x%llx).", 2180 (long long)base_ni->mft_no); 2181 else 2182 ntfs_debug("Entering (allocating a base mft record)."); 2183 2184 memalloc_flags = memalloc_nofs_save(); 2185 2186 mft_ni = NTFS_I(vol->mft_ino); 2187 if (!base_ni || base_ni->mft_no != FILE_MFT) 2188 mutex_lock(&mft_ni->mrec_lock); 2189 mftbmp_ni = NTFS_I(vol->mftbmp_ino); 2190 search_free_rec: 2191 from_reserve = false; 2192 reserve_created = false; 2193 candidate_reserve_end = -1; 2194 if (!base_ni || base_ni->mft_no != FILE_MFT) 2195 down_write(&vol->mftbmp_lock); 2196 if (base_ni && base_ni->mft_no == FILE_MFT && 2197 vol->mft_record_reserve_pos < vol->mft_record_reserve_end && 2198 (max_mft_no < 0 || vol->mft_record_reserve_pos < max_mft_no)) { 2199 bit = vol->mft_record_reserve_pos; 2200 err = ntfs_bitmap_set_bit(vol->mftbmp_ino, bit); 2201 if (unlikely(err)) { 2202 ntfs_error(vol->sb, 2203 "Failed to allocate reserved MFT record 0x%llx.", 2204 bit); 2205 goto err_out; 2206 } 2207 vol->mft_record_reserve_pos++; 2208 from_reserve = true; 2209 ntfs_debug("Allocated MFT metadata record 0x%llx from tail reserve.", 2210 bit); 2211 goto have_alloc_rec; 2212 } 2213 reserve_endp = vol->mft_record_reserve_pos >= 2214 vol->mft_record_reserve_end ? &candidate_reserve_end : NULL; 2215 bit = mft_bitmap_alloc_free_rec(vol, base_ni, max_mft_no, reserve_endp); 2216 if (bit >= 0) { 2217 if (candidate_reserve_end > bit + 1) { 2218 vol->mft_record_reserve_pos = bit + 1; 2219 vol->mft_record_reserve_end = candidate_reserve_end; 2220 reserve_created = true; 2221 ntfs_debug("Reserved free MFT records [0x%llx, 0x%llx) for metadata.", 2222 bit + 1, candidate_reserve_end); 2223 } 2224 ntfs_debug("Found and allocated free record (#1), bit 0x%llx.", 2225 (long long)bit); 2226 goto have_alloc_rec; 2227 } 2228 if (bit != -ENOSPC) { 2229 if (!base_ni || base_ni->mft_no != FILE_MFT) { 2230 up_write(&vol->mftbmp_lock); 2231 mutex_unlock(&mft_ni->mrec_lock); 2232 } 2233 memalloc_nofs_restore(memalloc_flags); 2234 return bit; 2235 } 2236 2237 if (base_ni && base_ni->mft_no == FILE_MFT) { 2238 static const u8 bootstrap_records[] = { 2239 FILE_reserved15, FILE_reserved12, FILE_reserved13, 2240 FILE_reserved14, 2241 }; 2242 int i; 2243 2244 for (i = 0; i < ARRAY_SIZE(bootstrap_records); i++) { 2245 if (max_mft_no >= 0 && bootstrap_records[i] >= max_mft_no) 2246 continue; 2247 if (!mft_reserved_is_free(vol, mft_ni, 2248 bootstrap_records[i])) 2249 continue; 2250 bit = bootstrap_records[i]; 2251 forced_reserved_record = true; 2252 ntfs_debug("Using reserved MFT record %lld to bootstrap metadata extension.", 2253 bit); 2254 goto have_alloc_rec; 2255 } 2256 memalloc_nofs_restore(memalloc_flags); 2257 return bit; 2258 } 2259 2260 /* 2261 * No free mft records left. If the mft bitmap already covers more 2262 * than the currently used mft records, the next records are all free, 2263 * so we can simply allocate the first unused mft record. 2264 * Note: We also have to make sure that the mft bitmap at least covers 2265 * the first 24 mft records as they are special and whilst they may not 2266 * be in use, we do not allocate from them. 2267 */ 2268 read_lock_irqsave(&mft_ni->size_lock, flags); 2269 ll = mft_ni->initialized_size >> vol->mft_record_size_bits; 2270 read_unlock_irqrestore(&mft_ni->size_lock, flags); 2271 read_lock_irqsave(&mftbmp_ni->size_lock, flags); 2272 old_data_initialized = mftbmp_ni->initialized_size; 2273 read_unlock_irqrestore(&mftbmp_ni->size_lock, flags); 2274 if (old_data_initialized << 3 > ll && 2275 old_data_initialized << 3 > FIRST_NORMAL_MFT_RECORD) { 2276 bit = ll; 2277 if (bit < FIRST_NORMAL_MFT_RECORD) 2278 bit = FIRST_NORMAL_MFT_RECORD; 2279 if (unlikely(bit >= (1ll << 32))) 2280 goto max_err_out; 2281 ntfs_debug("Found free record (#2), bit 0x%llx.", 2282 (long long)bit); 2283 goto found_free_rec; 2284 } 2285 /* 2286 * The mft bitmap needs to be expanded until it covers the first unused 2287 * mft record that we can allocate. 2288 * Note: The smallest mft record we allocate is mft record 24. 2289 */ 2290 bit = old_data_initialized << 3; 2291 if (unlikely(bit >= (1ll << 32))) 2292 goto max_err_out; 2293 read_lock_irqsave(&mftbmp_ni->size_lock, flags); 2294 old_data_size = mftbmp_ni->allocated_size; 2295 ntfs_debug("Status of mftbmp before extension: allocated_size 0x%llx, data_size 0x%llx, initialized_size 0x%llx.", 2296 old_data_size, i_size_read(vol->mftbmp_ino), 2297 old_data_initialized); 2298 read_unlock_irqrestore(&mftbmp_ni->size_lock, flags); 2299 if (old_data_initialized + 8 > old_data_size) { 2300 /* Need to extend bitmap by one more cluster. */ 2301 ntfs_debug("mftbmp: initialized_size + 8 > allocated_size."); 2302 err = ntfs_mft_bitmap_extend_allocation_nolock(vol); 2303 if (err == -EAGAIN) 2304 err = ntfs_mft_bitmap_extend_allocation_nolock(vol); 2305 2306 if (unlikely(err)) { 2307 if (!base_ni || base_ni->mft_no != FILE_MFT) 2308 up_write(&vol->mftbmp_lock); 2309 goto err_out; 2310 } 2311 #ifdef DEBUG 2312 read_lock_irqsave(&mftbmp_ni->size_lock, flags); 2313 ntfs_debug("Status of mftbmp after allocation extension: allocated_size 0x%llx, data_size 0x%llx, initialized_size 0x%llx.", 2314 mftbmp_ni->allocated_size, 2315 i_size_read(vol->mftbmp_ino), 2316 mftbmp_ni->initialized_size); 2317 read_unlock_irqrestore(&mftbmp_ni->size_lock, flags); 2318 #endif /* DEBUG */ 2319 } 2320 /* 2321 * We now have sufficient allocated space, extend the initialized_size 2322 * as well as the data_size if necessary and fill the new space with 2323 * zeroes. 2324 */ 2325 err = ntfs_mft_bitmap_extend_initialized_nolock(vol); 2326 if (unlikely(err)) { 2327 if (!base_ni || base_ni->mft_no != FILE_MFT) 2328 up_write(&vol->mftbmp_lock); 2329 goto err_out; 2330 } 2331 #ifdef DEBUG 2332 read_lock_irqsave(&mftbmp_ni->size_lock, flags); 2333 ntfs_debug("Status of mftbmp after initialized extension: allocated_size 0x%llx, data_size 0x%llx, initialized_size 0x%llx.", 2334 mftbmp_ni->allocated_size, 2335 i_size_read(vol->mftbmp_ino), 2336 mftbmp_ni->initialized_size); 2337 read_unlock_irqrestore(&mftbmp_ni->size_lock, flags); 2338 #endif /* DEBUG */ 2339 ntfs_debug("Found free record (#3), bit 0x%llx.", (long long)bit); 2340 found_free_rec: 2341 /* @bit is the found free mft record, allocate it in the mft bitmap. */ 2342 ntfs_debug("At found_free_rec."); 2343 err = ntfs_bitmap_set_bit(vol->mftbmp_ino, bit); 2344 if (unlikely(err)) { 2345 ntfs_error(vol->sb, "Failed to allocate bit in mft bitmap."); 2346 if (!base_ni || base_ni->mft_no != FILE_MFT) 2347 up_write(&vol->mftbmp_lock); 2348 goto err_out; 2349 } 2350 ntfs_debug("Set bit 0x%llx in mft bitmap.", (long long)bit); 2351 have_alloc_rec: 2352 /* 2353 * The mft bitmap is now uptodate. Deal with mft data attribute now. 2354 * Note, we keep hold of the mft bitmap lock for writing until all 2355 * modifications to the mft data attribute are complete, too, as they 2356 * will impact decisions for mft bitmap and mft record allocation done 2357 * by a parallel allocation and if the lock is not maintained a 2358 * parallel allocation could allocate the same mft record as this one. 2359 */ 2360 ll = (bit + 1) << vol->mft_record_size_bits; 2361 read_lock_irqsave(&mft_ni->size_lock, flags); 2362 old_data_initialized = mft_ni->initialized_size; 2363 read_unlock_irqrestore(&mft_ni->size_lock, flags); 2364 tail_alloc = (!base_ni || base_ni->mft_no != FILE_MFT) && 2365 bit >= (old_data_initialized >> vol->mft_record_size_bits) && 2366 vol->mft_record_reserve_pos >= vol->mft_record_reserve_end; 2367 if (tail_alloc) 2368 ll = (bit + 2) << vol->mft_record_size_bits; 2369 if (ll <= old_data_initialized) { 2370 ntfs_debug("Allocated mft record already initialized."); 2371 goto mft_rec_already_initialized; 2372 } 2373 ntfs_debug("Initializing allocated mft record."); 2374 /* 2375 * The mft record is outside the initialized data. Extend the mft data 2376 * attribute until it covers the allocated record. The loop is only 2377 * actually traversed more than once when a freshly formatted volume is 2378 * first written to so it optimizes away nicely in the common case. 2379 */ 2380 if (!base_ni || base_ni->mft_no != FILE_MFT) { 2381 read_lock_irqsave(&mft_ni->size_lock, flags); 2382 ntfs_debug("Status of mft data before extension: allocated_size 0x%llx, data_size 0x%llx, initialized_size 0x%llx.", 2383 mft_ni->allocated_size, i_size_read(vol->mft_ino), 2384 mft_ni->initialized_size); 2385 while (ll > mft_ni->allocated_size) { 2386 read_unlock_irqrestore(&mft_ni->size_lock, flags); 2387 err = ntfs_mft_data_extend_allocation_nolock(vol); 2388 if (err == -EAGAIN) 2389 err = ntfs_mft_data_extend_allocation_nolock(vol); 2390 2391 if (unlikely(err)) { 2392 ntfs_error(vol->sb, "Failed to extend mft data allocation."); 2393 goto undo_mftbmp_alloc_nolock; 2394 } 2395 read_lock_irqsave(&mft_ni->size_lock, flags); 2396 ntfs_debug("Status of mft data after allocation extension: allocated_size 0x%llx, data_size 0x%llx, initialized_size 0x%llx.", 2397 mft_ni->allocated_size, i_size_read(vol->mft_ino), 2398 mft_ni->initialized_size); 2399 } 2400 read_unlock_irqrestore(&mft_ni->size_lock, flags); 2401 if (tail_alloc) { 2402 s64 bitmap_records; 2403 2404 read_lock_irqsave(&mft_ni->size_lock, flags); 2405 reserve_end = mft_ni->allocated_size >> 2406 vol->mft_record_size_bits; 2407 read_unlock_irqrestore(&mft_ni->size_lock, flags); 2408 read_lock_irqsave(&mftbmp_ni->size_lock, flags); 2409 bitmap_records = mftbmp_ni->initialized_size << 3; 2410 read_unlock_irqrestore(&mftbmp_ni->size_lock, flags); 2411 if (reserve_end > bitmap_records) 2412 reserve_end = bitmap_records; 2413 if (reserve_end > bit + 1 + MFT_RECORD_RESERVE) 2414 reserve_end = bit + 1 + MFT_RECORD_RESERVE; 2415 reserve_start = bit + 1; 2416 if (reserve_end > reserve_start) { 2417 ll = reserve_end << vol->mft_record_size_bits; 2418 } else { 2419 reserve_start = -1; 2420 reserve_end = -1; 2421 ll = (bit + 1) << vol->mft_record_size_bits; 2422 } 2423 } 2424 } else if (ll > mft_ni->allocated_size) { 2425 err = -ENOSPC; 2426 goto undo_mftbmp_alloc_nolock; 2427 } 2428 /* 2429 * Extend mft data initialized size (and data size of course) to reach 2430 * the allocated mft record, formatting the mft records allong the way. 2431 * Note: We only modify the struct ntfs_inode structure as that is all that is 2432 * needed by ntfs_mft_record_format(). We will update the attribute 2433 * record itself in one fell swoop later on. 2434 */ 2435 write_lock_irqsave(&mft_ni->size_lock, flags); 2436 old_data_initialized = mft_ni->initialized_size; 2437 old_data_size = vol->mft_ino->i_size; 2438 while (ll > mft_ni->initialized_size) { 2439 s64 new_initialized_size, mft_no; 2440 2441 new_initialized_size = mft_ni->initialized_size + 2442 vol->mft_record_size; 2443 mft_no = mft_ni->initialized_size >> vol->mft_record_size_bits; 2444 if (new_initialized_size > i_size_read(vol->mft_ino)) 2445 i_size_write(vol->mft_ino, new_initialized_size); 2446 write_unlock_irqrestore(&mft_ni->size_lock, flags); 2447 ntfs_debug("Initializing mft record 0x%llx.", 2448 (long long)mft_no); 2449 err = ntfs_mft_record_format(vol, mft_no); 2450 if (unlikely(err)) { 2451 ntfs_error(vol->sb, "Failed to format mft record."); 2452 goto undo_data_init; 2453 } 2454 write_lock_irqsave(&mft_ni->size_lock, flags); 2455 mft_ni->initialized_size = new_initialized_size; 2456 } 2457 write_unlock_irqrestore(&mft_ni->size_lock, flags); 2458 record_formatted = true; 2459 /* Update the mft data attribute record to reflect the new sizes. */ 2460 m = map_mft_record(mft_ni); 2461 if (IS_ERR(m)) { 2462 ntfs_error(vol->sb, "Failed to map mft record."); 2463 err = PTR_ERR(m); 2464 goto undo_data_init; 2465 } 2466 ctx = ntfs_attr_get_search_ctx(mft_ni, m); 2467 if (unlikely(!ctx)) { 2468 ntfs_error(vol->sb, "Failed to get search context."); 2469 err = -ENOMEM; 2470 unmap_mft_record(mft_ni); 2471 goto undo_data_init; 2472 } 2473 err = ntfs_attr_lookup(mft_ni->type, mft_ni->name, mft_ni->name_len, 2474 CASE_SENSITIVE, 0, NULL, 0, ctx); 2475 if (unlikely(err)) { 2476 ntfs_error(vol->sb, "Failed to find first attribute extent of mft data attribute."); 2477 ntfs_attr_put_search_ctx(ctx); 2478 unmap_mft_record(mft_ni); 2479 goto undo_data_init; 2480 } 2481 a = ctx->attr; 2482 read_lock_irqsave(&mft_ni->size_lock, flags); 2483 a->data.non_resident.initialized_size = 2484 cpu_to_le64(mft_ni->initialized_size); 2485 a->data.non_resident.data_size = 2486 cpu_to_le64(i_size_read(vol->mft_ino)); 2487 read_unlock_irqrestore(&mft_ni->size_lock, flags); 2488 /* Ensure the changes make it to disk. */ 2489 mark_mft_record_dirty(ctx->ntfs_ino); 2490 ntfs_attr_put_search_ctx(ctx); 2491 unmap_mft_record(mft_ni); 2492 if (reserve_start >= 0 && reserve_end > reserve_start) { 2493 vol->mft_record_reserve_pos = reserve_start; 2494 vol->mft_record_reserve_end = reserve_end; 2495 ntfs_debug("Reserved MFT records [0x%llx, 0x%llx) for metadata.", 2496 reserve_start, reserve_end); 2497 } 2498 read_lock_irqsave(&mft_ni->size_lock, flags); 2499 ntfs_debug("Status of mft data after mft record initialization: allocated_size 0x%llx, data_size 0x%llx, initialized_size 0x%llx.", 2500 mft_ni->allocated_size, i_size_read(vol->mft_ino), 2501 mft_ni->initialized_size); 2502 WARN_ON(i_size_read(vol->mft_ino) > mft_ni->allocated_size); 2503 WARN_ON(mft_ni->initialized_size > i_size_read(vol->mft_ino)); 2504 nr_new_mft_records = (i_size_read(vol->mft_ino) - old_data_size) >> 2505 vol->mft_record_size_bits; 2506 read_unlock_irqrestore(&mft_ni->size_lock, flags); 2507 mft_rec_already_initialized: 2508 /* Account for newly visible MFT records before dropping the lock. */ 2509 if (nr_new_mft_records > 0) 2510 ntfs_inc_free_mft_records(vol, nr_new_mft_records); 2511 /* 2512 * We can finally drop the mft bitmap lock as the mft data attribute 2513 * has been fully updated. The only disparity left is that the 2514 * allocated mft record still needs to be marked as in use to match the 2515 * set bit in the mft bitmap but this is actually not a problem since 2516 * this mft record is not referenced from anywhere yet and the fact 2517 * that it is allocated in the mft bitmap means that no-one will try to 2518 * allocate it either. 2519 */ 2520 if (!base_ni || base_ni->mft_no != FILE_MFT) 2521 up_write(&vol->mftbmp_lock); 2522 /* 2523 * We now have allocated and initialized the mft record. Calculate the 2524 * index of and the offset within the page cache page the record is in. 2525 */ 2526 index = NTFS_MFT_NR_TO_PIDX(vol, bit); 2527 ofs = NTFS_MFT_NR_TO_POFS(vol, bit); 2528 /* Read, map, and pin the folio containing the mft record. */ 2529 folio = read_mapping_folio(vol->mft_ino->i_mapping, index, NULL); 2530 if (IS_ERR(folio)) { 2531 ntfs_error(vol->sb, "Failed to map page containing allocated mft record 0x%llx.", 2532 bit); 2533 err = PTR_ERR(folio); 2534 goto undo_mftbmp_alloc; 2535 } 2536 folio_lock(folio); 2537 folio_clear_uptodate(folio); 2538 m = (struct mft_record *)((u8 *)kmap_local_folio(folio, 0) + ofs); 2539 /* If we just formatted the mft record no need to do it again. */ 2540 if (!record_formatted) { 2541 /* Sanity check that the mft record is really not in use. */ 2542 if (!forced_reserved_record && ntfs_is_file_record(m->magic) && 2543 (m->flags & MFT_RECORD_IN_USE)) { 2544 ntfs_warning(vol->sb, 2545 "Mft record 0x%llx was marked free in mft bitmap but is marked used itself. Unmount and run chkdsk.", 2546 bit); 2547 folio_mark_uptodate(folio); 2548 folio_unlock(folio); 2549 kunmap_local(m); 2550 folio_put(folio); 2551 NVolSetErrors(vol); 2552 goto search_free_rec; 2553 } 2554 /* 2555 * We need to (re-)format the mft record, preserving the 2556 * sequence number if it is not zero as well as the update 2557 * sequence number if it is not zero or -1 (0xffff). This 2558 * means we do not need to care whether or not something went 2559 * wrong with the previous mft record. 2560 */ 2561 seq_no = m->sequence_number; 2562 /* 2563 * The mft record still holds unvalidated, MST-protected on-disk 2564 * bytes, so m->usa_ofs is untrusted here. Only preserve the old 2565 * update sequence number if that offset is in bounds; otherwise 2566 * leave usn zero so it is not restored below. 2567 */ 2568 if (!(le16_to_cpu(m->usa_ofs) & 1) && 2569 le16_to_cpu(m->usa_ofs) + sizeof(usn) <= vol->mft_record_size) 2570 usn = *(__le16 *)((u8 *)m + le16_to_cpu(m->usa_ofs)); 2571 else 2572 usn = 0; 2573 err = ntfs_mft_record_layout(vol, bit, m); 2574 if (unlikely(err)) { 2575 ntfs_error(vol->sb, "Failed to layout allocated mft record 0x%llx.", 2576 bit); 2577 folio_mark_uptodate(folio); 2578 folio_unlock(folio); 2579 kunmap_local(m); 2580 folio_put(folio); 2581 goto undo_mftbmp_alloc; 2582 } 2583 if (seq_no) 2584 m->sequence_number = seq_no; 2585 if (usn && le16_to_cpu(usn) != 0xffff) 2586 *(__le16 *)((u8 *)m + le16_to_cpu(m->usa_ofs)) = usn; 2587 pre_write_mst_fixup((struct ntfs_record *)m, vol->mft_record_size); 2588 } 2589 /* Set the mft record itself in use. */ 2590 m->flags |= MFT_RECORD_IN_USE; 2591 if (S_ISDIR(mode)) 2592 m->flags |= MFT_RECORD_IS_DIRECTORY; 2593 folio_mark_uptodate(folio); 2594 if (base_ni) { 2595 struct mft_record *m_tmp; 2596 2597 /* 2598 * Setup the base mft record in the extent mft record. This 2599 * completes initialization of the allocated extent mft record 2600 * and we can simply use it with map_extent_mft_record(). 2601 */ 2602 m->base_mft_record = MK_LE_MREF(base_ni->mft_no, 2603 base_ni->seq_no); 2604 /* 2605 * Allocate an extent inode structure for the new mft record, 2606 * attach it to the base inode @base_ni and map, pin, and lock 2607 * its, i.e. the allocated, mft record. 2608 */ 2609 m_tmp = map_extent_mft_record(base_ni, 2610 MK_MREF(bit, le16_to_cpu(m->sequence_number)), 2611 ni); 2612 if (IS_ERR(m_tmp)) { 2613 ntfs_error(vol->sb, "Failed to map allocated extent mft record 0x%llx.", 2614 bit); 2615 err = PTR_ERR(m_tmp); 2616 if (forced_reserved_record) { 2617 m->base_mft_record = 0; 2618 m->flags |= MFT_RECORD_IN_USE; 2619 } else { 2620 /* Set the mft record itself not in use. */ 2621 m->flags &= cpu_to_le16(~le16_to_cpu(MFT_RECORD_IN_USE)); 2622 } 2623 /* Make sure the mft record is written out to disk. */ 2624 ntfs_mft_mark_dirty(folio); 2625 folio_unlock(folio); 2626 kunmap_local(m); 2627 folio_put(folio); 2628 goto undo_mftbmp_alloc; 2629 } 2630 2631 /* 2632 * Make sure the allocated mft record is written out to disk. 2633 * No need to set the inode dirty because the caller is going 2634 * to do that anyway after finishing with the new extent mft 2635 * record (e.g. at a minimum a new attribute will be added to 2636 * the mft record. 2637 */ 2638 ntfs_mft_mark_dirty(folio); 2639 folio_unlock(folio); 2640 /* 2641 * Need to unmap the page since map_extent_mft_record() mapped 2642 * it as well so we have it mapped twice at the moment. 2643 */ 2644 kunmap_local(m); 2645 folio_put(folio); 2646 } else { 2647 /* 2648 * Manually map, pin, and lock the mft record as we already 2649 * have its page mapped and it is very easy to do. 2650 */ 2651 (*ni)->seq_no = le16_to_cpu(m->sequence_number); 2652 /* 2653 * Make sure the allocated mft record is written out to disk. 2654 * NOTE: We do not set the ntfs inode dirty because this would 2655 * fail in ntfs_write_inode() because the inode does not have a 2656 * standard information attribute yet. Also, there is no need 2657 * to set the inode dirty because the caller is going to do 2658 * that anyway after finishing with the new mft record (e.g. at 2659 * a minimum some new attributes will be added to the mft 2660 * record. 2661 */ 2662 2663 (*ni)->mrec = kmemdup(m, vol->mft_record_size, GFP_NOFS); 2664 if (!(*ni)->mrec) { 2665 folio_unlock(folio); 2666 kunmap_local(m); 2667 folio_put(folio); 2668 err = -ENOMEM; 2669 goto undo_mftbmp_alloc; 2670 } 2671 2672 post_read_mst_fixup((struct ntfs_record *)(*ni)->mrec, vol->mft_record_size); 2673 ntfs_mft_mark_dirty(folio); 2674 folio_unlock(folio); 2675 (*ni)->folio = folio; 2676 (*ni)->folio_ofs = ofs; 2677 atomic_inc(&(*ni)->count); 2678 /* Update the default mft allocation position. */ 2679 vol->mft_data_pos = bit + 1; 2680 } 2681 if (!base_ni || base_ni->mft_no != FILE_MFT) 2682 mutex_unlock(&mft_ni->mrec_lock); 2683 memalloc_nofs_restore(memalloc_flags); 2684 2685 /* 2686 * Return the opened, allocated inode of the allocated mft record as 2687 * well as the mapped, pinned, and locked mft record. 2688 */ 2689 ntfs_debug("Returning opened, allocated %sinode 0x%llx.", 2690 base_ni ? "extent " : "", bit); 2691 (*ni)->mft_no = bit; 2692 if (ni_mrec) 2693 *ni_mrec = (*ni)->mrec; 2694 if (!forced_reserved_record) 2695 ntfs_dec_free_mft_records(vol, 1); 2696 return 0; 2697 undo_data_init: 2698 write_lock_irqsave(&mft_ni->size_lock, flags); 2699 mft_ni->initialized_size = old_data_initialized; 2700 i_size_write(vol->mft_ino, old_data_size); 2701 write_unlock_irqrestore(&mft_ni->size_lock, flags); 2702 goto undo_mftbmp_alloc_nolock; 2703 undo_mftbmp_alloc: 2704 if (!base_ni || base_ni->mft_no != FILE_MFT) 2705 down_write(&vol->mftbmp_lock); 2706 undo_mftbmp_alloc_nolock: 2707 if (!forced_reserved_record && ntfs_bitmap_clear_bit(vol->mftbmp_ino, bit)) { 2708 ntfs_error(vol->sb, "Failed to clear bit in mft bitmap.%s", es); 2709 NVolSetErrors(vol); 2710 } 2711 if ((from_reserve || reserve_created) && 2712 vol->mft_record_reserve_pos == bit + 1) 2713 vol->mft_record_reserve_pos = bit; 2714 if (!base_ni || base_ni->mft_no != FILE_MFT) 2715 up_write(&vol->mftbmp_lock); 2716 err_out: 2717 if (!base_ni || base_ni->mft_no != FILE_MFT) 2718 mutex_unlock(&mft_ni->mrec_lock); 2719 memalloc_nofs_restore(memalloc_flags); 2720 return err; 2721 max_err_out: 2722 ntfs_warning(vol->sb, 2723 "Cannot allocate mft record because the maximum number of inodes (2^32) has already been reached."); 2724 if (!base_ni || base_ni->mft_no != FILE_MFT) { 2725 up_write(&vol->mftbmp_lock); 2726 mutex_unlock(&mft_ni->mrec_lock); 2727 } 2728 memalloc_nofs_restore(memalloc_flags); 2729 return -ENOSPC; 2730 } 2731 2732 /* 2733 * ntfs_mft_record_free - free an mft record on an ntfs volume 2734 * @vol: volume on which to free the mft record 2735 * @ni: open ntfs inode of the mft record to free 2736 * 2737 * Free the mft record of the open inode @ni on the mounted ntfs volume @vol. 2738 * Note that this function calls ntfs_inode_close() internally and hence you 2739 * cannot use the pointer @ni any more after this function returns success. 2740 * 2741 * On success return 0 and on error return -1 with errno set to the error code. 2742 */ 2743 int ntfs_mft_record_free(struct ntfs_volume *vol, struct ntfs_inode *ni) 2744 { 2745 u64 mft_no; 2746 int err; 2747 u16 seq_no; 2748 __le16 old_seq_no; 2749 __le64 old_base_mft_record; 2750 struct mft_record *ni_mrec; 2751 unsigned int memalloc_flags; 2752 struct ntfs_inode *base_ni; 2753 bool keep_reserved; 2754 2755 if (!vol || !ni) 2756 return -EINVAL; 2757 2758 ntfs_debug("Entering for inode 0x%llx.\n", (long long)ni->mft_no); 2759 2760 ni_mrec = map_mft_record(ni); 2761 if (IS_ERR(ni_mrec)) 2762 return -EIO; 2763 2764 /* Cache the mft reference for later. */ 2765 mft_no = ni->mft_no; 2766 if (likely(ni->nr_extents >= 0)) 2767 base_ni = ni; 2768 else 2769 base_ni = ni->ext.base_ntfs_ino; 2770 keep_reserved = mft_no >= FILE_reserved12 && 2771 mft_no <= FILE_reserved15 && 2772 base_ni->mft_no == FILE_MFT; 2773 2774 old_base_mft_record = ni_mrec->base_mft_record; 2775 if (keep_reserved) { 2776 /* Restore the special, unnamed form used by reserved records. */ 2777 ni_mrec->base_mft_record = 0; 2778 ni_mrec->flags |= MFT_RECORD_IN_USE; 2779 } else { 2780 /* Mark the mft record as not in use. */ 2781 ni_mrec->flags &= ~MFT_RECORD_IN_USE; 2782 } 2783 2784 /* Increment the sequence number, skipping zero, if it is not zero. */ 2785 old_seq_no = ni_mrec->sequence_number; 2786 seq_no = le16_to_cpu(old_seq_no); 2787 if (seq_no == 0xffff) 2788 seq_no = 1; 2789 else if (seq_no) 2790 seq_no++; 2791 ni_mrec->sequence_number = cpu_to_le16(seq_no); 2792 2793 down_read(&NTFS_I(vol->mft_ino)->runlist.lock); 2794 err = ntfs_get_block_mft_record(NTFS_I(vol->mft_ino), ni); 2795 up_read(&NTFS_I(vol->mft_ino)->runlist.lock); 2796 if (err) { 2797 unmap_mft_record(ni); 2798 return err; 2799 } 2800 2801 /* 2802 * Set the ntfs inode dirty and write it out. We do not need to worry 2803 * about the base inode here since whatever caused the extent mft 2804 * record to be freed is guaranteed to do it already. 2805 */ 2806 NInoSetDirty(ni); 2807 err = write_mft_record(ni, ni_mrec, 0); 2808 if (err) 2809 goto sync_rollback; 2810 2811 if (keep_reserved) { 2812 unmap_mft_record(ni); 2813 return 0; 2814 } 2815 2816 /* Clear the bit in the $MFT/$BITMAP corresponding to this record. */ 2817 memalloc_flags = memalloc_nofs_save(); 2818 if (base_ni->mft_no != FILE_MFT) 2819 down_write(&vol->mftbmp_lock); 2820 err = ntfs_bitmap_clear_bit(vol->mftbmp_ino, mft_no); 2821 if (!err) 2822 ntfs_inc_free_mft_records(vol, 1); 2823 if (!err && base_ni->mft_no == FILE_MFT && 2824 mft_no + 1 == vol->mft_record_reserve_pos && 2825 mft_no < vol->mft_record_reserve_end) 2826 vol->mft_record_reserve_pos = mft_no; 2827 if (base_ni->mft_no != FILE_MFT) 2828 up_write(&vol->mftbmp_lock); 2829 memalloc_nofs_restore(memalloc_flags); 2830 if (err) 2831 goto bitmap_rollback; 2832 unmap_mft_record(ni); 2833 return 0; 2834 2835 /* Rollback what we did... */ 2836 bitmap_rollback: 2837 memalloc_flags = memalloc_nofs_save(); 2838 if (base_ni->mft_no != FILE_MFT) 2839 down_write(&vol->mftbmp_lock); 2840 if (ntfs_bitmap_set_bit(vol->mftbmp_ino, mft_no)) 2841 ntfs_error(vol->sb, "ntfs_bitmap_set_bit failed in bitmap_rollback\n"); 2842 if (base_ni->mft_no != FILE_MFT) 2843 up_write(&vol->mftbmp_lock); 2844 memalloc_nofs_restore(memalloc_flags); 2845 sync_rollback: 2846 ntfs_error(vol->sb, 2847 "Eeek! Rollback failed in %s. Leaving inconsistent metadata!\n", __func__); 2848 ni_mrec->flags |= MFT_RECORD_IN_USE; 2849 ni_mrec->sequence_number = old_seq_no; 2850 ni_mrec->base_mft_record = old_base_mft_record; 2851 NInoSetDirty(ni); 2852 write_mft_record(ni, ni_mrec, 0); 2853 unmap_mft_record(ni); 2854 return err; 2855 } 2856 2857 static s64 lcn_from_index(struct ntfs_volume *vol, struct ntfs_inode *ni, 2858 unsigned long index) 2859 { 2860 s64 vcn; 2861 s64 lcn; 2862 2863 vcn = ntfs_pidx_to_cluster(vol, index); 2864 2865 down_read(&ni->runlist.lock); 2866 lcn = ntfs_attr_vcn_to_lcn_nolock(ni, vcn, false); 2867 up_read(&ni->runlist.lock); 2868 2869 return lcn; 2870 } 2871 2872 /* 2873 * ntfs_write_mft_block - Write back a folio containing MFT records 2874 * @folio: The folio to write back (contains one or more MFT records) 2875 * @wbc: Writeback control structure 2876 * 2877 * This function is called as part of the address_space_operations 2878 * .writepages implementation for the $MFT inode (or $MFTMirr). 2879 * It handles writing one folio (normally 4KiB page) worth of MFT records 2880 * to the underlying block device. 2881 * 2882 * Return: 0 on success, or -errno on error. 2883 */ 2884 static int ntfs_write_mft_block(struct folio *folio, struct writeback_control *wbc) 2885 { 2886 struct address_space *mapping = folio->mapping; 2887 struct inode *vi = mapping->host; 2888 struct ntfs_inode *ni = NTFS_I(vi); 2889 struct ntfs_volume *vol = ni->vol; 2890 u8 *kaddr; 2891 struct ntfs_inode **locked_nis __free(kfree) = kmalloc_objs(struct ntfs_inode *, 2892 PAGE_SIZE / NTFS_BLOCK_SIZE, 2893 GFP_NOFS); 2894 int nr_locked_nis = 0, err = 0, mft_ofs, prev_mft_ofs; 2895 struct inode **ref_inos __free(kfree) = kmalloc_objs(struct inode *, 2896 PAGE_SIZE / NTFS_BLOCK_SIZE, 2897 GFP_NOFS); 2898 int nr_ref_inos = 0; 2899 struct bio *bio = NULL; 2900 u64 mft_no; 2901 struct ntfs_inode *tni; 2902 s64 lcn; 2903 s64 vcn = ntfs_pidx_to_cluster(vol, folio->index); 2904 s64 end_vcn = ntfs_bytes_to_cluster(vol, ni->allocated_size); 2905 unsigned int folio_sz; 2906 loff_t i_size = i_size_read(vi); 2907 2908 ntfs_debug("Entering for inode 0x%llx, attribute type 0x%x, folio index 0x%lx.", 2909 ni->mft_no, ni->type, folio->index); 2910 2911 if (!locked_nis || !ref_inos) { 2912 folio_redirty_for_writepage(wbc, folio); 2913 folio_unlock(folio); 2914 return -ENOMEM; 2915 } 2916 2917 /* We have to zero every time due to mmap-at-end-of-file. */ 2918 if (folio->index >= (i_size >> folio_shift(folio))) 2919 /* The page straddles i_size. */ 2920 folio_zero_segment(folio, 2921 offset_in_folio(folio, i_size), 2922 folio_size(folio)); 2923 2924 lcn = lcn_from_index(vol, ni, folio->index); 2925 if (lcn <= LCN_HOLE) { 2926 folio_start_writeback(folio); 2927 folio_unlock(folio); 2928 folio_end_writeback(folio); 2929 return -EIO; 2930 } 2931 2932 /* Map folio so we can access its contents. */ 2933 kaddr = kmap_local_folio(folio, 0); 2934 /* Clear the page uptodate flag whilst the mst fixups are applied. */ 2935 folio_clear_uptodate(folio); 2936 2937 for (mft_ofs = 0; mft_ofs < PAGE_SIZE && vcn < end_vcn; 2938 mft_ofs += vol->mft_record_size) { 2939 /* Get the mft record number. */ 2940 mft_no = (((s64)folio->index << PAGE_SHIFT) + mft_ofs) >> 2941 vol->mft_record_size_bits; 2942 vcn = ntfs_mft_no_to_cluster(vol, mft_no); 2943 /* Check whether to write this mft record. */ 2944 tni = NULL; 2945 if (ntfs_may_write_mft_record(vol, mft_no, 2946 (struct mft_record *)(kaddr + mft_ofs), 2947 &tni, &ref_inos[nr_ref_inos])) { 2948 unsigned int mft_record_off = 0; 2949 s64 vcn_off = vcn; 2950 s64 rl_len = 0; 2951 2952 /* 2953 * The record should be written. If a locked ntfs 2954 * inode was returned, add it to the array of locked 2955 * ntfs inodes. 2956 */ 2957 if (tni) 2958 locked_nis[nr_locked_nis++] = tni; 2959 else if (ref_inos[nr_ref_inos]) 2960 nr_ref_inos++; 2961 2962 if (bio && (mft_ofs != prev_mft_ofs + vol->mft_record_size)) { 2963 flush_bio: 2964 bio->bi_end_io = ntfs_bio_end_io; 2965 submit_bio(bio); 2966 bio = NULL; 2967 } 2968 2969 if (vol->cluster_size < folio_size(folio)) { 2970 struct runlist_element *rl; 2971 2972 down_write(&ni->runlist.lock); 2973 rl = ntfs_attr_vcn_to_rl(ni, vcn_off, &lcn); 2974 if (!IS_ERR(rl)) 2975 rl_len = rl->length - (vcn_off - rl->vcn); 2976 up_write(&ni->runlist.lock); 2977 if (IS_ERR(rl) || lcn < 0) { 2978 err = -EIO; 2979 goto unm_done; 2980 } 2981 2982 if (bio && 2983 (bio_end_sector(bio) >> (vol->cluster_size_bits - 9)) != 2984 lcn) { 2985 bio->bi_end_io = ntfs_bio_end_io; 2986 submit_bio(bio); 2987 bio = NULL; 2988 } 2989 } 2990 2991 if (!bio) { 2992 unsigned int off; 2993 2994 off = ((mft_no << vol->mft_record_size_bits) + 2995 mft_record_off) & vol->cluster_size_mask; 2996 2997 bio = bio_alloc(vol->sb->s_bdev, 1, REQ_OP_WRITE, 2998 GFP_NOIO); 2999 bio->bi_iter.bi_sector = 3000 ntfs_bytes_to_bio_sector( 3001 ntfs_cluster_to_bytes(vol, lcn) + off); 3002 } 3003 3004 if (vol->cluster_size == NTFS_BLOCK_SIZE && 3005 (mft_record_off || 3006 rl_len == 1 || 3007 mft_ofs + NTFS_BLOCK_SIZE >= PAGE_SIZE)) 3008 folio_sz = NTFS_BLOCK_SIZE; 3009 else 3010 folio_sz = vol->mft_record_size; 3011 if (!bio_add_folio(bio, folio, folio_sz, 3012 mft_ofs + mft_record_off)) { 3013 err = -EIO; 3014 bio_put(bio); 3015 goto unm_done; 3016 } 3017 mft_record_off += folio_sz; 3018 3019 if (mft_record_off != vol->mft_record_size) { 3020 vcn_off++; 3021 goto flush_bio; 3022 } 3023 prev_mft_ofs = mft_ofs; 3024 3025 if (mft_no < vol->mftmirr_size) { 3026 int sub_err = ntfs_sync_mft_mirror(vol, mft_no, 3027 (struct mft_record *)(kaddr + mft_ofs)); 3028 3029 if (unlikely(sub_err) && !err) 3030 err = sub_err; 3031 } 3032 } else if (ref_inos[nr_ref_inos]) 3033 nr_ref_inos++; 3034 } 3035 3036 if (bio) { 3037 bio->bi_end_io = ntfs_bio_end_io; 3038 submit_bio(bio); 3039 } 3040 unm_done: 3041 folio_mark_uptodate(folio); 3042 kunmap_local(kaddr); 3043 3044 folio_start_writeback(folio); 3045 folio_unlock(folio); 3046 folio_end_writeback(folio); 3047 3048 /* Unlock any locked inodes. */ 3049 while (nr_locked_nis-- > 0) { 3050 struct ntfs_inode *base_tni; 3051 3052 tni = locked_nis[nr_locked_nis]; 3053 mutex_unlock(&tni->mrec_lock); 3054 3055 /* Get the base inode. */ 3056 mutex_lock(&tni->extent_lock); 3057 if (tni->nr_extents >= 0) 3058 base_tni = tni; 3059 else 3060 base_tni = tni->ext.base_ntfs_ino; 3061 mutex_unlock(&tni->extent_lock); 3062 ntfs_debug("Unlocking %s inode 0x%llx.", 3063 tni == base_tni ? "base" : "extent", 3064 tni->mft_no); 3065 atomic_dec(&tni->count); 3066 iput(VFS_I(base_tni)); 3067 } 3068 3069 /* Dropping deferred references */ 3070 while (nr_ref_inos-- > 0) { 3071 if (ref_inos[nr_ref_inos]) 3072 iput(ref_inos[nr_ref_inos]); 3073 } 3074 3075 if (unlikely(err && err != -ENOMEM)) 3076 NVolSetErrors(vol); 3077 if (likely(!err)) 3078 ntfs_debug("Done."); 3079 return err; 3080 } 3081 3082 /* 3083 * ntfs_mft_writepages - Write back dirty folios for the $MFT inode 3084 * @mapping: address space of the $MFT inode 3085 * @wbc: writeback control 3086 * 3087 * Writeback iterator for MFT records. Iterates over dirty folios and 3088 * delegates actual writing to ntfs_write_mft_block() for each folio. 3089 * Called from the address_space_operations .writepages vector of the 3090 * $MFT inode. 3091 * 3092 * Returns 0 on success, or the first error encountered. 3093 */ 3094 int ntfs_mft_writepages(struct address_space *mapping, 3095 struct writeback_control *wbc) 3096 { 3097 struct folio *folio = NULL; 3098 int error; 3099 3100 if (NVolShutdown(NTFS_I(mapping->host)->vol)) 3101 return -EIO; 3102 3103 while ((folio = writeback_iter(mapping, wbc, folio, &error))) 3104 error = ntfs_write_mft_block(folio, wbc); 3105 return error; 3106 } 3107 3108 void ntfs_mft_mark_dirty(struct folio *folio) 3109 { 3110 iomap_dirty_folio(folio->mapping, folio); 3111 } 3112