1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * This file is part of UBIFS. 4 * 5 * Copyright (C) 2006-2008 Nokia Corporation. 6 * 7 * Authors: Artem Bityutskiy (Битюцкий Артём) 8 * Adrian Hunter 9 */ 10 11 /* 12 * This file implements UBIFS initialization and VFS superblock operations. Some 13 * initialization stuff which is rather large and complex is placed at 14 * corresponding subsystems, but most of it is here. 15 */ 16 17 #include <linux/init.h> 18 #include <linux/slab.h> 19 #include <linux/module.h> 20 #include <linux/ctype.h> 21 #include <linux/kthread.h> 22 #include <linux/fs_context.h> 23 #include <linux/fs_parser.h> 24 #include <linux/seq_file.h> 25 #include <linux/math64.h> 26 #include <linux/writeback.h> 27 #include "ubifs.h" 28 29 static int ubifs_default_version_set(const char *val, const struct kernel_param *kp) 30 { 31 int n = 0, ret; 32 33 ret = kstrtoint(val, 10, &n); 34 if (ret != 0 || n < 4 || n > UBIFS_FORMAT_VERSION) 35 return -EINVAL; 36 return param_set_int(val, kp); 37 } 38 39 static const struct kernel_param_ops ubifs_default_version_ops = { 40 .set = ubifs_default_version_set, 41 .get = param_get_int, 42 }; 43 44 int ubifs_default_version = UBIFS_FORMAT_VERSION; 45 module_param_cb(default_version, &ubifs_default_version_ops, &ubifs_default_version, 0600); 46 47 /* 48 * Maximum amount of memory we may 'kmalloc()' without worrying that we are 49 * allocating too much. 50 */ 51 #define UBIFS_KMALLOC_OK (128*1024) 52 53 /* Slab cache for UBIFS inodes */ 54 static struct kmem_cache *ubifs_inode_slab; 55 56 /* UBIFS TNC shrinker description */ 57 static struct shrinker *ubifs_shrinker_info; 58 59 /** 60 * validate_inode - validate inode. 61 * @c: UBIFS file-system description object 62 * @inode: the inode to validate 63 * 64 * This is a helper function for 'ubifs_iget()' which validates various fields 65 * of a newly built inode to make sure they contain sane values and prevent 66 * possible vulnerabilities. Returns zero if the inode is all right and 67 * a non-zero error code if not. 68 */ 69 static int validate_inode(struct ubifs_info *c, const struct inode *inode) 70 { 71 int err; 72 const struct ubifs_inode *ui = ubifs_inode(inode); 73 74 if (inode->i_size > c->max_inode_sz) { 75 ubifs_err(c, "inode is too large (%lld)", 76 (long long)inode->i_size); 77 return 1; 78 } 79 80 if (ui->compr_type >= UBIFS_COMPR_TYPES_CNT) { 81 ubifs_err(c, "unknown compression type %d", ui->compr_type); 82 return 2; 83 } 84 85 if (ui->xattr_names + ui->xattr_cnt > XATTR_LIST_MAX) 86 return 3; 87 88 if (ui->data_len < 0 || ui->data_len > UBIFS_MAX_INO_DATA) 89 return 4; 90 91 if (ui->xattr && !S_ISREG(inode->i_mode)) 92 return 5; 93 94 if (!ubifs_compr_present(c, ui->compr_type)) { 95 ubifs_warn(c, "inode %lu uses '%s' compression, but it was not compiled in", 96 inode->i_ino, ubifs_compr_name(c, ui->compr_type)); 97 } 98 99 err = dbg_check_dir(c, inode); 100 return err; 101 } 102 103 struct inode *ubifs_iget(struct super_block *sb, unsigned long inum) 104 { 105 int err; 106 union ubifs_key key; 107 struct ubifs_ino_node *ino; 108 struct ubifs_info *c = sb->s_fs_info; 109 struct inode *inode; 110 struct ubifs_inode *ui; 111 112 dbg_gen("inode %lu", inum); 113 114 inode = iget_locked(sb, inum); 115 if (!inode) 116 return ERR_PTR(-ENOMEM); 117 if (!(inode_state_read_once(inode) & I_NEW)) 118 return inode; 119 ui = ubifs_inode(inode); 120 121 ino = kmalloc(UBIFS_MAX_INO_NODE_SZ, GFP_NOFS); 122 if (!ino) { 123 err = -ENOMEM; 124 goto out; 125 } 126 127 ino_key_init(c, &key, inode->i_ino); 128 129 err = ubifs_tnc_lookup(c, &key, ino); 130 if (err) 131 goto out_ino; 132 133 inode->i_flags |= S_NOCMTIME; 134 135 if (!IS_ENABLED(CONFIG_UBIFS_ATIME_SUPPORT)) 136 inode->i_flags |= S_NOATIME; 137 138 set_nlink(inode, le32_to_cpu(ino->nlink)); 139 i_uid_write(inode, le32_to_cpu(ino->uid)); 140 i_gid_write(inode, le32_to_cpu(ino->gid)); 141 inode_set_atime(inode, (int64_t)le64_to_cpu(ino->atime_sec), 142 le32_to_cpu(ino->atime_nsec)); 143 inode_set_mtime(inode, (int64_t)le64_to_cpu(ino->mtime_sec), 144 le32_to_cpu(ino->mtime_nsec)); 145 inode_set_ctime(inode, (int64_t)le64_to_cpu(ino->ctime_sec), 146 le32_to_cpu(ino->ctime_nsec)); 147 inode->i_mode = le32_to_cpu(ino->mode); 148 inode->i_size = le64_to_cpu(ino->size); 149 150 ui->data_len = le32_to_cpu(ino->data_len); 151 ui->flags = le32_to_cpu(ino->flags); 152 ui->compr_type = le16_to_cpu(ino->compr_type); 153 ui->creat_sqnum = le64_to_cpu(ino->creat_sqnum); 154 ui->xattr_cnt = le32_to_cpu(ino->xattr_cnt); 155 ui->xattr_size = le32_to_cpu(ino->xattr_size); 156 ui->xattr_names = le32_to_cpu(ino->xattr_names); 157 ui->synced_i_size = ui->ui_size = inode->i_size; 158 159 ui->xattr = (ui->flags & UBIFS_XATTR_FL) ? 1 : 0; 160 161 err = validate_inode(c, inode); 162 if (err) 163 goto out_invalid; 164 165 switch (inode->i_mode & S_IFMT) { 166 case S_IFREG: 167 inode->i_mapping->a_ops = &ubifs_file_address_operations; 168 inode->i_op = &ubifs_file_inode_operations; 169 inode->i_fop = &ubifs_file_operations; 170 if (ui->xattr) { 171 ui->data = kmalloc(ui->data_len + 1, GFP_NOFS); 172 if (!ui->data) { 173 err = -ENOMEM; 174 goto out_ino; 175 } 176 memcpy(ui->data, ino->data, ui->data_len); 177 ((char *)ui->data)[ui->data_len] = '\0'; 178 } else if (ui->data_len != 0) { 179 err = 10; 180 goto out_invalid; 181 } 182 break; 183 case S_IFDIR: 184 inode->i_op = &ubifs_dir_inode_operations; 185 inode->i_fop = &ubifs_dir_operations; 186 if (ui->data_len != 0) { 187 err = 11; 188 goto out_invalid; 189 } 190 break; 191 case S_IFLNK: 192 inode->i_op = &ubifs_symlink_inode_operations; 193 if (ui->data_len <= 0 || ui->data_len > UBIFS_MAX_INO_DATA) { 194 err = 12; 195 goto out_invalid; 196 } 197 ui->data = kmalloc(ui->data_len + 1, GFP_NOFS); 198 if (!ui->data) { 199 err = -ENOMEM; 200 goto out_ino; 201 } 202 memcpy(ui->data, ino->data, ui->data_len); 203 ((char *)ui->data)[ui->data_len] = '\0'; 204 break; 205 case S_IFBLK: 206 case S_IFCHR: 207 { 208 dev_t rdev; 209 union ubifs_dev_desc *dev; 210 211 ui->data = kmalloc_obj(union ubifs_dev_desc, GFP_NOFS); 212 if (!ui->data) { 213 err = -ENOMEM; 214 goto out_ino; 215 } 216 217 dev = (union ubifs_dev_desc *)ino->data; 218 if (ui->data_len == sizeof(dev->new)) 219 rdev = new_decode_dev(le32_to_cpu(dev->new)); 220 else if (ui->data_len == sizeof(dev->huge)) 221 rdev = huge_decode_dev(le64_to_cpu(dev->huge)); 222 else { 223 err = 13; 224 goto out_invalid; 225 } 226 memcpy(ui->data, ino->data, ui->data_len); 227 inode->i_op = &ubifs_file_inode_operations; 228 init_special_inode(inode, inode->i_mode, rdev); 229 break; 230 } 231 case S_IFSOCK: 232 case S_IFIFO: 233 inode->i_op = &ubifs_file_inode_operations; 234 init_special_inode(inode, inode->i_mode, 0); 235 if (ui->data_len != 0) { 236 err = 14; 237 goto out_invalid; 238 } 239 break; 240 default: 241 err = 15; 242 goto out_invalid; 243 } 244 245 kfree(ino); 246 ubifs_set_inode_flags(inode); 247 unlock_new_inode(inode); 248 return inode; 249 250 out_invalid: 251 ubifs_err(c, "inode %lu validation failed, error %d", inode->i_ino, err); 252 ubifs_dump_node(c, ino, UBIFS_MAX_INO_NODE_SZ); 253 ubifs_dump_inode(c, inode); 254 err = -EINVAL; 255 out_ino: 256 kfree(ino); 257 out: 258 ubifs_err(c, "failed to read inode %lu, error %d", inode->i_ino, err); 259 iget_failed(inode); 260 return ERR_PTR(err); 261 } 262 263 static struct inode *ubifs_alloc_inode(struct super_block *sb) 264 { 265 struct ubifs_inode *ui; 266 267 ui = alloc_inode_sb(sb, ubifs_inode_slab, GFP_NOFS); 268 if (!ui) 269 return NULL; 270 271 memset((void *)ui + sizeof(struct inode), 0, 272 sizeof(struct ubifs_inode) - sizeof(struct inode)); 273 mutex_init(&ui->ui_mutex); 274 init_rwsem(&ui->xattr_sem); 275 spin_lock_init(&ui->ui_lock); 276 return &ui->vfs_inode; 277 }; 278 279 static void ubifs_free_inode(struct inode *inode) 280 { 281 struct ubifs_inode *ui = ubifs_inode(inode); 282 283 kfree(ui->data); 284 fscrypt_free_inode(inode); 285 286 kmem_cache_free(ubifs_inode_slab, ui); 287 } 288 289 /* 290 * Note, Linux write-back code calls this without 'i_mutex'. 291 */ 292 static int ubifs_write_inode(struct inode *inode, struct writeback_control *wbc) 293 { 294 int err = 0; 295 struct ubifs_info *c = inode->i_sb->s_fs_info; 296 struct ubifs_inode *ui = ubifs_inode(inode); 297 298 ubifs_assert(c, !ui->xattr); 299 if (is_bad_inode(inode)) 300 return 0; 301 302 mutex_lock(&ui->ui_mutex); 303 /* 304 * Due to races between write-back forced by budgeting 305 * (see 'sync_some_inodes()') and background write-back, the inode may 306 * have already been synchronized, do not do this again. This might 307 * also happen if it was synchronized in an VFS operation, e.g. 308 * 'ubifs_link()'. 309 */ 310 if (!ui->dirty) { 311 mutex_unlock(&ui->ui_mutex); 312 return 0; 313 } 314 315 /* 316 * As an optimization, do not write orphan inodes to the media just 317 * because this is not needed. 318 */ 319 dbg_gen("inode %lu, mode %#x, nlink %u", 320 inode->i_ino, (int)inode->i_mode, inode->i_nlink); 321 if (inode->i_nlink) { 322 err = ubifs_jnl_write_inode(c, inode); 323 if (err) 324 ubifs_err(c, "can't write inode %lu, error %d", 325 inode->i_ino, err); 326 else 327 err = dbg_check_inode_size(c, inode, ui->ui_size); 328 } 329 330 ui->dirty = 0; 331 mutex_unlock(&ui->ui_mutex); 332 ubifs_release_dirty_inode_budget(c, ui); 333 return err; 334 } 335 336 static int ubifs_drop_inode(struct inode *inode) 337 { 338 int drop = inode_generic_drop(inode); 339 340 if (!drop) 341 drop = fscrypt_drop_inode(inode); 342 343 return drop; 344 } 345 346 static void ubifs_evict_inode(struct inode *inode) 347 { 348 int err; 349 struct ubifs_info *c = inode->i_sb->s_fs_info; 350 struct ubifs_inode *ui = ubifs_inode(inode); 351 352 if (ui->xattr) 353 /* 354 * Extended attribute inode deletions are fully handled in 355 * 'ubifs_removexattr()'. These inodes are special and have 356 * limited usage, so there is nothing to do here. 357 */ 358 goto out; 359 360 dbg_gen("inode %lu, mode %#x", inode->i_ino, (int)inode->i_mode); 361 ubifs_assert(c, !icount_read(inode)); 362 363 truncate_inode_pages_final(&inode->i_data); 364 365 if (inode->i_nlink) 366 goto done; 367 368 if (is_bad_inode(inode)) 369 goto out; 370 371 ui->ui_size = inode->i_size = 0; 372 err = ubifs_jnl_delete_inode(c, inode); 373 if (err) 374 /* 375 * Worst case we have a lost orphan inode wasting space, so a 376 * simple error message is OK here. 377 */ 378 ubifs_err(c, "can't delete inode %lu, error %d", 379 inode->i_ino, err); 380 381 out: 382 if (ui->dirty) 383 ubifs_release_dirty_inode_budget(c, ui); 384 else { 385 /* We've deleted something - clean the "no space" flags */ 386 c->bi.nospace = c->bi.nospace_rp = 0; 387 smp_wmb(); 388 } 389 done: 390 clear_inode(inode); 391 fscrypt_put_encryption_info(inode); 392 } 393 394 static void ubifs_dirty_inode(struct inode *inode, int flags) 395 { 396 struct ubifs_info *c = inode->i_sb->s_fs_info; 397 struct ubifs_inode *ui = ubifs_inode(inode); 398 399 ubifs_assert(c, mutex_is_locked(&ui->ui_mutex)); 400 if (!ui->dirty) { 401 ui->dirty = 1; 402 dbg_gen("inode %lu", inode->i_ino); 403 } 404 } 405 406 static int ubifs_statfs(struct dentry *dentry, struct kstatfs *buf) 407 { 408 struct ubifs_info *c = dentry->d_sb->s_fs_info; 409 unsigned long long free; 410 __le32 *uuid = (__le32 *)c->uuid; 411 412 free = ubifs_get_free_space(c); 413 dbg_gen("free space %lld bytes (%lld blocks)", 414 free, free >> UBIFS_BLOCK_SHIFT); 415 416 buf->f_type = UBIFS_SUPER_MAGIC; 417 buf->f_bsize = UBIFS_BLOCK_SIZE; 418 buf->f_blocks = c->block_cnt; 419 buf->f_bfree = free >> UBIFS_BLOCK_SHIFT; 420 if (free > c->report_rp_size) 421 buf->f_bavail = (free - c->report_rp_size) >> UBIFS_BLOCK_SHIFT; 422 else 423 buf->f_bavail = 0; 424 buf->f_files = 0; 425 buf->f_ffree = 0; 426 buf->f_namelen = UBIFS_MAX_NLEN; 427 buf->f_fsid.val[0] = le32_to_cpu(uuid[0]) ^ le32_to_cpu(uuid[2]); 428 buf->f_fsid.val[1] = le32_to_cpu(uuid[1]) ^ le32_to_cpu(uuid[3]); 429 ubifs_assert(c, buf->f_bfree <= c->block_cnt); 430 return 0; 431 } 432 433 static int ubifs_show_options(struct seq_file *s, struct dentry *root) 434 { 435 struct ubifs_info *c = root->d_sb->s_fs_info; 436 437 if (c->mount_opts.unmount_mode == 2) 438 seq_puts(s, ",fast_unmount"); 439 else if (c->mount_opts.unmount_mode == 1) 440 seq_puts(s, ",norm_unmount"); 441 442 if (c->mount_opts.bulk_read == 2) 443 seq_puts(s, ",bulk_read"); 444 else if (c->mount_opts.bulk_read == 1) 445 seq_puts(s, ",no_bulk_read"); 446 447 if (c->mount_opts.chk_data_crc == 2) 448 seq_puts(s, ",chk_data_crc"); 449 else if (c->mount_opts.chk_data_crc == 1) 450 seq_puts(s, ",no_chk_data_crc"); 451 452 if (c->mount_opts.override_compr) { 453 seq_printf(s, ",compr=%s", 454 ubifs_compr_name(c, c->mount_opts.compr_type)); 455 } 456 457 seq_printf(s, ",assert=%s", ubifs_assert_action_name(c)); 458 seq_printf(s, ",ubi=%d,vol=%d", c->vi.ubi_num, c->vi.vol_id); 459 460 return 0; 461 } 462 463 static int ubifs_sync_fs(struct super_block *sb, int wait) 464 { 465 int i, err; 466 struct ubifs_info *c = sb->s_fs_info; 467 468 /* 469 * Zero @wait is just an advisory thing to help the file system shove 470 * lots of data into the queues, and there will be the second 471 * '->sync_fs()' call, with non-zero @wait. 472 */ 473 if (!wait) 474 return 0; 475 476 /* 477 * Synchronize write buffers, because 'ubifs_run_commit()' does not 478 * do this if it waits for an already running commit. 479 */ 480 for (i = 0; i < c->jhead_cnt; i++) { 481 err = ubifs_wbuf_sync(&c->jheads[i].wbuf); 482 if (err) 483 return err; 484 } 485 486 /* 487 * Strictly speaking, it is not necessary to commit the journal here, 488 * synchronizing write-buffers would be enough. But committing makes 489 * UBIFS free space predictions much more accurate, so we want to let 490 * the user be able to get more accurate results of 'statfs()' after 491 * they synchronize the file system. 492 */ 493 err = ubifs_run_commit(c); 494 if (err) 495 return err; 496 497 return ubi_sync(c->vi.ubi_num); 498 } 499 500 /** 501 * init_constants_early - initialize UBIFS constants. 502 * @c: UBIFS file-system description object 503 * 504 * This function initialize UBIFS constants which do not need the superblock to 505 * be read. It also checks that the UBI volume satisfies basic UBIFS 506 * requirements. Returns zero in case of success and a negative error code in 507 * case of failure. 508 */ 509 static int init_constants_early(struct ubifs_info *c) 510 { 511 if (c->vi.corrupted) { 512 ubifs_warn(c, "UBI volume is corrupted - read-only mode"); 513 c->ro_media = 1; 514 } 515 516 if (c->di.ro_mode) { 517 ubifs_msg(c, "read-only UBI device"); 518 c->ro_media = 1; 519 } 520 521 if (c->vi.vol_type == UBI_STATIC_VOLUME) { 522 ubifs_msg(c, "static UBI volume - read-only mode"); 523 c->ro_media = 1; 524 } 525 526 c->leb_cnt = c->vi.size; 527 c->leb_size = c->vi.usable_leb_size; 528 c->leb_start = c->di.leb_start; 529 c->half_leb_size = c->leb_size / 2; 530 c->min_io_size = c->di.min_io_size; 531 c->min_io_shift = fls(c->min_io_size) - 1; 532 c->max_write_size = c->di.max_write_size; 533 c->max_write_shift = fls(c->max_write_size) - 1; 534 535 if (c->leb_size < UBIFS_MIN_LEB_SZ) { 536 ubifs_errc(c, "too small LEBs (%d bytes), min. is %d bytes", 537 c->leb_size, UBIFS_MIN_LEB_SZ); 538 return -EINVAL; 539 } 540 541 if (c->leb_cnt < UBIFS_MIN_LEB_CNT) { 542 ubifs_errc(c, "too few LEBs (%d), min. is %d", 543 c->leb_cnt, UBIFS_MIN_LEB_CNT); 544 return -EINVAL; 545 } 546 547 if (!is_power_of_2(c->min_io_size)) { 548 ubifs_errc(c, "bad min. I/O size %d", c->min_io_size); 549 return -EINVAL; 550 } 551 552 /* 553 * Maximum write size has to be greater or equivalent to min. I/O 554 * size, and be multiple of min. I/O size. 555 */ 556 if (c->max_write_size < c->min_io_size || 557 c->max_write_size % c->min_io_size || 558 !is_power_of_2(c->max_write_size)) { 559 ubifs_errc(c, "bad write buffer size %d for %d min. I/O unit", 560 c->max_write_size, c->min_io_size); 561 return -EINVAL; 562 } 563 564 /* 565 * UBIFS aligns all node to 8-byte boundary, so to make function in 566 * io.c simpler, assume minimum I/O unit size to be 8 bytes if it is 567 * less than 8. 568 */ 569 if (c->min_io_size < 8) { 570 c->min_io_size = 8; 571 c->min_io_shift = 3; 572 if (c->max_write_size < c->min_io_size) { 573 c->max_write_size = c->min_io_size; 574 c->max_write_shift = c->min_io_shift; 575 } 576 } 577 578 c->ref_node_alsz = ALIGN(UBIFS_REF_NODE_SZ, c->min_io_size); 579 c->mst_node_alsz = ALIGN(UBIFS_MST_NODE_SZ, c->min_io_size); 580 581 /* 582 * Initialize node length ranges which are mostly needed for node 583 * length validation. 584 */ 585 c->ranges[UBIFS_PAD_NODE].len = UBIFS_PAD_NODE_SZ; 586 c->ranges[UBIFS_SB_NODE].len = UBIFS_SB_NODE_SZ; 587 c->ranges[UBIFS_MST_NODE].len = UBIFS_MST_NODE_SZ; 588 c->ranges[UBIFS_REF_NODE].len = UBIFS_REF_NODE_SZ; 589 c->ranges[UBIFS_TRUN_NODE].len = UBIFS_TRUN_NODE_SZ; 590 c->ranges[UBIFS_CS_NODE].len = UBIFS_CS_NODE_SZ; 591 c->ranges[UBIFS_AUTH_NODE].min_len = UBIFS_AUTH_NODE_SZ; 592 c->ranges[UBIFS_AUTH_NODE].max_len = UBIFS_AUTH_NODE_SZ + 593 UBIFS_MAX_HMAC_LEN; 594 c->ranges[UBIFS_SIG_NODE].min_len = UBIFS_SIG_NODE_SZ; 595 c->ranges[UBIFS_SIG_NODE].max_len = c->leb_size - UBIFS_SB_NODE_SZ; 596 597 c->ranges[UBIFS_INO_NODE].min_len = UBIFS_INO_NODE_SZ; 598 c->ranges[UBIFS_INO_NODE].max_len = UBIFS_MAX_INO_NODE_SZ; 599 c->ranges[UBIFS_ORPH_NODE].min_len = 600 UBIFS_ORPH_NODE_SZ + sizeof(__le64); 601 c->ranges[UBIFS_ORPH_NODE].max_len = c->leb_size; 602 c->ranges[UBIFS_DENT_NODE].min_len = UBIFS_DENT_NODE_SZ; 603 c->ranges[UBIFS_DENT_NODE].max_len = UBIFS_MAX_DENT_NODE_SZ; 604 c->ranges[UBIFS_XENT_NODE].min_len = UBIFS_XENT_NODE_SZ; 605 c->ranges[UBIFS_XENT_NODE].max_len = UBIFS_MAX_XENT_NODE_SZ; 606 c->ranges[UBIFS_DATA_NODE].min_len = UBIFS_DATA_NODE_SZ; 607 c->ranges[UBIFS_DATA_NODE].max_len = UBIFS_MAX_DATA_NODE_SZ; 608 /* 609 * Minimum indexing node size is amended later when superblock is 610 * read and the key length is known. 611 */ 612 c->ranges[UBIFS_IDX_NODE].min_len = UBIFS_IDX_NODE_SZ + UBIFS_BRANCH_SZ; 613 /* 614 * Maximum indexing node size is amended later when superblock is 615 * read and the fanout is known. 616 */ 617 c->ranges[UBIFS_IDX_NODE].max_len = INT_MAX; 618 619 /* 620 * Initialize dead and dark LEB space watermarks. See gc.c for comments 621 * about these values. 622 */ 623 c->dead_wm = ALIGN(MIN_WRITE_SZ, c->min_io_size); 624 c->dark_wm = ALIGN(UBIFS_MAX_NODE_SZ, c->min_io_size); 625 626 /* 627 * Calculate how many bytes would be wasted at the end of LEB if it was 628 * fully filled with data nodes of maximum size. This is used in 629 * calculations when reporting free space. 630 */ 631 c->leb_overhead = c->leb_size % UBIFS_MAX_DATA_NODE_SZ; 632 633 /* Buffer size for bulk-reads */ 634 c->max_bu_buf_len = UBIFS_MAX_BULK_READ * UBIFS_MAX_DATA_NODE_SZ; 635 if (c->max_bu_buf_len > c->leb_size) 636 c->max_bu_buf_len = c->leb_size; 637 638 /* Log is ready, preserve one LEB for commits. */ 639 c->min_log_bytes = c->leb_size; 640 641 return 0; 642 } 643 644 /** 645 * bud_wbuf_callback - bud LEB write-buffer synchronization call-back. 646 * @c: UBIFS file-system description object 647 * @lnum: LEB the write-buffer was synchronized to 648 * @free: how many free bytes left in this LEB 649 * @pad: how many bytes were padded 650 * 651 * This is a callback function which is called by the I/O unit when the 652 * write-buffer is synchronized. We need this to correctly maintain space 653 * accounting in bud logical eraseblocks. This function returns zero in case of 654 * success and a negative error code in case of failure. 655 * 656 * This function actually belongs to the journal, but we keep it here because 657 * we want to keep it static. 658 */ 659 static int bud_wbuf_callback(struct ubifs_info *c, int lnum, int free, int pad) 660 { 661 return ubifs_update_one_lp(c, lnum, free, pad, 0, 0); 662 } 663 664 /* 665 * init_constants_sb - initialize UBIFS constants. 666 * @c: UBIFS file-system description object 667 * 668 * This is a helper function which initializes various UBIFS constants after 669 * the superblock has been read. It also checks various UBIFS parameters and 670 * makes sure they are all right. Returns zero in case of success and a 671 * negative error code in case of failure. 672 */ 673 static int init_constants_sb(struct ubifs_info *c) 674 { 675 int tmp, err; 676 long long tmp64; 677 678 c->main_bytes = (long long)c->main_lebs * c->leb_size; 679 c->max_znode_sz = sizeof(struct ubifs_znode) + 680 c->fanout * sizeof(struct ubifs_zbranch); 681 682 tmp = ubifs_idx_node_sz(c, 1); 683 c->ranges[UBIFS_IDX_NODE].min_len = tmp; 684 c->min_idx_node_sz = ALIGN(tmp, 8); 685 686 tmp = ubifs_idx_node_sz(c, c->fanout); 687 c->ranges[UBIFS_IDX_NODE].max_len = tmp; 688 c->max_idx_node_sz = ALIGN(tmp, 8); 689 690 /* Make sure LEB size is large enough to fit full commit */ 691 tmp = UBIFS_CS_NODE_SZ + UBIFS_REF_NODE_SZ * c->jhead_cnt; 692 tmp = ALIGN(tmp, c->min_io_size); 693 if (tmp > c->leb_size) { 694 ubifs_err(c, "too small LEB size %d, at least %d needed", 695 c->leb_size, tmp); 696 return -EINVAL; 697 } 698 699 /* 700 * Make sure that the log is large enough to fit reference nodes for 701 * all buds plus one reserved LEB. 702 */ 703 tmp64 = c->max_bud_bytes + c->leb_size - 1; 704 c->max_bud_cnt = div_u64(tmp64, c->leb_size); 705 tmp = (c->ref_node_alsz * c->max_bud_cnt + c->leb_size - 1); 706 tmp /= c->leb_size; 707 tmp += 1; 708 if (c->log_lebs < tmp) { 709 ubifs_err(c, "too small log %d LEBs, required min. %d LEBs", 710 c->log_lebs, tmp); 711 return -EINVAL; 712 } 713 714 /* 715 * When budgeting we assume worst-case scenarios when the pages are not 716 * be compressed and direntries are of the maximum size. 717 * 718 * Note, data, which may be stored in inodes is budgeted separately, so 719 * it is not included into 'c->bi.inode_budget'. 720 */ 721 c->bi.page_budget = UBIFS_MAX_DATA_NODE_SZ * UBIFS_BLOCKS_PER_PAGE; 722 c->bi.inode_budget = UBIFS_INO_NODE_SZ; 723 c->bi.dent_budget = UBIFS_MAX_DENT_NODE_SZ; 724 725 /* 726 * When the amount of flash space used by buds becomes 727 * 'c->max_bud_bytes', UBIFS just blocks all writers and starts commit. 728 * The writers are unblocked when the commit is finished. To avoid 729 * writers to be blocked UBIFS initiates background commit in advance, 730 * when number of bud bytes becomes above the limit defined below. 731 */ 732 c->bg_bud_bytes = (c->max_bud_bytes * 13) >> 4; 733 734 /* 735 * Ensure minimum journal size. All the bytes in the journal heads are 736 * considered to be used, when calculating the current journal usage. 737 * Consequently, if the journal is too small, UBIFS will treat it as 738 * always full. 739 */ 740 tmp64 = (long long)(c->jhead_cnt + 1) * c->leb_size + 1; 741 if (c->bg_bud_bytes < tmp64) 742 c->bg_bud_bytes = tmp64; 743 if (c->max_bud_bytes < tmp64 + c->leb_size) 744 c->max_bud_bytes = tmp64 + c->leb_size; 745 746 err = ubifs_calc_lpt_geom(c); 747 if (err) 748 return err; 749 750 /* Initialize effective LEB size used in budgeting calculations */ 751 c->idx_leb_size = c->leb_size - c->max_idx_node_sz; 752 return 0; 753 } 754 755 /* 756 * init_constants_master - initialize UBIFS constants. 757 * @c: UBIFS file-system description object 758 * 759 * This is a helper function which initializes various UBIFS constants after 760 * the master node has been read. It also checks various UBIFS parameters and 761 * makes sure they are all right. 762 */ 763 static void init_constants_master(struct ubifs_info *c) 764 { 765 long long tmp64; 766 767 c->bi.min_idx_lebs = ubifs_calc_min_idx_lebs(c); 768 c->report_rp_size = ubifs_reported_space(c, c->rp_size); 769 770 /* 771 * Calculate total amount of FS blocks. This number is not used 772 * internally because it does not make much sense for UBIFS, but it is 773 * necessary to report something for the 'statfs()' call. 774 * 775 * Subtract the LEB reserved for GC, the LEB which is reserved for 776 * deletions, minimum LEBs for the index, the LEBs which are reserved 777 * for each journal head. 778 */ 779 tmp64 = c->main_lebs - 1 - 1 - MIN_INDEX_LEBS - c->jhead_cnt; 780 tmp64 *= (long long)c->leb_size - c->leb_overhead; 781 tmp64 = ubifs_reported_space(c, tmp64); 782 c->block_cnt = tmp64 >> UBIFS_BLOCK_SHIFT; 783 } 784 785 /** 786 * take_gc_lnum - reserve GC LEB. 787 * @c: UBIFS file-system description object 788 * 789 * This function ensures that the LEB reserved for garbage collection is marked 790 * as "taken" in lprops. We also have to set free space to LEB size and dirty 791 * space to zero, because lprops may contain out-of-date information if the 792 * file-system was un-mounted before it has been committed. This function 793 * returns zero in case of success and a negative error code in case of 794 * failure. 795 */ 796 static int take_gc_lnum(struct ubifs_info *c) 797 { 798 int err; 799 800 if (c->gc_lnum == -1) { 801 ubifs_err(c, "no LEB for GC"); 802 return -EINVAL; 803 } 804 805 /* And we have to tell lprops that this LEB is taken */ 806 err = ubifs_change_one_lp(c, c->gc_lnum, c->leb_size, 0, 807 LPROPS_TAKEN, 0, 0); 808 return err; 809 } 810 811 /** 812 * alloc_wbufs - allocate write-buffers. 813 * @c: UBIFS file-system description object 814 * 815 * This helper function allocates and initializes UBIFS write-buffers. Returns 816 * zero in case of success and %-ENOMEM in case of failure. 817 */ 818 static int alloc_wbufs(struct ubifs_info *c) 819 { 820 int i, err; 821 822 c->jheads = kzalloc_objs(struct ubifs_jhead, c->jhead_cnt); 823 if (!c->jheads) 824 return -ENOMEM; 825 826 /* Initialize journal heads */ 827 for (i = 0; i < c->jhead_cnt; i++) { 828 INIT_LIST_HEAD(&c->jheads[i].buds_list); 829 err = ubifs_wbuf_init(c, &c->jheads[i].wbuf); 830 if (err) 831 goto out_wbuf; 832 833 c->jheads[i].wbuf.sync_callback = &bud_wbuf_callback; 834 c->jheads[i].wbuf.jhead = i; 835 c->jheads[i].grouped = 1; 836 c->jheads[i].log_hash = ubifs_hash_get_desc(c); 837 if (IS_ERR(c->jheads[i].log_hash)) { 838 err = PTR_ERR(c->jheads[i].log_hash); 839 goto out_log_hash; 840 } 841 } 842 843 /* 844 * Garbage Collector head does not need to be synchronized by timer. 845 * Also GC head nodes are not grouped. 846 */ 847 c->jheads[GCHD].wbuf.no_timer = 1; 848 c->jheads[GCHD].grouped = 0; 849 850 return 0; 851 852 out_log_hash: 853 kfree(c->jheads[i].wbuf.buf); 854 kfree(c->jheads[i].wbuf.inodes); 855 856 out_wbuf: 857 while (i--) { 858 kfree(c->jheads[i].wbuf.buf); 859 kfree(c->jheads[i].wbuf.inodes); 860 kfree(c->jheads[i].log_hash); 861 } 862 kfree(c->jheads); 863 c->jheads = NULL; 864 865 return err; 866 } 867 868 /** 869 * free_wbufs - free write-buffers. 870 * @c: UBIFS file-system description object 871 */ 872 static void free_wbufs(struct ubifs_info *c) 873 { 874 int i; 875 876 if (c->jheads) { 877 for (i = 0; i < c->jhead_cnt; i++) { 878 kfree(c->jheads[i].wbuf.buf); 879 kfree(c->jheads[i].wbuf.inodes); 880 kfree(c->jheads[i].log_hash); 881 } 882 kfree(c->jheads); 883 c->jheads = NULL; 884 } 885 } 886 887 /** 888 * free_orphans - free orphans. 889 * @c: UBIFS file-system description object 890 */ 891 static void free_orphans(struct ubifs_info *c) 892 { 893 struct ubifs_orphan *orph; 894 895 while (c->orph_dnext) { 896 orph = c->orph_dnext; 897 c->orph_dnext = orph->dnext; 898 list_del(&orph->list); 899 kfree(orph); 900 } 901 902 while (!list_empty(&c->orph_list)) { 903 orph = list_entry(c->orph_list.next, struct ubifs_orphan, list); 904 list_del(&orph->list); 905 kfree(orph); 906 ubifs_err(c, "orphan list not empty at unmount"); 907 } 908 909 vfree(c->orph_buf); 910 c->orph_buf = NULL; 911 } 912 913 /** 914 * free_buds - free per-bud objects. 915 * @c: UBIFS file-system description object 916 */ 917 static void free_buds(struct ubifs_info *c) 918 { 919 struct ubifs_bud *bud, *n; 920 921 rbtree_postorder_for_each_entry_safe(bud, n, &c->buds, rb) { 922 kfree(bud->log_hash); 923 kfree(bud); 924 } 925 } 926 927 /** 928 * check_volume_empty - check if the UBI volume is empty. 929 * @c: UBIFS file-system description object 930 * 931 * This function checks if the UBIFS volume is empty by looking if its LEBs are 932 * mapped or not. The result of checking is stored in the @c->empty variable. 933 * Returns zero in case of success and a negative error code in case of 934 * failure. 935 */ 936 static int check_volume_empty(struct ubifs_info *c) 937 { 938 int lnum, err; 939 940 c->empty = 1; 941 for (lnum = 0; lnum < c->leb_cnt; lnum++) { 942 err = ubifs_is_mapped(c, lnum); 943 if (unlikely(err < 0)) 944 return err; 945 if (err == 1) { 946 c->empty = 0; 947 break; 948 } 949 950 cond_resched(); 951 } 952 953 return 0; 954 } 955 956 /* 957 * UBIFS mount options. 958 * 959 * Opt_fast_unmount: do not run a journal commit before un-mounting 960 * Opt_norm_unmount: run a journal commit before un-mounting 961 * Opt_bulk_read: enable bulk-reads 962 * Opt_no_bulk_read: disable bulk-reads 963 * Opt_chk_data_crc: check CRCs when reading data nodes 964 * Opt_no_chk_data_crc: do not check CRCs when reading data nodes 965 * Opt_override_compr: override default compressor 966 * Opt_assert: set ubifs_assert() action 967 * Opt_auth_key: The key name used for authentication 968 * Opt_auth_hash_name: The hash type used for authentication 969 * Opt_err: just end of array marker 970 */ 971 enum { 972 Opt_fast_unmount, 973 Opt_norm_unmount, 974 Opt_bulk_read, 975 Opt_no_bulk_read, 976 Opt_chk_data_crc, 977 Opt_no_chk_data_crc, 978 Opt_override_compr, 979 Opt_assert, 980 Opt_auth_key, 981 Opt_auth_hash_name, 982 Opt_ignore, 983 }; 984 985 static const struct constant_table ubifs_param_compr[] = { 986 { "none", UBIFS_COMPR_NONE }, 987 { "lzo", UBIFS_COMPR_LZO }, 988 { "zlib", UBIFS_COMPR_ZLIB }, 989 { "zstd", UBIFS_COMPR_ZSTD }, 990 {} 991 }; 992 993 static const struct constant_table ubifs_param_assert[] = { 994 { "report", ASSACT_REPORT }, 995 { "read-only", ASSACT_RO }, 996 { "panic", ASSACT_PANIC }, 997 {} 998 }; 999 1000 static const struct fs_parameter_spec ubifs_fs_param_spec[] = { 1001 fsparam_flag ("fast_unmount", Opt_fast_unmount), 1002 fsparam_flag ("norm_unmount", Opt_norm_unmount), 1003 fsparam_flag ("bulk_read", Opt_bulk_read), 1004 fsparam_flag ("no_bulk_read", Opt_no_bulk_read), 1005 fsparam_flag ("chk_data_crc", Opt_chk_data_crc), 1006 fsparam_flag ("no_chk_data_crc", Opt_no_chk_data_crc), 1007 fsparam_enum ("compr", Opt_override_compr, ubifs_param_compr), 1008 fsparam_enum ("assert", Opt_assert, ubifs_param_assert), 1009 fsparam_string ("auth_key", Opt_auth_key), 1010 fsparam_string ("auth_hash_name", Opt_auth_hash_name), 1011 fsparam_string ("ubi", Opt_ignore), 1012 fsparam_string ("vol", Opt_ignore), 1013 {} 1014 }; 1015 1016 struct ubifs_fs_context { 1017 struct ubifs_mount_opts mount_opts; 1018 char *auth_key_name; 1019 char *auth_hash_name; 1020 unsigned int no_chk_data_crc:1; 1021 unsigned int bulk_read:1; 1022 unsigned int default_compr:2; 1023 unsigned int assert_action:2; 1024 }; 1025 1026 /** 1027 * ubifs_parse_param - parse a parameter. 1028 * @fc: the filesystem context 1029 * @param: the parameter to parse 1030 * 1031 * This function parses UBIFS mount options and returns zero in case success 1032 * and a negative error code in case of failure. 1033 */ 1034 static int ubifs_parse_param(struct fs_context *fc, struct fs_parameter *param) 1035 { 1036 struct ubifs_fs_context *ctx = fc->fs_private; 1037 struct fs_parse_result result; 1038 bool is_remount = (fc->purpose & FS_CONTEXT_FOR_RECONFIGURE); 1039 int opt; 1040 1041 opt = fs_parse(fc, ubifs_fs_param_spec, param, &result); 1042 if (opt < 0) 1043 return opt; 1044 1045 switch (opt) { 1046 /* 1047 * %Opt_fast_unmount and %Opt_norm_unmount options are ignored. 1048 * We accept them in order to be backward-compatible. But this 1049 * should be removed at some point. 1050 */ 1051 case Opt_fast_unmount: 1052 ctx->mount_opts.unmount_mode = 2; 1053 break; 1054 case Opt_norm_unmount: 1055 ctx->mount_opts.unmount_mode = 1; 1056 break; 1057 case Opt_bulk_read: 1058 ctx->mount_opts.bulk_read = 2; 1059 ctx->bulk_read = 1; 1060 break; 1061 case Opt_no_bulk_read: 1062 ctx->mount_opts.bulk_read = 1; 1063 ctx->bulk_read = 0; 1064 break; 1065 case Opt_chk_data_crc: 1066 ctx->mount_opts.chk_data_crc = 2; 1067 ctx->no_chk_data_crc = 0; 1068 break; 1069 case Opt_no_chk_data_crc: 1070 ctx->mount_opts.chk_data_crc = 1; 1071 ctx->no_chk_data_crc = 1; 1072 break; 1073 case Opt_override_compr: 1074 ctx->mount_opts.compr_type = result.uint_32; 1075 ctx->mount_opts.override_compr = 1; 1076 ctx->default_compr = ctx->mount_opts.compr_type; 1077 break; 1078 case Opt_assert: 1079 ctx->assert_action = result.uint_32; 1080 break; 1081 case Opt_auth_key: 1082 if (!is_remount) { 1083 kfree(ctx->auth_key_name); 1084 ctx->auth_key_name = param->string; 1085 param->string = NULL; 1086 } 1087 break; 1088 case Opt_auth_hash_name: 1089 if (!is_remount) { 1090 kfree(ctx->auth_hash_name); 1091 ctx->auth_hash_name = param->string; 1092 param->string = NULL; 1093 } 1094 break; 1095 case Opt_ignore: 1096 break; 1097 } 1098 1099 return 0; 1100 } 1101 1102 /* 1103 * ubifs_release_options - release mount parameters which have been dumped. 1104 * @c: UBIFS file-system description object 1105 */ 1106 static void ubifs_release_options(struct ubifs_info *c) 1107 { 1108 kfree(c->auth_key_name); 1109 c->auth_key_name = NULL; 1110 kfree(c->auth_hash_name); 1111 c->auth_hash_name = NULL; 1112 } 1113 1114 /** 1115 * destroy_journal - destroy journal data structures. 1116 * @c: UBIFS file-system description object 1117 * 1118 * This function destroys journal data structures including those that may have 1119 * been created by recovery functions. 1120 */ 1121 static void destroy_journal(struct ubifs_info *c) 1122 { 1123 while (!list_empty(&c->unclean_leb_list)) { 1124 struct ubifs_unclean_leb *ucleb; 1125 1126 ucleb = list_entry(c->unclean_leb_list.next, 1127 struct ubifs_unclean_leb, list); 1128 list_del(&ucleb->list); 1129 kfree(ucleb); 1130 } 1131 while (!list_empty(&c->old_buds)) { 1132 struct ubifs_bud *bud; 1133 1134 bud = list_entry(c->old_buds.next, struct ubifs_bud, list); 1135 list_del(&bud->list); 1136 kfree(bud->log_hash); 1137 kfree(bud); 1138 } 1139 ubifs_destroy_idx_gc(c); 1140 ubifs_destroy_size_tree(c); 1141 ubifs_tnc_close(c); 1142 free_buds(c); 1143 } 1144 1145 /** 1146 * bu_init - initialize bulk-read information. 1147 * @c: UBIFS file-system description object 1148 */ 1149 static void bu_init(struct ubifs_info *c) 1150 { 1151 ubifs_assert(c, c->bulk_read == 1); 1152 1153 if (c->bu.buf) 1154 return; /* Already initialized */ 1155 1156 again: 1157 c->bu.buf = kmalloc(c->max_bu_buf_len, GFP_KERNEL | __GFP_NOWARN); 1158 if (!c->bu.buf) { 1159 if (c->max_bu_buf_len > UBIFS_KMALLOC_OK) { 1160 c->max_bu_buf_len = UBIFS_KMALLOC_OK; 1161 goto again; 1162 } 1163 1164 /* Just disable bulk-read */ 1165 ubifs_warn(c, "cannot allocate %d bytes of memory for bulk-read, disabling it", 1166 c->max_bu_buf_len); 1167 c->mount_opts.bulk_read = 1; 1168 c->bulk_read = 0; 1169 return; 1170 } 1171 } 1172 1173 /** 1174 * check_free_space - check if there is enough free space to mount. 1175 * @c: UBIFS file-system description object 1176 * 1177 * This function makes sure UBIFS has enough free space to be mounted in 1178 * read/write mode. UBIFS must always have some free space to allow deletions. 1179 */ 1180 static int check_free_space(struct ubifs_info *c) 1181 { 1182 ubifs_assert(c, c->dark_wm > 0); 1183 if (c->lst.total_free + c->lst.total_dirty < c->dark_wm) { 1184 ubifs_err(c, "insufficient free space to mount in R/W mode"); 1185 ubifs_dump_budg(c, &c->bi); 1186 ubifs_dump_lprops(c); 1187 return -ENOSPC; 1188 } 1189 return 0; 1190 } 1191 1192 /** 1193 * mount_ubifs - mount UBIFS file-system. 1194 * @c: UBIFS file-system description object 1195 * 1196 * This function mounts UBIFS file system. Returns zero in case of success and 1197 * a negative error code in case of failure. 1198 */ 1199 static int mount_ubifs(struct ubifs_info *c) 1200 { 1201 int err; 1202 long long x, y; 1203 size_t sz; 1204 1205 c->ro_mount = !!sb_rdonly(c->vfs_sb); 1206 /* Suppress error messages while probing if SB_SILENT is set */ 1207 c->probing = !!(c->vfs_sb->s_flags & SB_SILENT); 1208 1209 err = init_constants_early(c); 1210 if (err) 1211 return err; 1212 1213 err = ubifs_debugging_init(c); 1214 if (err) 1215 return err; 1216 1217 err = ubifs_sysfs_register(c); 1218 if (err) 1219 goto out_debugging; 1220 1221 err = check_volume_empty(c); 1222 if (err) 1223 goto out_free; 1224 1225 if (c->empty && (c->ro_mount || c->ro_media)) { 1226 /* 1227 * This UBI volume is empty, and read-only, or the file system 1228 * is mounted read-only - we cannot format it. 1229 */ 1230 ubifs_err(c, "can't format empty UBI volume: read-only %s", 1231 c->ro_media ? "UBI volume" : "mount"); 1232 err = -EROFS; 1233 goto out_free; 1234 } 1235 1236 if (c->ro_media && !c->ro_mount) { 1237 ubifs_err(c, "cannot mount read-write - read-only media"); 1238 err = -EROFS; 1239 goto out_free; 1240 } 1241 1242 /* 1243 * The requirement for the buffer is that it should fit indexing B-tree 1244 * height amount of integers. We assume the height if the TNC tree will 1245 * never exceed 64. 1246 */ 1247 err = -ENOMEM; 1248 c->bottom_up_buf = kmalloc_objs(int, BOTTOM_UP_HEIGHT); 1249 if (!c->bottom_up_buf) 1250 goto out_free; 1251 1252 c->sbuf = vmalloc(c->leb_size); 1253 if (!c->sbuf) 1254 goto out_free; 1255 1256 if (!c->ro_mount) { 1257 c->ileb_buf = vmalloc(c->leb_size); 1258 if (!c->ileb_buf) 1259 goto out_free; 1260 } 1261 1262 if (c->bulk_read == 1) 1263 bu_init(c); 1264 1265 if (!c->ro_mount) { 1266 c->write_reserve_buf = kmalloc(COMPRESSED_DATA_NODE_BUF_SZ + \ 1267 UBIFS_CIPHER_BLOCK_SIZE, 1268 GFP_KERNEL); 1269 if (!c->write_reserve_buf) 1270 goto out_free; 1271 } 1272 1273 c->mounting = 1; 1274 1275 if (c->auth_key_name) { 1276 if (IS_ENABLED(CONFIG_UBIFS_FS_AUTHENTICATION)) { 1277 err = ubifs_init_authentication(c); 1278 if (err) 1279 goto out_free; 1280 } else { 1281 ubifs_err(c, "auth_key_name, but UBIFS is built without" 1282 " authentication support"); 1283 err = -EINVAL; 1284 goto out_free; 1285 } 1286 } 1287 1288 err = ubifs_read_superblock(c); 1289 if (err) 1290 goto out_auth; 1291 1292 c->probing = 0; 1293 1294 /* 1295 * Make sure the compressor which is set as default in the superblock 1296 * or overridden by mount options is actually compiled in. 1297 */ 1298 if (!ubifs_compr_present(c, c->default_compr)) { 1299 ubifs_err(c, "'compressor \"%s\" is not compiled in", 1300 ubifs_compr_name(c, c->default_compr)); 1301 err = -ENOTSUPP; 1302 goto out_auth; 1303 } 1304 1305 err = init_constants_sb(c); 1306 if (err) 1307 goto out_auth; 1308 1309 sz = ALIGN(c->max_idx_node_sz, c->min_io_size) * 2; 1310 c->cbuf = kmalloc(sz, GFP_NOFS); 1311 if (!c->cbuf) { 1312 err = -ENOMEM; 1313 goto out_auth; 1314 } 1315 1316 err = alloc_wbufs(c); 1317 if (err) 1318 goto out_cbuf; 1319 1320 sprintf(c->bgt_name, BGT_NAME_PATTERN, c->vi.ubi_num, c->vi.vol_id); 1321 if (!c->ro_mount) { 1322 /* Create background thread */ 1323 c->bgt = kthread_run(ubifs_bg_thread, c, "%s", c->bgt_name); 1324 if (IS_ERR(c->bgt)) { 1325 err = PTR_ERR(c->bgt); 1326 c->bgt = NULL; 1327 ubifs_err(c, "cannot spawn \"%s\", error %d", 1328 c->bgt_name, err); 1329 goto out_wbufs; 1330 } 1331 } 1332 1333 err = ubifs_read_master(c); 1334 if (err) 1335 goto out_master; 1336 1337 init_constants_master(c); 1338 1339 if ((c->mst_node->flags & cpu_to_le32(UBIFS_MST_DIRTY)) != 0) { 1340 ubifs_msg(c, "recovery needed"); 1341 c->need_recovery = 1; 1342 } 1343 1344 if (c->need_recovery && !c->ro_mount) { 1345 err = ubifs_recover_inl_heads(c, c->sbuf); 1346 if (err) 1347 goto out_master; 1348 } 1349 1350 err = ubifs_lpt_init(c, 1, !c->ro_mount); 1351 if (err) 1352 goto out_master; 1353 1354 if (!c->ro_mount && c->space_fixup) { 1355 err = ubifs_fixup_free_space(c); 1356 if (err) 1357 goto out_lpt; 1358 } 1359 1360 if (!c->ro_mount && !c->need_recovery) { 1361 /* 1362 * Set the "dirty" flag so that if we reboot uncleanly we 1363 * will notice this immediately on the next mount. 1364 */ 1365 c->mst_node->flags |= cpu_to_le32(UBIFS_MST_DIRTY); 1366 err = ubifs_write_master(c); 1367 if (err) 1368 goto out_lpt; 1369 } 1370 1371 /* 1372 * Handle offline signed images: Now that the master node is 1373 * written and its validation no longer depends on the hash 1374 * in the superblock, we can update the offline signed 1375 * superblock with a HMAC version, 1376 */ 1377 if (ubifs_authenticated(c) && ubifs_hmac_zero(c, c->sup_node->hmac)) { 1378 err = ubifs_hmac_wkm(c, c->sup_node->hmac_wkm); 1379 if (err) 1380 goto out_lpt; 1381 c->superblock_need_write = 1; 1382 } 1383 1384 if (!c->ro_mount && c->superblock_need_write) { 1385 err = ubifs_write_sb_node(c, c->sup_node); 1386 if (err) 1387 goto out_lpt; 1388 c->superblock_need_write = 0; 1389 } 1390 1391 err = dbg_check_idx_size(c, c->bi.old_idx_sz); 1392 if (err) 1393 goto out_lpt; 1394 1395 err = ubifs_replay_journal(c); 1396 if (err) 1397 goto out_journal; 1398 1399 /* Calculate 'min_idx_lebs' after journal replay */ 1400 c->bi.min_idx_lebs = ubifs_calc_min_idx_lebs(c); 1401 1402 err = ubifs_mount_orphans(c, c->need_recovery, c->ro_mount); 1403 if (err) 1404 goto out_orphans; 1405 1406 if (!c->ro_mount) { 1407 int lnum; 1408 1409 err = check_free_space(c); 1410 if (err) 1411 goto out_orphans; 1412 1413 /* Check for enough log space */ 1414 lnum = c->lhead_lnum + 1; 1415 if (lnum >= UBIFS_LOG_LNUM + c->log_lebs) 1416 lnum = UBIFS_LOG_LNUM; 1417 if (lnum == c->ltail_lnum) { 1418 err = ubifs_consolidate_log(c); 1419 if (err) 1420 goto out_orphans; 1421 } 1422 1423 if (c->need_recovery) { 1424 if (!ubifs_authenticated(c)) { 1425 err = ubifs_recover_size(c, true); 1426 if (err) 1427 goto out_orphans; 1428 } 1429 1430 err = ubifs_rcvry_gc_commit(c); 1431 if (err) 1432 goto out_orphans; 1433 1434 if (ubifs_authenticated(c)) { 1435 err = ubifs_recover_size(c, false); 1436 if (err) 1437 goto out_orphans; 1438 } 1439 } else { 1440 err = take_gc_lnum(c); 1441 if (err) 1442 goto out_orphans; 1443 1444 /* 1445 * GC LEB may contain garbage if there was an unclean 1446 * reboot, and it should be un-mapped. 1447 */ 1448 err = ubifs_leb_unmap(c, c->gc_lnum); 1449 if (err) 1450 goto out_orphans; 1451 } 1452 1453 err = dbg_check_lprops(c); 1454 if (err) 1455 goto out_orphans; 1456 } else if (c->need_recovery) { 1457 err = ubifs_recover_size(c, false); 1458 if (err) 1459 goto out_orphans; 1460 } else { 1461 /* 1462 * Even if we mount read-only, we have to set space in GC LEB 1463 * to proper value because this affects UBIFS free space 1464 * reporting. We do not want to have a situation when 1465 * re-mounting from R/O to R/W changes amount of free space. 1466 */ 1467 err = take_gc_lnum(c); 1468 if (err) 1469 goto out_orphans; 1470 } 1471 1472 spin_lock(&ubifs_infos_lock); 1473 list_add_tail(&c->infos_list, &ubifs_infos); 1474 spin_unlock(&ubifs_infos_lock); 1475 1476 if (c->need_recovery) { 1477 if (c->ro_mount) 1478 ubifs_msg(c, "recovery deferred"); 1479 else { 1480 c->need_recovery = 0; 1481 ubifs_msg(c, "recovery completed"); 1482 /* 1483 * GC LEB has to be empty and taken at this point. But 1484 * the journal head LEBs may also be accounted as 1485 * "empty taken" if they are empty. 1486 */ 1487 ubifs_assert(c, c->lst.taken_empty_lebs > 0); 1488 } 1489 } else 1490 ubifs_assert(c, c->lst.taken_empty_lebs > 0); 1491 1492 err = dbg_check_filesystem(c); 1493 if (err) 1494 goto out_infos; 1495 1496 dbg_debugfs_init_fs(c); 1497 1498 c->mounting = 0; 1499 1500 ubifs_msg(c, "UBIFS: mounted UBI device %d, volume %d, name \"%s\"%s", 1501 c->vi.ubi_num, c->vi.vol_id, c->vi.name, 1502 c->ro_mount ? ", R/O mode" : ""); 1503 x = (long long)c->main_lebs * c->leb_size; 1504 y = (long long)c->log_lebs * c->leb_size + c->max_bud_bytes; 1505 ubifs_msg(c, "LEB size: %d bytes (%d KiB), min./max. I/O unit sizes: %d bytes/%d bytes", 1506 c->leb_size, c->leb_size >> 10, c->min_io_size, 1507 c->max_write_size); 1508 ubifs_msg(c, "FS size: %lld bytes (%lld MiB, %d LEBs), max %d LEBs, journal size %lld bytes (%lld MiB, %d LEBs)", 1509 x, x >> 20, c->main_lebs, c->max_leb_cnt, 1510 y, y >> 20, c->log_lebs + c->max_bud_cnt); 1511 ubifs_msg(c, "reserved for root: %llu bytes (%llu KiB)", 1512 c->report_rp_size, c->report_rp_size >> 10); 1513 ubifs_msg(c, "media format: w%d/r%d (latest is w%d/r%d), UUID %pUB%s", 1514 c->fmt_version, c->ro_compat_version, 1515 UBIFS_FORMAT_VERSION, UBIFS_RO_COMPAT_VERSION, c->uuid, 1516 c->big_lpt ? ", big LPT model" : ", small LPT model"); 1517 1518 dbg_gen("default compressor: %s", ubifs_compr_name(c, c->default_compr)); 1519 dbg_gen("data journal heads: %d", 1520 c->jhead_cnt - NONDATA_JHEADS_CNT); 1521 dbg_gen("log LEBs: %d (%d - %d)", 1522 c->log_lebs, UBIFS_LOG_LNUM, c->log_last); 1523 dbg_gen("LPT area LEBs: %d (%d - %d)", 1524 c->lpt_lebs, c->lpt_first, c->lpt_last); 1525 dbg_gen("orphan area LEBs: %d (%d - %d)", 1526 c->orph_lebs, c->orph_first, c->orph_last); 1527 dbg_gen("main area LEBs: %d (%d - %d)", 1528 c->main_lebs, c->main_first, c->leb_cnt - 1); 1529 dbg_gen("index LEBs: %d", c->lst.idx_lebs); 1530 dbg_gen("total index bytes: %llu (%llu KiB, %llu MiB)", 1531 c->bi.old_idx_sz, c->bi.old_idx_sz >> 10, 1532 c->bi.old_idx_sz >> 20); 1533 dbg_gen("key hash type: %d", c->key_hash_type); 1534 dbg_gen("tree fanout: %d", c->fanout); 1535 dbg_gen("reserved GC LEB: %d", c->gc_lnum); 1536 dbg_gen("max. znode size %d", c->max_znode_sz); 1537 dbg_gen("max. index node size %d", c->max_idx_node_sz); 1538 dbg_gen("node sizes: data %zu, inode %zu, dentry %zu", 1539 UBIFS_DATA_NODE_SZ, UBIFS_INO_NODE_SZ, UBIFS_DENT_NODE_SZ); 1540 dbg_gen("node sizes: trun %zu, sb %zu, master %zu", 1541 UBIFS_TRUN_NODE_SZ, UBIFS_SB_NODE_SZ, UBIFS_MST_NODE_SZ); 1542 dbg_gen("node sizes: ref %zu, cmt. start %zu, orph %zu", 1543 UBIFS_REF_NODE_SZ, UBIFS_CS_NODE_SZ, UBIFS_ORPH_NODE_SZ); 1544 dbg_gen("max. node sizes: data %zu, inode %zu dentry %zu, idx %d", 1545 UBIFS_MAX_DATA_NODE_SZ, UBIFS_MAX_INO_NODE_SZ, 1546 UBIFS_MAX_DENT_NODE_SZ, ubifs_idx_node_sz(c, c->fanout)); 1547 dbg_gen("dead watermark: %d", c->dead_wm); 1548 dbg_gen("dark watermark: %d", c->dark_wm); 1549 dbg_gen("LEB overhead: %d", c->leb_overhead); 1550 x = (long long)c->main_lebs * c->dark_wm; 1551 dbg_gen("max. dark space: %lld (%lld KiB, %lld MiB)", 1552 x, x >> 10, x >> 20); 1553 dbg_gen("maximum bud bytes: %lld (%lld KiB, %lld MiB)", 1554 c->max_bud_bytes, c->max_bud_bytes >> 10, 1555 c->max_bud_bytes >> 20); 1556 dbg_gen("BG commit bud bytes: %lld (%lld KiB, %lld MiB)", 1557 c->bg_bud_bytes, c->bg_bud_bytes >> 10, 1558 c->bg_bud_bytes >> 20); 1559 dbg_gen("current bud bytes %lld (%lld KiB, %lld MiB)", 1560 c->bud_bytes, c->bud_bytes >> 10, c->bud_bytes >> 20); 1561 dbg_gen("max. seq. number: %llu", c->max_sqnum); 1562 dbg_gen("commit number: %llu", c->cmt_no); 1563 dbg_gen("max. xattrs per inode: %d", ubifs_xattr_max_cnt(c)); 1564 dbg_gen("max orphans: %d", c->max_orphans); 1565 1566 return 0; 1567 1568 out_infos: 1569 spin_lock(&ubifs_infos_lock); 1570 list_del(&c->infos_list); 1571 spin_unlock(&ubifs_infos_lock); 1572 out_orphans: 1573 free_orphans(c); 1574 out_journal: 1575 destroy_journal(c); 1576 out_lpt: 1577 ubifs_lpt_free(c, 0); 1578 out_master: 1579 kfree(c->mst_node); 1580 kfree(c->rcvrd_mst_node); 1581 if (c->bgt) 1582 kthread_stop(c->bgt); 1583 out_wbufs: 1584 free_wbufs(c); 1585 out_cbuf: 1586 kfree(c->cbuf); 1587 out_auth: 1588 ubifs_exit_authentication(c); 1589 out_free: 1590 kfree(c->write_reserve_buf); 1591 kfree(c->bu.buf); 1592 vfree(c->ileb_buf); 1593 vfree(c->sbuf); 1594 kfree(c->bottom_up_buf); 1595 kfree(c->sup_node); 1596 ubifs_sysfs_unregister(c); 1597 out_debugging: 1598 ubifs_debugging_exit(c); 1599 return err; 1600 } 1601 1602 /** 1603 * ubifs_umount - un-mount UBIFS file-system. 1604 * @c: UBIFS file-system description object 1605 * 1606 * Note, this function is called to free allocated resourced when un-mounting, 1607 * as well as free resources when an error occurred while we were half way 1608 * through mounting (error path cleanup function). So it has to make sure the 1609 * resource was actually allocated before freeing it. 1610 */ 1611 static void ubifs_umount(struct ubifs_info *c) 1612 { 1613 dbg_gen("un-mounting UBI device %d, volume %d", c->vi.ubi_num, 1614 c->vi.vol_id); 1615 1616 dbg_debugfs_exit_fs(c); 1617 spin_lock(&ubifs_infos_lock); 1618 list_del(&c->infos_list); 1619 spin_unlock(&ubifs_infos_lock); 1620 1621 if (c->bgt) 1622 kthread_stop(c->bgt); 1623 1624 destroy_journal(c); 1625 free_wbufs(c); 1626 free_orphans(c); 1627 ubifs_lpt_free(c, 0); 1628 ubifs_exit_authentication(c); 1629 1630 ubifs_release_options(c); 1631 kfree(c->cbuf); 1632 kfree(c->rcvrd_mst_node); 1633 kfree(c->mst_node); 1634 kfree(c->write_reserve_buf); 1635 kfree(c->bu.buf); 1636 vfree(c->ileb_buf); 1637 vfree(c->sbuf); 1638 kfree(c->bottom_up_buf); 1639 kfree(c->sup_node); 1640 ubifs_debugging_exit(c); 1641 ubifs_sysfs_unregister(c); 1642 } 1643 1644 /** 1645 * ubifs_remount_rw - re-mount in read-write mode. 1646 * @c: UBIFS file-system description object 1647 * 1648 * UBIFS avoids allocating many unnecessary resources when mounted in read-only 1649 * mode. This function allocates the needed resources and re-mounts UBIFS in 1650 * read-write mode. 1651 */ 1652 static int ubifs_remount_rw(struct ubifs_info *c) 1653 { 1654 int err, lnum; 1655 1656 if (c->rw_incompat) { 1657 ubifs_err(c, "the file-system is not R/W-compatible"); 1658 ubifs_msg(c, "on-flash format version is w%d/r%d, but software only supports up to version w%d/r%d", 1659 c->fmt_version, c->ro_compat_version, 1660 UBIFS_FORMAT_VERSION, UBIFS_RO_COMPAT_VERSION); 1661 return -EROFS; 1662 } 1663 1664 mutex_lock(&c->umount_mutex); 1665 dbg_save_space_info(c); 1666 c->remounting_rw = 1; 1667 c->ro_mount = 0; 1668 1669 if (c->space_fixup) { 1670 err = ubifs_fixup_free_space(c); 1671 if (err) 1672 goto out; 1673 } 1674 1675 err = check_free_space(c); 1676 if (err) 1677 goto out; 1678 1679 if (c->need_recovery) { 1680 ubifs_msg(c, "completing deferred recovery"); 1681 err = ubifs_write_rcvrd_mst_node(c); 1682 if (err) 1683 goto out; 1684 if (!ubifs_authenticated(c)) { 1685 err = ubifs_recover_size(c, true); 1686 if (err) 1687 goto out; 1688 } 1689 err = ubifs_clean_lebs(c, c->sbuf); 1690 if (err) 1691 goto out; 1692 err = ubifs_recover_inl_heads(c, c->sbuf); 1693 if (err) 1694 goto out; 1695 } else { 1696 /* A readonly mount is not allowed to have orphans */ 1697 ubifs_assert(c, c->tot_orphans == 0); 1698 err = ubifs_clear_orphans(c); 1699 if (err) 1700 goto out; 1701 } 1702 1703 if (!(c->mst_node->flags & cpu_to_le32(UBIFS_MST_DIRTY))) { 1704 c->mst_node->flags |= cpu_to_le32(UBIFS_MST_DIRTY); 1705 err = ubifs_write_master(c); 1706 if (err) 1707 goto out; 1708 } 1709 1710 if (c->superblock_need_write) { 1711 struct ubifs_sb_node *sup = c->sup_node; 1712 1713 err = ubifs_write_sb_node(c, sup); 1714 if (err) 1715 goto out; 1716 1717 c->superblock_need_write = 0; 1718 } 1719 1720 c->ileb_buf = vmalloc(c->leb_size); 1721 if (!c->ileb_buf) { 1722 err = -ENOMEM; 1723 goto out; 1724 } 1725 1726 c->write_reserve_buf = kmalloc(COMPRESSED_DATA_NODE_BUF_SZ + \ 1727 UBIFS_CIPHER_BLOCK_SIZE, GFP_KERNEL); 1728 if (!c->write_reserve_buf) { 1729 err = -ENOMEM; 1730 goto out; 1731 } 1732 1733 err = ubifs_lpt_init(c, 0, 1); 1734 if (err) 1735 goto out; 1736 1737 /* Create background thread */ 1738 c->bgt = kthread_run(ubifs_bg_thread, c, "%s", c->bgt_name); 1739 if (IS_ERR(c->bgt)) { 1740 err = PTR_ERR(c->bgt); 1741 c->bgt = NULL; 1742 ubifs_err(c, "cannot spawn \"%s\", error %d", 1743 c->bgt_name, err); 1744 goto out; 1745 } 1746 1747 c->orph_buf = vmalloc(c->leb_size); 1748 if (!c->orph_buf) { 1749 err = -ENOMEM; 1750 goto out; 1751 } 1752 1753 /* Check for enough log space */ 1754 lnum = c->lhead_lnum + 1; 1755 if (lnum >= UBIFS_LOG_LNUM + c->log_lebs) 1756 lnum = UBIFS_LOG_LNUM; 1757 if (lnum == c->ltail_lnum) { 1758 err = ubifs_consolidate_log(c); 1759 if (err) 1760 goto out; 1761 } 1762 1763 if (c->need_recovery) { 1764 err = ubifs_rcvry_gc_commit(c); 1765 if (err) 1766 goto out; 1767 1768 if (ubifs_authenticated(c)) { 1769 err = ubifs_recover_size(c, false); 1770 if (err) 1771 goto out; 1772 } 1773 } else { 1774 err = ubifs_leb_unmap(c, c->gc_lnum); 1775 } 1776 if (err) 1777 goto out; 1778 1779 dbg_gen("re-mounted read-write"); 1780 c->remounting_rw = 0; 1781 1782 if (c->need_recovery) { 1783 c->need_recovery = 0; 1784 ubifs_msg(c, "deferred recovery completed"); 1785 } else { 1786 /* 1787 * Do not run the debugging space check if the were doing 1788 * recovery, because when we saved the information we had the 1789 * file-system in a state where the TNC and lprops has been 1790 * modified in memory, but all the I/O operations (including a 1791 * commit) were deferred. So the file-system was in 1792 * "non-committed" state. Now the file-system is in committed 1793 * state, and of course the amount of free space will change 1794 * because, for example, the old index size was imprecise. 1795 */ 1796 err = dbg_check_space_info(c); 1797 } 1798 1799 mutex_unlock(&c->umount_mutex); 1800 return err; 1801 1802 out: 1803 c->ro_mount = 1; 1804 vfree(c->orph_buf); 1805 c->orph_buf = NULL; 1806 if (c->bgt) { 1807 kthread_stop(c->bgt); 1808 c->bgt = NULL; 1809 } 1810 kfree(c->write_reserve_buf); 1811 c->write_reserve_buf = NULL; 1812 vfree(c->ileb_buf); 1813 c->ileb_buf = NULL; 1814 ubifs_lpt_free(c, 1); 1815 c->remounting_rw = 0; 1816 mutex_unlock(&c->umount_mutex); 1817 return err; 1818 } 1819 1820 /** 1821 * ubifs_remount_ro - re-mount in read-only mode. 1822 * @c: UBIFS file-system description object 1823 * 1824 * We assume VFS has stopped writing. Possibly the background thread could be 1825 * running a commit, however kthread_stop will wait in that case. 1826 */ 1827 static void ubifs_remount_ro(struct ubifs_info *c) 1828 { 1829 int i, err; 1830 1831 ubifs_assert(c, !c->need_recovery); 1832 ubifs_assert(c, !c->ro_mount); 1833 1834 mutex_lock(&c->umount_mutex); 1835 if (c->bgt) { 1836 kthread_stop(c->bgt); 1837 c->bgt = NULL; 1838 } 1839 1840 dbg_save_space_info(c); 1841 1842 for (i = 0; i < c->jhead_cnt; i++) { 1843 err = ubifs_wbuf_sync(&c->jheads[i].wbuf); 1844 if (err) 1845 ubifs_ro_mode(c, err); 1846 } 1847 1848 c->mst_node->flags &= ~cpu_to_le32(UBIFS_MST_DIRTY); 1849 c->mst_node->flags |= cpu_to_le32(UBIFS_MST_NO_ORPHS); 1850 c->mst_node->gc_lnum = cpu_to_le32(c->gc_lnum); 1851 err = ubifs_write_master(c); 1852 if (err) 1853 ubifs_ro_mode(c, err); 1854 1855 vfree(c->orph_buf); 1856 c->orph_buf = NULL; 1857 kfree(c->write_reserve_buf); 1858 c->write_reserve_buf = NULL; 1859 vfree(c->ileb_buf); 1860 c->ileb_buf = NULL; 1861 ubifs_lpt_free(c, 1); 1862 c->ro_mount = 1; 1863 err = dbg_check_space_info(c); 1864 if (err) 1865 ubifs_ro_mode(c, err); 1866 mutex_unlock(&c->umount_mutex); 1867 } 1868 1869 static void ubifs_put_super(struct super_block *sb) 1870 { 1871 int i; 1872 struct ubifs_info *c = sb->s_fs_info; 1873 1874 ubifs_msg(c, "un-mount UBI device %d", c->vi.ubi_num); 1875 1876 /* 1877 * The following asserts are only valid if there has not been a failure 1878 * of the media. For example, there will be dirty inodes if we failed 1879 * to write them back because of I/O errors. 1880 */ 1881 if (!c->ro_error) { 1882 ubifs_assert(c, c->bi.idx_growth == 0); 1883 ubifs_assert(c, c->bi.dd_growth == 0); 1884 ubifs_assert(c, c->bi.data_growth == 0); 1885 } 1886 1887 /* 1888 * The 'c->umount_lock' prevents races between UBIFS memory shrinker 1889 * and file system un-mount. Namely, it prevents the shrinker from 1890 * picking this superblock for shrinking - it will be just skipped if 1891 * the mutex is locked. 1892 */ 1893 mutex_lock(&c->umount_mutex); 1894 if (!c->ro_mount) { 1895 /* 1896 * First of all kill the background thread to make sure it does 1897 * not interfere with un-mounting and freeing resources. 1898 */ 1899 if (c->bgt) { 1900 kthread_stop(c->bgt); 1901 c->bgt = NULL; 1902 } 1903 1904 /* 1905 * On fatal errors c->ro_error is set to 1, in which case we do 1906 * not write the master node. 1907 */ 1908 if (!c->ro_error) { 1909 int err; 1910 1911 /* Synchronize write-buffers */ 1912 for (i = 0; i < c->jhead_cnt; i++) { 1913 err = ubifs_wbuf_sync(&c->jheads[i].wbuf); 1914 if (err) 1915 ubifs_ro_mode(c, err); 1916 } 1917 1918 /* 1919 * We are being cleanly unmounted which means the 1920 * orphans were killed - indicate this in the master 1921 * node. Also save the reserved GC LEB number. 1922 */ 1923 c->mst_node->flags &= ~cpu_to_le32(UBIFS_MST_DIRTY); 1924 c->mst_node->flags |= cpu_to_le32(UBIFS_MST_NO_ORPHS); 1925 c->mst_node->gc_lnum = cpu_to_le32(c->gc_lnum); 1926 err = ubifs_write_master(c); 1927 if (err) 1928 /* 1929 * Recovery will attempt to fix the master area 1930 * next mount, so we just print a message and 1931 * continue to unmount normally. 1932 */ 1933 ubifs_err(c, "failed to write master node, error %d", 1934 err); 1935 } else { 1936 for (i = 0; i < c->jhead_cnt; i++) 1937 /* Make sure write-buffer timers are canceled */ 1938 hrtimer_cancel(&c->jheads[i].wbuf.timer); 1939 } 1940 } 1941 1942 ubifs_umount(c); 1943 ubi_close_volume(c->ubi); 1944 mutex_unlock(&c->umount_mutex); 1945 } 1946 1947 static int ubifs_reconfigure(struct fs_context *fc) 1948 { 1949 struct ubifs_fs_context *ctx = fc->fs_private; 1950 struct super_block *sb = fc->root->d_sb; 1951 int err; 1952 struct ubifs_info *c = sb->s_fs_info; 1953 1954 sync_filesystem(sb); 1955 dbg_gen("old flags %#lx, new flags %#x", sb->s_flags, fc->sb_flags); 1956 1957 /* 1958 * Apply the mount option changes. 1959 * auth_key_name and auth_hash_name are ignored on remount. 1960 */ 1961 c->mount_opts = ctx->mount_opts; 1962 c->bulk_read = ctx->bulk_read; 1963 c->no_chk_data_crc = ctx->no_chk_data_crc; 1964 c->default_compr = ctx->default_compr; 1965 c->assert_action = ctx->assert_action; 1966 1967 if (c->ro_mount && !(fc->sb_flags & SB_RDONLY)) { 1968 if (c->ro_error) { 1969 ubifs_msg(c, "cannot re-mount R/W due to prior errors"); 1970 return -EROFS; 1971 } 1972 if (c->ro_media) { 1973 ubifs_msg(c, "cannot re-mount R/W - UBI volume is R/O"); 1974 return -EROFS; 1975 } 1976 err = ubifs_remount_rw(c); 1977 if (err) 1978 return err; 1979 } else if (!c->ro_mount && (fc->sb_flags & SB_RDONLY)) { 1980 if (c->ro_error) { 1981 ubifs_msg(c, "cannot re-mount R/O due to prior errors"); 1982 return -EROFS; 1983 } 1984 ubifs_remount_ro(c); 1985 } 1986 1987 if (c->bulk_read == 1) 1988 bu_init(c); 1989 else { 1990 dbg_gen("disable bulk-read"); 1991 mutex_lock(&c->bu_mutex); 1992 kfree(c->bu.buf); 1993 c->bu.buf = NULL; 1994 mutex_unlock(&c->bu_mutex); 1995 } 1996 1997 if (!c->need_recovery) 1998 ubifs_assert(c, c->lst.taken_empty_lebs > 0); 1999 2000 return 0; 2001 } 2002 2003 const struct super_operations ubifs_super_operations = { 2004 .alloc_inode = ubifs_alloc_inode, 2005 .free_inode = ubifs_free_inode, 2006 .put_super = ubifs_put_super, 2007 .write_inode = ubifs_write_inode, 2008 .drop_inode = ubifs_drop_inode, 2009 .evict_inode = ubifs_evict_inode, 2010 .statfs = ubifs_statfs, 2011 .dirty_inode = ubifs_dirty_inode, 2012 .show_options = ubifs_show_options, 2013 .sync_fs = ubifs_sync_fs, 2014 }; 2015 2016 /** 2017 * open_ubi - parse UBI device name string and open the UBI device. 2018 * @fc: The filesystem context 2019 * @mode: UBI volume open mode 2020 * 2021 * The primary method of mounting UBIFS is by specifying the UBI volume 2022 * character device node path. However, UBIFS may also be mounted without any 2023 * character device node using one of the following methods: 2024 * 2025 * o ubiX_Y - mount UBI device number X, volume Y; 2026 * o ubiY - mount UBI device number 0, volume Y; 2027 * o ubiX:NAME - mount UBI device X, volume with name NAME; 2028 * o ubi:NAME - mount UBI device 0, volume with name NAME. 2029 * 2030 * Alternative '!' separator may be used instead of ':' (because some shells 2031 * like busybox may interpret ':' as an NFS host name separator). This function 2032 * returns UBI volume description object in case of success and a negative 2033 * error code in case of failure. 2034 */ 2035 static struct ubi_volume_desc *open_ubi(struct fs_context *fc, int mode) 2036 { 2037 struct ubi_volume_desc *ubi; 2038 const char *name = fc->source; 2039 int dev, vol; 2040 char *endptr; 2041 2042 /* First, try to open using the device node path method */ 2043 ubi = ubi_open_volume_path(name, mode); 2044 if (!IS_ERR(ubi)) 2045 return ubi; 2046 2047 /* Try the "nodev" method */ 2048 if (name[0] != 'u' || name[1] != 'b' || name[2] != 'i') 2049 goto invalid_source; 2050 2051 /* ubi:NAME method */ 2052 if ((name[3] == ':' || name[3] == '!') && name[4] != '\0') 2053 return ubi_open_volume_nm(0, name + 4, mode); 2054 2055 if (!isdigit(name[3])) 2056 goto invalid_source; 2057 2058 dev = simple_strtoul(name + 3, &endptr, 0); 2059 2060 /* ubiY method */ 2061 if (*endptr == '\0') 2062 return ubi_open_volume(0, dev, mode); 2063 2064 /* ubiX_Y method */ 2065 if (*endptr == '_' && isdigit(endptr[1])) { 2066 vol = simple_strtoul(endptr + 1, &endptr, 0); 2067 if (*endptr != '\0') 2068 goto invalid_source; 2069 return ubi_open_volume(dev, vol, mode); 2070 } 2071 2072 /* ubiX:NAME method */ 2073 if ((*endptr == ':' || *endptr == '!') && endptr[1] != '\0') 2074 return ubi_open_volume_nm(dev, ++endptr, mode); 2075 2076 invalid_source: 2077 return ERR_PTR(invalf(fc, "Invalid source name")); 2078 } 2079 2080 static struct ubifs_info *alloc_ubifs_info(struct ubi_volume_desc *ubi) 2081 { 2082 struct ubifs_info *c; 2083 2084 c = kzalloc_obj(struct ubifs_info); 2085 if (c) { 2086 spin_lock_init(&c->cnt_lock); 2087 spin_lock_init(&c->cs_lock); 2088 spin_lock_init(&c->buds_lock); 2089 spin_lock_init(&c->space_lock); 2090 spin_lock_init(&c->orphan_lock); 2091 init_rwsem(&c->commit_sem); 2092 mutex_init(&c->lp_mutex); 2093 mutex_init(&c->tnc_mutex); 2094 mutex_init(&c->log_mutex); 2095 mutex_init(&c->umount_mutex); 2096 mutex_init(&c->bu_mutex); 2097 mutex_init(&c->write_reserve_mutex); 2098 init_waitqueue_head(&c->cmt_wq); 2099 init_waitqueue_head(&c->reserve_space_wq); 2100 atomic_set(&c->need_wait_space, 0); 2101 c->buds = RB_ROOT; 2102 c->old_idx = RB_ROOT; 2103 c->size_tree = RB_ROOT; 2104 c->orph_tree = RB_ROOT; 2105 INIT_LIST_HEAD(&c->infos_list); 2106 INIT_LIST_HEAD(&c->idx_gc); 2107 INIT_LIST_HEAD(&c->replay_list); 2108 INIT_LIST_HEAD(&c->replay_buds); 2109 INIT_LIST_HEAD(&c->uncat_list); 2110 INIT_LIST_HEAD(&c->empty_list); 2111 INIT_LIST_HEAD(&c->freeable_list); 2112 INIT_LIST_HEAD(&c->frdi_idx_list); 2113 INIT_LIST_HEAD(&c->unclean_leb_list); 2114 INIT_LIST_HEAD(&c->old_buds); 2115 INIT_LIST_HEAD(&c->orph_list); 2116 INIT_LIST_HEAD(&c->orph_new); 2117 c->no_chk_data_crc = 1; 2118 c->assert_action = ASSACT_RO; 2119 2120 c->highest_inum = UBIFS_FIRST_INO; 2121 c->lhead_lnum = c->ltail_lnum = UBIFS_LOG_LNUM; 2122 2123 ubi_get_volume_info(ubi, &c->vi); 2124 ubi_get_device_info(c->vi.ubi_num, &c->di); 2125 } 2126 return c; 2127 } 2128 2129 static int ubifs_fill_super(struct super_block *sb, struct fs_context *fc) 2130 { 2131 struct ubifs_info *c = sb->s_fs_info; 2132 struct ubifs_fs_context *ctx = fc->fs_private; 2133 struct inode *root; 2134 int err; 2135 2136 c->vfs_sb = sb; 2137 /* Re-open the UBI device in read-write mode */ 2138 c->ubi = ubi_open_volume(c->vi.ubi_num, c->vi.vol_id, UBI_READWRITE); 2139 if (IS_ERR(c->ubi)) { 2140 err = PTR_ERR(c->ubi); 2141 goto out; 2142 } 2143 2144 /* Copy in parsed mount options */ 2145 c->mount_opts = ctx->mount_opts; 2146 c->auth_key_name = ctx->auth_key_name; 2147 c->auth_hash_name = ctx->auth_hash_name; 2148 c->no_chk_data_crc = ctx->no_chk_data_crc; 2149 c->bulk_read = ctx->bulk_read; 2150 c->default_compr = ctx->default_compr; 2151 c->assert_action = ctx->assert_action; 2152 2153 /* ubifs_info owns auth strings now */ 2154 ctx->auth_key_name = NULL; 2155 ctx->auth_hash_name = NULL; 2156 2157 /* 2158 * UBIFS provides 'backing_dev_info' in order to disable read-ahead. For 2159 * UBIFS, I/O is not deferred, it is done immediately in read_folio, 2160 * which means the user would have to wait not just for their own I/O 2161 * but the read-ahead I/O as well i.e. completely pointless. 2162 * 2163 * Read-ahead will be disabled because @sb->s_bdi->ra_pages is 0. Also 2164 * @sb->s_bdi->capabilities are initialized to 0 so there won't be any 2165 * writeback happening. 2166 */ 2167 err = super_setup_bdi_name(sb, "ubifs_%d_%d", c->vi.ubi_num, 2168 c->vi.vol_id); 2169 if (err) 2170 goto out_close; 2171 sb->s_bdi->ra_pages = 0; 2172 sb->s_bdi->io_pages = 0; 2173 2174 sb->s_fs_info = c; 2175 sb->s_magic = UBIFS_SUPER_MAGIC; 2176 sb->s_blocksize = UBIFS_BLOCK_SIZE; 2177 sb->s_blocksize_bits = UBIFS_BLOCK_SHIFT; 2178 sb->s_maxbytes = c->max_inode_sz = key_max_inode_size(c); 2179 if (c->max_inode_sz > MAX_LFS_FILESIZE) 2180 sb->s_maxbytes = c->max_inode_sz = MAX_LFS_FILESIZE; 2181 sb->s_op = &ubifs_super_operations; 2182 sb->s_xattr = ubifs_xattr_handlers; 2183 fscrypt_set_ops(sb, &ubifs_crypt_operations); 2184 2185 mutex_lock(&c->umount_mutex); 2186 err = mount_ubifs(c); 2187 if (err) { 2188 ubifs_assert(c, err < 0); 2189 goto out_unlock; 2190 } 2191 2192 /* Read the root inode */ 2193 root = ubifs_iget(sb, UBIFS_ROOT_INO); 2194 if (IS_ERR(root)) { 2195 err = PTR_ERR(root); 2196 goto out_umount; 2197 } 2198 2199 generic_set_sb_d_ops(sb); 2200 sb->s_root = d_make_root(root); 2201 if (!sb->s_root) { 2202 err = -ENOMEM; 2203 goto out_umount; 2204 } 2205 2206 super_set_uuid(sb, c->uuid, sizeof(c->uuid)); 2207 super_set_sysfs_name_generic(sb, UBIFS_DFS_DIR_NAME, 2208 c->vi.ubi_num, c->vi.vol_id); 2209 2210 mutex_unlock(&c->umount_mutex); 2211 return 0; 2212 2213 out_umount: 2214 ubifs_umount(c); 2215 out_unlock: 2216 mutex_unlock(&c->umount_mutex); 2217 out_close: 2218 ubifs_release_options(c); 2219 ubi_close_volume(c->ubi); 2220 out: 2221 return err; 2222 } 2223 2224 static int sb_test(struct super_block *sb, struct fs_context *fc) 2225 { 2226 struct ubifs_info *c1 = fc->s_fs_info; 2227 struct ubifs_info *c = sb->s_fs_info; 2228 2229 return c->vi.cdev == c1->vi.cdev; 2230 } 2231 2232 static int ubifs_get_tree(struct fs_context *fc) 2233 { 2234 struct ubi_volume_desc *ubi; 2235 struct ubifs_info *c; 2236 struct super_block *sb; 2237 int err; 2238 2239 if (!fc->source || !*fc->source) 2240 return invalf(fc, "No source specified"); 2241 2242 dbg_gen("name %s, flags %#x", fc->source, fc->sb_flags); 2243 2244 /* 2245 * Get UBI device number and volume ID. Mount it read-only so far 2246 * because this might be a new mount point, and UBI allows only one 2247 * read-write user at a time. 2248 */ 2249 ubi = open_ubi(fc, UBI_READONLY); 2250 if (IS_ERR(ubi)) { 2251 err = PTR_ERR(ubi); 2252 if (!(fc->sb_flags & SB_SILENT)) 2253 pr_err("UBIFS error (pid: %d): cannot open \"%s\", error %d", 2254 current->pid, fc->source, err); 2255 return err; 2256 } 2257 2258 c = alloc_ubifs_info(ubi); 2259 if (!c) { 2260 err = -ENOMEM; 2261 goto out_close; 2262 } 2263 fc->s_fs_info = c; 2264 2265 dbg_gen("opened ubi%d_%d", c->vi.ubi_num, c->vi.vol_id); 2266 2267 sb = sget_fc(fc, sb_test, set_anon_super_fc); 2268 if (IS_ERR(sb)) { 2269 err = PTR_ERR(sb); 2270 kfree(c); 2271 goto out_close; 2272 } 2273 2274 if (sb->s_root) { 2275 struct ubifs_info *c1 = sb->s_fs_info; 2276 kfree(c); 2277 /* A new mount point for already mounted UBIFS */ 2278 dbg_gen("this ubi volume is already mounted"); 2279 if (!!(fc->sb_flags & SB_RDONLY) != c1->ro_mount) { 2280 err = -EBUSY; 2281 goto out_deact; 2282 } 2283 } else { 2284 err = ubifs_fill_super(sb, fc); 2285 if (err) 2286 goto out_deact; 2287 /* We do not support atime */ 2288 sb->s_flags |= SB_ACTIVE; 2289 if (IS_ENABLED(CONFIG_UBIFS_ATIME_SUPPORT)) 2290 ubifs_msg(c, "full atime support is enabled."); 2291 else 2292 sb->s_flags |= SB_NOATIME; 2293 } 2294 2295 /* 'fill_super()' opens ubi again so we must close it here */ 2296 ubi_close_volume(ubi); 2297 2298 fc->root = dget(sb->s_root); 2299 return 0; 2300 2301 out_deact: 2302 deactivate_locked_super(sb); 2303 out_close: 2304 ubi_close_volume(ubi); 2305 return err; 2306 } 2307 2308 static void kill_ubifs_super(struct super_block *s) 2309 { 2310 struct ubifs_info *c = s->s_fs_info; 2311 kill_anon_super(s); 2312 kfree(c); 2313 } 2314 2315 static void ubifs_free_fc(struct fs_context *fc) 2316 { 2317 struct ubifs_fs_context *ctx = fc->fs_private; 2318 2319 if (ctx) { 2320 kfree(ctx->auth_key_name); 2321 kfree(ctx->auth_hash_name); 2322 kfree(ctx); 2323 } 2324 } 2325 2326 static const struct fs_context_operations ubifs_context_ops = { 2327 .free = ubifs_free_fc, 2328 .parse_param = ubifs_parse_param, 2329 .get_tree = ubifs_get_tree, 2330 .reconfigure = ubifs_reconfigure, 2331 }; 2332 2333 static int ubifs_init_fs_context(struct fs_context *fc) 2334 { 2335 struct ubifs_fs_context *ctx; 2336 2337 ctx = kzalloc_obj(struct ubifs_fs_context); 2338 if (!ctx) 2339 return -ENOMEM; 2340 2341 if (fc->purpose != FS_CONTEXT_FOR_RECONFIGURE) { 2342 /* Iniitialize for first mount */ 2343 ctx->no_chk_data_crc = 1; 2344 ctx->assert_action = ASSACT_RO; 2345 } else { 2346 struct ubifs_info *c = fc->root->d_sb->s_fs_info; 2347 2348 /* 2349 * Preserve existing options across remounts. 2350 * auth_key_name and auth_hash_name are not remountable. 2351 */ 2352 ctx->mount_opts = c->mount_opts; 2353 ctx->bulk_read = c->bulk_read; 2354 ctx->no_chk_data_crc = c->no_chk_data_crc; 2355 ctx->default_compr = c->default_compr; 2356 ctx->assert_action = c->assert_action; 2357 } 2358 2359 fc->ops = &ubifs_context_ops; 2360 fc->fs_private = ctx; 2361 2362 return 0; 2363 } 2364 2365 static struct file_system_type ubifs_fs_type = { 2366 .name = "ubifs", 2367 .owner = THIS_MODULE, 2368 .init_fs_context = ubifs_init_fs_context, 2369 .parameters = ubifs_fs_param_spec, 2370 .kill_sb = kill_ubifs_super, 2371 }; 2372 MODULE_ALIAS_FS("ubifs"); 2373 2374 /* 2375 * Inode slab cache constructor. 2376 */ 2377 static void inode_slab_ctor(void *obj) 2378 { 2379 struct ubifs_inode *ui = obj; 2380 inode_init_once(&ui->vfs_inode); 2381 } 2382 2383 static int __init ubifs_init(void) 2384 { 2385 int err = -ENOMEM; 2386 2387 BUILD_BUG_ON(sizeof(struct ubifs_ch) != 24); 2388 2389 /* Make sure node sizes are 8-byte aligned */ 2390 BUILD_BUG_ON(UBIFS_CH_SZ & 7); 2391 BUILD_BUG_ON(UBIFS_INO_NODE_SZ & 7); 2392 BUILD_BUG_ON(UBIFS_DENT_NODE_SZ & 7); 2393 BUILD_BUG_ON(UBIFS_XENT_NODE_SZ & 7); 2394 BUILD_BUG_ON(UBIFS_DATA_NODE_SZ & 7); 2395 BUILD_BUG_ON(UBIFS_TRUN_NODE_SZ & 7); 2396 BUILD_BUG_ON(UBIFS_SB_NODE_SZ & 7); 2397 BUILD_BUG_ON(UBIFS_MST_NODE_SZ & 7); 2398 BUILD_BUG_ON(UBIFS_REF_NODE_SZ & 7); 2399 BUILD_BUG_ON(UBIFS_CS_NODE_SZ & 7); 2400 BUILD_BUG_ON(UBIFS_ORPH_NODE_SZ & 7); 2401 2402 BUILD_BUG_ON(UBIFS_MAX_DENT_NODE_SZ & 7); 2403 BUILD_BUG_ON(UBIFS_MAX_XENT_NODE_SZ & 7); 2404 BUILD_BUG_ON(UBIFS_MAX_DATA_NODE_SZ & 7); 2405 BUILD_BUG_ON(UBIFS_MAX_INO_NODE_SZ & 7); 2406 BUILD_BUG_ON(UBIFS_MAX_NODE_SZ & 7); 2407 BUILD_BUG_ON(MIN_WRITE_SZ & 7); 2408 2409 /* Check min. node size */ 2410 BUILD_BUG_ON(UBIFS_INO_NODE_SZ < MIN_WRITE_SZ); 2411 BUILD_BUG_ON(UBIFS_DENT_NODE_SZ < MIN_WRITE_SZ); 2412 BUILD_BUG_ON(UBIFS_XENT_NODE_SZ < MIN_WRITE_SZ); 2413 BUILD_BUG_ON(UBIFS_TRUN_NODE_SZ < MIN_WRITE_SZ); 2414 2415 BUILD_BUG_ON(UBIFS_MAX_DENT_NODE_SZ > UBIFS_MAX_NODE_SZ); 2416 BUILD_BUG_ON(UBIFS_MAX_XENT_NODE_SZ > UBIFS_MAX_NODE_SZ); 2417 BUILD_BUG_ON(UBIFS_MAX_DATA_NODE_SZ > UBIFS_MAX_NODE_SZ); 2418 BUILD_BUG_ON(UBIFS_MAX_INO_NODE_SZ > UBIFS_MAX_NODE_SZ); 2419 2420 /* Defined node sizes */ 2421 BUILD_BUG_ON(UBIFS_SB_NODE_SZ != 4096); 2422 BUILD_BUG_ON(UBIFS_MST_NODE_SZ != 512); 2423 BUILD_BUG_ON(UBIFS_INO_NODE_SZ != 160); 2424 BUILD_BUG_ON(UBIFS_REF_NODE_SZ != 64); 2425 2426 /* 2427 * We use 2 bit wide bit-fields to store compression type, which should 2428 * be amended if more compressors are added. The bit-fields are: 2429 * @compr_type in 'struct ubifs_inode', @default_compr in 2430 * 'struct ubifs_info' and @compr_type in 'struct ubifs_mount_opts'. 2431 */ 2432 BUILD_BUG_ON(UBIFS_COMPR_TYPES_CNT > 4); 2433 2434 /* 2435 * We require that PAGE_SIZE is greater-than-or-equal-to 2436 * UBIFS_BLOCK_SIZE. It is assumed that both are powers of 2. 2437 */ 2438 if (PAGE_SIZE < UBIFS_BLOCK_SIZE) { 2439 pr_err("UBIFS error (pid %d): VFS page cache size is %u bytes, but UBIFS requires at least 4096 bytes", 2440 current->pid, (unsigned int)PAGE_SIZE); 2441 return -EINVAL; 2442 } 2443 2444 ubifs_inode_slab = kmem_cache_create("ubifs_inode_slab", 2445 sizeof(struct ubifs_inode), 0, 2446 SLAB_RECLAIM_ACCOUNT | SLAB_ACCOUNT, 2447 &inode_slab_ctor); 2448 if (!ubifs_inode_slab) 2449 return -ENOMEM; 2450 2451 ubifs_shrinker_info = shrinker_alloc(0, "ubifs-slab"); 2452 if (!ubifs_shrinker_info) 2453 goto out_slab; 2454 2455 ubifs_shrinker_info->count_objects = ubifs_shrink_count; 2456 ubifs_shrinker_info->scan_objects = ubifs_shrink_scan; 2457 2458 shrinker_register(ubifs_shrinker_info); 2459 2460 err = ubifs_compressors_init(); 2461 if (err) 2462 goto out_shrinker; 2463 2464 dbg_debugfs_init(); 2465 2466 err = ubifs_sysfs_init(); 2467 if (err) 2468 goto out_dbg; 2469 2470 err = register_filesystem(&ubifs_fs_type); 2471 if (err) { 2472 pr_err("UBIFS error (pid %d): cannot register file system, error %d", 2473 current->pid, err); 2474 goto out_sysfs; 2475 } 2476 return 0; 2477 2478 out_sysfs: 2479 ubifs_sysfs_exit(); 2480 out_dbg: 2481 dbg_debugfs_exit(); 2482 ubifs_compressors_exit(); 2483 out_shrinker: 2484 shrinker_free(ubifs_shrinker_info); 2485 out_slab: 2486 kmem_cache_destroy(ubifs_inode_slab); 2487 return err; 2488 } 2489 /* late_initcall to let compressors initialize first */ 2490 late_initcall(ubifs_init); 2491 2492 static void __exit ubifs_exit(void) 2493 { 2494 WARN_ON(!list_empty(&ubifs_infos)); 2495 WARN_ON(atomic_long_read(&ubifs_clean_zn_cnt) != 0); 2496 2497 dbg_debugfs_exit(); 2498 ubifs_sysfs_exit(); 2499 ubifs_compressors_exit(); 2500 shrinker_free(ubifs_shrinker_info); 2501 2502 /* 2503 * Make sure all delayed rcu free inodes are flushed before we 2504 * destroy cache. 2505 */ 2506 rcu_barrier(); 2507 kmem_cache_destroy(ubifs_inode_slab); 2508 unregister_filesystem(&ubifs_fs_type); 2509 } 2510 module_exit(ubifs_exit); 2511 2512 MODULE_LICENSE("GPL"); 2513 MODULE_VERSION(__stringify(UBIFS_VERSION)); 2514 MODULE_AUTHOR("Artem Bityutskiy, Adrian Hunter"); 2515 MODULE_DESCRIPTION("UBIFS - UBI File System"); 2516