1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright (C) 2011 Novell Inc. 4 * Copyright (C) 2016 Red Hat, Inc. 5 */ 6 7 #include <linux/fs.h> 8 #include <linux/mount.h> 9 #include <linux/slab.h> 10 #include <linux/cred.h> 11 #include <linux/xattr.h> 12 #include <linux/exportfs.h> 13 #include <linux/file.h> 14 #include <linux/fileattr.h> 15 #include <linux/uuid.h> 16 #include <linux/namei.h> 17 #include <linux/ratelimit.h> 18 #include <linux/overflow.h> 19 #include "overlayfs.h" 20 21 /* Get write access to upper mnt - may fail if upper sb was remounted ro */ 22 int ovl_get_write_access(struct dentry *dentry) 23 { 24 struct ovl_fs *ofs = OVL_FS(dentry->d_sb); 25 return mnt_get_write_access(ovl_upper_mnt(ofs)); 26 } 27 28 /* Get write access to upper sb - may block if upper sb is frozen */ 29 void ovl_start_write(struct dentry *dentry) 30 { 31 struct ovl_fs *ofs = OVL_FS(dentry->d_sb); 32 sb_start_write(ovl_upper_mnt(ofs)->mnt_sb); 33 } 34 35 int ovl_want_write(struct dentry *dentry) 36 { 37 struct ovl_fs *ofs = OVL_FS(dentry->d_sb); 38 return mnt_want_write(ovl_upper_mnt(ofs)); 39 } 40 41 void ovl_put_write_access(struct dentry *dentry) 42 { 43 struct ovl_fs *ofs = OVL_FS(dentry->d_sb); 44 mnt_put_write_access(ovl_upper_mnt(ofs)); 45 } 46 47 void ovl_end_write(struct dentry *dentry) 48 { 49 struct ovl_fs *ofs = OVL_FS(dentry->d_sb); 50 sb_end_write(ovl_upper_mnt(ofs)->mnt_sb); 51 } 52 53 void ovl_drop_write(struct dentry *dentry) 54 { 55 struct ovl_fs *ofs = OVL_FS(dentry->d_sb); 56 mnt_drop_write(ovl_upper_mnt(ofs)); 57 } 58 59 struct dentry *ovl_workdir(struct dentry *dentry) 60 { 61 struct ovl_fs *ofs = OVL_FS(dentry->d_sb); 62 return ofs->workdir; 63 } 64 65 const struct cred *ovl_override_creds(struct super_block *sb) 66 { 67 struct ovl_fs *ofs = OVL_FS(sb); 68 69 return override_creds(ofs->creator_cred); 70 } 71 72 /* 73 * Check if underlying fs supports file handles and try to determine encoding 74 * type, in order to deduce maximum inode number used by fs. 75 * 76 * Return 0 if file handles are not supported. 77 * Return 1 (FILEID_INO32_GEN) if fs uses the default 32bit inode encoding. 78 * Return -1 if fs uses a non default encoding with unknown inode size. 79 */ 80 int ovl_can_decode_fh(struct super_block *sb) 81 { 82 if (!capable(CAP_DAC_READ_SEARCH)) 83 return 0; 84 85 if (!exportfs_can_decode_fh(sb->s_export_op)) 86 return 0; 87 88 if (sb->s_export_op->encode_fh == generic_encode_ino32_fh) 89 return FILEID_INO32_GEN; 90 91 return -1; 92 } 93 94 struct dentry *ovl_indexdir(struct super_block *sb) 95 { 96 struct ovl_fs *ofs = OVL_FS(sb); 97 98 return ofs->config.index ? ofs->workdir : NULL; 99 } 100 101 /* Index all files on copy up. For now only enabled for NFS export */ 102 bool ovl_index_all(struct super_block *sb) 103 { 104 struct ovl_fs *ofs = OVL_FS(sb); 105 106 return ofs->config.nfs_export && ofs->config.index; 107 } 108 109 /* Verify lower origin on lookup. For now only enabled for NFS export */ 110 bool ovl_verify_lower(struct super_block *sb) 111 { 112 struct ovl_fs *ofs = OVL_FS(sb); 113 114 return ofs->config.nfs_export && ofs->config.index; 115 } 116 117 struct ovl_path *ovl_stack_alloc(unsigned int n) 118 { 119 return kzalloc_objs(struct ovl_path, n); 120 } 121 122 void ovl_stack_cpy(struct ovl_path *dst, struct ovl_path *src, unsigned int n) 123 { 124 unsigned int i; 125 126 memcpy(dst, src, sizeof(struct ovl_path) * n); 127 for (i = 0; i < n; i++) 128 dget(src[i].dentry); 129 } 130 131 void ovl_stack_put(struct ovl_path *stack, unsigned int n) 132 { 133 unsigned int i; 134 135 for (i = 0; stack && i < n; i++) 136 dput(stack[i].dentry); 137 } 138 139 void ovl_stack_free(struct ovl_path *stack, unsigned int n) 140 { 141 ovl_stack_put(stack, n); 142 kfree(stack); 143 } 144 145 struct ovl_entry *ovl_alloc_entry(unsigned int numlower) 146 { 147 struct ovl_entry *oe; 148 149 oe = kzalloc_flex(*oe, __lowerstack, numlower); 150 if (oe) 151 oe->__numlower = numlower; 152 153 return oe; 154 } 155 156 void ovl_free_entry(struct ovl_entry *oe) 157 { 158 ovl_stack_put(ovl_lowerstack(oe), ovl_numlower(oe)); 159 kfree(oe); 160 } 161 162 #define OVL_D_REVALIDATE (DCACHE_OP_REVALIDATE | DCACHE_OP_WEAK_REVALIDATE) 163 164 bool ovl_dentry_remote(struct dentry *dentry) 165 { 166 return dentry->d_flags & OVL_D_REVALIDATE; 167 } 168 169 void ovl_dentry_update_reval(struct dentry *dentry, struct dentry *realdentry) 170 { 171 if (!ovl_dentry_remote(realdentry)) 172 return; 173 174 spin_lock(&dentry->d_lock); 175 dentry->d_flags |= realdentry->d_flags & OVL_D_REVALIDATE; 176 spin_unlock(&dentry->d_lock); 177 } 178 179 void ovl_dentry_init_reval(struct dentry *dentry, struct dentry *upperdentry, 180 struct ovl_entry *oe) 181 { 182 return ovl_dentry_init_flags(dentry, upperdentry, oe, OVL_D_REVALIDATE); 183 } 184 185 void ovl_dentry_init_flags(struct dentry *dentry, struct dentry *upperdentry, 186 struct ovl_entry *oe, unsigned int mask) 187 { 188 struct ovl_path *lowerstack = ovl_lowerstack(oe); 189 unsigned int i, flags = 0; 190 191 if (upperdentry) 192 flags |= upperdentry->d_flags; 193 for (i = 0; i < ovl_numlower(oe) && lowerstack[i].dentry; i++) 194 flags |= lowerstack[i].dentry->d_flags; 195 196 spin_lock(&dentry->d_lock); 197 dentry->d_flags &= ~mask; 198 dentry->d_flags |= flags & mask; 199 spin_unlock(&dentry->d_lock); 200 } 201 202 bool ovl_dentry_weird(struct dentry *dentry) 203 { 204 if (!d_can_lookup(dentry) && !d_is_file(dentry) && !d_is_symlink(dentry)) 205 return true; 206 207 if (dentry->d_flags & (DCACHE_NEED_AUTOMOUNT | DCACHE_MANAGE_TRANSIT)) 208 return true; 209 210 /* 211 * Exceptionally for layers with casefold, we accept that they have 212 * their own hash and compare operations 213 */ 214 if (sb_has_encoding(dentry->d_sb)) 215 return false; 216 217 return dentry->d_flags & (DCACHE_OP_HASH | DCACHE_OP_COMPARE); 218 } 219 220 enum ovl_path_type ovl_path_type(struct dentry *dentry) 221 { 222 struct ovl_entry *oe = OVL_E(dentry); 223 enum ovl_path_type type = 0; 224 225 if (ovl_dentry_upper(dentry)) { 226 type = __OVL_PATH_UPPER; 227 228 /* 229 * Non-dir dentry can hold lower dentry of its copy up origin. 230 */ 231 if (ovl_numlower(oe)) { 232 if (ovl_test_flag(OVL_CONST_INO, d_inode(dentry))) 233 type |= __OVL_PATH_ORIGIN; 234 if (d_is_dir(dentry) || 235 !ovl_has_upperdata(d_inode(dentry))) 236 type |= __OVL_PATH_MERGE; 237 } 238 } else { 239 if (ovl_numlower(oe) > 1) 240 type |= __OVL_PATH_MERGE; 241 } 242 return type; 243 } 244 245 void ovl_path_upper(struct dentry *dentry, struct path *path) 246 { 247 struct ovl_fs *ofs = OVL_FS(dentry->d_sb); 248 249 path->mnt = ovl_upper_mnt(ofs); 250 path->dentry = ovl_dentry_upper(dentry); 251 } 252 253 void ovl_path_lower(struct dentry *dentry, struct path *path) 254 { 255 struct ovl_entry *oe = OVL_E(dentry); 256 struct ovl_path *lowerpath = ovl_lowerstack(oe); 257 258 if (ovl_numlower(oe)) { 259 path->mnt = lowerpath->layer->mnt; 260 path->dentry = lowerpath->dentry; 261 } else { 262 *path = (struct path) { }; 263 } 264 } 265 266 void ovl_path_lowerdata(struct dentry *dentry, struct path *path) 267 { 268 struct ovl_entry *oe = OVL_E(dentry); 269 struct ovl_path *lowerdata = ovl_lowerdata(oe); 270 struct dentry *lowerdata_dentry = ovl_lowerdata_dentry(oe); 271 272 if (lowerdata_dentry) { 273 path->dentry = lowerdata_dentry; 274 /* 275 * Pairs with smp_wmb() in ovl_dentry_set_lowerdata(). 276 * Make sure that if lowerdata->dentry is visible, then 277 * datapath->layer is visible as well. 278 */ 279 smp_rmb(); 280 path->mnt = READ_ONCE(lowerdata->layer)->mnt; 281 } else { 282 *path = (struct path) { }; 283 } 284 } 285 286 enum ovl_path_type ovl_path_real(struct dentry *dentry, struct path *path) 287 { 288 enum ovl_path_type type = ovl_path_type(dentry); 289 290 if (!OVL_TYPE_UPPER(type)) 291 ovl_path_lower(dentry, path); 292 else 293 ovl_path_upper(dentry, path); 294 295 return type; 296 } 297 298 enum ovl_path_type ovl_path_realdata(struct dentry *dentry, struct path *path) 299 { 300 enum ovl_path_type type = ovl_path_type(dentry); 301 302 WARN_ON_ONCE(d_is_dir(dentry)); 303 304 if (!OVL_TYPE_UPPER(type) || OVL_TYPE_MERGE(type)) 305 ovl_path_lowerdata(dentry, path); 306 else 307 ovl_path_upper(dentry, path); 308 309 return type; 310 } 311 312 struct dentry *ovl_dentry_upper(struct dentry *dentry) 313 { 314 struct inode *inode = d_inode(dentry); 315 316 return inode ? ovl_upperdentry_dereference(OVL_I(inode)) : NULL; 317 } 318 319 struct dentry *ovl_dentry_lower(struct dentry *dentry) 320 { 321 struct ovl_entry *oe = OVL_E(dentry); 322 323 return ovl_numlower(oe) ? ovl_lowerstack(oe)->dentry : NULL; 324 } 325 326 const struct ovl_layer *ovl_layer_lower(struct dentry *dentry) 327 { 328 struct ovl_entry *oe = OVL_E(dentry); 329 330 return ovl_numlower(oe) ? ovl_lowerstack(oe)->layer : NULL; 331 } 332 333 /* 334 * ovl_dentry_lower() could return either a data dentry or metacopy dentry 335 * depending on what is stored in lowerstack[0]. At times we need to find 336 * lower dentry which has data (and not metacopy dentry). This helper 337 * returns the lower data dentry. 338 */ 339 struct dentry *ovl_dentry_lowerdata(struct dentry *dentry) 340 { 341 return ovl_lowerdata_dentry(OVL_E(dentry)); 342 } 343 344 int ovl_dentry_set_lowerdata(struct dentry *dentry, struct ovl_path *datapath) 345 { 346 struct ovl_entry *oe = OVL_E(dentry); 347 struct ovl_path *lowerdata = ovl_lowerdata(oe); 348 struct dentry *datadentry = datapath->dentry; 349 350 if (WARN_ON_ONCE(ovl_numlower(oe) <= 1)) 351 return -EIO; 352 353 WRITE_ONCE(lowerdata->layer, datapath->layer); 354 /* 355 * Pairs with smp_rmb() in ovl_path_lowerdata(). 356 * Make sure that if lowerdata->dentry is visible, then 357 * lowerdata->layer is visible as well. 358 */ 359 smp_wmb(); 360 WRITE_ONCE(lowerdata->dentry, dget(datadentry)); 361 362 ovl_dentry_update_reval(dentry, datadentry); 363 364 return 0; 365 } 366 367 struct dentry *ovl_dentry_real(struct dentry *dentry) 368 { 369 return ovl_dentry_upper(dentry) ?: ovl_dentry_lower(dentry); 370 } 371 372 struct dentry *ovl_i_dentry_upper(struct inode *inode) 373 { 374 return ovl_upperdentry_dereference(OVL_I(inode)); 375 } 376 377 struct inode *ovl_i_path_real(struct inode *inode, struct path *path) 378 { 379 struct ovl_path *lowerpath = ovl_lowerpath(OVL_I_E(inode)); 380 381 path->dentry = ovl_i_dentry_upper(inode); 382 if (!path->dentry) { 383 path->dentry = lowerpath->dentry; 384 path->mnt = lowerpath->layer->mnt; 385 } else { 386 path->mnt = ovl_upper_mnt(OVL_FS(inode->i_sb)); 387 } 388 389 return path->dentry ? d_inode_rcu(path->dentry) : NULL; 390 } 391 392 struct inode *ovl_inode_upper(struct inode *inode) 393 { 394 struct dentry *upperdentry = ovl_i_dentry_upper(inode); 395 396 return upperdentry ? d_inode(upperdentry) : NULL; 397 } 398 399 struct inode *ovl_inode_lower(struct inode *inode) 400 { 401 struct ovl_path *lowerpath = ovl_lowerpath(OVL_I_E(inode)); 402 403 return lowerpath ? d_inode(lowerpath->dentry) : NULL; 404 } 405 406 struct inode *ovl_inode_real(struct inode *inode) 407 { 408 return ovl_inode_upper(inode) ?: ovl_inode_lower(inode); 409 } 410 411 /* Return inode which contains lower data. Do not return metacopy */ 412 struct inode *ovl_inode_lowerdata(struct inode *inode) 413 { 414 struct dentry *lowerdata = ovl_lowerdata_dentry(OVL_I_E(inode)); 415 416 if (WARN_ON(!S_ISREG(inode->i_mode))) 417 return NULL; 418 419 return lowerdata ? d_inode(lowerdata) : NULL; 420 } 421 422 /* Return real inode which contains data. Does not return metacopy inode */ 423 struct inode *ovl_inode_realdata(struct inode *inode) 424 { 425 struct inode *upperinode; 426 427 upperinode = ovl_inode_upper(inode); 428 if (upperinode && ovl_has_upperdata(inode)) 429 return upperinode; 430 431 return ovl_inode_lowerdata(inode); 432 } 433 434 const char *ovl_lowerdata_redirect(struct inode *inode) 435 { 436 return inode && S_ISREG(inode->i_mode) ? 437 OVL_I(inode)->lowerdata_redirect : NULL; 438 } 439 440 struct ovl_dir_cache *ovl_dir_cache(struct inode *inode) 441 { 442 return inode && S_ISDIR(inode->i_mode) ? OVL_I(inode)->cache : NULL; 443 } 444 445 void ovl_set_dir_cache(struct inode *inode, struct ovl_dir_cache *cache) 446 { 447 OVL_I(inode)->cache = cache; 448 } 449 450 void ovl_dentry_set_flag(unsigned long flag, struct dentry *dentry) 451 { 452 set_bit(flag, OVL_E_FLAGS(dentry)); 453 } 454 455 void ovl_dentry_clear_flag(unsigned long flag, struct dentry *dentry) 456 { 457 clear_bit(flag, OVL_E_FLAGS(dentry)); 458 } 459 460 bool ovl_dentry_test_flag(unsigned long flag, struct dentry *dentry) 461 { 462 return test_bit(flag, OVL_E_FLAGS(dentry)); 463 } 464 465 bool ovl_dentry_is_opaque(struct dentry *dentry) 466 { 467 return ovl_dentry_test_flag(OVL_E_OPAQUE, dentry); 468 } 469 470 bool ovl_dentry_is_whiteout(struct dentry *dentry) 471 { 472 return !dentry->d_inode && ovl_dentry_is_opaque(dentry); 473 } 474 475 void ovl_dentry_set_opaque(struct dentry *dentry) 476 { 477 ovl_dentry_set_flag(OVL_E_OPAQUE, dentry); 478 } 479 480 bool ovl_dentry_has_xwhiteouts(struct dentry *dentry) 481 { 482 return ovl_dentry_test_flag(OVL_E_XWHITEOUTS, dentry); 483 } 484 485 void ovl_dentry_set_xwhiteouts(struct dentry *dentry) 486 { 487 ovl_dentry_set_flag(OVL_E_XWHITEOUTS, dentry); 488 } 489 490 /* 491 * ovl_layer_set_xwhiteouts() is called before adding the overlay dir 492 * dentry to dcache, while readdir of that same directory happens after 493 * the overlay dir dentry is in dcache, so if some cpu observes that 494 * ovl_dentry_is_xwhiteouts(), it will also observe layer->has_xwhiteouts 495 * for the layers where xwhiteouts marker was found in that merge dir. 496 */ 497 void ovl_layer_set_xwhiteouts(struct ovl_fs *ofs, 498 const struct ovl_layer *layer) 499 { 500 if (layer->has_xwhiteouts) 501 return; 502 503 /* Write once to read-mostly layer properties */ 504 ofs->layers[layer->idx].has_xwhiteouts = true; 505 } 506 507 /* 508 * For hard links and decoded file handles, it's possible for ovl_dentry_upper() 509 * to return positive, while there's no actual upper alias for the inode. 510 * Copy up code needs to know about the existence of the upper alias, so it 511 * can't use ovl_dentry_upper(). 512 */ 513 bool ovl_dentry_has_upper_alias(struct dentry *dentry) 514 { 515 return ovl_dentry_test_flag(OVL_E_UPPER_ALIAS, dentry); 516 } 517 518 void ovl_dentry_set_upper_alias(struct dentry *dentry) 519 { 520 ovl_dentry_set_flag(OVL_E_UPPER_ALIAS, dentry); 521 } 522 523 static bool ovl_should_check_upperdata(struct inode *inode) 524 { 525 if (!S_ISREG(inode->i_mode)) 526 return false; 527 528 if (!ovl_inode_lower(inode)) 529 return false; 530 531 return true; 532 } 533 534 bool ovl_has_upperdata(struct inode *inode) 535 { 536 if (!ovl_should_check_upperdata(inode)) 537 return true; 538 539 if (!ovl_test_flag(OVL_UPPERDATA, inode)) 540 return false; 541 /* 542 * Pairs with smp_wmb() in ovl_set_upperdata(). Main user of 543 * ovl_has_upperdata() is ovl_copy_up_meta_inode_data(). Make sure 544 * if setting of OVL_UPPERDATA is visible, then effects of writes 545 * before that are visible too. 546 */ 547 smp_rmb(); 548 return true; 549 } 550 551 void ovl_set_upperdata(struct inode *inode) 552 { 553 /* 554 * Pairs with smp_rmb() in ovl_has_upperdata(). Make sure 555 * if OVL_UPPERDATA flag is visible, then effects of write operations 556 * before it are visible as well. 557 */ 558 smp_wmb(); 559 ovl_set_flag(OVL_UPPERDATA, inode); 560 } 561 562 /* Caller should hold ovl_inode->lock */ 563 bool ovl_dentry_needs_data_copy_up_locked(struct dentry *dentry, int flags) 564 { 565 if (!ovl_open_flags_need_copy_up(flags)) 566 return false; 567 568 return !ovl_test_flag(OVL_UPPERDATA, d_inode(dentry)); 569 } 570 571 bool ovl_dentry_needs_data_copy_up(struct dentry *dentry, int flags) 572 { 573 if (!ovl_open_flags_need_copy_up(flags)) 574 return false; 575 576 return !ovl_has_upperdata(d_inode(dentry)); 577 } 578 579 const char *ovl_dentry_get_redirect(struct dentry *dentry) 580 { 581 return OVL_I(d_inode(dentry))->redirect; 582 } 583 584 void ovl_dentry_set_redirect(struct dentry *dentry, const char *redirect) 585 { 586 struct ovl_inode *oi = OVL_I(d_inode(dentry)); 587 588 kfree(oi->redirect); 589 oi->redirect = redirect; 590 } 591 592 void ovl_inode_update(struct inode *inode, struct dentry *upperdentry) 593 { 594 struct inode *upperinode = d_inode(upperdentry); 595 596 WARN_ON(OVL_I(inode)->__upperdentry); 597 598 /* 599 * Make sure upperdentry is consistent before making it visible 600 */ 601 smp_wmb(); 602 OVL_I(inode)->__upperdentry = upperdentry; 603 if (inode_unhashed(inode)) { 604 inode->i_private = upperinode; 605 __insert_inode_hash(inode, (unsigned long) upperinode); 606 } 607 } 608 609 static void ovl_dir_version_inc(struct dentry *dentry, bool impurity) 610 { 611 struct inode *inode = d_inode(dentry); 612 613 WARN_ON(!inode_is_locked(inode)); 614 WARN_ON(!d_is_dir(dentry)); 615 /* 616 * Version is used by readdir code to keep cache consistent. 617 * For merge dirs (or dirs with origin) all changes need to be noted. 618 * For non-merge dirs, cache contains only impure entries (i.e. ones 619 * which have been copied up and have origins), so only need to note 620 * changes to impure entries. 621 */ 622 if (!ovl_dir_is_real(inode) || impurity) 623 OVL_I(inode)->version++; 624 } 625 626 void ovl_dir_modified(struct dentry *dentry, bool impurity) 627 { 628 /* Copy mtime/ctime */ 629 ovl_copyattr(d_inode(dentry)); 630 631 ovl_dir_version_inc(dentry, impurity); 632 } 633 634 u64 ovl_inode_version_get(struct inode *inode) 635 { 636 WARN_ON(!inode_is_locked(inode)); 637 return OVL_I(inode)->version; 638 } 639 640 bool ovl_is_whiteout(struct dentry *dentry) 641 { 642 struct inode *inode = dentry->d_inode; 643 644 return inode && IS_WHITEOUT(inode); 645 } 646 647 /* 648 * Use this over ovl_is_whiteout for upper and lower files, as it also 649 * handles overlay.whiteout xattr whiteout files. 650 */ 651 bool ovl_path_is_whiteout(struct ovl_fs *ofs, const struct path *path) 652 { 653 return ovl_is_whiteout(path->dentry) || 654 ovl_path_check_xwhiteout_xattr(ofs, path); 655 } 656 657 struct file *ovl_path_open(const struct path *path, int flags) 658 { 659 struct inode *inode = d_inode(path->dentry); 660 struct mnt_idmap *real_idmap = mnt_idmap(path->mnt); 661 int err, acc_mode; 662 663 if (flags & ~(O_ACCMODE | O_LARGEFILE)) 664 BUG(); 665 666 switch (flags & O_ACCMODE) { 667 case O_RDONLY: 668 acc_mode = MAY_READ; 669 break; 670 case O_WRONLY: 671 acc_mode = MAY_WRITE; 672 break; 673 default: 674 BUG(); 675 } 676 677 err = inode_permission(real_idmap, inode, acc_mode | MAY_OPEN); 678 if (err) 679 return ERR_PTR(err); 680 681 /* O_NOATIME is an optimization, don't fail if not permitted */ 682 if (inode_owner_or_capable(real_idmap, inode)) 683 flags |= O_NOATIME; 684 685 return dentry_open(path, flags, current_cred()); 686 } 687 688 /* Caller should hold ovl_inode->lock */ 689 static bool ovl_already_copied_up_locked(struct dentry *dentry, int flags) 690 { 691 bool disconnected = dentry->d_flags & DCACHE_DISCONNECTED; 692 693 if (ovl_dentry_upper(dentry) && 694 (ovl_dentry_has_upper_alias(dentry) || disconnected) && 695 !ovl_dentry_needs_data_copy_up_locked(dentry, flags)) 696 return true; 697 698 return false; 699 } 700 701 bool ovl_already_copied_up(struct dentry *dentry, int flags) 702 { 703 bool disconnected = dentry->d_flags & DCACHE_DISCONNECTED; 704 705 /* 706 * Check if copy-up has happened as well as for upper alias (in 707 * case of hard links) is there. 708 * 709 * Both checks are lockless: 710 * - false negatives: will recheck under oi->lock 711 * - false positives: 712 * + ovl_dentry_upper() uses memory barriers to ensure the 713 * upper dentry is up-to-date 714 * + ovl_dentry_has_upper_alias() relies on locking of 715 * upper parent i_rwsem to prevent reordering copy-up 716 * with rename. 717 */ 718 if (ovl_dentry_upper(dentry) && 719 (ovl_dentry_has_upper_alias(dentry) || disconnected) && 720 !ovl_dentry_needs_data_copy_up(dentry, flags)) 721 return true; 722 723 return false; 724 } 725 726 /* 727 * The copy up "transaction" keeps an elevated mnt write count on upper mnt, 728 * but leaves taking freeze protection on upper sb to lower level helpers. 729 */ 730 int ovl_copy_up_start(struct dentry *dentry, int flags) 731 { 732 struct inode *inode = d_inode(dentry); 733 int err; 734 735 err = ovl_inode_lock_interruptible(inode); 736 if (err) 737 return err; 738 739 if (ovl_already_copied_up_locked(dentry, flags)) 740 err = 1; /* Already copied up */ 741 else 742 err = ovl_get_write_access(dentry); 743 if (err) 744 goto out_unlock; 745 746 return 0; 747 748 out_unlock: 749 ovl_inode_unlock(inode); 750 return err; 751 } 752 753 void ovl_copy_up_end(struct dentry *dentry) 754 { 755 ovl_put_write_access(dentry); 756 ovl_inode_unlock(d_inode(dentry)); 757 } 758 759 bool ovl_path_check_origin_xattr(struct ovl_fs *ofs, const struct path *path) 760 { 761 int res; 762 763 res = ovl_path_getxattr(ofs, path, OVL_XATTR_ORIGIN, NULL, 0); 764 765 /* Zero size value means "copied up but origin unknown" */ 766 if (res >= 0) 767 return true; 768 769 return false; 770 } 771 772 bool ovl_path_check_xwhiteout_xattr(struct ovl_fs *ofs, const struct path *path) 773 { 774 struct dentry *dentry = path->dentry; 775 int res; 776 777 /* xattr.whiteout must be a zero size regular file */ 778 if (!d_is_reg(dentry) || i_size_read(d_inode(dentry)) != 0) 779 return false; 780 781 res = ovl_path_getxattr(ofs, path, OVL_XATTR_XWHITEOUT, NULL, 0); 782 return res >= 0; 783 } 784 785 /* 786 * Load persistent uuid from xattr into s_uuid if found, or store a new 787 * random generated value in s_uuid and in xattr. 788 */ 789 bool ovl_init_uuid_xattr(struct super_block *sb, struct ovl_fs *ofs, 790 const struct path *upperpath) 791 { 792 bool set = false; 793 uuid_t uuid; 794 int res; 795 796 /* Try to load existing persistent uuid */ 797 res = ovl_path_getxattr(ofs, upperpath, OVL_XATTR_UUID, uuid.b, 798 UUID_SIZE); 799 if (res == UUID_SIZE) 800 goto set_uuid; 801 802 if (res != -ENODATA) 803 goto fail; 804 805 /* 806 * With uuid=auto, if uuid xattr is found, it will be used. 807 * If uuid xattrs is not found, generate a persistent uuid only on mount 808 * of new overlays where upper root dir is not yet marked as impure. 809 * An upper dir is marked as impure on copy up or lookup of its subdirs. 810 */ 811 if (ofs->config.uuid == OVL_UUID_AUTO) { 812 res = ovl_path_getxattr(ofs, upperpath, OVL_XATTR_IMPURE, NULL, 813 0); 814 if (res > 0) { 815 /* Any mount of old overlay - downgrade to uuid=null */ 816 ofs->config.uuid = OVL_UUID_NULL; 817 return true; 818 } else if (res == -ENODATA) { 819 /* First mount of new overlay - upgrade to uuid=on */ 820 ofs->config.uuid = OVL_UUID_ON; 821 } else if (res < 0) { 822 goto fail; 823 } 824 825 } 826 827 /* Generate overlay instance uuid */ 828 uuid_gen(&uuid); 829 830 /* Try to store persistent uuid */ 831 set = true; 832 res = ovl_setxattr(ofs, upperpath->dentry, OVL_XATTR_UUID, uuid.b, 833 UUID_SIZE); 834 if (res) 835 goto fail; 836 837 set_uuid: 838 super_set_uuid(sb, uuid.b, sizeof(uuid)); 839 return true; 840 841 fail: 842 ofs->config.uuid = OVL_UUID_NULL; 843 pr_warn("failed to %s uuid (%pd2, err=%i); falling back to uuid=null.\n", 844 set ? "set" : "get", upperpath->dentry, res); 845 return false; 846 } 847 848 char ovl_get_dir_xattr_val(struct ovl_fs *ofs, const struct path *path, 849 enum ovl_xattr ox) 850 { 851 int res; 852 char val; 853 854 if (!d_is_dir(path->dentry)) 855 return 0; 856 857 res = ovl_path_getxattr(ofs, path, ox, &val, 1); 858 return res == 1 ? val : 0; 859 } 860 861 #define OVL_XATTR_OPAQUE_POSTFIX "opaque" 862 #define OVL_XATTR_REDIRECT_POSTFIX "redirect" 863 #define OVL_XATTR_ORIGIN_POSTFIX "origin" 864 #define OVL_XATTR_IMPURE_POSTFIX "impure" 865 #define OVL_XATTR_NLINK_POSTFIX "nlink" 866 #define OVL_XATTR_UPPER_POSTFIX "upper" 867 #define OVL_XATTR_UUID_POSTFIX "uuid" 868 #define OVL_XATTR_METACOPY_POSTFIX "metacopy" 869 #define OVL_XATTR_PROTATTR_POSTFIX "protattr" 870 #define OVL_XATTR_XWHITEOUT_POSTFIX "whiteout" 871 872 #define OVL_XATTR_TAB_ENTRY(x) \ 873 [x] = { [false] = OVL_XATTR_TRUSTED_PREFIX x ## _POSTFIX, \ 874 [true] = OVL_XATTR_USER_PREFIX x ## _POSTFIX } 875 876 const char *const ovl_xattr_table[][2] = { 877 OVL_XATTR_TAB_ENTRY(OVL_XATTR_OPAQUE), 878 OVL_XATTR_TAB_ENTRY(OVL_XATTR_REDIRECT), 879 OVL_XATTR_TAB_ENTRY(OVL_XATTR_ORIGIN), 880 OVL_XATTR_TAB_ENTRY(OVL_XATTR_IMPURE), 881 OVL_XATTR_TAB_ENTRY(OVL_XATTR_NLINK), 882 OVL_XATTR_TAB_ENTRY(OVL_XATTR_UPPER), 883 OVL_XATTR_TAB_ENTRY(OVL_XATTR_UUID), 884 OVL_XATTR_TAB_ENTRY(OVL_XATTR_METACOPY), 885 OVL_XATTR_TAB_ENTRY(OVL_XATTR_PROTATTR), 886 OVL_XATTR_TAB_ENTRY(OVL_XATTR_XWHITEOUT), 887 }; 888 889 int ovl_check_setxattr(struct ovl_fs *ofs, struct dentry *upperdentry, 890 enum ovl_xattr ox, const void *value, size_t size, 891 int xerr) 892 { 893 int err; 894 895 if (ofs->noxattr) 896 return xerr; 897 898 err = ovl_setxattr(ofs, upperdentry, ox, value, size); 899 900 if (err == -EOPNOTSUPP) { 901 pr_warn("cannot set %s xattr on upper\n", ovl_xattr(ofs, ox)); 902 ofs->noxattr = true; 903 return xerr; 904 } 905 906 return err; 907 } 908 909 int ovl_set_impure(struct dentry *dentry, struct dentry *upperdentry) 910 { 911 struct ovl_fs *ofs = OVL_FS(dentry->d_sb); 912 int err; 913 914 if (ovl_test_flag(OVL_IMPURE, d_inode(dentry))) 915 return 0; 916 917 /* 918 * Do not fail when upper doesn't support xattrs. 919 * Upper inodes won't have origin nor redirect xattr anyway. 920 */ 921 err = ovl_check_setxattr(ofs, upperdentry, OVL_XATTR_IMPURE, "y", 1, 0); 922 if (!err) 923 ovl_set_flag(OVL_IMPURE, d_inode(dentry)); 924 925 return err; 926 } 927 928 929 #define OVL_PROTATTR_MAX 32 /* Reserved for future flags */ 930 931 void ovl_check_protattr(struct inode *inode, struct dentry *upper) 932 { 933 struct ovl_fs *ofs = OVL_FS(inode->i_sb); 934 u32 iflags = inode->i_flags & OVL_PROT_I_FLAGS_MASK; 935 char buf[OVL_PROTATTR_MAX+1]; 936 int res, n; 937 938 res = ovl_getxattr_upper(ofs, upper, OVL_XATTR_PROTATTR, buf, 939 OVL_PROTATTR_MAX); 940 if (res < 0) 941 return; 942 943 /* 944 * Initialize inode flags from overlay.protattr xattr and upper inode 945 * flags. If upper inode has those fileattr flags set (i.e. from old 946 * kernel), we do not clear them on ovl_get_inode(), but we will clear 947 * them on next fileattr_set(). 948 */ 949 for (n = 0; n < res; n++) { 950 if (buf[n] == 'a') 951 iflags |= S_APPEND; 952 else if (buf[n] == 'i') 953 iflags |= S_IMMUTABLE; 954 else 955 break; 956 } 957 958 if (!res || n < res) { 959 pr_warn_ratelimited("incompatible overlay.protattr format (%pd2, len=%d)\n", 960 upper, res); 961 } else { 962 inode_set_flags(inode, iflags, OVL_PROT_I_FLAGS_MASK); 963 } 964 } 965 966 int ovl_set_protattr(struct inode *inode, struct dentry *upper, 967 struct file_kattr *fa) 968 { 969 struct ovl_fs *ofs = OVL_FS(inode->i_sb); 970 char buf[OVL_PROTATTR_MAX]; 971 int len = 0, err = 0; 972 u32 iflags = 0; 973 974 BUILD_BUG_ON(HWEIGHT32(OVL_PROT_FS_FLAGS_MASK) > OVL_PROTATTR_MAX); 975 976 if (fa->flags & FS_APPEND_FL) { 977 buf[len++] = 'a'; 978 iflags |= S_APPEND; 979 } 980 if (fa->flags & FS_IMMUTABLE_FL) { 981 buf[len++] = 'i'; 982 iflags |= S_IMMUTABLE; 983 } 984 985 /* 986 * Do not allow to set protection flags when upper doesn't support 987 * xattrs, because we do not set those fileattr flags on upper inode. 988 * Remove xattr if it exist and all protection flags are cleared. 989 */ 990 if (len) { 991 err = ovl_check_setxattr(ofs, upper, OVL_XATTR_PROTATTR, 992 buf, len, -EPERM); 993 } else if (inode->i_flags & OVL_PROT_I_FLAGS_MASK) { 994 err = ovl_removexattr(ofs, upper, OVL_XATTR_PROTATTR); 995 if (err == -EOPNOTSUPP || err == -ENODATA) 996 err = 0; 997 } 998 if (err) 999 return err; 1000 1001 inode_set_flags(inode, iflags, OVL_PROT_I_FLAGS_MASK); 1002 1003 /* Mask out the fileattr flags that should not be set in upper inode */ 1004 fa->flags &= ~OVL_PROT_FS_FLAGS_MASK; 1005 fa->fsx_xflags &= ~OVL_PROT_FSX_FLAGS_MASK; 1006 1007 return 0; 1008 } 1009 1010 /* 1011 * Caller must hold a reference to inode to prevent it from being freed while 1012 * it is marked inuse. 1013 */ 1014 bool ovl_inuse_trylock(struct dentry *dentry) 1015 { 1016 struct inode *inode = d_inode(dentry); 1017 bool locked = false; 1018 1019 spin_lock(&inode->i_lock); 1020 if (!(inode_state_read(inode) & I_OVL_INUSE)) { 1021 inode_state_set(inode, I_OVL_INUSE); 1022 locked = true; 1023 } 1024 spin_unlock(&inode->i_lock); 1025 1026 return locked; 1027 } 1028 1029 void ovl_inuse_unlock(struct dentry *dentry) 1030 { 1031 if (dentry) { 1032 struct inode *inode = d_inode(dentry); 1033 1034 spin_lock(&inode->i_lock); 1035 WARN_ON(!(inode_state_read(inode) & I_OVL_INUSE)); 1036 inode_state_clear(inode, I_OVL_INUSE); 1037 spin_unlock(&inode->i_lock); 1038 } 1039 } 1040 1041 bool ovl_is_inuse(struct dentry *dentry) 1042 { 1043 struct inode *inode = d_inode(dentry); 1044 bool inuse; 1045 1046 spin_lock(&inode->i_lock); 1047 inuse = (inode_state_read(inode) & I_OVL_INUSE); 1048 spin_unlock(&inode->i_lock); 1049 1050 return inuse; 1051 } 1052 1053 /* 1054 * Does this overlay dentry need to be indexed on copy up? 1055 */ 1056 bool ovl_need_index(struct dentry *dentry) 1057 { 1058 struct dentry *lower = ovl_dentry_lower(dentry); 1059 1060 if (!lower || !ovl_indexdir(dentry->d_sb)) 1061 return false; 1062 1063 /* Index all files for NFS export and consistency verification */ 1064 if (ovl_index_all(dentry->d_sb)) 1065 return true; 1066 1067 /* Index only lower hardlinks on copy up */ 1068 if (!d_is_dir(lower) && d_inode(lower)->i_nlink > 1) 1069 return true; 1070 1071 return false; 1072 } 1073 1074 /* Caller must hold OVL_I(inode)->lock */ 1075 static void ovl_cleanup_index(struct dentry *dentry) 1076 { 1077 struct ovl_fs *ofs = OVL_FS(dentry->d_sb); 1078 struct dentry *indexdir = ovl_indexdir(dentry->d_sb); 1079 struct dentry *lowerdentry = ovl_dentry_lower(dentry); 1080 struct dentry *upperdentry = ovl_dentry_upper(dentry); 1081 struct dentry *index = NULL; 1082 struct inode *inode; 1083 struct qstr name = { }; 1084 bool got_write = false; 1085 int err; 1086 1087 err = ovl_get_index_name(ofs, lowerdentry, &name); 1088 if (err) 1089 goto fail; 1090 1091 err = ovl_want_write(dentry); 1092 if (err) 1093 goto fail; 1094 1095 got_write = true; 1096 inode = d_inode(upperdentry); 1097 if (!S_ISDIR(inode->i_mode) && inode->i_nlink != 1) { 1098 pr_warn_ratelimited("cleanup linked index (%pd2, ino=%llu, nlink=%u)\n", 1099 upperdentry, inode->i_ino, inode->i_nlink); 1100 /* 1101 * We either have a bug with persistent union nlink or a lower 1102 * hardlink was added while overlay is mounted. Adding a lower 1103 * hardlink and then unlinking all overlay hardlinks would drop 1104 * overlay nlink to zero before all upper inodes are unlinked. 1105 * As a safety measure, when that situation is detected, set 1106 * the overlay nlink to the index inode nlink minus one for the 1107 * index entry itself. 1108 */ 1109 set_nlink(d_inode(dentry), inode->i_nlink - 1); 1110 ovl_set_nlink_upper(dentry); 1111 goto out; 1112 } 1113 1114 index = ovl_lookup_upper_unlocked(ofs, name.name, indexdir, name.len); 1115 err = PTR_ERR(index); 1116 if (IS_ERR(index)) { 1117 index = NULL; 1118 } else if (ovl_index_all(dentry->d_sb)) { 1119 /* Whiteout orphan index to block future open by handle */ 1120 err = ovl_cleanup_and_whiteout(OVL_FS(dentry->d_sb), 1121 indexdir, index); 1122 } else { 1123 /* Cleanup orphan index entries */ 1124 err = ovl_cleanup(ofs, indexdir, index); 1125 } 1126 if (err) 1127 goto fail; 1128 1129 out: 1130 if (got_write) 1131 ovl_drop_write(dentry); 1132 kfree(name.name); 1133 dput(index); 1134 return; 1135 1136 fail: 1137 pr_err("cleanup index of '%pd2' failed (%i)\n", dentry, err); 1138 goto out; 1139 } 1140 1141 /* 1142 * Operations that change overlay inode and upper inode nlink need to be 1143 * synchronized with copy up for persistent nlink accounting. 1144 */ 1145 int ovl_nlink_start(struct dentry *dentry) 1146 { 1147 struct inode *inode = d_inode(dentry); 1148 int err; 1149 1150 if (WARN_ON(!inode)) 1151 return -ENOENT; 1152 1153 /* 1154 * With inodes index is enabled, we store the union overlay nlink 1155 * in an xattr on the index inode. When whiting out an indexed lower, 1156 * we need to decrement the overlay persistent nlink, but before the 1157 * first copy up, we have no upper index inode to store the xattr. 1158 * 1159 * As a workaround, before whiteout/rename over an indexed lower, 1160 * copy up to create the upper index. Creating the upper index will 1161 * initialize the overlay nlink, so it could be dropped if unlink 1162 * or rename succeeds. 1163 * 1164 * TODO: implement metadata only index copy up when called with 1165 * ovl_copy_up_flags(dentry, O_PATH). 1166 */ 1167 if (ovl_need_index(dentry) && !ovl_dentry_has_upper_alias(dentry)) { 1168 err = ovl_copy_up(dentry); 1169 if (err) 1170 return err; 1171 } 1172 1173 err = ovl_inode_lock_interruptible(inode); 1174 if (err) 1175 return err; 1176 1177 err = ovl_want_write(dentry); 1178 if (err) 1179 goto out_unlock; 1180 1181 if (d_is_dir(dentry) || !ovl_test_flag(OVL_INDEX, inode)) 1182 return 0; 1183 1184 /* 1185 * The overlay inode nlink should be incremented/decremented IFF the 1186 * upper operation succeeds, along with nlink change of upper inode. 1187 * Therefore, before link/unlink/rename, we store the union nlink 1188 * value relative to the upper inode nlink in an upper inode xattr. 1189 */ 1190 with_ovl_creds(dentry->d_sb) 1191 err = ovl_set_nlink_upper(dentry); 1192 if (err) 1193 goto out_drop_write; 1194 1195 return 0; 1196 1197 out_drop_write: 1198 ovl_drop_write(dentry); 1199 out_unlock: 1200 ovl_inode_unlock(inode); 1201 1202 return err; 1203 } 1204 1205 void ovl_nlink_end(struct dentry *dentry) 1206 { 1207 struct inode *inode = d_inode(dentry); 1208 1209 ovl_drop_write(dentry); 1210 1211 if (ovl_test_flag(OVL_INDEX, inode) && inode->i_nlink == 0) { 1212 with_ovl_creds(dentry->d_sb) 1213 ovl_cleanup_index(dentry); 1214 } 1215 1216 ovl_inode_unlock(inode); 1217 } 1218 1219 /* 1220 * err < 0, 0 if no metacopy xattr, metacopy data size if xattr found. 1221 * an empty xattr returns OVL_METACOPY_MIN_SIZE to distinguish from no xattr value. 1222 */ 1223 int ovl_check_metacopy_xattr(struct ovl_fs *ofs, const struct path *path, 1224 struct ovl_metacopy *data) 1225 { 1226 int res; 1227 1228 /* Only regular files can have metacopy xattr */ 1229 if (!S_ISREG(d_inode(path->dentry)->i_mode)) 1230 return 0; 1231 1232 res = ovl_path_getxattr(ofs, path, OVL_XATTR_METACOPY, 1233 data, data ? OVL_METACOPY_MAX_SIZE : 0); 1234 if (res < 0) { 1235 if (res == -ENODATA || res == -EOPNOTSUPP) 1236 return 0; 1237 /* 1238 * getxattr on user.* may fail with EACCES in case there's no 1239 * read permission on the inode. Not much we can do, other than 1240 * tell the caller that this is not a metacopy inode. 1241 */ 1242 if (ofs->config.userxattr && res == -EACCES) 1243 return 0; 1244 goto out; 1245 } 1246 1247 if (res == 0) { 1248 /* Emulate empty data for zero size metacopy xattr */ 1249 res = OVL_METACOPY_MIN_SIZE; 1250 if (data) { 1251 memset(data, 0, res); 1252 data->len = res; 1253 } 1254 } else if (res < OVL_METACOPY_MIN_SIZE) { 1255 pr_warn_ratelimited("metacopy file '%pd' has too small xattr\n", 1256 path->dentry); 1257 return -EIO; 1258 } else if (data) { 1259 if (data->version != 0) { 1260 pr_warn_ratelimited("metacopy file '%pd' has unsupported version\n", 1261 path->dentry); 1262 return -EIO; 1263 } 1264 if (res != data->len) { 1265 pr_warn_ratelimited("metacopy file '%pd' has invalid xattr size\n", 1266 path->dentry); 1267 return -EIO; 1268 } 1269 } 1270 1271 return res; 1272 out: 1273 pr_warn_ratelimited("failed to get metacopy (%i)\n", res); 1274 return res; 1275 } 1276 1277 int ovl_set_metacopy_xattr(struct ovl_fs *ofs, struct dentry *d, struct ovl_metacopy *metacopy) 1278 { 1279 size_t len = metacopy->len; 1280 1281 /* If no flags or digest fall back to empty metacopy file */ 1282 if (metacopy->version == 0 && metacopy->flags == 0 && metacopy->digest_algo == 0) 1283 len = 0; 1284 1285 return ovl_check_setxattr(ofs, d, OVL_XATTR_METACOPY, 1286 metacopy, len, -EOPNOTSUPP); 1287 } 1288 1289 bool ovl_is_metacopy_dentry(struct dentry *dentry) 1290 { 1291 struct ovl_entry *oe = OVL_E(dentry); 1292 1293 if (!d_is_reg(dentry)) 1294 return false; 1295 1296 if (ovl_dentry_upper(dentry)) { 1297 if (!ovl_has_upperdata(d_inode(dentry))) 1298 return true; 1299 return false; 1300 } 1301 1302 return (ovl_numlower(oe) > 1); 1303 } 1304 1305 char *ovl_get_redirect_xattr(struct ovl_fs *ofs, const struct path *path, int padding) 1306 { 1307 int res; 1308 char *s, *next, *buf = NULL; 1309 1310 res = ovl_path_getxattr(ofs, path, OVL_XATTR_REDIRECT, NULL, 0); 1311 if (res == -ENODATA || res == -EOPNOTSUPP) 1312 return NULL; 1313 if (res < 0) 1314 goto fail; 1315 if (res == 0) 1316 goto invalid; 1317 1318 buf = kzalloc(res + padding + 1, GFP_KERNEL); 1319 if (!buf) 1320 return ERR_PTR(-ENOMEM); 1321 1322 res = ovl_path_getxattr(ofs, path, OVL_XATTR_REDIRECT, buf, res); 1323 if (res < 0) 1324 goto fail; 1325 if (res == 0) 1326 goto invalid; 1327 1328 if (buf[0] == '/') { 1329 for (s = buf; *s++ == '/'; s = next) { 1330 next = strchrnul(s, '/'); 1331 if (s == next) 1332 goto invalid; 1333 } 1334 } else { 1335 if (strchr(buf, '/') != NULL) 1336 goto invalid; 1337 } 1338 1339 return buf; 1340 invalid: 1341 pr_warn_ratelimited("invalid redirect (%s)\n", buf); 1342 res = -EINVAL; 1343 goto err_free; 1344 fail: 1345 pr_warn_ratelimited("failed to get redirect (%i)\n", res); 1346 err_free: 1347 kfree(buf); 1348 return ERR_PTR(res); 1349 } 1350 1351 /* Call with mounter creds as it may open the file */ 1352 int ovl_ensure_verity_loaded(const struct path *datapath) 1353 { 1354 struct inode *inode = d_inode(datapath->dentry); 1355 struct file *filp; 1356 1357 if (!fsverity_active(inode) && IS_VERITY(inode)) { 1358 /* 1359 * If this inode was not yet opened, the verity info hasn't been 1360 * loaded yet, so we need to do that here to force it into memory. 1361 */ 1362 filp = kernel_file_open(datapath, O_RDONLY, current_cred()); 1363 if (IS_ERR(filp)) 1364 return PTR_ERR(filp); 1365 fput(filp); 1366 } 1367 1368 return 0; 1369 } 1370 1371 int ovl_validate_verity(struct ovl_fs *ofs, 1372 const struct path *metapath, 1373 const struct path *datapath) 1374 { 1375 struct ovl_metacopy metacopy_data; 1376 u8 actual_digest[FS_VERITY_MAX_DIGEST_SIZE]; 1377 int xattr_digest_size, digest_size; 1378 int xattr_size, err; 1379 u8 verity_algo; 1380 1381 if (!ofs->config.verity_mode || 1382 /* Verity only works on regular files */ 1383 !S_ISREG(d_inode(metapath->dentry)->i_mode)) 1384 return 0; 1385 1386 xattr_size = ovl_check_metacopy_xattr(ofs, metapath, &metacopy_data); 1387 if (xattr_size < 0) 1388 return xattr_size; 1389 1390 if (!xattr_size || !metacopy_data.digest_algo) { 1391 if (ofs->config.verity_mode == OVL_VERITY_REQUIRE) { 1392 pr_warn_ratelimited("metacopy file '%pd' has no digest specified\n", 1393 metapath->dentry); 1394 return -EIO; 1395 } 1396 return 0; 1397 } 1398 1399 xattr_digest_size = ovl_metadata_digest_size(&metacopy_data); 1400 1401 err = ovl_ensure_verity_loaded(datapath); 1402 if (err < 0) { 1403 pr_warn_ratelimited("lower file '%pd' failed to load fs-verity info\n", 1404 datapath->dentry); 1405 return -EIO; 1406 } 1407 1408 digest_size = fsverity_get_digest(d_inode(datapath->dentry), actual_digest, 1409 &verity_algo, NULL); 1410 if (digest_size == 0) { 1411 pr_warn_ratelimited("lower file '%pd' has no fs-verity digest\n", datapath->dentry); 1412 return -EIO; 1413 } 1414 1415 if (xattr_digest_size != digest_size || 1416 metacopy_data.digest_algo != verity_algo || 1417 memcmp(metacopy_data.digest, actual_digest, xattr_digest_size) != 0) { 1418 pr_warn_ratelimited("lower file '%pd' has the wrong fs-verity digest\n", 1419 datapath->dentry); 1420 return -EIO; 1421 } 1422 1423 return 0; 1424 } 1425 1426 int ovl_get_verity_digest(struct ovl_fs *ofs, const struct path *src, 1427 struct ovl_metacopy *metacopy) 1428 { 1429 int err, digest_size; 1430 1431 if (!ofs->config.verity_mode || !S_ISREG(d_inode(src->dentry)->i_mode)) 1432 return 0; 1433 1434 err = ovl_ensure_verity_loaded(src); 1435 if (err < 0) { 1436 pr_warn_ratelimited("lower file '%pd' failed to load fs-verity info\n", 1437 src->dentry); 1438 return -EIO; 1439 } 1440 1441 digest_size = fsverity_get_digest(d_inode(src->dentry), 1442 metacopy->digest, &metacopy->digest_algo, NULL); 1443 if (digest_size == 0 || 1444 WARN_ON_ONCE(digest_size > FS_VERITY_MAX_DIGEST_SIZE)) { 1445 if (ofs->config.verity_mode == OVL_VERITY_REQUIRE) { 1446 pr_warn_ratelimited("lower file '%pd' has no fs-verity digest\n", 1447 src->dentry); 1448 return -EIO; 1449 } 1450 return 0; 1451 } 1452 1453 metacopy->len += digest_size; 1454 return 0; 1455 } 1456 1457 /* 1458 * ovl_sync_status() - Check fs sync status for volatile mounts 1459 * 1460 * Returns 1 if this is not a volatile mount and a real sync is required. 1461 * 1462 * Returns 0 if syncing can be skipped because mount is volatile, and no errors 1463 * have occurred on the upperdir since the mount. 1464 * 1465 * Returns -errno if it is a volatile mount, and the error that occurred since 1466 * the last mount. If the error code changes, it'll return the latest error 1467 * code. 1468 */ 1469 1470 int ovl_sync_status(struct ovl_fs *ofs) 1471 { 1472 struct vfsmount *mnt; 1473 1474 if (ovl_should_sync(ofs)) 1475 return 1; 1476 1477 mnt = ovl_upper_mnt(ofs); 1478 if (!mnt) 1479 return 0; 1480 1481 return errseq_check(&mnt->mnt_sb->s_wb_err, ofs->errseq); 1482 } 1483 1484 /* 1485 * ovl_copyattr() - copy inode attributes from layer to ovl inode 1486 * 1487 * When overlay copies inode information from an upper or lower layer to the 1488 * relevant overlay inode it will apply the idmapping of the upper or lower 1489 * layer when doing so ensuring that the ovl inode ownership will correctly 1490 * reflect the ownership of the idmapped upper or lower layer. For example, an 1491 * idmapped upper or lower layer mapping id 1001 to id 1000 will take care to 1492 * map any lower or upper inode owned by id 1001 to id 1000. These mapping 1493 * helpers are nops when the relevant layer isn't idmapped. 1494 */ 1495 void ovl_copyattr(struct inode *inode) 1496 { 1497 struct path realpath; 1498 struct inode *realinode; 1499 struct mnt_idmap *real_idmap; 1500 vfsuid_t vfsuid; 1501 vfsgid_t vfsgid; 1502 1503 realinode = ovl_i_path_real(inode, &realpath); 1504 real_idmap = mnt_idmap(realpath.mnt); 1505 1506 spin_lock(&inode->i_lock); 1507 vfsuid = i_uid_into_vfsuid(real_idmap, realinode); 1508 vfsgid = i_gid_into_vfsgid(real_idmap, realinode); 1509 1510 inode->i_uid = vfsuid_into_kuid(vfsuid); 1511 inode->i_gid = vfsgid_into_kgid(vfsgid); 1512 inode->i_mode = realinode->i_mode; 1513 inode_set_atime_to_ts(inode, inode_get_atime(realinode)); 1514 inode_set_mtime_to_ts(inode, inode_get_mtime(realinode)); 1515 inode_set_ctime_to_ts(inode, inode_get_ctime(realinode)); 1516 i_size_write(inode, i_size_read(realinode)); 1517 spin_unlock(&inode->i_lock); 1518 } 1519