1 /** 2 * eCryptfs: Linux filesystem encryption layer 3 * 4 * Copyright (C) 1997-2004 Erez Zadok 5 * Copyright (C) 2001-2004 Stony Brook University 6 * Copyright (C) 2004-2007 International Business Machines Corp. 7 * Author(s): Michael A. Halcrow <mahalcro@us.ibm.com> 8 * Michael C. Thompsion <mcthomps@us.ibm.com> 9 * 10 * This program is free software; you can redistribute it and/or 11 * modify it under the terms of the GNU General Public License as 12 * published by the Free Software Foundation; either version 2 of the 13 * License, or (at your option) any later version. 14 * 15 * This program is distributed in the hope that it will be useful, but 16 * WITHOUT ANY WARRANTY; without even the implied warranty of 17 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU 18 * General Public License for more details. 19 * 20 * You should have received a copy of the GNU General Public License 21 * along with this program; if not, write to the Free Software 22 * Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 23 * 02111-1307, USA. 24 */ 25 26 #include <linux/file.h> 27 #include <linux/vmalloc.h> 28 #include <linux/pagemap.h> 29 #include <linux/dcache.h> 30 #include <linux/namei.h> 31 #include <linux/mount.h> 32 #include <linux/fs_stack.h> 33 #include <linux/slab.h> 34 #include <linux/xattr.h> 35 #include <asm/unaligned.h> 36 #include "ecryptfs_kernel.h" 37 38 static struct dentry *lock_parent(struct dentry *dentry) 39 { 40 struct dentry *dir; 41 42 dir = dget_parent(dentry); 43 inode_lock_nested(d_inode(dir), I_MUTEX_PARENT); 44 return dir; 45 } 46 47 static void unlock_dir(struct dentry *dir) 48 { 49 inode_unlock(d_inode(dir)); 50 dput(dir); 51 } 52 53 static int ecryptfs_inode_test(struct inode *inode, void *lower_inode) 54 { 55 return ecryptfs_inode_to_lower(inode) == lower_inode; 56 } 57 58 static int ecryptfs_inode_set(struct inode *inode, void *opaque) 59 { 60 struct inode *lower_inode = opaque; 61 62 ecryptfs_set_inode_lower(inode, lower_inode); 63 fsstack_copy_attr_all(inode, lower_inode); 64 /* i_size will be overwritten for encrypted regular files */ 65 fsstack_copy_inode_size(inode, lower_inode); 66 inode->i_ino = lower_inode->i_ino; 67 inode->i_mapping->a_ops = &ecryptfs_aops; 68 69 if (S_ISLNK(inode->i_mode)) 70 inode->i_op = &ecryptfs_symlink_iops; 71 else if (S_ISDIR(inode->i_mode)) 72 inode->i_op = &ecryptfs_dir_iops; 73 else 74 inode->i_op = &ecryptfs_main_iops; 75 76 if (S_ISDIR(inode->i_mode)) 77 inode->i_fop = &ecryptfs_dir_fops; 78 else if (special_file(inode->i_mode)) 79 init_special_inode(inode, inode->i_mode, inode->i_rdev); 80 else 81 inode->i_fop = &ecryptfs_main_fops; 82 83 return 0; 84 } 85 86 static struct inode *__ecryptfs_get_inode(struct inode *lower_inode, 87 struct super_block *sb) 88 { 89 struct inode *inode; 90 91 if (lower_inode->i_sb != ecryptfs_superblock_to_lower(sb)) 92 return ERR_PTR(-EXDEV); 93 if (!igrab(lower_inode)) 94 return ERR_PTR(-ESTALE); 95 inode = iget5_locked(sb, (unsigned long)lower_inode, 96 ecryptfs_inode_test, ecryptfs_inode_set, 97 lower_inode); 98 if (!inode) { 99 iput(lower_inode); 100 return ERR_PTR(-EACCES); 101 } 102 if (!(inode->i_state & I_NEW)) 103 iput(lower_inode); 104 105 return inode; 106 } 107 108 struct inode *ecryptfs_get_inode(struct inode *lower_inode, 109 struct super_block *sb) 110 { 111 struct inode *inode = __ecryptfs_get_inode(lower_inode, sb); 112 113 if (!IS_ERR(inode) && (inode->i_state & I_NEW)) 114 unlock_new_inode(inode); 115 116 return inode; 117 } 118 119 /** 120 * ecryptfs_interpose 121 * @lower_dentry: Existing dentry in the lower filesystem 122 * @dentry: ecryptfs' dentry 123 * @sb: ecryptfs's super_block 124 * 125 * Interposes upper and lower dentries. 126 * 127 * Returns zero on success; non-zero otherwise 128 */ 129 static int ecryptfs_interpose(struct dentry *lower_dentry, 130 struct dentry *dentry, struct super_block *sb) 131 { 132 struct inode *inode = ecryptfs_get_inode(d_inode(lower_dentry), sb); 133 134 if (IS_ERR(inode)) 135 return PTR_ERR(inode); 136 d_instantiate(dentry, inode); 137 138 return 0; 139 } 140 141 static int ecryptfs_do_unlink(struct inode *dir, struct dentry *dentry, 142 struct inode *inode) 143 { 144 struct dentry *lower_dentry = ecryptfs_dentry_to_lower(dentry); 145 struct inode *lower_dir_inode = ecryptfs_inode_to_lower(dir); 146 struct dentry *lower_dir_dentry; 147 int rc; 148 149 dget(lower_dentry); 150 lower_dir_dentry = lock_parent(lower_dentry); 151 rc = vfs_unlink(lower_dir_inode, lower_dentry, NULL); 152 if (rc) { 153 printk(KERN_ERR "Error in vfs_unlink; rc = [%d]\n", rc); 154 goto out_unlock; 155 } 156 fsstack_copy_attr_times(dir, lower_dir_inode); 157 set_nlink(inode, ecryptfs_inode_to_lower(inode)->i_nlink); 158 inode->i_ctime = dir->i_ctime; 159 d_drop(dentry); 160 out_unlock: 161 unlock_dir(lower_dir_dentry); 162 dput(lower_dentry); 163 return rc; 164 } 165 166 /** 167 * ecryptfs_do_create 168 * @directory_inode: inode of the new file's dentry's parent in ecryptfs 169 * @ecryptfs_dentry: New file's dentry in ecryptfs 170 * @mode: The mode of the new file 171 * 172 * Creates the underlying file and the eCryptfs inode which will link to 173 * it. It will also update the eCryptfs directory inode to mimic the 174 * stat of the lower directory inode. 175 * 176 * Returns the new eCryptfs inode on success; an ERR_PTR on error condition 177 */ 178 static struct inode * 179 ecryptfs_do_create(struct inode *directory_inode, 180 struct dentry *ecryptfs_dentry, umode_t mode) 181 { 182 int rc; 183 struct dentry *lower_dentry; 184 struct dentry *lower_dir_dentry; 185 struct inode *inode; 186 187 lower_dentry = ecryptfs_dentry_to_lower(ecryptfs_dentry); 188 lower_dir_dentry = lock_parent(lower_dentry); 189 rc = vfs_create(d_inode(lower_dir_dentry), lower_dentry, mode, true); 190 if (rc) { 191 printk(KERN_ERR "%s: Failure to create dentry in lower fs; " 192 "rc = [%d]\n", __func__, rc); 193 inode = ERR_PTR(rc); 194 goto out_lock; 195 } 196 inode = __ecryptfs_get_inode(d_inode(lower_dentry), 197 directory_inode->i_sb); 198 if (IS_ERR(inode)) { 199 vfs_unlink(d_inode(lower_dir_dentry), lower_dentry, NULL); 200 goto out_lock; 201 } 202 fsstack_copy_attr_times(directory_inode, d_inode(lower_dir_dentry)); 203 fsstack_copy_inode_size(directory_inode, d_inode(lower_dir_dentry)); 204 out_lock: 205 unlock_dir(lower_dir_dentry); 206 return inode; 207 } 208 209 /** 210 * ecryptfs_initialize_file 211 * 212 * Cause the file to be changed from a basic empty file to an ecryptfs 213 * file with a header and first data page. 214 * 215 * Returns zero on success 216 */ 217 int ecryptfs_initialize_file(struct dentry *ecryptfs_dentry, 218 struct inode *ecryptfs_inode) 219 { 220 struct ecryptfs_crypt_stat *crypt_stat = 221 &ecryptfs_inode_to_private(ecryptfs_inode)->crypt_stat; 222 int rc = 0; 223 224 if (S_ISDIR(ecryptfs_inode->i_mode)) { 225 ecryptfs_printk(KERN_DEBUG, "This is a directory\n"); 226 crypt_stat->flags &= ~(ECRYPTFS_ENCRYPTED); 227 goto out; 228 } 229 ecryptfs_printk(KERN_DEBUG, "Initializing crypto context\n"); 230 rc = ecryptfs_new_file_context(ecryptfs_inode); 231 if (rc) { 232 ecryptfs_printk(KERN_ERR, "Error creating new file " 233 "context; rc = [%d]\n", rc); 234 goto out; 235 } 236 rc = ecryptfs_get_lower_file(ecryptfs_dentry, ecryptfs_inode); 237 if (rc) { 238 printk(KERN_ERR "%s: Error attempting to initialize " 239 "the lower file for the dentry with name " 240 "[%pd]; rc = [%d]\n", __func__, 241 ecryptfs_dentry, rc); 242 goto out; 243 } 244 rc = ecryptfs_write_metadata(ecryptfs_dentry, ecryptfs_inode); 245 if (rc) 246 printk(KERN_ERR "Error writing headers; rc = [%d]\n", rc); 247 ecryptfs_put_lower_file(ecryptfs_inode); 248 out: 249 return rc; 250 } 251 252 /** 253 * ecryptfs_create 254 * @dir: The inode of the directory in which to create the file. 255 * @dentry: The eCryptfs dentry 256 * @mode: The mode of the new file. 257 * 258 * Creates a new file. 259 * 260 * Returns zero on success; non-zero on error condition 261 */ 262 static int 263 ecryptfs_create(struct inode *directory_inode, struct dentry *ecryptfs_dentry, 264 umode_t mode, bool excl) 265 { 266 struct inode *ecryptfs_inode; 267 int rc; 268 269 ecryptfs_inode = ecryptfs_do_create(directory_inode, ecryptfs_dentry, 270 mode); 271 if (IS_ERR(ecryptfs_inode)) { 272 ecryptfs_printk(KERN_WARNING, "Failed to create file in" 273 "lower filesystem\n"); 274 rc = PTR_ERR(ecryptfs_inode); 275 goto out; 276 } 277 /* At this point, a file exists on "disk"; we need to make sure 278 * that this on disk file is prepared to be an ecryptfs file */ 279 rc = ecryptfs_initialize_file(ecryptfs_dentry, ecryptfs_inode); 280 if (rc) { 281 ecryptfs_do_unlink(directory_inode, ecryptfs_dentry, 282 ecryptfs_inode); 283 iget_failed(ecryptfs_inode); 284 goto out; 285 } 286 d_instantiate_new(ecryptfs_dentry, ecryptfs_inode); 287 out: 288 return rc; 289 } 290 291 static int ecryptfs_i_size_read(struct dentry *dentry, struct inode *inode) 292 { 293 struct ecryptfs_crypt_stat *crypt_stat; 294 int rc; 295 296 rc = ecryptfs_get_lower_file(dentry, inode); 297 if (rc) { 298 printk(KERN_ERR "%s: Error attempting to initialize " 299 "the lower file for the dentry with name " 300 "[%pd]; rc = [%d]\n", __func__, 301 dentry, rc); 302 return rc; 303 } 304 305 crypt_stat = &ecryptfs_inode_to_private(inode)->crypt_stat; 306 /* TODO: lock for crypt_stat comparison */ 307 if (!(crypt_stat->flags & ECRYPTFS_POLICY_APPLIED)) 308 ecryptfs_set_default_sizes(crypt_stat); 309 310 rc = ecryptfs_read_and_validate_header_region(inode); 311 ecryptfs_put_lower_file(inode); 312 if (rc) { 313 rc = ecryptfs_read_and_validate_xattr_region(dentry, inode); 314 if (!rc) 315 crypt_stat->flags |= ECRYPTFS_METADATA_IN_XATTR; 316 } 317 318 /* Must return 0 to allow non-eCryptfs files to be looked up, too */ 319 return 0; 320 } 321 322 /** 323 * ecryptfs_lookup_interpose - Dentry interposition for a lookup 324 */ 325 static struct dentry *ecryptfs_lookup_interpose(struct dentry *dentry, 326 struct dentry *lower_dentry) 327 { 328 struct inode *inode, *lower_inode = d_inode(lower_dentry); 329 struct ecryptfs_dentry_info *dentry_info; 330 struct vfsmount *lower_mnt; 331 int rc = 0; 332 333 dentry_info = kmem_cache_alloc(ecryptfs_dentry_info_cache, GFP_KERNEL); 334 if (!dentry_info) { 335 dput(lower_dentry); 336 return ERR_PTR(-ENOMEM); 337 } 338 339 lower_mnt = mntget(ecryptfs_dentry_to_lower_mnt(dentry->d_parent)); 340 fsstack_copy_attr_atime(d_inode(dentry->d_parent), 341 d_inode(lower_dentry->d_parent)); 342 BUG_ON(!d_count(lower_dentry)); 343 344 ecryptfs_set_dentry_private(dentry, dentry_info); 345 dentry_info->lower_path.mnt = lower_mnt; 346 dentry_info->lower_path.dentry = lower_dentry; 347 348 if (d_really_is_negative(lower_dentry)) { 349 /* We want to add because we couldn't find in lower */ 350 d_add(dentry, NULL); 351 return NULL; 352 } 353 inode = __ecryptfs_get_inode(lower_inode, dentry->d_sb); 354 if (IS_ERR(inode)) { 355 printk(KERN_ERR "%s: Error interposing; rc = [%ld]\n", 356 __func__, PTR_ERR(inode)); 357 return ERR_CAST(inode); 358 } 359 if (S_ISREG(inode->i_mode)) { 360 rc = ecryptfs_i_size_read(dentry, inode); 361 if (rc) { 362 make_bad_inode(inode); 363 return ERR_PTR(rc); 364 } 365 } 366 367 if (inode->i_state & I_NEW) 368 unlock_new_inode(inode); 369 return d_splice_alias(inode, dentry); 370 } 371 372 /** 373 * ecryptfs_lookup 374 * @ecryptfs_dir_inode: The eCryptfs directory inode 375 * @ecryptfs_dentry: The eCryptfs dentry that we are looking up 376 * @flags: lookup flags 377 * 378 * Find a file on disk. If the file does not exist, then we'll add it to the 379 * dentry cache and continue on to read it from the disk. 380 */ 381 static struct dentry *ecryptfs_lookup(struct inode *ecryptfs_dir_inode, 382 struct dentry *ecryptfs_dentry, 383 unsigned int flags) 384 { 385 char *encrypted_and_encoded_name = NULL; 386 struct ecryptfs_mount_crypt_stat *mount_crypt_stat; 387 struct dentry *lower_dir_dentry, *lower_dentry; 388 const char *name = ecryptfs_dentry->d_name.name; 389 size_t len = ecryptfs_dentry->d_name.len; 390 struct dentry *res; 391 int rc = 0; 392 393 lower_dir_dentry = ecryptfs_dentry_to_lower(ecryptfs_dentry->d_parent); 394 395 mount_crypt_stat = &ecryptfs_superblock_to_private( 396 ecryptfs_dentry->d_sb)->mount_crypt_stat; 397 if (mount_crypt_stat->flags & ECRYPTFS_GLOBAL_ENCRYPT_FILENAMES) { 398 rc = ecryptfs_encrypt_and_encode_filename( 399 &encrypted_and_encoded_name, &len, 400 mount_crypt_stat, name, len); 401 if (rc) { 402 printk(KERN_ERR "%s: Error attempting to encrypt and encode " 403 "filename; rc = [%d]\n", __func__, rc); 404 return ERR_PTR(rc); 405 } 406 name = encrypted_and_encoded_name; 407 } 408 409 lower_dentry = lookup_one_len_unlocked(name, lower_dir_dentry, len); 410 if (IS_ERR(lower_dentry)) { 411 ecryptfs_printk(KERN_DEBUG, "%s: lookup_one_len() returned " 412 "[%ld] on lower_dentry = [%s]\n", __func__, 413 PTR_ERR(lower_dentry), 414 name); 415 res = ERR_CAST(lower_dentry); 416 } else { 417 res = ecryptfs_lookup_interpose(ecryptfs_dentry, lower_dentry); 418 } 419 kfree(encrypted_and_encoded_name); 420 return res; 421 } 422 423 static int ecryptfs_link(struct dentry *old_dentry, struct inode *dir, 424 struct dentry *new_dentry) 425 { 426 struct dentry *lower_old_dentry; 427 struct dentry *lower_new_dentry; 428 struct dentry *lower_dir_dentry; 429 u64 file_size_save; 430 int rc; 431 432 file_size_save = i_size_read(d_inode(old_dentry)); 433 lower_old_dentry = ecryptfs_dentry_to_lower(old_dentry); 434 lower_new_dentry = ecryptfs_dentry_to_lower(new_dentry); 435 dget(lower_old_dentry); 436 dget(lower_new_dentry); 437 lower_dir_dentry = lock_parent(lower_new_dentry); 438 rc = vfs_link(lower_old_dentry, d_inode(lower_dir_dentry), 439 lower_new_dentry, NULL); 440 if (rc || d_really_is_negative(lower_new_dentry)) 441 goto out_lock; 442 rc = ecryptfs_interpose(lower_new_dentry, new_dentry, dir->i_sb); 443 if (rc) 444 goto out_lock; 445 fsstack_copy_attr_times(dir, d_inode(lower_dir_dentry)); 446 fsstack_copy_inode_size(dir, d_inode(lower_dir_dentry)); 447 set_nlink(d_inode(old_dentry), 448 ecryptfs_inode_to_lower(d_inode(old_dentry))->i_nlink); 449 i_size_write(d_inode(new_dentry), file_size_save); 450 out_lock: 451 unlock_dir(lower_dir_dentry); 452 dput(lower_new_dentry); 453 dput(lower_old_dentry); 454 return rc; 455 } 456 457 static int ecryptfs_unlink(struct inode *dir, struct dentry *dentry) 458 { 459 return ecryptfs_do_unlink(dir, dentry, d_inode(dentry)); 460 } 461 462 static int ecryptfs_symlink(struct inode *dir, struct dentry *dentry, 463 const char *symname) 464 { 465 int rc; 466 struct dentry *lower_dentry; 467 struct dentry *lower_dir_dentry; 468 char *encoded_symname; 469 size_t encoded_symlen; 470 struct ecryptfs_mount_crypt_stat *mount_crypt_stat = NULL; 471 472 lower_dentry = ecryptfs_dentry_to_lower(dentry); 473 dget(lower_dentry); 474 lower_dir_dentry = lock_parent(lower_dentry); 475 mount_crypt_stat = &ecryptfs_superblock_to_private( 476 dir->i_sb)->mount_crypt_stat; 477 rc = ecryptfs_encrypt_and_encode_filename(&encoded_symname, 478 &encoded_symlen, 479 mount_crypt_stat, symname, 480 strlen(symname)); 481 if (rc) 482 goto out_lock; 483 rc = vfs_symlink(d_inode(lower_dir_dentry), lower_dentry, 484 encoded_symname); 485 kfree(encoded_symname); 486 if (rc || d_really_is_negative(lower_dentry)) 487 goto out_lock; 488 rc = ecryptfs_interpose(lower_dentry, dentry, dir->i_sb); 489 if (rc) 490 goto out_lock; 491 fsstack_copy_attr_times(dir, d_inode(lower_dir_dentry)); 492 fsstack_copy_inode_size(dir, d_inode(lower_dir_dentry)); 493 out_lock: 494 unlock_dir(lower_dir_dentry); 495 dput(lower_dentry); 496 if (d_really_is_negative(dentry)) 497 d_drop(dentry); 498 return rc; 499 } 500 501 static int ecryptfs_mkdir(struct inode *dir, struct dentry *dentry, umode_t mode) 502 { 503 int rc; 504 struct dentry *lower_dentry; 505 struct dentry *lower_dir_dentry; 506 507 lower_dentry = ecryptfs_dentry_to_lower(dentry); 508 lower_dir_dentry = lock_parent(lower_dentry); 509 rc = vfs_mkdir(d_inode(lower_dir_dentry), lower_dentry, mode); 510 if (rc || d_really_is_negative(lower_dentry)) 511 goto out; 512 rc = ecryptfs_interpose(lower_dentry, dentry, dir->i_sb); 513 if (rc) 514 goto out; 515 fsstack_copy_attr_times(dir, d_inode(lower_dir_dentry)); 516 fsstack_copy_inode_size(dir, d_inode(lower_dir_dentry)); 517 set_nlink(dir, d_inode(lower_dir_dentry)->i_nlink); 518 out: 519 unlock_dir(lower_dir_dentry); 520 if (d_really_is_negative(dentry)) 521 d_drop(dentry); 522 return rc; 523 } 524 525 static int ecryptfs_rmdir(struct inode *dir, struct dentry *dentry) 526 { 527 struct dentry *lower_dentry; 528 struct dentry *lower_dir_dentry; 529 int rc; 530 531 lower_dentry = ecryptfs_dentry_to_lower(dentry); 532 dget(dentry); 533 lower_dir_dentry = lock_parent(lower_dentry); 534 dget(lower_dentry); 535 rc = vfs_rmdir(d_inode(lower_dir_dentry), lower_dentry); 536 dput(lower_dentry); 537 if (!rc && d_really_is_positive(dentry)) 538 clear_nlink(d_inode(dentry)); 539 fsstack_copy_attr_times(dir, d_inode(lower_dir_dentry)); 540 set_nlink(dir, d_inode(lower_dir_dentry)->i_nlink); 541 unlock_dir(lower_dir_dentry); 542 if (!rc) 543 d_drop(dentry); 544 dput(dentry); 545 return rc; 546 } 547 548 static int 549 ecryptfs_mknod(struct inode *dir, struct dentry *dentry, umode_t mode, dev_t dev) 550 { 551 int rc; 552 struct dentry *lower_dentry; 553 struct dentry *lower_dir_dentry; 554 555 lower_dentry = ecryptfs_dentry_to_lower(dentry); 556 lower_dir_dentry = lock_parent(lower_dentry); 557 rc = vfs_mknod(d_inode(lower_dir_dentry), lower_dentry, mode, dev); 558 if (rc || d_really_is_negative(lower_dentry)) 559 goto out; 560 rc = ecryptfs_interpose(lower_dentry, dentry, dir->i_sb); 561 if (rc) 562 goto out; 563 fsstack_copy_attr_times(dir, d_inode(lower_dir_dentry)); 564 fsstack_copy_inode_size(dir, d_inode(lower_dir_dentry)); 565 out: 566 unlock_dir(lower_dir_dentry); 567 if (d_really_is_negative(dentry)) 568 d_drop(dentry); 569 return rc; 570 } 571 572 static int 573 ecryptfs_rename(struct inode *old_dir, struct dentry *old_dentry, 574 struct inode *new_dir, struct dentry *new_dentry, 575 unsigned int flags) 576 { 577 int rc; 578 struct dentry *lower_old_dentry; 579 struct dentry *lower_new_dentry; 580 struct dentry *lower_old_dir_dentry; 581 struct dentry *lower_new_dir_dentry; 582 struct dentry *trap = NULL; 583 struct inode *target_inode; 584 585 if (flags) 586 return -EINVAL; 587 588 lower_old_dentry = ecryptfs_dentry_to_lower(old_dentry); 589 lower_new_dentry = ecryptfs_dentry_to_lower(new_dentry); 590 dget(lower_old_dentry); 591 dget(lower_new_dentry); 592 lower_old_dir_dentry = dget_parent(lower_old_dentry); 593 lower_new_dir_dentry = dget_parent(lower_new_dentry); 594 target_inode = d_inode(new_dentry); 595 trap = lock_rename(lower_old_dir_dentry, lower_new_dir_dentry); 596 rc = -EINVAL; 597 if (lower_old_dentry->d_parent != lower_old_dir_dentry) 598 goto out_lock; 599 if (lower_new_dentry->d_parent != lower_new_dir_dentry) 600 goto out_lock; 601 if (d_unhashed(lower_old_dentry) || d_unhashed(lower_new_dentry)) 602 goto out_lock; 603 /* source should not be ancestor of target */ 604 if (trap == lower_old_dentry) 605 goto out_lock; 606 /* target should not be ancestor of source */ 607 if (trap == lower_new_dentry) { 608 rc = -ENOTEMPTY; 609 goto out_lock; 610 } 611 rc = vfs_rename(d_inode(lower_old_dir_dentry), lower_old_dentry, 612 d_inode(lower_new_dir_dentry), lower_new_dentry, 613 NULL, 0); 614 if (rc) 615 goto out_lock; 616 if (target_inode) 617 fsstack_copy_attr_all(target_inode, 618 ecryptfs_inode_to_lower(target_inode)); 619 fsstack_copy_attr_all(new_dir, d_inode(lower_new_dir_dentry)); 620 if (new_dir != old_dir) 621 fsstack_copy_attr_all(old_dir, d_inode(lower_old_dir_dentry)); 622 out_lock: 623 unlock_rename(lower_old_dir_dentry, lower_new_dir_dentry); 624 dput(lower_new_dir_dentry); 625 dput(lower_old_dir_dentry); 626 dput(lower_new_dentry); 627 dput(lower_old_dentry); 628 return rc; 629 } 630 631 static char *ecryptfs_readlink_lower(struct dentry *dentry, size_t *bufsiz) 632 { 633 DEFINE_DELAYED_CALL(done); 634 struct dentry *lower_dentry = ecryptfs_dentry_to_lower(dentry); 635 const char *link; 636 char *buf; 637 int rc; 638 639 link = vfs_get_link(lower_dentry, &done); 640 if (IS_ERR(link)) 641 return ERR_CAST(link); 642 643 rc = ecryptfs_decode_and_decrypt_filename(&buf, bufsiz, dentry->d_sb, 644 link, strlen(link)); 645 do_delayed_call(&done); 646 if (rc) 647 return ERR_PTR(rc); 648 649 return buf; 650 } 651 652 static const char *ecryptfs_get_link(struct dentry *dentry, 653 struct inode *inode, 654 struct delayed_call *done) 655 { 656 size_t len; 657 char *buf; 658 659 if (!dentry) 660 return ERR_PTR(-ECHILD); 661 662 buf = ecryptfs_readlink_lower(dentry, &len); 663 if (IS_ERR(buf)) 664 return buf; 665 fsstack_copy_attr_atime(d_inode(dentry), 666 d_inode(ecryptfs_dentry_to_lower(dentry))); 667 buf[len] = '\0'; 668 set_delayed_call(done, kfree_link, buf); 669 return buf; 670 } 671 672 /** 673 * upper_size_to_lower_size 674 * @crypt_stat: Crypt_stat associated with file 675 * @upper_size: Size of the upper file 676 * 677 * Calculate the required size of the lower file based on the 678 * specified size of the upper file. This calculation is based on the 679 * number of headers in the underlying file and the extent size. 680 * 681 * Returns Calculated size of the lower file. 682 */ 683 static loff_t 684 upper_size_to_lower_size(struct ecryptfs_crypt_stat *crypt_stat, 685 loff_t upper_size) 686 { 687 loff_t lower_size; 688 689 lower_size = ecryptfs_lower_header_size(crypt_stat); 690 if (upper_size != 0) { 691 loff_t num_extents; 692 693 num_extents = upper_size >> crypt_stat->extent_shift; 694 if (upper_size & ~crypt_stat->extent_mask) 695 num_extents++; 696 lower_size += (num_extents * crypt_stat->extent_size); 697 } 698 return lower_size; 699 } 700 701 /** 702 * truncate_upper 703 * @dentry: The ecryptfs layer dentry 704 * @ia: Address of the ecryptfs inode's attributes 705 * @lower_ia: Address of the lower inode's attributes 706 * 707 * Function to handle truncations modifying the size of the file. Note 708 * that the file sizes are interpolated. When expanding, we are simply 709 * writing strings of 0's out. When truncating, we truncate the upper 710 * inode and update the lower_ia according to the page index 711 * interpolations. If ATTR_SIZE is set in lower_ia->ia_valid upon return, 712 * the caller must use lower_ia in a call to notify_change() to perform 713 * the truncation of the lower inode. 714 * 715 * Returns zero on success; non-zero otherwise 716 */ 717 static int truncate_upper(struct dentry *dentry, struct iattr *ia, 718 struct iattr *lower_ia) 719 { 720 int rc = 0; 721 struct inode *inode = d_inode(dentry); 722 struct ecryptfs_crypt_stat *crypt_stat; 723 loff_t i_size = i_size_read(inode); 724 loff_t lower_size_before_truncate; 725 loff_t lower_size_after_truncate; 726 727 if (unlikely((ia->ia_size == i_size))) { 728 lower_ia->ia_valid &= ~ATTR_SIZE; 729 return 0; 730 } 731 rc = ecryptfs_get_lower_file(dentry, inode); 732 if (rc) 733 return rc; 734 crypt_stat = &ecryptfs_inode_to_private(d_inode(dentry))->crypt_stat; 735 /* Switch on growing or shrinking file */ 736 if (ia->ia_size > i_size) { 737 char zero[] = { 0x00 }; 738 739 lower_ia->ia_valid &= ~ATTR_SIZE; 740 /* Write a single 0 at the last position of the file; 741 * this triggers code that will fill in 0's throughout 742 * the intermediate portion of the previous end of the 743 * file and the new and of the file */ 744 rc = ecryptfs_write(inode, zero, 745 (ia->ia_size - 1), 1); 746 } else { /* ia->ia_size < i_size_read(inode) */ 747 /* We're chopping off all the pages down to the page 748 * in which ia->ia_size is located. Fill in the end of 749 * that page from (ia->ia_size & ~PAGE_MASK) to 750 * PAGE_SIZE with zeros. */ 751 size_t num_zeros = (PAGE_SIZE 752 - (ia->ia_size & ~PAGE_MASK)); 753 754 if (!(crypt_stat->flags & ECRYPTFS_ENCRYPTED)) { 755 truncate_setsize(inode, ia->ia_size); 756 lower_ia->ia_size = ia->ia_size; 757 lower_ia->ia_valid |= ATTR_SIZE; 758 goto out; 759 } 760 if (num_zeros) { 761 char *zeros_virt; 762 763 zeros_virt = kzalloc(num_zeros, GFP_KERNEL); 764 if (!zeros_virt) { 765 rc = -ENOMEM; 766 goto out; 767 } 768 rc = ecryptfs_write(inode, zeros_virt, 769 ia->ia_size, num_zeros); 770 kfree(zeros_virt); 771 if (rc) { 772 printk(KERN_ERR "Error attempting to zero out " 773 "the remainder of the end page on " 774 "reducing truncate; rc = [%d]\n", rc); 775 goto out; 776 } 777 } 778 truncate_setsize(inode, ia->ia_size); 779 rc = ecryptfs_write_inode_size_to_metadata(inode); 780 if (rc) { 781 printk(KERN_ERR "Problem with " 782 "ecryptfs_write_inode_size_to_metadata; " 783 "rc = [%d]\n", rc); 784 goto out; 785 } 786 /* We are reducing the size of the ecryptfs file, and need to 787 * know if we need to reduce the size of the lower file. */ 788 lower_size_before_truncate = 789 upper_size_to_lower_size(crypt_stat, i_size); 790 lower_size_after_truncate = 791 upper_size_to_lower_size(crypt_stat, ia->ia_size); 792 if (lower_size_after_truncate < lower_size_before_truncate) { 793 lower_ia->ia_size = lower_size_after_truncate; 794 lower_ia->ia_valid |= ATTR_SIZE; 795 } else 796 lower_ia->ia_valid &= ~ATTR_SIZE; 797 } 798 out: 799 ecryptfs_put_lower_file(inode); 800 return rc; 801 } 802 803 static int ecryptfs_inode_newsize_ok(struct inode *inode, loff_t offset) 804 { 805 struct ecryptfs_crypt_stat *crypt_stat; 806 loff_t lower_oldsize, lower_newsize; 807 808 crypt_stat = &ecryptfs_inode_to_private(inode)->crypt_stat; 809 lower_oldsize = upper_size_to_lower_size(crypt_stat, 810 i_size_read(inode)); 811 lower_newsize = upper_size_to_lower_size(crypt_stat, offset); 812 if (lower_newsize > lower_oldsize) { 813 /* 814 * The eCryptfs inode and the new *lower* size are mixed here 815 * because we may not have the lower i_mutex held and/or it may 816 * not be appropriate to call inode_newsize_ok() with inodes 817 * from other filesystems. 818 */ 819 return inode_newsize_ok(inode, lower_newsize); 820 } 821 822 return 0; 823 } 824 825 /** 826 * ecryptfs_truncate 827 * @dentry: The ecryptfs layer dentry 828 * @new_length: The length to expand the file to 829 * 830 * Simple function that handles the truncation of an eCryptfs inode and 831 * its corresponding lower inode. 832 * 833 * Returns zero on success; non-zero otherwise 834 */ 835 int ecryptfs_truncate(struct dentry *dentry, loff_t new_length) 836 { 837 struct iattr ia = { .ia_valid = ATTR_SIZE, .ia_size = new_length }; 838 struct iattr lower_ia = { .ia_valid = 0 }; 839 int rc; 840 841 rc = ecryptfs_inode_newsize_ok(d_inode(dentry), new_length); 842 if (rc) 843 return rc; 844 845 rc = truncate_upper(dentry, &ia, &lower_ia); 846 if (!rc && lower_ia.ia_valid & ATTR_SIZE) { 847 struct dentry *lower_dentry = ecryptfs_dentry_to_lower(dentry); 848 849 inode_lock(d_inode(lower_dentry)); 850 rc = notify_change(lower_dentry, &lower_ia, NULL); 851 inode_unlock(d_inode(lower_dentry)); 852 } 853 return rc; 854 } 855 856 static int 857 ecryptfs_permission(struct inode *inode, int mask) 858 { 859 return inode_permission(ecryptfs_inode_to_lower(inode), mask); 860 } 861 862 /** 863 * ecryptfs_setattr 864 * @dentry: dentry handle to the inode to modify 865 * @ia: Structure with flags of what to change and values 866 * 867 * Updates the metadata of an inode. If the update is to the size 868 * i.e. truncation, then ecryptfs_truncate will handle the size modification 869 * of both the ecryptfs inode and the lower inode. 870 * 871 * All other metadata changes will be passed right to the lower filesystem, 872 * and we will just update our inode to look like the lower. 873 */ 874 static int ecryptfs_setattr(struct dentry *dentry, struct iattr *ia) 875 { 876 int rc = 0; 877 struct dentry *lower_dentry; 878 struct iattr lower_ia; 879 struct inode *inode; 880 struct inode *lower_inode; 881 struct ecryptfs_crypt_stat *crypt_stat; 882 883 crypt_stat = &ecryptfs_inode_to_private(d_inode(dentry))->crypt_stat; 884 if (!(crypt_stat->flags & ECRYPTFS_STRUCT_INITIALIZED)) { 885 rc = ecryptfs_init_crypt_stat(crypt_stat); 886 if (rc) 887 return rc; 888 } 889 inode = d_inode(dentry); 890 lower_inode = ecryptfs_inode_to_lower(inode); 891 lower_dentry = ecryptfs_dentry_to_lower(dentry); 892 mutex_lock(&crypt_stat->cs_mutex); 893 if (d_is_dir(dentry)) 894 crypt_stat->flags &= ~(ECRYPTFS_ENCRYPTED); 895 else if (d_is_reg(dentry) 896 && (!(crypt_stat->flags & ECRYPTFS_POLICY_APPLIED) 897 || !(crypt_stat->flags & ECRYPTFS_KEY_VALID))) { 898 struct ecryptfs_mount_crypt_stat *mount_crypt_stat; 899 900 mount_crypt_stat = &ecryptfs_superblock_to_private( 901 dentry->d_sb)->mount_crypt_stat; 902 rc = ecryptfs_get_lower_file(dentry, inode); 903 if (rc) { 904 mutex_unlock(&crypt_stat->cs_mutex); 905 goto out; 906 } 907 rc = ecryptfs_read_metadata(dentry); 908 ecryptfs_put_lower_file(inode); 909 if (rc) { 910 if (!(mount_crypt_stat->flags 911 & ECRYPTFS_PLAINTEXT_PASSTHROUGH_ENABLED)) { 912 rc = -EIO; 913 printk(KERN_WARNING "Either the lower file " 914 "is not in a valid eCryptfs format, " 915 "or the key could not be retrieved. " 916 "Plaintext passthrough mode is not " 917 "enabled; returning -EIO\n"); 918 mutex_unlock(&crypt_stat->cs_mutex); 919 goto out; 920 } 921 rc = 0; 922 crypt_stat->flags &= ~(ECRYPTFS_I_SIZE_INITIALIZED 923 | ECRYPTFS_ENCRYPTED); 924 } 925 } 926 mutex_unlock(&crypt_stat->cs_mutex); 927 928 rc = setattr_prepare(dentry, ia); 929 if (rc) 930 goto out; 931 if (ia->ia_valid & ATTR_SIZE) { 932 rc = ecryptfs_inode_newsize_ok(inode, ia->ia_size); 933 if (rc) 934 goto out; 935 } 936 937 memcpy(&lower_ia, ia, sizeof(lower_ia)); 938 if (ia->ia_valid & ATTR_FILE) 939 lower_ia.ia_file = ecryptfs_file_to_lower(ia->ia_file); 940 if (ia->ia_valid & ATTR_SIZE) { 941 rc = truncate_upper(dentry, ia, &lower_ia); 942 if (rc < 0) 943 goto out; 944 } 945 946 /* 947 * mode change is for clearing setuid/setgid bits. Allow lower fs 948 * to interpret this in its own way. 949 */ 950 if (lower_ia.ia_valid & (ATTR_KILL_SUID | ATTR_KILL_SGID)) 951 lower_ia.ia_valid &= ~ATTR_MODE; 952 953 inode_lock(d_inode(lower_dentry)); 954 rc = notify_change(lower_dentry, &lower_ia, NULL); 955 inode_unlock(d_inode(lower_dentry)); 956 out: 957 fsstack_copy_attr_all(inode, lower_inode); 958 return rc; 959 } 960 961 static int ecryptfs_getattr_link(const struct path *path, struct kstat *stat, 962 u32 request_mask, unsigned int flags) 963 { 964 struct dentry *dentry = path->dentry; 965 struct ecryptfs_mount_crypt_stat *mount_crypt_stat; 966 int rc = 0; 967 968 mount_crypt_stat = &ecryptfs_superblock_to_private( 969 dentry->d_sb)->mount_crypt_stat; 970 generic_fillattr(d_inode(dentry), stat); 971 if (mount_crypt_stat->flags & ECRYPTFS_GLOBAL_ENCRYPT_FILENAMES) { 972 char *target; 973 size_t targetsiz; 974 975 target = ecryptfs_readlink_lower(dentry, &targetsiz); 976 if (!IS_ERR(target)) { 977 kfree(target); 978 stat->size = targetsiz; 979 } else { 980 rc = PTR_ERR(target); 981 } 982 } 983 return rc; 984 } 985 986 static int ecryptfs_getattr(const struct path *path, struct kstat *stat, 987 u32 request_mask, unsigned int flags) 988 { 989 struct dentry *dentry = path->dentry; 990 struct kstat lower_stat; 991 int rc; 992 993 rc = vfs_getattr(ecryptfs_dentry_to_lower_path(dentry), &lower_stat, 994 request_mask, flags); 995 if (!rc) { 996 fsstack_copy_attr_all(d_inode(dentry), 997 ecryptfs_inode_to_lower(d_inode(dentry))); 998 generic_fillattr(d_inode(dentry), stat); 999 stat->blocks = lower_stat.blocks; 1000 } 1001 return rc; 1002 } 1003 1004 int 1005 ecryptfs_setxattr(struct dentry *dentry, struct inode *inode, 1006 const char *name, const void *value, 1007 size_t size, int flags) 1008 { 1009 int rc; 1010 struct dentry *lower_dentry; 1011 1012 lower_dentry = ecryptfs_dentry_to_lower(dentry); 1013 if (!(d_inode(lower_dentry)->i_opflags & IOP_XATTR)) { 1014 rc = -EOPNOTSUPP; 1015 goto out; 1016 } 1017 rc = vfs_setxattr(lower_dentry, name, value, size, flags); 1018 if (!rc && inode) 1019 fsstack_copy_attr_all(inode, d_inode(lower_dentry)); 1020 out: 1021 return rc; 1022 } 1023 1024 ssize_t 1025 ecryptfs_getxattr_lower(struct dentry *lower_dentry, struct inode *lower_inode, 1026 const char *name, void *value, size_t size) 1027 { 1028 int rc; 1029 1030 if (!(lower_inode->i_opflags & IOP_XATTR)) { 1031 rc = -EOPNOTSUPP; 1032 goto out; 1033 } 1034 inode_lock(lower_inode); 1035 rc = __vfs_getxattr(lower_dentry, lower_inode, name, value, size); 1036 inode_unlock(lower_inode); 1037 out: 1038 return rc; 1039 } 1040 1041 static ssize_t 1042 ecryptfs_getxattr(struct dentry *dentry, struct inode *inode, 1043 const char *name, void *value, size_t size) 1044 { 1045 return ecryptfs_getxattr_lower(ecryptfs_dentry_to_lower(dentry), 1046 ecryptfs_inode_to_lower(inode), 1047 name, value, size); 1048 } 1049 1050 static ssize_t 1051 ecryptfs_listxattr(struct dentry *dentry, char *list, size_t size) 1052 { 1053 int rc = 0; 1054 struct dentry *lower_dentry; 1055 1056 lower_dentry = ecryptfs_dentry_to_lower(dentry); 1057 if (!d_inode(lower_dentry)->i_op->listxattr) { 1058 rc = -EOPNOTSUPP; 1059 goto out; 1060 } 1061 inode_lock(d_inode(lower_dentry)); 1062 rc = d_inode(lower_dentry)->i_op->listxattr(lower_dentry, list, size); 1063 inode_unlock(d_inode(lower_dentry)); 1064 out: 1065 return rc; 1066 } 1067 1068 static int ecryptfs_removexattr(struct dentry *dentry, struct inode *inode, 1069 const char *name) 1070 { 1071 int rc; 1072 struct dentry *lower_dentry; 1073 struct inode *lower_inode; 1074 1075 lower_dentry = ecryptfs_dentry_to_lower(dentry); 1076 lower_inode = ecryptfs_inode_to_lower(inode); 1077 if (!(lower_inode->i_opflags & IOP_XATTR)) { 1078 rc = -EOPNOTSUPP; 1079 goto out; 1080 } 1081 inode_lock(lower_inode); 1082 rc = __vfs_removexattr(lower_dentry, name); 1083 inode_unlock(lower_inode); 1084 out: 1085 return rc; 1086 } 1087 1088 const struct inode_operations ecryptfs_symlink_iops = { 1089 .get_link = ecryptfs_get_link, 1090 .permission = ecryptfs_permission, 1091 .setattr = ecryptfs_setattr, 1092 .getattr = ecryptfs_getattr_link, 1093 .listxattr = ecryptfs_listxattr, 1094 }; 1095 1096 const struct inode_operations ecryptfs_dir_iops = { 1097 .create = ecryptfs_create, 1098 .lookup = ecryptfs_lookup, 1099 .link = ecryptfs_link, 1100 .unlink = ecryptfs_unlink, 1101 .symlink = ecryptfs_symlink, 1102 .mkdir = ecryptfs_mkdir, 1103 .rmdir = ecryptfs_rmdir, 1104 .mknod = ecryptfs_mknod, 1105 .rename = ecryptfs_rename, 1106 .permission = ecryptfs_permission, 1107 .setattr = ecryptfs_setattr, 1108 .listxattr = ecryptfs_listxattr, 1109 }; 1110 1111 const struct inode_operations ecryptfs_main_iops = { 1112 .permission = ecryptfs_permission, 1113 .setattr = ecryptfs_setattr, 1114 .getattr = ecryptfs_getattr, 1115 .listxattr = ecryptfs_listxattr, 1116 }; 1117 1118 static int ecryptfs_xattr_get(const struct xattr_handler *handler, 1119 struct dentry *dentry, struct inode *inode, 1120 const char *name, void *buffer, size_t size) 1121 { 1122 return ecryptfs_getxattr(dentry, inode, name, buffer, size); 1123 } 1124 1125 static int ecryptfs_xattr_set(const struct xattr_handler *handler, 1126 struct dentry *dentry, struct inode *inode, 1127 const char *name, const void *value, size_t size, 1128 int flags) 1129 { 1130 if (value) 1131 return ecryptfs_setxattr(dentry, inode, name, value, size, flags); 1132 else { 1133 BUG_ON(flags != XATTR_REPLACE); 1134 return ecryptfs_removexattr(dentry, inode, name); 1135 } 1136 } 1137 1138 const struct xattr_handler ecryptfs_xattr_handler = { 1139 .prefix = "", /* match anything */ 1140 .get = ecryptfs_xattr_get, 1141 .set = ecryptfs_xattr_set, 1142 }; 1143 1144 const struct xattr_handler *ecryptfs_xattr_handlers[] = { 1145 &ecryptfs_xattr_handler, 1146 NULL 1147 }; 1148