1 // SPDX-License-Identifier: GPL-2.0-or-later 2 /* 3 * eCryptfs: Linux filesystem encryption layer 4 * 5 * Copyright (C) 1997-2004 Erez Zadok 6 * Copyright (C) 2001-2004 Stony Brook University 7 * Copyright (C) 2004-2007 International Business Machines Corp. 8 * Author(s): Michael A. Halcrow <mahalcro@us.ibm.com> 9 * Michael C. Thompson <mcthomps@us.ibm.com> 10 */ 11 12 #include <crypto/skcipher.h> 13 #include <linux/fs.h> 14 #include <linux/mount.h> 15 #include <linux/pagemap.h> 16 #include <linux/random.h> 17 #include <linux/compiler.h> 18 #include <linux/key.h> 19 #include <linux/namei.h> 20 #include <linux/file.h> 21 #include <linux/scatterlist.h> 22 #include <linux/slab.h> 23 #include <linux/string.h> 24 #include <linux/unaligned.h> 25 #include <linux/kernel.h> 26 #include <linux/xattr.h> 27 #include "ecryptfs_kernel.h" 28 29 #define DECRYPT 0 30 #define ENCRYPT 1 31 32 /** 33 * ecryptfs_from_hex 34 * @dst: Buffer to take the bytes from src hex; must be at least of 35 * size (src_size / 2) 36 * @src: Buffer to be converted from a hex string representation to raw value 37 * @dst_size: size of dst buffer, or number of hex characters pairs to convert 38 */ 39 void ecryptfs_from_hex(char *dst, char *src, int dst_size) 40 { 41 int x; 42 char tmp[3] = { 0, }; 43 44 for (x = 0; x < dst_size; x++) { 45 tmp[0] = src[x * 2]; 46 tmp[1] = src[x * 2 + 1]; 47 dst[x] = (unsigned char)simple_strtol(tmp, NULL, 16); 48 } 49 } 50 51 static int ecryptfs_crypto_api_algify_cipher_name(char **algified_name, 52 const char *cipher_name, 53 const char *chaining_modifier) 54 { 55 (*algified_name) = kasprintf(GFP_KERNEL, "%s(%s)", chaining_modifier, 56 cipher_name); 57 if (!(*algified_name)) 58 return -ENOMEM; 59 60 return 0; 61 } 62 63 /** 64 * ecryptfs_derive_iv 65 * @iv: destination for the derived iv value 66 * @crypt_stat: Pointer to crypt_stat struct for the current inode 67 * @offset: Offset of the extent whose IV we are to derive 68 * 69 * Generate the initialization vector from the given root IV and page 70 * offset. 71 */ 72 void ecryptfs_derive_iv(char *iv, struct ecryptfs_crypt_stat *crypt_stat, 73 loff_t offset) 74 { 75 char dst[MD5_DIGEST_SIZE]; 76 char src[ECRYPTFS_MAX_IV_BYTES + 16]; 77 78 if (unlikely(ecryptfs_verbosity > 0)) { 79 ecryptfs_printk(KERN_DEBUG, "root iv:\n"); 80 ecryptfs_dump_hex(crypt_stat->root_iv, crypt_stat->iv_bytes); 81 } 82 memcpy(src, crypt_stat->root_iv, crypt_stat->iv_bytes); 83 memset((src + crypt_stat->iv_bytes), 0, 16); 84 snprintf((src + crypt_stat->iv_bytes), 16, "%lld", offset); 85 if (unlikely(ecryptfs_verbosity > 0)) { 86 ecryptfs_printk(KERN_DEBUG, "source:\n"); 87 ecryptfs_dump_hex(src, (crypt_stat->iv_bytes + 16)); 88 } 89 md5(src, crypt_stat->iv_bytes + 16, dst); 90 memcpy(iv, dst, crypt_stat->iv_bytes); 91 if (unlikely(ecryptfs_verbosity > 0)) { 92 ecryptfs_printk(KERN_DEBUG, "derived iv:\n"); 93 ecryptfs_dump_hex(iv, crypt_stat->iv_bytes); 94 } 95 } 96 97 /** 98 * ecryptfs_init_crypt_stat 99 * @crypt_stat: Pointer to the crypt_stat struct to initialize. 100 * 101 * Initialize the crypt_stat structure. 102 */ 103 void ecryptfs_init_crypt_stat(struct ecryptfs_crypt_stat *crypt_stat) 104 { 105 memset((void *)crypt_stat, 0, sizeof(struct ecryptfs_crypt_stat)); 106 INIT_LIST_HEAD(&crypt_stat->keysig_list); 107 mutex_init(&crypt_stat->keysig_list_mutex); 108 mutex_init(&crypt_stat->cs_mutex); 109 mutex_init(&crypt_stat->cs_tfm_mutex); 110 crypt_stat->flags |= ECRYPTFS_STRUCT_INITIALIZED; 111 } 112 113 /** 114 * ecryptfs_destroy_crypt_stat 115 * @crypt_stat: Pointer to the crypt_stat struct to initialize. 116 * 117 * Releases all memory associated with a crypt_stat struct. 118 */ 119 void ecryptfs_destroy_crypt_stat(struct ecryptfs_crypt_stat *crypt_stat) 120 { 121 struct ecryptfs_key_sig *key_sig, *key_sig_tmp; 122 123 crypto_free_skcipher(crypt_stat->tfm); 124 list_for_each_entry_safe(key_sig, key_sig_tmp, 125 &crypt_stat->keysig_list, crypt_stat_list) { 126 list_del(&key_sig->crypt_stat_list); 127 kmem_cache_free(ecryptfs_key_sig_cache, key_sig); 128 } 129 memset(crypt_stat, 0, sizeof(struct ecryptfs_crypt_stat)); 130 } 131 132 void ecryptfs_destroy_mount_crypt_stat( 133 struct ecryptfs_mount_crypt_stat *mount_crypt_stat) 134 { 135 struct ecryptfs_global_auth_tok *auth_tok, *auth_tok_tmp; 136 137 if (!(mount_crypt_stat->flags & ECRYPTFS_MOUNT_CRYPT_STAT_INITIALIZED)) 138 return; 139 mutex_lock(&mount_crypt_stat->global_auth_tok_list_mutex); 140 list_for_each_entry_safe(auth_tok, auth_tok_tmp, 141 &mount_crypt_stat->global_auth_tok_list, 142 mount_crypt_stat_list) { 143 list_del(&auth_tok->mount_crypt_stat_list); 144 if (!(auth_tok->flags & ECRYPTFS_AUTH_TOK_INVALID)) 145 key_put(auth_tok->global_auth_tok_key); 146 kmem_cache_free(ecryptfs_global_auth_tok_cache, auth_tok); 147 } 148 mutex_unlock(&mount_crypt_stat->global_auth_tok_list_mutex); 149 memset(mount_crypt_stat, 0, sizeof(struct ecryptfs_mount_crypt_stat)); 150 } 151 152 /** 153 * virt_to_scatterlist 154 * @addr: Virtual address 155 * @size: Size of data; should be an even multiple of the block size 156 * @sg: Pointer to scatterlist array; set to NULL to obtain only 157 * the number of scatterlist structs required in array 158 * @sg_size: Max array size 159 * 160 * Fills in a scatterlist array with page references for a passed 161 * virtual address. 162 * 163 * Returns the number of scatterlist structs in array used 164 */ 165 int virt_to_scatterlist(const void *addr, int size, struct scatterlist *sg, 166 int sg_size) 167 { 168 int i = 0; 169 struct page *pg; 170 int offset; 171 int remainder_of_page; 172 173 sg_init_table(sg, sg_size); 174 175 while (size > 0 && i < sg_size) { 176 pg = virt_to_page(addr); 177 offset = offset_in_page(addr); 178 sg_set_page(&sg[i], pg, 0, offset); 179 remainder_of_page = PAGE_SIZE - offset; 180 if (size >= remainder_of_page) { 181 sg[i].length = remainder_of_page; 182 addr += remainder_of_page; 183 size -= remainder_of_page; 184 } else { 185 sg[i].length = size; 186 addr += size; 187 size = 0; 188 } 189 i++; 190 } 191 if (size > 0) 192 return -ENOMEM; 193 return i; 194 } 195 196 /** 197 * crypt_scatterlist 198 * @crypt_stat: Pointer to the crypt_stat struct to initialize. 199 * @dst_sg: Destination of the data after performing the crypto operation 200 * @src_sg: Data to be encrypted or decrypted 201 * @size: Length of data 202 * @iv: IV to use 203 * @op: ENCRYPT or DECRYPT to indicate the desired operation 204 * 205 * Returns the number of bytes encrypted or decrypted; negative value on error 206 */ 207 static int crypt_scatterlist(struct ecryptfs_crypt_stat *crypt_stat, 208 struct scatterlist *dst_sg, 209 struct scatterlist *src_sg, int size, 210 unsigned char *iv, int op) 211 { 212 struct skcipher_request *req = NULL; 213 DECLARE_CRYPTO_WAIT(ecr); 214 int rc = 0; 215 216 if (unlikely(ecryptfs_verbosity > 0)) { 217 ecryptfs_printk(KERN_DEBUG, "Key size [%zd]; key:\n", 218 crypt_stat->key_size); 219 ecryptfs_dump_hex(crypt_stat->key, 220 crypt_stat->key_size); 221 } 222 223 mutex_lock(&crypt_stat->cs_tfm_mutex); 224 req = skcipher_request_alloc(crypt_stat->tfm, GFP_NOFS); 225 if (!req) { 226 mutex_unlock(&crypt_stat->cs_tfm_mutex); 227 rc = -ENOMEM; 228 goto out; 229 } 230 231 skcipher_request_set_callback(req, 232 CRYPTO_TFM_REQ_MAY_BACKLOG | CRYPTO_TFM_REQ_MAY_SLEEP, 233 crypto_req_done, &ecr); 234 /* Consider doing this once, when the file is opened */ 235 if (!(crypt_stat->flags & ECRYPTFS_KEY_SET)) { 236 rc = crypto_skcipher_setkey(crypt_stat->tfm, crypt_stat->key, 237 crypt_stat->key_size); 238 if (rc) { 239 ecryptfs_printk(KERN_ERR, 240 "Error setting key; rc = [%d]\n", 241 rc); 242 mutex_unlock(&crypt_stat->cs_tfm_mutex); 243 rc = -EINVAL; 244 goto out; 245 } 246 crypt_stat->flags |= ECRYPTFS_KEY_SET; 247 } 248 mutex_unlock(&crypt_stat->cs_tfm_mutex); 249 skcipher_request_set_crypt(req, src_sg, dst_sg, size, iv); 250 rc = op == ENCRYPT ? crypto_skcipher_encrypt(req) : 251 crypto_skcipher_decrypt(req); 252 rc = crypto_wait_req(rc, &ecr); 253 out: 254 skcipher_request_free(req); 255 return rc; 256 } 257 258 /* 259 * lower_offset_for_page 260 * 261 * Convert an eCryptfs page index into a lower byte offset 262 */ 263 static loff_t lower_offset_for_page(struct ecryptfs_crypt_stat *crypt_stat, 264 struct folio *folio) 265 { 266 return ecryptfs_lower_header_size(crypt_stat) + 267 (loff_t)folio->index * PAGE_SIZE; 268 } 269 270 /** 271 * crypt_extent 272 * @crypt_stat: crypt_stat containing cryptographic context for the 273 * encryption operation 274 * @dst_page: The page to write the result into 275 * @src_page: The page to read from 276 * @page_index: The offset in the file (in units of PAGE_SIZE) 277 * @extent_offset: Page extent offset for use in generating IV 278 * @op: ENCRYPT or DECRYPT to indicate the desired operation 279 * 280 * Encrypts or decrypts one extent of data. 281 * 282 * Return zero on success; non-zero otherwise 283 */ 284 static int crypt_extent(struct ecryptfs_crypt_stat *crypt_stat, 285 struct page *dst_page, 286 struct page *src_page, 287 pgoff_t page_index, 288 unsigned long extent_offset, int op) 289 { 290 loff_t extent_base; 291 char extent_iv[ECRYPTFS_MAX_IV_BYTES]; 292 struct scatterlist src_sg, dst_sg; 293 size_t extent_size = crypt_stat->extent_size; 294 int rc; 295 296 extent_base = (((loff_t)page_index) * (PAGE_SIZE / extent_size)); 297 ecryptfs_derive_iv(extent_iv, crypt_stat, extent_base + extent_offset); 298 299 sg_init_table(&src_sg, 1); 300 sg_init_table(&dst_sg, 1); 301 302 sg_set_page(&src_sg, src_page, extent_size, 303 extent_offset * extent_size); 304 sg_set_page(&dst_sg, dst_page, extent_size, 305 extent_offset * extent_size); 306 307 rc = crypt_scatterlist(crypt_stat, &dst_sg, &src_sg, extent_size, 308 extent_iv, op); 309 if (rc < 0) { 310 printk(KERN_ERR "%s: Error attempting to crypt page with " 311 "page_index = [%ld], extent_offset = [%ld]; " 312 "rc = [%d]\n", __func__, page_index, extent_offset, rc); 313 goto out; 314 } 315 rc = 0; 316 out: 317 return rc; 318 } 319 320 /** 321 * ecryptfs_encrypt_page 322 * @folio: Folio mapped from the eCryptfs inode for the file; contains 323 * decrypted content that needs to be encrypted (to a temporary 324 * page; not in place) and written out to the lower file 325 * 326 * Encrypt an eCryptfs page. This is done on a per-extent basis. Note 327 * that eCryptfs pages may straddle the lower pages -- for instance, 328 * if the file was created on a machine with an 8K page size 329 * (resulting in an 8K header), and then the file is copied onto a 330 * host with a 32K page size, then when reading page 0 of the eCryptfs 331 * file, 24K of page 0 of the lower file will be read and decrypted, 332 * and then 8K of page 1 of the lower file will be read and decrypted. 333 * 334 * Returns zero on success; negative on error 335 */ 336 int ecryptfs_encrypt_page(struct folio *folio) 337 { 338 struct inode *ecryptfs_inode; 339 struct ecryptfs_crypt_stat *crypt_stat; 340 char *enc_extent_virt; 341 struct page *enc_extent_page = NULL; 342 loff_t extent_offset; 343 loff_t lower_offset; 344 int rc = 0; 345 346 ecryptfs_inode = folio->mapping->host; 347 crypt_stat = 348 &(ecryptfs_inode_to_private(ecryptfs_inode)->crypt_stat); 349 BUG_ON(!(crypt_stat->flags & ECRYPTFS_ENCRYPTED)); 350 enc_extent_page = alloc_page(GFP_USER); 351 if (!enc_extent_page) { 352 rc = -ENOMEM; 353 ecryptfs_printk(KERN_ERR, "Error allocating memory for " 354 "encrypted extent\n"); 355 goto out; 356 } 357 358 for (extent_offset = 0; 359 extent_offset < (PAGE_SIZE / crypt_stat->extent_size); 360 extent_offset++) { 361 rc = crypt_extent(crypt_stat, enc_extent_page, 362 folio_page(folio, 0), folio->index, 363 extent_offset, ENCRYPT); 364 if (rc) { 365 printk(KERN_ERR "%s: Error encrypting extent; " 366 "rc = [%d]\n", __func__, rc); 367 goto out; 368 } 369 } 370 371 lower_offset = lower_offset_for_page(crypt_stat, folio); 372 enc_extent_virt = kmap_local_page(enc_extent_page); 373 rc = ecryptfs_write_lower(ecryptfs_inode, enc_extent_virt, lower_offset, 374 PAGE_SIZE); 375 kunmap_local(enc_extent_virt); 376 if (rc < 0) { 377 ecryptfs_printk(KERN_ERR, 378 "Error attempting to write lower page; rc = [%d]\n", 379 rc); 380 goto out; 381 } 382 rc = 0; 383 out: 384 if (enc_extent_page) { 385 __free_page(enc_extent_page); 386 } 387 return rc; 388 } 389 390 /** 391 * ecryptfs_decrypt_page 392 * @folio: Folio mapped from the eCryptfs inode for the file; data read 393 * and decrypted from the lower file will be written into this 394 * page 395 * 396 * Decrypt an eCryptfs page. This is done on a per-extent basis. Note 397 * that eCryptfs pages may straddle the lower pages -- for instance, 398 * if the file was created on a machine with an 8K page size 399 * (resulting in an 8K header), and then the file is copied onto a 400 * host with a 32K page size, then when reading page 0 of the eCryptfs 401 * file, 24K of page 0 of the lower file will be read and decrypted, 402 * and then 8K of page 1 of the lower file will be read and decrypted. 403 * 404 * Returns zero on success; negative on error 405 */ 406 int ecryptfs_decrypt_page(struct folio *folio) 407 { 408 struct inode *ecryptfs_inode; 409 struct ecryptfs_crypt_stat *crypt_stat; 410 char *page_virt; 411 unsigned long extent_offset; 412 loff_t lower_offset; 413 int rc = 0; 414 415 ecryptfs_inode = folio->mapping->host; 416 crypt_stat = 417 &(ecryptfs_inode_to_private(ecryptfs_inode)->crypt_stat); 418 BUG_ON(!(crypt_stat->flags & ECRYPTFS_ENCRYPTED)); 419 420 lower_offset = lower_offset_for_page(crypt_stat, folio); 421 page_virt = kmap_local_folio(folio, 0); 422 rc = ecryptfs_read_lower(page_virt, lower_offset, PAGE_SIZE, 423 ecryptfs_inode); 424 kunmap_local(page_virt); 425 if (rc < 0) { 426 ecryptfs_printk(KERN_ERR, 427 "Error attempting to read lower page; rc = [%d]\n", 428 rc); 429 goto out; 430 } 431 432 for (extent_offset = 0; 433 extent_offset < (PAGE_SIZE / crypt_stat->extent_size); 434 extent_offset++) { 435 struct page *page = folio_page(folio, 0); 436 rc = crypt_extent(crypt_stat, page, page, folio->index, 437 extent_offset, DECRYPT); 438 if (rc) { 439 printk(KERN_ERR "%s: Error decrypting extent; " 440 "rc = [%d]\n", __func__, rc); 441 goto out; 442 } 443 } 444 out: 445 return rc; 446 } 447 448 #define ECRYPTFS_MAX_SCATTERLIST_LEN 4 449 450 /** 451 * ecryptfs_init_crypt_ctx 452 * @crypt_stat: Uninitialized crypt stats structure 453 * 454 * Initialize the crypto context. 455 * 456 * TODO: Performance: Keep a cache of initialized cipher contexts; 457 * only init if needed 458 */ 459 int ecryptfs_init_crypt_ctx(struct ecryptfs_crypt_stat *crypt_stat) 460 { 461 char *full_alg_name; 462 int rc = -EINVAL; 463 464 ecryptfs_printk(KERN_DEBUG, 465 "Initializing cipher [%s]; strlen = [%d]; " 466 "key_size_bits = [%zd]\n", 467 crypt_stat->cipher, (int)strlen(crypt_stat->cipher), 468 crypt_stat->key_size << 3); 469 mutex_lock(&crypt_stat->cs_tfm_mutex); 470 if (crypt_stat->tfm) { 471 rc = 0; 472 goto out_unlock; 473 } 474 rc = ecryptfs_crypto_api_algify_cipher_name(&full_alg_name, 475 crypt_stat->cipher, "cbc"); 476 if (rc) 477 goto out_unlock; 478 crypt_stat->tfm = crypto_alloc_skcipher(full_alg_name, 0, 0); 479 if (IS_ERR(crypt_stat->tfm)) { 480 rc = PTR_ERR(crypt_stat->tfm); 481 crypt_stat->tfm = NULL; 482 ecryptfs_printk(KERN_ERR, "cryptfs: init_crypt_ctx(): " 483 "Error initializing cipher [%s]\n", 484 full_alg_name); 485 goto out_free; 486 } 487 crypto_skcipher_set_flags(crypt_stat->tfm, 488 CRYPTO_TFM_REQ_FORBID_WEAK_KEYS); 489 rc = 0; 490 out_free: 491 kfree(full_alg_name); 492 out_unlock: 493 mutex_unlock(&crypt_stat->cs_tfm_mutex); 494 return rc; 495 } 496 497 static void set_extent_mask_and_shift(struct ecryptfs_crypt_stat *crypt_stat) 498 { 499 int extent_size_tmp; 500 501 crypt_stat->extent_mask = 0xFFFFFFFF; 502 crypt_stat->extent_shift = 0; 503 if (crypt_stat->extent_size == 0) 504 return; 505 extent_size_tmp = crypt_stat->extent_size; 506 while ((extent_size_tmp & 0x01) == 0) { 507 extent_size_tmp >>= 1; 508 crypt_stat->extent_mask <<= 1; 509 crypt_stat->extent_shift++; 510 } 511 } 512 513 void ecryptfs_set_default_sizes(struct ecryptfs_crypt_stat *crypt_stat) 514 { 515 /* Default values; may be overwritten as we are parsing the 516 * packets. */ 517 crypt_stat->extent_size = ECRYPTFS_DEFAULT_EXTENT_SIZE; 518 set_extent_mask_and_shift(crypt_stat); 519 crypt_stat->iv_bytes = ECRYPTFS_DEFAULT_IV_BYTES; 520 if (crypt_stat->flags & ECRYPTFS_METADATA_IN_XATTR) 521 crypt_stat->metadata_size = ECRYPTFS_MINIMUM_HEADER_EXTENT_SIZE; 522 else { 523 if (PAGE_SIZE <= ECRYPTFS_MINIMUM_HEADER_EXTENT_SIZE) 524 crypt_stat->metadata_size = 525 ECRYPTFS_MINIMUM_HEADER_EXTENT_SIZE; 526 else 527 crypt_stat->metadata_size = PAGE_SIZE; 528 } 529 } 530 531 /* 532 * ecryptfs_compute_root_iv 533 * 534 * On error, sets the root IV to all 0's. 535 */ 536 int ecryptfs_compute_root_iv(struct ecryptfs_crypt_stat *crypt_stat) 537 { 538 char dst[MD5_DIGEST_SIZE]; 539 540 BUG_ON(crypt_stat->iv_bytes > MD5_DIGEST_SIZE); 541 BUG_ON(crypt_stat->iv_bytes <= 0); 542 if (!(crypt_stat->flags & ECRYPTFS_KEY_VALID)) { 543 ecryptfs_printk(KERN_WARNING, "Session key not valid; " 544 "cannot generate root IV\n"); 545 memset(crypt_stat->root_iv, 0, crypt_stat->iv_bytes); 546 crypt_stat->flags |= ECRYPTFS_SECURITY_WARNING; 547 return -EINVAL; 548 } 549 md5(crypt_stat->key, crypt_stat->key_size, dst); 550 memcpy(crypt_stat->root_iv, dst, crypt_stat->iv_bytes); 551 return 0; 552 } 553 554 static void ecryptfs_generate_new_key(struct ecryptfs_crypt_stat *crypt_stat) 555 { 556 get_random_bytes(crypt_stat->key, crypt_stat->key_size); 557 crypt_stat->flags |= ECRYPTFS_KEY_VALID; 558 ecryptfs_compute_root_iv(crypt_stat); 559 if (unlikely(ecryptfs_verbosity > 0)) { 560 ecryptfs_printk(KERN_DEBUG, "Generated new session key:\n"); 561 ecryptfs_dump_hex(crypt_stat->key, 562 crypt_stat->key_size); 563 } 564 } 565 566 /** 567 * ecryptfs_copy_mount_wide_flags_to_inode_flags 568 * @crypt_stat: The inode's cryptographic context 569 * @mount_crypt_stat: The mount point's cryptographic context 570 * 571 * This function propagates the mount-wide flags to individual inode 572 * flags. 573 */ 574 static void ecryptfs_copy_mount_wide_flags_to_inode_flags( 575 struct ecryptfs_crypt_stat *crypt_stat, 576 struct ecryptfs_mount_crypt_stat *mount_crypt_stat) 577 { 578 if (mount_crypt_stat->flags & ECRYPTFS_XATTR_METADATA_ENABLED) 579 crypt_stat->flags |= ECRYPTFS_METADATA_IN_XATTR; 580 if (mount_crypt_stat->flags & ECRYPTFS_ENCRYPTED_VIEW_ENABLED) 581 crypt_stat->flags |= ECRYPTFS_VIEW_AS_ENCRYPTED; 582 if (mount_crypt_stat->flags & ECRYPTFS_GLOBAL_ENCRYPT_FILENAMES) { 583 crypt_stat->flags |= ECRYPTFS_ENCRYPT_FILENAMES; 584 if (mount_crypt_stat->flags 585 & ECRYPTFS_GLOBAL_ENCFN_USE_MOUNT_FNEK) 586 crypt_stat->flags |= ECRYPTFS_ENCFN_USE_MOUNT_FNEK; 587 else if (mount_crypt_stat->flags 588 & ECRYPTFS_GLOBAL_ENCFN_USE_FEK) 589 crypt_stat->flags |= ECRYPTFS_ENCFN_USE_FEK; 590 } 591 } 592 593 static int ecryptfs_copy_mount_wide_sigs_to_inode_sigs( 594 struct ecryptfs_crypt_stat *crypt_stat, 595 struct ecryptfs_mount_crypt_stat *mount_crypt_stat) 596 { 597 struct ecryptfs_global_auth_tok *global_auth_tok; 598 int rc = 0; 599 600 mutex_lock(&crypt_stat->keysig_list_mutex); 601 mutex_lock(&mount_crypt_stat->global_auth_tok_list_mutex); 602 603 list_for_each_entry(global_auth_tok, 604 &mount_crypt_stat->global_auth_tok_list, 605 mount_crypt_stat_list) { 606 if (global_auth_tok->flags & ECRYPTFS_AUTH_TOK_FNEK) 607 continue; 608 rc = ecryptfs_add_keysig(crypt_stat, global_auth_tok->sig); 609 if (rc) { 610 printk(KERN_ERR "Error adding keysig; rc = [%d]\n", rc); 611 goto out; 612 } 613 } 614 615 out: 616 mutex_unlock(&mount_crypt_stat->global_auth_tok_list_mutex); 617 mutex_unlock(&crypt_stat->keysig_list_mutex); 618 return rc; 619 } 620 621 /** 622 * ecryptfs_set_default_crypt_stat_vals 623 * @crypt_stat: The inode's cryptographic context 624 * @mount_crypt_stat: The mount point's cryptographic context 625 * 626 * Default values in the event that policy does not override them. 627 */ 628 static void ecryptfs_set_default_crypt_stat_vals( 629 struct ecryptfs_crypt_stat *crypt_stat, 630 struct ecryptfs_mount_crypt_stat *mount_crypt_stat) 631 { 632 ecryptfs_copy_mount_wide_flags_to_inode_flags(crypt_stat, 633 mount_crypt_stat); 634 ecryptfs_set_default_sizes(crypt_stat); 635 strscpy(crypt_stat->cipher, ECRYPTFS_DEFAULT_CIPHER); 636 crypt_stat->key_size = ECRYPTFS_DEFAULT_KEY_BYTES; 637 crypt_stat->flags &= ~(ECRYPTFS_KEY_VALID); 638 crypt_stat->file_version = ECRYPTFS_FILE_VERSION; 639 crypt_stat->mount_crypt_stat = mount_crypt_stat; 640 } 641 642 /** 643 * ecryptfs_new_file_context 644 * @ecryptfs_inode: The eCryptfs inode 645 * 646 * If the crypto context for the file has not yet been established, 647 * this is where we do that. Establishing a new crypto context 648 * involves the following decisions: 649 * - What cipher to use? 650 * - What set of authentication tokens to use? 651 * Here we just worry about getting enough information into the 652 * authentication tokens so that we know that they are available. 653 * We associate the available authentication tokens with the new file 654 * via the set of signatures in the crypt_stat struct. Later, when 655 * the headers are actually written out, we may again defer to 656 * userspace to perform the encryption of the session key; for the 657 * foreseeable future, this will be the case with public key packets. 658 * 659 * Returns zero on success; non-zero otherwise 660 */ 661 int ecryptfs_new_file_context(struct inode *ecryptfs_inode) 662 { 663 struct ecryptfs_crypt_stat *crypt_stat = 664 &ecryptfs_inode_to_private(ecryptfs_inode)->crypt_stat; 665 struct ecryptfs_mount_crypt_stat *mount_crypt_stat = 666 &ecryptfs_superblock_to_private( 667 ecryptfs_inode->i_sb)->mount_crypt_stat; 668 int rc = 0; 669 670 ecryptfs_set_default_crypt_stat_vals(crypt_stat, mount_crypt_stat); 671 crypt_stat->flags |= (ECRYPTFS_ENCRYPTED | ECRYPTFS_KEY_VALID); 672 ecryptfs_copy_mount_wide_flags_to_inode_flags(crypt_stat, 673 mount_crypt_stat); 674 rc = ecryptfs_copy_mount_wide_sigs_to_inode_sigs(crypt_stat, 675 mount_crypt_stat); 676 if (rc) { 677 printk(KERN_ERR "Error attempting to copy mount-wide key sigs " 678 "to the inode key sigs; rc = [%d]\n", rc); 679 goto out; 680 } 681 strscpy(crypt_stat->cipher, 682 mount_crypt_stat->global_default_cipher_name); 683 crypt_stat->key_size = 684 mount_crypt_stat->global_default_cipher_key_size; 685 ecryptfs_generate_new_key(crypt_stat); 686 rc = ecryptfs_init_crypt_ctx(crypt_stat); 687 if (rc) 688 ecryptfs_printk(KERN_ERR, "Error initializing cryptographic " 689 "context for cipher [%s]: rc = [%d]\n", 690 crypt_stat->cipher, rc); 691 out: 692 return rc; 693 } 694 695 /** 696 * ecryptfs_validate_marker - check for the ecryptfs marker 697 * @data: The data block in which to check 698 * 699 * Returns zero if marker found; -EINVAL if not found 700 */ 701 static int ecryptfs_validate_marker(char *data) 702 { 703 u32 m_1, m_2; 704 705 m_1 = get_unaligned_be32(data); 706 m_2 = get_unaligned_be32(data + 4); 707 if ((m_1 ^ MAGIC_ECRYPTFS_MARKER) == m_2) 708 return 0; 709 ecryptfs_printk(KERN_DEBUG, "m_1 = [0x%.8x]; m_2 = [0x%.8x]; " 710 "MAGIC_ECRYPTFS_MARKER = [0x%.8x]\n", m_1, m_2, 711 MAGIC_ECRYPTFS_MARKER); 712 ecryptfs_printk(KERN_DEBUG, "(m_1 ^ MAGIC_ECRYPTFS_MARKER) = " 713 "[0x%.8x]\n", (m_1 ^ MAGIC_ECRYPTFS_MARKER)); 714 return -EINVAL; 715 } 716 717 struct ecryptfs_flag_map_elem { 718 u32 file_flag; 719 u32 local_flag; 720 }; 721 722 /* Add support for additional flags by adding elements here. */ 723 static struct ecryptfs_flag_map_elem ecryptfs_flag_map[] = { 724 {0x00000001, ECRYPTFS_ENABLE_HMAC}, 725 {0x00000002, ECRYPTFS_ENCRYPTED}, 726 {0x00000004, ECRYPTFS_METADATA_IN_XATTR}, 727 {0x00000008, ECRYPTFS_ENCRYPT_FILENAMES} 728 }; 729 730 /** 731 * ecryptfs_process_flags 732 * @crypt_stat: The cryptographic context 733 * @page_virt: Source data to be parsed 734 * @bytes_read: Updated with the number of bytes read 735 */ 736 static void ecryptfs_process_flags(struct ecryptfs_crypt_stat *crypt_stat, 737 char *page_virt, int *bytes_read) 738 { 739 int i; 740 u32 flags; 741 742 flags = get_unaligned_be32(page_virt); 743 for (i = 0; i < ARRAY_SIZE(ecryptfs_flag_map); i++) 744 if (flags & ecryptfs_flag_map[i].file_flag) { 745 crypt_stat->flags |= ecryptfs_flag_map[i].local_flag; 746 } else 747 crypt_stat->flags &= ~(ecryptfs_flag_map[i].local_flag); 748 /* Version is in top 8 bits of the 32-bit flag vector */ 749 crypt_stat->file_version = ((flags >> 24) & 0xFF); 750 (*bytes_read) = 4; 751 } 752 753 /** 754 * write_ecryptfs_marker 755 * @page_virt: The pointer to in a page to begin writing the marker 756 * @written: Number of bytes written 757 * 758 * Marker = 0x3c81b7f5 759 */ 760 static void write_ecryptfs_marker(char *page_virt, size_t *written) 761 { 762 u32 m_1, m_2; 763 764 get_random_bytes(&m_1, (MAGIC_ECRYPTFS_MARKER_SIZE_BYTES / 2)); 765 m_2 = (m_1 ^ MAGIC_ECRYPTFS_MARKER); 766 put_unaligned_be32(m_1, page_virt); 767 page_virt += (MAGIC_ECRYPTFS_MARKER_SIZE_BYTES / 2); 768 put_unaligned_be32(m_2, page_virt); 769 (*written) = MAGIC_ECRYPTFS_MARKER_SIZE_BYTES; 770 } 771 772 void ecryptfs_write_crypt_stat_flags(char *page_virt, 773 struct ecryptfs_crypt_stat *crypt_stat, 774 size_t *written) 775 { 776 u32 flags = 0; 777 int i; 778 779 for (i = 0; i < ARRAY_SIZE(ecryptfs_flag_map); i++) 780 if (crypt_stat->flags & ecryptfs_flag_map[i].local_flag) 781 flags |= ecryptfs_flag_map[i].file_flag; 782 /* Version is in top 8 bits of the 32-bit flag vector */ 783 flags |= ((((u8)crypt_stat->file_version) << 24) & 0xFF000000); 784 put_unaligned_be32(flags, page_virt); 785 (*written) = 4; 786 } 787 788 struct ecryptfs_cipher_code_str_map_elem { 789 char cipher_str[16]; 790 u8 cipher_code; 791 }; 792 793 /* Add support for additional ciphers by adding elements here. The 794 * cipher_code is whatever OpenPGP applications use to identify the 795 * ciphers. List in order of probability. */ 796 static struct ecryptfs_cipher_code_str_map_elem 797 ecryptfs_cipher_code_str_map[] = { 798 {"aes",RFC2440_CIPHER_AES_128 }, 799 {"blowfish", RFC2440_CIPHER_BLOWFISH}, 800 {"des3_ede", RFC2440_CIPHER_DES3_EDE}, 801 {"cast5", RFC2440_CIPHER_CAST_5}, 802 {"twofish", RFC2440_CIPHER_TWOFISH}, 803 {"cast6", RFC2440_CIPHER_CAST_6}, 804 {"aes", RFC2440_CIPHER_AES_192}, 805 {"aes", RFC2440_CIPHER_AES_256} 806 }; 807 808 /** 809 * ecryptfs_code_for_cipher_string 810 * @cipher_name: The string alias for the cipher 811 * @key_bytes: Length of key in bytes; used for AES code selection 812 * 813 * Returns zero on no match, or the cipher code on match 814 */ 815 u8 ecryptfs_code_for_cipher_string(char *cipher_name, size_t key_bytes) 816 { 817 int i; 818 u8 code = 0; 819 struct ecryptfs_cipher_code_str_map_elem *map = 820 ecryptfs_cipher_code_str_map; 821 822 if (strcmp(cipher_name, "aes") == 0) { 823 switch (key_bytes) { 824 case 16: 825 code = RFC2440_CIPHER_AES_128; 826 break; 827 case 24: 828 code = RFC2440_CIPHER_AES_192; 829 break; 830 case 32: 831 code = RFC2440_CIPHER_AES_256; 832 } 833 } else { 834 for (i = 0; i < ARRAY_SIZE(ecryptfs_cipher_code_str_map); i++) 835 if (strcmp(cipher_name, map[i].cipher_str) == 0) { 836 code = map[i].cipher_code; 837 break; 838 } 839 } 840 return code; 841 } 842 843 /** 844 * ecryptfs_cipher_code_to_string 845 * @str: Destination to write out the cipher name 846 * @size: Destination buffer size 847 * @cipher_code: The code to convert to cipher name string 848 * 849 * Returns zero on success 850 */ 851 int ecryptfs_cipher_code_to_string(char *str, size_t size, u8 cipher_code) 852 { 853 int rc = 0; 854 int i; 855 856 str[0] = '\0'; 857 for (i = 0; i < ARRAY_SIZE(ecryptfs_cipher_code_str_map); i++) 858 if (cipher_code == ecryptfs_cipher_code_str_map[i].cipher_code) 859 strscpy(str, ecryptfs_cipher_code_str_map[i].cipher_str, 860 size); 861 if (str[0] == '\0') { 862 ecryptfs_printk(KERN_WARNING, "Cipher code not recognized: " 863 "[%d]\n", cipher_code); 864 rc = -EINVAL; 865 } 866 return rc; 867 } 868 869 int ecryptfs_read_and_validate_header_region(struct inode *inode) 870 { 871 u8 file_size[ECRYPTFS_SIZE_AND_MARKER_BYTES]; 872 u8 *marker = file_size + ECRYPTFS_FILE_SIZE_BYTES; 873 int rc; 874 875 rc = ecryptfs_read_lower(file_size, 0, ECRYPTFS_SIZE_AND_MARKER_BYTES, 876 inode); 877 if (rc < 0) 878 return rc; 879 else if (rc < ECRYPTFS_SIZE_AND_MARKER_BYTES) 880 return -EINVAL; 881 rc = ecryptfs_validate_marker(marker); 882 if (!rc) 883 ecryptfs_i_size_init(file_size, inode); 884 return rc; 885 } 886 887 void 888 ecryptfs_write_header_metadata(char *virt, 889 struct ecryptfs_crypt_stat *crypt_stat, 890 size_t *written) 891 { 892 u32 header_extent_size; 893 u16 num_header_extents_at_front; 894 895 header_extent_size = (u32)crypt_stat->extent_size; 896 num_header_extents_at_front = 897 (u16)(crypt_stat->metadata_size / crypt_stat->extent_size); 898 put_unaligned_be32(header_extent_size, virt); 899 virt += 4; 900 put_unaligned_be16(num_header_extents_at_front, virt); 901 (*written) = 6; 902 } 903 904 struct kmem_cache *ecryptfs_header_cache; 905 906 /** 907 * ecryptfs_write_headers_virt 908 * @page_virt: The virtual address to write the headers to 909 * @max: The size of memory allocated at page_virt 910 * @size: Set to the number of bytes written by this function 911 * @crypt_stat: The cryptographic context 912 * @ecryptfs_dentry: The eCryptfs dentry 913 * 914 * Format version: 1 915 * 916 * Header Extent: 917 * Octets 0-7: Unencrypted file size (big-endian) 918 * Octets 8-15: eCryptfs special marker 919 * Octets 16-19: Flags 920 * Octet 16: File format version number (between 0 and 255) 921 * Octets 17-18: Reserved 922 * Octet 19: Bit 1 (lsb): Reserved 923 * Bit 2: Encrypted? 924 * Bits 3-8: Reserved 925 * Octets 20-23: Header extent size (big-endian) 926 * Octets 24-25: Number of header extents at front of file 927 * (big-endian) 928 * Octet 26: Begin RFC 2440 authentication token packet set 929 * Data Extent 0: 930 * Lower data (CBC encrypted) 931 * Data Extent 1: 932 * Lower data (CBC encrypted) 933 * ... 934 * 935 * Returns zero on success 936 */ 937 static int ecryptfs_write_headers_virt(char *page_virt, size_t max, 938 size_t *size, 939 struct ecryptfs_crypt_stat *crypt_stat, 940 struct dentry *ecryptfs_dentry) 941 { 942 int rc; 943 size_t written; 944 size_t offset; 945 946 offset = ECRYPTFS_FILE_SIZE_BYTES; 947 write_ecryptfs_marker((page_virt + offset), &written); 948 offset += written; 949 ecryptfs_write_crypt_stat_flags((page_virt + offset), crypt_stat, 950 &written); 951 offset += written; 952 ecryptfs_write_header_metadata((page_virt + offset), crypt_stat, 953 &written); 954 offset += written; 955 rc = ecryptfs_generate_key_packet_set((page_virt + offset), crypt_stat, 956 ecryptfs_dentry, &written, 957 max - offset); 958 if (rc) 959 ecryptfs_printk(KERN_WARNING, "Error generating key packet " 960 "set; rc = [%d]\n", rc); 961 if (size) { 962 offset += written; 963 *size = offset; 964 } 965 return rc; 966 } 967 968 static int 969 ecryptfs_write_metadata_to_contents(struct inode *ecryptfs_inode, 970 char *virt, size_t virt_len) 971 { 972 int rc; 973 974 rc = ecryptfs_write_lower(ecryptfs_inode, virt, 975 0, virt_len); 976 if (rc < 0) 977 printk(KERN_ERR "%s: Error attempting to write header " 978 "information to lower file; rc = [%d]\n", __func__, rc); 979 else 980 rc = 0; 981 return rc; 982 } 983 984 static int 985 ecryptfs_write_metadata_to_xattr(struct dentry *ecryptfs_dentry, 986 struct inode *ecryptfs_inode, 987 char *page_virt, size_t size) 988 { 989 int rc; 990 struct dentry *lower_dentry = ecryptfs_dentry_to_lower(ecryptfs_dentry); 991 struct inode *lower_inode = d_inode(lower_dentry); 992 993 if (!(lower_inode->i_opflags & IOP_XATTR)) { 994 rc = -EOPNOTSUPP; 995 goto out; 996 } 997 998 inode_lock(lower_inode); 999 rc = __vfs_setxattr(&nop_mnt_idmap, lower_dentry, lower_inode, 1000 ECRYPTFS_XATTR_NAME, page_virt, size, 0); 1001 if (!rc && ecryptfs_inode) 1002 fsstack_copy_attr_all(ecryptfs_inode, lower_inode); 1003 inode_unlock(lower_inode); 1004 out: 1005 return rc; 1006 } 1007 1008 static unsigned long ecryptfs_get_zeroed_pages(gfp_t gfp_mask, 1009 unsigned int order) 1010 { 1011 struct page *page; 1012 1013 page = alloc_pages(gfp_mask | __GFP_ZERO, order); 1014 if (page) 1015 return (unsigned long) page_address(page); 1016 return 0; 1017 } 1018 1019 /** 1020 * ecryptfs_write_metadata 1021 * @ecryptfs_dentry: The eCryptfs dentry, which should be negative 1022 * @ecryptfs_inode: The newly created eCryptfs inode 1023 * 1024 * Write the file headers out. This will likely involve a userspace 1025 * callout, in which the session key is encrypted with one or more 1026 * public keys and/or the passphrase necessary to do the encryption is 1027 * retrieved via a prompt. Exactly what happens at this point should 1028 * be policy-dependent. 1029 * 1030 * Returns zero on success; non-zero on error 1031 */ 1032 int ecryptfs_write_metadata(struct dentry *ecryptfs_dentry, 1033 struct inode *ecryptfs_inode) 1034 { 1035 struct ecryptfs_crypt_stat *crypt_stat = 1036 &ecryptfs_inode_to_private(ecryptfs_inode)->crypt_stat; 1037 unsigned int order; 1038 char *virt; 1039 size_t virt_len; 1040 size_t size = 0; 1041 int rc = 0; 1042 1043 if (likely(crypt_stat->flags & ECRYPTFS_ENCRYPTED)) { 1044 if (!(crypt_stat->flags & ECRYPTFS_KEY_VALID)) { 1045 printk(KERN_ERR "Key is invalid; bailing out\n"); 1046 rc = -EINVAL; 1047 goto out; 1048 } 1049 } else { 1050 printk(KERN_WARNING "%s: Encrypted flag not set\n", 1051 __func__); 1052 rc = -EINVAL; 1053 goto out; 1054 } 1055 virt_len = crypt_stat->metadata_size; 1056 order = get_order(virt_len); 1057 /* Released in this function */ 1058 virt = (char *)ecryptfs_get_zeroed_pages(GFP_KERNEL, order); 1059 if (!virt) { 1060 printk(KERN_ERR "%s: Out of memory\n", __func__); 1061 rc = -ENOMEM; 1062 goto out; 1063 } 1064 /* Zeroed page ensures the in-header unencrypted i_size is set to 0 */ 1065 rc = ecryptfs_write_headers_virt(virt, virt_len, &size, crypt_stat, 1066 ecryptfs_dentry); 1067 if (unlikely(rc)) { 1068 printk(KERN_ERR "%s: Error whilst writing headers; rc = [%d]\n", 1069 __func__, rc); 1070 goto out_free; 1071 } 1072 if (crypt_stat->flags & ECRYPTFS_METADATA_IN_XATTR) 1073 rc = ecryptfs_write_metadata_to_xattr(ecryptfs_dentry, ecryptfs_inode, 1074 virt, size); 1075 else 1076 rc = ecryptfs_write_metadata_to_contents(ecryptfs_inode, virt, 1077 virt_len); 1078 if (rc) { 1079 printk(KERN_ERR "%s: Error writing metadata out to lower file; " 1080 "rc = [%d]\n", __func__, rc); 1081 goto out_free; 1082 } 1083 out_free: 1084 free_pages((unsigned long)virt, order); 1085 out: 1086 return rc; 1087 } 1088 1089 #define ECRYPTFS_DONT_VALIDATE_HEADER_SIZE 0 1090 #define ECRYPTFS_VALIDATE_HEADER_SIZE 1 1091 static int parse_header_metadata(struct ecryptfs_crypt_stat *crypt_stat, 1092 char *virt, int *bytes_read, 1093 int validate_header_size) 1094 { 1095 int rc = 0; 1096 u32 header_extent_size; 1097 u16 num_header_extents_at_front; 1098 1099 header_extent_size = get_unaligned_be32(virt); 1100 virt += sizeof(__be32); 1101 num_header_extents_at_front = get_unaligned_be16(virt); 1102 crypt_stat->metadata_size = (((size_t)num_header_extents_at_front 1103 * (size_t)header_extent_size)); 1104 (*bytes_read) = (sizeof(__be32) + sizeof(__be16)); 1105 if ((validate_header_size == ECRYPTFS_VALIDATE_HEADER_SIZE) 1106 && (crypt_stat->metadata_size 1107 < ECRYPTFS_MINIMUM_HEADER_EXTENT_SIZE)) { 1108 rc = -EINVAL; 1109 printk(KERN_WARNING "Invalid header size: [%zd]\n", 1110 crypt_stat->metadata_size); 1111 } 1112 return rc; 1113 } 1114 1115 /** 1116 * set_default_header_data 1117 * @crypt_stat: The cryptographic context 1118 * 1119 * For version 0 file format; this function is only for backwards 1120 * compatibility for files created with the prior versions of 1121 * eCryptfs. 1122 */ 1123 static void set_default_header_data(struct ecryptfs_crypt_stat *crypt_stat) 1124 { 1125 crypt_stat->metadata_size = ECRYPTFS_MINIMUM_HEADER_EXTENT_SIZE; 1126 } 1127 1128 void ecryptfs_i_size_init(const char *page_virt, struct inode *inode) 1129 { 1130 struct ecryptfs_mount_crypt_stat *mount_crypt_stat; 1131 struct ecryptfs_crypt_stat *crypt_stat; 1132 u64 file_size; 1133 1134 crypt_stat = &ecryptfs_inode_to_private(inode)->crypt_stat; 1135 mount_crypt_stat = 1136 &ecryptfs_superblock_to_private(inode->i_sb)->mount_crypt_stat; 1137 if (mount_crypt_stat->flags & ECRYPTFS_ENCRYPTED_VIEW_ENABLED) { 1138 file_size = i_size_read(ecryptfs_inode_to_lower(inode)); 1139 if (crypt_stat->flags & ECRYPTFS_METADATA_IN_XATTR) 1140 file_size += crypt_stat->metadata_size; 1141 } else 1142 file_size = get_unaligned_be64(page_virt); 1143 i_size_write(inode, (loff_t)file_size); 1144 crypt_stat->flags |= ECRYPTFS_I_SIZE_INITIALIZED; 1145 } 1146 1147 /** 1148 * ecryptfs_read_headers_virt 1149 * @page_virt: The virtual address into which to read the headers 1150 * @crypt_stat: The cryptographic context 1151 * @ecryptfs_dentry: The eCryptfs dentry 1152 * @validate_header_size: Whether to validate the header size while reading 1153 * 1154 * Read/parse the header data. The header format is detailed in the 1155 * comment block for the ecryptfs_write_headers_virt() function. 1156 * 1157 * Returns zero on success 1158 */ 1159 static int ecryptfs_read_headers_virt(char *page_virt, 1160 struct ecryptfs_crypt_stat *crypt_stat, 1161 struct dentry *ecryptfs_dentry, 1162 int validate_header_size) 1163 { 1164 int rc = 0; 1165 int offset; 1166 int bytes_read; 1167 1168 ecryptfs_set_default_sizes(crypt_stat); 1169 crypt_stat->mount_crypt_stat = &ecryptfs_superblock_to_private( 1170 ecryptfs_dentry->d_sb)->mount_crypt_stat; 1171 offset = ECRYPTFS_FILE_SIZE_BYTES; 1172 rc = ecryptfs_validate_marker(page_virt + offset); 1173 if (rc) 1174 goto out; 1175 if (!(crypt_stat->flags & ECRYPTFS_I_SIZE_INITIALIZED)) 1176 ecryptfs_i_size_init(page_virt, d_inode(ecryptfs_dentry)); 1177 offset += MAGIC_ECRYPTFS_MARKER_SIZE_BYTES; 1178 ecryptfs_process_flags(crypt_stat, (page_virt + offset), &bytes_read); 1179 if (crypt_stat->file_version > ECRYPTFS_SUPPORTED_FILE_VERSION) { 1180 ecryptfs_printk(KERN_WARNING, "File version is [%d]; only " 1181 "file version [%d] is supported by this " 1182 "version of eCryptfs\n", 1183 crypt_stat->file_version, 1184 ECRYPTFS_SUPPORTED_FILE_VERSION); 1185 rc = -EINVAL; 1186 goto out; 1187 } 1188 offset += bytes_read; 1189 if (crypt_stat->file_version >= 1) { 1190 rc = parse_header_metadata(crypt_stat, (page_virt + offset), 1191 &bytes_read, validate_header_size); 1192 if (rc) { 1193 ecryptfs_printk(KERN_WARNING, "Error reading header " 1194 "metadata; rc = [%d]\n", rc); 1195 } 1196 offset += bytes_read; 1197 } else 1198 set_default_header_data(crypt_stat); 1199 rc = ecryptfs_parse_packet_set(crypt_stat, (page_virt + offset), 1200 ecryptfs_dentry); 1201 out: 1202 return rc; 1203 } 1204 1205 /** 1206 * ecryptfs_read_xattr_region 1207 * @page_virt: The virtual address into which to read the xattr data 1208 * @ecryptfs_inode: The eCryptfs inode 1209 * 1210 * Attempts to read the crypto metadata from the extended attribute 1211 * region of the lower file. 1212 * 1213 * Returns zero on success; non-zero on error 1214 */ 1215 int ecryptfs_read_xattr_region(char *page_virt, struct inode *ecryptfs_inode) 1216 { 1217 struct dentry *lower_dentry = 1218 ecryptfs_inode_to_private(ecryptfs_inode)->lower_file->f_path.dentry; 1219 ssize_t size; 1220 int rc = 0; 1221 1222 size = ecryptfs_getxattr_lower(lower_dentry, 1223 ecryptfs_inode_to_lower(ecryptfs_inode), 1224 ECRYPTFS_XATTR_NAME, 1225 page_virt, ECRYPTFS_DEFAULT_EXTENT_SIZE); 1226 if (size < 0) { 1227 if (unlikely(ecryptfs_verbosity > 0)) 1228 printk(KERN_INFO "Error attempting to read the [%s] " 1229 "xattr from the lower file; return value = " 1230 "[%zd]\n", ECRYPTFS_XATTR_NAME, size); 1231 rc = -EINVAL; 1232 goto out; 1233 } 1234 out: 1235 return rc; 1236 } 1237 1238 int ecryptfs_read_and_validate_xattr_region(struct dentry *dentry, 1239 struct inode *inode) 1240 { 1241 u8 file_size[ECRYPTFS_SIZE_AND_MARKER_BYTES]; 1242 u8 *marker = file_size + ECRYPTFS_FILE_SIZE_BYTES; 1243 int rc; 1244 1245 rc = ecryptfs_getxattr_lower(ecryptfs_dentry_to_lower(dentry), 1246 ecryptfs_inode_to_lower(inode), 1247 ECRYPTFS_XATTR_NAME, file_size, 1248 ECRYPTFS_SIZE_AND_MARKER_BYTES); 1249 if (rc < 0) 1250 return rc; 1251 else if (rc < ECRYPTFS_SIZE_AND_MARKER_BYTES) 1252 return -EINVAL; 1253 rc = ecryptfs_validate_marker(marker); 1254 if (!rc) 1255 ecryptfs_i_size_init(file_size, inode); 1256 return rc; 1257 } 1258 1259 /* 1260 * ecryptfs_read_metadata 1261 * 1262 * Common entry point for reading file metadata. From here, we could 1263 * retrieve the header information from the header region of the file, 1264 * the xattr region of the file, or some other repository that is 1265 * stored separately from the file itself. The current implementation 1266 * supports retrieving the metadata information from the file contents 1267 * and from the xattr region. 1268 * 1269 * Returns zero if valid headers found and parsed; non-zero otherwise 1270 */ 1271 int ecryptfs_read_metadata(struct dentry *ecryptfs_dentry) 1272 { 1273 int rc; 1274 char *page_virt; 1275 struct inode *ecryptfs_inode = d_inode(ecryptfs_dentry); 1276 struct ecryptfs_crypt_stat *crypt_stat = 1277 &ecryptfs_inode_to_private(ecryptfs_inode)->crypt_stat; 1278 struct ecryptfs_mount_crypt_stat *mount_crypt_stat = 1279 &ecryptfs_superblock_to_private( 1280 ecryptfs_dentry->d_sb)->mount_crypt_stat; 1281 1282 ecryptfs_copy_mount_wide_flags_to_inode_flags(crypt_stat, 1283 mount_crypt_stat); 1284 /* Read the first page from the underlying file */ 1285 page_virt = kmem_cache_alloc(ecryptfs_header_cache, GFP_USER); 1286 if (!page_virt) { 1287 rc = -ENOMEM; 1288 goto out; 1289 } 1290 rc = ecryptfs_read_lower(page_virt, 0, crypt_stat->extent_size, 1291 ecryptfs_inode); 1292 if (rc >= 0) 1293 rc = ecryptfs_read_headers_virt(page_virt, crypt_stat, 1294 ecryptfs_dentry, 1295 ECRYPTFS_VALIDATE_HEADER_SIZE); 1296 if (rc) { 1297 /* metadata is not in the file header, so try xattrs */ 1298 memset(page_virt, 0, PAGE_SIZE); 1299 rc = ecryptfs_read_xattr_region(page_virt, ecryptfs_inode); 1300 if (rc) { 1301 printk(KERN_DEBUG "Valid eCryptfs headers not found in " 1302 "file header region or xattr region, inode %llu\n", 1303 ecryptfs_inode->i_ino); 1304 rc = -EINVAL; 1305 goto out; 1306 } 1307 rc = ecryptfs_read_headers_virt(page_virt, crypt_stat, 1308 ecryptfs_dentry, 1309 ECRYPTFS_DONT_VALIDATE_HEADER_SIZE); 1310 if (rc) { 1311 printk(KERN_DEBUG "Valid eCryptfs headers not found in " 1312 "file xattr region either, inode %llu\n", 1313 ecryptfs_inode->i_ino); 1314 rc = -EINVAL; 1315 } 1316 if (crypt_stat->mount_crypt_stat->flags 1317 & ECRYPTFS_XATTR_METADATA_ENABLED) { 1318 crypt_stat->flags |= ECRYPTFS_METADATA_IN_XATTR; 1319 } else { 1320 printk(KERN_WARNING "Attempt to access file with " 1321 "crypto metadata only in the extended attribute " 1322 "region, but eCryptfs was mounted without " 1323 "xattr support enabled. eCryptfs will not treat " 1324 "this like an encrypted file, inode %llu\n", 1325 ecryptfs_inode->i_ino); 1326 rc = -EINVAL; 1327 } 1328 } 1329 out: 1330 if (page_virt) { 1331 memset(page_virt, 0, PAGE_SIZE); 1332 kmem_cache_free(ecryptfs_header_cache, page_virt); 1333 } 1334 return rc; 1335 } 1336 1337 /* 1338 * ecryptfs_encrypt_filename - encrypt filename 1339 * 1340 * CBC-encrypts the filename. We do not want to encrypt the same 1341 * filename with the same key and IV, which may happen with hard 1342 * links, so we prepend random bits to each filename. 1343 * 1344 * Returns zero on success; non-zero otherwise 1345 */ 1346 static int 1347 ecryptfs_encrypt_filename(struct ecryptfs_filename *filename, 1348 struct ecryptfs_mount_crypt_stat *mount_crypt_stat) 1349 { 1350 int rc = 0; 1351 1352 filename->encrypted_filename = NULL; 1353 filename->encrypted_filename_size = 0; 1354 if (mount_crypt_stat && (mount_crypt_stat->flags 1355 & ECRYPTFS_GLOBAL_ENCFN_USE_MOUNT_FNEK)) { 1356 size_t packet_size; 1357 size_t remaining_bytes; 1358 1359 rc = ecryptfs_write_tag_70_packet( 1360 NULL, NULL, 1361 &filename->encrypted_filename_size, 1362 mount_crypt_stat, NULL, 1363 filename->filename_size); 1364 if (rc) { 1365 ecryptfs_printk(KERN_ERR, 1366 "Error attempting to get packet size for tag 70; rc = [%d]\n", 1367 rc); 1368 filename->encrypted_filename_size = 0; 1369 goto out; 1370 } 1371 filename->encrypted_filename = 1372 kmalloc(filename->encrypted_filename_size, GFP_KERNEL); 1373 if (!filename->encrypted_filename) { 1374 rc = -ENOMEM; 1375 goto out; 1376 } 1377 remaining_bytes = filename->encrypted_filename_size; 1378 rc = ecryptfs_write_tag_70_packet(filename->encrypted_filename, 1379 &remaining_bytes, 1380 &packet_size, 1381 mount_crypt_stat, 1382 filename->filename, 1383 filename->filename_size); 1384 if (rc) { 1385 printk(KERN_ERR "%s: Error attempting to generate " 1386 "tag 70 packet; rc = [%d]\n", __func__, 1387 rc); 1388 kfree(filename->encrypted_filename); 1389 filename->encrypted_filename = NULL; 1390 filename->encrypted_filename_size = 0; 1391 goto out; 1392 } 1393 filename->encrypted_filename_size = packet_size; 1394 } else { 1395 printk(KERN_ERR "%s: No support for requested filename " 1396 "encryption method in this release\n", __func__); 1397 rc = -EOPNOTSUPP; 1398 goto out; 1399 } 1400 out: 1401 return rc; 1402 } 1403 1404 static int ecryptfs_copy_filename(char **copied_name, size_t *copied_name_size, 1405 const char *name, size_t name_size) 1406 { 1407 (*copied_name) = kmemdup_nul(name, name_size, GFP_KERNEL); 1408 if (!(*copied_name)) 1409 return -ENOMEM; 1410 (*copied_name_size) = name_size; 1411 return 0; 1412 } 1413 1414 /** 1415 * ecryptfs_process_key_cipher - Perform key cipher initialization. 1416 * @key_tfm: Crypto context for key material, set by this function 1417 * @cipher_name: Name of the cipher 1418 * @key_size: Size of the key in bytes 1419 * 1420 * Returns zero on success. Any crypto_tfm structs allocated here 1421 * should be released by other functions, such as on a superblock put 1422 * event, regardless of whether this function succeeds for fails. 1423 */ 1424 static int 1425 ecryptfs_process_key_cipher(struct crypto_skcipher **key_tfm, 1426 char *cipher_name, size_t *key_size) 1427 { 1428 char dummy_key[ECRYPTFS_MAX_KEY_BYTES]; 1429 char *full_alg_name = NULL; 1430 int rc; 1431 1432 *key_tfm = NULL; 1433 if (*key_size > ECRYPTFS_MAX_KEY_BYTES) { 1434 rc = -EINVAL; 1435 printk(KERN_ERR "Requested key size is [%zd] bytes; maximum " 1436 "allowable is [%d]\n", *key_size, ECRYPTFS_MAX_KEY_BYTES); 1437 goto out; 1438 } 1439 rc = ecryptfs_crypto_api_algify_cipher_name(&full_alg_name, cipher_name, 1440 "ecb"); 1441 if (rc) 1442 goto out; 1443 *key_tfm = crypto_alloc_skcipher(full_alg_name, 0, CRYPTO_ALG_ASYNC); 1444 if (IS_ERR(*key_tfm)) { 1445 rc = PTR_ERR(*key_tfm); 1446 printk(KERN_ERR "Unable to allocate crypto cipher with name " 1447 "[%s]; rc = [%d]\n", full_alg_name, rc); 1448 goto out; 1449 } 1450 crypto_skcipher_set_flags(*key_tfm, CRYPTO_TFM_REQ_FORBID_WEAK_KEYS); 1451 if (*key_size == 0) 1452 *key_size = crypto_skcipher_max_keysize(*key_tfm); 1453 get_random_bytes(dummy_key, *key_size); 1454 rc = crypto_skcipher_setkey(*key_tfm, dummy_key, *key_size); 1455 if (rc) { 1456 printk(KERN_ERR "Error attempting to set key of size [%zd] for " 1457 "cipher [%s]; rc = [%d]\n", *key_size, full_alg_name, 1458 rc); 1459 rc = -EINVAL; 1460 goto out; 1461 } 1462 out: 1463 kfree(full_alg_name); 1464 return rc; 1465 } 1466 1467 struct kmem_cache *ecryptfs_key_tfm_cache; 1468 static struct list_head key_tfm_list; 1469 DEFINE_MUTEX(key_tfm_list_mutex); 1470 1471 int __init ecryptfs_init_crypto(void) 1472 { 1473 INIT_LIST_HEAD(&key_tfm_list); 1474 return 0; 1475 } 1476 1477 /** 1478 * ecryptfs_destroy_crypto - free all cached key_tfms on key_tfm_list 1479 * 1480 * Called only at module unload time 1481 */ 1482 int ecryptfs_destroy_crypto(void) 1483 { 1484 struct ecryptfs_key_tfm *key_tfm, *key_tfm_tmp; 1485 1486 mutex_lock(&key_tfm_list_mutex); 1487 list_for_each_entry_safe(key_tfm, key_tfm_tmp, &key_tfm_list, 1488 key_tfm_list) { 1489 list_del(&key_tfm->key_tfm_list); 1490 crypto_free_skcipher(key_tfm->key_tfm); 1491 kmem_cache_free(ecryptfs_key_tfm_cache, key_tfm); 1492 } 1493 mutex_unlock(&key_tfm_list_mutex); 1494 return 0; 1495 } 1496 1497 int 1498 ecryptfs_add_new_key_tfm(struct ecryptfs_key_tfm **key_tfm, char *cipher_name, 1499 size_t key_size) 1500 { 1501 struct ecryptfs_key_tfm *tmp_tfm; 1502 int rc = 0; 1503 1504 BUG_ON(!mutex_is_locked(&key_tfm_list_mutex)); 1505 1506 tmp_tfm = kmem_cache_alloc(ecryptfs_key_tfm_cache, GFP_KERNEL); 1507 if (key_tfm) 1508 (*key_tfm) = tmp_tfm; 1509 if (!tmp_tfm) { 1510 rc = -ENOMEM; 1511 goto out; 1512 } 1513 mutex_init(&tmp_tfm->key_tfm_mutex); 1514 strscpy(tmp_tfm->cipher_name, cipher_name); 1515 tmp_tfm->key_size = key_size; 1516 rc = ecryptfs_process_key_cipher(&tmp_tfm->key_tfm, 1517 tmp_tfm->cipher_name, 1518 &tmp_tfm->key_size); 1519 if (rc) { 1520 printk(KERN_ERR "Error attempting to initialize key TFM " 1521 "cipher with name = [%s]; rc = [%d]\n", 1522 tmp_tfm->cipher_name, rc); 1523 kmem_cache_free(ecryptfs_key_tfm_cache, tmp_tfm); 1524 if (key_tfm) 1525 (*key_tfm) = NULL; 1526 goto out; 1527 } 1528 list_add(&tmp_tfm->key_tfm_list, &key_tfm_list); 1529 out: 1530 return rc; 1531 } 1532 1533 /** 1534 * ecryptfs_tfm_exists - Search for existing tfm for cipher_name. 1535 * @cipher_name: the name of the cipher to search for 1536 * @key_tfm: set to corresponding tfm if found 1537 * 1538 * Searches for cached key_tfm matching @cipher_name 1539 * Must be called with &key_tfm_list_mutex held 1540 * Returns 1 if found, with @key_tfm set 1541 * Returns 0 if not found, with @key_tfm set to NULL 1542 */ 1543 int ecryptfs_tfm_exists(char *cipher_name, struct ecryptfs_key_tfm **key_tfm) 1544 { 1545 struct ecryptfs_key_tfm *tmp_key_tfm; 1546 1547 BUG_ON(!mutex_is_locked(&key_tfm_list_mutex)); 1548 1549 list_for_each_entry(tmp_key_tfm, &key_tfm_list, key_tfm_list) { 1550 if (strcmp(tmp_key_tfm->cipher_name, cipher_name) == 0) { 1551 if (key_tfm) 1552 (*key_tfm) = tmp_key_tfm; 1553 return 1; 1554 } 1555 } 1556 if (key_tfm) 1557 (*key_tfm) = NULL; 1558 return 0; 1559 } 1560 1561 /** 1562 * ecryptfs_get_tfm_and_mutex_for_cipher_name 1563 * 1564 * @tfm: set to cached tfm found, or new tfm created 1565 * @tfm_mutex: set to mutex for cached tfm found, or new tfm created 1566 * @cipher_name: the name of the cipher to search for and/or add 1567 * 1568 * Sets pointers to @tfm & @tfm_mutex matching @cipher_name. 1569 * Searches for cached item first, and creates new if not found. 1570 * Returns 0 on success, non-zero if adding new cipher failed 1571 */ 1572 int ecryptfs_get_tfm_and_mutex_for_cipher_name(struct crypto_skcipher **tfm, 1573 struct mutex **tfm_mutex, 1574 char *cipher_name) 1575 { 1576 struct ecryptfs_key_tfm *key_tfm; 1577 int rc = 0; 1578 1579 (*tfm) = NULL; 1580 (*tfm_mutex) = NULL; 1581 1582 mutex_lock(&key_tfm_list_mutex); 1583 if (!ecryptfs_tfm_exists(cipher_name, &key_tfm)) { 1584 rc = ecryptfs_add_new_key_tfm(&key_tfm, cipher_name, 0); 1585 if (rc) { 1586 printk(KERN_ERR "Error adding new key_tfm to list; " 1587 "rc = [%d]\n", rc); 1588 goto out; 1589 } 1590 } 1591 (*tfm) = key_tfm->key_tfm; 1592 (*tfm_mutex) = &key_tfm->key_tfm_mutex; 1593 out: 1594 mutex_unlock(&key_tfm_list_mutex); 1595 return rc; 1596 } 1597 1598 /* 64 characters forming a 6-bit target field */ 1599 static unsigned char *portable_filename_chars = ("-.0123456789ABCD" 1600 "EFGHIJKLMNOPQRST" 1601 "UVWXYZabcdefghij" 1602 "klmnopqrstuvwxyz"); 1603 1604 /* We could either offset on every reverse map or just pad some 0x00's 1605 * at the front here */ 1606 static const unsigned char filename_rev_map[256] = { 1607 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, /* 7 */ 1608 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, /* 15 */ 1609 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, /* 23 */ 1610 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, /* 31 */ 1611 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, /* 39 */ 1612 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x01, 0x00, /* 47 */ 1613 0x02, 0x03, 0x04, 0x05, 0x06, 0x07, 0x08, 0x09, /* 55 */ 1614 0x0A, 0x0B, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, /* 63 */ 1615 0x00, 0x0C, 0x0D, 0x0E, 0x0F, 0x10, 0x11, 0x12, /* 71 */ 1616 0x13, 0x14, 0x15, 0x16, 0x17, 0x18, 0x19, 0x1A, /* 79 */ 1617 0x1B, 0x1C, 0x1D, 0x1E, 0x1F, 0x20, 0x21, 0x22, /* 87 */ 1618 0x23, 0x24, 0x25, 0x00, 0x00, 0x00, 0x00, 0x00, /* 95 */ 1619 0x00, 0x26, 0x27, 0x28, 0x29, 0x2A, 0x2B, 0x2C, /* 103 */ 1620 0x2D, 0x2E, 0x2F, 0x30, 0x31, 0x32, 0x33, 0x34, /* 111 */ 1621 0x35, 0x36, 0x37, 0x38, 0x39, 0x3A, 0x3B, 0x3C, /* 119 */ 1622 0x3D, 0x3E, 0x3F /* 123 - 255 initialized to 0x00 */ 1623 }; 1624 1625 /** 1626 * ecryptfs_encode_for_filename 1627 * @dst: Destination location for encoded filename 1628 * @dst_size: Size of the encoded filename in bytes 1629 * @src: Source location for the filename to encode 1630 * @src_size: Size of the source in bytes 1631 */ 1632 static void ecryptfs_encode_for_filename(unsigned char *dst, size_t *dst_size, 1633 unsigned char *src, size_t src_size) 1634 { 1635 size_t num_blocks; 1636 size_t block_num = 0; 1637 size_t dst_offset = 0; 1638 unsigned char last_block[3]; 1639 1640 if (src_size == 0) { 1641 (*dst_size) = 0; 1642 goto out; 1643 } 1644 num_blocks = (src_size / 3); 1645 if ((src_size % 3) == 0) { 1646 memcpy(last_block, (&src[src_size - 3]), 3); 1647 } else { 1648 num_blocks++; 1649 last_block[2] = 0x00; 1650 switch (src_size % 3) { 1651 case 1: 1652 last_block[0] = src[src_size - 1]; 1653 last_block[1] = 0x00; 1654 break; 1655 case 2: 1656 last_block[0] = src[src_size - 2]; 1657 last_block[1] = src[src_size - 1]; 1658 } 1659 } 1660 (*dst_size) = (num_blocks * 4); 1661 if (!dst) 1662 goto out; 1663 while (block_num < num_blocks) { 1664 unsigned char *src_block; 1665 unsigned char dst_block[4]; 1666 1667 if (block_num == (num_blocks - 1)) 1668 src_block = last_block; 1669 else 1670 src_block = &src[block_num * 3]; 1671 dst_block[0] = ((src_block[0] >> 2) & 0x3F); 1672 dst_block[1] = (((src_block[0] << 4) & 0x30) 1673 | ((src_block[1] >> 4) & 0x0F)); 1674 dst_block[2] = (((src_block[1] << 2) & 0x3C) 1675 | ((src_block[2] >> 6) & 0x03)); 1676 dst_block[3] = (src_block[2] & 0x3F); 1677 dst[dst_offset++] = portable_filename_chars[dst_block[0]]; 1678 dst[dst_offset++] = portable_filename_chars[dst_block[1]]; 1679 dst[dst_offset++] = portable_filename_chars[dst_block[2]]; 1680 dst[dst_offset++] = portable_filename_chars[dst_block[3]]; 1681 block_num++; 1682 } 1683 out: 1684 return; 1685 } 1686 1687 static size_t ecryptfs_max_decoded_size(size_t encoded_size) 1688 { 1689 /* Not exact; conservatively long. Every block of 4 1690 * encoded characters decodes into a block of 3 1691 * decoded characters. This segment of code provides 1692 * the caller with the maximum amount of allocated 1693 * space that @dst will need to point to in a 1694 * subsequent call. */ 1695 return ((encoded_size + 1) * 3) / 4; 1696 } 1697 1698 /** 1699 * ecryptfs_decode_from_filename 1700 * @dst: If NULL, this function only sets @dst_size and returns. If 1701 * non-NULL, this function decodes the encoded octets in @src 1702 * into the memory that @dst points to. 1703 * @dst_size: Set to the size of the decoded string. 1704 * @src: The encoded set of octets to decode. 1705 * @src_size: The size of the encoded set of octets to decode. 1706 */ 1707 static void 1708 ecryptfs_decode_from_filename(unsigned char *dst, size_t *dst_size, 1709 const unsigned char *src, size_t src_size) 1710 { 1711 u8 current_bit_offset = 0; 1712 size_t src_byte_offset = 0; 1713 size_t dst_byte_offset = 0; 1714 1715 if (!dst) { 1716 (*dst_size) = ecryptfs_max_decoded_size(src_size); 1717 goto out; 1718 } 1719 while (src_byte_offset < src_size) { 1720 unsigned char src_byte = 1721 filename_rev_map[(int)src[src_byte_offset]]; 1722 1723 switch (current_bit_offset) { 1724 case 0: 1725 dst[dst_byte_offset] = (src_byte << 2); 1726 current_bit_offset = 6; 1727 break; 1728 case 6: 1729 dst[dst_byte_offset++] |= (src_byte >> 4); 1730 dst[dst_byte_offset] = ((src_byte & 0xF) 1731 << 4); 1732 current_bit_offset = 4; 1733 break; 1734 case 4: 1735 dst[dst_byte_offset++] |= (src_byte >> 2); 1736 dst[dst_byte_offset] = (src_byte << 6); 1737 current_bit_offset = 2; 1738 break; 1739 case 2: 1740 dst[dst_byte_offset++] |= (src_byte); 1741 current_bit_offset = 0; 1742 break; 1743 } 1744 src_byte_offset++; 1745 } 1746 (*dst_size) = dst_byte_offset; 1747 out: 1748 return; 1749 } 1750 1751 /** 1752 * ecryptfs_encrypt_and_encode_filename - converts a plaintext file name to cipher text 1753 * @encoded_name: The encrypted name 1754 * @encoded_name_size: Length of the encrypted name 1755 * @mount_crypt_stat: The crypt_stat struct associated with the file name to encode 1756 * @name: The plaintext name 1757 * @name_size: The length of the plaintext name 1758 * 1759 * Encrypts and encodes a filename into something that constitutes a 1760 * valid filename for a filesystem, with printable characters. 1761 * 1762 * We assume that we have a properly initialized crypto context, 1763 * pointed to by crypt_stat->tfm. 1764 * 1765 * Returns zero on success; non-zero on otherwise 1766 */ 1767 int ecryptfs_encrypt_and_encode_filename( 1768 char **encoded_name, 1769 size_t *encoded_name_size, 1770 struct ecryptfs_mount_crypt_stat *mount_crypt_stat, 1771 const char *name, size_t name_size) 1772 { 1773 size_t encoded_name_no_prefix_size; 1774 int rc = 0; 1775 1776 (*encoded_name) = NULL; 1777 (*encoded_name_size) = 0; 1778 if (mount_crypt_stat && (mount_crypt_stat->flags 1779 & ECRYPTFS_GLOBAL_ENCRYPT_FILENAMES)) { 1780 struct ecryptfs_filename *filename; 1781 1782 filename = kzalloc_obj(*filename); 1783 if (!filename) { 1784 rc = -ENOMEM; 1785 goto out; 1786 } 1787 filename->filename = (char *)name; 1788 filename->filename_size = name_size; 1789 rc = ecryptfs_encrypt_filename(filename, mount_crypt_stat); 1790 if (rc) { 1791 ecryptfs_printk(KERN_ERR, 1792 "Error attempting to encrypt filename; rc = [%d]\n", 1793 rc); 1794 kfree(filename); 1795 goto out; 1796 } 1797 ecryptfs_encode_for_filename( 1798 NULL, &encoded_name_no_prefix_size, 1799 filename->encrypted_filename, 1800 filename->encrypted_filename_size); 1801 if (mount_crypt_stat->flags 1802 & ECRYPTFS_GLOBAL_ENCFN_USE_MOUNT_FNEK) 1803 (*encoded_name_size) = 1804 (ECRYPTFS_FNEK_ENCRYPTED_FILENAME_PREFIX_SIZE 1805 + encoded_name_no_prefix_size); 1806 else 1807 (*encoded_name_size) = 1808 (ECRYPTFS_FEK_ENCRYPTED_FILENAME_PREFIX_SIZE 1809 + encoded_name_no_prefix_size); 1810 (*encoded_name) = kmalloc((*encoded_name_size) + 1, GFP_KERNEL); 1811 if (!(*encoded_name)) { 1812 rc = -ENOMEM; 1813 kfree(filename->encrypted_filename); 1814 kfree(filename); 1815 goto out; 1816 } 1817 if (mount_crypt_stat->flags 1818 & ECRYPTFS_GLOBAL_ENCFN_USE_MOUNT_FNEK) { 1819 memcpy((*encoded_name), 1820 ECRYPTFS_FNEK_ENCRYPTED_FILENAME_PREFIX, 1821 ECRYPTFS_FNEK_ENCRYPTED_FILENAME_PREFIX_SIZE); 1822 ecryptfs_encode_for_filename( 1823 ((*encoded_name) 1824 + ECRYPTFS_FNEK_ENCRYPTED_FILENAME_PREFIX_SIZE), 1825 &encoded_name_no_prefix_size, 1826 filename->encrypted_filename, 1827 filename->encrypted_filename_size); 1828 (*encoded_name_size) = 1829 (ECRYPTFS_FNEK_ENCRYPTED_FILENAME_PREFIX_SIZE 1830 + encoded_name_no_prefix_size); 1831 (*encoded_name)[(*encoded_name_size)] = '\0'; 1832 } else { 1833 rc = -EOPNOTSUPP; 1834 } 1835 if (rc) { 1836 ecryptfs_printk(KERN_ERR, 1837 "Error attempting to encode encrypted filename; rc = [%d]\n", 1838 rc); 1839 kfree((*encoded_name)); 1840 (*encoded_name) = NULL; 1841 (*encoded_name_size) = 0; 1842 } 1843 kfree(filename->encrypted_filename); 1844 kfree(filename); 1845 } else { 1846 rc = ecryptfs_copy_filename(encoded_name, 1847 encoded_name_size, 1848 name, name_size); 1849 } 1850 out: 1851 return rc; 1852 } 1853 1854 /** 1855 * ecryptfs_decode_and_decrypt_filename - converts the encoded cipher text name to decoded plaintext 1856 * @plaintext_name: The plaintext name 1857 * @plaintext_name_size: The plaintext name size 1858 * @sb: Ecryptfs's super_block 1859 * @name: The filename in cipher text 1860 * @name_size: The cipher text name size 1861 * 1862 * Decrypts and decodes the filename. 1863 * 1864 * Returns zero on error; non-zero otherwise 1865 */ 1866 int ecryptfs_decode_and_decrypt_filename(char **plaintext_name, 1867 size_t *plaintext_name_size, 1868 struct super_block *sb, 1869 const char *name, size_t name_size) 1870 { 1871 struct ecryptfs_mount_crypt_stat *mount_crypt_stat = 1872 &ecryptfs_superblock_to_private(sb)->mount_crypt_stat; 1873 char *decoded_name; 1874 size_t decoded_name_size; 1875 size_t packet_size; 1876 int rc = 0; 1877 1878 if ((mount_crypt_stat->flags & ECRYPTFS_GLOBAL_ENCRYPT_FILENAMES) && 1879 !(mount_crypt_stat->flags & ECRYPTFS_ENCRYPTED_VIEW_ENABLED)) { 1880 if (name_is_dot_dotdot(name, name_size)) { 1881 rc = ecryptfs_copy_filename(plaintext_name, 1882 plaintext_name_size, 1883 name, name_size); 1884 goto out; 1885 } 1886 1887 if (name_size <= ECRYPTFS_FNEK_ENCRYPTED_FILENAME_PREFIX_SIZE || 1888 strncmp(name, ECRYPTFS_FNEK_ENCRYPTED_FILENAME_PREFIX, 1889 ECRYPTFS_FNEK_ENCRYPTED_FILENAME_PREFIX_SIZE)) { 1890 rc = -EINVAL; 1891 goto out; 1892 } 1893 1894 name += ECRYPTFS_FNEK_ENCRYPTED_FILENAME_PREFIX_SIZE; 1895 name_size -= ECRYPTFS_FNEK_ENCRYPTED_FILENAME_PREFIX_SIZE; 1896 ecryptfs_decode_from_filename(NULL, &decoded_name_size, 1897 name, name_size); 1898 decoded_name = kmalloc(decoded_name_size, GFP_KERNEL); 1899 if (!decoded_name) { 1900 rc = -ENOMEM; 1901 goto out; 1902 } 1903 ecryptfs_decode_from_filename(decoded_name, &decoded_name_size, 1904 name, name_size); 1905 rc = ecryptfs_parse_tag_70_packet(plaintext_name, 1906 plaintext_name_size, 1907 &packet_size, 1908 mount_crypt_stat, 1909 decoded_name, 1910 decoded_name_size); 1911 if (rc) { 1912 ecryptfs_printk(KERN_DEBUG, 1913 "Could not parse tag 70 packet from filename\n"); 1914 goto out_free; 1915 } 1916 } else { 1917 rc = ecryptfs_copy_filename(plaintext_name, 1918 plaintext_name_size, 1919 name, name_size); 1920 goto out; 1921 } 1922 out_free: 1923 kfree(decoded_name); 1924 out: 1925 return rc; 1926 } 1927 1928 #define ENC_NAME_MAX_BLOCKLEN_8_OR_16 143 1929 1930 int ecryptfs_set_f_namelen(long *namelen, long lower_namelen, 1931 struct ecryptfs_mount_crypt_stat *mount_crypt_stat) 1932 { 1933 struct crypto_skcipher *tfm; 1934 struct mutex *tfm_mutex; 1935 size_t cipher_blocksize; 1936 int rc; 1937 1938 if (!(mount_crypt_stat->flags & ECRYPTFS_GLOBAL_ENCRYPT_FILENAMES)) { 1939 (*namelen) = lower_namelen; 1940 return 0; 1941 } 1942 1943 rc = ecryptfs_get_tfm_and_mutex_for_cipher_name(&tfm, &tfm_mutex, 1944 mount_crypt_stat->global_default_fn_cipher_name); 1945 if (unlikely(rc)) { 1946 (*namelen) = 0; 1947 return rc; 1948 } 1949 1950 mutex_lock(tfm_mutex); 1951 cipher_blocksize = crypto_skcipher_blocksize(tfm); 1952 mutex_unlock(tfm_mutex); 1953 1954 /* Return an exact amount for the common cases */ 1955 if (lower_namelen == NAME_MAX 1956 && (cipher_blocksize == 8 || cipher_blocksize == 16)) { 1957 (*namelen) = ENC_NAME_MAX_BLOCKLEN_8_OR_16; 1958 return 0; 1959 } 1960 1961 /* Return a safe estimate for the uncommon cases */ 1962 (*namelen) = lower_namelen; 1963 (*namelen) -= ECRYPTFS_FNEK_ENCRYPTED_FILENAME_PREFIX_SIZE; 1964 /* Since this is the max decoded size, subtract 1 "decoded block" len */ 1965 (*namelen) = ecryptfs_max_decoded_size(*namelen) - 3; 1966 (*namelen) -= ECRYPTFS_TAG_70_MAX_METADATA_SIZE; 1967 (*namelen) -= ECRYPTFS_FILENAME_MIN_RANDOM_PREPEND_BYTES; 1968 /* Worst case is that the filename is padded nearly a full block size */ 1969 (*namelen) -= cipher_blocksize - 1; 1970 1971 if ((*namelen) < 0) 1972 (*namelen) = 0; 1973 1974 return 0; 1975 } 1976