1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * eCryptfs: Linux filesystem encryption layer
4 * In-kernel key management code. Includes functions to parse and
5 * write authentication token-related packets with the underlying
6 * file.
7 *
8 * Copyright (C) 2004-2006 International Business Machines Corp.
9 * Author(s): Michael A. Halcrow <mhalcrow@us.ibm.com>
10 * Michael C. Thompson <mcthomps@us.ibm.com>
11 * Trevor S. Highland <trevor.highland@gmail.com>
12 */
13
14 #include <crypto/skcipher.h>
15 #include <linux/string.h>
16 #include <linux/pagemap.h>
17 #include <linux/key.h>
18 #include <linux/random.h>
19 #include <linux/scatterlist.h>
20 #include <linux/slab.h>
21 #include "ecryptfs_kernel.h"
22
23 /*
24 * request_key returned an error instead of a valid key address;
25 * determine the type of error, make appropriate log entries, and
26 * return an error code.
27 */
process_request_key_err(long err_code)28 static int process_request_key_err(long err_code)
29 {
30 int rc = 0;
31
32 switch (err_code) {
33 case -ENOKEY:
34 ecryptfs_printk(KERN_WARNING, "No key\n");
35 rc = -ENOENT;
36 break;
37 case -EKEYEXPIRED:
38 ecryptfs_printk(KERN_WARNING, "Key expired\n");
39 rc = -ETIME;
40 break;
41 case -EKEYREVOKED:
42 ecryptfs_printk(KERN_WARNING, "Key revoked\n");
43 rc = -EINVAL;
44 break;
45 default:
46 ecryptfs_printk(KERN_WARNING, "Unknown error code: "
47 "[0x%.16lx]\n", err_code);
48 rc = -EINVAL;
49 }
50 return rc;
51 }
52
process_find_global_auth_tok_for_sig_err(int err_code)53 static int process_find_global_auth_tok_for_sig_err(int err_code)
54 {
55 int rc = err_code;
56
57 switch (err_code) {
58 case -ENOENT:
59 ecryptfs_printk(KERN_WARNING, "Missing auth tok\n");
60 break;
61 case -EINVAL:
62 ecryptfs_printk(KERN_WARNING, "Invalid auth tok\n");
63 break;
64 default:
65 rc = process_request_key_err(err_code);
66 break;
67 }
68 return rc;
69 }
70
71 /**
72 * ecryptfs_parse_packet_length
73 * @data: Pointer to memory containing length at offset
74 * @size: This function writes the decoded size to this memory
75 * address; zero on error
76 * @length_size: The number of bytes occupied by the encoded length
77 *
78 * Returns zero on success; non-zero on error
79 */
ecryptfs_parse_packet_length(unsigned char * data,size_t * size,size_t * length_size)80 int ecryptfs_parse_packet_length(unsigned char *data, size_t *size,
81 size_t *length_size)
82 {
83 int rc = 0;
84
85 (*length_size) = 0;
86 (*size) = 0;
87 if (data[0] < 192) {
88 /* One-byte length */
89 (*size) = data[0];
90 (*length_size) = 1;
91 } else if (data[0] < 224) {
92 /* Two-byte length */
93 (*size) = (data[0] - 192) * 256;
94 (*size) += data[1] + 192;
95 (*length_size) = 2;
96 } else if (data[0] == 255) {
97 /* If support is added, adjust ECRYPTFS_MAX_PKT_LEN_SIZE */
98 ecryptfs_printk(KERN_ERR, "Five-byte packet length not "
99 "supported\n");
100 rc = -EINVAL;
101 goto out;
102 } else {
103 ecryptfs_printk(KERN_ERR, "Error parsing packet length\n");
104 rc = -EINVAL;
105 goto out;
106 }
107 out:
108 return rc;
109 }
110
111 /**
112 * ecryptfs_write_packet_length
113 * @dest: The byte array target into which to write the length. Must
114 * have at least ECRYPTFS_MAX_PKT_LEN_SIZE bytes allocated.
115 * @size: The length to write.
116 * @packet_size_length: The number of bytes used to encode the packet
117 * length is written to this address.
118 *
119 * Returns zero on success; non-zero on error.
120 */
ecryptfs_write_packet_length(char * dest,size_t size,size_t * packet_size_length)121 int ecryptfs_write_packet_length(char *dest, size_t size,
122 size_t *packet_size_length)
123 {
124 int rc = 0;
125
126 if (size < 192) {
127 dest[0] = size;
128 (*packet_size_length) = 1;
129 } else if (size < 65536) {
130 dest[0] = (((size - 192) / 256) + 192);
131 dest[1] = ((size - 192) % 256);
132 (*packet_size_length) = 2;
133 } else {
134 /* If support is added, adjust ECRYPTFS_MAX_PKT_LEN_SIZE */
135 rc = -EINVAL;
136 ecryptfs_printk(KERN_WARNING,
137 "Unsupported packet size: [%zd]\n", size);
138 }
139 return rc;
140 }
141
142 static int
write_tag_64_packet(char * signature,struct ecryptfs_session_key * session_key,char ** packet,size_t * packet_len)143 write_tag_64_packet(char *signature, struct ecryptfs_session_key *session_key,
144 char **packet, size_t *packet_len)
145 {
146 size_t i = 0;
147 size_t data_len;
148 size_t packet_size_len;
149 char *message;
150 int rc;
151
152 /*
153 * ***** TAG 64 Packet Format *****
154 * | Content Type | 1 byte |
155 * | Key Identifier Size | 1 or 2 bytes |
156 * | Key Identifier | arbitrary |
157 * | Encrypted File Encryption Key Size | 1 or 2 bytes |
158 * | Encrypted File Encryption Key | arbitrary |
159 */
160 data_len = (5 + ECRYPTFS_SIG_SIZE_HEX
161 + session_key->encrypted_key_size);
162 *packet = kmalloc(data_len, GFP_KERNEL);
163 message = *packet;
164 if (!message) {
165 ecryptfs_printk(KERN_ERR, "Unable to allocate memory\n");
166 rc = -ENOMEM;
167 goto out;
168 }
169 message[i++] = ECRYPTFS_TAG_64_PACKET_TYPE;
170 rc = ecryptfs_write_packet_length(&message[i], ECRYPTFS_SIG_SIZE_HEX,
171 &packet_size_len);
172 if (rc) {
173 ecryptfs_printk(KERN_ERR, "Error generating tag 64 packet "
174 "header; cannot generate packet length\n");
175 goto out;
176 }
177 i += packet_size_len;
178 memcpy(&message[i], signature, ECRYPTFS_SIG_SIZE_HEX);
179 i += ECRYPTFS_SIG_SIZE_HEX;
180 rc = ecryptfs_write_packet_length(&message[i],
181 session_key->encrypted_key_size,
182 &packet_size_len);
183 if (rc) {
184 ecryptfs_printk(KERN_ERR, "Error generating tag 64 packet "
185 "header; cannot generate packet length\n");
186 goto out;
187 }
188 i += packet_size_len;
189 memcpy(&message[i], session_key->encrypted_key,
190 session_key->encrypted_key_size);
191 i += session_key->encrypted_key_size;
192 *packet_len = i;
193 out:
194 return rc;
195 }
196
197 static int
parse_tag_65_packet(struct ecryptfs_session_key * session_key,u8 * cipher_code,struct ecryptfs_message * msg)198 parse_tag_65_packet(struct ecryptfs_session_key *session_key, u8 *cipher_code,
199 struct ecryptfs_message *msg)
200 {
201 size_t i = 0;
202 char *data;
203 size_t data_len;
204 size_t m_size;
205 size_t message_len;
206 u16 checksum = 0;
207 u16 expected_checksum = 0;
208 int rc;
209
210 /*
211 * ***** TAG 65 Packet Format *****
212 * | Content Type | 1 byte |
213 * | Status Indicator | 1 byte |
214 * | File Encryption Key Size | 1 or 2 bytes |
215 * | File Encryption Key | arbitrary |
216 */
217 message_len = msg->data_len;
218 data = msg->data;
219 if (message_len < 4) {
220 rc = -EIO;
221 goto out;
222 }
223 if (data[i++] != ECRYPTFS_TAG_65_PACKET_TYPE) {
224 ecryptfs_printk(KERN_ERR, "Type should be ECRYPTFS_TAG_65\n");
225 rc = -EIO;
226 goto out;
227 }
228 if (data[i++]) {
229 ecryptfs_printk(KERN_ERR, "Status indicator has non-zero value "
230 "[%d]\n", data[i-1]);
231 rc = -EIO;
232 goto out;
233 }
234 rc = ecryptfs_parse_packet_length(&data[i], &m_size, &data_len);
235 if (rc) {
236 ecryptfs_printk(KERN_WARNING, "Error parsing packet length; "
237 "rc = [%d]\n", rc);
238 goto out;
239 }
240 i += data_len;
241 if (message_len < (i + m_size)) {
242 ecryptfs_printk(KERN_ERR, "The message received from ecryptfsd "
243 "is shorter than expected\n");
244 rc = -EIO;
245 goto out;
246 }
247 if (m_size < 3) {
248 ecryptfs_printk(KERN_ERR,
249 "The decrypted key is not long enough to "
250 "include a cipher code and checksum\n");
251 rc = -EIO;
252 goto out;
253 }
254 *cipher_code = data[i++];
255 /* The decrypted key includes 1 byte cipher code and 2 byte checksum */
256 session_key->decrypted_key_size = m_size - 3;
257 if (session_key->decrypted_key_size > ECRYPTFS_MAX_KEY_BYTES) {
258 ecryptfs_printk(KERN_ERR, "key_size [%d] larger than "
259 "the maximum key size [%d]\n",
260 session_key->decrypted_key_size,
261 ECRYPTFS_MAX_ENCRYPTED_KEY_BYTES);
262 rc = -EIO;
263 goto out;
264 }
265 memcpy(session_key->decrypted_key, &data[i],
266 session_key->decrypted_key_size);
267 i += session_key->decrypted_key_size;
268 expected_checksum += (unsigned char)(data[i++]) << 8;
269 expected_checksum += (unsigned char)(data[i++]);
270 for (i = 0; i < session_key->decrypted_key_size; i++)
271 checksum += session_key->decrypted_key[i];
272 if (expected_checksum != checksum) {
273 ecryptfs_printk(KERN_ERR, "Invalid checksum for file "
274 "encryption key; expected [%x]; calculated "
275 "[%x]\n", expected_checksum, checksum);
276 rc = -EIO;
277 }
278 out:
279 return rc;
280 }
281
282
283 static int
write_tag_66_packet(char * signature,u8 cipher_code,struct ecryptfs_crypt_stat * crypt_stat,char ** packet,size_t * packet_len)284 write_tag_66_packet(char *signature, u8 cipher_code,
285 struct ecryptfs_crypt_stat *crypt_stat, char **packet,
286 size_t *packet_len)
287 {
288 size_t i = 0;
289 size_t j;
290 size_t data_len;
291 size_t checksum = 0;
292 size_t packet_size_len;
293 char *message;
294 int rc;
295
296 /*
297 * ***** TAG 66 Packet Format *****
298 * | Content Type | 1 byte |
299 * | Key Identifier Size | 1 or 2 bytes |
300 * | Key Identifier | arbitrary |
301 * | File Encryption Key Size | 1 or 2 bytes |
302 * | Cipher Code | 1 byte |
303 * | File Encryption Key | arbitrary |
304 * | Checksum | 2 bytes |
305 */
306 data_len = (8 + ECRYPTFS_SIG_SIZE_HEX + crypt_stat->key_size);
307 *packet = kmalloc(data_len, GFP_KERNEL);
308 message = *packet;
309 if (!message) {
310 ecryptfs_printk(KERN_ERR, "Unable to allocate memory\n");
311 rc = -ENOMEM;
312 goto out;
313 }
314 message[i++] = ECRYPTFS_TAG_66_PACKET_TYPE;
315 rc = ecryptfs_write_packet_length(&message[i], ECRYPTFS_SIG_SIZE_HEX,
316 &packet_size_len);
317 if (rc) {
318 ecryptfs_printk(KERN_ERR, "Error generating tag 66 packet "
319 "header; cannot generate packet length\n");
320 goto out;
321 }
322 i += packet_size_len;
323 memcpy(&message[i], signature, ECRYPTFS_SIG_SIZE_HEX);
324 i += ECRYPTFS_SIG_SIZE_HEX;
325 /* The encrypted key includes 1 byte cipher code and 2 byte checksum */
326 rc = ecryptfs_write_packet_length(&message[i], crypt_stat->key_size + 3,
327 &packet_size_len);
328 if (rc) {
329 ecryptfs_printk(KERN_ERR, "Error generating tag 66 packet "
330 "header; cannot generate packet length\n");
331 goto out;
332 }
333 i += packet_size_len;
334 message[i++] = cipher_code;
335 memcpy(&message[i], crypt_stat->key, crypt_stat->key_size);
336 i += crypt_stat->key_size;
337 for (j = 0; j < crypt_stat->key_size; j++)
338 checksum += crypt_stat->key[j];
339 message[i++] = (checksum / 256) % 256;
340 message[i++] = (checksum % 256);
341 *packet_len = i;
342 out:
343 return rc;
344 }
345
346 static int
parse_tag_67_packet(struct ecryptfs_key_record * key_rec,struct ecryptfs_message * msg)347 parse_tag_67_packet(struct ecryptfs_key_record *key_rec,
348 struct ecryptfs_message *msg)
349 {
350 size_t i = 0;
351 char *data;
352 size_t data_len;
353 size_t message_len;
354 int rc;
355
356 /*
357 * ***** TAG 67 Packet Format *****
358 * | Content Type | 1 byte |
359 * | Status Indicator | 1 byte |
360 * | Encrypted File Encryption Key Size | 1 or 2 bytes |
361 * | Encrypted File Encryption Key | arbitrary |
362 */
363 message_len = msg->data_len;
364 data = msg->data;
365 /* verify that everything through the encrypted FEK size is present */
366 if (message_len < 4) {
367 rc = -EIO;
368 printk(KERN_ERR "%s: message_len is [%zd]; minimum acceptable "
369 "message length is [%d]\n", __func__, message_len, 4);
370 goto out;
371 }
372 if (data[i++] != ECRYPTFS_TAG_67_PACKET_TYPE) {
373 rc = -EIO;
374 printk(KERN_ERR "%s: Type should be ECRYPTFS_TAG_67\n",
375 __func__);
376 goto out;
377 }
378 if (data[i++]) {
379 rc = -EIO;
380 printk(KERN_ERR "%s: Status indicator has non zero "
381 "value [%d]\n", __func__, data[i-1]);
382
383 goto out;
384 }
385 rc = ecryptfs_parse_packet_length(&data[i], &key_rec->enc_key_size,
386 &data_len);
387 if (rc) {
388 ecryptfs_printk(KERN_WARNING, "Error parsing packet length; "
389 "rc = [%d]\n", rc);
390 goto out;
391 }
392 i += data_len;
393 if (message_len < (i + key_rec->enc_key_size)) {
394 rc = -EIO;
395 printk(KERN_ERR "%s: message_len [%zd]; max len is [%zd]\n",
396 __func__, message_len, (i + key_rec->enc_key_size));
397 goto out;
398 }
399 if (key_rec->enc_key_size > ECRYPTFS_MAX_ENCRYPTED_KEY_BYTES) {
400 rc = -EIO;
401 printk(KERN_ERR "%s: Encrypted key_size [%zd] larger than "
402 "the maximum key size [%d]\n", __func__,
403 key_rec->enc_key_size,
404 ECRYPTFS_MAX_ENCRYPTED_KEY_BYTES);
405 goto out;
406 }
407 memcpy(key_rec->enc_key, &data[i], key_rec->enc_key_size);
408 out:
409 return rc;
410 }
411
412 /**
413 * ecryptfs_verify_version
414 * @version: The version number to confirm
415 *
416 * Returns zero on good version; non-zero otherwise
417 */
ecryptfs_verify_version(u16 version)418 static int ecryptfs_verify_version(u16 version)
419 {
420 int rc = 0;
421 unsigned char major;
422 unsigned char minor;
423
424 major = ((version >> 8) & 0xFF);
425 minor = (version & 0xFF);
426 if (major != ECRYPTFS_VERSION_MAJOR) {
427 ecryptfs_printk(KERN_ERR, "Major version number mismatch. "
428 "Expected [%d]; got [%d]\n",
429 ECRYPTFS_VERSION_MAJOR, major);
430 rc = -EINVAL;
431 goto out;
432 }
433 if (minor != ECRYPTFS_VERSION_MINOR) {
434 ecryptfs_printk(KERN_ERR, "Minor version number mismatch. "
435 "Expected [%d]; got [%d]\n",
436 ECRYPTFS_VERSION_MINOR, minor);
437 rc = -EINVAL;
438 goto out;
439 }
440 out:
441 return rc;
442 }
443
444 /**
445 * ecryptfs_verify_auth_tok_from_key
446 * @auth_tok_key: key containing the authentication token
447 * @auth_tok: authentication token
448 *
449 * Returns zero on valid auth tok; -EINVAL if the payload is invalid; or
450 * -EKEYREVOKED if the key was revoked before we acquired its semaphore.
451 */
452 static int
ecryptfs_verify_auth_tok_from_key(struct key * auth_tok_key,struct ecryptfs_auth_tok ** auth_tok)453 ecryptfs_verify_auth_tok_from_key(struct key *auth_tok_key,
454 struct ecryptfs_auth_tok **auth_tok)
455 {
456 int rc = 0;
457
458 (*auth_tok) = ecryptfs_get_key_payload_data(auth_tok_key);
459 if (IS_ERR(*auth_tok)) {
460 rc = PTR_ERR(*auth_tok);
461 *auth_tok = NULL;
462 goto out;
463 }
464
465 if (ecryptfs_verify_version((*auth_tok)->version)) {
466 printk(KERN_ERR "Data structure version mismatch. Userspace "
467 "tools must match eCryptfs kernel module with major "
468 "version [%d] and minor version [%d]\n",
469 ECRYPTFS_VERSION_MAJOR, ECRYPTFS_VERSION_MINOR);
470 rc = -EINVAL;
471 goto out;
472 }
473 if ((*auth_tok)->token_type != ECRYPTFS_PASSWORD
474 && (*auth_tok)->token_type != ECRYPTFS_PRIVATE_KEY) {
475 printk(KERN_ERR "Invalid auth_tok structure "
476 "returned from key query\n");
477 rc = -EINVAL;
478 goto out;
479 }
480 out:
481 return rc;
482 }
483
484 static int
ecryptfs_find_global_auth_tok_for_sig(struct key ** auth_tok_key,struct ecryptfs_auth_tok ** auth_tok,struct ecryptfs_mount_crypt_stat * mount_crypt_stat,char * sig)485 ecryptfs_find_global_auth_tok_for_sig(
486 struct key **auth_tok_key,
487 struct ecryptfs_auth_tok **auth_tok,
488 struct ecryptfs_mount_crypt_stat *mount_crypt_stat, char *sig)
489 {
490 struct ecryptfs_global_auth_tok *walker;
491 int rc = 0;
492
493 (*auth_tok_key) = NULL;
494 (*auth_tok) = NULL;
495 mutex_lock(&mount_crypt_stat->global_auth_tok_list_mutex);
496 list_for_each_entry(walker,
497 &mount_crypt_stat->global_auth_tok_list,
498 mount_crypt_stat_list) {
499 if (memcmp(walker->sig, sig, ECRYPTFS_SIG_SIZE_HEX))
500 continue;
501
502 if (walker->flags & ECRYPTFS_AUTH_TOK_INVALID) {
503 rc = -EINVAL;
504 goto out;
505 }
506
507 rc = key_validate(walker->global_auth_tok_key);
508 if (rc) {
509 if (rc == -EKEYEXPIRED)
510 goto out;
511 goto out_invalid_auth_tok;
512 }
513
514 down_write(&(walker->global_auth_tok_key->sem));
515 rc = ecryptfs_verify_auth_tok_from_key(
516 walker->global_auth_tok_key, auth_tok);
517 if (rc)
518 goto out_invalid_auth_tok_unlock;
519
520 (*auth_tok_key) = walker->global_auth_tok_key;
521 key_get(*auth_tok_key);
522 goto out;
523 }
524 rc = -ENOENT;
525 goto out;
526 out_invalid_auth_tok_unlock:
527 up_write(&(walker->global_auth_tok_key->sem));
528 out_invalid_auth_tok:
529 printk(KERN_WARNING "Invalidating auth tok with sig = [%s]\n", sig);
530 walker->flags |= ECRYPTFS_AUTH_TOK_INVALID;
531 key_put(walker->global_auth_tok_key);
532 walker->global_auth_tok_key = NULL;
533 out:
534 mutex_unlock(&mount_crypt_stat->global_auth_tok_list_mutex);
535 return rc;
536 }
537
538 /**
539 * ecryptfs_find_auth_tok_for_sig
540 * @auth_tok_key: key containing the authentication token
541 * @auth_tok: Set to the matching auth_tok; NULL if not found
542 * @mount_crypt_stat: inode crypt_stat crypto context
543 * @sig: Sig of auth_tok to find
544 *
545 * For now, this function simply looks at the registered auth_tok's
546 * linked off the mount_crypt_stat, so all the auth_toks that can be
547 * used must be registered at mount time. This function could
548 * potentially try a lot harder to find auth_tok's (e.g., by calling
549 * out to ecryptfsd to dynamically retrieve an auth_tok object) so
550 * that static registration of auth_tok's will no longer be necessary.
551 *
552 * Returns zero on no error; non-zero on error
553 */
554 static int
ecryptfs_find_auth_tok_for_sig(struct key ** auth_tok_key,struct ecryptfs_auth_tok ** auth_tok,struct ecryptfs_mount_crypt_stat * mount_crypt_stat,char * sig)555 ecryptfs_find_auth_tok_for_sig(
556 struct key **auth_tok_key,
557 struct ecryptfs_auth_tok **auth_tok,
558 struct ecryptfs_mount_crypt_stat *mount_crypt_stat,
559 char *sig)
560 {
561 int rc = 0;
562
563 rc = ecryptfs_find_global_auth_tok_for_sig(auth_tok_key, auth_tok,
564 mount_crypt_stat, sig);
565 if (rc == -ENOENT) {
566 /* if the flag ECRYPTFS_GLOBAL_MOUNT_AUTH_TOK_ONLY is set in the
567 * mount_crypt_stat structure, we prevent to use auth toks that
568 * are not inserted through the ecryptfs_add_global_auth_tok
569 * function.
570 */
571 if (mount_crypt_stat->flags
572 & ECRYPTFS_GLOBAL_MOUNT_AUTH_TOK_ONLY)
573 return -EINVAL;
574
575 rc = ecryptfs_keyring_auth_tok_for_sig(auth_tok_key, auth_tok,
576 sig);
577 }
578 return rc;
579 }
580
581 /*
582 * write_tag_70_packet can gobble a lot of stack space. We stuff most
583 * of the function's parameters in a kmalloc'd struct to help reduce
584 * eCryptfs' overall stack usage.
585 */
586 struct ecryptfs_write_tag_70_packet_silly_stack {
587 u8 cipher_code;
588 size_t max_packet_size;
589 size_t packet_size_len;
590 size_t block_aligned_filename_size;
591 size_t block_size;
592 size_t i;
593 size_t j;
594 size_t num_rand_bytes;
595 struct mutex *tfm_mutex;
596 char *block_aligned_filename;
597 struct ecryptfs_auth_tok *auth_tok;
598 struct scatterlist src_sg[2];
599 struct scatterlist dst_sg[2];
600 struct crypto_skcipher *skcipher_tfm;
601 struct skcipher_request *skcipher_req;
602 char iv[ECRYPTFS_MAX_IV_BYTES];
603 char hash[MD5_DIGEST_SIZE];
604 };
605
606 /*
607 * write_tag_70_packet - Write encrypted filename (EFN) packet against FNEK
608 * @filename: NULL-terminated filename string
609 *
610 * This is the simplest mechanism for achieving filename encryption in
611 * eCryptfs. It encrypts the given filename with the mount-wide
612 * filename encryption key (FNEK) and stores it in a packet to @dest,
613 * which the callee will encode and write directly into the dentry
614 * name.
615 */
616 int
ecryptfs_write_tag_70_packet(char * dest,size_t * remaining_bytes,size_t * packet_size,struct ecryptfs_mount_crypt_stat * mount_crypt_stat,char * filename,size_t filename_size)617 ecryptfs_write_tag_70_packet(char *dest, size_t *remaining_bytes,
618 size_t *packet_size,
619 struct ecryptfs_mount_crypt_stat *mount_crypt_stat,
620 char *filename, size_t filename_size)
621 {
622 struct ecryptfs_write_tag_70_packet_silly_stack *s;
623 struct key *auth_tok_key = NULL;
624 int rc = 0;
625
626 s = kzalloc_obj(*s);
627 if (!s)
628 return -ENOMEM;
629
630 (*packet_size) = 0;
631 rc = ecryptfs_find_auth_tok_for_sig(
632 &auth_tok_key,
633 &s->auth_tok, mount_crypt_stat,
634 mount_crypt_stat->global_default_fnek_sig);
635 if (rc) {
636 printk(KERN_ERR "%s: Error attempting to find auth tok for "
637 "fnek sig [%s]; rc = [%d]\n", __func__,
638 mount_crypt_stat->global_default_fnek_sig, rc);
639 goto out;
640 }
641 rc = ecryptfs_get_tfm_and_mutex_for_cipher_name(
642 &s->skcipher_tfm,
643 &s->tfm_mutex, mount_crypt_stat->global_default_fn_cipher_name);
644 if (unlikely(rc)) {
645 printk(KERN_ERR "Internal error whilst attempting to get "
646 "tfm and mutex for cipher name [%s]; rc = [%d]\n",
647 mount_crypt_stat->global_default_fn_cipher_name, rc);
648 goto out;
649 }
650 mutex_lock(s->tfm_mutex);
651 s->block_size = crypto_skcipher_blocksize(s->skcipher_tfm);
652 /* Plus one for the \0 separator between the random prefix
653 * and the plaintext filename */
654 s->num_rand_bytes = (ECRYPTFS_FILENAME_MIN_RANDOM_PREPEND_BYTES + 1);
655 s->block_aligned_filename_size = (s->num_rand_bytes + filename_size);
656 if ((s->block_aligned_filename_size % s->block_size) != 0) {
657 s->num_rand_bytes += (s->block_size
658 - (s->block_aligned_filename_size
659 % s->block_size));
660 s->block_aligned_filename_size = (s->num_rand_bytes
661 + filename_size);
662 }
663 /* Octet 0: Tag 70 identifier
664 * Octets 1-N1: Tag 70 packet size (includes cipher identifier
665 * and block-aligned encrypted filename size)
666 * Octets N1-N2: FNEK sig (ECRYPTFS_SIG_SIZE)
667 * Octet N2-N3: Cipher identifier (1 octet)
668 * Octets N3-N4: Block-aligned encrypted filename
669 * - Consists of a minimum number of random characters, a \0
670 * separator, and then the filename */
671 s->max_packet_size = (ECRYPTFS_TAG_70_MAX_METADATA_SIZE
672 + s->block_aligned_filename_size);
673 if (!dest) {
674 (*packet_size) = s->max_packet_size;
675 goto out_unlock;
676 }
677 if (s->max_packet_size > (*remaining_bytes)) {
678 printk(KERN_WARNING "%s: Require [%zd] bytes to write; only "
679 "[%zd] available\n", __func__, s->max_packet_size,
680 (*remaining_bytes));
681 rc = -EINVAL;
682 goto out_unlock;
683 }
684
685 s->skcipher_req = skcipher_request_alloc(s->skcipher_tfm, GFP_KERNEL);
686 if (!s->skcipher_req) {
687 printk(KERN_ERR "%s: Out of kernel memory whilst attempting to "
688 "skcipher_request_alloc for %s\n", __func__,
689 crypto_skcipher_driver_name(s->skcipher_tfm));
690 rc = -ENOMEM;
691 goto out_unlock;
692 }
693
694 skcipher_request_set_callback(s->skcipher_req,
695 CRYPTO_TFM_REQ_MAY_SLEEP, NULL, NULL);
696
697 s->block_aligned_filename = kzalloc(s->block_aligned_filename_size,
698 GFP_KERNEL);
699 if (!s->block_aligned_filename) {
700 rc = -ENOMEM;
701 goto out_unlock;
702 }
703 dest[s->i++] = ECRYPTFS_TAG_70_PACKET_TYPE;
704 rc = ecryptfs_write_packet_length(&dest[s->i],
705 (ECRYPTFS_SIG_SIZE
706 + 1 /* Cipher code */
707 + s->block_aligned_filename_size),
708 &s->packet_size_len);
709 if (rc) {
710 printk(KERN_ERR "%s: Error generating tag 70 packet "
711 "header; cannot generate packet length; rc = [%d]\n",
712 __func__, rc);
713 goto out_free_unlock;
714 }
715 s->i += s->packet_size_len;
716 ecryptfs_from_hex(&dest[s->i],
717 mount_crypt_stat->global_default_fnek_sig,
718 ECRYPTFS_SIG_SIZE);
719 s->i += ECRYPTFS_SIG_SIZE;
720 s->cipher_code = ecryptfs_code_for_cipher_string(
721 mount_crypt_stat->global_default_fn_cipher_name,
722 mount_crypt_stat->global_default_fn_cipher_key_bytes);
723 if (s->cipher_code == 0) {
724 printk(KERN_WARNING "%s: Unable to generate code for "
725 "cipher [%s] with key bytes [%zd]\n", __func__,
726 mount_crypt_stat->global_default_fn_cipher_name,
727 mount_crypt_stat->global_default_fn_cipher_key_bytes);
728 rc = -EINVAL;
729 goto out_free_unlock;
730 }
731 dest[s->i++] = s->cipher_code;
732 /* TODO: Support other key modules than passphrase for
733 * filename encryption */
734 if (s->auth_tok->token_type != ECRYPTFS_PASSWORD) {
735 rc = -EOPNOTSUPP;
736 printk(KERN_INFO "%s: Filename encryption only supports "
737 "password tokens\n", __func__);
738 goto out_free_unlock;
739 }
740
741 md5(s->auth_tok->token.password.session_key_encryption_key,
742 s->auth_tok->token.password.session_key_encryption_key_bytes,
743 s->hash);
744 for (s->j = 0; s->j < (s->num_rand_bytes - 1); s->j++) {
745 s->block_aligned_filename[s->j] =
746 s->hash[s->j % MD5_DIGEST_SIZE];
747 if ((s->j % MD5_DIGEST_SIZE) == (MD5_DIGEST_SIZE - 1))
748 md5(s->hash, MD5_DIGEST_SIZE, s->hash);
749 if (s->block_aligned_filename[s->j] == '\0')
750 s->block_aligned_filename[s->j] = ECRYPTFS_NON_NULL;
751 }
752 memcpy(&s->block_aligned_filename[s->num_rand_bytes], filename,
753 filename_size);
754 rc = virt_to_scatterlist(s->block_aligned_filename,
755 s->block_aligned_filename_size, s->src_sg, 2);
756 if (rc < 1) {
757 printk(KERN_ERR "%s: Internal error whilst attempting to "
758 "convert filename memory to scatterlist; rc = [%d]. "
759 "block_aligned_filename_size = [%zd]\n", __func__, rc,
760 s->block_aligned_filename_size);
761 goto out_free_unlock;
762 }
763 rc = virt_to_scatterlist(&dest[s->i], s->block_aligned_filename_size,
764 s->dst_sg, 2);
765 if (rc < 1) {
766 printk(KERN_ERR "%s: Internal error whilst attempting to "
767 "convert encrypted filename memory to scatterlist; "
768 "rc = [%d]. block_aligned_filename_size = [%zd]\n",
769 __func__, rc, s->block_aligned_filename_size);
770 goto out_free_unlock;
771 }
772 /* The characters in the first block effectively do the job
773 * of the IV here, so we just use 0's for the IV. Note the
774 * constraint that ECRYPTFS_FILENAME_MIN_RANDOM_PREPEND_BYTES
775 * >= ECRYPTFS_MAX_IV_BYTES. */
776 rc = crypto_skcipher_setkey(
777 s->skcipher_tfm,
778 s->auth_tok->token.password.session_key_encryption_key,
779 mount_crypt_stat->global_default_fn_cipher_key_bytes);
780 if (rc < 0) {
781 printk(KERN_ERR "%s: Error setting key for crypto context; "
782 "rc = [%d]. s->auth_tok->token.password.session_key_"
783 "encryption_key = [0x%p]; mount_crypt_stat->"
784 "global_default_fn_cipher_key_bytes = [%zd]\n", __func__,
785 rc,
786 s->auth_tok->token.password.session_key_encryption_key,
787 mount_crypt_stat->global_default_fn_cipher_key_bytes);
788 goto out_free_unlock;
789 }
790 skcipher_request_set_crypt(s->skcipher_req, s->src_sg, s->dst_sg,
791 s->block_aligned_filename_size, s->iv);
792 rc = crypto_skcipher_encrypt(s->skcipher_req);
793 if (rc) {
794 printk(KERN_ERR "%s: Error attempting to encrypt filename; "
795 "rc = [%d]\n", __func__, rc);
796 goto out_free_unlock;
797 }
798 s->i += s->block_aligned_filename_size;
799 (*packet_size) = s->i;
800 (*remaining_bytes) -= (*packet_size);
801 out_free_unlock:
802 kfree_sensitive(s->block_aligned_filename);
803 out_unlock:
804 mutex_unlock(s->tfm_mutex);
805 out:
806 if (auth_tok_key) {
807 up_write(&(auth_tok_key->sem));
808 key_put(auth_tok_key);
809 }
810 skcipher_request_free(s->skcipher_req);
811 kfree(s);
812 return rc;
813 }
814
815 struct ecryptfs_parse_tag_70_packet_silly_stack {
816 u8 cipher_code;
817 size_t max_packet_size;
818 size_t packet_size_len;
819 size_t parsed_tag_70_packet_size;
820 size_t block_aligned_filename_size;
821 size_t block_size;
822 size_t i;
823 struct mutex *tfm_mutex;
824 char *decrypted_filename;
825 struct ecryptfs_auth_tok *auth_tok;
826 struct scatterlist src_sg[2];
827 struct scatterlist dst_sg[2];
828 struct crypto_skcipher *skcipher_tfm;
829 struct skcipher_request *skcipher_req;
830 char fnek_sig_hex[ECRYPTFS_SIG_SIZE_HEX + 1];
831 char iv[ECRYPTFS_MAX_IV_BYTES];
832 char cipher_string[ECRYPTFS_MAX_CIPHER_NAME_SIZE + 1];
833 };
834
835 /**
836 * ecryptfs_parse_tag_70_packet - Parse and process FNEK-encrypted passphrase packet
837 * @filename: This function kmalloc's the memory for the filename
838 * @filename_size: This function sets this to the amount of memory
839 * kmalloc'd for the filename
840 * @packet_size: This function sets this to the number of octets
841 * in the packet parsed
842 * @mount_crypt_stat: The mount-wide cryptographic context
843 * @data: The memory location containing the start of the tag 70
844 * packet
845 * @max_packet_size: The maximum legal size of the packet to be parsed
846 * from @data
847 *
848 * Returns zero on success; non-zero otherwise
849 */
850 int
ecryptfs_parse_tag_70_packet(char ** filename,size_t * filename_size,size_t * packet_size,struct ecryptfs_mount_crypt_stat * mount_crypt_stat,char * data,size_t max_packet_size)851 ecryptfs_parse_tag_70_packet(char **filename, size_t *filename_size,
852 size_t *packet_size,
853 struct ecryptfs_mount_crypt_stat *mount_crypt_stat,
854 char *data, size_t max_packet_size)
855 {
856 struct ecryptfs_parse_tag_70_packet_silly_stack *s;
857 struct key *auth_tok_key = NULL;
858 int rc = 0;
859
860 (*packet_size) = 0;
861 (*filename_size) = 0;
862 (*filename) = NULL;
863 s = kzalloc_obj(*s);
864 if (!s)
865 return -ENOMEM;
866
867 if (max_packet_size < ECRYPTFS_TAG_70_MIN_METADATA_SIZE) {
868 printk(KERN_WARNING "%s: max_packet_size is [%zd]; it must be "
869 "at least [%d]\n", __func__, max_packet_size,
870 ECRYPTFS_TAG_70_MIN_METADATA_SIZE);
871 rc = -EINVAL;
872 goto out;
873 }
874 /* Octet 0: Tag 70 identifier
875 * Octets 1-N1: Tag 70 packet size (includes cipher identifier
876 * and block-aligned encrypted filename size)
877 * Octets N1-N2: FNEK sig (ECRYPTFS_SIG_SIZE)
878 * Octet N2-N3: Cipher identifier (1 octet)
879 * Octets N3-N4: Block-aligned encrypted filename
880 * - Consists of a minimum number of random numbers, a \0
881 * separator, and then the filename */
882 if (data[(*packet_size)++] != ECRYPTFS_TAG_70_PACKET_TYPE) {
883 printk(KERN_WARNING "%s: Invalid packet tag [0x%.2x]; must be "
884 "tag [0x%.2x]\n", __func__,
885 data[((*packet_size) - 1)], ECRYPTFS_TAG_70_PACKET_TYPE);
886 rc = -EINVAL;
887 goto out;
888 }
889 rc = ecryptfs_parse_packet_length(&data[(*packet_size)],
890 &s->parsed_tag_70_packet_size,
891 &s->packet_size_len);
892 if (rc) {
893 printk(KERN_WARNING "%s: Error parsing packet length; "
894 "rc = [%d]\n", __func__, rc);
895 goto out;
896 }
897 s->block_aligned_filename_size = (s->parsed_tag_70_packet_size
898 - ECRYPTFS_SIG_SIZE - 1);
899 if ((1 + s->packet_size_len + s->parsed_tag_70_packet_size)
900 > max_packet_size) {
901 printk(KERN_WARNING "%s: max_packet_size is [%zd]; real packet "
902 "size is [%zd]\n", __func__, max_packet_size,
903 (1 + s->packet_size_len + 1
904 + s->block_aligned_filename_size));
905 rc = -EINVAL;
906 goto out;
907 }
908 (*packet_size) += s->packet_size_len;
909 ecryptfs_to_hex(s->fnek_sig_hex, &data[(*packet_size)],
910 ECRYPTFS_SIG_SIZE);
911 (*packet_size) += ECRYPTFS_SIG_SIZE;
912 s->cipher_code = data[(*packet_size)++];
913 rc = ecryptfs_cipher_code_to_string(s->cipher_string,
914 sizeof(s->cipher_string),
915 s->cipher_code);
916 if (rc) {
917 printk(KERN_WARNING "%s: Cipher code [%d] is invalid\n",
918 __func__, s->cipher_code);
919 goto out;
920 }
921 rc = ecryptfs_find_auth_tok_for_sig(&auth_tok_key,
922 &s->auth_tok, mount_crypt_stat,
923 s->fnek_sig_hex);
924 if (rc) {
925 printk(KERN_ERR "%s: Error attempting to find auth tok for "
926 "fnek sig [%s]; rc = [%d]\n", __func__, s->fnek_sig_hex,
927 rc);
928 goto out;
929 }
930 rc = ecryptfs_get_tfm_and_mutex_for_cipher_name(&s->skcipher_tfm,
931 &s->tfm_mutex,
932 s->cipher_string);
933 if (unlikely(rc)) {
934 printk(KERN_ERR "Internal error whilst attempting to get "
935 "tfm and mutex for cipher name [%s]; rc = [%d]\n",
936 s->cipher_string, rc);
937 goto out;
938 }
939 mutex_lock(s->tfm_mutex);
940 rc = virt_to_scatterlist(&data[(*packet_size)],
941 s->block_aligned_filename_size, s->src_sg, 2);
942 if (rc < 1) {
943 printk(KERN_ERR "%s: Internal error whilst attempting to "
944 "convert encrypted filename memory to scatterlist; "
945 "rc = [%d]. block_aligned_filename_size = [%zd]\n",
946 __func__, rc, s->block_aligned_filename_size);
947 goto out_unlock;
948 }
949 (*packet_size) += s->block_aligned_filename_size;
950 s->decrypted_filename = kmalloc(s->block_aligned_filename_size,
951 GFP_KERNEL);
952 if (!s->decrypted_filename) {
953 rc = -ENOMEM;
954 goto out_unlock;
955 }
956 rc = virt_to_scatterlist(s->decrypted_filename,
957 s->block_aligned_filename_size, s->dst_sg, 2);
958 if (rc < 1) {
959 printk(KERN_ERR "%s: Internal error whilst attempting to "
960 "convert decrypted filename memory to scatterlist; "
961 "rc = [%d]. block_aligned_filename_size = [%zd]\n",
962 __func__, rc, s->block_aligned_filename_size);
963 goto out_free_unlock;
964 }
965
966 s->skcipher_req = skcipher_request_alloc(s->skcipher_tfm, GFP_KERNEL);
967 if (!s->skcipher_req) {
968 printk(KERN_ERR "%s: Out of kernel memory whilst attempting to "
969 "skcipher_request_alloc for %s\n", __func__,
970 crypto_skcipher_driver_name(s->skcipher_tfm));
971 rc = -ENOMEM;
972 goto out_free_unlock;
973 }
974
975 skcipher_request_set_callback(s->skcipher_req,
976 CRYPTO_TFM_REQ_MAY_SLEEP, NULL, NULL);
977
978 /* The characters in the first block effectively do the job of
979 * the IV here, so we just use 0's for the IV. Note the
980 * constraint that ECRYPTFS_FILENAME_MIN_RANDOM_PREPEND_BYTES
981 * >= ECRYPTFS_MAX_IV_BYTES. */
982 /* TODO: Support other key modules than passphrase for
983 * filename encryption */
984 if (s->auth_tok->token_type != ECRYPTFS_PASSWORD) {
985 rc = -EOPNOTSUPP;
986 printk(KERN_INFO "%s: Filename encryption only supports "
987 "password tokens\n", __func__);
988 goto out_free_unlock;
989 }
990 rc = crypto_skcipher_setkey(
991 s->skcipher_tfm,
992 s->auth_tok->token.password.session_key_encryption_key,
993 mount_crypt_stat->global_default_fn_cipher_key_bytes);
994 if (rc < 0) {
995 printk(KERN_ERR "%s: Error setting key for crypto context; "
996 "rc = [%d]. s->auth_tok->token.password.session_key_"
997 "encryption_key = [0x%p]; mount_crypt_stat->"
998 "global_default_fn_cipher_key_bytes = [%zd]\n", __func__,
999 rc,
1000 s->auth_tok->token.password.session_key_encryption_key,
1001 mount_crypt_stat->global_default_fn_cipher_key_bytes);
1002 goto out_free_unlock;
1003 }
1004 skcipher_request_set_crypt(s->skcipher_req, s->src_sg, s->dst_sg,
1005 s->block_aligned_filename_size, s->iv);
1006 rc = crypto_skcipher_decrypt(s->skcipher_req);
1007 if (rc) {
1008 printk(KERN_ERR "%s: Error attempting to decrypt filename; "
1009 "rc = [%d]\n", __func__, rc);
1010 goto out_free_unlock;
1011 }
1012
1013 while (s->i < s->block_aligned_filename_size &&
1014 s->decrypted_filename[s->i] != '\0')
1015 s->i++;
1016 if (s->i == s->block_aligned_filename_size) {
1017 printk(KERN_WARNING "%s: Invalid tag 70 packet; could not "
1018 "find valid separator between random characters and "
1019 "the filename\n", __func__);
1020 rc = -EINVAL;
1021 goto out_free_unlock;
1022 }
1023 s->i++;
1024 (*filename_size) = (s->block_aligned_filename_size - s->i);
1025 if (!((*filename_size) > 0 && (*filename_size < PATH_MAX))) {
1026 printk(KERN_WARNING "%s: Filename size is [%zd], which is "
1027 "invalid\n", __func__, (*filename_size));
1028 rc = -EINVAL;
1029 goto out_free_unlock;
1030 }
1031 (*filename) = kmalloc(((*filename_size) + 1), GFP_KERNEL);
1032 if (!(*filename)) {
1033 rc = -ENOMEM;
1034 goto out_free_unlock;
1035 }
1036 memcpy((*filename), &s->decrypted_filename[s->i], (*filename_size));
1037 (*filename)[(*filename_size)] = '\0';
1038 out_free_unlock:
1039 kfree(s->decrypted_filename);
1040 out_unlock:
1041 mutex_unlock(s->tfm_mutex);
1042 out:
1043 if (rc) {
1044 (*packet_size) = 0;
1045 (*filename_size) = 0;
1046 (*filename) = NULL;
1047 }
1048 if (auth_tok_key) {
1049 up_write(&(auth_tok_key->sem));
1050 key_put(auth_tok_key);
1051 }
1052 skcipher_request_free(s->skcipher_req);
1053 kfree(s);
1054 return rc;
1055 }
1056
1057 static int
ecryptfs_get_auth_tok_sig(char ** sig,struct ecryptfs_auth_tok * auth_tok)1058 ecryptfs_get_auth_tok_sig(char **sig, struct ecryptfs_auth_tok *auth_tok)
1059 {
1060 int rc = 0;
1061
1062 (*sig) = NULL;
1063 switch (auth_tok->token_type) {
1064 case ECRYPTFS_PASSWORD:
1065 (*sig) = auth_tok->token.password.signature;
1066 break;
1067 case ECRYPTFS_PRIVATE_KEY:
1068 (*sig) = auth_tok->token.private_key.signature;
1069 break;
1070 default:
1071 printk(KERN_ERR "Cannot get sig for auth_tok of type [%d]\n",
1072 auth_tok->token_type);
1073 rc = -EINVAL;
1074 }
1075 return rc;
1076 }
1077
1078 /**
1079 * decrypt_pki_encrypted_session_key - Decrypt the session key with the given auth_tok.
1080 * @auth_tok: The key authentication token used to decrypt the session key
1081 * @crypt_stat: The cryptographic context
1082 *
1083 * Returns zero on success; non-zero error otherwise.
1084 */
1085 static int
decrypt_pki_encrypted_session_key(struct ecryptfs_auth_tok * auth_tok,struct ecryptfs_crypt_stat * crypt_stat)1086 decrypt_pki_encrypted_session_key(struct ecryptfs_auth_tok *auth_tok,
1087 struct ecryptfs_crypt_stat *crypt_stat)
1088 {
1089 u8 cipher_code = 0;
1090 struct ecryptfs_msg_ctx *msg_ctx;
1091 struct ecryptfs_message *msg = NULL;
1092 char *auth_tok_sig;
1093 char *payload = NULL;
1094 size_t payload_len = 0;
1095 int rc;
1096
1097 rc = ecryptfs_get_auth_tok_sig(&auth_tok_sig, auth_tok);
1098 if (rc) {
1099 printk(KERN_ERR "Unrecognized auth tok type: [%d]\n",
1100 auth_tok->token_type);
1101 goto out;
1102 }
1103 rc = write_tag_64_packet(auth_tok_sig, &(auth_tok->session_key),
1104 &payload, &payload_len);
1105 if (rc) {
1106 ecryptfs_printk(KERN_ERR, "Failed to write tag 64 packet\n");
1107 goto out;
1108 }
1109 rc = ecryptfs_send_message(payload, payload_len, &msg_ctx);
1110 if (rc) {
1111 ecryptfs_printk(KERN_ERR, "Error sending message to "
1112 "ecryptfsd: %d\n", rc);
1113 goto out;
1114 }
1115 rc = ecryptfs_wait_for_response(msg_ctx, &msg);
1116 if (rc) {
1117 ecryptfs_printk(KERN_ERR, "Failed to receive tag 65 packet "
1118 "from the user space daemon\n");
1119 rc = -EIO;
1120 goto out;
1121 }
1122 rc = parse_tag_65_packet(&(auth_tok->session_key),
1123 &cipher_code, msg);
1124 if (rc) {
1125 printk(KERN_ERR "Failed to parse tag 65 packet; rc = [%d]\n",
1126 rc);
1127 goto out;
1128 }
1129 auth_tok->session_key.flags |= ECRYPTFS_CONTAINS_DECRYPTED_KEY;
1130 memcpy(crypt_stat->key, auth_tok->session_key.decrypted_key,
1131 auth_tok->session_key.decrypted_key_size);
1132 crypt_stat->key_size = auth_tok->session_key.decrypted_key_size;
1133 rc = ecryptfs_cipher_code_to_string(crypt_stat->cipher,
1134 sizeof(crypt_stat->cipher),
1135 cipher_code);
1136 if (rc) {
1137 ecryptfs_printk(KERN_ERR, "Cipher code [%d] is invalid\n",
1138 cipher_code);
1139 goto out;
1140 }
1141 crypt_stat->flags |= ECRYPTFS_KEY_VALID;
1142 if (ecryptfs_verbosity > 0) {
1143 ecryptfs_printk(KERN_DEBUG, "Decrypted session key:\n");
1144 ecryptfs_dump_hex(crypt_stat->key,
1145 crypt_stat->key_size);
1146 }
1147 out:
1148 kfree(msg);
1149 kfree(payload);
1150 return rc;
1151 }
1152
wipe_auth_tok_list(struct list_head * auth_tok_list_head)1153 static void wipe_auth_tok_list(struct list_head *auth_tok_list_head)
1154 {
1155 struct ecryptfs_auth_tok_list_item *auth_tok_list_item;
1156 struct ecryptfs_auth_tok_list_item *auth_tok_list_item_tmp;
1157
1158 list_for_each_entry_safe(auth_tok_list_item, auth_tok_list_item_tmp,
1159 auth_tok_list_head, list) {
1160 list_del(&auth_tok_list_item->list);
1161 kmem_cache_free(ecryptfs_auth_tok_list_item_cache,
1162 auth_tok_list_item);
1163 }
1164 }
1165
1166 struct kmem_cache *ecryptfs_auth_tok_list_item_cache;
1167
1168 /**
1169 * parse_tag_1_packet
1170 * @crypt_stat: The cryptographic context to modify based on packet contents
1171 * @data: The raw bytes of the packet.
1172 * @auth_tok_list: eCryptfs parses packets into authentication tokens;
1173 * a new authentication token will be placed at the
1174 * end of this list for this packet.
1175 * @new_auth_tok: Pointer to a pointer to memory that this function
1176 * allocates; sets the memory address of the pointer to
1177 * NULL on error. This object is added to the
1178 * auth_tok_list.
1179 * @packet_size: This function writes the size of the parsed packet
1180 * into this memory location; zero on error.
1181 * @max_packet_size: The maximum allowable packet size
1182 *
1183 * Returns zero on success; non-zero on error.
1184 */
1185 static int
parse_tag_1_packet(struct ecryptfs_crypt_stat * crypt_stat,unsigned char * data,struct list_head * auth_tok_list,struct ecryptfs_auth_tok ** new_auth_tok,size_t * packet_size,size_t max_packet_size)1186 parse_tag_1_packet(struct ecryptfs_crypt_stat *crypt_stat,
1187 unsigned char *data, struct list_head *auth_tok_list,
1188 struct ecryptfs_auth_tok **new_auth_tok,
1189 size_t *packet_size, size_t max_packet_size)
1190 {
1191 size_t body_size;
1192 struct ecryptfs_auth_tok_list_item *auth_tok_list_item;
1193 size_t length_size;
1194 int rc = 0;
1195
1196 (*packet_size) = 0;
1197 (*new_auth_tok) = NULL;
1198 /**
1199 * This format is inspired by OpenPGP; see RFC 2440
1200 * packet tag 1
1201 *
1202 * Tag 1 identifier (1 byte)
1203 * Max Tag 1 packet size (max 3 bytes)
1204 * Version (1 byte)
1205 * Key identifier (8 bytes; ECRYPTFS_SIG_SIZE)
1206 * Cipher identifier (1 byte)
1207 * Encrypted key size (arbitrary)
1208 *
1209 * 12 bytes minimum packet size
1210 */
1211 if (unlikely(max_packet_size < 12)) {
1212 printk(KERN_ERR "Invalid max packet size; must be >=12\n");
1213 rc = -EINVAL;
1214 goto out;
1215 }
1216 if (data[(*packet_size)++] != ECRYPTFS_TAG_1_PACKET_TYPE) {
1217 printk(KERN_ERR "Enter w/ first byte != 0x%.2x\n",
1218 ECRYPTFS_TAG_1_PACKET_TYPE);
1219 rc = -EINVAL;
1220 goto out;
1221 }
1222 /* Released: wipe_auth_tok_list called in ecryptfs_parse_packet_set or
1223 * at end of function upon failure */
1224 auth_tok_list_item =
1225 kmem_cache_zalloc(ecryptfs_auth_tok_list_item_cache,
1226 GFP_KERNEL);
1227 if (!auth_tok_list_item) {
1228 printk(KERN_ERR "Unable to allocate memory\n");
1229 rc = -ENOMEM;
1230 goto out;
1231 }
1232 (*new_auth_tok) = &auth_tok_list_item->auth_tok;
1233 rc = ecryptfs_parse_packet_length(&data[(*packet_size)], &body_size,
1234 &length_size);
1235 if (rc) {
1236 printk(KERN_WARNING "Error parsing packet length; "
1237 "rc = [%d]\n", rc);
1238 goto out_free;
1239 }
1240 if (unlikely(body_size < (ECRYPTFS_SIG_SIZE + 2))) {
1241 printk(KERN_WARNING "Invalid body size ([%td])\n", body_size);
1242 rc = -EINVAL;
1243 goto out_free;
1244 }
1245 (*packet_size) += length_size;
1246 if (unlikely((*packet_size) + body_size > max_packet_size)) {
1247 printk(KERN_WARNING "Packet size exceeds max\n");
1248 rc = -EINVAL;
1249 goto out_free;
1250 }
1251 if (unlikely(data[(*packet_size)++] != 0x03)) {
1252 printk(KERN_WARNING "Unknown version number [%d]\n",
1253 data[(*packet_size) - 1]);
1254 rc = -EINVAL;
1255 goto out_free;
1256 }
1257 ecryptfs_to_hex((*new_auth_tok)->token.private_key.signature,
1258 &data[(*packet_size)], ECRYPTFS_SIG_SIZE);
1259 *packet_size += ECRYPTFS_SIG_SIZE;
1260 /* This byte is skipped because the kernel does not need to
1261 * know which public key encryption algorithm was used */
1262 (*packet_size)++;
1263 (*new_auth_tok)->session_key.encrypted_key_size =
1264 body_size - (ECRYPTFS_SIG_SIZE + 2);
1265 if ((*new_auth_tok)->session_key.encrypted_key_size
1266 > ECRYPTFS_MAX_ENCRYPTED_KEY_BYTES) {
1267 printk(KERN_WARNING "Tag 1 packet contains key larger "
1268 "than ECRYPTFS_MAX_ENCRYPTED_KEY_BYTES\n");
1269 rc = -EINVAL;
1270 goto out_free;
1271 }
1272 memcpy((*new_auth_tok)->session_key.encrypted_key,
1273 &data[(*packet_size)], (body_size - (ECRYPTFS_SIG_SIZE + 2)));
1274 (*packet_size) += (*new_auth_tok)->session_key.encrypted_key_size;
1275 (*new_auth_tok)->session_key.flags &=
1276 ~ECRYPTFS_CONTAINS_DECRYPTED_KEY;
1277 (*new_auth_tok)->session_key.flags |=
1278 ECRYPTFS_CONTAINS_ENCRYPTED_KEY;
1279 (*new_auth_tok)->token_type = ECRYPTFS_PRIVATE_KEY;
1280 (*new_auth_tok)->flags = 0;
1281 (*new_auth_tok)->session_key.flags &=
1282 ~(ECRYPTFS_USERSPACE_SHOULD_TRY_TO_DECRYPT);
1283 (*new_auth_tok)->session_key.flags &=
1284 ~(ECRYPTFS_USERSPACE_SHOULD_TRY_TO_ENCRYPT);
1285 list_add(&auth_tok_list_item->list, auth_tok_list);
1286 goto out;
1287 out_free:
1288 (*new_auth_tok) = NULL;
1289 memset(auth_tok_list_item, 0,
1290 sizeof(struct ecryptfs_auth_tok_list_item));
1291 kmem_cache_free(ecryptfs_auth_tok_list_item_cache,
1292 auth_tok_list_item);
1293 out:
1294 if (rc)
1295 (*packet_size) = 0;
1296 return rc;
1297 }
1298
1299 /**
1300 * parse_tag_3_packet
1301 * @crypt_stat: The cryptographic context to modify based on packet
1302 * contents.
1303 * @data: The raw bytes of the packet.
1304 * @auth_tok_list: eCryptfs parses packets into authentication tokens;
1305 * a new authentication token will be placed at the end
1306 * of this list for this packet.
1307 * @new_auth_tok: Pointer to a pointer to memory that this function
1308 * allocates; sets the memory address of the pointer to
1309 * NULL on error. This object is added to the
1310 * auth_tok_list.
1311 * @packet_size: This function writes the size of the parsed packet
1312 * into this memory location; zero on error.
1313 * @max_packet_size: maximum number of bytes to parse
1314 *
1315 * Returns zero on success; non-zero on error.
1316 */
1317 static int
parse_tag_3_packet(struct ecryptfs_crypt_stat * crypt_stat,unsigned char * data,struct list_head * auth_tok_list,struct ecryptfs_auth_tok ** new_auth_tok,size_t * packet_size,size_t max_packet_size)1318 parse_tag_3_packet(struct ecryptfs_crypt_stat *crypt_stat,
1319 unsigned char *data, struct list_head *auth_tok_list,
1320 struct ecryptfs_auth_tok **new_auth_tok,
1321 size_t *packet_size, size_t max_packet_size)
1322 {
1323 size_t body_size;
1324 struct ecryptfs_auth_tok_list_item *auth_tok_list_item;
1325 size_t length_size;
1326 int rc = 0;
1327
1328 (*packet_size) = 0;
1329 (*new_auth_tok) = NULL;
1330 /**
1331 *This format is inspired by OpenPGP; see RFC 2440
1332 * packet tag 3
1333 *
1334 * Tag 3 identifier (1 byte)
1335 * Max Tag 3 packet size (max 3 bytes)
1336 * Version (1 byte)
1337 * Cipher code (1 byte)
1338 * S2K specifier (1 byte)
1339 * Hash identifier (1 byte)
1340 * Salt (ECRYPTFS_SALT_SIZE)
1341 * Hash iterations (1 byte)
1342 * Encrypted key (arbitrary)
1343 *
1344 * (ECRYPTFS_SALT_SIZE + 7) minimum packet size
1345 */
1346 if (max_packet_size < (ECRYPTFS_SALT_SIZE + 7)) {
1347 printk(KERN_ERR "Max packet size too large\n");
1348 rc = -EINVAL;
1349 goto out;
1350 }
1351 if (data[(*packet_size)++] != ECRYPTFS_TAG_3_PACKET_TYPE) {
1352 printk(KERN_ERR "First byte != 0x%.2x; invalid packet\n",
1353 ECRYPTFS_TAG_3_PACKET_TYPE);
1354 rc = -EINVAL;
1355 goto out;
1356 }
1357 /* Released: wipe_auth_tok_list called in ecryptfs_parse_packet_set or
1358 * at end of function upon failure */
1359 auth_tok_list_item =
1360 kmem_cache_zalloc(ecryptfs_auth_tok_list_item_cache, GFP_KERNEL);
1361 if (!auth_tok_list_item) {
1362 printk(KERN_ERR "Unable to allocate memory\n");
1363 rc = -ENOMEM;
1364 goto out;
1365 }
1366 (*new_auth_tok) = &auth_tok_list_item->auth_tok;
1367 rc = ecryptfs_parse_packet_length(&data[(*packet_size)], &body_size,
1368 &length_size);
1369 if (rc) {
1370 printk(KERN_WARNING "Error parsing packet length; rc = [%d]\n",
1371 rc);
1372 goto out_free;
1373 }
1374 if (unlikely(body_size < (ECRYPTFS_SALT_SIZE + 5))) {
1375 printk(KERN_WARNING "Invalid body size ([%td])\n", body_size);
1376 rc = -EINVAL;
1377 goto out_free;
1378 }
1379 (*packet_size) += length_size;
1380 if (unlikely((*packet_size) + body_size > max_packet_size)) {
1381 printk(KERN_ERR "Packet size exceeds max\n");
1382 rc = -EINVAL;
1383 goto out_free;
1384 }
1385 (*new_auth_tok)->session_key.encrypted_key_size =
1386 (body_size - (ECRYPTFS_SALT_SIZE + 5));
1387 if ((*new_auth_tok)->session_key.encrypted_key_size
1388 > ECRYPTFS_MAX_ENCRYPTED_KEY_BYTES) {
1389 printk(KERN_WARNING "Tag 3 packet contains key larger "
1390 "than ECRYPTFS_MAX_ENCRYPTED_KEY_BYTES\n");
1391 rc = -EINVAL;
1392 goto out_free;
1393 }
1394 if (unlikely(data[(*packet_size)++] != 0x04)) {
1395 printk(KERN_WARNING "Unknown version number [%d]\n",
1396 data[(*packet_size) - 1]);
1397 rc = -EINVAL;
1398 goto out_free;
1399 }
1400 rc = ecryptfs_cipher_code_to_string(crypt_stat->cipher,
1401 sizeof(crypt_stat->cipher),
1402 (u16)data[(*packet_size)]);
1403 if (rc)
1404 goto out_free;
1405 /* A little extra work to differentiate among the AES key
1406 * sizes; see RFC2440 */
1407 switch(data[(*packet_size)++]) {
1408 case RFC2440_CIPHER_AES_192:
1409 crypt_stat->key_size = 24;
1410 break;
1411 default:
1412 crypt_stat->key_size =
1413 (*new_auth_tok)->session_key.encrypted_key_size;
1414 }
1415 rc = ecryptfs_init_crypt_ctx(crypt_stat);
1416 if (rc)
1417 goto out_free;
1418 if (unlikely(data[(*packet_size)++] != 0x03)) {
1419 printk(KERN_WARNING "Only S2K ID 3 is currently supported\n");
1420 rc = -ENOSYS;
1421 goto out_free;
1422 }
1423 /* TODO: finish the hash mapping */
1424 switch (data[(*packet_size)++]) {
1425 case 0x01: /* See RFC2440 for these numbers and their mappings */
1426 /* Choose MD5 */
1427 memcpy((*new_auth_tok)->token.password.salt,
1428 &data[(*packet_size)], ECRYPTFS_SALT_SIZE);
1429 (*packet_size) += ECRYPTFS_SALT_SIZE;
1430 /* This conversion was taken straight from RFC2440 */
1431 (*new_auth_tok)->token.password.hash_iterations =
1432 ((u32) 16 + (data[(*packet_size)] & 15))
1433 << ((data[(*packet_size)] >> 4) + 6);
1434 (*packet_size)++;
1435 /* Friendly reminder:
1436 * (*new_auth_tok)->session_key.encrypted_key_size =
1437 * (body_size - (ECRYPTFS_SALT_SIZE + 5)); */
1438 memcpy((*new_auth_tok)->session_key.encrypted_key,
1439 &data[(*packet_size)],
1440 (*new_auth_tok)->session_key.encrypted_key_size);
1441 (*packet_size) +=
1442 (*new_auth_tok)->session_key.encrypted_key_size;
1443 (*new_auth_tok)->session_key.flags &=
1444 ~ECRYPTFS_CONTAINS_DECRYPTED_KEY;
1445 (*new_auth_tok)->session_key.flags |=
1446 ECRYPTFS_CONTAINS_ENCRYPTED_KEY;
1447 (*new_auth_tok)->token.password.hash_algo = 0x01; /* MD5 */
1448 break;
1449 default:
1450 ecryptfs_printk(KERN_ERR, "Unsupported hash algorithm: "
1451 "[%d]\n", data[(*packet_size) - 1]);
1452 rc = -ENOSYS;
1453 goto out_free;
1454 }
1455 (*new_auth_tok)->token_type = ECRYPTFS_PASSWORD;
1456 /* TODO: Parametarize; we might actually want userspace to
1457 * decrypt the session key. */
1458 (*new_auth_tok)->session_key.flags &=
1459 ~(ECRYPTFS_USERSPACE_SHOULD_TRY_TO_DECRYPT);
1460 (*new_auth_tok)->session_key.flags &=
1461 ~(ECRYPTFS_USERSPACE_SHOULD_TRY_TO_ENCRYPT);
1462 list_add(&auth_tok_list_item->list, auth_tok_list);
1463 goto out;
1464 out_free:
1465 (*new_auth_tok) = NULL;
1466 memset(auth_tok_list_item, 0,
1467 sizeof(struct ecryptfs_auth_tok_list_item));
1468 kmem_cache_free(ecryptfs_auth_tok_list_item_cache,
1469 auth_tok_list_item);
1470 out:
1471 if (rc)
1472 (*packet_size) = 0;
1473 return rc;
1474 }
1475
1476 /**
1477 * parse_tag_11_packet
1478 * @data: The raw bytes of the packet
1479 * @contents: This function writes the data contents of the literal
1480 * packet into this memory location
1481 * @max_contents_bytes: The maximum number of bytes that this function
1482 * is allowed to write into contents
1483 * @tag_11_contents_size: This function writes the size of the parsed
1484 * contents into this memory location; zero on
1485 * error
1486 * @packet_size: This function writes the size of the parsed packet
1487 * into this memory location; zero on error
1488 * @max_packet_size: maximum number of bytes to parse
1489 *
1490 * Returns zero on success; non-zero on error.
1491 */
1492 static int
parse_tag_11_packet(unsigned char * data,unsigned char * contents,size_t max_contents_bytes,size_t * tag_11_contents_size,size_t * packet_size,size_t max_packet_size)1493 parse_tag_11_packet(unsigned char *data, unsigned char *contents,
1494 size_t max_contents_bytes, size_t *tag_11_contents_size,
1495 size_t *packet_size, size_t max_packet_size)
1496 {
1497 size_t body_size;
1498 size_t length_size;
1499 int rc = 0;
1500
1501 (*packet_size) = 0;
1502 (*tag_11_contents_size) = 0;
1503 /* This format is inspired by OpenPGP; see RFC 2440
1504 * packet tag 11
1505 *
1506 * Tag 11 identifier (1 byte)
1507 * Max Tag 11 packet size (max 3 bytes)
1508 * Binary format specifier (1 byte)
1509 * Filename length (1 byte)
1510 * Filename ("_CONSOLE") (8 bytes)
1511 * Modification date (4 bytes)
1512 * Literal data (arbitrary)
1513 *
1514 * We need at least 16 bytes of data for the packet to even be
1515 * valid.
1516 */
1517 if (max_packet_size < 16) {
1518 printk(KERN_ERR "Maximum packet size too small\n");
1519 rc = -EINVAL;
1520 goto out;
1521 }
1522 if (data[(*packet_size)++] != ECRYPTFS_TAG_11_PACKET_TYPE) {
1523 printk(KERN_WARNING "Invalid tag 11 packet format\n");
1524 rc = -EINVAL;
1525 goto out;
1526 }
1527 rc = ecryptfs_parse_packet_length(&data[(*packet_size)], &body_size,
1528 &length_size);
1529 if (rc) {
1530 printk(KERN_WARNING "Invalid tag 11 packet format\n");
1531 goto out;
1532 }
1533 if (body_size < 14) {
1534 printk(KERN_WARNING "Invalid body size ([%td])\n", body_size);
1535 rc = -EINVAL;
1536 goto out;
1537 }
1538 (*packet_size) += length_size;
1539 (*tag_11_contents_size) = (body_size - 14);
1540 if (unlikely((*packet_size) + body_size + 1 > max_packet_size)) {
1541 printk(KERN_ERR "Packet size exceeds max\n");
1542 rc = -EINVAL;
1543 goto out;
1544 }
1545 if (unlikely((*tag_11_contents_size) > max_contents_bytes)) {
1546 printk(KERN_ERR "Literal data section in tag 11 packet exceeds "
1547 "expected size\n");
1548 rc = -EINVAL;
1549 goto out;
1550 }
1551 if (data[(*packet_size)++] != 0x62) {
1552 printk(KERN_WARNING "Unrecognizable packet\n");
1553 rc = -EINVAL;
1554 goto out;
1555 }
1556 if (data[(*packet_size)++] != 0x08) {
1557 printk(KERN_WARNING "Unrecognizable packet\n");
1558 rc = -EINVAL;
1559 goto out;
1560 }
1561 (*packet_size) += 12; /* Ignore filename and modification date */
1562 memcpy(contents, &data[(*packet_size)], (*tag_11_contents_size));
1563 (*packet_size) += (*tag_11_contents_size);
1564 out:
1565 if (rc) {
1566 (*packet_size) = 0;
1567 (*tag_11_contents_size) = 0;
1568 }
1569 return rc;
1570 }
1571
ecryptfs_keyring_auth_tok_for_sig(struct key ** auth_tok_key,struct ecryptfs_auth_tok ** auth_tok,char * sig)1572 int ecryptfs_keyring_auth_tok_for_sig(struct key **auth_tok_key,
1573 struct ecryptfs_auth_tok **auth_tok,
1574 char *sig)
1575 {
1576 int rc = 0;
1577
1578 (*auth_tok_key) = request_key(&key_type_user, sig, NULL);
1579 if (IS_ERR(*auth_tok_key)) {
1580 (*auth_tok_key) = ecryptfs_get_encrypted_key(sig);
1581 if (IS_ERR(*auth_tok_key)) {
1582 printk(KERN_ERR "Could not find key with description: [%s]\n",
1583 sig);
1584 rc = process_request_key_err(PTR_ERR(*auth_tok_key));
1585 (*auth_tok_key) = NULL;
1586 goto out;
1587 }
1588 }
1589 down_write(&(*auth_tok_key)->sem);
1590 rc = ecryptfs_verify_auth_tok_from_key(*auth_tok_key, auth_tok);
1591 if (rc) {
1592 up_write(&(*auth_tok_key)->sem);
1593 key_put(*auth_tok_key);
1594 (*auth_tok_key) = NULL;
1595 goto out;
1596 }
1597 out:
1598 return rc;
1599 }
1600
1601 /**
1602 * decrypt_passphrase_encrypted_session_key - Decrypt the session key with the given auth_tok.
1603 * @auth_tok: The passphrase authentication token to use to encrypt the FEK
1604 * @crypt_stat: The cryptographic context
1605 *
1606 * Returns zero on success; non-zero error otherwise
1607 */
1608 static int
decrypt_passphrase_encrypted_session_key(struct ecryptfs_auth_tok * auth_tok,struct ecryptfs_crypt_stat * crypt_stat)1609 decrypt_passphrase_encrypted_session_key(struct ecryptfs_auth_tok *auth_tok,
1610 struct ecryptfs_crypt_stat *crypt_stat)
1611 {
1612 struct scatterlist dst_sg[2];
1613 struct scatterlist src_sg[2];
1614 struct mutex *tfm_mutex;
1615 struct crypto_skcipher *tfm;
1616 struct skcipher_request *req = NULL;
1617 int rc = 0;
1618
1619 if (unlikely(ecryptfs_verbosity > 0)) {
1620 ecryptfs_printk(
1621 KERN_DEBUG, "Session key encryption key (size [%d]):\n",
1622 auth_tok->token.password.session_key_encryption_key_bytes);
1623 ecryptfs_dump_hex(
1624 auth_tok->token.password.session_key_encryption_key,
1625 auth_tok->token.password.session_key_encryption_key_bytes);
1626 }
1627 rc = ecryptfs_get_tfm_and_mutex_for_cipher_name(&tfm, &tfm_mutex,
1628 crypt_stat->cipher);
1629 if (unlikely(rc)) {
1630 printk(KERN_ERR "Internal error whilst attempting to get "
1631 "tfm and mutex for cipher name [%s]; rc = [%d]\n",
1632 crypt_stat->cipher, rc);
1633 goto out;
1634 }
1635 rc = virt_to_scatterlist(auth_tok->session_key.encrypted_key,
1636 auth_tok->session_key.encrypted_key_size,
1637 src_sg, 2);
1638 if (rc < 1 || rc > 2) {
1639 printk(KERN_ERR "Internal error whilst attempting to convert "
1640 "auth_tok->session_key.encrypted_key to scatterlist; "
1641 "expected rc = 1; got rc = [%d]. "
1642 "auth_tok->session_key.encrypted_key_size = [%d]\n", rc,
1643 auth_tok->session_key.encrypted_key_size);
1644 goto out;
1645 }
1646 auth_tok->session_key.decrypted_key_size =
1647 auth_tok->session_key.encrypted_key_size;
1648 rc = virt_to_scatterlist(auth_tok->session_key.decrypted_key,
1649 auth_tok->session_key.decrypted_key_size,
1650 dst_sg, 2);
1651 if (rc < 1 || rc > 2) {
1652 printk(KERN_ERR "Internal error whilst attempting to convert "
1653 "auth_tok->session_key.decrypted_key to scatterlist; "
1654 "expected rc = 1; got rc = [%d]\n", rc);
1655 goto out;
1656 }
1657 mutex_lock(tfm_mutex);
1658 req = skcipher_request_alloc(tfm, GFP_KERNEL);
1659 if (!req) {
1660 mutex_unlock(tfm_mutex);
1661 printk(KERN_ERR "%s: Out of kernel memory whilst attempting to "
1662 "skcipher_request_alloc for %s\n", __func__,
1663 crypto_skcipher_driver_name(tfm));
1664 rc = -ENOMEM;
1665 goto out;
1666 }
1667
1668 skcipher_request_set_callback(req, CRYPTO_TFM_REQ_MAY_SLEEP,
1669 NULL, NULL);
1670 rc = crypto_skcipher_setkey(
1671 tfm, auth_tok->token.password.session_key_encryption_key,
1672 crypt_stat->key_size);
1673 if (unlikely(rc < 0)) {
1674 mutex_unlock(tfm_mutex);
1675 printk(KERN_ERR "Error setting key for crypto context\n");
1676 rc = -EINVAL;
1677 goto out;
1678 }
1679 skcipher_request_set_crypt(req, src_sg, dst_sg,
1680 auth_tok->session_key.encrypted_key_size,
1681 NULL);
1682 rc = crypto_skcipher_decrypt(req);
1683 mutex_unlock(tfm_mutex);
1684 if (unlikely(rc)) {
1685 printk(KERN_ERR "Error decrypting; rc = [%d]\n", rc);
1686 goto out;
1687 }
1688 auth_tok->session_key.flags |= ECRYPTFS_CONTAINS_DECRYPTED_KEY;
1689 memcpy(crypt_stat->key, auth_tok->session_key.decrypted_key,
1690 auth_tok->session_key.decrypted_key_size);
1691 crypt_stat->flags |= ECRYPTFS_KEY_VALID;
1692 if (unlikely(ecryptfs_verbosity > 0)) {
1693 ecryptfs_printk(KERN_DEBUG, "FEK of size [%zd]:\n",
1694 crypt_stat->key_size);
1695 ecryptfs_dump_hex(crypt_stat->key,
1696 crypt_stat->key_size);
1697 }
1698 out:
1699 skcipher_request_free(req);
1700 return rc;
1701 }
1702
1703 /**
1704 * ecryptfs_parse_packet_set
1705 * @crypt_stat: The cryptographic context
1706 * @src: Virtual address of region of memory containing the packets
1707 * @ecryptfs_dentry: The eCryptfs dentry associated with the packet set
1708 *
1709 * Get crypt_stat to have the file's session key if the requisite key
1710 * is available to decrypt the session key.
1711 *
1712 * Returns Zero if a valid authentication token was retrieved and
1713 * processed; negative value for file not encrypted or for error
1714 * conditions.
1715 */
ecryptfs_parse_packet_set(struct ecryptfs_crypt_stat * crypt_stat,unsigned char * src,struct dentry * ecryptfs_dentry)1716 int ecryptfs_parse_packet_set(struct ecryptfs_crypt_stat *crypt_stat,
1717 unsigned char *src,
1718 struct dentry *ecryptfs_dentry)
1719 {
1720 size_t i = 0;
1721 size_t found_auth_tok;
1722 size_t next_packet_is_auth_tok_packet;
1723 LIST_HEAD(auth_tok_list);
1724 struct ecryptfs_auth_tok *matching_auth_tok;
1725 struct ecryptfs_auth_tok *candidate_auth_tok;
1726 char *candidate_auth_tok_sig;
1727 size_t packet_size;
1728 struct ecryptfs_auth_tok *new_auth_tok;
1729 unsigned char sig_tmp_space[ECRYPTFS_SIG_SIZE];
1730 struct ecryptfs_auth_tok_list_item *auth_tok_list_item;
1731 size_t tag_11_contents_size;
1732 size_t tag_11_packet_size;
1733 struct key *auth_tok_key = NULL;
1734 int rc = 0;
1735
1736 /* Parse the header to find as many packets as we can; these will be
1737 * added the our &auth_tok_list */
1738 next_packet_is_auth_tok_packet = 1;
1739 while (next_packet_is_auth_tok_packet) {
1740 size_t max_packet_size = ((PAGE_SIZE - 8) - i);
1741
1742 switch (src[i]) {
1743 case ECRYPTFS_TAG_3_PACKET_TYPE:
1744 rc = parse_tag_3_packet(crypt_stat,
1745 (unsigned char *)&src[i],
1746 &auth_tok_list, &new_auth_tok,
1747 &packet_size, max_packet_size);
1748 if (rc) {
1749 ecryptfs_printk(KERN_ERR, "Error parsing "
1750 "tag 3 packet\n");
1751 rc = -EIO;
1752 goto out_wipe_list;
1753 }
1754 i += packet_size;
1755 rc = parse_tag_11_packet((unsigned char *)&src[i],
1756 sig_tmp_space,
1757 ECRYPTFS_SIG_SIZE,
1758 &tag_11_contents_size,
1759 &tag_11_packet_size,
1760 max_packet_size);
1761 if (rc) {
1762 ecryptfs_printk(KERN_ERR, "No valid "
1763 "(ecryptfs-specific) literal "
1764 "packet containing "
1765 "authentication token "
1766 "signature found after "
1767 "tag 3 packet\n");
1768 rc = -EIO;
1769 goto out_wipe_list;
1770 }
1771 i += tag_11_packet_size;
1772 if (ECRYPTFS_SIG_SIZE != tag_11_contents_size) {
1773 ecryptfs_printk(KERN_ERR, "Expected "
1774 "signature of size [%d]; "
1775 "read size [%zd]\n",
1776 ECRYPTFS_SIG_SIZE,
1777 tag_11_contents_size);
1778 rc = -EIO;
1779 goto out_wipe_list;
1780 }
1781 ecryptfs_to_hex(new_auth_tok->token.password.signature,
1782 sig_tmp_space, tag_11_contents_size);
1783 crypt_stat->flags |= ECRYPTFS_ENCRYPTED;
1784 break;
1785 case ECRYPTFS_TAG_1_PACKET_TYPE:
1786 rc = parse_tag_1_packet(crypt_stat,
1787 (unsigned char *)&src[i],
1788 &auth_tok_list, &new_auth_tok,
1789 &packet_size, max_packet_size);
1790 if (rc) {
1791 ecryptfs_printk(KERN_ERR, "Error parsing "
1792 "tag 1 packet\n");
1793 rc = -EIO;
1794 goto out_wipe_list;
1795 }
1796 i += packet_size;
1797 crypt_stat->flags |= ECRYPTFS_ENCRYPTED;
1798 break;
1799 case ECRYPTFS_TAG_11_PACKET_TYPE:
1800 ecryptfs_printk(KERN_WARNING, "Invalid packet set "
1801 "(Tag 11 not allowed by itself)\n");
1802 rc = -EIO;
1803 goto out_wipe_list;
1804 default:
1805 ecryptfs_printk(KERN_DEBUG, "No packet at offset [%zd] "
1806 "of the file header; hex value of "
1807 "character is [0x%.2x]\n", i, src[i]);
1808 next_packet_is_auth_tok_packet = 0;
1809 }
1810 }
1811 if (list_empty(&auth_tok_list)) {
1812 printk(KERN_ERR "The lower file appears to be a non-encrypted "
1813 "eCryptfs file; this is not supported in this version "
1814 "of the eCryptfs kernel module\n");
1815 rc = -EINVAL;
1816 goto out;
1817 }
1818 /* auth_tok_list contains the set of authentication tokens
1819 * parsed from the metadata. We need to find a matching
1820 * authentication token that has the secret component(s)
1821 * necessary to decrypt the EFEK in the auth_tok parsed from
1822 * the metadata. There may be several potential matches, but
1823 * just one will be sufficient to decrypt to get the FEK. */
1824 find_next_matching_auth_tok:
1825 found_auth_tok = 0;
1826 list_for_each_entry(auth_tok_list_item, &auth_tok_list, list) {
1827 candidate_auth_tok = &auth_tok_list_item->auth_tok;
1828 if (unlikely(ecryptfs_verbosity > 0)) {
1829 ecryptfs_printk(KERN_DEBUG,
1830 "Considering candidate auth tok:\n");
1831 ecryptfs_dump_auth_tok(candidate_auth_tok);
1832 }
1833 rc = ecryptfs_get_auth_tok_sig(&candidate_auth_tok_sig,
1834 candidate_auth_tok);
1835 if (rc) {
1836 printk(KERN_ERR
1837 "Unrecognized candidate auth tok type: [%d]\n",
1838 candidate_auth_tok->token_type);
1839 rc = -EINVAL;
1840 goto out_wipe_list;
1841 }
1842 rc = ecryptfs_find_auth_tok_for_sig(&auth_tok_key,
1843 &matching_auth_tok,
1844 crypt_stat->mount_crypt_stat,
1845 candidate_auth_tok_sig);
1846 if (!rc) {
1847 found_auth_tok = 1;
1848 goto found_matching_auth_tok;
1849 }
1850 }
1851 if (!found_auth_tok) {
1852 ecryptfs_printk(KERN_ERR, "Could not find a usable "
1853 "authentication token\n");
1854 rc = -EIO;
1855 goto out_wipe_list;
1856 }
1857 found_matching_auth_tok:
1858 if (candidate_auth_tok->token_type == ECRYPTFS_PRIVATE_KEY) {
1859 memcpy(&(candidate_auth_tok->token.private_key),
1860 &(matching_auth_tok->token.private_key),
1861 sizeof(struct ecryptfs_private_key));
1862 up_write(&(auth_tok_key->sem));
1863 key_put(auth_tok_key);
1864 rc = decrypt_pki_encrypted_session_key(candidate_auth_tok,
1865 crypt_stat);
1866 } else if (candidate_auth_tok->token_type == ECRYPTFS_PASSWORD) {
1867 memcpy(&(candidate_auth_tok->token.password),
1868 &(matching_auth_tok->token.password),
1869 sizeof(struct ecryptfs_password));
1870 up_write(&(auth_tok_key->sem));
1871 key_put(auth_tok_key);
1872 rc = decrypt_passphrase_encrypted_session_key(
1873 candidate_auth_tok, crypt_stat);
1874 } else {
1875 up_write(&(auth_tok_key->sem));
1876 key_put(auth_tok_key);
1877 rc = -EINVAL;
1878 }
1879 if (rc) {
1880 struct ecryptfs_auth_tok_list_item *auth_tok_list_item_tmp;
1881
1882 ecryptfs_printk(KERN_WARNING, "Error decrypting the "
1883 "session key for authentication token with sig "
1884 "[%.*s]; rc = [%d]. Removing auth tok "
1885 "candidate from the list and searching for "
1886 "the next match.\n", ECRYPTFS_SIG_SIZE_HEX,
1887 candidate_auth_tok_sig, rc);
1888 list_for_each_entry_safe(auth_tok_list_item,
1889 auth_tok_list_item_tmp,
1890 &auth_tok_list, list) {
1891 if (candidate_auth_tok
1892 == &auth_tok_list_item->auth_tok) {
1893 list_del(&auth_tok_list_item->list);
1894 kmem_cache_free(
1895 ecryptfs_auth_tok_list_item_cache,
1896 auth_tok_list_item);
1897 goto find_next_matching_auth_tok;
1898 }
1899 }
1900 BUG();
1901 }
1902 rc = ecryptfs_compute_root_iv(crypt_stat);
1903 if (rc) {
1904 ecryptfs_printk(KERN_ERR, "Error computing "
1905 "the root IV\n");
1906 goto out_wipe_list;
1907 }
1908 rc = ecryptfs_init_crypt_ctx(crypt_stat);
1909 if (rc) {
1910 ecryptfs_printk(KERN_ERR, "Error initializing crypto "
1911 "context for cipher [%s]; rc = [%d]\n",
1912 crypt_stat->cipher, rc);
1913 }
1914 out_wipe_list:
1915 wipe_auth_tok_list(&auth_tok_list);
1916 out:
1917 return rc;
1918 }
1919
1920 static int
pki_encrypt_session_key(struct key * auth_tok_key,struct ecryptfs_auth_tok * auth_tok,struct ecryptfs_crypt_stat * crypt_stat,struct ecryptfs_key_record * key_rec)1921 pki_encrypt_session_key(struct key *auth_tok_key,
1922 struct ecryptfs_auth_tok *auth_tok,
1923 struct ecryptfs_crypt_stat *crypt_stat,
1924 struct ecryptfs_key_record *key_rec)
1925 {
1926 struct ecryptfs_msg_ctx *msg_ctx = NULL;
1927 char *payload = NULL;
1928 size_t payload_len = 0;
1929 struct ecryptfs_message *msg;
1930 int rc;
1931
1932 rc = write_tag_66_packet(auth_tok->token.private_key.signature,
1933 ecryptfs_code_for_cipher_string(
1934 crypt_stat->cipher,
1935 crypt_stat->key_size),
1936 crypt_stat, &payload, &payload_len);
1937 up_write(&(auth_tok_key->sem));
1938 key_put(auth_tok_key);
1939 if (rc) {
1940 ecryptfs_printk(KERN_ERR, "Error generating tag 66 packet\n");
1941 goto out;
1942 }
1943 rc = ecryptfs_send_message(payload, payload_len, &msg_ctx);
1944 if (rc) {
1945 ecryptfs_printk(KERN_ERR, "Error sending message to "
1946 "ecryptfsd: %d\n", rc);
1947 goto out;
1948 }
1949 rc = ecryptfs_wait_for_response(msg_ctx, &msg);
1950 if (rc) {
1951 ecryptfs_printk(KERN_ERR, "Failed to receive tag 67 packet "
1952 "from the user space daemon\n");
1953 rc = -EIO;
1954 goto out;
1955 }
1956 rc = parse_tag_67_packet(key_rec, msg);
1957 if (rc)
1958 ecryptfs_printk(KERN_ERR, "Error parsing tag 67 packet\n");
1959 kfree(msg);
1960 out:
1961 kfree(payload);
1962 return rc;
1963 }
1964 /**
1965 * write_tag_1_packet - Write an RFC2440-compatible tag 1 (public key) packet
1966 * @dest: Buffer into which to write the packet
1967 * @remaining_bytes: Maximum number of bytes that can be writtn
1968 * @auth_tok_key: The authentication token key to unlock and put when done with
1969 * @auth_tok
1970 * @auth_tok: The authentication token used for generating the tag 1 packet
1971 * @crypt_stat: The cryptographic context
1972 * @key_rec: The key record struct for the tag 1 packet
1973 * @packet_size: This function will write the number of bytes that end
1974 * up constituting the packet; set to zero on error
1975 *
1976 * Returns zero on success; non-zero on error.
1977 */
1978 static int
write_tag_1_packet(char * dest,size_t * remaining_bytes,struct key * auth_tok_key,struct ecryptfs_auth_tok * auth_tok,struct ecryptfs_crypt_stat * crypt_stat,struct ecryptfs_key_record * key_rec,size_t * packet_size)1979 write_tag_1_packet(char *dest, size_t *remaining_bytes,
1980 struct key *auth_tok_key, struct ecryptfs_auth_tok *auth_tok,
1981 struct ecryptfs_crypt_stat *crypt_stat,
1982 struct ecryptfs_key_record *key_rec, size_t *packet_size)
1983 {
1984 size_t i;
1985 size_t encrypted_session_key_valid = 0;
1986 size_t packet_size_length;
1987 size_t max_packet_size;
1988 int rc = 0;
1989
1990 (*packet_size) = 0;
1991 ecryptfs_from_hex(key_rec->sig, auth_tok->token.private_key.signature,
1992 ECRYPTFS_SIG_SIZE);
1993 encrypted_session_key_valid = 0;
1994 for (i = 0; i < crypt_stat->key_size; i++)
1995 encrypted_session_key_valid |=
1996 auth_tok->session_key.encrypted_key[i];
1997 if (encrypted_session_key_valid) {
1998 memcpy(key_rec->enc_key,
1999 auth_tok->session_key.encrypted_key,
2000 auth_tok->session_key.encrypted_key_size);
2001 up_write(&(auth_tok_key->sem));
2002 key_put(auth_tok_key);
2003 goto encrypted_session_key_set;
2004 }
2005 if (auth_tok->session_key.encrypted_key_size == 0)
2006 auth_tok->session_key.encrypted_key_size =
2007 auth_tok->token.private_key.key_size;
2008 rc = pki_encrypt_session_key(auth_tok_key, auth_tok, crypt_stat,
2009 key_rec);
2010 if (rc) {
2011 printk(KERN_ERR "Failed to encrypt session key via a key "
2012 "module; rc = [%d]\n", rc);
2013 goto out;
2014 }
2015 if (ecryptfs_verbosity > 0) {
2016 ecryptfs_printk(KERN_DEBUG, "Encrypted key:\n");
2017 ecryptfs_dump_hex(key_rec->enc_key, key_rec->enc_key_size);
2018 }
2019 encrypted_session_key_set:
2020 /* This format is inspired by OpenPGP; see RFC 2440
2021 * packet tag 1 */
2022 max_packet_size = (1 /* Tag 1 identifier */
2023 + 3 /* Max Tag 1 packet size */
2024 + 1 /* Version */
2025 + ECRYPTFS_SIG_SIZE /* Key identifier */
2026 + 1 /* Cipher identifier */
2027 + key_rec->enc_key_size); /* Encrypted key size */
2028 if (max_packet_size > (*remaining_bytes)) {
2029 printk(KERN_ERR "Packet length larger than maximum allowable; "
2030 "need up to [%td] bytes, but there are only [%td] "
2031 "available\n", max_packet_size, (*remaining_bytes));
2032 rc = -EINVAL;
2033 goto out;
2034 }
2035 dest[(*packet_size)++] = ECRYPTFS_TAG_1_PACKET_TYPE;
2036 rc = ecryptfs_write_packet_length(&dest[(*packet_size)],
2037 (max_packet_size - 4),
2038 &packet_size_length);
2039 if (rc) {
2040 ecryptfs_printk(KERN_ERR, "Error generating tag 1 packet "
2041 "header; cannot generate packet length\n");
2042 goto out;
2043 }
2044 (*packet_size) += packet_size_length;
2045 dest[(*packet_size)++] = 0x03; /* version 3 */
2046 memcpy(&dest[(*packet_size)], key_rec->sig, ECRYPTFS_SIG_SIZE);
2047 (*packet_size) += ECRYPTFS_SIG_SIZE;
2048 dest[(*packet_size)++] = RFC2440_CIPHER_RSA;
2049 memcpy(&dest[(*packet_size)], key_rec->enc_key,
2050 key_rec->enc_key_size);
2051 (*packet_size) += key_rec->enc_key_size;
2052 out:
2053 if (rc)
2054 (*packet_size) = 0;
2055 else
2056 (*remaining_bytes) -= (*packet_size);
2057 return rc;
2058 }
2059
2060 /**
2061 * write_tag_11_packet
2062 * @dest: Target into which Tag 11 packet is to be written
2063 * @remaining_bytes: Maximum packet length
2064 * @contents: Byte array of contents to copy in
2065 * @contents_length: Number of bytes in contents
2066 * @packet_length: Length of the Tag 11 packet written; zero on error
2067 *
2068 * Returns zero on success; non-zero on error.
2069 */
2070 static int
write_tag_11_packet(char * dest,size_t * remaining_bytes,char * contents,size_t contents_length,size_t * packet_length)2071 write_tag_11_packet(char *dest, size_t *remaining_bytes, char *contents,
2072 size_t contents_length, size_t *packet_length)
2073 {
2074 size_t packet_size_length;
2075 size_t max_packet_size;
2076 int rc = 0;
2077
2078 (*packet_length) = 0;
2079 /* This format is inspired by OpenPGP; see RFC 2440
2080 * packet tag 11 */
2081 max_packet_size = (1 /* Tag 11 identifier */
2082 + 3 /* Max Tag 11 packet size */
2083 + 1 /* Binary format specifier */
2084 + 1 /* Filename length */
2085 + 8 /* Filename ("_CONSOLE") */
2086 + 4 /* Modification date */
2087 + contents_length); /* Literal data */
2088 if (max_packet_size > (*remaining_bytes)) {
2089 printk(KERN_ERR "Packet length larger than maximum allowable; "
2090 "need up to [%td] bytes, but there are only [%td] "
2091 "available\n", max_packet_size, (*remaining_bytes));
2092 rc = -EINVAL;
2093 goto out;
2094 }
2095 dest[(*packet_length)++] = ECRYPTFS_TAG_11_PACKET_TYPE;
2096 rc = ecryptfs_write_packet_length(&dest[(*packet_length)],
2097 (max_packet_size - 4),
2098 &packet_size_length);
2099 if (rc) {
2100 printk(KERN_ERR "Error generating tag 11 packet header; cannot "
2101 "generate packet length. rc = [%d]\n", rc);
2102 goto out;
2103 }
2104 (*packet_length) += packet_size_length;
2105 dest[(*packet_length)++] = 0x62; /* binary data format specifier */
2106 dest[(*packet_length)++] = 8;
2107 memcpy(&dest[(*packet_length)], "_CONSOLE", 8);
2108 (*packet_length) += 8;
2109 memset(&dest[(*packet_length)], 0x00, 4);
2110 (*packet_length) += 4;
2111 memcpy(&dest[(*packet_length)], contents, contents_length);
2112 (*packet_length) += contents_length;
2113 out:
2114 if (rc)
2115 (*packet_length) = 0;
2116 else
2117 (*remaining_bytes) -= (*packet_length);
2118 return rc;
2119 }
2120
2121 /**
2122 * write_tag_3_packet
2123 * @dest: Buffer into which to write the packet
2124 * @remaining_bytes: Maximum number of bytes that can be written
2125 * @auth_tok: Authentication token
2126 * @crypt_stat: The cryptographic context
2127 * @key_rec: encrypted key
2128 * @packet_size: This function will write the number of bytes that end
2129 * up constituting the packet; set to zero on error
2130 *
2131 * Returns zero on success; non-zero on error.
2132 */
2133 static int
write_tag_3_packet(char * dest,size_t * remaining_bytes,struct ecryptfs_auth_tok * auth_tok,struct ecryptfs_crypt_stat * crypt_stat,struct ecryptfs_key_record * key_rec,size_t * packet_size)2134 write_tag_3_packet(char *dest, size_t *remaining_bytes,
2135 struct ecryptfs_auth_tok *auth_tok,
2136 struct ecryptfs_crypt_stat *crypt_stat,
2137 struct ecryptfs_key_record *key_rec, size_t *packet_size)
2138 {
2139 size_t i;
2140 size_t encrypted_session_key_valid = 0;
2141 char session_key_encryption_key[ECRYPTFS_MAX_KEY_BYTES];
2142 struct scatterlist dst_sg[2];
2143 struct scatterlist src_sg[2];
2144 struct mutex *tfm_mutex = NULL;
2145 u8 cipher_code;
2146 size_t packet_size_length;
2147 size_t max_packet_size;
2148 struct ecryptfs_mount_crypt_stat *mount_crypt_stat =
2149 crypt_stat->mount_crypt_stat;
2150 struct crypto_skcipher *tfm;
2151 struct skcipher_request *req;
2152 int rc = 0;
2153
2154 (*packet_size) = 0;
2155 ecryptfs_from_hex(key_rec->sig, auth_tok->token.password.signature,
2156 ECRYPTFS_SIG_SIZE);
2157 rc = ecryptfs_get_tfm_and_mutex_for_cipher_name(&tfm, &tfm_mutex,
2158 crypt_stat->cipher);
2159 if (unlikely(rc)) {
2160 printk(KERN_ERR "Internal error whilst attempting to get "
2161 "tfm and mutex for cipher name [%s]; rc = [%d]\n",
2162 crypt_stat->cipher, rc);
2163 goto out;
2164 }
2165 if (mount_crypt_stat->global_default_cipher_key_size == 0) {
2166 printk(KERN_WARNING "No key size specified at mount; "
2167 "defaulting to [%d]\n",
2168 crypto_skcipher_max_keysize(tfm));
2169 mount_crypt_stat->global_default_cipher_key_size =
2170 crypto_skcipher_max_keysize(tfm);
2171 }
2172 if (crypt_stat->key_size == 0)
2173 crypt_stat->key_size =
2174 mount_crypt_stat->global_default_cipher_key_size;
2175 if (auth_tok->session_key.encrypted_key_size == 0)
2176 auth_tok->session_key.encrypted_key_size =
2177 crypt_stat->key_size;
2178 if (crypt_stat->key_size == 24
2179 && strcmp("aes", crypt_stat->cipher) == 0) {
2180 memset((crypt_stat->key + 24), 0, 8);
2181 auth_tok->session_key.encrypted_key_size = 32;
2182 } else
2183 auth_tok->session_key.encrypted_key_size = crypt_stat->key_size;
2184 key_rec->enc_key_size =
2185 auth_tok->session_key.encrypted_key_size;
2186 encrypted_session_key_valid = 0;
2187 for (i = 0; i < auth_tok->session_key.encrypted_key_size; i++)
2188 encrypted_session_key_valid |=
2189 auth_tok->session_key.encrypted_key[i];
2190 if (encrypted_session_key_valid) {
2191 ecryptfs_printk(KERN_DEBUG, "encrypted_session_key_valid != 0; "
2192 "using auth_tok->session_key.encrypted_key, "
2193 "where key_rec->enc_key_size = [%zd]\n",
2194 key_rec->enc_key_size);
2195 memcpy(key_rec->enc_key,
2196 auth_tok->session_key.encrypted_key,
2197 key_rec->enc_key_size);
2198 goto encrypted_session_key_set;
2199 }
2200 if (auth_tok->token.password.flags &
2201 ECRYPTFS_SESSION_KEY_ENCRYPTION_KEY_SET) {
2202 ecryptfs_printk(KERN_DEBUG, "Using previously generated "
2203 "session key encryption key of size [%d]\n",
2204 auth_tok->token.password.
2205 session_key_encryption_key_bytes);
2206 memcpy(session_key_encryption_key,
2207 auth_tok->token.password.session_key_encryption_key,
2208 crypt_stat->key_size);
2209 ecryptfs_printk(KERN_DEBUG,
2210 "Cached session key encryption key:\n");
2211 if (ecryptfs_verbosity > 0)
2212 ecryptfs_dump_hex(session_key_encryption_key, 16);
2213 }
2214 if (unlikely(ecryptfs_verbosity > 0)) {
2215 ecryptfs_printk(KERN_DEBUG, "Session key encryption key:\n");
2216 ecryptfs_dump_hex(session_key_encryption_key, 16);
2217 }
2218 rc = virt_to_scatterlist(crypt_stat->key, key_rec->enc_key_size,
2219 src_sg, 2);
2220 if (rc < 1 || rc > 2) {
2221 ecryptfs_printk(KERN_ERR, "Error generating scatterlist "
2222 "for crypt_stat session key; expected rc = 1; "
2223 "got rc = [%d]. key_rec->enc_key_size = [%zd]\n",
2224 rc, key_rec->enc_key_size);
2225 rc = -ENOMEM;
2226 goto out;
2227 }
2228 rc = virt_to_scatterlist(key_rec->enc_key, key_rec->enc_key_size,
2229 dst_sg, 2);
2230 if (rc < 1 || rc > 2) {
2231 ecryptfs_printk(KERN_ERR, "Error generating scatterlist "
2232 "for crypt_stat encrypted session key; "
2233 "expected rc = 1; got rc = [%d]. "
2234 "key_rec->enc_key_size = [%zd]\n", rc,
2235 key_rec->enc_key_size);
2236 rc = -ENOMEM;
2237 goto out;
2238 }
2239 mutex_lock(tfm_mutex);
2240 rc = crypto_skcipher_setkey(tfm, session_key_encryption_key,
2241 crypt_stat->key_size);
2242 if (rc < 0) {
2243 mutex_unlock(tfm_mutex);
2244 ecryptfs_printk(KERN_ERR, "Error setting key for crypto "
2245 "context; rc = [%d]\n", rc);
2246 goto out;
2247 }
2248
2249 req = skcipher_request_alloc(tfm, GFP_KERNEL);
2250 if (!req) {
2251 mutex_unlock(tfm_mutex);
2252 ecryptfs_printk(KERN_ERR, "Out of kernel memory whilst "
2253 "attempting to skcipher_request_alloc for "
2254 "%s\n", crypto_skcipher_driver_name(tfm));
2255 rc = -ENOMEM;
2256 goto out;
2257 }
2258
2259 skcipher_request_set_callback(req, CRYPTO_TFM_REQ_MAY_SLEEP,
2260 NULL, NULL);
2261
2262 rc = 0;
2263 ecryptfs_printk(KERN_DEBUG, "Encrypting [%zd] bytes of the key\n",
2264 crypt_stat->key_size);
2265 skcipher_request_set_crypt(req, src_sg, dst_sg,
2266 (*key_rec).enc_key_size, NULL);
2267 rc = crypto_skcipher_encrypt(req);
2268 mutex_unlock(tfm_mutex);
2269 skcipher_request_free(req);
2270 if (rc) {
2271 printk(KERN_ERR "Error encrypting; rc = [%d]\n", rc);
2272 goto out;
2273 }
2274 ecryptfs_printk(KERN_DEBUG, "This should be the encrypted key:\n");
2275 if (ecryptfs_verbosity > 0) {
2276 ecryptfs_printk(KERN_DEBUG, "EFEK of size [%zd]:\n",
2277 key_rec->enc_key_size);
2278 ecryptfs_dump_hex(key_rec->enc_key,
2279 key_rec->enc_key_size);
2280 }
2281 encrypted_session_key_set:
2282 /* This format is inspired by OpenPGP; see RFC 2440
2283 * packet tag 3 */
2284 max_packet_size = (1 /* Tag 3 identifier */
2285 + 3 /* Max Tag 3 packet size */
2286 + 1 /* Version */
2287 + 1 /* Cipher code */
2288 + 1 /* S2K specifier */
2289 + 1 /* Hash identifier */
2290 + ECRYPTFS_SALT_SIZE /* Salt */
2291 + 1 /* Hash iterations */
2292 + key_rec->enc_key_size); /* Encrypted key size */
2293 if (max_packet_size > (*remaining_bytes)) {
2294 printk(KERN_ERR "Packet too large; need up to [%td] bytes, but "
2295 "there are only [%td] available\n", max_packet_size,
2296 (*remaining_bytes));
2297 rc = -EINVAL;
2298 goto out;
2299 }
2300 dest[(*packet_size)++] = ECRYPTFS_TAG_3_PACKET_TYPE;
2301 /* Chop off the Tag 3 identifier(1) and Tag 3 packet size(3)
2302 * to get the number of octets in the actual Tag 3 packet */
2303 rc = ecryptfs_write_packet_length(&dest[(*packet_size)],
2304 (max_packet_size - 4),
2305 &packet_size_length);
2306 if (rc) {
2307 printk(KERN_ERR "Error generating tag 3 packet header; cannot "
2308 "generate packet length. rc = [%d]\n", rc);
2309 goto out;
2310 }
2311 (*packet_size) += packet_size_length;
2312 dest[(*packet_size)++] = 0x04; /* version 4 */
2313 /* TODO: Break from RFC2440 so that arbitrary ciphers can be
2314 * specified with strings */
2315 cipher_code = ecryptfs_code_for_cipher_string(crypt_stat->cipher,
2316 crypt_stat->key_size);
2317 if (cipher_code == 0) {
2318 ecryptfs_printk(KERN_WARNING, "Unable to generate code for "
2319 "cipher [%s]\n", crypt_stat->cipher);
2320 rc = -EINVAL;
2321 goto out;
2322 }
2323 dest[(*packet_size)++] = cipher_code;
2324 dest[(*packet_size)++] = 0x03; /* S2K */
2325 dest[(*packet_size)++] = 0x01; /* MD5 (TODO: parameterize) */
2326 memcpy(&dest[(*packet_size)], auth_tok->token.password.salt,
2327 ECRYPTFS_SALT_SIZE);
2328 (*packet_size) += ECRYPTFS_SALT_SIZE; /* salt */
2329 dest[(*packet_size)++] = 0x60; /* hash iterations (65536) */
2330 memcpy(&dest[(*packet_size)], key_rec->enc_key,
2331 key_rec->enc_key_size);
2332 (*packet_size) += key_rec->enc_key_size;
2333 out:
2334 if (rc)
2335 (*packet_size) = 0;
2336 else
2337 (*remaining_bytes) -= (*packet_size);
2338 return rc;
2339 }
2340
2341 struct kmem_cache *ecryptfs_key_record_cache;
2342
2343 /**
2344 * ecryptfs_generate_key_packet_set
2345 * @dest_base: Virtual address from which to write the key record set
2346 * @crypt_stat: The cryptographic context from which the
2347 * authentication tokens will be retrieved
2348 * @ecryptfs_dentry: The dentry, used to retrieve the mount crypt stat
2349 * for the global parameters
2350 * @len: The amount written
2351 * @max: The maximum amount of data allowed to be written
2352 *
2353 * Generates a key packet set and writes it to the virtual address
2354 * passed in.
2355 *
2356 * Returns zero on success; non-zero on error.
2357 */
2358 int
ecryptfs_generate_key_packet_set(char * dest_base,struct ecryptfs_crypt_stat * crypt_stat,struct dentry * ecryptfs_dentry,size_t * len,size_t max)2359 ecryptfs_generate_key_packet_set(char *dest_base,
2360 struct ecryptfs_crypt_stat *crypt_stat,
2361 struct dentry *ecryptfs_dentry, size_t *len,
2362 size_t max)
2363 {
2364 struct ecryptfs_auth_tok *auth_tok;
2365 struct key *auth_tok_key = NULL;
2366 struct ecryptfs_mount_crypt_stat *mount_crypt_stat =
2367 &ecryptfs_superblock_to_private(
2368 ecryptfs_dentry->d_sb)->mount_crypt_stat;
2369 size_t written;
2370 struct ecryptfs_key_record *key_rec;
2371 struct ecryptfs_key_sig *key_sig;
2372 int rc = 0;
2373
2374 (*len) = 0;
2375 mutex_lock(&crypt_stat->keysig_list_mutex);
2376 key_rec = kmem_cache_alloc(ecryptfs_key_record_cache, GFP_KERNEL);
2377 if (!key_rec) {
2378 rc = -ENOMEM;
2379 goto out;
2380 }
2381 list_for_each_entry(key_sig, &crypt_stat->keysig_list,
2382 crypt_stat_list) {
2383 memset(key_rec, 0, sizeof(*key_rec));
2384 rc = ecryptfs_find_global_auth_tok_for_sig(&auth_tok_key,
2385 &auth_tok,
2386 mount_crypt_stat,
2387 key_sig->keysig);
2388 if (rc) {
2389 printk(KERN_WARNING "Unable to retrieve auth tok with "
2390 "sig = [%s]\n", key_sig->keysig);
2391 rc = process_find_global_auth_tok_for_sig_err(rc);
2392 goto out_free;
2393 }
2394 if (auth_tok->token_type == ECRYPTFS_PASSWORD) {
2395 rc = write_tag_3_packet((dest_base + (*len)),
2396 &max, auth_tok,
2397 crypt_stat, key_rec,
2398 &written);
2399 up_write(&(auth_tok_key->sem));
2400 key_put(auth_tok_key);
2401 if (rc) {
2402 ecryptfs_printk(KERN_WARNING, "Error "
2403 "writing tag 3 packet\n");
2404 goto out_free;
2405 }
2406 (*len) += written;
2407 /* Write auth tok signature packet */
2408 rc = write_tag_11_packet((dest_base + (*len)), &max,
2409 key_rec->sig,
2410 ECRYPTFS_SIG_SIZE, &written);
2411 if (rc) {
2412 ecryptfs_printk(KERN_ERR, "Error writing "
2413 "auth tok signature packet\n");
2414 goto out_free;
2415 }
2416 (*len) += written;
2417 } else if (auth_tok->token_type == ECRYPTFS_PRIVATE_KEY) {
2418 rc = write_tag_1_packet(dest_base + (*len), &max,
2419 auth_tok_key, auth_tok,
2420 crypt_stat, key_rec, &written);
2421 if (rc) {
2422 ecryptfs_printk(KERN_WARNING, "Error "
2423 "writing tag 1 packet\n");
2424 goto out_free;
2425 }
2426 (*len) += written;
2427 } else {
2428 up_write(&(auth_tok_key->sem));
2429 key_put(auth_tok_key);
2430 ecryptfs_printk(KERN_WARNING, "Unsupported "
2431 "authentication token type\n");
2432 rc = -EINVAL;
2433 goto out_free;
2434 }
2435 }
2436 if (likely(max > 0)) {
2437 dest_base[(*len)] = 0x00;
2438 } else {
2439 ecryptfs_printk(KERN_ERR, "Error writing boundary byte\n");
2440 rc = -EIO;
2441 }
2442 out_free:
2443 kmem_cache_free(ecryptfs_key_record_cache, key_rec);
2444 out:
2445 if (rc)
2446 (*len) = 0;
2447 mutex_unlock(&crypt_stat->keysig_list_mutex);
2448 return rc;
2449 }
2450
2451 struct kmem_cache *ecryptfs_key_sig_cache;
2452
ecryptfs_add_keysig(struct ecryptfs_crypt_stat * crypt_stat,char * sig)2453 int ecryptfs_add_keysig(struct ecryptfs_crypt_stat *crypt_stat, char *sig)
2454 {
2455 struct ecryptfs_key_sig *new_key_sig;
2456
2457 new_key_sig = kmem_cache_alloc(ecryptfs_key_sig_cache, GFP_KERNEL);
2458 if (!new_key_sig)
2459 return -ENOMEM;
2460
2461 memcpy(new_key_sig->keysig, sig, ECRYPTFS_SIG_SIZE_HEX);
2462 new_key_sig->keysig[ECRYPTFS_SIG_SIZE_HEX] = '\0';
2463 /* Caller must hold keysig_list_mutex */
2464 list_add(&new_key_sig->crypt_stat_list, &crypt_stat->keysig_list);
2465
2466 return 0;
2467 }
2468
2469 struct kmem_cache *ecryptfs_global_auth_tok_cache;
2470
2471 int
ecryptfs_add_global_auth_tok(struct ecryptfs_mount_crypt_stat * mount_crypt_stat,char * sig,u32 global_auth_tok_flags)2472 ecryptfs_add_global_auth_tok(struct ecryptfs_mount_crypt_stat *mount_crypt_stat,
2473 char *sig, u32 global_auth_tok_flags)
2474 {
2475 struct ecryptfs_global_auth_tok *new_auth_tok;
2476
2477 new_auth_tok = kmem_cache_zalloc(ecryptfs_global_auth_tok_cache,
2478 GFP_KERNEL);
2479 if (!new_auth_tok)
2480 return -ENOMEM;
2481
2482 memcpy(new_auth_tok->sig, sig, ECRYPTFS_SIG_SIZE_HEX);
2483 new_auth_tok->flags = global_auth_tok_flags;
2484 new_auth_tok->sig[ECRYPTFS_SIG_SIZE_HEX] = '\0';
2485 mutex_lock(&mount_crypt_stat->global_auth_tok_list_mutex);
2486 list_add(&new_auth_tok->mount_crypt_stat_list,
2487 &mount_crypt_stat->global_auth_tok_list);
2488 mutex_unlock(&mount_crypt_stat->global_auth_tok_list_mutex);
2489 return 0;
2490 }
2491
2492