main.c 26 KB

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  1. /**
  2. * eCryptfs: Linux filesystem encryption layer
  3. *
  4. * Copyright (C) 1997-2003 Erez Zadok
  5. * Copyright (C) 2001-2003 Stony Brook University
  6. * Copyright (C) 2004-2007 International Business Machines Corp.
  7. * Author(s): Michael A. Halcrow <mahalcro@us.ibm.com>
  8. * Michael C. Thompson <mcthomps@us.ibm.com>
  9. * Tyler Hicks <tyhicks@ou.edu>
  10. *
  11. * This program is free software; you can redistribute it and/or
  12. * modify it under the terms of the GNU General Public License as
  13. * published by the Free Software Foundation; either version 2 of the
  14. * License, or (at your option) any later version.
  15. *
  16. * This program is distributed in the hope that it will be useful, but
  17. * WITHOUT ANY WARRANTY; without even the implied warranty of
  18. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  19. * General Public License for more details.
  20. *
  21. * You should have received a copy of the GNU General Public License
  22. * along with this program; if not, write to the Free Software
  23. * Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA
  24. * 02111-1307, USA.
  25. */
  26. #include <linux/dcache.h>
  27. #include <linux/file.h>
  28. #include <linux/module.h>
  29. #include <linux/namei.h>
  30. #include <linux/skbuff.h>
  31. #include <linux/crypto.h>
  32. #include <linux/mount.h>
  33. #include <linux/pagemap.h>
  34. #include <linux/key.h>
  35. #include <linux/parser.h>
  36. #include <linux/fs_stack.h>
  37. #include "ecryptfs_kernel.h"
  38. /**
  39. * Module parameter that defines the ecryptfs_verbosity level.
  40. */
  41. int ecryptfs_verbosity = 0;
  42. module_param(ecryptfs_verbosity, int, 0);
  43. MODULE_PARM_DESC(ecryptfs_verbosity,
  44. "Initial verbosity level (0 or 1; defaults to "
  45. "0, which is Quiet)");
  46. /**
  47. * Module parameter that defines the number of message buffer elements
  48. */
  49. unsigned int ecryptfs_message_buf_len = ECRYPTFS_DEFAULT_MSG_CTX_ELEMS;
  50. module_param(ecryptfs_message_buf_len, uint, 0);
  51. MODULE_PARM_DESC(ecryptfs_message_buf_len,
  52. "Number of message buffer elements");
  53. /**
  54. * Module parameter that defines the maximum guaranteed amount of time to wait
  55. * for a response from ecryptfsd. The actual sleep time will be, more than
  56. * likely, a small amount greater than this specified value, but only less if
  57. * the message successfully arrives.
  58. */
  59. signed long ecryptfs_message_wait_timeout = ECRYPTFS_MAX_MSG_CTX_TTL / HZ;
  60. module_param(ecryptfs_message_wait_timeout, long, 0);
  61. MODULE_PARM_DESC(ecryptfs_message_wait_timeout,
  62. "Maximum number of seconds that an operation will "
  63. "sleep while waiting for a message response from "
  64. "userspace");
  65. /**
  66. * Module parameter that is an estimate of the maximum number of users
  67. * that will be concurrently using eCryptfs. Set this to the right
  68. * value to balance performance and memory use.
  69. */
  70. unsigned int ecryptfs_number_of_users = ECRYPTFS_DEFAULT_NUM_USERS;
  71. module_param(ecryptfs_number_of_users, uint, 0);
  72. MODULE_PARM_DESC(ecryptfs_number_of_users, "An estimate of the number of "
  73. "concurrent users of eCryptfs");
  74. void __ecryptfs_printk(const char *fmt, ...)
  75. {
  76. va_list args;
  77. va_start(args, fmt);
  78. if (fmt[1] == '7') { /* KERN_DEBUG */
  79. if (ecryptfs_verbosity >= 1)
  80. vprintk(fmt, args);
  81. } else
  82. vprintk(fmt, args);
  83. va_end(args);
  84. }
  85. /**
  86. * ecryptfs_init_persistent_file
  87. * @ecryptfs_dentry: Fully initialized eCryptfs dentry object, with
  88. * the lower dentry and the lower mount set
  89. *
  90. * eCryptfs only ever keeps a single open file for every lower
  91. * inode. All I/O operations to the lower inode occur through that
  92. * file. When the first eCryptfs dentry that interposes with the first
  93. * lower dentry for that inode is created, this function creates the
  94. * persistent file struct and associates it with the eCryptfs
  95. * inode. When the eCryptfs inode is destroyed, the file is closed.
  96. *
  97. * The persistent file will be opened with read/write permissions, if
  98. * possible. Otherwise, it is opened read-only.
  99. *
  100. * This function does nothing if a lower persistent file is already
  101. * associated with the eCryptfs inode.
  102. *
  103. * Returns zero on success; non-zero otherwise
  104. */
  105. int ecryptfs_init_persistent_file(struct dentry *ecryptfs_dentry)
  106. {
  107. const struct cred *cred = current_cred();
  108. struct ecryptfs_inode_info *inode_info =
  109. ecryptfs_inode_to_private(ecryptfs_dentry->d_inode);
  110. int rc = 0;
  111. mutex_lock(&inode_info->lower_file_mutex);
  112. if (!inode_info->lower_file) {
  113. struct dentry *lower_dentry;
  114. struct vfsmount *lower_mnt =
  115. ecryptfs_dentry_to_lower_mnt(ecryptfs_dentry);
  116. lower_dentry = ecryptfs_dentry_to_lower(ecryptfs_dentry);
  117. rc = ecryptfs_privileged_open(&inode_info->lower_file,
  118. lower_dentry, lower_mnt, cred);
  119. if (rc || IS_ERR(inode_info->lower_file)) {
  120. printk(KERN_ERR "Error opening lower persistent file "
  121. "for lower_dentry [0x%p] and lower_mnt [0x%p]; "
  122. "rc = [%d]\n", lower_dentry, lower_mnt, rc);
  123. rc = PTR_ERR(inode_info->lower_file);
  124. inode_info->lower_file = NULL;
  125. }
  126. }
  127. mutex_unlock(&inode_info->lower_file_mutex);
  128. return rc;
  129. }
  130. /**
  131. * ecryptfs_interpose
  132. * @lower_dentry: Existing dentry in the lower filesystem
  133. * @dentry: ecryptfs' dentry
  134. * @sb: ecryptfs's super_block
  135. * @flags: flags to govern behavior of interpose procedure
  136. *
  137. * Interposes upper and lower dentries.
  138. *
  139. * Returns zero on success; non-zero otherwise
  140. */
  141. int ecryptfs_interpose(struct dentry *lower_dentry, struct dentry *dentry,
  142. struct super_block *sb, u32 flags)
  143. {
  144. struct inode *lower_inode;
  145. struct inode *inode;
  146. int rc = 0;
  147. lower_inode = lower_dentry->d_inode;
  148. if (lower_inode->i_sb != ecryptfs_superblock_to_lower(sb)) {
  149. rc = -EXDEV;
  150. goto out;
  151. }
  152. if (!igrab(lower_inode)) {
  153. rc = -ESTALE;
  154. goto out;
  155. }
  156. inode = iget5_locked(sb, (unsigned long)lower_inode,
  157. ecryptfs_inode_test, ecryptfs_inode_set,
  158. lower_inode);
  159. if (!inode) {
  160. rc = -EACCES;
  161. iput(lower_inode);
  162. goto out;
  163. }
  164. if (inode->i_state & I_NEW)
  165. unlock_new_inode(inode);
  166. else
  167. iput(lower_inode);
  168. if (S_ISLNK(lower_inode->i_mode))
  169. inode->i_op = &ecryptfs_symlink_iops;
  170. else if (S_ISDIR(lower_inode->i_mode))
  171. inode->i_op = &ecryptfs_dir_iops;
  172. if (S_ISDIR(lower_inode->i_mode))
  173. inode->i_fop = &ecryptfs_dir_fops;
  174. if (special_file(lower_inode->i_mode))
  175. init_special_inode(inode, lower_inode->i_mode,
  176. lower_inode->i_rdev);
  177. dentry->d_op = &ecryptfs_dops;
  178. if (flags & ECRYPTFS_INTERPOSE_FLAG_D_ADD)
  179. d_add(dentry, inode);
  180. else
  181. d_instantiate(dentry, inode);
  182. fsstack_copy_attr_all(inode, lower_inode, NULL);
  183. /* This size will be overwritten for real files w/ headers and
  184. * other metadata */
  185. fsstack_copy_inode_size(inode, lower_inode);
  186. out:
  187. return rc;
  188. }
  189. enum { ecryptfs_opt_sig, ecryptfs_opt_ecryptfs_sig,
  190. ecryptfs_opt_cipher, ecryptfs_opt_ecryptfs_cipher,
  191. ecryptfs_opt_ecryptfs_key_bytes,
  192. ecryptfs_opt_passthrough, ecryptfs_opt_xattr_metadata,
  193. ecryptfs_opt_encrypted_view, ecryptfs_opt_fnek_sig,
  194. ecryptfs_opt_fn_cipher, ecryptfs_opt_fn_cipher_key_bytes,
  195. ecryptfs_opt_err };
  196. static const match_table_t tokens = {
  197. {ecryptfs_opt_sig, "sig=%s"},
  198. {ecryptfs_opt_ecryptfs_sig, "ecryptfs_sig=%s"},
  199. {ecryptfs_opt_cipher, "cipher=%s"},
  200. {ecryptfs_opt_ecryptfs_cipher, "ecryptfs_cipher=%s"},
  201. {ecryptfs_opt_ecryptfs_key_bytes, "ecryptfs_key_bytes=%u"},
  202. {ecryptfs_opt_passthrough, "ecryptfs_passthrough"},
  203. {ecryptfs_opt_xattr_metadata, "ecryptfs_xattr_metadata"},
  204. {ecryptfs_opt_encrypted_view, "ecryptfs_encrypted_view"},
  205. {ecryptfs_opt_fnek_sig, "ecryptfs_fnek_sig=%s"},
  206. {ecryptfs_opt_fn_cipher, "ecryptfs_fn_cipher=%s"},
  207. {ecryptfs_opt_fn_cipher_key_bytes, "ecryptfs_fn_key_bytes=%u"},
  208. {ecryptfs_opt_err, NULL}
  209. };
  210. static int ecryptfs_init_global_auth_toks(
  211. struct ecryptfs_mount_crypt_stat *mount_crypt_stat)
  212. {
  213. struct ecryptfs_global_auth_tok *global_auth_tok;
  214. int rc = 0;
  215. list_for_each_entry(global_auth_tok,
  216. &mount_crypt_stat->global_auth_tok_list,
  217. mount_crypt_stat_list) {
  218. rc = ecryptfs_keyring_auth_tok_for_sig(
  219. &global_auth_tok->global_auth_tok_key,
  220. &global_auth_tok->global_auth_tok,
  221. global_auth_tok->sig);
  222. if (rc) {
  223. printk(KERN_ERR "Could not find valid key in user "
  224. "session keyring for sig specified in mount "
  225. "option: [%s]\n", global_auth_tok->sig);
  226. global_auth_tok->flags |= ECRYPTFS_AUTH_TOK_INVALID;
  227. goto out;
  228. } else
  229. global_auth_tok->flags &= ~ECRYPTFS_AUTH_TOK_INVALID;
  230. }
  231. out:
  232. return rc;
  233. }
  234. static void ecryptfs_init_mount_crypt_stat(
  235. struct ecryptfs_mount_crypt_stat *mount_crypt_stat)
  236. {
  237. memset((void *)mount_crypt_stat, 0,
  238. sizeof(struct ecryptfs_mount_crypt_stat));
  239. INIT_LIST_HEAD(&mount_crypt_stat->global_auth_tok_list);
  240. mutex_init(&mount_crypt_stat->global_auth_tok_list_mutex);
  241. mount_crypt_stat->flags |= ECRYPTFS_MOUNT_CRYPT_STAT_INITIALIZED;
  242. }
  243. /**
  244. * ecryptfs_parse_options
  245. * @sb: The ecryptfs super block
  246. * @options: The options pased to the kernel
  247. *
  248. * Parse mount options:
  249. * debug=N - ecryptfs_verbosity level for debug output
  250. * sig=XXX - description(signature) of the key to use
  251. *
  252. * Returns the dentry object of the lower-level (lower/interposed)
  253. * directory; We want to mount our stackable file system on top of
  254. * that lower directory.
  255. *
  256. * The signature of the key to use must be the description of a key
  257. * already in the keyring. Mounting will fail if the key can not be
  258. * found.
  259. *
  260. * Returns zero on success; non-zero on error
  261. */
  262. static int ecryptfs_parse_options(struct super_block *sb, char *options)
  263. {
  264. char *p;
  265. int rc = 0;
  266. int sig_set = 0;
  267. int cipher_name_set = 0;
  268. int fn_cipher_name_set = 0;
  269. int cipher_key_bytes;
  270. int cipher_key_bytes_set = 0;
  271. int fn_cipher_key_bytes;
  272. int fn_cipher_key_bytes_set = 0;
  273. struct ecryptfs_mount_crypt_stat *mount_crypt_stat =
  274. &ecryptfs_superblock_to_private(sb)->mount_crypt_stat;
  275. substring_t args[MAX_OPT_ARGS];
  276. int token;
  277. char *sig_src;
  278. char *cipher_name_dst;
  279. char *cipher_name_src;
  280. char *fn_cipher_name_dst;
  281. char *fn_cipher_name_src;
  282. char *fnek_dst;
  283. char *fnek_src;
  284. char *cipher_key_bytes_src;
  285. char *fn_cipher_key_bytes_src;
  286. if (!options) {
  287. rc = -EINVAL;
  288. goto out;
  289. }
  290. ecryptfs_init_mount_crypt_stat(mount_crypt_stat);
  291. while ((p = strsep(&options, ",")) != NULL) {
  292. if (!*p)
  293. continue;
  294. token = match_token(p, tokens, args);
  295. switch (token) {
  296. case ecryptfs_opt_sig:
  297. case ecryptfs_opt_ecryptfs_sig:
  298. sig_src = args[0].from;
  299. rc = ecryptfs_add_global_auth_tok(mount_crypt_stat,
  300. sig_src, 0);
  301. if (rc) {
  302. printk(KERN_ERR "Error attempting to register "
  303. "global sig; rc = [%d]\n", rc);
  304. goto out;
  305. }
  306. sig_set = 1;
  307. break;
  308. case ecryptfs_opt_cipher:
  309. case ecryptfs_opt_ecryptfs_cipher:
  310. cipher_name_src = args[0].from;
  311. cipher_name_dst =
  312. mount_crypt_stat->
  313. global_default_cipher_name;
  314. strncpy(cipher_name_dst, cipher_name_src,
  315. ECRYPTFS_MAX_CIPHER_NAME_SIZE);
  316. cipher_name_dst[ECRYPTFS_MAX_CIPHER_NAME_SIZE] = '\0';
  317. cipher_name_set = 1;
  318. break;
  319. case ecryptfs_opt_ecryptfs_key_bytes:
  320. cipher_key_bytes_src = args[0].from;
  321. cipher_key_bytes =
  322. (int)simple_strtol(cipher_key_bytes_src,
  323. &cipher_key_bytes_src, 0);
  324. mount_crypt_stat->global_default_cipher_key_size =
  325. cipher_key_bytes;
  326. cipher_key_bytes_set = 1;
  327. break;
  328. case ecryptfs_opt_passthrough:
  329. mount_crypt_stat->flags |=
  330. ECRYPTFS_PLAINTEXT_PASSTHROUGH_ENABLED;
  331. break;
  332. case ecryptfs_opt_xattr_metadata:
  333. mount_crypt_stat->flags |=
  334. ECRYPTFS_XATTR_METADATA_ENABLED;
  335. break;
  336. case ecryptfs_opt_encrypted_view:
  337. mount_crypt_stat->flags |=
  338. ECRYPTFS_XATTR_METADATA_ENABLED;
  339. mount_crypt_stat->flags |=
  340. ECRYPTFS_ENCRYPTED_VIEW_ENABLED;
  341. break;
  342. case ecryptfs_opt_fnek_sig:
  343. fnek_src = args[0].from;
  344. fnek_dst =
  345. mount_crypt_stat->global_default_fnek_sig;
  346. strncpy(fnek_dst, fnek_src, ECRYPTFS_SIG_SIZE_HEX);
  347. mount_crypt_stat->global_default_fnek_sig[
  348. ECRYPTFS_SIG_SIZE_HEX] = '\0';
  349. rc = ecryptfs_add_global_auth_tok(
  350. mount_crypt_stat,
  351. mount_crypt_stat->global_default_fnek_sig,
  352. ECRYPTFS_AUTH_TOK_FNEK);
  353. if (rc) {
  354. printk(KERN_ERR "Error attempting to register "
  355. "global fnek sig [%s]; rc = [%d]\n",
  356. mount_crypt_stat->global_default_fnek_sig,
  357. rc);
  358. goto out;
  359. }
  360. mount_crypt_stat->flags |=
  361. (ECRYPTFS_GLOBAL_ENCRYPT_FILENAMES
  362. | ECRYPTFS_GLOBAL_ENCFN_USE_MOUNT_FNEK);
  363. break;
  364. case ecryptfs_opt_fn_cipher:
  365. fn_cipher_name_src = args[0].from;
  366. fn_cipher_name_dst =
  367. mount_crypt_stat->global_default_fn_cipher_name;
  368. strncpy(fn_cipher_name_dst, fn_cipher_name_src,
  369. ECRYPTFS_MAX_CIPHER_NAME_SIZE);
  370. mount_crypt_stat->global_default_fn_cipher_name[
  371. ECRYPTFS_MAX_CIPHER_NAME_SIZE] = '\0';
  372. fn_cipher_name_set = 1;
  373. break;
  374. case ecryptfs_opt_fn_cipher_key_bytes:
  375. fn_cipher_key_bytes_src = args[0].from;
  376. fn_cipher_key_bytes =
  377. (int)simple_strtol(fn_cipher_key_bytes_src,
  378. &fn_cipher_key_bytes_src, 0);
  379. mount_crypt_stat->global_default_fn_cipher_key_bytes =
  380. fn_cipher_key_bytes;
  381. fn_cipher_key_bytes_set = 1;
  382. break;
  383. case ecryptfs_opt_err:
  384. default:
  385. printk(KERN_WARNING
  386. "%s: eCryptfs: unrecognized option [%s]\n",
  387. __func__, p);
  388. }
  389. }
  390. if (!sig_set) {
  391. rc = -EINVAL;
  392. ecryptfs_printk(KERN_ERR, "You must supply at least one valid "
  393. "auth tok signature as a mount "
  394. "parameter; see the eCryptfs README\n");
  395. goto out;
  396. }
  397. if (!cipher_name_set) {
  398. int cipher_name_len = strlen(ECRYPTFS_DEFAULT_CIPHER);
  399. BUG_ON(cipher_name_len >= ECRYPTFS_MAX_CIPHER_NAME_SIZE);
  400. strcpy(mount_crypt_stat->global_default_cipher_name,
  401. ECRYPTFS_DEFAULT_CIPHER);
  402. }
  403. if ((mount_crypt_stat->flags & ECRYPTFS_GLOBAL_ENCRYPT_FILENAMES)
  404. && !fn_cipher_name_set)
  405. strcpy(mount_crypt_stat->global_default_fn_cipher_name,
  406. mount_crypt_stat->global_default_cipher_name);
  407. if (!cipher_key_bytes_set)
  408. mount_crypt_stat->global_default_cipher_key_size = 0;
  409. if ((mount_crypt_stat->flags & ECRYPTFS_GLOBAL_ENCRYPT_FILENAMES)
  410. && !fn_cipher_key_bytes_set)
  411. mount_crypt_stat->global_default_fn_cipher_key_bytes =
  412. mount_crypt_stat->global_default_cipher_key_size;
  413. mutex_lock(&key_tfm_list_mutex);
  414. if (!ecryptfs_tfm_exists(mount_crypt_stat->global_default_cipher_name,
  415. NULL)) {
  416. rc = ecryptfs_add_new_key_tfm(
  417. NULL, mount_crypt_stat->global_default_cipher_name,
  418. mount_crypt_stat->global_default_cipher_key_size);
  419. if (rc) {
  420. printk(KERN_ERR "Error attempting to initialize "
  421. "cipher with name = [%s] and key size = [%td]; "
  422. "rc = [%d]\n",
  423. mount_crypt_stat->global_default_cipher_name,
  424. mount_crypt_stat->global_default_cipher_key_size,
  425. rc);
  426. rc = -EINVAL;
  427. mutex_unlock(&key_tfm_list_mutex);
  428. goto out;
  429. }
  430. }
  431. if ((mount_crypt_stat->flags & ECRYPTFS_GLOBAL_ENCRYPT_FILENAMES)
  432. && !ecryptfs_tfm_exists(
  433. mount_crypt_stat->global_default_fn_cipher_name, NULL)) {
  434. rc = ecryptfs_add_new_key_tfm(
  435. NULL, mount_crypt_stat->global_default_fn_cipher_name,
  436. mount_crypt_stat->global_default_fn_cipher_key_bytes);
  437. if (rc) {
  438. printk(KERN_ERR "Error attempting to initialize "
  439. "cipher with name = [%s] and key size = [%td]; "
  440. "rc = [%d]\n",
  441. mount_crypt_stat->global_default_fn_cipher_name,
  442. mount_crypt_stat->global_default_fn_cipher_key_bytes,
  443. rc);
  444. rc = -EINVAL;
  445. mutex_unlock(&key_tfm_list_mutex);
  446. goto out;
  447. }
  448. }
  449. mutex_unlock(&key_tfm_list_mutex);
  450. rc = ecryptfs_init_global_auth_toks(mount_crypt_stat);
  451. if (rc)
  452. printk(KERN_WARNING "One or more global auth toks could not "
  453. "properly register; rc = [%d]\n", rc);
  454. out:
  455. return rc;
  456. }
  457. struct kmem_cache *ecryptfs_sb_info_cache;
  458. /**
  459. * ecryptfs_fill_super
  460. * @sb: The ecryptfs super block
  461. * @raw_data: The options passed to mount
  462. * @silent: Not used but required by function prototype
  463. *
  464. * Sets up what we can of the sb, rest is done in ecryptfs_read_super
  465. *
  466. * Returns zero on success; non-zero otherwise
  467. */
  468. static int
  469. ecryptfs_fill_super(struct super_block *sb, void *raw_data, int silent)
  470. {
  471. int rc = 0;
  472. /* Released in ecryptfs_put_super() */
  473. ecryptfs_set_superblock_private(sb,
  474. kmem_cache_zalloc(ecryptfs_sb_info_cache,
  475. GFP_KERNEL));
  476. if (!ecryptfs_superblock_to_private(sb)) {
  477. ecryptfs_printk(KERN_WARNING, "Out of memory\n");
  478. rc = -ENOMEM;
  479. goto out;
  480. }
  481. sb->s_op = &ecryptfs_sops;
  482. /* Released through deactivate_super(sb) from get_sb_nodev */
  483. sb->s_root = d_alloc(NULL, &(const struct qstr) {
  484. .hash = 0,.name = "/",.len = 1});
  485. if (!sb->s_root) {
  486. ecryptfs_printk(KERN_ERR, "d_alloc failed\n");
  487. rc = -ENOMEM;
  488. goto out;
  489. }
  490. sb->s_root->d_op = &ecryptfs_dops;
  491. sb->s_root->d_sb = sb;
  492. sb->s_root->d_parent = sb->s_root;
  493. /* Released in d_release when dput(sb->s_root) is called */
  494. /* through deactivate_super(sb) from get_sb_nodev() */
  495. ecryptfs_set_dentry_private(sb->s_root,
  496. kmem_cache_zalloc(ecryptfs_dentry_info_cache,
  497. GFP_KERNEL));
  498. if (!ecryptfs_dentry_to_private(sb->s_root)) {
  499. ecryptfs_printk(KERN_ERR,
  500. "dentry_info_cache alloc failed\n");
  501. rc = -ENOMEM;
  502. goto out;
  503. }
  504. rc = 0;
  505. out:
  506. /* Should be able to rely on deactivate_super called from
  507. * get_sb_nodev */
  508. return rc;
  509. }
  510. /**
  511. * ecryptfs_read_super
  512. * @sb: The ecryptfs super block
  513. * @dev_name: The path to mount over
  514. *
  515. * Read the super block of the lower filesystem, and use
  516. * ecryptfs_interpose to create our initial inode and super block
  517. * struct.
  518. */
  519. static int ecryptfs_read_super(struct super_block *sb, const char *dev_name)
  520. {
  521. struct path path;
  522. int rc;
  523. rc = kern_path(dev_name, LOOKUP_FOLLOW | LOOKUP_DIRECTORY, &path);
  524. if (rc) {
  525. ecryptfs_printk(KERN_WARNING, "path_lookup() failed\n");
  526. goto out;
  527. }
  528. ecryptfs_set_superblock_lower(sb, path.dentry->d_sb);
  529. sb->s_maxbytes = path.dentry->d_sb->s_maxbytes;
  530. sb->s_blocksize = path.dentry->d_sb->s_blocksize;
  531. ecryptfs_set_dentry_lower(sb->s_root, path.dentry);
  532. ecryptfs_set_dentry_lower_mnt(sb->s_root, path.mnt);
  533. rc = ecryptfs_interpose(path.dentry, sb->s_root, sb, 0);
  534. if (rc)
  535. goto out_free;
  536. rc = 0;
  537. goto out;
  538. out_free:
  539. path_put(&path);
  540. out:
  541. return rc;
  542. }
  543. /**
  544. * ecryptfs_get_sb
  545. * @fs_type
  546. * @flags
  547. * @dev_name: The path to mount over
  548. * @raw_data: The options passed into the kernel
  549. *
  550. * The whole ecryptfs_get_sb process is broken into 4 functions:
  551. * ecryptfs_parse_options(): handle options passed to ecryptfs, if any
  552. * ecryptfs_fill_super(): used by get_sb_nodev, fills out the super_block
  553. * with as much information as it can before needing
  554. * the lower filesystem.
  555. * ecryptfs_read_super(): this accesses the lower filesystem and uses
  556. * ecryptfs_interpolate to perform most of the linking
  557. * ecryptfs_interpolate(): links the lower filesystem into ecryptfs
  558. */
  559. static int ecryptfs_get_sb(struct file_system_type *fs_type, int flags,
  560. const char *dev_name, void *raw_data,
  561. struct vfsmount *mnt)
  562. {
  563. int rc;
  564. struct super_block *sb;
  565. rc = get_sb_nodev(fs_type, flags, raw_data, ecryptfs_fill_super, mnt);
  566. if (rc < 0) {
  567. printk(KERN_ERR "Getting sb failed; rc = [%d]\n", rc);
  568. goto out;
  569. }
  570. sb = mnt->mnt_sb;
  571. rc = ecryptfs_parse_options(sb, raw_data);
  572. if (rc) {
  573. printk(KERN_ERR "Error parsing options; rc = [%d]\n", rc);
  574. goto out_abort;
  575. }
  576. rc = ecryptfs_read_super(sb, dev_name);
  577. if (rc) {
  578. printk(KERN_ERR "Reading sb failed; rc = [%d]\n", rc);
  579. goto out_abort;
  580. }
  581. goto out;
  582. out_abort:
  583. dput(sb->s_root);
  584. up_write(&sb->s_umount);
  585. deactivate_super(sb);
  586. out:
  587. return rc;
  588. }
  589. /**
  590. * ecryptfs_kill_block_super
  591. * @sb: The ecryptfs super block
  592. *
  593. * Used to bring the superblock down and free the private data.
  594. * Private data is free'd in ecryptfs_put_super()
  595. */
  596. static void ecryptfs_kill_block_super(struct super_block *sb)
  597. {
  598. generic_shutdown_super(sb);
  599. }
  600. static struct file_system_type ecryptfs_fs_type = {
  601. .owner = THIS_MODULE,
  602. .name = "ecryptfs",
  603. .get_sb = ecryptfs_get_sb,
  604. .kill_sb = ecryptfs_kill_block_super,
  605. .fs_flags = 0
  606. };
  607. /**
  608. * inode_info_init_once
  609. *
  610. * Initializes the ecryptfs_inode_info_cache when it is created
  611. */
  612. static void
  613. inode_info_init_once(void *vptr)
  614. {
  615. struct ecryptfs_inode_info *ei = (struct ecryptfs_inode_info *)vptr;
  616. inode_init_once(&ei->vfs_inode);
  617. }
  618. static struct ecryptfs_cache_info {
  619. struct kmem_cache **cache;
  620. const char *name;
  621. size_t size;
  622. void (*ctor)(void *obj);
  623. } ecryptfs_cache_infos[] = {
  624. {
  625. .cache = &ecryptfs_auth_tok_list_item_cache,
  626. .name = "ecryptfs_auth_tok_list_item",
  627. .size = sizeof(struct ecryptfs_auth_tok_list_item),
  628. },
  629. {
  630. .cache = &ecryptfs_file_info_cache,
  631. .name = "ecryptfs_file_cache",
  632. .size = sizeof(struct ecryptfs_file_info),
  633. },
  634. {
  635. .cache = &ecryptfs_dentry_info_cache,
  636. .name = "ecryptfs_dentry_info_cache",
  637. .size = sizeof(struct ecryptfs_dentry_info),
  638. },
  639. {
  640. .cache = &ecryptfs_inode_info_cache,
  641. .name = "ecryptfs_inode_cache",
  642. .size = sizeof(struct ecryptfs_inode_info),
  643. .ctor = inode_info_init_once,
  644. },
  645. {
  646. .cache = &ecryptfs_sb_info_cache,
  647. .name = "ecryptfs_sb_cache",
  648. .size = sizeof(struct ecryptfs_sb_info),
  649. },
  650. {
  651. .cache = &ecryptfs_header_cache_1,
  652. .name = "ecryptfs_headers_1",
  653. .size = PAGE_CACHE_SIZE,
  654. },
  655. {
  656. .cache = &ecryptfs_header_cache_2,
  657. .name = "ecryptfs_headers_2",
  658. .size = PAGE_CACHE_SIZE,
  659. },
  660. {
  661. .cache = &ecryptfs_xattr_cache,
  662. .name = "ecryptfs_xattr_cache",
  663. .size = PAGE_CACHE_SIZE,
  664. },
  665. {
  666. .cache = &ecryptfs_key_record_cache,
  667. .name = "ecryptfs_key_record_cache",
  668. .size = sizeof(struct ecryptfs_key_record),
  669. },
  670. {
  671. .cache = &ecryptfs_key_sig_cache,
  672. .name = "ecryptfs_key_sig_cache",
  673. .size = sizeof(struct ecryptfs_key_sig),
  674. },
  675. {
  676. .cache = &ecryptfs_global_auth_tok_cache,
  677. .name = "ecryptfs_global_auth_tok_cache",
  678. .size = sizeof(struct ecryptfs_global_auth_tok),
  679. },
  680. {
  681. .cache = &ecryptfs_key_tfm_cache,
  682. .name = "ecryptfs_key_tfm_cache",
  683. .size = sizeof(struct ecryptfs_key_tfm),
  684. },
  685. {
  686. .cache = &ecryptfs_open_req_cache,
  687. .name = "ecryptfs_open_req_cache",
  688. .size = sizeof(struct ecryptfs_open_req),
  689. },
  690. };
  691. static void ecryptfs_free_kmem_caches(void)
  692. {
  693. int i;
  694. for (i = 0; i < ARRAY_SIZE(ecryptfs_cache_infos); i++) {
  695. struct ecryptfs_cache_info *info;
  696. info = &ecryptfs_cache_infos[i];
  697. if (*(info->cache))
  698. kmem_cache_destroy(*(info->cache));
  699. }
  700. }
  701. /**
  702. * ecryptfs_init_kmem_caches
  703. *
  704. * Returns zero on success; non-zero otherwise
  705. */
  706. static int ecryptfs_init_kmem_caches(void)
  707. {
  708. int i;
  709. for (i = 0; i < ARRAY_SIZE(ecryptfs_cache_infos); i++) {
  710. struct ecryptfs_cache_info *info;
  711. info = &ecryptfs_cache_infos[i];
  712. *(info->cache) = kmem_cache_create(info->name, info->size,
  713. 0, SLAB_HWCACHE_ALIGN, info->ctor);
  714. if (!*(info->cache)) {
  715. ecryptfs_free_kmem_caches();
  716. ecryptfs_printk(KERN_WARNING, "%s: "
  717. "kmem_cache_create failed\n",
  718. info->name);
  719. return -ENOMEM;
  720. }
  721. }
  722. return 0;
  723. }
  724. static struct kobject *ecryptfs_kobj;
  725. static ssize_t version_show(struct kobject *kobj,
  726. struct kobj_attribute *attr, char *buff)
  727. {
  728. return snprintf(buff, PAGE_SIZE, "%d\n", ECRYPTFS_VERSIONING_MASK);
  729. }
  730. static struct kobj_attribute version_attr = __ATTR_RO(version);
  731. static struct attribute *attributes[] = {
  732. &version_attr.attr,
  733. NULL,
  734. };
  735. static struct attribute_group attr_group = {
  736. .attrs = attributes,
  737. };
  738. static int do_sysfs_registration(void)
  739. {
  740. int rc;
  741. ecryptfs_kobj = kobject_create_and_add("ecryptfs", fs_kobj);
  742. if (!ecryptfs_kobj) {
  743. printk(KERN_ERR "Unable to create ecryptfs kset\n");
  744. rc = -ENOMEM;
  745. goto out;
  746. }
  747. rc = sysfs_create_group(ecryptfs_kobj, &attr_group);
  748. if (rc) {
  749. printk(KERN_ERR
  750. "Unable to create ecryptfs version attributes\n");
  751. kobject_put(ecryptfs_kobj);
  752. }
  753. out:
  754. return rc;
  755. }
  756. static void do_sysfs_unregistration(void)
  757. {
  758. sysfs_remove_group(ecryptfs_kobj, &attr_group);
  759. kobject_put(ecryptfs_kobj);
  760. }
  761. static int __init ecryptfs_init(void)
  762. {
  763. int rc;
  764. if (ECRYPTFS_DEFAULT_EXTENT_SIZE > PAGE_CACHE_SIZE) {
  765. rc = -EINVAL;
  766. ecryptfs_printk(KERN_ERR, "The eCryptfs extent size is "
  767. "larger than the host's page size, and so "
  768. "eCryptfs cannot run on this system. The "
  769. "default eCryptfs extent size is [%d] bytes; "
  770. "the page size is [%d] bytes.\n",
  771. ECRYPTFS_DEFAULT_EXTENT_SIZE, PAGE_CACHE_SIZE);
  772. goto out;
  773. }
  774. rc = ecryptfs_init_kmem_caches();
  775. if (rc) {
  776. printk(KERN_ERR
  777. "Failed to allocate one or more kmem_cache objects\n");
  778. goto out;
  779. }
  780. rc = register_filesystem(&ecryptfs_fs_type);
  781. if (rc) {
  782. printk(KERN_ERR "Failed to register filesystem\n");
  783. goto out_free_kmem_caches;
  784. }
  785. rc = do_sysfs_registration();
  786. if (rc) {
  787. printk(KERN_ERR "sysfs registration failed\n");
  788. goto out_unregister_filesystem;
  789. }
  790. rc = ecryptfs_init_kthread();
  791. if (rc) {
  792. printk(KERN_ERR "%s: kthread initialization failed; "
  793. "rc = [%d]\n", __func__, rc);
  794. goto out_do_sysfs_unregistration;
  795. }
  796. rc = ecryptfs_init_messaging();
  797. if (rc) {
  798. printk(KERN_ERR "Failure occured while attempting to "
  799. "initialize the communications channel to "
  800. "ecryptfsd\n");
  801. goto out_destroy_kthread;
  802. }
  803. rc = ecryptfs_init_crypto();
  804. if (rc) {
  805. printk(KERN_ERR "Failure whilst attempting to init crypto; "
  806. "rc = [%d]\n", rc);
  807. goto out_release_messaging;
  808. }
  809. if (ecryptfs_verbosity > 0)
  810. printk(KERN_CRIT "eCryptfs verbosity set to %d. Secret values "
  811. "will be written to the syslog!\n", ecryptfs_verbosity);
  812. goto out;
  813. out_release_messaging:
  814. ecryptfs_release_messaging();
  815. out_destroy_kthread:
  816. ecryptfs_destroy_kthread();
  817. out_do_sysfs_unregistration:
  818. do_sysfs_unregistration();
  819. out_unregister_filesystem:
  820. unregister_filesystem(&ecryptfs_fs_type);
  821. out_free_kmem_caches:
  822. ecryptfs_free_kmem_caches();
  823. out:
  824. return rc;
  825. }
  826. static void __exit ecryptfs_exit(void)
  827. {
  828. int rc;
  829. rc = ecryptfs_destroy_crypto();
  830. if (rc)
  831. printk(KERN_ERR "Failure whilst attempting to destroy crypto; "
  832. "rc = [%d]\n", rc);
  833. ecryptfs_release_messaging();
  834. ecryptfs_destroy_kthread();
  835. do_sysfs_unregistration();
  836. unregister_filesystem(&ecryptfs_fs_type);
  837. ecryptfs_free_kmem_caches();
  838. }
  839. MODULE_AUTHOR("Michael A. Halcrow <mhalcrow@us.ibm.com>");
  840. MODULE_DESCRIPTION("eCryptfs");
  841. MODULE_LICENSE("GPL");
  842. module_init(ecryptfs_init)
  843. module_exit(ecryptfs_exit)