crypto.c 12 KB

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  1. #include <linux/ceph/ceph_debug.h>
  2. #include <linux/err.h>
  3. #include <linux/scatterlist.h>
  4. #include <linux/slab.h>
  5. #include <crypto/hash.h>
  6. #include <linux/key-type.h>
  7. #include <keys/ceph-type.h>
  8. #include <linux/ceph/decode.h>
  9. #include "crypto.h"
  10. int ceph_crypto_key_clone(struct ceph_crypto_key *dst,
  11. const struct ceph_crypto_key *src)
  12. {
  13. memcpy(dst, src, sizeof(struct ceph_crypto_key));
  14. dst->key = kmemdup(src->key, src->len, GFP_NOFS);
  15. if (!dst->key)
  16. return -ENOMEM;
  17. return 0;
  18. }
  19. int ceph_crypto_key_encode(struct ceph_crypto_key *key, void **p, void *end)
  20. {
  21. if (*p + sizeof(u16) + sizeof(key->created) +
  22. sizeof(u16) + key->len > end)
  23. return -ERANGE;
  24. ceph_encode_16(p, key->type);
  25. ceph_encode_copy(p, &key->created, sizeof(key->created));
  26. ceph_encode_16(p, key->len);
  27. ceph_encode_copy(p, key->key, key->len);
  28. return 0;
  29. }
  30. int ceph_crypto_key_decode(struct ceph_crypto_key *key, void **p, void *end)
  31. {
  32. ceph_decode_need(p, end, 2*sizeof(u16) + sizeof(key->created), bad);
  33. key->type = ceph_decode_16(p);
  34. ceph_decode_copy(p, &key->created, sizeof(key->created));
  35. key->len = ceph_decode_16(p);
  36. ceph_decode_need(p, end, key->len, bad);
  37. key->key = kmalloc(key->len, GFP_NOFS);
  38. if (!key->key)
  39. return -ENOMEM;
  40. ceph_decode_copy(p, key->key, key->len);
  41. return 0;
  42. bad:
  43. dout("failed to decode crypto key\n");
  44. return -EINVAL;
  45. }
  46. int ceph_crypto_key_unarmor(struct ceph_crypto_key *key, const char *inkey)
  47. {
  48. int inlen = strlen(inkey);
  49. int blen = inlen * 3 / 4;
  50. void *buf, *p;
  51. int ret;
  52. dout("crypto_key_unarmor %s\n", inkey);
  53. buf = kmalloc(blen, GFP_NOFS);
  54. if (!buf)
  55. return -ENOMEM;
  56. blen = ceph_unarmor(buf, inkey, inkey+inlen);
  57. if (blen < 0) {
  58. kfree(buf);
  59. return blen;
  60. }
  61. p = buf;
  62. ret = ceph_crypto_key_decode(key, &p, p + blen);
  63. kfree(buf);
  64. if (ret)
  65. return ret;
  66. dout("crypto_key_unarmor key %p type %d len %d\n", key,
  67. key->type, key->len);
  68. return 0;
  69. }
  70. #define AES_KEY_SIZE 16
  71. static struct crypto_blkcipher *ceph_crypto_alloc_cipher(void)
  72. {
  73. return crypto_alloc_blkcipher("cbc(aes)", 0, CRYPTO_ALG_ASYNC);
  74. }
  75. static const u8 *aes_iv = (u8 *)CEPH_AES_IV;
  76. static int ceph_aes_encrypt(const void *key, int key_len,
  77. void *dst, size_t *dst_len,
  78. const void *src, size_t src_len)
  79. {
  80. struct scatterlist sg_in[2], sg_out[1];
  81. struct crypto_blkcipher *tfm = ceph_crypto_alloc_cipher();
  82. struct blkcipher_desc desc = { .tfm = tfm, .flags = 0 };
  83. int ret;
  84. void *iv;
  85. int ivsize;
  86. size_t zero_padding = (0x10 - (src_len & 0x0f));
  87. char pad[16];
  88. if (IS_ERR(tfm))
  89. return PTR_ERR(tfm);
  90. memset(pad, zero_padding, zero_padding);
  91. *dst_len = src_len + zero_padding;
  92. crypto_blkcipher_setkey((void *)tfm, key, key_len);
  93. sg_init_table(sg_in, 2);
  94. sg_set_buf(&sg_in[0], src, src_len);
  95. sg_set_buf(&sg_in[1], pad, zero_padding);
  96. sg_init_table(sg_out, 1);
  97. sg_set_buf(sg_out, dst, *dst_len);
  98. iv = crypto_blkcipher_crt(tfm)->iv;
  99. ivsize = crypto_blkcipher_ivsize(tfm);
  100. memcpy(iv, aes_iv, ivsize);
  101. /*
  102. print_hex_dump(KERN_ERR, "enc key: ", DUMP_PREFIX_NONE, 16, 1,
  103. key, key_len, 1);
  104. print_hex_dump(KERN_ERR, "enc src: ", DUMP_PREFIX_NONE, 16, 1,
  105. src, src_len, 1);
  106. print_hex_dump(KERN_ERR, "enc pad: ", DUMP_PREFIX_NONE, 16, 1,
  107. pad, zero_padding, 1);
  108. */
  109. ret = crypto_blkcipher_encrypt(&desc, sg_out, sg_in,
  110. src_len + zero_padding);
  111. crypto_free_blkcipher(tfm);
  112. if (ret < 0)
  113. pr_err("ceph_aes_crypt failed %d\n", ret);
  114. /*
  115. print_hex_dump(KERN_ERR, "enc out: ", DUMP_PREFIX_NONE, 16, 1,
  116. dst, *dst_len, 1);
  117. */
  118. return 0;
  119. }
  120. static int ceph_aes_encrypt2(const void *key, int key_len, void *dst,
  121. size_t *dst_len,
  122. const void *src1, size_t src1_len,
  123. const void *src2, size_t src2_len)
  124. {
  125. struct scatterlist sg_in[3], sg_out[1];
  126. struct crypto_blkcipher *tfm = ceph_crypto_alloc_cipher();
  127. struct blkcipher_desc desc = { .tfm = tfm, .flags = 0 };
  128. int ret;
  129. void *iv;
  130. int ivsize;
  131. size_t zero_padding = (0x10 - ((src1_len + src2_len) & 0x0f));
  132. char pad[16];
  133. if (IS_ERR(tfm))
  134. return PTR_ERR(tfm);
  135. memset(pad, zero_padding, zero_padding);
  136. *dst_len = src1_len + src2_len + zero_padding;
  137. crypto_blkcipher_setkey((void *)tfm, key, key_len);
  138. sg_init_table(sg_in, 3);
  139. sg_set_buf(&sg_in[0], src1, src1_len);
  140. sg_set_buf(&sg_in[1], src2, src2_len);
  141. sg_set_buf(&sg_in[2], pad, zero_padding);
  142. sg_init_table(sg_out, 1);
  143. sg_set_buf(sg_out, dst, *dst_len);
  144. iv = crypto_blkcipher_crt(tfm)->iv;
  145. ivsize = crypto_blkcipher_ivsize(tfm);
  146. memcpy(iv, aes_iv, ivsize);
  147. /*
  148. print_hex_dump(KERN_ERR, "enc key: ", DUMP_PREFIX_NONE, 16, 1,
  149. key, key_len, 1);
  150. print_hex_dump(KERN_ERR, "enc src1: ", DUMP_PREFIX_NONE, 16, 1,
  151. src1, src1_len, 1);
  152. print_hex_dump(KERN_ERR, "enc src2: ", DUMP_PREFIX_NONE, 16, 1,
  153. src2, src2_len, 1);
  154. print_hex_dump(KERN_ERR, "enc pad: ", DUMP_PREFIX_NONE, 16, 1,
  155. pad, zero_padding, 1);
  156. */
  157. ret = crypto_blkcipher_encrypt(&desc, sg_out, sg_in,
  158. src1_len + src2_len + zero_padding);
  159. crypto_free_blkcipher(tfm);
  160. if (ret < 0)
  161. pr_err("ceph_aes_crypt2 failed %d\n", ret);
  162. /*
  163. print_hex_dump(KERN_ERR, "enc out: ", DUMP_PREFIX_NONE, 16, 1,
  164. dst, *dst_len, 1);
  165. */
  166. return 0;
  167. }
  168. static int ceph_aes_decrypt(const void *key, int key_len,
  169. void *dst, size_t *dst_len,
  170. const void *src, size_t src_len)
  171. {
  172. struct scatterlist sg_in[1], sg_out[2];
  173. struct crypto_blkcipher *tfm = ceph_crypto_alloc_cipher();
  174. struct blkcipher_desc desc = { .tfm = tfm };
  175. char pad[16];
  176. void *iv;
  177. int ivsize;
  178. int ret;
  179. int last_byte;
  180. if (IS_ERR(tfm))
  181. return PTR_ERR(tfm);
  182. crypto_blkcipher_setkey((void *)tfm, key, key_len);
  183. sg_init_table(sg_in, 1);
  184. sg_init_table(sg_out, 2);
  185. sg_set_buf(sg_in, src, src_len);
  186. sg_set_buf(&sg_out[0], dst, *dst_len);
  187. sg_set_buf(&sg_out[1], pad, sizeof(pad));
  188. iv = crypto_blkcipher_crt(tfm)->iv;
  189. ivsize = crypto_blkcipher_ivsize(tfm);
  190. memcpy(iv, aes_iv, ivsize);
  191. /*
  192. print_hex_dump(KERN_ERR, "dec key: ", DUMP_PREFIX_NONE, 16, 1,
  193. key, key_len, 1);
  194. print_hex_dump(KERN_ERR, "dec in: ", DUMP_PREFIX_NONE, 16, 1,
  195. src, src_len, 1);
  196. */
  197. ret = crypto_blkcipher_decrypt(&desc, sg_out, sg_in, src_len);
  198. crypto_free_blkcipher(tfm);
  199. if (ret < 0) {
  200. pr_err("ceph_aes_decrypt failed %d\n", ret);
  201. return ret;
  202. }
  203. if (src_len <= *dst_len)
  204. last_byte = ((char *)dst)[src_len - 1];
  205. else
  206. last_byte = pad[src_len - *dst_len - 1];
  207. if (last_byte <= 16 && src_len >= last_byte) {
  208. *dst_len = src_len - last_byte;
  209. } else {
  210. pr_err("ceph_aes_decrypt got bad padding %d on src len %d\n",
  211. last_byte, (int)src_len);
  212. return -EPERM; /* bad padding */
  213. }
  214. /*
  215. print_hex_dump(KERN_ERR, "dec out: ", DUMP_PREFIX_NONE, 16, 1,
  216. dst, *dst_len, 1);
  217. */
  218. return 0;
  219. }
  220. static int ceph_aes_decrypt2(const void *key, int key_len,
  221. void *dst1, size_t *dst1_len,
  222. void *dst2, size_t *dst2_len,
  223. const void *src, size_t src_len)
  224. {
  225. struct scatterlist sg_in[1], sg_out[3];
  226. struct crypto_blkcipher *tfm = ceph_crypto_alloc_cipher();
  227. struct blkcipher_desc desc = { .tfm = tfm };
  228. char pad[16];
  229. void *iv;
  230. int ivsize;
  231. int ret;
  232. int last_byte;
  233. if (IS_ERR(tfm))
  234. return PTR_ERR(tfm);
  235. sg_init_table(sg_in, 1);
  236. sg_set_buf(sg_in, src, src_len);
  237. sg_init_table(sg_out, 3);
  238. sg_set_buf(&sg_out[0], dst1, *dst1_len);
  239. sg_set_buf(&sg_out[1], dst2, *dst2_len);
  240. sg_set_buf(&sg_out[2], pad, sizeof(pad));
  241. crypto_blkcipher_setkey((void *)tfm, key, key_len);
  242. iv = crypto_blkcipher_crt(tfm)->iv;
  243. ivsize = crypto_blkcipher_ivsize(tfm);
  244. memcpy(iv, aes_iv, ivsize);
  245. /*
  246. print_hex_dump(KERN_ERR, "dec key: ", DUMP_PREFIX_NONE, 16, 1,
  247. key, key_len, 1);
  248. print_hex_dump(KERN_ERR, "dec in: ", DUMP_PREFIX_NONE, 16, 1,
  249. src, src_len, 1);
  250. */
  251. ret = crypto_blkcipher_decrypt(&desc, sg_out, sg_in, src_len);
  252. crypto_free_blkcipher(tfm);
  253. if (ret < 0) {
  254. pr_err("ceph_aes_decrypt failed %d\n", ret);
  255. return ret;
  256. }
  257. if (src_len <= *dst1_len)
  258. last_byte = ((char *)dst1)[src_len - 1];
  259. else if (src_len <= *dst1_len + *dst2_len)
  260. last_byte = ((char *)dst2)[src_len - *dst1_len - 1];
  261. else
  262. last_byte = pad[src_len - *dst1_len - *dst2_len - 1];
  263. if (last_byte <= 16 && src_len >= last_byte) {
  264. src_len -= last_byte;
  265. } else {
  266. pr_err("ceph_aes_decrypt got bad padding %d on src len %d\n",
  267. last_byte, (int)src_len);
  268. return -EPERM; /* bad padding */
  269. }
  270. if (src_len < *dst1_len) {
  271. *dst1_len = src_len;
  272. *dst2_len = 0;
  273. } else {
  274. *dst2_len = src_len - *dst1_len;
  275. }
  276. /*
  277. print_hex_dump(KERN_ERR, "dec out1: ", DUMP_PREFIX_NONE, 16, 1,
  278. dst1, *dst1_len, 1);
  279. print_hex_dump(KERN_ERR, "dec out2: ", DUMP_PREFIX_NONE, 16, 1,
  280. dst2, *dst2_len, 1);
  281. */
  282. return 0;
  283. }
  284. int ceph_decrypt(struct ceph_crypto_key *secret, void *dst, size_t *dst_len,
  285. const void *src, size_t src_len)
  286. {
  287. switch (secret->type) {
  288. case CEPH_CRYPTO_NONE:
  289. if (*dst_len < src_len)
  290. return -ERANGE;
  291. memcpy(dst, src, src_len);
  292. *dst_len = src_len;
  293. return 0;
  294. case CEPH_CRYPTO_AES:
  295. return ceph_aes_decrypt(secret->key, secret->len, dst,
  296. dst_len, src, src_len);
  297. default:
  298. return -EINVAL;
  299. }
  300. }
  301. int ceph_decrypt2(struct ceph_crypto_key *secret,
  302. void *dst1, size_t *dst1_len,
  303. void *dst2, size_t *dst2_len,
  304. const void *src, size_t src_len)
  305. {
  306. size_t t;
  307. switch (secret->type) {
  308. case CEPH_CRYPTO_NONE:
  309. if (*dst1_len + *dst2_len < src_len)
  310. return -ERANGE;
  311. t = min(*dst1_len, src_len);
  312. memcpy(dst1, src, t);
  313. *dst1_len = t;
  314. src += t;
  315. src_len -= t;
  316. if (src_len) {
  317. t = min(*dst2_len, src_len);
  318. memcpy(dst2, src, t);
  319. *dst2_len = t;
  320. }
  321. return 0;
  322. case CEPH_CRYPTO_AES:
  323. return ceph_aes_decrypt2(secret->key, secret->len,
  324. dst1, dst1_len, dst2, dst2_len,
  325. src, src_len);
  326. default:
  327. return -EINVAL;
  328. }
  329. }
  330. int ceph_encrypt(struct ceph_crypto_key *secret, void *dst, size_t *dst_len,
  331. const void *src, size_t src_len)
  332. {
  333. switch (secret->type) {
  334. case CEPH_CRYPTO_NONE:
  335. if (*dst_len < src_len)
  336. return -ERANGE;
  337. memcpy(dst, src, src_len);
  338. *dst_len = src_len;
  339. return 0;
  340. case CEPH_CRYPTO_AES:
  341. return ceph_aes_encrypt(secret->key, secret->len, dst,
  342. dst_len, src, src_len);
  343. default:
  344. return -EINVAL;
  345. }
  346. }
  347. int ceph_encrypt2(struct ceph_crypto_key *secret, void *dst, size_t *dst_len,
  348. const void *src1, size_t src1_len,
  349. const void *src2, size_t src2_len)
  350. {
  351. switch (secret->type) {
  352. case CEPH_CRYPTO_NONE:
  353. if (*dst_len < src1_len + src2_len)
  354. return -ERANGE;
  355. memcpy(dst, src1, src1_len);
  356. memcpy(dst + src1_len, src2, src2_len);
  357. *dst_len = src1_len + src2_len;
  358. return 0;
  359. case CEPH_CRYPTO_AES:
  360. return ceph_aes_encrypt2(secret->key, secret->len, dst, dst_len,
  361. src1, src1_len, src2, src2_len);
  362. default:
  363. return -EINVAL;
  364. }
  365. }
  366. int ceph_key_instantiate(struct key *key, const void *data, size_t datalen)
  367. {
  368. struct ceph_crypto_key *ckey;
  369. int ret;
  370. void *p;
  371. ret = -EINVAL;
  372. if (datalen <= 0 || datalen > 32767 || !data)
  373. goto err;
  374. ret = key_payload_reserve(key, datalen);
  375. if (ret < 0)
  376. goto err;
  377. ret = -ENOMEM;
  378. ckey = kmalloc(sizeof(*ckey), GFP_KERNEL);
  379. if (!ckey)
  380. goto err;
  381. /* TODO ceph_crypto_key_decode should really take const input */
  382. p = (void *)data;
  383. ret = ceph_crypto_key_decode(ckey, &p, (char*)data+datalen);
  384. if (ret < 0)
  385. goto err_ckey;
  386. key->payload.data = ckey;
  387. return 0;
  388. err_ckey:
  389. kfree(ckey);
  390. err:
  391. return ret;
  392. }
  393. int ceph_key_match(const struct key *key, const void *description)
  394. {
  395. return strcmp(key->description, description) == 0;
  396. }
  397. void ceph_key_destroy(struct key *key) {
  398. struct ceph_crypto_key *ckey = key->payload.data;
  399. ceph_crypto_key_destroy(ckey);
  400. }
  401. struct key_type key_type_ceph = {
  402. .name = "ceph",
  403. .instantiate = ceph_key_instantiate,
  404. .match = ceph_key_match,
  405. .destroy = ceph_key_destroy,
  406. };
  407. int ceph_crypto_init(void) {
  408. return register_key_type(&key_type_ceph);
  409. }
  410. void ceph_crypto_shutdown(void) {
  411. unregister_key_type(&key_type_ceph);
  412. }