crypto.c 16 KB

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  1. /*
  2. * Ultra Wide Band
  3. * AES-128 CCM Encryption
  4. *
  5. * Copyright (C) 2007 Intel Corporation
  6. * Inaky Perez-Gonzalez <inaky.perez-gonzalez@intel.com>
  7. *
  8. * This program is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU General Public License version
  10. * 2 as published by the Free Software Foundation.
  11. *
  12. * This program is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. * GNU General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA
  20. * 02110-1301, USA.
  21. *
  22. *
  23. * We don't do any encryption here; we use the Linux Kernel's AES-128
  24. * crypto modules to construct keys and payload blocks in a way
  25. * defined by WUSB1.0[6]. Check the erratas, as typos are are patched
  26. * there.
  27. *
  28. * Thanks a zillion to John Keys for his help and clarifications over
  29. * the designed-by-a-committee text.
  30. *
  31. * So the idea is that there is this basic Pseudo-Random-Function
  32. * defined in WUSB1.0[6.5] which is the core of everything. It works
  33. * by tweaking some blocks, AES crypting them and then xoring
  34. * something else with them (this seems to be called CBC(AES) -- can
  35. * you tell I know jack about crypto?). So we just funnel it into the
  36. * Linux Crypto API.
  37. *
  38. * We leave a crypto test module so we can verify that vectors match,
  39. * every now and then.
  40. *
  41. * Block size: 16 bytes -- AES seems to do things in 'block sizes'. I
  42. * am learning a lot...
  43. *
  44. * Conveniently, some data structures that need to be
  45. * funneled through AES are...16 bytes in size!
  46. */
  47. #include <crypto/skcipher.h>
  48. #include <linux/crypto.h>
  49. #include <linux/module.h>
  50. #include <linux/err.h>
  51. #include <linux/uwb.h>
  52. #include <linux/slab.h>
  53. #include <linux/usb/wusb.h>
  54. #include <linux/scatterlist.h>
  55. static int debug_crypto_verify;
  56. module_param(debug_crypto_verify, int, 0);
  57. MODULE_PARM_DESC(debug_crypto_verify, "verify the key generation algorithms");
  58. static void wusb_key_dump(const void *buf, size_t len)
  59. {
  60. print_hex_dump(KERN_ERR, " ", DUMP_PREFIX_OFFSET, 16, 1,
  61. buf, len, 0);
  62. }
  63. /*
  64. * Block of data, as understood by AES-CCM
  65. *
  66. * The code assumes this structure is nothing but a 16 byte array
  67. * (packed in a struct to avoid common mess ups that I usually do with
  68. * arrays and enforcing type checking).
  69. */
  70. struct aes_ccm_block {
  71. u8 data[16];
  72. } __attribute__((packed));
  73. /*
  74. * Counter-mode Blocks (WUSB1.0[6.4])
  75. *
  76. * According to CCM (or so it seems), for the purpose of calculating
  77. * the MIC, the message is broken in N counter-mode blocks, B0, B1,
  78. * ... BN.
  79. *
  80. * B0 contains flags, the CCM nonce and l(m).
  81. *
  82. * B1 contains l(a), the MAC header, the encryption offset and padding.
  83. *
  84. * If EO is nonzero, additional blocks are built from payload bytes
  85. * until EO is exhausted (FIXME: padding to 16 bytes, I guess). The
  86. * padding is not xmitted.
  87. */
  88. /* WUSB1.0[T6.4] */
  89. struct aes_ccm_b0 {
  90. u8 flags; /* 0x59, per CCM spec */
  91. struct aes_ccm_nonce ccm_nonce;
  92. __be16 lm;
  93. } __attribute__((packed));
  94. /* WUSB1.0[T6.5] */
  95. struct aes_ccm_b1 {
  96. __be16 la;
  97. u8 mac_header[10];
  98. __le16 eo;
  99. u8 security_reserved; /* This is always zero */
  100. u8 padding; /* 0 */
  101. } __attribute__((packed));
  102. /*
  103. * Encryption Blocks (WUSB1.0[6.4.4])
  104. *
  105. * CCM uses Ax blocks to generate a keystream with which the MIC and
  106. * the message's payload are encoded. A0 always encrypts/decrypts the
  107. * MIC. Ax (x>0) are used for the successive payload blocks.
  108. *
  109. * The x is the counter, and is increased for each block.
  110. */
  111. struct aes_ccm_a {
  112. u8 flags; /* 0x01, per CCM spec */
  113. struct aes_ccm_nonce ccm_nonce;
  114. __be16 counter; /* Value of x */
  115. } __attribute__((packed));
  116. static void bytewise_xor(void *_bo, const void *_bi1, const void *_bi2,
  117. size_t size)
  118. {
  119. u8 *bo = _bo;
  120. const u8 *bi1 = _bi1, *bi2 = _bi2;
  121. size_t itr;
  122. for (itr = 0; itr < size; itr++)
  123. bo[itr] = bi1[itr] ^ bi2[itr];
  124. }
  125. /* Scratch space for MAC calculations. */
  126. struct wusb_mac_scratch {
  127. struct aes_ccm_b0 b0;
  128. struct aes_ccm_b1 b1;
  129. struct aes_ccm_a ax;
  130. };
  131. /*
  132. * CC-MAC function WUSB1.0[6.5]
  133. *
  134. * Take a data string and produce the encrypted CBC Counter-mode MIC
  135. *
  136. * Note the names for most function arguments are made to (more or
  137. * less) match those used in the pseudo-function definition given in
  138. * WUSB1.0[6.5].
  139. *
  140. * @tfm_cbc: CBC(AES) blkcipher handle (initialized)
  141. *
  142. * @tfm_aes: AES cipher handle (initialized)
  143. *
  144. * @mic: buffer for placing the computed MIC (Message Integrity
  145. * Code). This is exactly 8 bytes, and we expect the buffer to
  146. * be at least eight bytes in length.
  147. *
  148. * @key: 128 bit symmetric key
  149. *
  150. * @n: CCM nonce
  151. *
  152. * @a: ASCII string, 14 bytes long (I guess zero padded if needed;
  153. * we use exactly 14 bytes).
  154. *
  155. * @b: data stream to be processed; cannot be a global or const local
  156. * (will confuse the scatterlists)
  157. *
  158. * @blen: size of b...
  159. *
  160. * Still not very clear how this is done, but looks like this: we
  161. * create block B0 (as WUSB1.0[6.5] says), then we AES-crypt it with
  162. * @key. We bytewise xor B0 with B1 (1) and AES-crypt that. Then we
  163. * take the payload and divide it in blocks (16 bytes), xor them with
  164. * the previous crypto result (16 bytes) and crypt it, repeat the next
  165. * block with the output of the previous one, rinse wash (I guess this
  166. * is what AES CBC mode means...but I truly have no idea). So we use
  167. * the CBC(AES) blkcipher, that does precisely that. The IV (Initial
  168. * Vector) is 16 bytes and is set to zero, so
  169. *
  170. * See rfc3610. Linux crypto has a CBC implementation, but the
  171. * documentation is scarce, to say the least, and the example code is
  172. * so intricated that is difficult to understand how things work. Most
  173. * of this is guess work -- bite me.
  174. *
  175. * (1) Created as 6.5 says, again, using as l(a) 'Blen + 14', and
  176. * using the 14 bytes of @a to fill up
  177. * b1.{mac_header,e0,security_reserved,padding}.
  178. *
  179. * NOTE: The definition of l(a) in WUSB1.0[6.5] vs the definition of
  180. * l(m) is orthogonal, they bear no relationship, so it is not
  181. * in conflict with the parameter's relation that
  182. * WUSB1.0[6.4.2]) defines.
  183. *
  184. * NOTE: WUSB1.0[A.1]: Host Nonce is missing a nibble? (1e); fixed in
  185. * first errata released on 2005/07.
  186. *
  187. * NOTE: we need to clean IV to zero at each invocation to make sure
  188. * we start with a fresh empty Initial Vector, so that the CBC
  189. * works ok.
  190. *
  191. * NOTE: blen is not aligned to a block size, we'll pad zeros, that's
  192. * what sg[4] is for. Maybe there is a smarter way to do this.
  193. */
  194. static int wusb_ccm_mac(struct crypto_skcipher *tfm_cbc,
  195. struct crypto_cipher *tfm_aes,
  196. struct wusb_mac_scratch *scratch,
  197. void *mic,
  198. const struct aes_ccm_nonce *n,
  199. const struct aes_ccm_label *a, const void *b,
  200. size_t blen)
  201. {
  202. int result = 0;
  203. SKCIPHER_REQUEST_ON_STACK(req, tfm_cbc);
  204. struct scatterlist sg[4], sg_dst;
  205. void *dst_buf;
  206. size_t dst_size;
  207. u8 iv[crypto_skcipher_ivsize(tfm_cbc)];
  208. size_t zero_padding;
  209. /*
  210. * These checks should be compile time optimized out
  211. * ensure @a fills b1's mac_header and following fields
  212. */
  213. WARN_ON(sizeof(*a) != sizeof(scratch->b1) - sizeof(scratch->b1.la));
  214. WARN_ON(sizeof(scratch->b0) != sizeof(struct aes_ccm_block));
  215. WARN_ON(sizeof(scratch->b1) != sizeof(struct aes_ccm_block));
  216. WARN_ON(sizeof(scratch->ax) != sizeof(struct aes_ccm_block));
  217. result = -ENOMEM;
  218. zero_padding = blen % sizeof(struct aes_ccm_block);
  219. if (zero_padding)
  220. zero_padding = sizeof(struct aes_ccm_block) - zero_padding;
  221. dst_size = blen + sizeof(scratch->b0) + sizeof(scratch->b1) +
  222. zero_padding;
  223. dst_buf = kzalloc(dst_size, GFP_KERNEL);
  224. if (!dst_buf)
  225. goto error_dst_buf;
  226. memset(iv, 0, sizeof(iv));
  227. /* Setup B0 */
  228. scratch->b0.flags = 0x59; /* Format B0 */
  229. scratch->b0.ccm_nonce = *n;
  230. scratch->b0.lm = cpu_to_be16(0); /* WUSB1.0[6.5] sez l(m) is 0 */
  231. /* Setup B1
  232. *
  233. * The WUSB spec is anything but clear! WUSB1.0[6.5]
  234. * says that to initialize B1 from A with 'l(a) = blen +
  235. * 14'--after clarification, it means to use A's contents
  236. * for MAC Header, EO, sec reserved and padding.
  237. */
  238. scratch->b1.la = cpu_to_be16(blen + 14);
  239. memcpy(&scratch->b1.mac_header, a, sizeof(*a));
  240. sg_init_table(sg, ARRAY_SIZE(sg));
  241. sg_set_buf(&sg[0], &scratch->b0, sizeof(scratch->b0));
  242. sg_set_buf(&sg[1], &scratch->b1, sizeof(scratch->b1));
  243. sg_set_buf(&sg[2], b, blen);
  244. /* 0 if well behaved :) */
  245. sg_set_page(&sg[3], ZERO_PAGE(0), zero_padding, 0);
  246. sg_init_one(&sg_dst, dst_buf, dst_size);
  247. skcipher_request_set_tfm(req, tfm_cbc);
  248. skcipher_request_set_callback(req, 0, NULL, NULL);
  249. skcipher_request_set_crypt(req, sg, &sg_dst, dst_size, iv);
  250. result = crypto_skcipher_encrypt(req);
  251. skcipher_request_zero(req);
  252. if (result < 0) {
  253. printk(KERN_ERR "E: can't compute CBC-MAC tag (MIC): %d\n",
  254. result);
  255. goto error_cbc_crypt;
  256. }
  257. /* Now we crypt the MIC Tag (*iv) with Ax -- values per WUSB1.0[6.5]
  258. * The procedure is to AES crypt the A0 block and XOR the MIC
  259. * Tag against it; we only do the first 8 bytes and place it
  260. * directly in the destination buffer.
  261. *
  262. * POS Crypto API: size is assumed to be AES's block size.
  263. * Thanks for documenting it -- tip taken from airo.c
  264. */
  265. scratch->ax.flags = 0x01; /* as per WUSB 1.0 spec */
  266. scratch->ax.ccm_nonce = *n;
  267. scratch->ax.counter = 0;
  268. crypto_cipher_encrypt_one(tfm_aes, (void *)&scratch->ax,
  269. (void *)&scratch->ax);
  270. bytewise_xor(mic, &scratch->ax, iv, 8);
  271. result = 8;
  272. error_cbc_crypt:
  273. kfree(dst_buf);
  274. error_dst_buf:
  275. return result;
  276. }
  277. /*
  278. * WUSB Pseudo Random Function (WUSB1.0[6.5])
  279. *
  280. * @b: buffer to the source data; cannot be a global or const local
  281. * (will confuse the scatterlists)
  282. */
  283. ssize_t wusb_prf(void *out, size_t out_size,
  284. const u8 key[16], const struct aes_ccm_nonce *_n,
  285. const struct aes_ccm_label *a,
  286. const void *b, size_t blen, size_t len)
  287. {
  288. ssize_t result, bytes = 0, bitr;
  289. struct aes_ccm_nonce n = *_n;
  290. struct crypto_skcipher *tfm_cbc;
  291. struct crypto_cipher *tfm_aes;
  292. struct wusb_mac_scratch *scratch;
  293. u64 sfn = 0;
  294. __le64 sfn_le;
  295. tfm_cbc = crypto_alloc_skcipher("cbc(aes)", 0, CRYPTO_ALG_ASYNC);
  296. if (IS_ERR(tfm_cbc)) {
  297. result = PTR_ERR(tfm_cbc);
  298. printk(KERN_ERR "E: can't load CBC(AES): %d\n", (int)result);
  299. goto error_alloc_cbc;
  300. }
  301. result = crypto_skcipher_setkey(tfm_cbc, key, 16);
  302. if (result < 0) {
  303. printk(KERN_ERR "E: can't set CBC key: %d\n", (int)result);
  304. goto error_setkey_cbc;
  305. }
  306. tfm_aes = crypto_alloc_cipher("aes", 0, CRYPTO_ALG_ASYNC);
  307. if (IS_ERR(tfm_aes)) {
  308. result = PTR_ERR(tfm_aes);
  309. printk(KERN_ERR "E: can't load AES: %d\n", (int)result);
  310. goto error_alloc_aes;
  311. }
  312. result = crypto_cipher_setkey(tfm_aes, key, 16);
  313. if (result < 0) {
  314. printk(KERN_ERR "E: can't set AES key: %d\n", (int)result);
  315. goto error_setkey_aes;
  316. }
  317. scratch = kmalloc(sizeof(*scratch), GFP_KERNEL);
  318. if (!scratch) {
  319. result = -ENOMEM;
  320. goto error_alloc_scratch;
  321. }
  322. for (bitr = 0; bitr < (len + 63) / 64; bitr++) {
  323. sfn_le = cpu_to_le64(sfn++);
  324. memcpy(&n.sfn, &sfn_le, sizeof(n.sfn)); /* n.sfn++... */
  325. result = wusb_ccm_mac(tfm_cbc, tfm_aes, scratch, out + bytes,
  326. &n, a, b, blen);
  327. if (result < 0)
  328. goto error_ccm_mac;
  329. bytes += result;
  330. }
  331. result = bytes;
  332. kfree(scratch);
  333. error_alloc_scratch:
  334. error_ccm_mac:
  335. error_setkey_aes:
  336. crypto_free_cipher(tfm_aes);
  337. error_alloc_aes:
  338. error_setkey_cbc:
  339. crypto_free_skcipher(tfm_cbc);
  340. error_alloc_cbc:
  341. return result;
  342. }
  343. /* WUSB1.0[A.2] test vectors */
  344. static const u8 stv_hsmic_key[16] = {
  345. 0x4b, 0x79, 0xa3, 0xcf, 0xe5, 0x53, 0x23, 0x9d,
  346. 0xd7, 0xc1, 0x6d, 0x1c, 0x2d, 0xab, 0x6d, 0x3f
  347. };
  348. static const struct aes_ccm_nonce stv_hsmic_n = {
  349. .sfn = { 0 },
  350. .tkid = { 0x76, 0x98, 0x01, },
  351. .dest_addr = { .data = { 0xbe, 0x00 } },
  352. .src_addr = { .data = { 0x76, 0x98 } },
  353. };
  354. /*
  355. * Out-of-band MIC Generation verification code
  356. *
  357. */
  358. static int wusb_oob_mic_verify(void)
  359. {
  360. int result;
  361. u8 mic[8];
  362. /* WUSB1.0[A.2] test vectors
  363. *
  364. * Need to keep it in the local stack as GCC 4.1.3something
  365. * messes up and generates noise.
  366. */
  367. struct usb_handshake stv_hsmic_hs = {
  368. .bMessageNumber = 2,
  369. .bStatus = 00,
  370. .tTKID = { 0x76, 0x98, 0x01 },
  371. .bReserved = 00,
  372. .CDID = { 0x30, 0x31, 0x32, 0x33, 0x34, 0x35,
  373. 0x36, 0x37, 0x38, 0x39, 0x3a, 0x3b,
  374. 0x3c, 0x3d, 0x3e, 0x3f },
  375. .nonce = { 0x20, 0x21, 0x22, 0x23, 0x24, 0x25,
  376. 0x26, 0x27, 0x28, 0x29, 0x2a, 0x2b,
  377. 0x2c, 0x2d, 0x2e, 0x2f },
  378. .MIC = { 0x75, 0x6a, 0x97, 0x51, 0x0c, 0x8c,
  379. 0x14, 0x7b },
  380. };
  381. size_t hs_size;
  382. result = wusb_oob_mic(mic, stv_hsmic_key, &stv_hsmic_n, &stv_hsmic_hs);
  383. if (result < 0)
  384. printk(KERN_ERR "E: WUSB OOB MIC test: failed: %d\n", result);
  385. else if (memcmp(stv_hsmic_hs.MIC, mic, sizeof(mic))) {
  386. printk(KERN_ERR "E: OOB MIC test: "
  387. "mismatch between MIC result and WUSB1.0[A2]\n");
  388. hs_size = sizeof(stv_hsmic_hs) - sizeof(stv_hsmic_hs.MIC);
  389. printk(KERN_ERR "E: Handshake2 in: (%zu bytes)\n", hs_size);
  390. wusb_key_dump(&stv_hsmic_hs, hs_size);
  391. printk(KERN_ERR "E: CCM Nonce in: (%zu bytes)\n",
  392. sizeof(stv_hsmic_n));
  393. wusb_key_dump(&stv_hsmic_n, sizeof(stv_hsmic_n));
  394. printk(KERN_ERR "E: MIC out:\n");
  395. wusb_key_dump(mic, sizeof(mic));
  396. printk(KERN_ERR "E: MIC out (from WUSB1.0[A.2]):\n");
  397. wusb_key_dump(stv_hsmic_hs.MIC, sizeof(stv_hsmic_hs.MIC));
  398. result = -EINVAL;
  399. } else
  400. result = 0;
  401. return result;
  402. }
  403. /*
  404. * Test vectors for Key derivation
  405. *
  406. * These come from WUSB1.0[6.5.1], the vectors in WUSB1.0[A.1]
  407. * (errata corrected in 2005/07).
  408. */
  409. static const u8 stv_key_a1[16] __attribute__ ((__aligned__(4))) = {
  410. 0xf0, 0xe1, 0xd2, 0xc3, 0xb4, 0xa5, 0x96, 0x87,
  411. 0x78, 0x69, 0x5a, 0x4b, 0x3c, 0x2d, 0x1e, 0x0f
  412. };
  413. static const struct aes_ccm_nonce stv_keydvt_n_a1 = {
  414. .sfn = { 0 },
  415. .tkid = { 0x76, 0x98, 0x01, },
  416. .dest_addr = { .data = { 0xbe, 0x00 } },
  417. .src_addr = { .data = { 0x76, 0x98 } },
  418. };
  419. static const struct wusb_keydvt_out stv_keydvt_out_a1 = {
  420. .kck = {
  421. 0x4b, 0x79, 0xa3, 0xcf, 0xe5, 0x53, 0x23, 0x9d,
  422. 0xd7, 0xc1, 0x6d, 0x1c, 0x2d, 0xab, 0x6d, 0x3f
  423. },
  424. .ptk = {
  425. 0xc8, 0x70, 0x62, 0x82, 0xb6, 0x7c, 0xe9, 0x06,
  426. 0x7b, 0xc5, 0x25, 0x69, 0xf2, 0x36, 0x61, 0x2d
  427. }
  428. };
  429. /*
  430. * Performa a test to make sure we match the vectors defined in
  431. * WUSB1.0[A.1](Errata2006/12)
  432. */
  433. static int wusb_key_derive_verify(void)
  434. {
  435. int result = 0;
  436. struct wusb_keydvt_out keydvt_out;
  437. /* These come from WUSB1.0[A.1] + 2006/12 errata
  438. * NOTE: can't make this const or global -- somehow it seems
  439. * the scatterlists for crypto get confused and we get
  440. * bad data. There is no doc on this... */
  441. struct wusb_keydvt_in stv_keydvt_in_a1 = {
  442. .hnonce = {
  443. 0x10, 0x11, 0x12, 0x13, 0x14, 0x15, 0x16, 0x17,
  444. 0x18, 0x19, 0x1a, 0x1b, 0x1c, 0x1d, 0x1e, 0x1f
  445. },
  446. .dnonce = {
  447. 0x20, 0x21, 0x22, 0x23, 0x24, 0x25, 0x26, 0x27,
  448. 0x28, 0x29, 0x2a, 0x2b, 0x2c, 0x2d, 0x2e, 0x2f
  449. }
  450. };
  451. result = wusb_key_derive(&keydvt_out, stv_key_a1, &stv_keydvt_n_a1,
  452. &stv_keydvt_in_a1);
  453. if (result < 0)
  454. printk(KERN_ERR "E: WUSB key derivation test: "
  455. "derivation failed: %d\n", result);
  456. if (memcmp(&stv_keydvt_out_a1, &keydvt_out, sizeof(keydvt_out))) {
  457. printk(KERN_ERR "E: WUSB key derivation test: "
  458. "mismatch between key derivation result "
  459. "and WUSB1.0[A1] Errata 2006/12\n");
  460. printk(KERN_ERR "E: keydvt in: key\n");
  461. wusb_key_dump(stv_key_a1, sizeof(stv_key_a1));
  462. printk(KERN_ERR "E: keydvt in: nonce\n");
  463. wusb_key_dump(&stv_keydvt_n_a1, sizeof(stv_keydvt_n_a1));
  464. printk(KERN_ERR "E: keydvt in: hnonce & dnonce\n");
  465. wusb_key_dump(&stv_keydvt_in_a1, sizeof(stv_keydvt_in_a1));
  466. printk(KERN_ERR "E: keydvt out: KCK\n");
  467. wusb_key_dump(&keydvt_out.kck, sizeof(keydvt_out.kck));
  468. printk(KERN_ERR "E: keydvt out: PTK\n");
  469. wusb_key_dump(&keydvt_out.ptk, sizeof(keydvt_out.ptk));
  470. result = -EINVAL;
  471. } else
  472. result = 0;
  473. return result;
  474. }
  475. /*
  476. * Initialize crypto system
  477. *
  478. * FIXME: we do nothing now, other than verifying. Later on we'll
  479. * cache the encryption stuff, so that's why we have a separate init.
  480. */
  481. int wusb_crypto_init(void)
  482. {
  483. int result;
  484. if (debug_crypto_verify) {
  485. result = wusb_key_derive_verify();
  486. if (result < 0)
  487. return result;
  488. return wusb_oob_mic_verify();
  489. }
  490. return 0;
  491. }
  492. void wusb_crypto_exit(void)
  493. {
  494. /* FIXME: free cached crypto transforms */
  495. }