wpa_common.c 43 KB

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  1. /*
  2. * WPA/RSN - Shared functions for supplicant and authenticator
  3. * Copyright (c) 2002-2015, Jouni Malinen <j@w1.fi>
  4. *
  5. * This software may be distributed under the terms of the BSD license.
  6. * See README for more details.
  7. */
  8. #include "includes.h"
  9. #include "common.h"
  10. #include "crypto/md5.h"
  11. #include "crypto/sha1.h"
  12. #include "crypto/sha256.h"
  13. #include "crypto/sha384.h"
  14. #include "crypto/aes_wrap.h"
  15. #include "crypto/crypto.h"
  16. #include "ieee802_11_defs.h"
  17. #include "defs.h"
  18. #include "wpa_common.h"
  19. static unsigned int wpa_kck_len(int akmp)
  20. {
  21. if (akmp == WPA_KEY_MGMT_IEEE8021X_SUITE_B_192)
  22. return 24;
  23. return 16;
  24. }
  25. static unsigned int wpa_kek_len(int akmp)
  26. {
  27. if (akmp == WPA_KEY_MGMT_IEEE8021X_SUITE_B_192)
  28. return 32;
  29. return 16;
  30. }
  31. unsigned int wpa_mic_len(int akmp)
  32. {
  33. if (akmp == WPA_KEY_MGMT_IEEE8021X_SUITE_B_192)
  34. return 24;
  35. return 16;
  36. }
  37. /**
  38. * wpa_eapol_key_mic - Calculate EAPOL-Key MIC
  39. * @key: EAPOL-Key Key Confirmation Key (KCK)
  40. * @key_len: KCK length in octets
  41. * @akmp: WPA_KEY_MGMT_* used in key derivation
  42. * @ver: Key descriptor version (WPA_KEY_INFO_TYPE_*)
  43. * @buf: Pointer to the beginning of the EAPOL header (version field)
  44. * @len: Length of the EAPOL frame (from EAPOL header to the end of the frame)
  45. * @mic: Pointer to the buffer to which the EAPOL-Key MIC is written
  46. * Returns: 0 on success, -1 on failure
  47. *
  48. * Calculate EAPOL-Key MIC for an EAPOL-Key packet. The EAPOL-Key MIC field has
  49. * to be cleared (all zeroes) when calling this function.
  50. *
  51. * Note: 'IEEE Std 802.11i-2004 - 8.5.2 EAPOL-Key frames' has an error in the
  52. * description of the Key MIC calculation. It includes packet data from the
  53. * beginning of the EAPOL-Key header, not EAPOL header. This incorrect change
  54. * happened during final editing of the standard and the correct behavior is
  55. * defined in the last draft (IEEE 802.11i/D10).
  56. */
  57. int wpa_eapol_key_mic(const u8 *key, size_t key_len, int akmp, int ver,
  58. const u8 *buf, size_t len, u8 *mic)
  59. {
  60. u8 hash[SHA384_MAC_LEN];
  61. switch (ver) {
  62. #ifndef CONFIG_FIPS
  63. case WPA_KEY_INFO_TYPE_HMAC_MD5_RC4:
  64. return hmac_md5(key, key_len, buf, len, mic);
  65. #endif /* CONFIG_FIPS */
  66. case WPA_KEY_INFO_TYPE_HMAC_SHA1_AES:
  67. if (hmac_sha1(key, key_len, buf, len, hash))
  68. return -1;
  69. os_memcpy(mic, hash, MD5_MAC_LEN);
  70. break;
  71. #if defined(CONFIG_IEEE80211R) || defined(CONFIG_IEEE80211W)
  72. case WPA_KEY_INFO_TYPE_AES_128_CMAC:
  73. return omac1_aes_128(key, buf, len, mic);
  74. #endif /* CONFIG_IEEE80211R || CONFIG_IEEE80211W */
  75. case WPA_KEY_INFO_TYPE_AKM_DEFINED:
  76. switch (akmp) {
  77. #ifdef CONFIG_HS20
  78. case WPA_KEY_MGMT_OSEN:
  79. return omac1_aes_128(key, buf, len, mic);
  80. #endif /* CONFIG_HS20 */
  81. #ifdef CONFIG_SUITEB
  82. case WPA_KEY_MGMT_IEEE8021X_SUITE_B:
  83. if (hmac_sha256(key, key_len, buf, len, hash))
  84. return -1;
  85. os_memcpy(mic, hash, MD5_MAC_LEN);
  86. break;
  87. #endif /* CONFIG_SUITEB */
  88. #ifdef CONFIG_SUITEB192
  89. case WPA_KEY_MGMT_IEEE8021X_SUITE_B_192:
  90. if (hmac_sha384(key, key_len, buf, len, hash))
  91. return -1;
  92. os_memcpy(mic, hash, 24);
  93. break;
  94. #endif /* CONFIG_SUITEB192 */
  95. default:
  96. return -1;
  97. }
  98. break;
  99. default:
  100. return -1;
  101. }
  102. return 0;
  103. }
  104. /**
  105. * wpa_pmk_to_ptk - Calculate PTK from PMK, addresses, and nonces
  106. * @pmk: Pairwise master key
  107. * @pmk_len: Length of PMK
  108. * @label: Label to use in derivation
  109. * @addr1: AA or SA
  110. * @addr2: SA or AA
  111. * @nonce1: ANonce or SNonce
  112. * @nonce2: SNonce or ANonce
  113. * @ptk: Buffer for pairwise transient key
  114. * @akmp: Negotiated AKM
  115. * @cipher: Negotiated pairwise cipher
  116. * Returns: 0 on success, -1 on failure
  117. *
  118. * IEEE Std 802.11i-2004 - 8.5.1.2 Pairwise key hierarchy
  119. * PTK = PRF-X(PMK, "Pairwise key expansion",
  120. * Min(AA, SA) || Max(AA, SA) ||
  121. * Min(ANonce, SNonce) || Max(ANonce, SNonce))
  122. *
  123. * STK = PRF-X(SMK, "Peer key expansion",
  124. * Min(MAC_I, MAC_P) || Max(MAC_I, MAC_P) ||
  125. * Min(INonce, PNonce) || Max(INonce, PNonce))
  126. */
  127. int wpa_pmk_to_ptk(const u8 *pmk, size_t pmk_len, const char *label,
  128. const u8 *addr1, const u8 *addr2,
  129. const u8 *nonce1, const u8 *nonce2,
  130. struct wpa_ptk *ptk, int akmp, int cipher)
  131. {
  132. u8 data[2 * ETH_ALEN + 2 * WPA_NONCE_LEN];
  133. u8 tmp[WPA_KCK_MAX_LEN + WPA_KEK_MAX_LEN + WPA_TK_MAX_LEN];
  134. size_t ptk_len;
  135. if (os_memcmp(addr1, addr2, ETH_ALEN) < 0) {
  136. os_memcpy(data, addr1, ETH_ALEN);
  137. os_memcpy(data + ETH_ALEN, addr2, ETH_ALEN);
  138. } else {
  139. os_memcpy(data, addr2, ETH_ALEN);
  140. os_memcpy(data + ETH_ALEN, addr1, ETH_ALEN);
  141. }
  142. if (os_memcmp(nonce1, nonce2, WPA_NONCE_LEN) < 0) {
  143. os_memcpy(data + 2 * ETH_ALEN, nonce1, WPA_NONCE_LEN);
  144. os_memcpy(data + 2 * ETH_ALEN + WPA_NONCE_LEN, nonce2,
  145. WPA_NONCE_LEN);
  146. } else {
  147. os_memcpy(data + 2 * ETH_ALEN, nonce2, WPA_NONCE_LEN);
  148. os_memcpy(data + 2 * ETH_ALEN + WPA_NONCE_LEN, nonce1,
  149. WPA_NONCE_LEN);
  150. }
  151. ptk->kck_len = wpa_kck_len(akmp);
  152. ptk->kek_len = wpa_kek_len(akmp);
  153. ptk->tk_len = wpa_cipher_key_len(cipher);
  154. ptk_len = ptk->kck_len + ptk->kek_len + ptk->tk_len;
  155. #ifdef CONFIG_IEEE80211W
  156. if (wpa_key_mgmt_sha256(akmp))
  157. sha256_prf(pmk, pmk_len, label, data, sizeof(data),
  158. tmp, ptk_len);
  159. else
  160. #endif /* CONFIG_IEEE80211W */
  161. sha1_prf(pmk, pmk_len, label, data, sizeof(data), tmp, ptk_len);
  162. wpa_printf(MSG_DEBUG, "WPA: PTK derivation - A1=" MACSTR " A2=" MACSTR,
  163. MAC2STR(addr1), MAC2STR(addr2));
  164. wpa_hexdump(MSG_DEBUG, "WPA: Nonce1", nonce1, WPA_NONCE_LEN);
  165. wpa_hexdump(MSG_DEBUG, "WPA: Nonce2", nonce2, WPA_NONCE_LEN);
  166. wpa_hexdump_key(MSG_DEBUG, "WPA: PMK", pmk, pmk_len);
  167. wpa_hexdump_key(MSG_DEBUG, "WPA: PTK", tmp, ptk_len);
  168. os_memcpy(ptk->kck, tmp, ptk->kck_len);
  169. wpa_hexdump_key(MSG_DEBUG, "WPA: KCK", ptk->kck, ptk->kck_len);
  170. os_memcpy(ptk->kek, tmp + ptk->kck_len, ptk->kek_len);
  171. wpa_hexdump_key(MSG_DEBUG, "WPA: KEK", ptk->kek, ptk->kek_len);
  172. os_memcpy(ptk->tk, tmp + ptk->kck_len + ptk->kek_len, ptk->tk_len);
  173. wpa_hexdump_key(MSG_DEBUG, "WPA: TK", ptk->tk, ptk->tk_len);
  174. os_memset(tmp, 0, sizeof(tmp));
  175. return 0;
  176. }
  177. #ifdef CONFIG_IEEE80211R
  178. int wpa_ft_mic(const u8 *kck, size_t kck_len, const u8 *sta_addr,
  179. const u8 *ap_addr, u8 transaction_seqnum,
  180. const u8 *mdie, size_t mdie_len,
  181. const u8 *ftie, size_t ftie_len,
  182. const u8 *rsnie, size_t rsnie_len,
  183. const u8 *ric, size_t ric_len, u8 *mic)
  184. {
  185. const u8 *addr[9];
  186. size_t len[9];
  187. size_t i, num_elem = 0;
  188. u8 zero_mic[16];
  189. if (kck_len != 16) {
  190. wpa_printf(MSG_WARNING, "FT: Unsupported KCK length %u",
  191. (unsigned int) kck_len);
  192. return -1;
  193. }
  194. addr[num_elem] = sta_addr;
  195. len[num_elem] = ETH_ALEN;
  196. num_elem++;
  197. addr[num_elem] = ap_addr;
  198. len[num_elem] = ETH_ALEN;
  199. num_elem++;
  200. addr[num_elem] = &transaction_seqnum;
  201. len[num_elem] = 1;
  202. num_elem++;
  203. if (rsnie) {
  204. addr[num_elem] = rsnie;
  205. len[num_elem] = rsnie_len;
  206. num_elem++;
  207. }
  208. if (mdie) {
  209. addr[num_elem] = mdie;
  210. len[num_elem] = mdie_len;
  211. num_elem++;
  212. }
  213. if (ftie) {
  214. if (ftie_len < 2 + sizeof(struct rsn_ftie))
  215. return -1;
  216. /* IE hdr and mic_control */
  217. addr[num_elem] = ftie;
  218. len[num_elem] = 2 + 2;
  219. num_elem++;
  220. /* MIC field with all zeros */
  221. os_memset(zero_mic, 0, sizeof(zero_mic));
  222. addr[num_elem] = zero_mic;
  223. len[num_elem] = sizeof(zero_mic);
  224. num_elem++;
  225. /* Rest of FTIE */
  226. addr[num_elem] = ftie + 2 + 2 + 16;
  227. len[num_elem] = ftie_len - (2 + 2 + 16);
  228. num_elem++;
  229. }
  230. if (ric) {
  231. addr[num_elem] = ric;
  232. len[num_elem] = ric_len;
  233. num_elem++;
  234. }
  235. for (i = 0; i < num_elem; i++)
  236. wpa_hexdump(MSG_MSGDUMP, "FT: MIC data", addr[i], len[i]);
  237. if (omac1_aes_128_vector(kck, num_elem, addr, len, mic))
  238. return -1;
  239. return 0;
  240. }
  241. static int wpa_ft_parse_ftie(const u8 *ie, size_t ie_len,
  242. struct wpa_ft_ies *parse)
  243. {
  244. const u8 *end, *pos;
  245. parse->ftie = ie;
  246. parse->ftie_len = ie_len;
  247. pos = ie + sizeof(struct rsn_ftie);
  248. end = ie + ie_len;
  249. while (pos + 2 <= end && pos + 2 + pos[1] <= end) {
  250. switch (pos[0]) {
  251. case FTIE_SUBELEM_R1KH_ID:
  252. if (pos[1] != FT_R1KH_ID_LEN) {
  253. wpa_printf(MSG_DEBUG, "FT: Invalid R1KH-ID "
  254. "length in FTIE: %d", pos[1]);
  255. return -1;
  256. }
  257. parse->r1kh_id = pos + 2;
  258. break;
  259. case FTIE_SUBELEM_GTK:
  260. parse->gtk = pos + 2;
  261. parse->gtk_len = pos[1];
  262. break;
  263. case FTIE_SUBELEM_R0KH_ID:
  264. if (pos[1] < 1 || pos[1] > FT_R0KH_ID_MAX_LEN) {
  265. wpa_printf(MSG_DEBUG, "FT: Invalid R0KH-ID "
  266. "length in FTIE: %d", pos[1]);
  267. return -1;
  268. }
  269. parse->r0kh_id = pos + 2;
  270. parse->r0kh_id_len = pos[1];
  271. break;
  272. #ifdef CONFIG_IEEE80211W
  273. case FTIE_SUBELEM_IGTK:
  274. parse->igtk = pos + 2;
  275. parse->igtk_len = pos[1];
  276. break;
  277. #endif /* CONFIG_IEEE80211W */
  278. }
  279. pos += 2 + pos[1];
  280. }
  281. return 0;
  282. }
  283. int wpa_ft_parse_ies(const u8 *ies, size_t ies_len,
  284. struct wpa_ft_ies *parse)
  285. {
  286. const u8 *end, *pos;
  287. struct wpa_ie_data data;
  288. int ret;
  289. const struct rsn_ftie *ftie;
  290. int prot_ie_count = 0;
  291. os_memset(parse, 0, sizeof(*parse));
  292. if (ies == NULL)
  293. return 0;
  294. pos = ies;
  295. end = ies + ies_len;
  296. while (pos + 2 <= end && pos + 2 + pos[1] <= end) {
  297. switch (pos[0]) {
  298. case WLAN_EID_RSN:
  299. parse->rsn = pos + 2;
  300. parse->rsn_len = pos[1];
  301. ret = wpa_parse_wpa_ie_rsn(parse->rsn - 2,
  302. parse->rsn_len + 2,
  303. &data);
  304. if (ret < 0) {
  305. wpa_printf(MSG_DEBUG, "FT: Failed to parse "
  306. "RSN IE: %d", ret);
  307. return -1;
  308. }
  309. if (data.num_pmkid == 1 && data.pmkid)
  310. parse->rsn_pmkid = data.pmkid;
  311. break;
  312. case WLAN_EID_MOBILITY_DOMAIN:
  313. parse->mdie = pos + 2;
  314. parse->mdie_len = pos[1];
  315. break;
  316. case WLAN_EID_FAST_BSS_TRANSITION:
  317. if (pos[1] < sizeof(*ftie))
  318. return -1;
  319. ftie = (const struct rsn_ftie *) (pos + 2);
  320. prot_ie_count = ftie->mic_control[1];
  321. if (wpa_ft_parse_ftie(pos + 2, pos[1], parse) < 0)
  322. return -1;
  323. break;
  324. case WLAN_EID_TIMEOUT_INTERVAL:
  325. parse->tie = pos + 2;
  326. parse->tie_len = pos[1];
  327. break;
  328. case WLAN_EID_RIC_DATA:
  329. if (parse->ric == NULL)
  330. parse->ric = pos;
  331. break;
  332. }
  333. pos += 2 + pos[1];
  334. }
  335. if (prot_ie_count == 0)
  336. return 0; /* no MIC */
  337. /*
  338. * Check that the protected IE count matches with IEs included in the
  339. * frame.
  340. */
  341. if (parse->rsn)
  342. prot_ie_count--;
  343. if (parse->mdie)
  344. prot_ie_count--;
  345. if (parse->ftie)
  346. prot_ie_count--;
  347. if (prot_ie_count < 0) {
  348. wpa_printf(MSG_DEBUG, "FT: Some required IEs not included in "
  349. "the protected IE count");
  350. return -1;
  351. }
  352. if (prot_ie_count == 0 && parse->ric) {
  353. wpa_printf(MSG_DEBUG, "FT: RIC IE(s) in the frame, but not "
  354. "included in protected IE count");
  355. return -1;
  356. }
  357. /* Determine the end of the RIC IE(s) */
  358. pos = parse->ric;
  359. while (pos && pos + 2 <= end && pos + 2 + pos[1] <= end &&
  360. prot_ie_count) {
  361. prot_ie_count--;
  362. pos += 2 + pos[1];
  363. }
  364. parse->ric_len = pos - parse->ric;
  365. if (prot_ie_count) {
  366. wpa_printf(MSG_DEBUG, "FT: %d protected IEs missing from "
  367. "frame", (int) prot_ie_count);
  368. return -1;
  369. }
  370. return 0;
  371. }
  372. #endif /* CONFIG_IEEE80211R */
  373. static int rsn_selector_to_bitfield(const u8 *s)
  374. {
  375. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_NONE)
  376. return WPA_CIPHER_NONE;
  377. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_WEP40)
  378. return WPA_CIPHER_WEP40;
  379. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_TKIP)
  380. return WPA_CIPHER_TKIP;
  381. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_CCMP)
  382. return WPA_CIPHER_CCMP;
  383. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_WEP104)
  384. return WPA_CIPHER_WEP104;
  385. #ifdef CONFIG_IEEE80211W
  386. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_AES_128_CMAC)
  387. return WPA_CIPHER_AES_128_CMAC;
  388. #endif /* CONFIG_IEEE80211W */
  389. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_GCMP)
  390. return WPA_CIPHER_GCMP;
  391. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_CCMP_256)
  392. return WPA_CIPHER_CCMP_256;
  393. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_GCMP_256)
  394. return WPA_CIPHER_GCMP_256;
  395. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_BIP_GMAC_128)
  396. return WPA_CIPHER_BIP_GMAC_128;
  397. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_BIP_GMAC_256)
  398. return WPA_CIPHER_BIP_GMAC_256;
  399. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_BIP_CMAC_256)
  400. return WPA_CIPHER_BIP_CMAC_256;
  401. if (RSN_SELECTOR_GET(s) == RSN_CIPHER_SUITE_NO_GROUP_ADDRESSED)
  402. return WPA_CIPHER_GTK_NOT_USED;
  403. return 0;
  404. }
  405. static int rsn_key_mgmt_to_bitfield(const u8 *s)
  406. {
  407. if (RSN_SELECTOR_GET(s) == RSN_AUTH_KEY_MGMT_UNSPEC_802_1X)
  408. return WPA_KEY_MGMT_IEEE8021X;
  409. if (RSN_SELECTOR_GET(s) == RSN_AUTH_KEY_MGMT_PSK_OVER_802_1X)
  410. return WPA_KEY_MGMT_PSK;
  411. #ifdef CONFIG_IEEE80211R
  412. if (RSN_SELECTOR_GET(s) == RSN_AUTH_KEY_MGMT_FT_802_1X)
  413. return WPA_KEY_MGMT_FT_IEEE8021X;
  414. if (RSN_SELECTOR_GET(s) == RSN_AUTH_KEY_MGMT_FT_PSK)
  415. return WPA_KEY_MGMT_FT_PSK;
  416. #endif /* CONFIG_IEEE80211R */
  417. #ifdef CONFIG_IEEE80211W
  418. if (RSN_SELECTOR_GET(s) == RSN_AUTH_KEY_MGMT_802_1X_SHA256)
  419. return WPA_KEY_MGMT_IEEE8021X_SHA256;
  420. if (RSN_SELECTOR_GET(s) == RSN_AUTH_KEY_MGMT_PSK_SHA256)
  421. return WPA_KEY_MGMT_PSK_SHA256;
  422. #endif /* CONFIG_IEEE80211W */
  423. #ifdef CONFIG_SAE
  424. if (RSN_SELECTOR_GET(s) == RSN_AUTH_KEY_MGMT_SAE)
  425. return WPA_KEY_MGMT_SAE;
  426. if (RSN_SELECTOR_GET(s) == RSN_AUTH_KEY_MGMT_FT_SAE)
  427. return WPA_KEY_MGMT_FT_SAE;
  428. #endif /* CONFIG_SAE */
  429. if (RSN_SELECTOR_GET(s) == RSN_AUTH_KEY_MGMT_802_1X_SUITE_B)
  430. return WPA_KEY_MGMT_IEEE8021X_SUITE_B;
  431. if (RSN_SELECTOR_GET(s) == RSN_AUTH_KEY_MGMT_802_1X_SUITE_B_192)
  432. return WPA_KEY_MGMT_IEEE8021X_SUITE_B_192;
  433. if (RSN_SELECTOR_GET(s) == RSN_AUTH_KEY_MGMT_OSEN)
  434. return WPA_KEY_MGMT_OSEN;
  435. return 0;
  436. }
  437. static int wpa_cipher_valid_group(int cipher)
  438. {
  439. return wpa_cipher_valid_pairwise(cipher) ||
  440. cipher == WPA_CIPHER_WEP104 ||
  441. cipher == WPA_CIPHER_WEP40 ||
  442. cipher == WPA_CIPHER_GTK_NOT_USED;
  443. }
  444. #ifdef CONFIG_IEEE80211W
  445. int wpa_cipher_valid_mgmt_group(int cipher)
  446. {
  447. return cipher == WPA_CIPHER_AES_128_CMAC ||
  448. cipher == WPA_CIPHER_BIP_GMAC_128 ||
  449. cipher == WPA_CIPHER_BIP_GMAC_256 ||
  450. cipher == WPA_CIPHER_BIP_CMAC_256;
  451. }
  452. #endif /* CONFIG_IEEE80211W */
  453. /**
  454. * wpa_parse_wpa_ie_rsn - Parse RSN IE
  455. * @rsn_ie: Buffer containing RSN IE
  456. * @rsn_ie_len: RSN IE buffer length (including IE number and length octets)
  457. * @data: Pointer to structure that will be filled in with parsed data
  458. * Returns: 0 on success, <0 on failure
  459. */
  460. int wpa_parse_wpa_ie_rsn(const u8 *rsn_ie, size_t rsn_ie_len,
  461. struct wpa_ie_data *data)
  462. {
  463. const u8 *pos;
  464. int left;
  465. int i, count;
  466. os_memset(data, 0, sizeof(*data));
  467. data->proto = WPA_PROTO_RSN;
  468. data->pairwise_cipher = WPA_CIPHER_CCMP;
  469. data->group_cipher = WPA_CIPHER_CCMP;
  470. data->key_mgmt = WPA_KEY_MGMT_IEEE8021X;
  471. data->capabilities = 0;
  472. data->pmkid = NULL;
  473. data->num_pmkid = 0;
  474. #ifdef CONFIG_IEEE80211W
  475. data->mgmt_group_cipher = WPA_CIPHER_AES_128_CMAC;
  476. #else /* CONFIG_IEEE80211W */
  477. data->mgmt_group_cipher = 0;
  478. #endif /* CONFIG_IEEE80211W */
  479. if (rsn_ie_len == 0) {
  480. /* No RSN IE - fail silently */
  481. return -1;
  482. }
  483. if (rsn_ie_len < sizeof(struct rsn_ie_hdr)) {
  484. wpa_printf(MSG_DEBUG, "%s: ie len too short %lu",
  485. __func__, (unsigned long) rsn_ie_len);
  486. return -1;
  487. }
  488. if (rsn_ie_len >= 6 && rsn_ie[1] >= 4 &&
  489. rsn_ie[1] == rsn_ie_len - 2 &&
  490. WPA_GET_BE32(&rsn_ie[2]) == OSEN_IE_VENDOR_TYPE) {
  491. pos = rsn_ie + 6;
  492. left = rsn_ie_len - 6;
  493. data->proto = WPA_PROTO_OSEN;
  494. } else {
  495. const struct rsn_ie_hdr *hdr;
  496. hdr = (const struct rsn_ie_hdr *) rsn_ie;
  497. if (hdr->elem_id != WLAN_EID_RSN ||
  498. hdr->len != rsn_ie_len - 2 ||
  499. WPA_GET_LE16(hdr->version) != RSN_VERSION) {
  500. wpa_printf(MSG_DEBUG, "%s: malformed ie or unknown version",
  501. __func__);
  502. return -2;
  503. }
  504. pos = (const u8 *) (hdr + 1);
  505. left = rsn_ie_len - sizeof(*hdr);
  506. }
  507. if (left >= RSN_SELECTOR_LEN) {
  508. data->group_cipher = rsn_selector_to_bitfield(pos);
  509. if (!wpa_cipher_valid_group(data->group_cipher)) {
  510. wpa_printf(MSG_DEBUG, "%s: invalid group cipher 0x%x",
  511. __func__, data->group_cipher);
  512. return -1;
  513. }
  514. pos += RSN_SELECTOR_LEN;
  515. left -= RSN_SELECTOR_LEN;
  516. } else if (left > 0) {
  517. wpa_printf(MSG_DEBUG, "%s: ie length mismatch, %u too much",
  518. __func__, left);
  519. return -3;
  520. }
  521. if (left >= 2) {
  522. data->pairwise_cipher = 0;
  523. count = WPA_GET_LE16(pos);
  524. pos += 2;
  525. left -= 2;
  526. if (count == 0 || count > left / RSN_SELECTOR_LEN) {
  527. wpa_printf(MSG_DEBUG, "%s: ie count botch (pairwise), "
  528. "count %u left %u", __func__, count, left);
  529. return -4;
  530. }
  531. for (i = 0; i < count; i++) {
  532. data->pairwise_cipher |= rsn_selector_to_bitfield(pos);
  533. pos += RSN_SELECTOR_LEN;
  534. left -= RSN_SELECTOR_LEN;
  535. }
  536. #ifdef CONFIG_IEEE80211W
  537. if (data->pairwise_cipher & WPA_CIPHER_AES_128_CMAC) {
  538. wpa_printf(MSG_DEBUG, "%s: AES-128-CMAC used as "
  539. "pairwise cipher", __func__);
  540. return -1;
  541. }
  542. #endif /* CONFIG_IEEE80211W */
  543. } else if (left == 1) {
  544. wpa_printf(MSG_DEBUG, "%s: ie too short (for key mgmt)",
  545. __func__);
  546. return -5;
  547. }
  548. if (left >= 2) {
  549. data->key_mgmt = 0;
  550. count = WPA_GET_LE16(pos);
  551. pos += 2;
  552. left -= 2;
  553. if (count == 0 || count > left / RSN_SELECTOR_LEN) {
  554. wpa_printf(MSG_DEBUG, "%s: ie count botch (key mgmt), "
  555. "count %u left %u", __func__, count, left);
  556. return -6;
  557. }
  558. for (i = 0; i < count; i++) {
  559. data->key_mgmt |= rsn_key_mgmt_to_bitfield(pos);
  560. pos += RSN_SELECTOR_LEN;
  561. left -= RSN_SELECTOR_LEN;
  562. }
  563. } else if (left == 1) {
  564. wpa_printf(MSG_DEBUG, "%s: ie too short (for capabilities)",
  565. __func__);
  566. return -7;
  567. }
  568. if (left >= 2) {
  569. data->capabilities = WPA_GET_LE16(pos);
  570. pos += 2;
  571. left -= 2;
  572. }
  573. if (left >= 2) {
  574. u16 num_pmkid = WPA_GET_LE16(pos);
  575. pos += 2;
  576. left -= 2;
  577. if (num_pmkid > (unsigned int) left / PMKID_LEN) {
  578. wpa_printf(MSG_DEBUG, "%s: PMKID underflow "
  579. "(num_pmkid=%u left=%d)",
  580. __func__, num_pmkid, left);
  581. data->num_pmkid = 0;
  582. return -9;
  583. } else {
  584. data->num_pmkid = num_pmkid;
  585. data->pmkid = pos;
  586. pos += data->num_pmkid * PMKID_LEN;
  587. left -= data->num_pmkid * PMKID_LEN;
  588. }
  589. }
  590. #ifdef CONFIG_IEEE80211W
  591. if (left >= 4) {
  592. data->mgmt_group_cipher = rsn_selector_to_bitfield(pos);
  593. if (!wpa_cipher_valid_mgmt_group(data->mgmt_group_cipher)) {
  594. wpa_printf(MSG_DEBUG, "%s: Unsupported management "
  595. "group cipher 0x%x", __func__,
  596. data->mgmt_group_cipher);
  597. return -10;
  598. }
  599. pos += RSN_SELECTOR_LEN;
  600. left -= RSN_SELECTOR_LEN;
  601. }
  602. #endif /* CONFIG_IEEE80211W */
  603. if (left > 0) {
  604. wpa_hexdump(MSG_DEBUG,
  605. "wpa_parse_wpa_ie_rsn: ignore trailing bytes",
  606. pos, left);
  607. }
  608. return 0;
  609. }
  610. static int wpa_selector_to_bitfield(const u8 *s)
  611. {
  612. if (RSN_SELECTOR_GET(s) == WPA_CIPHER_SUITE_NONE)
  613. return WPA_CIPHER_NONE;
  614. if (RSN_SELECTOR_GET(s) == WPA_CIPHER_SUITE_WEP40)
  615. return WPA_CIPHER_WEP40;
  616. if (RSN_SELECTOR_GET(s) == WPA_CIPHER_SUITE_TKIP)
  617. return WPA_CIPHER_TKIP;
  618. if (RSN_SELECTOR_GET(s) == WPA_CIPHER_SUITE_CCMP)
  619. return WPA_CIPHER_CCMP;
  620. if (RSN_SELECTOR_GET(s) == WPA_CIPHER_SUITE_WEP104)
  621. return WPA_CIPHER_WEP104;
  622. return 0;
  623. }
  624. static int wpa_key_mgmt_to_bitfield(const u8 *s)
  625. {
  626. if (RSN_SELECTOR_GET(s) == WPA_AUTH_KEY_MGMT_UNSPEC_802_1X)
  627. return WPA_KEY_MGMT_IEEE8021X;
  628. if (RSN_SELECTOR_GET(s) == WPA_AUTH_KEY_MGMT_PSK_OVER_802_1X)
  629. return WPA_KEY_MGMT_PSK;
  630. if (RSN_SELECTOR_GET(s) == WPA_AUTH_KEY_MGMT_NONE)
  631. return WPA_KEY_MGMT_WPA_NONE;
  632. return 0;
  633. }
  634. int wpa_parse_wpa_ie_wpa(const u8 *wpa_ie, size_t wpa_ie_len,
  635. struct wpa_ie_data *data)
  636. {
  637. const struct wpa_ie_hdr *hdr;
  638. const u8 *pos;
  639. int left;
  640. int i, count;
  641. os_memset(data, 0, sizeof(*data));
  642. data->proto = WPA_PROTO_WPA;
  643. data->pairwise_cipher = WPA_CIPHER_TKIP;
  644. data->group_cipher = WPA_CIPHER_TKIP;
  645. data->key_mgmt = WPA_KEY_MGMT_IEEE8021X;
  646. data->capabilities = 0;
  647. data->pmkid = NULL;
  648. data->num_pmkid = 0;
  649. data->mgmt_group_cipher = 0;
  650. if (wpa_ie_len == 0) {
  651. /* No WPA IE - fail silently */
  652. return -1;
  653. }
  654. if (wpa_ie_len < sizeof(struct wpa_ie_hdr)) {
  655. wpa_printf(MSG_DEBUG, "%s: ie len too short %lu",
  656. __func__, (unsigned long) wpa_ie_len);
  657. return -1;
  658. }
  659. hdr = (const struct wpa_ie_hdr *) wpa_ie;
  660. if (hdr->elem_id != WLAN_EID_VENDOR_SPECIFIC ||
  661. hdr->len != wpa_ie_len - 2 ||
  662. RSN_SELECTOR_GET(hdr->oui) != WPA_OUI_TYPE ||
  663. WPA_GET_LE16(hdr->version) != WPA_VERSION) {
  664. wpa_printf(MSG_DEBUG, "%s: malformed ie or unknown version",
  665. __func__);
  666. return -2;
  667. }
  668. pos = (const u8 *) (hdr + 1);
  669. left = wpa_ie_len - sizeof(*hdr);
  670. if (left >= WPA_SELECTOR_LEN) {
  671. data->group_cipher = wpa_selector_to_bitfield(pos);
  672. pos += WPA_SELECTOR_LEN;
  673. left -= WPA_SELECTOR_LEN;
  674. } else if (left > 0) {
  675. wpa_printf(MSG_DEBUG, "%s: ie length mismatch, %u too much",
  676. __func__, left);
  677. return -3;
  678. }
  679. if (left >= 2) {
  680. data->pairwise_cipher = 0;
  681. count = WPA_GET_LE16(pos);
  682. pos += 2;
  683. left -= 2;
  684. if (count == 0 || count > left / WPA_SELECTOR_LEN) {
  685. wpa_printf(MSG_DEBUG, "%s: ie count botch (pairwise), "
  686. "count %u left %u", __func__, count, left);
  687. return -4;
  688. }
  689. for (i = 0; i < count; i++) {
  690. data->pairwise_cipher |= wpa_selector_to_bitfield(pos);
  691. pos += WPA_SELECTOR_LEN;
  692. left -= WPA_SELECTOR_LEN;
  693. }
  694. } else if (left == 1) {
  695. wpa_printf(MSG_DEBUG, "%s: ie too short (for key mgmt)",
  696. __func__);
  697. return -5;
  698. }
  699. if (left >= 2) {
  700. data->key_mgmt = 0;
  701. count = WPA_GET_LE16(pos);
  702. pos += 2;
  703. left -= 2;
  704. if (count == 0 || count > left / WPA_SELECTOR_LEN) {
  705. wpa_printf(MSG_DEBUG, "%s: ie count botch (key mgmt), "
  706. "count %u left %u", __func__, count, left);
  707. return -6;
  708. }
  709. for (i = 0; i < count; i++) {
  710. data->key_mgmt |= wpa_key_mgmt_to_bitfield(pos);
  711. pos += WPA_SELECTOR_LEN;
  712. left -= WPA_SELECTOR_LEN;
  713. }
  714. } else if (left == 1) {
  715. wpa_printf(MSG_DEBUG, "%s: ie too short (for capabilities)",
  716. __func__);
  717. return -7;
  718. }
  719. if (left >= 2) {
  720. data->capabilities = WPA_GET_LE16(pos);
  721. pos += 2;
  722. left -= 2;
  723. }
  724. if (left > 0) {
  725. wpa_hexdump(MSG_DEBUG,
  726. "wpa_parse_wpa_ie_wpa: ignore trailing bytes",
  727. pos, left);
  728. }
  729. return 0;
  730. }
  731. #ifdef CONFIG_IEEE80211R
  732. /**
  733. * wpa_derive_pmk_r0 - Derive PMK-R0 and PMKR0Name
  734. *
  735. * IEEE Std 802.11r-2008 - 8.5.1.5.3
  736. */
  737. void wpa_derive_pmk_r0(const u8 *xxkey, size_t xxkey_len,
  738. const u8 *ssid, size_t ssid_len,
  739. const u8 *mdid, const u8 *r0kh_id, size_t r0kh_id_len,
  740. const u8 *s0kh_id, u8 *pmk_r0, u8 *pmk_r0_name)
  741. {
  742. u8 buf[1 + SSID_MAX_LEN + MOBILITY_DOMAIN_ID_LEN + 1 +
  743. FT_R0KH_ID_MAX_LEN + ETH_ALEN];
  744. u8 *pos, r0_key_data[48], hash[32];
  745. const u8 *addr[2];
  746. size_t len[2];
  747. /*
  748. * R0-Key-Data = KDF-384(XXKey, "FT-R0",
  749. * SSIDlength || SSID || MDID || R0KHlength ||
  750. * R0KH-ID || S0KH-ID)
  751. * XXKey is either the second 256 bits of MSK or PSK.
  752. * PMK-R0 = L(R0-Key-Data, 0, 256)
  753. * PMK-R0Name-Salt = L(R0-Key-Data, 256, 128)
  754. */
  755. if (ssid_len > SSID_MAX_LEN || r0kh_id_len > FT_R0KH_ID_MAX_LEN)
  756. return;
  757. pos = buf;
  758. *pos++ = ssid_len;
  759. os_memcpy(pos, ssid, ssid_len);
  760. pos += ssid_len;
  761. os_memcpy(pos, mdid, MOBILITY_DOMAIN_ID_LEN);
  762. pos += MOBILITY_DOMAIN_ID_LEN;
  763. *pos++ = r0kh_id_len;
  764. os_memcpy(pos, r0kh_id, r0kh_id_len);
  765. pos += r0kh_id_len;
  766. os_memcpy(pos, s0kh_id, ETH_ALEN);
  767. pos += ETH_ALEN;
  768. sha256_prf(xxkey, xxkey_len, "FT-R0", buf, pos - buf,
  769. r0_key_data, sizeof(r0_key_data));
  770. os_memcpy(pmk_r0, r0_key_data, PMK_LEN);
  771. /*
  772. * PMKR0Name = Truncate-128(SHA-256("FT-R0N" || PMK-R0Name-Salt)
  773. */
  774. addr[0] = (const u8 *) "FT-R0N";
  775. len[0] = 6;
  776. addr[1] = r0_key_data + PMK_LEN;
  777. len[1] = 16;
  778. sha256_vector(2, addr, len, hash);
  779. os_memcpy(pmk_r0_name, hash, WPA_PMK_NAME_LEN);
  780. }
  781. /**
  782. * wpa_derive_pmk_r1_name - Derive PMKR1Name
  783. *
  784. * IEEE Std 802.11r-2008 - 8.5.1.5.4
  785. */
  786. void wpa_derive_pmk_r1_name(const u8 *pmk_r0_name, const u8 *r1kh_id,
  787. const u8 *s1kh_id, u8 *pmk_r1_name)
  788. {
  789. u8 hash[32];
  790. const u8 *addr[4];
  791. size_t len[4];
  792. /*
  793. * PMKR1Name = Truncate-128(SHA-256("FT-R1N" || PMKR0Name ||
  794. * R1KH-ID || S1KH-ID))
  795. */
  796. addr[0] = (const u8 *) "FT-R1N";
  797. len[0] = 6;
  798. addr[1] = pmk_r0_name;
  799. len[1] = WPA_PMK_NAME_LEN;
  800. addr[2] = r1kh_id;
  801. len[2] = FT_R1KH_ID_LEN;
  802. addr[3] = s1kh_id;
  803. len[3] = ETH_ALEN;
  804. sha256_vector(4, addr, len, hash);
  805. os_memcpy(pmk_r1_name, hash, WPA_PMK_NAME_LEN);
  806. }
  807. /**
  808. * wpa_derive_pmk_r1 - Derive PMK-R1 and PMKR1Name from PMK-R0
  809. *
  810. * IEEE Std 802.11r-2008 - 8.5.1.5.4
  811. */
  812. void wpa_derive_pmk_r1(const u8 *pmk_r0, const u8 *pmk_r0_name,
  813. const u8 *r1kh_id, const u8 *s1kh_id,
  814. u8 *pmk_r1, u8 *pmk_r1_name)
  815. {
  816. u8 buf[FT_R1KH_ID_LEN + ETH_ALEN];
  817. u8 *pos;
  818. /* PMK-R1 = KDF-256(PMK-R0, "FT-R1", R1KH-ID || S1KH-ID) */
  819. pos = buf;
  820. os_memcpy(pos, r1kh_id, FT_R1KH_ID_LEN);
  821. pos += FT_R1KH_ID_LEN;
  822. os_memcpy(pos, s1kh_id, ETH_ALEN);
  823. pos += ETH_ALEN;
  824. sha256_prf(pmk_r0, PMK_LEN, "FT-R1", buf, pos - buf, pmk_r1, PMK_LEN);
  825. wpa_derive_pmk_r1_name(pmk_r0_name, r1kh_id, s1kh_id, pmk_r1_name);
  826. }
  827. /**
  828. * wpa_pmk_r1_to_ptk - Derive PTK and PTKName from PMK-R1
  829. *
  830. * IEEE Std 802.11r-2008 - 8.5.1.5.5
  831. */
  832. int wpa_pmk_r1_to_ptk(const u8 *pmk_r1, const u8 *snonce, const u8 *anonce,
  833. const u8 *sta_addr, const u8 *bssid,
  834. const u8 *pmk_r1_name,
  835. struct wpa_ptk *ptk, u8 *ptk_name, int akmp, int cipher)
  836. {
  837. u8 buf[2 * WPA_NONCE_LEN + 2 * ETH_ALEN];
  838. u8 *pos, hash[32];
  839. const u8 *addr[6];
  840. size_t len[6];
  841. u8 tmp[WPA_KCK_MAX_LEN + WPA_KEK_MAX_LEN + WPA_TK_MAX_LEN];
  842. size_t ptk_len;
  843. /*
  844. * PTK = KDF-PTKLen(PMK-R1, "FT-PTK", SNonce || ANonce ||
  845. * BSSID || STA-ADDR)
  846. */
  847. pos = buf;
  848. os_memcpy(pos, snonce, WPA_NONCE_LEN);
  849. pos += WPA_NONCE_LEN;
  850. os_memcpy(pos, anonce, WPA_NONCE_LEN);
  851. pos += WPA_NONCE_LEN;
  852. os_memcpy(pos, bssid, ETH_ALEN);
  853. pos += ETH_ALEN;
  854. os_memcpy(pos, sta_addr, ETH_ALEN);
  855. pos += ETH_ALEN;
  856. ptk->kck_len = wpa_kck_len(akmp);
  857. ptk->kek_len = wpa_kek_len(akmp);
  858. ptk->tk_len = wpa_cipher_key_len(cipher);
  859. ptk_len = ptk->kck_len + ptk->kek_len + ptk->tk_len;
  860. sha256_prf(pmk_r1, PMK_LEN, "FT-PTK", buf, pos - buf, tmp, ptk_len);
  861. /*
  862. * PTKName = Truncate-128(SHA-256(PMKR1Name || "FT-PTKN" || SNonce ||
  863. * ANonce || BSSID || STA-ADDR))
  864. */
  865. addr[0] = pmk_r1_name;
  866. len[0] = WPA_PMK_NAME_LEN;
  867. addr[1] = (const u8 *) "FT-PTKN";
  868. len[1] = 7;
  869. addr[2] = snonce;
  870. len[2] = WPA_NONCE_LEN;
  871. addr[3] = anonce;
  872. len[3] = WPA_NONCE_LEN;
  873. addr[4] = bssid;
  874. len[4] = ETH_ALEN;
  875. addr[5] = sta_addr;
  876. len[5] = ETH_ALEN;
  877. sha256_vector(6, addr, len, hash);
  878. os_memcpy(ptk_name, hash, WPA_PMK_NAME_LEN);
  879. os_memcpy(ptk->kck, tmp, ptk->kck_len);
  880. os_memcpy(ptk->kek, tmp + ptk->kck_len, ptk->kek_len);
  881. os_memcpy(ptk->tk, tmp + ptk->kck_len + ptk->kek_len, ptk->tk_len);
  882. wpa_hexdump_key(MSG_DEBUG, "FT: KCK", ptk->kck, ptk->kck_len);
  883. wpa_hexdump_key(MSG_DEBUG, "FT: KEK", ptk->kek, ptk->kek_len);
  884. wpa_hexdump_key(MSG_DEBUG, "FT: TK", ptk->tk, ptk->tk_len);
  885. wpa_hexdump(MSG_DEBUG, "FT: PTKName", ptk_name, WPA_PMK_NAME_LEN);
  886. os_memset(tmp, 0, sizeof(tmp));
  887. return 0;
  888. }
  889. #endif /* CONFIG_IEEE80211R */
  890. /**
  891. * rsn_pmkid - Calculate PMK identifier
  892. * @pmk: Pairwise master key
  893. * @pmk_len: Length of pmk in bytes
  894. * @aa: Authenticator address
  895. * @spa: Supplicant address
  896. * @pmkid: Buffer for PMKID
  897. * @use_sha256: Whether to use SHA256-based KDF
  898. *
  899. * IEEE Std 802.11i-2004 - 8.5.1.2 Pairwise key hierarchy
  900. * PMKID = HMAC-SHA1-128(PMK, "PMK Name" || AA || SPA)
  901. */
  902. void rsn_pmkid(const u8 *pmk, size_t pmk_len, const u8 *aa, const u8 *spa,
  903. u8 *pmkid, int use_sha256)
  904. {
  905. char *title = "PMK Name";
  906. const u8 *addr[3];
  907. const size_t len[3] = { 8, ETH_ALEN, ETH_ALEN };
  908. unsigned char hash[SHA256_MAC_LEN];
  909. addr[0] = (u8 *) title;
  910. addr[1] = aa;
  911. addr[2] = spa;
  912. #ifdef CONFIG_IEEE80211W
  913. if (use_sha256)
  914. hmac_sha256_vector(pmk, pmk_len, 3, addr, len, hash);
  915. else
  916. #endif /* CONFIG_IEEE80211W */
  917. hmac_sha1_vector(pmk, pmk_len, 3, addr, len, hash);
  918. os_memcpy(pmkid, hash, PMKID_LEN);
  919. }
  920. #ifdef CONFIG_SUITEB
  921. /**
  922. * rsn_pmkid_suite_b - Calculate PMK identifier for Suite B AKM
  923. * @kck: Key confirmation key
  924. * @kck_len: Length of kck in bytes
  925. * @aa: Authenticator address
  926. * @spa: Supplicant address
  927. * @pmkid: Buffer for PMKID
  928. * Returns: 0 on success, -1 on failure
  929. *
  930. * IEEE Std 802.11ac-2013 - 11.6.1.3 Pairwise key hierarchy
  931. * PMKID = Truncate(HMAC-SHA-256(KCK, "PMK Name" || AA || SPA))
  932. */
  933. int rsn_pmkid_suite_b(const u8 *kck, size_t kck_len, const u8 *aa,
  934. const u8 *spa, u8 *pmkid)
  935. {
  936. char *title = "PMK Name";
  937. const u8 *addr[3];
  938. const size_t len[3] = { 8, ETH_ALEN, ETH_ALEN };
  939. unsigned char hash[SHA256_MAC_LEN];
  940. addr[0] = (u8 *) title;
  941. addr[1] = aa;
  942. addr[2] = spa;
  943. if (hmac_sha256_vector(kck, kck_len, 3, addr, len, hash) < 0)
  944. return -1;
  945. os_memcpy(pmkid, hash, PMKID_LEN);
  946. return 0;
  947. }
  948. #endif /* CONFIG_SUITEB */
  949. #ifdef CONFIG_SUITEB192
  950. /**
  951. * rsn_pmkid_suite_b_192 - Calculate PMK identifier for Suite B AKM
  952. * @kck: Key confirmation key
  953. * @kck_len: Length of kck in bytes
  954. * @aa: Authenticator address
  955. * @spa: Supplicant address
  956. * @pmkid: Buffer for PMKID
  957. * Returns: 0 on success, -1 on failure
  958. *
  959. * IEEE Std 802.11ac-2013 - 11.6.1.3 Pairwise key hierarchy
  960. * PMKID = Truncate(HMAC-SHA-384(KCK, "PMK Name" || AA || SPA))
  961. */
  962. int rsn_pmkid_suite_b_192(const u8 *kck, size_t kck_len, const u8 *aa,
  963. const u8 *spa, u8 *pmkid)
  964. {
  965. char *title = "PMK Name";
  966. const u8 *addr[3];
  967. const size_t len[3] = { 8, ETH_ALEN, ETH_ALEN };
  968. unsigned char hash[SHA384_MAC_LEN];
  969. addr[0] = (u8 *) title;
  970. addr[1] = aa;
  971. addr[2] = spa;
  972. if (hmac_sha384_vector(kck, kck_len, 3, addr, len, hash) < 0)
  973. return -1;
  974. os_memcpy(pmkid, hash, PMKID_LEN);
  975. return 0;
  976. }
  977. #endif /* CONFIG_SUITEB192 */
  978. /**
  979. * wpa_cipher_txt - Convert cipher suite to a text string
  980. * @cipher: Cipher suite (WPA_CIPHER_* enum)
  981. * Returns: Pointer to a text string of the cipher suite name
  982. */
  983. const char * wpa_cipher_txt(int cipher)
  984. {
  985. switch (cipher) {
  986. case WPA_CIPHER_NONE:
  987. return "NONE";
  988. case WPA_CIPHER_WEP40:
  989. return "WEP-40";
  990. case WPA_CIPHER_WEP104:
  991. return "WEP-104";
  992. case WPA_CIPHER_TKIP:
  993. return "TKIP";
  994. case WPA_CIPHER_CCMP:
  995. return "CCMP";
  996. case WPA_CIPHER_CCMP | WPA_CIPHER_TKIP:
  997. return "CCMP+TKIP";
  998. case WPA_CIPHER_GCMP:
  999. return "GCMP";
  1000. case WPA_CIPHER_GCMP_256:
  1001. return "GCMP-256";
  1002. case WPA_CIPHER_CCMP_256:
  1003. return "CCMP-256";
  1004. case WPA_CIPHER_GTK_NOT_USED:
  1005. return "GTK_NOT_USED";
  1006. default:
  1007. return "UNKNOWN";
  1008. }
  1009. }
  1010. /**
  1011. * wpa_key_mgmt_txt - Convert key management suite to a text string
  1012. * @key_mgmt: Key management suite (WPA_KEY_MGMT_* enum)
  1013. * @proto: WPA/WPA2 version (WPA_PROTO_*)
  1014. * Returns: Pointer to a text string of the key management suite name
  1015. */
  1016. const char * wpa_key_mgmt_txt(int key_mgmt, int proto)
  1017. {
  1018. switch (key_mgmt) {
  1019. case WPA_KEY_MGMT_IEEE8021X:
  1020. if (proto == (WPA_PROTO_RSN | WPA_PROTO_WPA))
  1021. return "WPA2+WPA/IEEE 802.1X/EAP";
  1022. return proto == WPA_PROTO_RSN ?
  1023. "WPA2/IEEE 802.1X/EAP" : "WPA/IEEE 802.1X/EAP";
  1024. case WPA_KEY_MGMT_PSK:
  1025. if (proto == (WPA_PROTO_RSN | WPA_PROTO_WPA))
  1026. return "WPA2-PSK+WPA-PSK";
  1027. return proto == WPA_PROTO_RSN ?
  1028. "WPA2-PSK" : "WPA-PSK";
  1029. case WPA_KEY_MGMT_NONE:
  1030. return "NONE";
  1031. case WPA_KEY_MGMT_IEEE8021X_NO_WPA:
  1032. return "IEEE 802.1X (no WPA)";
  1033. #ifdef CONFIG_IEEE80211R
  1034. case WPA_KEY_MGMT_FT_IEEE8021X:
  1035. return "FT-EAP";
  1036. case WPA_KEY_MGMT_FT_PSK:
  1037. return "FT-PSK";
  1038. #endif /* CONFIG_IEEE80211R */
  1039. #ifdef CONFIG_IEEE80211W
  1040. case WPA_KEY_MGMT_IEEE8021X_SHA256:
  1041. return "WPA2-EAP-SHA256";
  1042. case WPA_KEY_MGMT_PSK_SHA256:
  1043. return "WPA2-PSK-SHA256";
  1044. #endif /* CONFIG_IEEE80211W */
  1045. case WPA_KEY_MGMT_WPS:
  1046. return "WPS";
  1047. case WPA_KEY_MGMT_SAE:
  1048. return "SAE";
  1049. case WPA_KEY_MGMT_FT_SAE:
  1050. return "FT-SAE";
  1051. case WPA_KEY_MGMT_OSEN:
  1052. return "OSEN";
  1053. case WPA_KEY_MGMT_IEEE8021X_SUITE_B:
  1054. return "WPA2-EAP-SUITE-B";
  1055. case WPA_KEY_MGMT_IEEE8021X_SUITE_B_192:
  1056. return "WPA2-EAP-SUITE-B-192";
  1057. default:
  1058. return "UNKNOWN";
  1059. }
  1060. }
  1061. u32 wpa_akm_to_suite(int akm)
  1062. {
  1063. if (akm & WPA_KEY_MGMT_FT_IEEE8021X)
  1064. return WLAN_AKM_SUITE_FT_8021X;
  1065. if (akm & WPA_KEY_MGMT_FT_PSK)
  1066. return WLAN_AKM_SUITE_FT_PSK;
  1067. if (akm & WPA_KEY_MGMT_IEEE8021X)
  1068. return WLAN_AKM_SUITE_8021X;
  1069. if (akm & WPA_KEY_MGMT_IEEE8021X_SHA256)
  1070. return WLAN_AKM_SUITE_8021X_SHA256;
  1071. if (akm & WPA_KEY_MGMT_IEEE8021X)
  1072. return WLAN_AKM_SUITE_8021X;
  1073. if (akm & WPA_KEY_MGMT_PSK_SHA256)
  1074. return WLAN_AKM_SUITE_PSK_SHA256;
  1075. if (akm & WPA_KEY_MGMT_PSK)
  1076. return WLAN_AKM_SUITE_PSK;
  1077. if (akm & WPA_KEY_MGMT_CCKM)
  1078. return WLAN_AKM_SUITE_CCKM;
  1079. if (akm & WPA_KEY_MGMT_OSEN)
  1080. return WLAN_AKM_SUITE_OSEN;
  1081. if (akm & WPA_KEY_MGMT_IEEE8021X_SUITE_B)
  1082. return WLAN_AKM_SUITE_8021X_SUITE_B;
  1083. if (akm & WPA_KEY_MGMT_IEEE8021X_SUITE_B_192)
  1084. return WLAN_AKM_SUITE_8021X_SUITE_B_192;
  1085. return 0;
  1086. }
  1087. int wpa_compare_rsn_ie(int ft_initial_assoc,
  1088. const u8 *ie1, size_t ie1len,
  1089. const u8 *ie2, size_t ie2len)
  1090. {
  1091. if (ie1 == NULL || ie2 == NULL)
  1092. return -1;
  1093. if (ie1len == ie2len && os_memcmp(ie1, ie2, ie1len) == 0)
  1094. return 0; /* identical IEs */
  1095. #ifdef CONFIG_IEEE80211R
  1096. if (ft_initial_assoc) {
  1097. struct wpa_ie_data ie1d, ie2d;
  1098. /*
  1099. * The PMKID-List in RSN IE is different between Beacon/Probe
  1100. * Response/(Re)Association Request frames and EAPOL-Key
  1101. * messages in FT initial mobility domain association. Allow
  1102. * for this, but verify that other parts of the RSN IEs are
  1103. * identical.
  1104. */
  1105. if (wpa_parse_wpa_ie_rsn(ie1, ie1len, &ie1d) < 0 ||
  1106. wpa_parse_wpa_ie_rsn(ie2, ie2len, &ie2d) < 0)
  1107. return -1;
  1108. if (ie1d.proto == ie2d.proto &&
  1109. ie1d.pairwise_cipher == ie2d.pairwise_cipher &&
  1110. ie1d.group_cipher == ie2d.group_cipher &&
  1111. ie1d.key_mgmt == ie2d.key_mgmt &&
  1112. ie1d.capabilities == ie2d.capabilities &&
  1113. ie1d.mgmt_group_cipher == ie2d.mgmt_group_cipher)
  1114. return 0;
  1115. }
  1116. #endif /* CONFIG_IEEE80211R */
  1117. return -1;
  1118. }
  1119. #ifdef CONFIG_IEEE80211R
  1120. int wpa_insert_pmkid(u8 *ies, size_t ies_len, const u8 *pmkid)
  1121. {
  1122. u8 *start, *end, *rpos, *rend;
  1123. int added = 0;
  1124. start = ies;
  1125. end = ies + ies_len;
  1126. while (start < end) {
  1127. if (*start == WLAN_EID_RSN)
  1128. break;
  1129. start += 2 + start[1];
  1130. }
  1131. if (start >= end) {
  1132. wpa_printf(MSG_ERROR, "FT: Could not find RSN IE in "
  1133. "IEs data");
  1134. return -1;
  1135. }
  1136. wpa_hexdump(MSG_DEBUG, "FT: RSN IE before modification",
  1137. start, 2 + start[1]);
  1138. /* Find start of PMKID-Count */
  1139. rpos = start + 2;
  1140. rend = rpos + start[1];
  1141. /* Skip Version and Group Data Cipher Suite */
  1142. rpos += 2 + 4;
  1143. /* Skip Pairwise Cipher Suite Count and List */
  1144. rpos += 2 + WPA_GET_LE16(rpos) * RSN_SELECTOR_LEN;
  1145. /* Skip AKM Suite Count and List */
  1146. rpos += 2 + WPA_GET_LE16(rpos) * RSN_SELECTOR_LEN;
  1147. if (rpos == rend) {
  1148. /* Add RSN Capabilities */
  1149. os_memmove(rpos + 2, rpos, end - rpos);
  1150. *rpos++ = 0;
  1151. *rpos++ = 0;
  1152. } else {
  1153. /* Skip RSN Capabilities */
  1154. rpos += 2;
  1155. if (rpos > rend) {
  1156. wpa_printf(MSG_ERROR, "FT: Could not parse RSN IE in "
  1157. "IEs data");
  1158. return -1;
  1159. }
  1160. }
  1161. if (rpos == rend) {
  1162. /* No PMKID-Count field included; add it */
  1163. os_memmove(rpos + 2 + PMKID_LEN, rpos, end - rpos);
  1164. WPA_PUT_LE16(rpos, 1);
  1165. rpos += 2;
  1166. os_memcpy(rpos, pmkid, PMKID_LEN);
  1167. added += 2 + PMKID_LEN;
  1168. start[1] += 2 + PMKID_LEN;
  1169. } else {
  1170. /* PMKID-Count was included; use it */
  1171. if (WPA_GET_LE16(rpos) != 0) {
  1172. wpa_printf(MSG_ERROR, "FT: Unexpected PMKID "
  1173. "in RSN IE in EAPOL-Key data");
  1174. return -1;
  1175. }
  1176. WPA_PUT_LE16(rpos, 1);
  1177. rpos += 2;
  1178. os_memmove(rpos + PMKID_LEN, rpos, end - rpos);
  1179. os_memcpy(rpos, pmkid, PMKID_LEN);
  1180. added += PMKID_LEN;
  1181. start[1] += PMKID_LEN;
  1182. }
  1183. wpa_hexdump(MSG_DEBUG, "FT: RSN IE after modification "
  1184. "(PMKID inserted)", start, 2 + start[1]);
  1185. return added;
  1186. }
  1187. #endif /* CONFIG_IEEE80211R */
  1188. int wpa_cipher_key_len(int cipher)
  1189. {
  1190. switch (cipher) {
  1191. case WPA_CIPHER_CCMP_256:
  1192. case WPA_CIPHER_GCMP_256:
  1193. case WPA_CIPHER_BIP_GMAC_256:
  1194. case WPA_CIPHER_BIP_CMAC_256:
  1195. return 32;
  1196. case WPA_CIPHER_CCMP:
  1197. case WPA_CIPHER_GCMP:
  1198. case WPA_CIPHER_AES_128_CMAC:
  1199. case WPA_CIPHER_BIP_GMAC_128:
  1200. return 16;
  1201. case WPA_CIPHER_TKIP:
  1202. return 32;
  1203. case WPA_CIPHER_WEP104:
  1204. return 13;
  1205. case WPA_CIPHER_WEP40:
  1206. return 5;
  1207. }
  1208. return 0;
  1209. }
  1210. int wpa_cipher_rsc_len(int cipher)
  1211. {
  1212. switch (cipher) {
  1213. case WPA_CIPHER_CCMP_256:
  1214. case WPA_CIPHER_GCMP_256:
  1215. case WPA_CIPHER_CCMP:
  1216. case WPA_CIPHER_GCMP:
  1217. case WPA_CIPHER_TKIP:
  1218. return 6;
  1219. case WPA_CIPHER_WEP104:
  1220. case WPA_CIPHER_WEP40:
  1221. return 0;
  1222. }
  1223. return 0;
  1224. }
  1225. int wpa_cipher_to_alg(int cipher)
  1226. {
  1227. switch (cipher) {
  1228. case WPA_CIPHER_CCMP_256:
  1229. return WPA_ALG_CCMP_256;
  1230. case WPA_CIPHER_GCMP_256:
  1231. return WPA_ALG_GCMP_256;
  1232. case WPA_CIPHER_CCMP:
  1233. return WPA_ALG_CCMP;
  1234. case WPA_CIPHER_GCMP:
  1235. return WPA_ALG_GCMP;
  1236. case WPA_CIPHER_TKIP:
  1237. return WPA_ALG_TKIP;
  1238. case WPA_CIPHER_WEP104:
  1239. case WPA_CIPHER_WEP40:
  1240. return WPA_ALG_WEP;
  1241. case WPA_CIPHER_AES_128_CMAC:
  1242. return WPA_ALG_IGTK;
  1243. case WPA_CIPHER_BIP_GMAC_128:
  1244. return WPA_ALG_BIP_GMAC_128;
  1245. case WPA_CIPHER_BIP_GMAC_256:
  1246. return WPA_ALG_BIP_GMAC_256;
  1247. case WPA_CIPHER_BIP_CMAC_256:
  1248. return WPA_ALG_BIP_CMAC_256;
  1249. }
  1250. return WPA_ALG_NONE;
  1251. }
  1252. int wpa_cipher_valid_pairwise(int cipher)
  1253. {
  1254. return cipher == WPA_CIPHER_CCMP_256 ||
  1255. cipher == WPA_CIPHER_GCMP_256 ||
  1256. cipher == WPA_CIPHER_CCMP ||
  1257. cipher == WPA_CIPHER_GCMP ||
  1258. cipher == WPA_CIPHER_TKIP;
  1259. }
  1260. u32 wpa_cipher_to_suite(int proto, int cipher)
  1261. {
  1262. if (cipher & WPA_CIPHER_CCMP_256)
  1263. return RSN_CIPHER_SUITE_CCMP_256;
  1264. if (cipher & WPA_CIPHER_GCMP_256)
  1265. return RSN_CIPHER_SUITE_GCMP_256;
  1266. if (cipher & WPA_CIPHER_CCMP)
  1267. return (proto == WPA_PROTO_RSN ?
  1268. RSN_CIPHER_SUITE_CCMP : WPA_CIPHER_SUITE_CCMP);
  1269. if (cipher & WPA_CIPHER_GCMP)
  1270. return RSN_CIPHER_SUITE_GCMP;
  1271. if (cipher & WPA_CIPHER_TKIP)
  1272. return (proto == WPA_PROTO_RSN ?
  1273. RSN_CIPHER_SUITE_TKIP : WPA_CIPHER_SUITE_TKIP);
  1274. if (cipher & WPA_CIPHER_WEP104)
  1275. return (proto == WPA_PROTO_RSN ?
  1276. RSN_CIPHER_SUITE_WEP104 : WPA_CIPHER_SUITE_WEP104);
  1277. if (cipher & WPA_CIPHER_WEP40)
  1278. return (proto == WPA_PROTO_RSN ?
  1279. RSN_CIPHER_SUITE_WEP40 : WPA_CIPHER_SUITE_WEP40);
  1280. if (cipher & WPA_CIPHER_NONE)
  1281. return (proto == WPA_PROTO_RSN ?
  1282. RSN_CIPHER_SUITE_NONE : WPA_CIPHER_SUITE_NONE);
  1283. if (cipher & WPA_CIPHER_GTK_NOT_USED)
  1284. return RSN_CIPHER_SUITE_NO_GROUP_ADDRESSED;
  1285. if (cipher & WPA_CIPHER_AES_128_CMAC)
  1286. return RSN_CIPHER_SUITE_AES_128_CMAC;
  1287. if (cipher & WPA_CIPHER_BIP_GMAC_128)
  1288. return RSN_CIPHER_SUITE_BIP_GMAC_128;
  1289. if (cipher & WPA_CIPHER_BIP_GMAC_256)
  1290. return RSN_CIPHER_SUITE_BIP_GMAC_256;
  1291. if (cipher & WPA_CIPHER_BIP_CMAC_256)
  1292. return RSN_CIPHER_SUITE_BIP_CMAC_256;
  1293. return 0;
  1294. }
  1295. int rsn_cipher_put_suites(u8 *start, int ciphers)
  1296. {
  1297. u8 *pos = start;
  1298. if (ciphers & WPA_CIPHER_CCMP_256) {
  1299. RSN_SELECTOR_PUT(pos, RSN_CIPHER_SUITE_CCMP_256);
  1300. pos += RSN_SELECTOR_LEN;
  1301. }
  1302. if (ciphers & WPA_CIPHER_GCMP_256) {
  1303. RSN_SELECTOR_PUT(pos, RSN_CIPHER_SUITE_GCMP_256);
  1304. pos += RSN_SELECTOR_LEN;
  1305. }
  1306. if (ciphers & WPA_CIPHER_CCMP) {
  1307. RSN_SELECTOR_PUT(pos, RSN_CIPHER_SUITE_CCMP);
  1308. pos += RSN_SELECTOR_LEN;
  1309. }
  1310. if (ciphers & WPA_CIPHER_GCMP) {
  1311. RSN_SELECTOR_PUT(pos, RSN_CIPHER_SUITE_GCMP);
  1312. pos += RSN_SELECTOR_LEN;
  1313. }
  1314. if (ciphers & WPA_CIPHER_TKIP) {
  1315. RSN_SELECTOR_PUT(pos, RSN_CIPHER_SUITE_TKIP);
  1316. pos += RSN_SELECTOR_LEN;
  1317. }
  1318. if (ciphers & WPA_CIPHER_NONE) {
  1319. RSN_SELECTOR_PUT(pos, RSN_CIPHER_SUITE_NONE);
  1320. pos += RSN_SELECTOR_LEN;
  1321. }
  1322. return (pos - start) / RSN_SELECTOR_LEN;
  1323. }
  1324. int wpa_cipher_put_suites(u8 *start, int ciphers)
  1325. {
  1326. u8 *pos = start;
  1327. if (ciphers & WPA_CIPHER_CCMP) {
  1328. RSN_SELECTOR_PUT(pos, WPA_CIPHER_SUITE_CCMP);
  1329. pos += WPA_SELECTOR_LEN;
  1330. }
  1331. if (ciphers & WPA_CIPHER_TKIP) {
  1332. RSN_SELECTOR_PUT(pos, WPA_CIPHER_SUITE_TKIP);
  1333. pos += WPA_SELECTOR_LEN;
  1334. }
  1335. if (ciphers & WPA_CIPHER_NONE) {
  1336. RSN_SELECTOR_PUT(pos, WPA_CIPHER_SUITE_NONE);
  1337. pos += WPA_SELECTOR_LEN;
  1338. }
  1339. return (pos - start) / RSN_SELECTOR_LEN;
  1340. }
  1341. int wpa_pick_pairwise_cipher(int ciphers, int none_allowed)
  1342. {
  1343. if (ciphers & WPA_CIPHER_CCMP_256)
  1344. return WPA_CIPHER_CCMP_256;
  1345. if (ciphers & WPA_CIPHER_GCMP_256)
  1346. return WPA_CIPHER_GCMP_256;
  1347. if (ciphers & WPA_CIPHER_CCMP)
  1348. return WPA_CIPHER_CCMP;
  1349. if (ciphers & WPA_CIPHER_GCMP)
  1350. return WPA_CIPHER_GCMP;
  1351. if (ciphers & WPA_CIPHER_TKIP)
  1352. return WPA_CIPHER_TKIP;
  1353. if (none_allowed && (ciphers & WPA_CIPHER_NONE))
  1354. return WPA_CIPHER_NONE;
  1355. return -1;
  1356. }
  1357. int wpa_pick_group_cipher(int ciphers)
  1358. {
  1359. if (ciphers & WPA_CIPHER_CCMP_256)
  1360. return WPA_CIPHER_CCMP_256;
  1361. if (ciphers & WPA_CIPHER_GCMP_256)
  1362. return WPA_CIPHER_GCMP_256;
  1363. if (ciphers & WPA_CIPHER_CCMP)
  1364. return WPA_CIPHER_CCMP;
  1365. if (ciphers & WPA_CIPHER_GCMP)
  1366. return WPA_CIPHER_GCMP;
  1367. if (ciphers & WPA_CIPHER_GTK_NOT_USED)
  1368. return WPA_CIPHER_GTK_NOT_USED;
  1369. if (ciphers & WPA_CIPHER_TKIP)
  1370. return WPA_CIPHER_TKIP;
  1371. if (ciphers & WPA_CIPHER_WEP104)
  1372. return WPA_CIPHER_WEP104;
  1373. if (ciphers & WPA_CIPHER_WEP40)
  1374. return WPA_CIPHER_WEP40;
  1375. return -1;
  1376. }
  1377. int wpa_parse_cipher(const char *value)
  1378. {
  1379. int val = 0, last;
  1380. char *start, *end, *buf;
  1381. buf = os_strdup(value);
  1382. if (buf == NULL)
  1383. return -1;
  1384. start = buf;
  1385. while (*start != '\0') {
  1386. while (*start == ' ' || *start == '\t')
  1387. start++;
  1388. if (*start == '\0')
  1389. break;
  1390. end = start;
  1391. while (*end != ' ' && *end != '\t' && *end != '\0')
  1392. end++;
  1393. last = *end == '\0';
  1394. *end = '\0';
  1395. if (os_strcmp(start, "CCMP-256") == 0)
  1396. val |= WPA_CIPHER_CCMP_256;
  1397. else if (os_strcmp(start, "GCMP-256") == 0)
  1398. val |= WPA_CIPHER_GCMP_256;
  1399. else if (os_strcmp(start, "CCMP") == 0)
  1400. val |= WPA_CIPHER_CCMP;
  1401. else if (os_strcmp(start, "GCMP") == 0)
  1402. val |= WPA_CIPHER_GCMP;
  1403. else if (os_strcmp(start, "TKIP") == 0)
  1404. val |= WPA_CIPHER_TKIP;
  1405. else if (os_strcmp(start, "WEP104") == 0)
  1406. val |= WPA_CIPHER_WEP104;
  1407. else if (os_strcmp(start, "WEP40") == 0)
  1408. val |= WPA_CIPHER_WEP40;
  1409. else if (os_strcmp(start, "NONE") == 0)
  1410. val |= WPA_CIPHER_NONE;
  1411. else if (os_strcmp(start, "GTK_NOT_USED") == 0)
  1412. val |= WPA_CIPHER_GTK_NOT_USED;
  1413. else {
  1414. os_free(buf);
  1415. return -1;
  1416. }
  1417. if (last)
  1418. break;
  1419. start = end + 1;
  1420. }
  1421. os_free(buf);
  1422. return val;
  1423. }
  1424. int wpa_write_ciphers(char *start, char *end, int ciphers, const char *delim)
  1425. {
  1426. char *pos = start;
  1427. int ret;
  1428. if (ciphers & WPA_CIPHER_CCMP_256) {
  1429. ret = os_snprintf(pos, end - pos, "%sCCMP-256",
  1430. pos == start ? "" : delim);
  1431. if (os_snprintf_error(end - pos, ret))
  1432. return -1;
  1433. pos += ret;
  1434. }
  1435. if (ciphers & WPA_CIPHER_GCMP_256) {
  1436. ret = os_snprintf(pos, end - pos, "%sGCMP-256",
  1437. pos == start ? "" : delim);
  1438. if (os_snprintf_error(end - pos, ret))
  1439. return -1;
  1440. pos += ret;
  1441. }
  1442. if (ciphers & WPA_CIPHER_CCMP) {
  1443. ret = os_snprintf(pos, end - pos, "%sCCMP",
  1444. pos == start ? "" : delim);
  1445. if (os_snprintf_error(end - pos, ret))
  1446. return -1;
  1447. pos += ret;
  1448. }
  1449. if (ciphers & WPA_CIPHER_GCMP) {
  1450. ret = os_snprintf(pos, end - pos, "%sGCMP",
  1451. pos == start ? "" : delim);
  1452. if (os_snprintf_error(end - pos, ret))
  1453. return -1;
  1454. pos += ret;
  1455. }
  1456. if (ciphers & WPA_CIPHER_TKIP) {
  1457. ret = os_snprintf(pos, end - pos, "%sTKIP",
  1458. pos == start ? "" : delim);
  1459. if (os_snprintf_error(end - pos, ret))
  1460. return -1;
  1461. pos += ret;
  1462. }
  1463. if (ciphers & WPA_CIPHER_WEP104) {
  1464. ret = os_snprintf(pos, end - pos, "%sWEP104",
  1465. pos == start ? "" : delim);
  1466. if (os_snprintf_error(end - pos, ret))
  1467. return -1;
  1468. pos += ret;
  1469. }
  1470. if (ciphers & WPA_CIPHER_WEP40) {
  1471. ret = os_snprintf(pos, end - pos, "%sWEP40",
  1472. pos == start ? "" : delim);
  1473. if (os_snprintf_error(end - pos, ret))
  1474. return -1;
  1475. pos += ret;
  1476. }
  1477. if (ciphers & WPA_CIPHER_NONE) {
  1478. ret = os_snprintf(pos, end - pos, "%sNONE",
  1479. pos == start ? "" : delim);
  1480. if (os_snprintf_error(end - pos, ret))
  1481. return -1;
  1482. pos += ret;
  1483. }
  1484. return pos - start;
  1485. }
  1486. int wpa_select_ap_group_cipher(int wpa, int wpa_pairwise, int rsn_pairwise)
  1487. {
  1488. int pairwise = 0;
  1489. /* Select group cipher based on the enabled pairwise cipher suites */
  1490. if (wpa & 1)
  1491. pairwise |= wpa_pairwise;
  1492. if (wpa & 2)
  1493. pairwise |= rsn_pairwise;
  1494. if (pairwise & WPA_CIPHER_TKIP)
  1495. return WPA_CIPHER_TKIP;
  1496. if ((pairwise & (WPA_CIPHER_CCMP | WPA_CIPHER_GCMP)) == WPA_CIPHER_GCMP)
  1497. return WPA_CIPHER_GCMP;
  1498. if ((pairwise & (WPA_CIPHER_GCMP_256 | WPA_CIPHER_CCMP |
  1499. WPA_CIPHER_GCMP)) == WPA_CIPHER_GCMP_256)
  1500. return WPA_CIPHER_GCMP_256;
  1501. if ((pairwise & (WPA_CIPHER_CCMP_256 | WPA_CIPHER_CCMP |
  1502. WPA_CIPHER_GCMP)) == WPA_CIPHER_CCMP_256)
  1503. return WPA_CIPHER_CCMP_256;
  1504. return WPA_CIPHER_CCMP;
  1505. }