mesh_rsn.c 20 KB

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  1. /*
  2. * WPA Supplicant - Mesh RSN routines
  3. * Copyright (c) 2013-2014, cozybit, Inc. All rights reserved.
  4. *
  5. * This software may be distributed under the terms of the BSD license.
  6. * See README for more details.
  7. */
  8. #include "utils/includes.h"
  9. #include "utils/common.h"
  10. #include "utils/eloop.h"
  11. #include "crypto/sha256.h"
  12. #include "crypto/random.h"
  13. #include "crypto/aes.h"
  14. #include "crypto/aes_siv.h"
  15. #include "rsn_supp/wpa.h"
  16. #include "ap/hostapd.h"
  17. #include "ap/wpa_auth.h"
  18. #include "ap/sta_info.h"
  19. #include "ap/ieee802_11.h"
  20. #include "wpa_supplicant_i.h"
  21. #include "driver_i.h"
  22. #include "wpas_glue.h"
  23. #include "mesh_mpm.h"
  24. #include "mesh_rsn.h"
  25. #define MESH_AUTH_TIMEOUT 10
  26. #define MESH_AUTH_RETRY 3
  27. void mesh_auth_timer(void *eloop_ctx, void *user_data)
  28. {
  29. struct wpa_supplicant *wpa_s = eloop_ctx;
  30. struct sta_info *sta = user_data;
  31. struct hostapd_data *hapd;
  32. if (sta->sae->state != SAE_ACCEPTED) {
  33. wpa_printf(MSG_DEBUG, "AUTH: Re-authenticate with " MACSTR
  34. " (attempt %d) ",
  35. MAC2STR(sta->addr), sta->sae_auth_retry);
  36. wpa_msg(wpa_s, MSG_INFO, MESH_SAE_AUTH_FAILURE "addr=" MACSTR,
  37. MAC2STR(sta->addr));
  38. if (sta->sae_auth_retry < MESH_AUTH_RETRY) {
  39. mesh_rsn_auth_sae_sta(wpa_s, sta);
  40. } else {
  41. hapd = wpa_s->ifmsh->bss[0];
  42. if (sta->sae_auth_retry > MESH_AUTH_RETRY) {
  43. ap_free_sta(hapd, sta);
  44. return;
  45. }
  46. /* block the STA if exceeded the number of attempts */
  47. wpa_mesh_set_plink_state(wpa_s, sta, PLINK_BLOCKED);
  48. sta->sae->state = SAE_NOTHING;
  49. wpa_msg(wpa_s, MSG_INFO, MESH_SAE_AUTH_BLOCKED "addr="
  50. MACSTR " duration=%d",
  51. MAC2STR(sta->addr),
  52. hapd->conf->ap_max_inactivity);
  53. }
  54. sta->sae_auth_retry++;
  55. }
  56. }
  57. static void auth_logger(void *ctx, const u8 *addr, logger_level level,
  58. const char *txt)
  59. {
  60. if (addr)
  61. wpa_printf(MSG_DEBUG, "AUTH: " MACSTR " - %s",
  62. MAC2STR(addr), txt);
  63. else
  64. wpa_printf(MSG_DEBUG, "AUTH: %s", txt);
  65. }
  66. static const u8 *auth_get_psk(void *ctx, const u8 *addr,
  67. const u8 *p2p_dev_addr, const u8 *prev_psk)
  68. {
  69. struct mesh_rsn *mesh_rsn = ctx;
  70. struct hostapd_data *hapd = mesh_rsn->wpa_s->ifmsh->bss[0];
  71. struct sta_info *sta = ap_get_sta(hapd, addr);
  72. wpa_printf(MSG_DEBUG, "AUTH: %s (addr=" MACSTR " prev_psk=%p)",
  73. __func__, MAC2STR(addr), prev_psk);
  74. if (sta && sta->auth_alg == WLAN_AUTH_SAE) {
  75. if (!sta->sae || prev_psk)
  76. return NULL;
  77. return sta->sae->pmk;
  78. }
  79. return NULL;
  80. }
  81. static int auth_set_key(void *ctx, int vlan_id, enum wpa_alg alg,
  82. const u8 *addr, int idx, u8 *key, size_t key_len)
  83. {
  84. struct mesh_rsn *mesh_rsn = ctx;
  85. u8 seq[6];
  86. os_memset(seq, 0, sizeof(seq));
  87. if (addr) {
  88. wpa_printf(MSG_DEBUG, "AUTH: %s(alg=%d addr=" MACSTR
  89. " key_idx=%d)",
  90. __func__, alg, MAC2STR(addr), idx);
  91. } else {
  92. wpa_printf(MSG_DEBUG, "AUTH: %s(alg=%d key_idx=%d)",
  93. __func__, alg, idx);
  94. }
  95. wpa_hexdump_key(MSG_DEBUG, "AUTH: set_key - key", key, key_len);
  96. return wpa_drv_set_key(mesh_rsn->wpa_s, alg, addr, idx,
  97. 1, seq, 6, key, key_len);
  98. }
  99. static int auth_start_ampe(void *ctx, const u8 *addr)
  100. {
  101. struct mesh_rsn *mesh_rsn = ctx;
  102. struct hostapd_data *hapd;
  103. struct sta_info *sta;
  104. if (mesh_rsn->wpa_s->current_ssid->mode != WPAS_MODE_MESH)
  105. return -1;
  106. hapd = mesh_rsn->wpa_s->ifmsh->bss[0];
  107. sta = ap_get_sta(hapd, addr);
  108. if (sta)
  109. eloop_cancel_timeout(mesh_auth_timer, mesh_rsn->wpa_s, sta);
  110. mesh_mpm_auth_peer(mesh_rsn->wpa_s, addr);
  111. return 0;
  112. }
  113. static int __mesh_rsn_auth_init(struct mesh_rsn *rsn, const u8 *addr,
  114. enum mfp_options ieee80211w)
  115. {
  116. struct wpa_auth_config conf;
  117. static const struct wpa_auth_callbacks cb = {
  118. .logger = auth_logger,
  119. .get_psk = auth_get_psk,
  120. .set_key = auth_set_key,
  121. .start_ampe = auth_start_ampe,
  122. };
  123. u8 seq[6] = {};
  124. wpa_printf(MSG_DEBUG, "AUTH: Initializing group state machine");
  125. os_memset(&conf, 0, sizeof(conf));
  126. conf.wpa = WPA_PROTO_RSN;
  127. conf.wpa_key_mgmt = WPA_KEY_MGMT_SAE;
  128. conf.wpa_pairwise = rsn->pairwise_cipher;
  129. conf.rsn_pairwise = rsn->pairwise_cipher;
  130. conf.wpa_group = rsn->group_cipher;
  131. conf.eapol_version = 0;
  132. conf.wpa_group_rekey = -1;
  133. #ifdef CONFIG_IEEE80211W
  134. conf.ieee80211w = ieee80211w;
  135. if (ieee80211w != NO_MGMT_FRAME_PROTECTION)
  136. conf.group_mgmt_cipher = rsn->mgmt_group_cipher;
  137. #endif /* CONFIG_IEEE80211W */
  138. rsn->auth = wpa_init(addr, &conf, &cb, rsn);
  139. if (rsn->auth == NULL) {
  140. wpa_printf(MSG_DEBUG, "AUTH: wpa_init() failed");
  141. return -1;
  142. }
  143. /* TODO: support rekeying */
  144. rsn->mgtk_len = wpa_cipher_key_len(conf.wpa_group);
  145. if (random_get_bytes(rsn->mgtk, rsn->mgtk_len) < 0)
  146. return -1;
  147. rsn->mgtk_key_id = 1;
  148. #ifdef CONFIG_IEEE80211W
  149. if (ieee80211w != NO_MGMT_FRAME_PROTECTION) {
  150. rsn->igtk_len = wpa_cipher_key_len(conf.group_mgmt_cipher);
  151. if (random_get_bytes(rsn->igtk, rsn->igtk_len) < 0)
  152. return -1;
  153. rsn->igtk_key_id = 4;
  154. /* group mgmt */
  155. wpa_hexdump_key(MSG_DEBUG, "mesh: Own TX IGTK",
  156. rsn->igtk, rsn->igtk_len);
  157. wpa_drv_set_key(rsn->wpa_s,
  158. wpa_cipher_to_alg(rsn->mgmt_group_cipher), NULL,
  159. rsn->igtk_key_id, 1,
  160. seq, sizeof(seq), rsn->igtk, rsn->igtk_len);
  161. }
  162. #endif /* CONFIG_IEEE80211W */
  163. /* group privacy / data frames */
  164. wpa_hexdump_key(MSG_DEBUG, "mesh: Own TX MGTK",
  165. rsn->mgtk, rsn->mgtk_len);
  166. wpa_drv_set_key(rsn->wpa_s, wpa_cipher_to_alg(rsn->group_cipher), NULL,
  167. rsn->mgtk_key_id, 1, seq, sizeof(seq),
  168. rsn->mgtk, rsn->mgtk_len);
  169. return 0;
  170. }
  171. static void mesh_rsn_deinit(struct mesh_rsn *rsn)
  172. {
  173. os_memset(rsn->mgtk, 0, sizeof(rsn->mgtk));
  174. rsn->mgtk_len = 0;
  175. os_memset(rsn->igtk, 0, sizeof(rsn->igtk));
  176. rsn->igtk_len = 0;
  177. if (rsn->auth)
  178. wpa_deinit(rsn->auth);
  179. }
  180. struct mesh_rsn *mesh_rsn_auth_init(struct wpa_supplicant *wpa_s,
  181. struct mesh_conf *conf)
  182. {
  183. struct mesh_rsn *mesh_rsn;
  184. struct hostapd_data *bss = wpa_s->ifmsh->bss[0];
  185. const u8 *ie;
  186. size_t ie_len;
  187. #ifdef CONFIG_PMKSA_CACHE_EXTERNAL
  188. struct external_pmksa_cache *entry;
  189. #endif /* CONFIG_PMKSA_CACHE_EXTERNAL */
  190. mesh_rsn = os_zalloc(sizeof(*mesh_rsn));
  191. if (mesh_rsn == NULL)
  192. return NULL;
  193. mesh_rsn->wpa_s = wpa_s;
  194. mesh_rsn->pairwise_cipher = conf->pairwise_cipher;
  195. mesh_rsn->group_cipher = conf->group_cipher;
  196. mesh_rsn->mgmt_group_cipher = conf->mgmt_group_cipher;
  197. if (__mesh_rsn_auth_init(mesh_rsn, wpa_s->own_addr,
  198. conf->ieee80211w) < 0) {
  199. mesh_rsn_deinit(mesh_rsn);
  200. os_free(mesh_rsn);
  201. return NULL;
  202. }
  203. bss->wpa_auth = mesh_rsn->auth;
  204. #ifdef CONFIG_PMKSA_CACHE_EXTERNAL
  205. while ((entry = dl_list_last(&wpa_s->mesh_external_pmksa_cache,
  206. struct external_pmksa_cache,
  207. list)) != NULL) {
  208. int ret;
  209. ret = wpa_auth_pmksa_add_entry(bss->wpa_auth,
  210. entry->pmksa_cache);
  211. dl_list_del(&entry->list);
  212. os_free(entry);
  213. if (ret < 0)
  214. return NULL;
  215. }
  216. #endif /* CONFIG_PMKSA_CACHE_EXTERNAL */
  217. ie = wpa_auth_get_wpa_ie(mesh_rsn->auth, &ie_len);
  218. conf->rsn_ie = (u8 *) ie;
  219. conf->rsn_ie_len = ie_len;
  220. wpa_supplicant_rsn_supp_set_config(wpa_s, wpa_s->current_ssid);
  221. return mesh_rsn;
  222. }
  223. static int index_within_array(const int *array, int idx)
  224. {
  225. int i;
  226. for (i = 0; i < idx; i++) {
  227. if (array[i] == -1)
  228. return 0;
  229. }
  230. return 1;
  231. }
  232. static int mesh_rsn_sae_group(struct wpa_supplicant *wpa_s,
  233. struct sae_data *sae)
  234. {
  235. int *groups = wpa_s->ifmsh->bss[0]->conf->sae_groups;
  236. /* Configuration may have changed, so validate current index */
  237. if (!index_within_array(groups, wpa_s->mesh_rsn->sae_group_index))
  238. return -1;
  239. for (;;) {
  240. int group = groups[wpa_s->mesh_rsn->sae_group_index];
  241. if (group <= 0)
  242. break;
  243. if (sae_set_group(sae, group) == 0) {
  244. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Selected SAE group %d",
  245. sae->group);
  246. return 0;
  247. }
  248. wpa_s->mesh_rsn->sae_group_index++;
  249. }
  250. return -1;
  251. }
  252. static int mesh_rsn_build_sae_commit(struct wpa_supplicant *wpa_s,
  253. struct wpa_ssid *ssid,
  254. struct sta_info *sta)
  255. {
  256. if (ssid->passphrase == NULL) {
  257. wpa_msg(wpa_s, MSG_DEBUG, "SAE: No password available");
  258. return -1;
  259. }
  260. if (mesh_rsn_sae_group(wpa_s, sta->sae) < 0) {
  261. wpa_msg(wpa_s, MSG_DEBUG, "SAE: Failed to select group");
  262. return -1;
  263. }
  264. return sae_prepare_commit(wpa_s->own_addr, sta->addr,
  265. (u8 *) ssid->passphrase,
  266. os_strlen(ssid->passphrase), sta->sae);
  267. }
  268. /* initiate new SAE authentication with sta */
  269. int mesh_rsn_auth_sae_sta(struct wpa_supplicant *wpa_s,
  270. struct sta_info *sta)
  271. {
  272. struct hostapd_data *hapd = wpa_s->ifmsh->bss[0];
  273. struct wpa_ssid *ssid = wpa_s->current_ssid;
  274. struct rsn_pmksa_cache_entry *pmksa;
  275. unsigned int rnd;
  276. int ret;
  277. if (!ssid) {
  278. wpa_msg(wpa_s, MSG_DEBUG,
  279. "AUTH: No current_ssid known to initiate new SAE");
  280. return -1;
  281. }
  282. if (!sta->sae) {
  283. sta->sae = os_zalloc(sizeof(*sta->sae));
  284. if (sta->sae == NULL)
  285. return -1;
  286. }
  287. pmksa = wpa_auth_pmksa_get(hapd->wpa_auth, sta->addr, NULL);
  288. if (pmksa) {
  289. if (!sta->wpa_sm)
  290. sta->wpa_sm = wpa_auth_sta_init(hapd->wpa_auth,
  291. sta->addr, NULL);
  292. if (!sta->wpa_sm) {
  293. wpa_printf(MSG_ERROR,
  294. "mesh: Failed to initialize RSN state machine");
  295. return -1;
  296. }
  297. wpa_printf(MSG_DEBUG,
  298. "AUTH: Mesh PMKSA cache entry found for " MACSTR
  299. " - try to use PMKSA caching instead of new SAE authentication",
  300. MAC2STR(sta->addr));
  301. wpa_auth_pmksa_set_to_sm(pmksa, sta->wpa_sm, hapd->wpa_auth,
  302. sta->sae->pmkid, sta->sae->pmk);
  303. sae_accept_sta(hapd, sta);
  304. sta->mesh_sae_pmksa_caching = 1;
  305. return 0;
  306. }
  307. sta->mesh_sae_pmksa_caching = 0;
  308. if (mesh_rsn_build_sae_commit(wpa_s, ssid, sta))
  309. return -1;
  310. wpa_msg(wpa_s, MSG_DEBUG,
  311. "AUTH: started authentication with SAE peer: " MACSTR,
  312. MAC2STR(sta->addr));
  313. ret = auth_sae_init_committed(hapd, sta);
  314. if (ret)
  315. return ret;
  316. eloop_cancel_timeout(mesh_auth_timer, wpa_s, sta);
  317. rnd = rand() % MESH_AUTH_TIMEOUT;
  318. eloop_register_timeout(MESH_AUTH_TIMEOUT + rnd, 0, mesh_auth_timer,
  319. wpa_s, sta);
  320. return 0;
  321. }
  322. void mesh_rsn_get_pmkid(struct mesh_rsn *rsn, struct sta_info *sta, u8 *pmkid)
  323. {
  324. os_memcpy(pmkid, sta->sae->pmkid, SAE_PMKID_LEN);
  325. }
  326. static void
  327. mesh_rsn_derive_aek(struct mesh_rsn *rsn, struct sta_info *sta)
  328. {
  329. u8 *myaddr = rsn->wpa_s->own_addr;
  330. u8 *peer = sta->addr;
  331. u8 *addr1, *addr2;
  332. u8 context[RSN_SELECTOR_LEN + 2 * ETH_ALEN], *ptr = context;
  333. /*
  334. * AEK = KDF-Hash-256(PMK, "AEK Derivation", Selected AKM Suite ||
  335. * min(localMAC, peerMAC) || max(localMAC, peerMAC))
  336. */
  337. /* Selected AKM Suite: SAE */
  338. RSN_SELECTOR_PUT(ptr, RSN_AUTH_KEY_MGMT_SAE);
  339. ptr += RSN_SELECTOR_LEN;
  340. if (os_memcmp(myaddr, peer, ETH_ALEN) < 0) {
  341. addr1 = myaddr;
  342. addr2 = peer;
  343. } else {
  344. addr1 = peer;
  345. addr2 = myaddr;
  346. }
  347. os_memcpy(ptr, addr1, ETH_ALEN);
  348. ptr += ETH_ALEN;
  349. os_memcpy(ptr, addr2, ETH_ALEN);
  350. sha256_prf(sta->sae->pmk, sizeof(sta->sae->pmk), "AEK Derivation",
  351. context, sizeof(context), sta->aek, sizeof(sta->aek));
  352. }
  353. /* derive mesh temporal key from pmk */
  354. int mesh_rsn_derive_mtk(struct wpa_supplicant *wpa_s, struct sta_info *sta)
  355. {
  356. u8 *ptr;
  357. u8 *min, *max;
  358. u8 *myaddr = wpa_s->own_addr;
  359. u8 *peer = sta->addr;
  360. u8 context[2 * WPA_NONCE_LEN + 2 * 2 + RSN_SELECTOR_LEN + 2 * ETH_ALEN];
  361. /*
  362. * MTK = KDF-Hash-Length(PMK, "Temporal Key Derivation", min(localNonce,
  363. * peerNonce) || max(localNonce, peerNonce) || min(localLinkID,
  364. * peerLinkID) || max(localLinkID, peerLinkID) || Selected AKM Suite ||
  365. * min(localMAC, peerMAC) || max(localMAC, peerMAC))
  366. */
  367. ptr = context;
  368. if (os_memcmp(sta->my_nonce, sta->peer_nonce, WPA_NONCE_LEN) < 0) {
  369. min = sta->my_nonce;
  370. max = sta->peer_nonce;
  371. } else {
  372. min = sta->peer_nonce;
  373. max = sta->my_nonce;
  374. }
  375. os_memcpy(ptr, min, WPA_NONCE_LEN);
  376. ptr += WPA_NONCE_LEN;
  377. os_memcpy(ptr, max, WPA_NONCE_LEN);
  378. ptr += WPA_NONCE_LEN;
  379. if (sta->my_lid < sta->peer_lid) {
  380. WPA_PUT_LE16(ptr, sta->my_lid);
  381. ptr += 2;
  382. WPA_PUT_LE16(ptr, sta->peer_lid);
  383. ptr += 2;
  384. } else {
  385. WPA_PUT_LE16(ptr, sta->peer_lid);
  386. ptr += 2;
  387. WPA_PUT_LE16(ptr, sta->my_lid);
  388. ptr += 2;
  389. }
  390. /* Selected AKM Suite: SAE */
  391. RSN_SELECTOR_PUT(ptr, RSN_AUTH_KEY_MGMT_SAE);
  392. ptr += RSN_SELECTOR_LEN;
  393. if (os_memcmp(myaddr, peer, ETH_ALEN) < 0) {
  394. min = myaddr;
  395. max = peer;
  396. } else {
  397. min = peer;
  398. max = myaddr;
  399. }
  400. os_memcpy(ptr, min, ETH_ALEN);
  401. ptr += ETH_ALEN;
  402. os_memcpy(ptr, max, ETH_ALEN);
  403. sta->mtk_len = wpa_cipher_key_len(wpa_s->mesh_rsn->pairwise_cipher);
  404. sha256_prf(sta->sae->pmk, SAE_PMK_LEN,
  405. "Temporal Key Derivation", context, sizeof(context),
  406. sta->mtk, sta->mtk_len);
  407. return 0;
  408. }
  409. void mesh_rsn_init_ampe_sta(struct wpa_supplicant *wpa_s, struct sta_info *sta)
  410. {
  411. if (random_get_bytes(sta->my_nonce, WPA_NONCE_LEN) < 0) {
  412. wpa_printf(MSG_INFO, "mesh: Failed to derive random nonce");
  413. /* TODO: How to handle this more cleanly? */
  414. }
  415. os_memset(sta->peer_nonce, 0, WPA_NONCE_LEN);
  416. mesh_rsn_derive_aek(wpa_s->mesh_rsn, sta);
  417. }
  418. /* insert AMPE and encrypted MIC at @ie.
  419. * @mesh_rsn: mesh RSN context
  420. * @sta: STA we're sending to
  421. * @cat: pointer to category code in frame header.
  422. * @buf: wpabuf to add encrypted AMPE and MIC to.
  423. * */
  424. int mesh_rsn_protect_frame(struct mesh_rsn *rsn, struct sta_info *sta,
  425. const u8 *cat, struct wpabuf *buf)
  426. {
  427. struct ieee80211_ampe_ie *ampe;
  428. u8 const *ie = wpabuf_head_u8(buf) + wpabuf_len(buf);
  429. u8 *ampe_ie, *pos, *mic_payload;
  430. const u8 *aad[] = { rsn->wpa_s->own_addr, sta->addr, cat };
  431. const size_t aad_len[] = { ETH_ALEN, ETH_ALEN, ie - cat };
  432. int ret = 0;
  433. size_t len;
  434. len = sizeof(*ampe);
  435. if (cat[1] == PLINK_OPEN)
  436. len += rsn->mgtk_len + WPA_KEY_RSC_LEN + 4;
  437. #ifdef CONFIG_IEEE80211W
  438. if (cat[1] == PLINK_OPEN && rsn->igtk_len)
  439. len += 2 + 6 + rsn->igtk_len;
  440. #endif /* CONFIG_IEEE80211W */
  441. if (2 + AES_BLOCK_SIZE + 2 + len > wpabuf_tailroom(buf)) {
  442. wpa_printf(MSG_ERROR, "protect frame: buffer too small");
  443. return -EINVAL;
  444. }
  445. ampe_ie = os_zalloc(2 + len);
  446. if (!ampe_ie) {
  447. wpa_printf(MSG_ERROR, "protect frame: out of memory");
  448. return -ENOMEM;
  449. }
  450. /* IE: AMPE */
  451. ampe_ie[0] = WLAN_EID_AMPE;
  452. ampe_ie[1] = len;
  453. ampe = (struct ieee80211_ampe_ie *) (ampe_ie + 2);
  454. RSN_SELECTOR_PUT(ampe->selected_pairwise_suite,
  455. RSN_CIPHER_SUITE_CCMP);
  456. os_memcpy(ampe->local_nonce, sta->my_nonce, WPA_NONCE_LEN);
  457. os_memcpy(ampe->peer_nonce, sta->peer_nonce, WPA_NONCE_LEN);
  458. pos = (u8 *) (ampe + 1);
  459. if (cat[1] != PLINK_OPEN)
  460. goto skip_keys;
  461. /* TODO: Key Replay Counter[8] optionally for
  462. * Mesh Group Key Inform/Acknowledge frames */
  463. /* TODO: static mgtk for now since we don't support rekeying! */
  464. /*
  465. * GTKdata[variable]:
  466. * MGTK[variable] || Key RSC[8] || GTKExpirationTime[4]
  467. */
  468. os_memcpy(pos, rsn->mgtk, rsn->mgtk_len);
  469. pos += rsn->mgtk_len;
  470. wpa_drv_get_seqnum(rsn->wpa_s, NULL, rsn->mgtk_key_id, pos);
  471. pos += WPA_KEY_RSC_LEN;
  472. /* Use fixed GTKExpirationTime for now */
  473. WPA_PUT_LE32(pos, 0xffffffff);
  474. pos += 4;
  475. #ifdef CONFIG_IEEE80211W
  476. /*
  477. * IGTKdata[variable]:
  478. * Key ID[2], IPN[6], IGTK[variable]
  479. */
  480. if (rsn->igtk_len) {
  481. WPA_PUT_LE16(pos, rsn->igtk_key_id);
  482. pos += 2;
  483. wpa_drv_get_seqnum(rsn->wpa_s, NULL, rsn->igtk_key_id, pos);
  484. pos += 6;
  485. os_memcpy(pos, rsn->igtk, rsn->igtk_len);
  486. }
  487. #endif /* CONFIG_IEEE80211W */
  488. skip_keys:
  489. wpa_hexdump_key(MSG_DEBUG, "mesh: Plaintext AMPE element",
  490. ampe_ie, 2 + len);
  491. /* IE: MIC */
  492. wpabuf_put_u8(buf, WLAN_EID_MIC);
  493. wpabuf_put_u8(buf, AES_BLOCK_SIZE);
  494. /* MIC field is output ciphertext */
  495. /* encrypt after MIC */
  496. mic_payload = wpabuf_put(buf, 2 + len + AES_BLOCK_SIZE);
  497. if (aes_siv_encrypt(sta->aek, sizeof(sta->aek), ampe_ie, 2 + len, 3,
  498. aad, aad_len, mic_payload)) {
  499. wpa_printf(MSG_ERROR, "protect frame: failed to encrypt");
  500. ret = -ENOMEM;
  501. }
  502. os_free(ampe_ie);
  503. return ret;
  504. }
  505. int mesh_rsn_process_ampe(struct wpa_supplicant *wpa_s, struct sta_info *sta,
  506. struct ieee802_11_elems *elems, const u8 *cat,
  507. const u8 *chosen_pmk,
  508. const u8 *start, size_t elems_len)
  509. {
  510. int ret = 0;
  511. struct ieee80211_ampe_ie *ampe;
  512. u8 null_nonce[WPA_NONCE_LEN] = {};
  513. u8 ampe_eid;
  514. u8 ampe_ie_len;
  515. u8 *ampe_buf, *crypt = NULL, *pos, *end;
  516. size_t crypt_len;
  517. const u8 *aad[] = { sta->addr, wpa_s->own_addr, cat };
  518. const size_t aad_len[] = { ETH_ALEN, ETH_ALEN,
  519. (elems->mic - 2) - cat };
  520. size_t key_len;
  521. if (!sta->sae) {
  522. struct hostapd_data *hapd = wpa_s->ifmsh->bss[0];
  523. if (!wpa_auth_pmksa_get(hapd->wpa_auth, sta->addr, NULL)) {
  524. wpa_printf(MSG_INFO,
  525. "Mesh RSN: SAE is not prepared yet");
  526. return -1;
  527. }
  528. mesh_rsn_auth_sae_sta(wpa_s, sta);
  529. }
  530. if (chosen_pmk && os_memcmp(chosen_pmk, sta->sae->pmkid, PMKID_LEN)) {
  531. wpa_msg(wpa_s, MSG_DEBUG,
  532. "Mesh RSN: Invalid PMKID (Chosen PMK did not match calculated PMKID)");
  533. return -1;
  534. }
  535. if (!elems->mic || elems->mic_len < AES_BLOCK_SIZE) {
  536. wpa_msg(wpa_s, MSG_DEBUG, "Mesh RSN: missing mic ie");
  537. return -1;
  538. }
  539. ampe_buf = (u8 *) elems->mic + elems->mic_len;
  540. if ((int) elems_len < ampe_buf - start)
  541. return -1;
  542. crypt_len = elems_len - (elems->mic - start);
  543. if (crypt_len < 2 + AES_BLOCK_SIZE) {
  544. wpa_msg(wpa_s, MSG_DEBUG, "Mesh RSN: missing ampe ie");
  545. return -1;
  546. }
  547. /* crypt is modified by siv_decrypt */
  548. crypt = os_zalloc(crypt_len);
  549. if (!crypt) {
  550. wpa_printf(MSG_ERROR, "Mesh RSN: out of memory");
  551. ret = -ENOMEM;
  552. goto free;
  553. }
  554. os_memcpy(crypt, elems->mic, crypt_len);
  555. if (aes_siv_decrypt(sta->aek, sizeof(sta->aek), crypt, crypt_len, 3,
  556. aad, aad_len, ampe_buf)) {
  557. wpa_printf(MSG_ERROR, "Mesh RSN: frame verification failed!");
  558. ret = -2;
  559. goto free;
  560. }
  561. crypt_len -= AES_BLOCK_SIZE;
  562. wpa_hexdump_key(MSG_DEBUG, "mesh: Decrypted AMPE element",
  563. ampe_buf, crypt_len);
  564. ampe_eid = *ampe_buf++;
  565. ampe_ie_len = *ampe_buf++;
  566. if (ampe_eid != WLAN_EID_AMPE ||
  567. (size_t) 2 + ampe_ie_len > crypt_len ||
  568. ampe_ie_len < sizeof(struct ieee80211_ampe_ie)) {
  569. wpa_msg(wpa_s, MSG_DEBUG, "Mesh RSN: invalid ampe ie");
  570. ret = -1;
  571. goto free;
  572. }
  573. ampe = (struct ieee80211_ampe_ie *) ampe_buf;
  574. pos = (u8 *) (ampe + 1);
  575. end = ampe_buf + ampe_ie_len;
  576. if (os_memcmp(ampe->peer_nonce, null_nonce, WPA_NONCE_LEN) != 0 &&
  577. os_memcmp(ampe->peer_nonce, sta->my_nonce, WPA_NONCE_LEN) != 0) {
  578. wpa_msg(wpa_s, MSG_DEBUG, "Mesh RSN: invalid peer nonce");
  579. ret = -1;
  580. goto free;
  581. }
  582. os_memcpy(sta->peer_nonce, ampe->local_nonce,
  583. sizeof(ampe->local_nonce));
  584. /* TODO: Key Replay Counter[8] in Mesh Group Key Inform/Acknowledge
  585. * frames */
  586. /*
  587. * GTKdata shall not be included in Mesh Peering Confirm. While the
  588. * standard does not state the same about IGTKdata, that same constraint
  589. * needs to apply for it. It makes no sense to include the keys in Mesh
  590. * Peering Close frames either, so while the standard does not seem to
  591. * have a shall statement for these, they are described without
  592. * mentioning GTKdata.
  593. *
  594. * An earlier implementation used to add GTKdata to both Mesh Peering
  595. * Open and Mesh Peering Confirm frames, so ignore the possibly present
  596. * GTKdata frame without rejecting the frame as a backwards
  597. * compatibility mechanism.
  598. */
  599. if (cat[1] != PLINK_OPEN) {
  600. if (end > pos) {
  601. wpa_hexdump_key(MSG_DEBUG,
  602. "mesh: Ignore unexpected GTKdata(etc.) fields in the end of AMPE element in Mesh Peering Confirm/Close",
  603. pos, end - pos);
  604. }
  605. goto free;
  606. }
  607. /*
  608. * GTKdata[variable]:
  609. * MGTK[variable] || Key RSC[8] || GTKExpirationTime[4]
  610. */
  611. sta->mgtk_key_id = 1; /* FIX: Where to get Key ID? */
  612. key_len = wpa_cipher_key_len(wpa_s->mesh_rsn->group_cipher);
  613. if ((int) key_len + WPA_KEY_RSC_LEN + 4 > end - pos) {
  614. wpa_dbg(wpa_s, MSG_DEBUG, "mesh: Truncated AMPE element");
  615. ret = -1;
  616. goto free;
  617. }
  618. sta->mgtk_len = key_len;
  619. os_memcpy(sta->mgtk, pos, sta->mgtk_len);
  620. wpa_hexdump_key(MSG_DEBUG, "mesh: GTKdata - MGTK",
  621. sta->mgtk, sta->mgtk_len);
  622. pos += sta->mgtk_len;
  623. wpa_hexdump(MSG_DEBUG, "mesh: GTKdata - MGTK - Key RSC",
  624. pos, WPA_KEY_RSC_LEN);
  625. os_memcpy(sta->mgtk_rsc, pos, sizeof(sta->mgtk_rsc));
  626. pos += WPA_KEY_RSC_LEN;
  627. wpa_printf(MSG_DEBUG,
  628. "mesh: GTKdata - MGTK - GTKExpirationTime: %u seconds",
  629. WPA_GET_LE32(pos));
  630. pos += 4;
  631. #ifdef CONFIG_IEEE80211W
  632. /*
  633. * IGTKdata[variable]:
  634. * Key ID[2], IPN[6], IGTK[variable]
  635. */
  636. key_len = wpa_cipher_key_len(wpa_s->mesh_rsn->mgmt_group_cipher);
  637. if (end - pos >= (int) (2 + 6 + key_len)) {
  638. sta->igtk_key_id = WPA_GET_LE16(pos);
  639. wpa_printf(MSG_DEBUG, "mesh: IGTKdata - Key ID %u",
  640. sta->igtk_key_id);
  641. pos += 2;
  642. os_memcpy(sta->igtk_rsc, pos, sizeof(sta->igtk_rsc));
  643. wpa_hexdump(MSG_DEBUG, "mesh: IGTKdata - IPN",
  644. sta->igtk_rsc, sizeof(sta->igtk_rsc));
  645. pos += 6;
  646. os_memcpy(sta->igtk, pos, key_len);
  647. sta->igtk_len = key_len;
  648. wpa_hexdump_key(MSG_DEBUG, "mesh: IGTKdata - IGTK",
  649. sta->igtk, sta->igtk_len);
  650. }
  651. #endif /* CONFIG_IEEE80211W */
  652. free:
  653. os_free(crypt);
  654. return ret;
  655. }