sme.c 35 KB

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  1. /*
  2. * wpa_supplicant - SME
  3. * Copyright (c) 2009-2012, 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 "utils/eloop.h"
  11. #include "common/ieee802_11_defs.h"
  12. #include "common/ieee802_11_common.h"
  13. #include "eapol_supp/eapol_supp_sm.h"
  14. #include "common/wpa_common.h"
  15. #include "common/sae.h"
  16. #include "rsn_supp/wpa.h"
  17. #include "rsn_supp/pmksa_cache.h"
  18. #include "config.h"
  19. #include "wpa_supplicant_i.h"
  20. #include "driver_i.h"
  21. #include "wpas_glue.h"
  22. #include "wps_supplicant.h"
  23. #include "p2p_supplicant.h"
  24. #include "notify.h"
  25. #include "bss.h"
  26. #include "scan.h"
  27. #include "sme.h"
  28. #include "hs20_supplicant.h"
  29. #define SME_AUTH_TIMEOUT 5
  30. #define SME_ASSOC_TIMEOUT 5
  31. static void sme_auth_timer(void *eloop_ctx, void *timeout_ctx);
  32. static void sme_assoc_timer(void *eloop_ctx, void *timeout_ctx);
  33. static void sme_obss_scan_timeout(void *eloop_ctx, void *timeout_ctx);
  34. #ifdef CONFIG_IEEE80211W
  35. static void sme_stop_sa_query(struct wpa_supplicant *wpa_s);
  36. #endif /* CONFIG_IEEE80211W */
  37. #ifdef CONFIG_SAE
  38. static struct wpabuf * sme_auth_build_sae_commit(struct wpa_supplicant *wpa_s,
  39. struct wpa_ssid *ssid,
  40. const u8 *bssid)
  41. {
  42. struct wpabuf *buf;
  43. if (ssid->passphrase == NULL) {
  44. wpa_printf(MSG_DEBUG, "SAE: No password available");
  45. return NULL;
  46. }
  47. if (sae_prepare_commit(wpa_s->own_addr, bssid,
  48. (u8 *) ssid->passphrase,
  49. os_strlen(ssid->passphrase),
  50. &wpa_s->sme.sae) < 0) {
  51. wpa_printf(MSG_DEBUG, "SAE: Could not pick PWE");
  52. return NULL;
  53. }
  54. buf = wpabuf_alloc(4 + SAE_COMMIT_MAX_LEN);
  55. if (buf == NULL)
  56. return NULL;
  57. wpabuf_put_le16(buf, 1); /* Transaction seq# */
  58. wpabuf_put_le16(buf, WLAN_STATUS_SUCCESS);
  59. sae_write_commit(&wpa_s->sme.sae, buf);
  60. return buf;
  61. }
  62. static struct wpabuf * sme_auth_build_sae_confirm(struct wpa_supplicant *wpa_s)
  63. {
  64. struct wpabuf *buf;
  65. buf = wpabuf_alloc(4 + 2);
  66. if (buf == NULL)
  67. return NULL;
  68. wpabuf_put_le16(buf, 2); /* Transaction seq# */
  69. wpabuf_put_le16(buf, WLAN_STATUS_SUCCESS);
  70. wpabuf_put_le16(buf, wpa_s->sme.sae.send_confirm);
  71. wpa_s->sme.sae.send_confirm++;
  72. /* TODO: Confirm */
  73. return buf;
  74. }
  75. #endif /* CONFIG_SAE */
  76. static void sme_send_authentication(struct wpa_supplicant *wpa_s,
  77. struct wpa_bss *bss, struct wpa_ssid *ssid,
  78. int start)
  79. {
  80. struct wpa_driver_auth_params params;
  81. struct wpa_ssid *old_ssid;
  82. #ifdef CONFIG_IEEE80211R
  83. const u8 *ie;
  84. #endif /* CONFIG_IEEE80211R */
  85. #ifdef CONFIG_IEEE80211R
  86. const u8 *md = NULL;
  87. #endif /* CONFIG_IEEE80211R */
  88. int i, bssid_changed;
  89. struct wpabuf *resp = NULL;
  90. u8 ext_capab[10];
  91. int ext_capab_len;
  92. if (bss == NULL) {
  93. wpa_msg(wpa_s, MSG_ERROR, "SME: No scan result available for "
  94. "the network");
  95. return;
  96. }
  97. wpa_s->current_bss = bss;
  98. os_memset(&params, 0, sizeof(params));
  99. wpa_s->reassociate = 0;
  100. params.freq = bss->freq;
  101. params.bssid = bss->bssid;
  102. params.ssid = bss->ssid;
  103. params.ssid_len = bss->ssid_len;
  104. params.p2p = ssid->p2p_group;
  105. if (wpa_s->sme.ssid_len != params.ssid_len ||
  106. os_memcmp(wpa_s->sme.ssid, params.ssid, params.ssid_len) != 0)
  107. wpa_s->sme.prev_bssid_set = 0;
  108. wpa_s->sme.freq = params.freq;
  109. os_memcpy(wpa_s->sme.ssid, params.ssid, params.ssid_len);
  110. wpa_s->sme.ssid_len = params.ssid_len;
  111. params.auth_alg = WPA_AUTH_ALG_OPEN;
  112. #ifdef IEEE8021X_EAPOL
  113. if (ssid->key_mgmt & WPA_KEY_MGMT_IEEE8021X_NO_WPA) {
  114. if (ssid->leap) {
  115. if (ssid->non_leap == 0)
  116. params.auth_alg = WPA_AUTH_ALG_LEAP;
  117. else
  118. params.auth_alg |= WPA_AUTH_ALG_LEAP;
  119. }
  120. }
  121. #endif /* IEEE8021X_EAPOL */
  122. wpa_dbg(wpa_s, MSG_DEBUG, "Automatic auth_alg selection: 0x%x",
  123. params.auth_alg);
  124. if (ssid->auth_alg) {
  125. params.auth_alg = ssid->auth_alg;
  126. wpa_dbg(wpa_s, MSG_DEBUG, "Overriding auth_alg selection: "
  127. "0x%x", params.auth_alg);
  128. }
  129. #ifdef CONFIG_SAE
  130. if (wpa_key_mgmt_sae(ssid->key_mgmt)) {
  131. const u8 *rsn;
  132. struct wpa_ie_data ied;
  133. rsn = wpa_bss_get_ie(bss, WLAN_EID_RSN);
  134. if (rsn &&
  135. wpa_parse_wpa_ie(rsn, 2 + rsn[1], &ied) == 0) {
  136. if (wpa_key_mgmt_sae(ied.key_mgmt)) {
  137. wpa_dbg(wpa_s, MSG_DEBUG, "Using SAE auth_alg");
  138. params.auth_alg = WPA_AUTH_ALG_SAE;
  139. }
  140. }
  141. }
  142. #endif /* CONFIG_SAE */
  143. for (i = 0; i < NUM_WEP_KEYS; i++) {
  144. if (ssid->wep_key_len[i])
  145. params.wep_key[i] = ssid->wep_key[i];
  146. params.wep_key_len[i] = ssid->wep_key_len[i];
  147. }
  148. params.wep_tx_keyidx = ssid->wep_tx_keyidx;
  149. bssid_changed = !is_zero_ether_addr(wpa_s->bssid);
  150. os_memset(wpa_s->bssid, 0, ETH_ALEN);
  151. os_memcpy(wpa_s->pending_bssid, bss->bssid, ETH_ALEN);
  152. if (bssid_changed)
  153. wpas_notify_bssid_changed(wpa_s);
  154. if ((wpa_bss_get_vendor_ie(bss, WPA_IE_VENDOR_TYPE) ||
  155. wpa_bss_get_ie(bss, WLAN_EID_RSN)) &&
  156. wpa_key_mgmt_wpa(ssid->key_mgmt)) {
  157. int try_opportunistic;
  158. try_opportunistic = (ssid->proactive_key_caching < 0 ?
  159. wpa_s->conf->okc :
  160. ssid->proactive_key_caching) &&
  161. (ssid->proto & WPA_PROTO_RSN);
  162. if (pmksa_cache_set_current(wpa_s->wpa, NULL, bss->bssid,
  163. wpa_s->current_ssid,
  164. try_opportunistic) == 0)
  165. eapol_sm_notify_pmkid_attempt(wpa_s->eapol, 1);
  166. wpa_s->sme.assoc_req_ie_len = sizeof(wpa_s->sme.assoc_req_ie);
  167. if (wpa_supplicant_set_suites(wpa_s, bss, ssid,
  168. wpa_s->sme.assoc_req_ie,
  169. &wpa_s->sme.assoc_req_ie_len)) {
  170. wpa_msg(wpa_s, MSG_WARNING, "SME: Failed to set WPA "
  171. "key management and encryption suites");
  172. return;
  173. }
  174. } else if ((ssid->key_mgmt & WPA_KEY_MGMT_IEEE8021X_NO_WPA) &&
  175. wpa_key_mgmt_wpa_ieee8021x(ssid->key_mgmt)) {
  176. /*
  177. * Both WPA and non-WPA IEEE 802.1X enabled in configuration -
  178. * use non-WPA since the scan results did not indicate that the
  179. * AP is using WPA or WPA2.
  180. */
  181. wpa_supplicant_set_non_wpa_policy(wpa_s, ssid);
  182. wpa_s->sme.assoc_req_ie_len = 0;
  183. } else if (wpa_key_mgmt_wpa_any(ssid->key_mgmt)) {
  184. wpa_s->sme.assoc_req_ie_len = sizeof(wpa_s->sme.assoc_req_ie);
  185. if (wpa_supplicant_set_suites(wpa_s, NULL, ssid,
  186. wpa_s->sme.assoc_req_ie,
  187. &wpa_s->sme.assoc_req_ie_len)) {
  188. wpa_msg(wpa_s, MSG_WARNING, "SME: Failed to set WPA "
  189. "key management and encryption suites (no "
  190. "scan results)");
  191. return;
  192. }
  193. #ifdef CONFIG_WPS
  194. } else if (ssid->key_mgmt & WPA_KEY_MGMT_WPS) {
  195. struct wpabuf *wps_ie;
  196. wps_ie = wps_build_assoc_req_ie(wpas_wps_get_req_type(ssid));
  197. if (wps_ie && wpabuf_len(wps_ie) <=
  198. sizeof(wpa_s->sme.assoc_req_ie)) {
  199. wpa_s->sme.assoc_req_ie_len = wpabuf_len(wps_ie);
  200. os_memcpy(wpa_s->sme.assoc_req_ie, wpabuf_head(wps_ie),
  201. wpa_s->sme.assoc_req_ie_len);
  202. } else
  203. wpa_s->sme.assoc_req_ie_len = 0;
  204. wpabuf_free(wps_ie);
  205. wpa_supplicant_set_non_wpa_policy(wpa_s, ssid);
  206. #endif /* CONFIG_WPS */
  207. } else {
  208. wpa_supplicant_set_non_wpa_policy(wpa_s, ssid);
  209. wpa_s->sme.assoc_req_ie_len = 0;
  210. }
  211. #ifdef CONFIG_IEEE80211R
  212. ie = wpa_bss_get_ie(bss, WLAN_EID_MOBILITY_DOMAIN);
  213. if (ie && ie[1] >= MOBILITY_DOMAIN_ID_LEN)
  214. md = ie + 2;
  215. wpa_sm_set_ft_params(wpa_s->wpa, ie, ie ? 2 + ie[1] : 0);
  216. if (md) {
  217. /* Prepare for the next transition */
  218. wpa_ft_prepare_auth_request(wpa_s->wpa, ie);
  219. }
  220. if (md && wpa_key_mgmt_ft(ssid->key_mgmt)) {
  221. if (wpa_s->sme.assoc_req_ie_len + 5 <
  222. sizeof(wpa_s->sme.assoc_req_ie)) {
  223. struct rsn_mdie *mdie;
  224. u8 *pos = wpa_s->sme.assoc_req_ie +
  225. wpa_s->sme.assoc_req_ie_len;
  226. *pos++ = WLAN_EID_MOBILITY_DOMAIN;
  227. *pos++ = sizeof(*mdie);
  228. mdie = (struct rsn_mdie *) pos;
  229. os_memcpy(mdie->mobility_domain, md,
  230. MOBILITY_DOMAIN_ID_LEN);
  231. mdie->ft_capab = md[MOBILITY_DOMAIN_ID_LEN];
  232. wpa_s->sme.assoc_req_ie_len += 5;
  233. }
  234. if (wpa_s->sme.ft_used &&
  235. os_memcmp(md, wpa_s->sme.mobility_domain, 2) == 0 &&
  236. wpa_sm_has_ptk(wpa_s->wpa)) {
  237. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Trying to use FT "
  238. "over-the-air");
  239. params.auth_alg = WPA_AUTH_ALG_FT;
  240. params.ie = wpa_s->sme.ft_ies;
  241. params.ie_len = wpa_s->sme.ft_ies_len;
  242. }
  243. }
  244. #endif /* CONFIG_IEEE80211R */
  245. #ifdef CONFIG_IEEE80211W
  246. wpa_s->sme.mfp = ssid->ieee80211w == MGMT_FRAME_PROTECTION_DEFAULT ?
  247. wpa_s->conf->pmf : ssid->ieee80211w;
  248. if (wpa_s->sme.mfp != NO_MGMT_FRAME_PROTECTION) {
  249. const u8 *rsn = wpa_bss_get_ie(bss, WLAN_EID_RSN);
  250. struct wpa_ie_data _ie;
  251. if (rsn && wpa_parse_wpa_ie(rsn, 2 + rsn[1], &_ie) == 0 &&
  252. _ie.capabilities &
  253. (WPA_CAPABILITY_MFPC | WPA_CAPABILITY_MFPR)) {
  254. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Selected AP supports "
  255. "MFP: require MFP");
  256. wpa_s->sme.mfp = MGMT_FRAME_PROTECTION_REQUIRED;
  257. }
  258. }
  259. #endif /* CONFIG_IEEE80211W */
  260. #ifdef CONFIG_P2P
  261. if (wpa_s->global->p2p) {
  262. u8 *pos;
  263. size_t len;
  264. int res;
  265. pos = wpa_s->sme.assoc_req_ie + wpa_s->sme.assoc_req_ie_len;
  266. len = sizeof(wpa_s->sme.assoc_req_ie) -
  267. wpa_s->sme.assoc_req_ie_len;
  268. res = wpas_p2p_assoc_req_ie(wpa_s, bss, pos, len,
  269. ssid->p2p_group);
  270. if (res >= 0)
  271. wpa_s->sme.assoc_req_ie_len += res;
  272. }
  273. #endif /* CONFIG_P2P */
  274. #ifdef CONFIG_HS20
  275. if (wpa_s->conf->hs20) {
  276. struct wpabuf *hs20;
  277. hs20 = wpabuf_alloc(20);
  278. if (hs20) {
  279. wpas_hs20_add_indication(hs20);
  280. os_memcpy(wpa_s->sme.assoc_req_ie +
  281. wpa_s->sme.assoc_req_ie_len,
  282. wpabuf_head(hs20), wpabuf_len(hs20));
  283. wpa_s->sme.assoc_req_ie_len += wpabuf_len(hs20);
  284. wpabuf_free(hs20);
  285. }
  286. }
  287. #endif /* CONFIG_HS20 */
  288. ext_capab_len = wpas_build_ext_capab(wpa_s, ext_capab);
  289. if (ext_capab_len > 0) {
  290. u8 *pos = wpa_s->sme.assoc_req_ie;
  291. if (wpa_s->sme.assoc_req_ie_len > 0 && pos[0] == WLAN_EID_RSN)
  292. pos += 2 + pos[1];
  293. os_memmove(pos + ext_capab_len, pos,
  294. wpa_s->sme.assoc_req_ie_len -
  295. (pos - wpa_s->sme.assoc_req_ie));
  296. wpa_s->sme.assoc_req_ie_len += ext_capab_len;
  297. os_memcpy(pos, ext_capab, ext_capab_len);
  298. }
  299. #ifdef CONFIG_SAE
  300. if (params.auth_alg == WPA_AUTH_ALG_SAE) {
  301. if (start)
  302. resp = sme_auth_build_sae_commit(wpa_s, ssid,
  303. bss->bssid);
  304. else
  305. resp = sme_auth_build_sae_confirm(wpa_s);
  306. if (resp == NULL)
  307. return;
  308. params.sae_data = wpabuf_head(resp);
  309. params.sae_data_len = wpabuf_len(resp);
  310. wpa_s->sme.sae.state = start ? SAE_COMMIT : SAE_CONFIRM;
  311. }
  312. #endif /* CONFIG_SAE */
  313. wpa_supplicant_cancel_sched_scan(wpa_s);
  314. wpa_supplicant_cancel_scan(wpa_s);
  315. wpa_msg(wpa_s, MSG_INFO, "SME: Trying to authenticate with " MACSTR
  316. " (SSID='%s' freq=%d MHz)", MAC2STR(params.bssid),
  317. wpa_ssid_txt(params.ssid, params.ssid_len), params.freq);
  318. wpa_clear_keys(wpa_s, bss->bssid);
  319. wpa_supplicant_set_state(wpa_s, WPA_AUTHENTICATING);
  320. old_ssid = wpa_s->current_ssid;
  321. wpa_s->current_ssid = ssid;
  322. wpa_supplicant_rsn_supp_set_config(wpa_s, wpa_s->current_ssid);
  323. wpa_supplicant_initiate_eapol(wpa_s);
  324. if (old_ssid != wpa_s->current_ssid)
  325. wpas_notify_network_changed(wpa_s);
  326. wpa_s->sme.auth_alg = params.auth_alg;
  327. if (wpa_drv_authenticate(wpa_s, &params) < 0) {
  328. wpa_msg(wpa_s, MSG_INFO, "SME: Authentication request to the "
  329. "driver failed");
  330. wpas_connection_failed(wpa_s, bss->bssid);
  331. wpa_supplicant_mark_disassoc(wpa_s);
  332. wpabuf_free(resp);
  333. return;
  334. }
  335. eloop_register_timeout(SME_AUTH_TIMEOUT, 0, sme_auth_timer, wpa_s,
  336. NULL);
  337. /*
  338. * Association will be started based on the authentication event from
  339. * the driver.
  340. */
  341. wpabuf_free(resp);
  342. }
  343. void sme_authenticate(struct wpa_supplicant *wpa_s,
  344. struct wpa_bss *bss, struct wpa_ssid *ssid)
  345. {
  346. #ifdef CONFIG_SAE
  347. wpa_s->sme.sae.state = SAE_INIT;
  348. wpa_s->sme.sae.send_confirm = 0;
  349. #endif /* CONFIG_SAE */
  350. sme_send_authentication(wpa_s, bss, ssid, 1);
  351. }
  352. #ifdef CONFIG_SAE
  353. static int sme_sae_process_confirm(struct wpa_supplicant *wpa_s, const u8 *data,
  354. size_t len)
  355. {
  356. u16 rc;
  357. if (len < 2)
  358. return -1;
  359. rc = WPA_GET_LE16(data);
  360. wpa_printf(MSG_DEBUG, "SAE: peer-send-confirm %u", rc);
  361. /* TODO */
  362. return 0;
  363. }
  364. static int sme_sae_auth(struct wpa_supplicant *wpa_s, u16 auth_transaction,
  365. u16 status_code, const u8 *data, size_t len)
  366. {
  367. wpa_dbg(wpa_s, MSG_DEBUG, "SME: SAE authentication transaction %u "
  368. "status code %u", auth_transaction, status_code);
  369. wpa_hexdump(MSG_DEBUG, "SME: SAE fields", data, len);
  370. if (status_code != WLAN_STATUS_SUCCESS)
  371. return -1;
  372. if (auth_transaction == 1) {
  373. wpa_dbg(wpa_s, MSG_DEBUG, "SME SAE commit");
  374. if (wpa_s->current_bss == NULL ||
  375. wpa_s->current_ssid == NULL)
  376. return -1;
  377. if (wpa_s->sme.sae.state != SAE_COMMIT)
  378. return -1;
  379. if (sae_parse_commit(&wpa_s->sme.sae, data, len) !=
  380. WLAN_STATUS_SUCCESS)
  381. return -1;
  382. if (sae_process_commit(&wpa_s->sme.sae) < 0) {
  383. wpa_printf(MSG_DEBUG, "SAE: Failed to process peer "
  384. "commit");
  385. return -1;
  386. }
  387. sme_send_authentication(wpa_s, wpa_s->current_bss,
  388. wpa_s->current_ssid, 0);
  389. return 0;
  390. } else if (auth_transaction == 2) {
  391. wpa_dbg(wpa_s, MSG_DEBUG, "SME SAE confirm");
  392. if (wpa_s->sme.sae.state != SAE_CONFIRM)
  393. return -1;
  394. if (sme_sae_process_confirm(wpa_s, data, len) < 0)
  395. return -1;
  396. return 1;
  397. }
  398. return -1;
  399. }
  400. #endif /* CONFIG_SAE */
  401. void sme_event_auth(struct wpa_supplicant *wpa_s, union wpa_event_data *data)
  402. {
  403. struct wpa_ssid *ssid = wpa_s->current_ssid;
  404. if (ssid == NULL) {
  405. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Ignore authentication event "
  406. "when network is not selected");
  407. return;
  408. }
  409. if (wpa_s->wpa_state != WPA_AUTHENTICATING) {
  410. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Ignore authentication event "
  411. "when not in authenticating state");
  412. return;
  413. }
  414. if (os_memcmp(wpa_s->pending_bssid, data->auth.peer, ETH_ALEN) != 0) {
  415. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Ignore authentication with "
  416. "unexpected peer " MACSTR,
  417. MAC2STR(data->auth.peer));
  418. return;
  419. }
  420. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Authentication response: peer=" MACSTR
  421. " auth_type=%d auth_transaction=%d status_code=%d",
  422. MAC2STR(data->auth.peer), data->auth.auth_type,
  423. data->auth.auth_transaction, data->auth.status_code);
  424. wpa_hexdump(MSG_MSGDUMP, "SME: Authentication response IEs",
  425. data->auth.ies, data->auth.ies_len);
  426. eloop_cancel_timeout(sme_auth_timer, wpa_s, NULL);
  427. #ifdef CONFIG_SAE
  428. if (data->auth.auth_type == WLAN_AUTH_SAE) {
  429. int res;
  430. res = sme_sae_auth(wpa_s, data->auth.auth_transaction,
  431. data->auth.status_code, data->auth.ies,
  432. data->auth.ies_len);
  433. if (res < 0) {
  434. wpas_connection_failed(wpa_s, wpa_s->pending_bssid);
  435. wpa_supplicant_set_state(wpa_s, WPA_DISCONNECTED);
  436. }
  437. if (res != 1)
  438. return;
  439. }
  440. #endif /* CONFIG_SAE */
  441. if (data->auth.status_code != WLAN_STATUS_SUCCESS) {
  442. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Authentication failed (status "
  443. "code %d)", data->auth.status_code);
  444. if (data->auth.status_code !=
  445. WLAN_STATUS_NOT_SUPPORTED_AUTH_ALG ||
  446. wpa_s->sme.auth_alg == data->auth.auth_type ||
  447. wpa_s->current_ssid->auth_alg == WPA_AUTH_ALG_LEAP) {
  448. wpas_connection_failed(wpa_s, wpa_s->pending_bssid);
  449. wpa_supplicant_set_state(wpa_s, WPA_DISCONNECTED);
  450. return;
  451. }
  452. switch (data->auth.auth_type) {
  453. case WLAN_AUTH_OPEN:
  454. wpa_s->current_ssid->auth_alg = WPA_AUTH_ALG_SHARED;
  455. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Trying SHARED auth");
  456. wpa_supplicant_associate(wpa_s, wpa_s->current_bss,
  457. wpa_s->current_ssid);
  458. return;
  459. case WLAN_AUTH_SHARED_KEY:
  460. wpa_s->current_ssid->auth_alg = WPA_AUTH_ALG_LEAP;
  461. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Trying LEAP auth");
  462. wpa_supplicant_associate(wpa_s, wpa_s->current_bss,
  463. wpa_s->current_ssid);
  464. return;
  465. default:
  466. return;
  467. }
  468. }
  469. #ifdef CONFIG_IEEE80211R
  470. if (data->auth.auth_type == WLAN_AUTH_FT) {
  471. union wpa_event_data edata;
  472. os_memset(&edata, 0, sizeof(edata));
  473. edata.ft_ies.ies = data->auth.ies;
  474. edata.ft_ies.ies_len = data->auth.ies_len;
  475. os_memcpy(edata.ft_ies.target_ap, data->auth.peer, ETH_ALEN);
  476. wpa_supplicant_event(wpa_s, EVENT_FT_RESPONSE, &edata);
  477. }
  478. #endif /* CONFIG_IEEE80211R */
  479. sme_associate(wpa_s, ssid->mode, data->auth.peer,
  480. data->auth.auth_type);
  481. }
  482. void sme_associate(struct wpa_supplicant *wpa_s, enum wpas_mode mode,
  483. const u8 *bssid, u16 auth_type)
  484. {
  485. struct wpa_driver_associate_params params;
  486. struct ieee802_11_elems elems;
  487. #ifdef CONFIG_HT_OVERRIDES
  488. struct ieee80211_ht_capabilities htcaps;
  489. struct ieee80211_ht_capabilities htcaps_mask;
  490. #endif /* CONFIG_HT_OVERRIDES */
  491. os_memset(&params, 0, sizeof(params));
  492. params.bssid = bssid;
  493. params.ssid = wpa_s->sme.ssid;
  494. params.ssid_len = wpa_s->sme.ssid_len;
  495. params.freq = wpa_s->sme.freq;
  496. params.bg_scan_period = wpa_s->current_ssid ?
  497. wpa_s->current_ssid->bg_scan_period : -1;
  498. params.wpa_ie = wpa_s->sme.assoc_req_ie_len ?
  499. wpa_s->sme.assoc_req_ie : NULL;
  500. params.wpa_ie_len = wpa_s->sme.assoc_req_ie_len;
  501. params.pairwise_suite = cipher_suite2driver(wpa_s->pairwise_cipher);
  502. params.group_suite = cipher_suite2driver(wpa_s->group_cipher);
  503. #ifdef CONFIG_HT_OVERRIDES
  504. os_memset(&htcaps, 0, sizeof(htcaps));
  505. os_memset(&htcaps_mask, 0, sizeof(htcaps_mask));
  506. params.htcaps = (u8 *) &htcaps;
  507. params.htcaps_mask = (u8 *) &htcaps_mask;
  508. wpa_supplicant_apply_ht_overrides(wpa_s, wpa_s->current_ssid, &params);
  509. #endif /* CONFIG_HT_OVERRIDES */
  510. #ifdef CONFIG_IEEE80211R
  511. if (auth_type == WLAN_AUTH_FT && wpa_s->sme.ft_ies) {
  512. params.wpa_ie = wpa_s->sme.ft_ies;
  513. params.wpa_ie_len = wpa_s->sme.ft_ies_len;
  514. }
  515. #endif /* CONFIG_IEEE80211R */
  516. params.mode = mode;
  517. params.mgmt_frame_protection = wpa_s->sme.mfp;
  518. if (wpa_s->sme.prev_bssid_set)
  519. params.prev_bssid = wpa_s->sme.prev_bssid;
  520. wpa_msg(wpa_s, MSG_INFO, "Trying to associate with " MACSTR
  521. " (SSID='%s' freq=%d MHz)", MAC2STR(params.bssid),
  522. params.ssid ? wpa_ssid_txt(params.ssid, params.ssid_len) : "",
  523. params.freq);
  524. wpa_supplicant_set_state(wpa_s, WPA_ASSOCIATING);
  525. if (params.wpa_ie == NULL ||
  526. ieee802_11_parse_elems(params.wpa_ie, params.wpa_ie_len, &elems, 0)
  527. < 0) {
  528. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Could not parse own IEs?!");
  529. os_memset(&elems, 0, sizeof(elems));
  530. }
  531. if (elems.rsn_ie) {
  532. params.wpa_proto = WPA_PROTO_RSN;
  533. wpa_sm_set_assoc_wpa_ie(wpa_s->wpa, elems.rsn_ie - 2,
  534. elems.rsn_ie_len + 2);
  535. } else if (elems.wpa_ie) {
  536. params.wpa_proto = WPA_PROTO_WPA;
  537. wpa_sm_set_assoc_wpa_ie(wpa_s->wpa, elems.wpa_ie - 2,
  538. elems.wpa_ie_len + 2);
  539. } else
  540. wpa_sm_set_assoc_wpa_ie(wpa_s->wpa, NULL, 0);
  541. if (wpa_s->current_ssid && wpa_s->current_ssid->p2p_group)
  542. params.p2p = 1;
  543. if (wpa_s->parent->set_sta_uapsd)
  544. params.uapsd = wpa_s->parent->sta_uapsd;
  545. else
  546. params.uapsd = -1;
  547. if (wpa_drv_associate(wpa_s, &params) < 0) {
  548. wpa_msg(wpa_s, MSG_INFO, "SME: Association request to the "
  549. "driver failed");
  550. wpas_connection_failed(wpa_s, wpa_s->pending_bssid);
  551. wpa_supplicant_set_state(wpa_s, WPA_DISCONNECTED);
  552. os_memset(wpa_s->pending_bssid, 0, ETH_ALEN);
  553. return;
  554. }
  555. eloop_register_timeout(SME_ASSOC_TIMEOUT, 0, sme_assoc_timer, wpa_s,
  556. NULL);
  557. }
  558. int sme_update_ft_ies(struct wpa_supplicant *wpa_s, const u8 *md,
  559. const u8 *ies, size_t ies_len)
  560. {
  561. if (md == NULL || ies == NULL) {
  562. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Remove mobility domain");
  563. os_free(wpa_s->sme.ft_ies);
  564. wpa_s->sme.ft_ies = NULL;
  565. wpa_s->sme.ft_ies_len = 0;
  566. wpa_s->sme.ft_used = 0;
  567. return 0;
  568. }
  569. os_memcpy(wpa_s->sme.mobility_domain, md, MOBILITY_DOMAIN_ID_LEN);
  570. wpa_hexdump(MSG_DEBUG, "SME: FT IEs", ies, ies_len);
  571. os_free(wpa_s->sme.ft_ies);
  572. wpa_s->sme.ft_ies = os_malloc(ies_len);
  573. if (wpa_s->sme.ft_ies == NULL)
  574. return -1;
  575. os_memcpy(wpa_s->sme.ft_ies, ies, ies_len);
  576. wpa_s->sme.ft_ies_len = ies_len;
  577. return 0;
  578. }
  579. static void sme_deauth(struct wpa_supplicant *wpa_s)
  580. {
  581. int bssid_changed;
  582. bssid_changed = !is_zero_ether_addr(wpa_s->bssid);
  583. if (wpa_drv_deauthenticate(wpa_s, wpa_s->pending_bssid,
  584. WLAN_REASON_DEAUTH_LEAVING) < 0) {
  585. wpa_msg(wpa_s, MSG_INFO, "SME: Deauth request to the driver "
  586. "failed");
  587. }
  588. wpa_s->sme.prev_bssid_set = 0;
  589. wpas_connection_failed(wpa_s, wpa_s->pending_bssid);
  590. wpa_supplicant_set_state(wpa_s, WPA_DISCONNECTED);
  591. os_memset(wpa_s->bssid, 0, ETH_ALEN);
  592. os_memset(wpa_s->pending_bssid, 0, ETH_ALEN);
  593. if (bssid_changed)
  594. wpas_notify_bssid_changed(wpa_s);
  595. }
  596. void sme_event_assoc_reject(struct wpa_supplicant *wpa_s,
  597. union wpa_event_data *data)
  598. {
  599. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Association with " MACSTR " failed: "
  600. "status code %d", MAC2STR(wpa_s->pending_bssid),
  601. data->assoc_reject.status_code);
  602. eloop_cancel_timeout(sme_assoc_timer, wpa_s, NULL);
  603. /*
  604. * For now, unconditionally terminate the previous authentication. In
  605. * theory, this should not be needed, but mac80211 gets quite confused
  606. * if the authentication is left pending.. Some roaming cases might
  607. * benefit from using the previous authentication, so this could be
  608. * optimized in the future.
  609. */
  610. sme_deauth(wpa_s);
  611. }
  612. void sme_event_auth_timed_out(struct wpa_supplicant *wpa_s,
  613. union wpa_event_data *data)
  614. {
  615. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Authentication timed out");
  616. wpas_connection_failed(wpa_s, wpa_s->pending_bssid);
  617. wpa_supplicant_mark_disassoc(wpa_s);
  618. }
  619. void sme_event_assoc_timed_out(struct wpa_supplicant *wpa_s,
  620. union wpa_event_data *data)
  621. {
  622. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Association timed out");
  623. wpas_connection_failed(wpa_s, wpa_s->pending_bssid);
  624. wpa_supplicant_mark_disassoc(wpa_s);
  625. }
  626. void sme_event_disassoc(struct wpa_supplicant *wpa_s,
  627. union wpa_event_data *data)
  628. {
  629. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Disassociation event received");
  630. if (wpa_s->sme.prev_bssid_set) {
  631. /*
  632. * cfg80211/mac80211 can get into somewhat confused state if
  633. * the AP only disassociates us and leaves us in authenticated
  634. * state. For now, force the state to be cleared to avoid
  635. * confusing errors if we try to associate with the AP again.
  636. */
  637. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Deauthenticate to clear "
  638. "driver state");
  639. wpa_drv_deauthenticate(wpa_s, wpa_s->sme.prev_bssid,
  640. WLAN_REASON_DEAUTH_LEAVING);
  641. }
  642. }
  643. static void sme_auth_timer(void *eloop_ctx, void *timeout_ctx)
  644. {
  645. struct wpa_supplicant *wpa_s = eloop_ctx;
  646. if (wpa_s->wpa_state == WPA_AUTHENTICATING) {
  647. wpa_msg(wpa_s, MSG_DEBUG, "SME: Authentication timeout");
  648. sme_deauth(wpa_s);
  649. }
  650. }
  651. static void sme_assoc_timer(void *eloop_ctx, void *timeout_ctx)
  652. {
  653. struct wpa_supplicant *wpa_s = eloop_ctx;
  654. if (wpa_s->wpa_state == WPA_ASSOCIATING) {
  655. wpa_msg(wpa_s, MSG_DEBUG, "SME: Association timeout");
  656. sme_deauth(wpa_s);
  657. }
  658. }
  659. void sme_state_changed(struct wpa_supplicant *wpa_s)
  660. {
  661. /* Make sure timers are cleaned up appropriately. */
  662. if (wpa_s->wpa_state != WPA_ASSOCIATING)
  663. eloop_cancel_timeout(sme_assoc_timer, wpa_s, NULL);
  664. if (wpa_s->wpa_state != WPA_AUTHENTICATING)
  665. eloop_cancel_timeout(sme_auth_timer, wpa_s, NULL);
  666. }
  667. void sme_disassoc_while_authenticating(struct wpa_supplicant *wpa_s,
  668. const u8 *prev_pending_bssid)
  669. {
  670. /*
  671. * mac80211-workaround to force deauth on failed auth cmd,
  672. * requires us to remain in authenticating state to allow the
  673. * second authentication attempt to be continued properly.
  674. */
  675. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Allow pending authentication "
  676. "to proceed after disconnection event");
  677. wpa_supplicant_set_state(wpa_s, WPA_AUTHENTICATING);
  678. os_memcpy(wpa_s->pending_bssid, prev_pending_bssid, ETH_ALEN);
  679. /*
  680. * Re-arm authentication timer in case auth fails for whatever reason.
  681. */
  682. eloop_cancel_timeout(sme_auth_timer, wpa_s, NULL);
  683. eloop_register_timeout(SME_AUTH_TIMEOUT, 0, sme_auth_timer, wpa_s,
  684. NULL);
  685. }
  686. void sme_deinit(struct wpa_supplicant *wpa_s)
  687. {
  688. os_free(wpa_s->sme.ft_ies);
  689. wpa_s->sme.ft_ies = NULL;
  690. wpa_s->sme.ft_ies_len = 0;
  691. #ifdef CONFIG_IEEE80211W
  692. sme_stop_sa_query(wpa_s);
  693. #endif /* CONFIG_IEEE80211W */
  694. eloop_cancel_timeout(sme_assoc_timer, wpa_s, NULL);
  695. eloop_cancel_timeout(sme_auth_timer, wpa_s, NULL);
  696. eloop_cancel_timeout(sme_obss_scan_timeout, wpa_s, NULL);
  697. }
  698. static void sme_send_2040_bss_coex(struct wpa_supplicant *wpa_s,
  699. const u8 *chan_list, u8 num_channels,
  700. u8 num_intol)
  701. {
  702. struct ieee80211_2040_bss_coex_ie *bc_ie;
  703. struct ieee80211_2040_intol_chan_report *ic_report;
  704. struct wpabuf *buf;
  705. wpa_printf(MSG_DEBUG, "SME: Send 20/40 BSS Coexistence to " MACSTR,
  706. MAC2STR(wpa_s->bssid));
  707. buf = wpabuf_alloc(2 + /* action.category + action_code */
  708. sizeof(struct ieee80211_2040_bss_coex_ie) +
  709. sizeof(struct ieee80211_2040_intol_chan_report) +
  710. num_channels);
  711. if (buf == NULL)
  712. return;
  713. wpabuf_put_u8(buf, WLAN_ACTION_PUBLIC);
  714. wpabuf_put_u8(buf, WLAN_PA_20_40_BSS_COEX);
  715. bc_ie = wpabuf_put(buf, sizeof(*bc_ie));
  716. bc_ie->element_id = WLAN_EID_20_40_BSS_COEXISTENCE;
  717. bc_ie->length = 1;
  718. if (num_intol)
  719. bc_ie->coex_param |= WLAN_20_40_BSS_COEX_20MHZ_WIDTH_REQ;
  720. if (num_channels > 0) {
  721. ic_report = wpabuf_put(buf, sizeof(*ic_report));
  722. ic_report->element_id = WLAN_EID_20_40_BSS_INTOLERANT;
  723. ic_report->length = num_channels + 1;
  724. ic_report->op_class = 0;
  725. os_memcpy(wpabuf_put(buf, num_channels), chan_list,
  726. num_channels);
  727. }
  728. if (wpa_drv_send_action(wpa_s, wpa_s->assoc_freq, 0, wpa_s->bssid,
  729. wpa_s->own_addr, wpa_s->bssid,
  730. wpabuf_head(buf), wpabuf_len(buf), 0) < 0) {
  731. wpa_msg(wpa_s, MSG_INFO,
  732. "SME: Failed to send 20/40 BSS Coexistence frame");
  733. }
  734. wpabuf_free(buf);
  735. }
  736. /**
  737. * enum wpas_band - Frequency band
  738. * @WPAS_BAND_2GHZ: 2.4 GHz ISM band
  739. * @WPAS_BAND_5GHZ: around 5 GHz band (4.9 - 5.7 GHz)
  740. */
  741. enum wpas_band {
  742. WPAS_BAND_2GHZ,
  743. WPAS_BAND_5GHZ,
  744. WPAS_BAND_INVALID
  745. };
  746. /**
  747. * freq_to_channel - Convert frequency into channel info
  748. * @channel: Buffer for returning channel number
  749. * Returns: Band (2 or 5 GHz)
  750. */
  751. static enum wpas_band freq_to_channel(int freq, u8 *channel)
  752. {
  753. enum wpas_band band = (freq <= 2484) ? WPAS_BAND_2GHZ : WPAS_BAND_5GHZ;
  754. u8 chan = 0;
  755. if (freq >= 2412 && freq <= 2472)
  756. chan = (freq - 2407) / 5;
  757. else if (freq == 2484)
  758. chan = 14;
  759. else if (freq >= 5180 && freq <= 5805)
  760. chan = (freq - 5000) / 5;
  761. *channel = chan;
  762. return band;
  763. }
  764. int sme_proc_obss_scan(struct wpa_supplicant *wpa_s)
  765. {
  766. struct wpa_bss *bss;
  767. const u8 *ie;
  768. u16 ht_cap;
  769. u8 chan_list[P2P_MAX_CHANNELS], channel;
  770. u8 num_channels = 0, num_intol = 0, i;
  771. if (!wpa_s->sme.sched_obss_scan)
  772. return 0;
  773. wpa_s->sme.sched_obss_scan = 0;
  774. if (!wpa_s->current_bss || wpa_s->wpa_state != WPA_COMPLETED)
  775. return 1;
  776. /*
  777. * Check whether AP uses regulatory triplet or channel triplet in
  778. * country info. Right now the operating class of the BSS channel
  779. * width trigger event is "unknown" (IEEE Std 802.11-2012 10.15.12),
  780. * based on the assumption that operating class triplet is not used in
  781. * beacon frame. If the First Channel Number/Operating Extension
  782. * Identifier octet has a positive integer value of 201 or greater,
  783. * then its operating class triplet.
  784. *
  785. * TODO: If Supported Operating Classes element is present in beacon
  786. * frame, have to lookup operating class in Annex E and fill them in
  787. * 2040 coex frame.
  788. */
  789. ie = wpa_bss_get_ie(wpa_s->current_bss, WLAN_EID_COUNTRY);
  790. if (ie && (ie[1] >= 6) && (ie[5] >= 201))
  791. return 1;
  792. os_memset(chan_list, 0, sizeof(chan_list));
  793. dl_list_for_each(bss, &wpa_s->bss, struct wpa_bss, list) {
  794. /* Skip other band bss */
  795. if (freq_to_channel(bss->freq, &channel) != WPAS_BAND_2GHZ)
  796. continue;
  797. ie = wpa_bss_get_ie(bss, WLAN_EID_HT_CAP);
  798. ht_cap = (ie && (ie[1] == 26)) ? WPA_GET_LE16(ie + 2) : 0;
  799. if (!ht_cap || (ht_cap & HT_CAP_INFO_40MHZ_INTOLERANT)) {
  800. /* Check whether the channel is already considered */
  801. for (i = 0; i < num_channels; i++) {
  802. if (channel == chan_list[i])
  803. break;
  804. }
  805. if (i != num_channels)
  806. continue;
  807. if (ht_cap & HT_CAP_INFO_40MHZ_INTOLERANT)
  808. num_intol++;
  809. chan_list[num_channels++] = channel;
  810. }
  811. }
  812. sme_send_2040_bss_coex(wpa_s, chan_list, num_channels, num_intol);
  813. return 1;
  814. }
  815. static struct hostapd_hw_modes * get_mode(struct hostapd_hw_modes *modes,
  816. u16 num_modes,
  817. enum hostapd_hw_mode mode)
  818. {
  819. u16 i;
  820. for (i = 0; i < num_modes; i++) {
  821. if (modes[i].mode == mode)
  822. return &modes[i];
  823. }
  824. return NULL;
  825. }
  826. static void wpa_setband_scan_freqs_list(struct wpa_supplicant *wpa_s,
  827. enum hostapd_hw_mode band,
  828. struct wpa_driver_scan_params *params)
  829. {
  830. /* Include only supported channels for the specified band */
  831. struct hostapd_hw_modes *mode;
  832. int count, i;
  833. mode = get_mode(wpa_s->hw.modes, wpa_s->hw.num_modes, band);
  834. if (mode == NULL) {
  835. /* No channels supported in this band - use empty list */
  836. params->freqs = os_zalloc(sizeof(int));
  837. return;
  838. }
  839. params->freqs = os_calloc(mode->num_channels + 1, sizeof(int));
  840. if (params->freqs == NULL)
  841. return;
  842. for (count = 0, i = 0; i < mode->num_channels; i++) {
  843. if (mode->channels[i].flag & HOSTAPD_CHAN_DISABLED)
  844. continue;
  845. params->freqs[count++] = mode->channels[i].freq;
  846. }
  847. }
  848. static void sme_obss_scan_timeout(void *eloop_ctx, void *timeout_ctx)
  849. {
  850. struct wpa_supplicant *wpa_s = eloop_ctx;
  851. struct wpa_driver_scan_params params;
  852. if (!wpa_s->current_bss) {
  853. wpa_printf(MSG_DEBUG, "SME OBSS: Ignore scan request");
  854. return;
  855. }
  856. os_memset(&params, 0, sizeof(params));
  857. wpa_setband_scan_freqs_list(wpa_s, HOSTAPD_MODE_IEEE80211G, &params);
  858. wpa_printf(MSG_DEBUG, "SME OBSS: Request an OBSS scan");
  859. if (wpa_supplicant_trigger_scan(wpa_s, &params))
  860. wpa_printf(MSG_DEBUG, "SME OBSS: Failed to trigger scan");
  861. else
  862. wpa_s->sme.sched_obss_scan = 1;
  863. os_free(params.freqs);
  864. eloop_register_timeout(wpa_s->sme.obss_scan_int, 0,
  865. sme_obss_scan_timeout, wpa_s, NULL);
  866. }
  867. void sme_sched_obss_scan(struct wpa_supplicant *wpa_s, int enable)
  868. {
  869. const u8 *ie;
  870. struct wpa_bss *bss = wpa_s->current_bss;
  871. struct wpa_ssid *ssid = wpa_s->current_ssid;
  872. struct hostapd_hw_modes *hw_mode = NULL;
  873. int i;
  874. eloop_cancel_timeout(sme_obss_scan_timeout, wpa_s, NULL);
  875. wpa_s->sme.sched_obss_scan = 0;
  876. if (!enable)
  877. return;
  878. /*
  879. * Schedule OBSS scan if driver is using station SME in wpa_supplicant
  880. * or it expects OBSS scan to be performed by wpa_supplicant.
  881. */
  882. if (!((wpa_s->drv_flags & WPA_DRIVER_FLAGS_SME) ||
  883. (wpa_s->drv_flags & WPA_DRIVER_FLAGS_OBSS_SCAN)) ||
  884. ssid == NULL || ssid->mode != IEEE80211_MODE_INFRA)
  885. return;
  886. if (!wpa_s->hw.modes)
  887. return;
  888. /* only HT caps in 11g mode are relevant */
  889. for (i = 0; i < wpa_s->hw.num_modes; i++) {
  890. hw_mode = &wpa_s->hw.modes[i];
  891. if (hw_mode->mode == HOSTAPD_MODE_IEEE80211G)
  892. break;
  893. }
  894. /* Driver does not support HT40 for 11g or doesn't have 11g. */
  895. if (i == wpa_s->hw.num_modes || !hw_mode ||
  896. !(hw_mode->ht_capab & HT_CAP_INFO_SUPP_CHANNEL_WIDTH_SET))
  897. return;
  898. if (bss == NULL || bss->freq < 2400 || bss->freq > 2500)
  899. return; /* Not associated on 2.4 GHz band */
  900. /* Check whether AP supports HT40 */
  901. ie = wpa_bss_get_ie(wpa_s->current_bss, WLAN_EID_HT_CAP);
  902. if (!ie || ie[1] < 2 ||
  903. !(WPA_GET_LE16(ie + 2) & HT_CAP_INFO_SUPP_CHANNEL_WIDTH_SET))
  904. return; /* AP does not support HT40 */
  905. ie = wpa_bss_get_ie(wpa_s->current_bss,
  906. WLAN_EID_OVERLAPPING_BSS_SCAN_PARAMS);
  907. if (!ie || ie[1] < 14)
  908. return; /* AP does not request OBSS scans */
  909. wpa_s->sme.obss_scan_int = WPA_GET_LE16(ie + 6);
  910. if (wpa_s->sme.obss_scan_int < 10) {
  911. wpa_printf(MSG_DEBUG, "SME: Invalid OBSS Scan Interval %u "
  912. "replaced with the minimum 10 sec",
  913. wpa_s->sme.obss_scan_int);
  914. wpa_s->sme.obss_scan_int = 10;
  915. }
  916. wpa_printf(MSG_DEBUG, "SME: OBSS Scan Interval %u sec",
  917. wpa_s->sme.obss_scan_int);
  918. eloop_register_timeout(wpa_s->sme.obss_scan_int, 0,
  919. sme_obss_scan_timeout, wpa_s, NULL);
  920. }
  921. #ifdef CONFIG_IEEE80211W
  922. static const unsigned int sa_query_max_timeout = 1000;
  923. static const unsigned int sa_query_retry_timeout = 201;
  924. static int sme_check_sa_query_timeout(struct wpa_supplicant *wpa_s)
  925. {
  926. u32 tu;
  927. struct os_time now, passed;
  928. os_get_time(&now);
  929. os_time_sub(&now, &wpa_s->sme.sa_query_start, &passed);
  930. tu = (passed.sec * 1000000 + passed.usec) / 1024;
  931. if (sa_query_max_timeout < tu) {
  932. wpa_dbg(wpa_s, MSG_DEBUG, "SME: SA Query timed out");
  933. sme_stop_sa_query(wpa_s);
  934. wpa_supplicant_deauthenticate(
  935. wpa_s, WLAN_REASON_PREV_AUTH_NOT_VALID);
  936. return 1;
  937. }
  938. return 0;
  939. }
  940. static void sme_send_sa_query_req(struct wpa_supplicant *wpa_s,
  941. const u8 *trans_id)
  942. {
  943. u8 req[2 + WLAN_SA_QUERY_TR_ID_LEN];
  944. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Sending SA Query Request to "
  945. MACSTR, MAC2STR(wpa_s->bssid));
  946. wpa_hexdump(MSG_DEBUG, "SME: SA Query Transaction ID",
  947. trans_id, WLAN_SA_QUERY_TR_ID_LEN);
  948. req[0] = WLAN_ACTION_SA_QUERY;
  949. req[1] = WLAN_SA_QUERY_REQUEST;
  950. os_memcpy(req + 2, trans_id, WLAN_SA_QUERY_TR_ID_LEN);
  951. if (wpa_drv_send_action(wpa_s, wpa_s->assoc_freq, 0, wpa_s->bssid,
  952. wpa_s->own_addr, wpa_s->bssid,
  953. req, sizeof(req), 0) < 0)
  954. wpa_msg(wpa_s, MSG_INFO, "SME: Failed to send SA Query "
  955. "Request");
  956. }
  957. static void sme_sa_query_timer(void *eloop_ctx, void *timeout_ctx)
  958. {
  959. struct wpa_supplicant *wpa_s = eloop_ctx;
  960. unsigned int timeout, sec, usec;
  961. u8 *trans_id, *nbuf;
  962. if (wpa_s->sme.sa_query_count > 0 &&
  963. sme_check_sa_query_timeout(wpa_s))
  964. return;
  965. nbuf = os_realloc_array(wpa_s->sme.sa_query_trans_id,
  966. wpa_s->sme.sa_query_count + 1,
  967. WLAN_SA_QUERY_TR_ID_LEN);
  968. if (nbuf == NULL)
  969. return;
  970. if (wpa_s->sme.sa_query_count == 0) {
  971. /* Starting a new SA Query procedure */
  972. os_get_time(&wpa_s->sme.sa_query_start);
  973. }
  974. trans_id = nbuf + wpa_s->sme.sa_query_count * WLAN_SA_QUERY_TR_ID_LEN;
  975. wpa_s->sme.sa_query_trans_id = nbuf;
  976. wpa_s->sme.sa_query_count++;
  977. os_get_random(trans_id, WLAN_SA_QUERY_TR_ID_LEN);
  978. timeout = sa_query_retry_timeout;
  979. sec = ((timeout / 1000) * 1024) / 1000;
  980. usec = (timeout % 1000) * 1024;
  981. eloop_register_timeout(sec, usec, sme_sa_query_timer, wpa_s, NULL);
  982. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Association SA Query attempt %d",
  983. wpa_s->sme.sa_query_count);
  984. sme_send_sa_query_req(wpa_s, trans_id);
  985. }
  986. static void sme_start_sa_query(struct wpa_supplicant *wpa_s)
  987. {
  988. sme_sa_query_timer(wpa_s, NULL);
  989. }
  990. static void sme_stop_sa_query(struct wpa_supplicant *wpa_s)
  991. {
  992. eloop_cancel_timeout(sme_sa_query_timer, wpa_s, NULL);
  993. os_free(wpa_s->sme.sa_query_trans_id);
  994. wpa_s->sme.sa_query_trans_id = NULL;
  995. wpa_s->sme.sa_query_count = 0;
  996. }
  997. void sme_event_unprot_disconnect(struct wpa_supplicant *wpa_s, const u8 *sa,
  998. const u8 *da, u16 reason_code)
  999. {
  1000. struct wpa_ssid *ssid;
  1001. if (!(wpa_s->drv_flags & WPA_DRIVER_FLAGS_SME))
  1002. return;
  1003. if (wpa_s->wpa_state != WPA_COMPLETED)
  1004. return;
  1005. ssid = wpa_s->current_ssid;
  1006. if (ssid == NULL ||
  1007. (ssid->ieee80211w == MGMT_FRAME_PROTECTION_DEFAULT ?
  1008. wpa_s->conf->pmf : ssid->ieee80211w) == NO_MGMT_FRAME_PROTECTION)
  1009. return;
  1010. if (os_memcmp(sa, wpa_s->bssid, ETH_ALEN) != 0)
  1011. return;
  1012. if (reason_code != WLAN_REASON_CLASS2_FRAME_FROM_NONAUTH_STA &&
  1013. reason_code != WLAN_REASON_CLASS3_FRAME_FROM_NONASSOC_STA)
  1014. return;
  1015. if (wpa_s->sme.sa_query_count > 0)
  1016. return;
  1017. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Unprotected disconnect dropped - "
  1018. "possible AP/STA state mismatch - trigger SA Query");
  1019. sme_start_sa_query(wpa_s);
  1020. }
  1021. void sme_sa_query_rx(struct wpa_supplicant *wpa_s, const u8 *sa,
  1022. const u8 *data, size_t len)
  1023. {
  1024. int i;
  1025. if (wpa_s->sme.sa_query_trans_id == NULL ||
  1026. len < 1 + WLAN_SA_QUERY_TR_ID_LEN ||
  1027. data[0] != WLAN_SA_QUERY_RESPONSE)
  1028. return;
  1029. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Received SA Query response from "
  1030. MACSTR " (trans_id %02x%02x)", MAC2STR(sa), data[1], data[2]);
  1031. if (os_memcmp(sa, wpa_s->bssid, ETH_ALEN) != 0)
  1032. return;
  1033. for (i = 0; i < wpa_s->sme.sa_query_count; i++) {
  1034. if (os_memcmp(wpa_s->sme.sa_query_trans_id +
  1035. i * WLAN_SA_QUERY_TR_ID_LEN,
  1036. data + 1, WLAN_SA_QUERY_TR_ID_LEN) == 0)
  1037. break;
  1038. }
  1039. if (i >= wpa_s->sme.sa_query_count) {
  1040. wpa_dbg(wpa_s, MSG_DEBUG, "SME: No matching SA Query "
  1041. "transaction identifier found");
  1042. return;
  1043. }
  1044. wpa_dbg(wpa_s, MSG_DEBUG, "SME: Reply to pending SA Query received "
  1045. "from " MACSTR, MAC2STR(sa));
  1046. sme_stop_sa_query(wpa_s);
  1047. }
  1048. #endif /* CONFIG_IEEE80211W */