ap.c 26 KB

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  1. /*
  2. * WPA Supplicant - Basic AP mode support routines
  3. * Copyright (c) 2003-2009, Jouni Malinen <j@w1.fi>
  4. * Copyright (c) 2009, Atheros Communications
  5. *
  6. * This software may be distributed under the terms of the BSD license.
  7. * See README for more details.
  8. */
  9. #include "utils/includes.h"
  10. #include "utils/common.h"
  11. #include "utils/eloop.h"
  12. #include "utils/uuid.h"
  13. #include "common/ieee802_11_defs.h"
  14. #include "common/wpa_ctrl.h"
  15. #include "ap/hostapd.h"
  16. #include "ap/ap_config.h"
  17. #include "ap/ap_drv_ops.h"
  18. #ifdef NEED_AP_MLME
  19. #include "ap/ieee802_11.h"
  20. #endif /* NEED_AP_MLME */
  21. #include "ap/beacon.h"
  22. #include "ap/ieee802_1x.h"
  23. #include "ap/wps_hostapd.h"
  24. #include "ap/ctrl_iface_ap.h"
  25. #include "wps/wps.h"
  26. #include "common/ieee802_11_defs.h"
  27. #include "config_ssid.h"
  28. #include "config.h"
  29. #include "wpa_supplicant_i.h"
  30. #include "driver_i.h"
  31. #include "p2p_supplicant.h"
  32. #include "ap.h"
  33. #include "ap/sta_info.h"
  34. #include "notify.h"
  35. #ifdef CONFIG_WPS
  36. static void wpas_wps_ap_pin_timeout(void *eloop_data, void *user_ctx);
  37. #endif /* CONFIG_WPS */
  38. static int wpa_supplicant_conf_ap(struct wpa_supplicant *wpa_s,
  39. struct wpa_ssid *ssid,
  40. struct hostapd_config *conf)
  41. {
  42. struct hostapd_bss_config *bss = &conf->bss[0];
  43. int pairwise;
  44. conf->driver = wpa_s->driver;
  45. os_strlcpy(bss->iface, wpa_s->ifname, sizeof(bss->iface));
  46. if (ssid->frequency == 0) {
  47. /* default channel 11 */
  48. conf->hw_mode = HOSTAPD_MODE_IEEE80211G;
  49. conf->channel = 11;
  50. } else if (ssid->frequency >= 2412 && ssid->frequency <= 2472) {
  51. conf->hw_mode = HOSTAPD_MODE_IEEE80211G;
  52. conf->channel = (ssid->frequency - 2407) / 5;
  53. } else if ((ssid->frequency >= 5180 && ssid->frequency <= 5240) ||
  54. (ssid->frequency >= 5745 && ssid->frequency <= 5825)) {
  55. conf->hw_mode = HOSTAPD_MODE_IEEE80211A;
  56. conf->channel = (ssid->frequency - 5000) / 5;
  57. } else {
  58. wpa_printf(MSG_ERROR, "Unsupported AP mode frequency: %d MHz",
  59. ssid->frequency);
  60. return -1;
  61. }
  62. /* TODO: enable HT40 if driver supports it;
  63. * drop to 11b if driver does not support 11g */
  64. #ifdef CONFIG_IEEE80211N
  65. /*
  66. * Enable HT20 if the driver supports it, by setting conf->ieee80211n
  67. * and a mask of allowed capabilities within conf->ht_capab.
  68. * Using default config settings for: conf->ht_op_mode_fixed,
  69. * conf->secondary_channel, conf->require_ht
  70. */
  71. if (wpa_s->hw.modes) {
  72. struct hostapd_hw_modes *mode = NULL;
  73. int i, no_ht = 0;
  74. for (i = 0; i < wpa_s->hw.num_modes; i++) {
  75. if (wpa_s->hw.modes[i].mode == conf->hw_mode) {
  76. mode = &wpa_s->hw.modes[i];
  77. break;
  78. }
  79. }
  80. #ifdef CONFIG_HT_OVERRIDES
  81. if (ssid->disable_ht) {
  82. conf->ieee80211n = 0;
  83. conf->ht_capab = 0;
  84. no_ht = 1;
  85. }
  86. #endif /* CONFIG_HT_OVERRIDES */
  87. if (!no_ht && mode && mode->ht_capab) {
  88. conf->ieee80211n = 1;
  89. /*
  90. * white-list capabilities that won't cause issues
  91. * to connecting stations, while leaving the current
  92. * capabilities intact (currently disabled SMPS).
  93. */
  94. conf->ht_capab |= mode->ht_capab &
  95. (HT_CAP_INFO_GREEN_FIELD |
  96. HT_CAP_INFO_SHORT_GI20MHZ |
  97. HT_CAP_INFO_SHORT_GI40MHZ |
  98. HT_CAP_INFO_RX_STBC_MASK |
  99. HT_CAP_INFO_MAX_AMSDU_SIZE);
  100. }
  101. }
  102. #endif /* CONFIG_IEEE80211N */
  103. #ifdef CONFIG_P2P
  104. if (conf->hw_mode == HOSTAPD_MODE_IEEE80211G) {
  105. /* Remove 802.11b rates from supported and basic rate sets */
  106. int *list = os_malloc(4 * sizeof(int));
  107. if (list) {
  108. list[0] = 60;
  109. list[1] = 120;
  110. list[2] = 240;
  111. list[3] = -1;
  112. }
  113. conf->basic_rates = list;
  114. list = os_malloc(9 * sizeof(int));
  115. if (list) {
  116. list[0] = 60;
  117. list[1] = 90;
  118. list[2] = 120;
  119. list[3] = 180;
  120. list[4] = 240;
  121. list[5] = 360;
  122. list[6] = 480;
  123. list[7] = 540;
  124. list[8] = -1;
  125. }
  126. conf->supported_rates = list;
  127. }
  128. bss->isolate = !wpa_s->conf->p2p_intra_bss;
  129. #endif /* CONFIG_P2P */
  130. if (ssid->ssid_len == 0) {
  131. wpa_printf(MSG_ERROR, "No SSID configured for AP mode");
  132. return -1;
  133. }
  134. os_memcpy(bss->ssid.ssid, ssid->ssid, ssid->ssid_len);
  135. bss->ssid.ssid[ssid->ssid_len] = '\0';
  136. bss->ssid.ssid_len = ssid->ssid_len;
  137. bss->ssid.ssid_set = 1;
  138. bss->ignore_broadcast_ssid = ssid->ignore_broadcast_ssid;
  139. if (ssid->auth_alg)
  140. bss->auth_algs = ssid->auth_alg;
  141. if (wpa_key_mgmt_wpa_psk(ssid->key_mgmt))
  142. bss->wpa = ssid->proto;
  143. bss->wpa_key_mgmt = ssid->key_mgmt;
  144. bss->wpa_pairwise = ssid->pairwise_cipher;
  145. if (ssid->passphrase) {
  146. bss->ssid.wpa_passphrase = os_strdup(ssid->passphrase);
  147. } else if (ssid->psk_set) {
  148. os_free(bss->ssid.wpa_psk);
  149. bss->ssid.wpa_psk = os_zalloc(sizeof(struct hostapd_wpa_psk));
  150. if (bss->ssid.wpa_psk == NULL)
  151. return -1;
  152. os_memcpy(bss->ssid.wpa_psk->psk, ssid->psk, PMK_LEN);
  153. bss->ssid.wpa_psk->group = 1;
  154. } else if (ssid->wep_key_len[0] || ssid->wep_key_len[1] ||
  155. ssid->wep_key_len[2] || ssid->wep_key_len[3]) {
  156. struct hostapd_wep_keys *wep = &bss->ssid.wep;
  157. int i;
  158. for (i = 0; i < NUM_WEP_KEYS; i++) {
  159. if (ssid->wep_key_len[i] == 0)
  160. continue;
  161. wep->key[i] = os_malloc(ssid->wep_key_len[i]);
  162. if (wep->key[i] == NULL)
  163. return -1;
  164. os_memcpy(wep->key[i], ssid->wep_key[i],
  165. ssid->wep_key_len[i]);
  166. wep->len[i] = ssid->wep_key_len[i];
  167. }
  168. wep->idx = ssid->wep_tx_keyidx;
  169. wep->keys_set = 1;
  170. }
  171. if (ssid->ap_max_inactivity)
  172. bss->ap_max_inactivity = ssid->ap_max_inactivity;
  173. /* Select group cipher based on the enabled pairwise cipher suites */
  174. pairwise = 0;
  175. if (bss->wpa & 1)
  176. pairwise |= bss->wpa_pairwise;
  177. if (bss->wpa & 2) {
  178. if (bss->rsn_pairwise == 0)
  179. bss->rsn_pairwise = bss->wpa_pairwise;
  180. pairwise |= bss->rsn_pairwise;
  181. }
  182. if (pairwise & WPA_CIPHER_TKIP)
  183. bss->wpa_group = WPA_CIPHER_TKIP;
  184. else
  185. bss->wpa_group = WPA_CIPHER_CCMP;
  186. if (bss->wpa && bss->ieee802_1x)
  187. bss->ssid.security_policy = SECURITY_WPA;
  188. else if (bss->wpa)
  189. bss->ssid.security_policy = SECURITY_WPA_PSK;
  190. else if (bss->ieee802_1x) {
  191. int cipher = WPA_CIPHER_NONE;
  192. bss->ssid.security_policy = SECURITY_IEEE_802_1X;
  193. bss->ssid.wep.default_len = bss->default_wep_key_len;
  194. if (bss->default_wep_key_len)
  195. cipher = bss->default_wep_key_len >= 13 ?
  196. WPA_CIPHER_WEP104 : WPA_CIPHER_WEP40;
  197. bss->wpa_group = cipher;
  198. bss->wpa_pairwise = cipher;
  199. bss->rsn_pairwise = cipher;
  200. } else if (bss->ssid.wep.keys_set) {
  201. int cipher = WPA_CIPHER_WEP40;
  202. if (bss->ssid.wep.len[0] >= 13)
  203. cipher = WPA_CIPHER_WEP104;
  204. bss->ssid.security_policy = SECURITY_STATIC_WEP;
  205. bss->wpa_group = cipher;
  206. bss->wpa_pairwise = cipher;
  207. bss->rsn_pairwise = cipher;
  208. } else {
  209. bss->ssid.security_policy = SECURITY_PLAINTEXT;
  210. bss->wpa_group = WPA_CIPHER_NONE;
  211. bss->wpa_pairwise = WPA_CIPHER_NONE;
  212. bss->rsn_pairwise = WPA_CIPHER_NONE;
  213. }
  214. #ifdef CONFIG_WPS
  215. /*
  216. * Enable WPS by default for open and WPA/WPA2-Personal network, but
  217. * require user interaction to actually use it. Only the internal
  218. * Registrar is supported.
  219. */
  220. if (bss->ssid.security_policy != SECURITY_WPA_PSK &&
  221. bss->ssid.security_policy != SECURITY_PLAINTEXT)
  222. goto no_wps;
  223. #ifdef CONFIG_WPS2
  224. if (bss->ssid.security_policy == SECURITY_WPA_PSK &&
  225. (!(pairwise & WPA_CIPHER_CCMP) || !(bss->wpa & 2)))
  226. goto no_wps; /* WPS2 does not allow WPA/TKIP-only
  227. * configuration */
  228. #endif /* CONFIG_WPS2 */
  229. bss->eap_server = 1;
  230. if (!ssid->ignore_broadcast_ssid)
  231. bss->wps_state = 2;
  232. bss->ap_setup_locked = 2;
  233. if (wpa_s->conf->config_methods)
  234. bss->config_methods = os_strdup(wpa_s->conf->config_methods);
  235. os_memcpy(bss->device_type, wpa_s->conf->device_type,
  236. WPS_DEV_TYPE_LEN);
  237. if (wpa_s->conf->device_name) {
  238. bss->device_name = os_strdup(wpa_s->conf->device_name);
  239. bss->friendly_name = os_strdup(wpa_s->conf->device_name);
  240. }
  241. if (wpa_s->conf->manufacturer)
  242. bss->manufacturer = os_strdup(wpa_s->conf->manufacturer);
  243. if (wpa_s->conf->model_name)
  244. bss->model_name = os_strdup(wpa_s->conf->model_name);
  245. if (wpa_s->conf->model_number)
  246. bss->model_number = os_strdup(wpa_s->conf->model_number);
  247. if (wpa_s->conf->serial_number)
  248. bss->serial_number = os_strdup(wpa_s->conf->serial_number);
  249. if (is_nil_uuid(wpa_s->conf->uuid))
  250. os_memcpy(bss->uuid, wpa_s->wps->uuid, WPS_UUID_LEN);
  251. else
  252. os_memcpy(bss->uuid, wpa_s->conf->uuid, WPS_UUID_LEN);
  253. os_memcpy(bss->os_version, wpa_s->conf->os_version, 4);
  254. no_wps:
  255. #endif /* CONFIG_WPS */
  256. if (wpa_s->max_stations &&
  257. wpa_s->max_stations < wpa_s->conf->max_num_sta)
  258. bss->max_num_sta = wpa_s->max_stations;
  259. else
  260. bss->max_num_sta = wpa_s->conf->max_num_sta;
  261. bss->disassoc_low_ack = wpa_s->conf->disassoc_low_ack;
  262. return 0;
  263. }
  264. static void ap_public_action_rx(void *ctx, const u8 *buf, size_t len, int freq)
  265. {
  266. #ifdef CONFIG_P2P
  267. struct wpa_supplicant *wpa_s = ctx;
  268. const struct ieee80211_mgmt *mgmt;
  269. size_t hdr_len;
  270. mgmt = (const struct ieee80211_mgmt *) buf;
  271. hdr_len = (const u8 *) &mgmt->u.action.u.vs_public_action.action - buf;
  272. if (hdr_len > len)
  273. return;
  274. wpas_p2p_rx_action(wpa_s, mgmt->da, mgmt->sa, mgmt->bssid,
  275. mgmt->u.action.category,
  276. &mgmt->u.action.u.vs_public_action.action,
  277. len - hdr_len, freq);
  278. #endif /* CONFIG_P2P */
  279. }
  280. static void ap_wps_event_cb(void *ctx, enum wps_event event,
  281. union wps_event_data *data)
  282. {
  283. #ifdef CONFIG_P2P
  284. struct wpa_supplicant *wpa_s = ctx;
  285. if (event == WPS_EV_FAIL) {
  286. struct wps_event_fail *fail = &data->fail;
  287. if (wpa_s->parent && wpa_s->parent != wpa_s &&
  288. wpa_s == wpa_s->global->p2p_group_formation) {
  289. /*
  290. * src/ap/wps_hostapd.c has already sent this on the
  291. * main interface, so only send on the parent interface
  292. * here if needed.
  293. */
  294. wpa_msg(wpa_s->parent, MSG_INFO, WPS_EVENT_FAIL
  295. "msg=%d config_error=%d",
  296. fail->msg, fail->config_error);
  297. }
  298. wpas_p2p_wps_failed(wpa_s, fail);
  299. }
  300. #endif /* CONFIG_P2P */
  301. }
  302. static void ap_sta_authorized_cb(void *ctx, const u8 *mac_addr,
  303. int authorized, const u8 *p2p_dev_addr)
  304. {
  305. wpas_notify_sta_authorized(ctx, mac_addr, authorized, p2p_dev_addr);
  306. }
  307. static int ap_vendor_action_rx(void *ctx, const u8 *buf, size_t len, int freq)
  308. {
  309. #ifdef CONFIG_P2P
  310. struct wpa_supplicant *wpa_s = ctx;
  311. const struct ieee80211_mgmt *mgmt;
  312. size_t hdr_len;
  313. mgmt = (const struct ieee80211_mgmt *) buf;
  314. hdr_len = (const u8 *) &mgmt->u.action.u.vs_public_action.action - buf;
  315. if (hdr_len > len)
  316. return -1;
  317. wpas_p2p_rx_action(wpa_s, mgmt->da, mgmt->sa, mgmt->bssid,
  318. mgmt->u.action.category,
  319. &mgmt->u.action.u.vs_public_action.action,
  320. len - hdr_len, freq);
  321. #endif /* CONFIG_P2P */
  322. return 0;
  323. }
  324. static int ap_probe_req_rx(void *ctx, const u8 *sa, const u8 *da,
  325. const u8 *bssid, const u8 *ie, size_t ie_len,
  326. int ssi_signal)
  327. {
  328. #ifdef CONFIG_P2P
  329. struct wpa_supplicant *wpa_s = ctx;
  330. return wpas_p2p_probe_req_rx(wpa_s, sa, da, bssid, ie, ie_len,
  331. ssi_signal);
  332. #else /* CONFIG_P2P */
  333. return 0;
  334. #endif /* CONFIG_P2P */
  335. }
  336. static void ap_wps_reg_success_cb(void *ctx, const u8 *mac_addr,
  337. const u8 *uuid_e)
  338. {
  339. #ifdef CONFIG_P2P
  340. struct wpa_supplicant *wpa_s = ctx;
  341. wpas_p2p_wps_success(wpa_s, mac_addr, 1);
  342. #endif /* CONFIG_P2P */
  343. }
  344. static void wpas_ap_configured_cb(void *ctx)
  345. {
  346. struct wpa_supplicant *wpa_s = ctx;
  347. wpa_supplicant_set_state(wpa_s, WPA_COMPLETED);
  348. if (wpa_s->ap_configured_cb)
  349. wpa_s->ap_configured_cb(wpa_s->ap_configured_cb_ctx,
  350. wpa_s->ap_configured_cb_data);
  351. }
  352. int wpa_supplicant_create_ap(struct wpa_supplicant *wpa_s,
  353. struct wpa_ssid *ssid)
  354. {
  355. struct wpa_driver_associate_params params;
  356. struct hostapd_iface *hapd_iface;
  357. struct hostapd_config *conf;
  358. size_t i;
  359. if (ssid->ssid == NULL || ssid->ssid_len == 0) {
  360. wpa_printf(MSG_ERROR, "No SSID configured for AP mode");
  361. return -1;
  362. }
  363. wpa_supplicant_ap_deinit(wpa_s);
  364. wpa_printf(MSG_DEBUG, "Setting up AP (SSID='%s')",
  365. wpa_ssid_txt(ssid->ssid, ssid->ssid_len));
  366. os_memset(&params, 0, sizeof(params));
  367. params.ssid = ssid->ssid;
  368. params.ssid_len = ssid->ssid_len;
  369. switch (ssid->mode) {
  370. case WPAS_MODE_INFRA:
  371. params.mode = IEEE80211_MODE_INFRA;
  372. break;
  373. case WPAS_MODE_IBSS:
  374. params.mode = IEEE80211_MODE_IBSS;
  375. break;
  376. case WPAS_MODE_AP:
  377. case WPAS_MODE_P2P_GO:
  378. case WPAS_MODE_P2P_GROUP_FORMATION:
  379. params.mode = IEEE80211_MODE_AP;
  380. break;
  381. }
  382. params.freq = ssid->frequency;
  383. params.wpa_proto = ssid->proto;
  384. if (ssid->key_mgmt & WPA_KEY_MGMT_PSK)
  385. wpa_s->key_mgmt = WPA_KEY_MGMT_PSK;
  386. else
  387. wpa_s->key_mgmt = WPA_KEY_MGMT_NONE;
  388. params.key_mgmt_suite = key_mgmt2driver(wpa_s->key_mgmt);
  389. if (ssid->pairwise_cipher & WPA_CIPHER_CCMP)
  390. wpa_s->pairwise_cipher = WPA_CIPHER_CCMP;
  391. else if (ssid->pairwise_cipher & WPA_CIPHER_TKIP)
  392. wpa_s->pairwise_cipher = WPA_CIPHER_TKIP;
  393. else if (ssid->pairwise_cipher & WPA_CIPHER_NONE)
  394. wpa_s->pairwise_cipher = WPA_CIPHER_NONE;
  395. else {
  396. wpa_printf(MSG_WARNING, "WPA: Failed to select pairwise "
  397. "cipher.");
  398. return -1;
  399. }
  400. params.pairwise_suite = cipher_suite2driver(wpa_s->pairwise_cipher);
  401. params.group_suite = params.pairwise_suite;
  402. #ifdef CONFIG_P2P
  403. if (ssid->mode == WPAS_MODE_P2P_GO ||
  404. ssid->mode == WPAS_MODE_P2P_GROUP_FORMATION)
  405. params.p2p = 1;
  406. #endif /* CONFIG_P2P */
  407. if (wpa_s->parent->set_ap_uapsd)
  408. params.uapsd = wpa_s->parent->ap_uapsd;
  409. else
  410. params.uapsd = -1;
  411. if (wpa_drv_associate(wpa_s, &params) < 0) {
  412. wpa_msg(wpa_s, MSG_INFO, "Failed to start AP functionality");
  413. return -1;
  414. }
  415. wpa_s->ap_iface = hapd_iface = os_zalloc(sizeof(*wpa_s->ap_iface));
  416. if (hapd_iface == NULL)
  417. return -1;
  418. hapd_iface->owner = wpa_s;
  419. hapd_iface->drv_flags = wpa_s->drv_flags;
  420. hapd_iface->probe_resp_offloads = wpa_s->probe_resp_offloads;
  421. wpa_s->ap_iface->conf = conf = hostapd_config_defaults();
  422. if (conf == NULL) {
  423. wpa_supplicant_ap_deinit(wpa_s);
  424. return -1;
  425. }
  426. if (params.uapsd > 0) {
  427. conf->bss->wmm_enabled = 1;
  428. conf->bss->wmm_uapsd = 1;
  429. }
  430. if (wpa_supplicant_conf_ap(wpa_s, ssid, conf)) {
  431. wpa_printf(MSG_ERROR, "Failed to create AP configuration");
  432. wpa_supplicant_ap_deinit(wpa_s);
  433. return -1;
  434. }
  435. #ifdef CONFIG_P2P
  436. if (ssid->mode == WPAS_MODE_P2P_GO)
  437. conf->bss[0].p2p = P2P_ENABLED | P2P_GROUP_OWNER;
  438. else if (ssid->mode == WPAS_MODE_P2P_GROUP_FORMATION)
  439. conf->bss[0].p2p = P2P_ENABLED | P2P_GROUP_OWNER |
  440. P2P_GROUP_FORMATION;
  441. #endif /* CONFIG_P2P */
  442. hapd_iface->num_bss = conf->num_bss;
  443. hapd_iface->bss = os_zalloc(conf->num_bss *
  444. sizeof(struct hostapd_data *));
  445. if (hapd_iface->bss == NULL) {
  446. wpa_supplicant_ap_deinit(wpa_s);
  447. return -1;
  448. }
  449. for (i = 0; i < conf->num_bss; i++) {
  450. hapd_iface->bss[i] =
  451. hostapd_alloc_bss_data(hapd_iface, conf,
  452. &conf->bss[i]);
  453. if (hapd_iface->bss[i] == NULL) {
  454. wpa_supplicant_ap_deinit(wpa_s);
  455. return -1;
  456. }
  457. hapd_iface->bss[i]->msg_ctx = wpa_s;
  458. hapd_iface->bss[i]->msg_ctx_parent = wpa_s->parent;
  459. hapd_iface->bss[i]->public_action_cb = ap_public_action_rx;
  460. hapd_iface->bss[i]->public_action_cb_ctx = wpa_s;
  461. hapd_iface->bss[i]->vendor_action_cb = ap_vendor_action_rx;
  462. hapd_iface->bss[i]->vendor_action_cb_ctx = wpa_s;
  463. hostapd_register_probereq_cb(hapd_iface->bss[i],
  464. ap_probe_req_rx, wpa_s);
  465. hapd_iface->bss[i]->wps_reg_success_cb = ap_wps_reg_success_cb;
  466. hapd_iface->bss[i]->wps_reg_success_cb_ctx = wpa_s;
  467. hapd_iface->bss[i]->wps_event_cb = ap_wps_event_cb;
  468. hapd_iface->bss[i]->wps_event_cb_ctx = wpa_s;
  469. hapd_iface->bss[i]->sta_authorized_cb = ap_sta_authorized_cb;
  470. hapd_iface->bss[i]->sta_authorized_cb_ctx = wpa_s;
  471. #ifdef CONFIG_P2P
  472. hapd_iface->bss[i]->p2p = wpa_s->global->p2p;
  473. hapd_iface->bss[i]->p2p_group = wpas_p2p_group_init(
  474. wpa_s, ssid->p2p_persistent_group,
  475. ssid->mode == WPAS_MODE_P2P_GROUP_FORMATION);
  476. #endif /* CONFIG_P2P */
  477. hapd_iface->bss[i]->setup_complete_cb = wpas_ap_configured_cb;
  478. hapd_iface->bss[i]->setup_complete_cb_ctx = wpa_s;
  479. }
  480. os_memcpy(hapd_iface->bss[0]->own_addr, wpa_s->own_addr, ETH_ALEN);
  481. hapd_iface->bss[0]->driver = wpa_s->driver;
  482. hapd_iface->bss[0]->drv_priv = wpa_s->drv_priv;
  483. wpa_s->current_ssid = ssid;
  484. os_memcpy(wpa_s->bssid, wpa_s->own_addr, ETH_ALEN);
  485. wpa_s->assoc_freq = ssid->frequency;
  486. if (hostapd_setup_interface(wpa_s->ap_iface)) {
  487. wpa_printf(MSG_ERROR, "Failed to initialize AP interface");
  488. wpa_supplicant_ap_deinit(wpa_s);
  489. return -1;
  490. }
  491. return 0;
  492. }
  493. void wpa_supplicant_ap_deinit(struct wpa_supplicant *wpa_s)
  494. {
  495. #ifdef CONFIG_WPS
  496. eloop_cancel_timeout(wpas_wps_ap_pin_timeout, wpa_s, NULL);
  497. #endif /* CONFIG_WPS */
  498. if (wpa_s->ap_iface == NULL)
  499. return;
  500. wpa_s->current_ssid = NULL;
  501. wpa_s->assoc_freq = 0;
  502. wpa_s->reassociated_connection = 0;
  503. #ifdef CONFIG_P2P
  504. if (wpa_s->ap_iface->bss)
  505. wpa_s->ap_iface->bss[0]->p2p_group = NULL;
  506. wpas_p2p_group_deinit(wpa_s);
  507. #endif /* CONFIG_P2P */
  508. hostapd_interface_deinit(wpa_s->ap_iface);
  509. hostapd_interface_free(wpa_s->ap_iface);
  510. wpa_s->ap_iface = NULL;
  511. wpa_drv_deinit_ap(wpa_s);
  512. }
  513. void ap_tx_status(void *ctx, const u8 *addr,
  514. const u8 *buf, size_t len, int ack)
  515. {
  516. #ifdef NEED_AP_MLME
  517. struct wpa_supplicant *wpa_s = ctx;
  518. hostapd_tx_status(wpa_s->ap_iface->bss[0], addr, buf, len, ack);
  519. #endif /* NEED_AP_MLME */
  520. }
  521. void ap_eapol_tx_status(void *ctx, const u8 *dst,
  522. const u8 *data, size_t len, int ack)
  523. {
  524. #ifdef NEED_AP_MLME
  525. struct wpa_supplicant *wpa_s = ctx;
  526. hostapd_tx_status(wpa_s->ap_iface->bss[0], dst, data, len, ack);
  527. #endif /* NEED_AP_MLME */
  528. }
  529. void ap_client_poll_ok(void *ctx, const u8 *addr)
  530. {
  531. #ifdef NEED_AP_MLME
  532. struct wpa_supplicant *wpa_s = ctx;
  533. if (wpa_s->ap_iface)
  534. hostapd_client_poll_ok(wpa_s->ap_iface->bss[0], addr);
  535. #endif /* NEED_AP_MLME */
  536. }
  537. void ap_rx_from_unknown_sta(void *ctx, const u8 *addr, int wds)
  538. {
  539. #ifdef NEED_AP_MLME
  540. struct wpa_supplicant *wpa_s = ctx;
  541. ieee802_11_rx_from_unknown(wpa_s->ap_iface->bss[0], addr, wds);
  542. #endif /* NEED_AP_MLME */
  543. }
  544. void ap_mgmt_rx(void *ctx, struct rx_mgmt *rx_mgmt)
  545. {
  546. #ifdef NEED_AP_MLME
  547. struct wpa_supplicant *wpa_s = ctx;
  548. struct hostapd_frame_info fi;
  549. os_memset(&fi, 0, sizeof(fi));
  550. fi.datarate = rx_mgmt->datarate;
  551. fi.ssi_signal = rx_mgmt->ssi_signal;
  552. ieee802_11_mgmt(wpa_s->ap_iface->bss[0], rx_mgmt->frame,
  553. rx_mgmt->frame_len, &fi);
  554. #endif /* NEED_AP_MLME */
  555. }
  556. void ap_mgmt_tx_cb(void *ctx, const u8 *buf, size_t len, u16 stype, int ok)
  557. {
  558. #ifdef NEED_AP_MLME
  559. struct wpa_supplicant *wpa_s = ctx;
  560. ieee802_11_mgmt_cb(wpa_s->ap_iface->bss[0], buf, len, stype, ok);
  561. #endif /* NEED_AP_MLME */
  562. }
  563. void wpa_supplicant_ap_rx_eapol(struct wpa_supplicant *wpa_s,
  564. const u8 *src_addr, const u8 *buf, size_t len)
  565. {
  566. ieee802_1x_receive(wpa_s->ap_iface->bss[0], src_addr, buf, len);
  567. }
  568. #ifdef CONFIG_WPS
  569. int wpa_supplicant_ap_wps_pbc(struct wpa_supplicant *wpa_s, const u8 *bssid,
  570. const u8 *p2p_dev_addr)
  571. {
  572. if (!wpa_s->ap_iface)
  573. return -1;
  574. return hostapd_wps_button_pushed(wpa_s->ap_iface->bss[0],
  575. p2p_dev_addr);
  576. }
  577. int wpa_supplicant_ap_wps_cancel(struct wpa_supplicant *wpa_s)
  578. {
  579. struct wps_registrar *reg;
  580. int reg_sel = 0, wps_sta = 0;
  581. if (!wpa_s->ap_iface || !wpa_s->ap_iface->bss[0]->wps)
  582. return -1;
  583. reg = wpa_s->ap_iface->bss[0]->wps->registrar;
  584. reg_sel = wps_registrar_wps_cancel(reg);
  585. wps_sta = ap_for_each_sta(wpa_s->ap_iface->bss[0],
  586. ap_sta_wps_cancel, NULL);
  587. if (!reg_sel && !wps_sta) {
  588. wpa_printf(MSG_DEBUG, "No WPS operation in progress at this "
  589. "time");
  590. return -1;
  591. }
  592. /*
  593. * There are 2 cases to return wps cancel as success:
  594. * 1. When wps cancel was initiated but no connection has been
  595. * established with client yet.
  596. * 2. Client is in the middle of exchanging WPS messages.
  597. */
  598. return 0;
  599. }
  600. int wpa_supplicant_ap_wps_pin(struct wpa_supplicant *wpa_s, const u8 *bssid,
  601. const char *pin, char *buf, size_t buflen)
  602. {
  603. int ret, ret_len = 0;
  604. if (!wpa_s->ap_iface)
  605. return -1;
  606. if (pin == NULL) {
  607. unsigned int rpin = wps_generate_pin();
  608. ret_len = os_snprintf(buf, buflen, "%08d", rpin);
  609. pin = buf;
  610. } else
  611. ret_len = os_snprintf(buf, buflen, "%s", pin);
  612. ret = hostapd_wps_add_pin(wpa_s->ap_iface->bss[0], bssid, "any", pin,
  613. 0);
  614. if (ret)
  615. return -1;
  616. return ret_len;
  617. }
  618. static void wpas_wps_ap_pin_timeout(void *eloop_data, void *user_ctx)
  619. {
  620. struct wpa_supplicant *wpa_s = eloop_data;
  621. wpa_printf(MSG_DEBUG, "WPS: AP PIN timed out");
  622. wpas_wps_ap_pin_disable(wpa_s);
  623. }
  624. static void wpas_wps_ap_pin_enable(struct wpa_supplicant *wpa_s, int timeout)
  625. {
  626. struct hostapd_data *hapd;
  627. if (wpa_s->ap_iface == NULL)
  628. return;
  629. hapd = wpa_s->ap_iface->bss[0];
  630. wpa_printf(MSG_DEBUG, "WPS: Enabling AP PIN (timeout=%d)", timeout);
  631. hapd->ap_pin_failures = 0;
  632. eloop_cancel_timeout(wpas_wps_ap_pin_timeout, wpa_s, NULL);
  633. if (timeout > 0)
  634. eloop_register_timeout(timeout, 0,
  635. wpas_wps_ap_pin_timeout, wpa_s, NULL);
  636. }
  637. void wpas_wps_ap_pin_disable(struct wpa_supplicant *wpa_s)
  638. {
  639. struct hostapd_data *hapd;
  640. if (wpa_s->ap_iface == NULL)
  641. return;
  642. wpa_printf(MSG_DEBUG, "WPS: Disabling AP PIN");
  643. hapd = wpa_s->ap_iface->bss[0];
  644. os_free(hapd->conf->ap_pin);
  645. hapd->conf->ap_pin = NULL;
  646. eloop_cancel_timeout(wpas_wps_ap_pin_timeout, wpa_s, NULL);
  647. }
  648. const char * wpas_wps_ap_pin_random(struct wpa_supplicant *wpa_s, int timeout)
  649. {
  650. struct hostapd_data *hapd;
  651. unsigned int pin;
  652. char pin_txt[9];
  653. if (wpa_s->ap_iface == NULL)
  654. return NULL;
  655. hapd = wpa_s->ap_iface->bss[0];
  656. pin = wps_generate_pin();
  657. os_snprintf(pin_txt, sizeof(pin_txt), "%08u", pin);
  658. os_free(hapd->conf->ap_pin);
  659. hapd->conf->ap_pin = os_strdup(pin_txt);
  660. if (hapd->conf->ap_pin == NULL)
  661. return NULL;
  662. wpas_wps_ap_pin_enable(wpa_s, timeout);
  663. return hapd->conf->ap_pin;
  664. }
  665. const char * wpas_wps_ap_pin_get(struct wpa_supplicant *wpa_s)
  666. {
  667. struct hostapd_data *hapd;
  668. if (wpa_s->ap_iface == NULL)
  669. return NULL;
  670. hapd = wpa_s->ap_iface->bss[0];
  671. return hapd->conf->ap_pin;
  672. }
  673. int wpas_wps_ap_pin_set(struct wpa_supplicant *wpa_s, const char *pin,
  674. int timeout)
  675. {
  676. struct hostapd_data *hapd;
  677. char pin_txt[9];
  678. int ret;
  679. if (wpa_s->ap_iface == NULL)
  680. return -1;
  681. hapd = wpa_s->ap_iface->bss[0];
  682. ret = os_snprintf(pin_txt, sizeof(pin_txt), "%s", pin);
  683. if (ret < 0 || ret >= (int) sizeof(pin_txt))
  684. return -1;
  685. os_free(hapd->conf->ap_pin);
  686. hapd->conf->ap_pin = os_strdup(pin_txt);
  687. if (hapd->conf->ap_pin == NULL)
  688. return -1;
  689. wpas_wps_ap_pin_enable(wpa_s, timeout);
  690. return 0;
  691. }
  692. void wpa_supplicant_ap_pwd_auth_fail(struct wpa_supplicant *wpa_s)
  693. {
  694. struct hostapd_data *hapd;
  695. if (wpa_s->ap_iface == NULL)
  696. return;
  697. hapd = wpa_s->ap_iface->bss[0];
  698. /*
  699. * Registrar failed to prove its knowledge of the AP PIN. Disable AP
  700. * PIN if this happens multiple times to slow down brute force attacks.
  701. */
  702. hapd->ap_pin_failures++;
  703. wpa_printf(MSG_DEBUG, "WPS: AP PIN authentication failure number %u",
  704. hapd->ap_pin_failures);
  705. if (hapd->ap_pin_failures < 3)
  706. return;
  707. wpa_printf(MSG_DEBUG, "WPS: Disable AP PIN");
  708. hapd->ap_pin_failures = 0;
  709. os_free(hapd->conf->ap_pin);
  710. hapd->conf->ap_pin = NULL;
  711. }
  712. #endif /* CONFIG_WPS */
  713. #ifdef CONFIG_CTRL_IFACE
  714. int ap_ctrl_iface_sta_first(struct wpa_supplicant *wpa_s,
  715. char *buf, size_t buflen)
  716. {
  717. if (wpa_s->ap_iface == NULL)
  718. return -1;
  719. return hostapd_ctrl_iface_sta_first(wpa_s->ap_iface->bss[0],
  720. buf, buflen);
  721. }
  722. int ap_ctrl_iface_sta(struct wpa_supplicant *wpa_s, const char *txtaddr,
  723. char *buf, size_t buflen)
  724. {
  725. if (wpa_s->ap_iface == NULL)
  726. return -1;
  727. return hostapd_ctrl_iface_sta(wpa_s->ap_iface->bss[0], txtaddr,
  728. buf, buflen);
  729. }
  730. int ap_ctrl_iface_sta_next(struct wpa_supplicant *wpa_s, const char *txtaddr,
  731. char *buf, size_t buflen)
  732. {
  733. if (wpa_s->ap_iface == NULL)
  734. return -1;
  735. return hostapd_ctrl_iface_sta_next(wpa_s->ap_iface->bss[0], txtaddr,
  736. buf, buflen);
  737. }
  738. int ap_ctrl_iface_sta_disassociate(struct wpa_supplicant *wpa_s,
  739. const char *txtaddr)
  740. {
  741. if (wpa_s->ap_iface == NULL)
  742. return -1;
  743. return hostapd_ctrl_iface_disassociate(wpa_s->ap_iface->bss[0],
  744. txtaddr);
  745. }
  746. int ap_ctrl_iface_sta_deauthenticate(struct wpa_supplicant *wpa_s,
  747. const char *txtaddr)
  748. {
  749. if (wpa_s->ap_iface == NULL)
  750. return -1;
  751. return hostapd_ctrl_iface_deauthenticate(wpa_s->ap_iface->bss[0],
  752. txtaddr);
  753. }
  754. int ap_ctrl_iface_wpa_get_status(struct wpa_supplicant *wpa_s, char *buf,
  755. size_t buflen, int verbose)
  756. {
  757. char *pos = buf, *end = buf + buflen;
  758. int ret;
  759. struct hostapd_bss_config *conf;
  760. if (wpa_s->ap_iface == NULL)
  761. return -1;
  762. conf = wpa_s->ap_iface->bss[0]->conf;
  763. if (conf->wpa == 0)
  764. return 0;
  765. ret = os_snprintf(pos, end - pos,
  766. "pairwise_cipher=%s\n"
  767. "group_cipher=%s\n"
  768. "key_mgmt=%s\n",
  769. wpa_cipher_txt(conf->rsn_pairwise),
  770. wpa_cipher_txt(conf->wpa_group),
  771. wpa_key_mgmt_txt(conf->wpa_key_mgmt,
  772. conf->wpa));
  773. if (ret < 0 || ret >= end - pos)
  774. return pos - buf;
  775. pos += ret;
  776. return pos - buf;
  777. }
  778. #endif /* CONFIG_CTRL_IFACE */
  779. int wpa_supplicant_ap_update_beacon(struct wpa_supplicant *wpa_s)
  780. {
  781. struct hostapd_iface *iface = wpa_s->ap_iface;
  782. struct wpa_ssid *ssid = wpa_s->current_ssid;
  783. struct hostapd_data *hapd;
  784. if (ssid == NULL || wpa_s->ap_iface == NULL ||
  785. ssid->mode == WPAS_MODE_INFRA ||
  786. ssid->mode == WPAS_MODE_IBSS)
  787. return -1;
  788. #ifdef CONFIG_P2P
  789. if (ssid->mode == WPAS_MODE_P2P_GO)
  790. iface->conf->bss[0].p2p = P2P_ENABLED | P2P_GROUP_OWNER;
  791. else if (ssid->mode == WPAS_MODE_P2P_GROUP_FORMATION)
  792. iface->conf->bss[0].p2p = P2P_ENABLED | P2P_GROUP_OWNER |
  793. P2P_GROUP_FORMATION;
  794. #endif /* CONFIG_P2P */
  795. hapd = iface->bss[0];
  796. if (hapd->drv_priv == NULL)
  797. return -1;
  798. ieee802_11_set_beacons(iface);
  799. hostapd_set_ap_wps_ie(hapd);
  800. return 0;
  801. }
  802. int wpa_supplicant_ap_mac_addr_filter(struct wpa_supplicant *wpa_s,
  803. const u8 *addr)
  804. {
  805. struct hostapd_data *hapd;
  806. struct hostapd_bss_config *conf;
  807. if (!wpa_s->ap_iface)
  808. return -1;
  809. if (addr)
  810. wpa_printf(MSG_DEBUG, "AP: Set MAC address filter: " MACSTR,
  811. MAC2STR(addr));
  812. else
  813. wpa_printf(MSG_DEBUG, "AP: Clear MAC address filter");
  814. hapd = wpa_s->ap_iface->bss[0];
  815. conf = hapd->conf;
  816. os_free(conf->accept_mac);
  817. conf->accept_mac = NULL;
  818. conf->num_accept_mac = 0;
  819. os_free(conf->deny_mac);
  820. conf->deny_mac = NULL;
  821. conf->num_deny_mac = 0;
  822. if (addr == NULL) {
  823. conf->macaddr_acl = ACCEPT_UNLESS_DENIED;
  824. return 0;
  825. }
  826. conf->macaddr_acl = DENY_UNLESS_ACCEPTED;
  827. conf->accept_mac = os_zalloc(sizeof(struct mac_acl_entry));
  828. if (conf->accept_mac == NULL)
  829. return -1;
  830. os_memcpy(conf->accept_mac[0].addr, addr, ETH_ALEN);
  831. conf->num_accept_mac = 1;
  832. return 0;
  833. }