driver_atheros.c 34 KB

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  1. /*
  2. * hostapd / Driver interaction with Atheros driver
  3. * Copyright (c) 2004, Sam Leffler <sam@errno.com>
  4. * Copyright (c) 2004, Video54 Technologies
  5. * Copyright (c) 2005-2007, Jouni Malinen <j@w1.fi>
  6. * Copyright (c) 2009, Atheros Communications
  7. *
  8. * This program is free software; you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License version 2 as
  10. * published by the Free Software Foundation.
  11. *
  12. * Alternatively, this software may be distributed under the terms of BSD
  13. * license.
  14. *
  15. * See README and COPYING for more details.
  16. */
  17. #include "includes.h"
  18. #include <net/if.h>
  19. #include <sys/ioctl.h>
  20. #include "common.h"
  21. #ifndef _BYTE_ORDER
  22. #ifdef WORDS_BIGENDIAN
  23. #define _BYTE_ORDER _BIG_ENDIAN
  24. #else
  25. #define _BYTE_ORDER _LITTLE_ENDIAN
  26. #endif
  27. #endif /* _BYTE_ORDER */
  28. #include <net80211/ieee80211.h>
  29. #include <net80211/_ieee80211.h>
  30. #include <net80211/ieee80211_crypto.h>
  31. /*
  32. * Note, the ATH_WPS_IE setting must match with the driver build.. If the
  33. * driver does not include this, the IEEE80211_IOCTL_GETWPAIE ioctl will fail.
  34. */
  35. #define ATH_WPS_IE
  36. #include <net80211/ieee80211_ioctl.h>
  37. #ifdef CONFIG_WPS
  38. #ifdef IEEE80211_IOCTL_FILTERFRAME
  39. #include <netpacket/packet.h>
  40. #ifndef ETH_P_80211_RAW
  41. #define ETH_P_80211_RAW 0x0019
  42. #endif
  43. #endif /* IEEE80211_IOCTL_FILTERFRAME */
  44. #endif /* CONFIG_WPS */
  45. /*
  46. * Avoid conflicts with hostapd definitions by undefining couple of defines
  47. * from madwifi header files.
  48. */
  49. #undef WPA_OUI_TYPE
  50. #undef WME_OUI_TYPE
  51. #include "wireless_copy.h"
  52. #include "hostapd.h"
  53. #include "driver.h"
  54. #include "eloop.h"
  55. #include "priv_netlink.h"
  56. #include "l2_packet/l2_packet.h"
  57. #include "wps_hostapd.h"
  58. #include "ieee802_11_defs.h"
  59. struct madwifi_driver_data {
  60. struct hostapd_data *hapd; /* back pointer */
  61. char iface[IFNAMSIZ + 1];
  62. int ifindex;
  63. struct l2_packet_data *sock_xmit; /* raw packet xmit socket */
  64. struct l2_packet_data *sock_recv; /* raw packet recv socket */
  65. int ioctl_sock; /* socket for ioctl() use */
  66. int wext_sock; /* socket for wireless events */
  67. int we_version;
  68. u8 acct_mac[ETH_ALEN];
  69. struct hostap_sta_driver_data acct_data;
  70. struct l2_packet_data *sock_raw; /* raw 802.11 management frames */
  71. };
  72. static int madwifi_sta_deauth(void *priv, const u8 *addr, int reason_code);
  73. static int
  74. set80211priv(struct madwifi_driver_data *drv, int op, void *data, int len)
  75. {
  76. struct iwreq iwr;
  77. int do_inline = len < IFNAMSIZ;
  78. /* Certain ioctls must use the non-inlined method */
  79. if (op == IEEE80211_IOCTL_SET_APPIEBUF ||
  80. op == IEEE80211_IOCTL_FILTERFRAME)
  81. do_inline = 0;
  82. memset(&iwr, 0, sizeof(iwr));
  83. os_strlcpy(iwr.ifr_name, drv->iface, IFNAMSIZ);
  84. if (do_inline) {
  85. /*
  86. * Argument data fits inline; put it there.
  87. */
  88. memcpy(iwr.u.name, data, len);
  89. } else {
  90. /*
  91. * Argument data too big for inline transfer; setup a
  92. * parameter block instead; the kernel will transfer
  93. * the data for the driver.
  94. */
  95. iwr.u.data.pointer = data;
  96. iwr.u.data.length = len;
  97. }
  98. if (ioctl(drv->ioctl_sock, op, &iwr) < 0) {
  99. int first = IEEE80211_IOCTL_SETPARAM;
  100. static const char *opnames[] = {
  101. "ioctl[IEEE80211_IOCTL_SETPARAM]",
  102. "ioctl[IEEE80211_IOCTL_GETPARAM]",
  103. "ioctl[IEEE80211_IOCTL_SETKEY]",
  104. "ioctl[IEEE80211_IOCTL_SETWMMPARAMS]",
  105. "ioctl[IEEE80211_IOCTL_DELKEY]",
  106. "ioctl[IEEE80211_IOCTL_GETWMMPARAMS]",
  107. "ioctl[IEEE80211_IOCTL_SETMLME]",
  108. "ioctl[IEEE80211_IOCTL_GETCHANINFO]",
  109. "ioctl[IEEE80211_IOCTL_SETOPTIE]",
  110. "ioctl[IEEE80211_IOCTL_GETOPTIE]",
  111. "ioctl[IEEE80211_IOCTL_ADDMAC]",
  112. "ioctl[IEEE80211_IOCTL_DELMAC]",
  113. "ioctl[IEEE80211_IOCTL_GETCHANLIST]",
  114. "ioctl[IEEE80211_IOCTL_SETCHANLIST]",
  115. "ioctl[IEEE80211_IOCTL_KICKMAC]",
  116. "ioctl[IEEE80211_IOCTL_CHANSWITCH]",
  117. "ioctl[IEEE80211_IOCTL_GETMODE]",
  118. "ioctl[IEEE80211_IOCTL_SETMODE]",
  119. "ioctl[IEEE80211_IOCTL_GET_APPIEBUF]",
  120. "ioctl[IEEE80211_IOCTL_SET_APPIEBUF]",
  121. NULL,
  122. "ioctl[IEEE80211_IOCTL_FILTERFRAME]",
  123. };
  124. int idx = op - first;
  125. if (first <= op &&
  126. idx < (int) (sizeof(opnames) / sizeof(opnames[0])) &&
  127. opnames[idx])
  128. perror(opnames[idx]);
  129. else {
  130. perror("ioctl[unknown???]");
  131. wpa_printf(MSG_DEBUG, "Failed ioctl: 0x%x", op);
  132. }
  133. return -1;
  134. }
  135. return 0;
  136. }
  137. static int
  138. set80211param(struct madwifi_driver_data *drv, int op, int arg)
  139. {
  140. struct iwreq iwr;
  141. memset(&iwr, 0, sizeof(iwr));
  142. os_strlcpy(iwr.ifr_name, drv->iface, IFNAMSIZ);
  143. iwr.u.mode = op;
  144. memcpy(iwr.u.name+sizeof(__u32), &arg, sizeof(arg));
  145. if (ioctl(drv->ioctl_sock, IEEE80211_IOCTL_SETPARAM, &iwr) < 0) {
  146. perror("ioctl[IEEE80211_IOCTL_SETPARAM]");
  147. wpa_printf(MSG_DEBUG, "%s: Failed to set parameter (op %d "
  148. "arg %d)", __func__, op, arg);
  149. return -1;
  150. }
  151. return 0;
  152. }
  153. #ifndef CONFIG_NO_STDOUT_DEBUG
  154. static const char *
  155. ether_sprintf(const u8 *addr)
  156. {
  157. static char buf[sizeof(MACSTR)];
  158. if (addr != NULL)
  159. snprintf(buf, sizeof(buf), MACSTR, MAC2STR(addr));
  160. else
  161. snprintf(buf, sizeof(buf), MACSTR, 0,0,0,0,0,0);
  162. return buf;
  163. }
  164. #endif /* CONFIG_NO_STDOUT_DEBUG */
  165. /*
  166. * Configure WPA parameters.
  167. */
  168. static int
  169. madwifi_configure_wpa(struct madwifi_driver_data *drv)
  170. {
  171. struct hostapd_data *hapd = drv->hapd;
  172. struct hostapd_bss_config *conf = hapd->conf;
  173. int v;
  174. switch (conf->wpa_group) {
  175. case WPA_CIPHER_CCMP:
  176. v = IEEE80211_CIPHER_AES_CCM;
  177. break;
  178. case WPA_CIPHER_TKIP:
  179. v = IEEE80211_CIPHER_TKIP;
  180. break;
  181. case WPA_CIPHER_WEP104:
  182. v = IEEE80211_CIPHER_WEP;
  183. break;
  184. case WPA_CIPHER_WEP40:
  185. v = IEEE80211_CIPHER_WEP;
  186. break;
  187. case WPA_CIPHER_NONE:
  188. v = IEEE80211_CIPHER_NONE;
  189. break;
  190. default:
  191. wpa_printf(MSG_ERROR, "Unknown group key cipher %u",
  192. conf->wpa_group);
  193. return -1;
  194. }
  195. wpa_printf(MSG_DEBUG, "%s: group key cipher=%d", __func__, v);
  196. if (set80211param(drv, IEEE80211_PARAM_MCASTCIPHER, v)) {
  197. printf("Unable to set group key cipher to %u\n", v);
  198. return -1;
  199. }
  200. if (v == IEEE80211_CIPHER_WEP) {
  201. /* key length is done only for specific ciphers */
  202. v = (conf->wpa_group == WPA_CIPHER_WEP104 ? 13 : 5);
  203. if (set80211param(drv, IEEE80211_PARAM_MCASTKEYLEN, v)) {
  204. printf("Unable to set group key length to %u\n", v);
  205. return -1;
  206. }
  207. }
  208. v = 0;
  209. if (conf->wpa_pairwise & WPA_CIPHER_CCMP)
  210. v |= 1<<IEEE80211_CIPHER_AES_CCM;
  211. if (conf->wpa_pairwise & WPA_CIPHER_TKIP)
  212. v |= 1<<IEEE80211_CIPHER_TKIP;
  213. if (conf->wpa_pairwise & WPA_CIPHER_NONE)
  214. v |= 1<<IEEE80211_CIPHER_NONE;
  215. wpa_printf(MSG_DEBUG, "%s: pairwise key ciphers=0x%x", __func__, v);
  216. if (set80211param(drv, IEEE80211_PARAM_UCASTCIPHERS, v)) {
  217. printf("Unable to set pairwise key ciphers to 0x%x\n", v);
  218. return -1;
  219. }
  220. wpa_printf(MSG_DEBUG, "%s: key management algorithms=0x%x",
  221. __func__, conf->wpa_key_mgmt);
  222. if (set80211param(drv, IEEE80211_PARAM_KEYMGTALGS, conf->wpa_key_mgmt)) {
  223. printf("Unable to set key management algorithms to 0x%x\n",
  224. conf->wpa_key_mgmt);
  225. return -1;
  226. }
  227. v = 0;
  228. if (conf->rsn_preauth)
  229. v |= BIT(0);
  230. wpa_printf(MSG_DEBUG, "%s: rsn capabilities=0x%x",
  231. __func__, conf->rsn_preauth);
  232. if (set80211param(drv, IEEE80211_PARAM_RSNCAPS, v)) {
  233. printf("Unable to set RSN capabilities to 0x%x\n", v);
  234. return -1;
  235. }
  236. wpa_printf(MSG_DEBUG, "%s: enable WPA=0x%x", __func__, conf->wpa);
  237. if (set80211param(drv, IEEE80211_PARAM_WPA, conf->wpa)) {
  238. printf("Unable to set WPA to %u\n", conf->wpa);
  239. return -1;
  240. }
  241. return 0;
  242. }
  243. static int
  244. madwifi_set_iface_flags(void *priv, int dev_up)
  245. {
  246. struct madwifi_driver_data *drv = priv;
  247. struct ifreq ifr;
  248. wpa_printf(MSG_DEBUG, "%s: dev_up=%d", __func__, dev_up);
  249. if (drv->ioctl_sock < 0)
  250. return -1;
  251. memset(&ifr, 0, sizeof(ifr));
  252. os_strlcpy(ifr.ifr_name, drv->iface, IFNAMSIZ);
  253. if (ioctl(drv->ioctl_sock, SIOCGIFFLAGS, &ifr) != 0) {
  254. perror("ioctl[SIOCGIFFLAGS]");
  255. return -1;
  256. }
  257. if (dev_up)
  258. ifr.ifr_flags |= IFF_UP;
  259. else
  260. ifr.ifr_flags &= ~IFF_UP;
  261. if (ioctl(drv->ioctl_sock, SIOCSIFFLAGS, &ifr) != 0) {
  262. perror("ioctl[SIOCSIFFLAGS]");
  263. return -1;
  264. }
  265. if (dev_up) {
  266. memset(&ifr, 0, sizeof(ifr));
  267. os_strlcpy(ifr.ifr_name, drv->iface, IFNAMSIZ);
  268. ifr.ifr_mtu = HOSTAPD_MTU;
  269. if (ioctl(drv->ioctl_sock, SIOCSIFMTU, &ifr) != 0) {
  270. perror("ioctl[SIOCSIFMTU]");
  271. printf("Setting MTU failed - trying to survive with "
  272. "current value\n");
  273. }
  274. }
  275. return 0;
  276. }
  277. static int
  278. madwifi_set_ieee8021x(const char *ifname, void *priv, int enabled)
  279. {
  280. struct madwifi_driver_data *drv = priv;
  281. struct hostapd_data *hapd = drv->hapd;
  282. struct hostapd_bss_config *conf = hapd->conf;
  283. wpa_printf(MSG_DEBUG, "%s: enabled=%d", __func__, enabled);
  284. if (!enabled) {
  285. /* XXX restore state */
  286. return set80211param(priv, IEEE80211_PARAM_AUTHMODE,
  287. IEEE80211_AUTH_AUTO);
  288. }
  289. if (!conf->wpa && !conf->ieee802_1x) {
  290. hostapd_logger(hapd, NULL, HOSTAPD_MODULE_DRIVER,
  291. HOSTAPD_LEVEL_WARNING, "No 802.1X or WPA enabled!");
  292. return -1;
  293. }
  294. if (conf->wpa && madwifi_configure_wpa(drv) != 0) {
  295. hostapd_logger(hapd, NULL, HOSTAPD_MODULE_DRIVER,
  296. HOSTAPD_LEVEL_WARNING, "Error configuring WPA state!");
  297. return -1;
  298. }
  299. if (set80211param(priv, IEEE80211_PARAM_AUTHMODE,
  300. (conf->wpa ? IEEE80211_AUTH_WPA : IEEE80211_AUTH_8021X))) {
  301. hostapd_logger(hapd, NULL, HOSTAPD_MODULE_DRIVER,
  302. HOSTAPD_LEVEL_WARNING, "Error enabling WPA/802.1X!");
  303. return -1;
  304. }
  305. return 0;
  306. }
  307. static int
  308. madwifi_set_privacy(const char *ifname, void *priv, int enabled)
  309. {
  310. struct madwifi_driver_data *drv = priv;
  311. wpa_printf(MSG_DEBUG, "%s: enabled=%d", __func__, enabled);
  312. return set80211param(drv, IEEE80211_PARAM_PRIVACY, enabled);
  313. }
  314. static int
  315. madwifi_set_sta_authorized(void *priv, const u8 *addr, int authorized)
  316. {
  317. struct madwifi_driver_data *drv = priv;
  318. struct ieee80211req_mlme mlme;
  319. int ret;
  320. wpa_printf(MSG_DEBUG, "%s: addr=%s authorized=%d",
  321. __func__, ether_sprintf(addr), authorized);
  322. if (authorized)
  323. mlme.im_op = IEEE80211_MLME_AUTHORIZE;
  324. else
  325. mlme.im_op = IEEE80211_MLME_UNAUTHORIZE;
  326. mlme.im_reason = 0;
  327. memcpy(mlme.im_macaddr, addr, IEEE80211_ADDR_LEN);
  328. ret = set80211priv(drv, IEEE80211_IOCTL_SETMLME, &mlme, sizeof(mlme));
  329. if (ret < 0) {
  330. wpa_printf(MSG_DEBUG, "%s: Failed to %sauthorize STA " MACSTR,
  331. __func__, authorized ? "" : "un", MAC2STR(addr));
  332. }
  333. return ret;
  334. }
  335. static int
  336. madwifi_sta_set_flags(void *priv, const u8 *addr, int total_flags,
  337. int flags_or, int flags_and)
  338. {
  339. /* For now, only support setting Authorized flag */
  340. if (flags_or & WLAN_STA_AUTHORIZED)
  341. return madwifi_set_sta_authorized(priv, addr, 1);
  342. if (!(flags_and & WLAN_STA_AUTHORIZED))
  343. return madwifi_set_sta_authorized(priv, addr, 0);
  344. return 0;
  345. }
  346. static int
  347. madwifi_del_key(void *priv, const u8 *addr, int key_idx)
  348. {
  349. struct madwifi_driver_data *drv = priv;
  350. struct ieee80211req_del_key wk;
  351. int ret;
  352. wpa_printf(MSG_DEBUG, "%s: addr=%s key_idx=%d",
  353. __func__, ether_sprintf(addr), key_idx);
  354. memset(&wk, 0, sizeof(wk));
  355. if (addr != NULL) {
  356. memcpy(wk.idk_macaddr, addr, IEEE80211_ADDR_LEN);
  357. wk.idk_keyix = (u8) IEEE80211_KEYIX_NONE;
  358. } else {
  359. wk.idk_keyix = key_idx;
  360. }
  361. ret = set80211priv(drv, IEEE80211_IOCTL_DELKEY, &wk, sizeof(wk));
  362. if (ret < 0) {
  363. wpa_printf(MSG_DEBUG, "%s: Failed to delete key (addr %s"
  364. " key_idx %d)", __func__, ether_sprintf(addr),
  365. key_idx);
  366. }
  367. return ret;
  368. }
  369. static int
  370. madwifi_set_key(const char *ifname, void *priv, const char *alg,
  371. const u8 *addr, int key_idx,
  372. const u8 *key, size_t key_len, int txkey)
  373. {
  374. struct madwifi_driver_data *drv = priv;
  375. struct ieee80211req_key wk;
  376. u_int8_t cipher;
  377. int ret;
  378. if (strcmp(alg, "none") == 0)
  379. return madwifi_del_key(drv, addr, key_idx);
  380. wpa_printf(MSG_DEBUG, "%s: alg=%s addr=%s key_idx=%d",
  381. __func__, alg, ether_sprintf(addr), key_idx);
  382. if (strcmp(alg, "WEP") == 0)
  383. cipher = IEEE80211_CIPHER_WEP;
  384. else if (strcmp(alg, "TKIP") == 0)
  385. cipher = IEEE80211_CIPHER_TKIP;
  386. else if (strcmp(alg, "CCMP") == 0)
  387. cipher = IEEE80211_CIPHER_AES_CCM;
  388. else {
  389. printf("%s: unknown/unsupported algorithm %s\n",
  390. __func__, alg);
  391. return -1;
  392. }
  393. if (key_len > sizeof(wk.ik_keydata)) {
  394. printf("%s: key length %lu too big\n", __func__,
  395. (unsigned long) key_len);
  396. return -3;
  397. }
  398. memset(&wk, 0, sizeof(wk));
  399. wk.ik_type = cipher;
  400. wk.ik_flags = IEEE80211_KEY_RECV | IEEE80211_KEY_XMIT;
  401. if (addr == NULL) {
  402. memset(wk.ik_macaddr, 0xff, IEEE80211_ADDR_LEN);
  403. wk.ik_keyix = key_idx;
  404. wk.ik_flags |= IEEE80211_KEY_DEFAULT;
  405. } else {
  406. memcpy(wk.ik_macaddr, addr, IEEE80211_ADDR_LEN);
  407. wk.ik_keyix = IEEE80211_KEYIX_NONE;
  408. }
  409. wk.ik_keylen = key_len;
  410. memcpy(wk.ik_keydata, key, key_len);
  411. ret = set80211priv(drv, IEEE80211_IOCTL_SETKEY, &wk, sizeof(wk));
  412. if (ret < 0) {
  413. wpa_printf(MSG_DEBUG, "%s: Failed to set key (addr %s"
  414. " key_idx %d alg '%s' key_len %lu txkey %d)",
  415. __func__, ether_sprintf(wk.ik_macaddr), key_idx,
  416. alg, (unsigned long) key_len, txkey);
  417. }
  418. return ret;
  419. }
  420. static int
  421. madwifi_get_seqnum(const char *ifname, void *priv, const u8 *addr, int idx,
  422. u8 *seq)
  423. {
  424. struct madwifi_driver_data *drv = priv;
  425. struct ieee80211req_key wk;
  426. wpa_printf(MSG_DEBUG, "%s: addr=%s idx=%d",
  427. __func__, ether_sprintf(addr), idx);
  428. memset(&wk, 0, sizeof(wk));
  429. if (addr == NULL)
  430. memset(wk.ik_macaddr, 0xff, IEEE80211_ADDR_LEN);
  431. else
  432. memcpy(wk.ik_macaddr, addr, IEEE80211_ADDR_LEN);
  433. wk.ik_keyix = idx;
  434. if (set80211priv(drv, IEEE80211_IOCTL_GETKEY, &wk, sizeof(wk))) {
  435. wpa_printf(MSG_DEBUG, "%s: Failed to get encryption data "
  436. "(addr " MACSTR " key_idx %d)",
  437. __func__, MAC2STR(wk.ik_macaddr), idx);
  438. return -1;
  439. }
  440. #ifdef WORDS_BIGENDIAN
  441. {
  442. /*
  443. * wk.ik_keytsc is in host byte order (big endian), need to
  444. * swap it to match with the byte order used in WPA.
  445. */
  446. int i;
  447. u8 tmp[WPA_KEY_RSC_LEN];
  448. memcpy(tmp, &wk.ik_keytsc, sizeof(wk.ik_keytsc));
  449. for (i = 0; i < WPA_KEY_RSC_LEN; i++) {
  450. seq[i] = tmp[WPA_KEY_RSC_LEN - i - 1];
  451. }
  452. }
  453. #else /* WORDS_BIGENDIAN */
  454. memcpy(seq, &wk.ik_keytsc, sizeof(wk.ik_keytsc));
  455. #endif /* WORDS_BIGENDIAN */
  456. return 0;
  457. }
  458. static int
  459. madwifi_flush(void *priv)
  460. {
  461. u8 allsta[IEEE80211_ADDR_LEN];
  462. memset(allsta, 0xff, IEEE80211_ADDR_LEN);
  463. return madwifi_sta_deauth(priv, allsta, IEEE80211_REASON_AUTH_LEAVE);
  464. }
  465. static int
  466. madwifi_read_sta_driver_data(void *priv, struct hostap_sta_driver_data *data,
  467. const u8 *addr)
  468. {
  469. struct madwifi_driver_data *drv = priv;
  470. struct ieee80211req_sta_stats stats;
  471. memset(data, 0, sizeof(*data));
  472. /*
  473. * Fetch statistics for station from the system.
  474. */
  475. memset(&stats, 0, sizeof(stats));
  476. memcpy(stats.is_u.macaddr, addr, IEEE80211_ADDR_LEN);
  477. if (set80211priv(drv, IEEE80211_IOCTL_STA_STATS,
  478. &stats, sizeof(stats))) {
  479. wpa_printf(MSG_DEBUG, "%s: Failed to fetch STA stats (addr "
  480. MACSTR ")", __func__, MAC2STR(addr));
  481. if (memcmp(addr, drv->acct_mac, ETH_ALEN) == 0) {
  482. memcpy(data, &drv->acct_data, sizeof(*data));
  483. return 0;
  484. }
  485. printf("Failed to get station stats information element.\n");
  486. return -1;
  487. }
  488. data->rx_packets = stats.is_stats.ns_rx_data;
  489. data->rx_bytes = stats.is_stats.ns_rx_bytes;
  490. data->tx_packets = stats.is_stats.ns_tx_data;
  491. data->tx_bytes = stats.is_stats.ns_tx_bytes;
  492. return 0;
  493. }
  494. static int
  495. madwifi_sta_clear_stats(void *priv, const u8 *addr)
  496. {
  497. struct madwifi_driver_data *drv = priv;
  498. struct ieee80211req_mlme mlme;
  499. int ret;
  500. wpa_printf(MSG_DEBUG, "%s: addr=%s", __func__, ether_sprintf(addr));
  501. mlme.im_op = IEEE80211_MLME_CLEAR_STATS;
  502. memcpy(mlme.im_macaddr, addr, IEEE80211_ADDR_LEN);
  503. ret = set80211priv(drv, IEEE80211_IOCTL_SETMLME, &mlme,
  504. sizeof(mlme));
  505. if (ret < 0) {
  506. wpa_printf(MSG_DEBUG, "%s: Failed to clear STA stats (addr "
  507. MACSTR ")", __func__, MAC2STR(addr));
  508. }
  509. return ret;
  510. }
  511. static int
  512. madwifi_set_opt_ie(const char *ifname, void *priv, const u8 *ie, size_t ie_len)
  513. {
  514. /*
  515. * Do nothing; we setup parameters at startup that define the
  516. * contents of the beacon information element.
  517. */
  518. return 0;
  519. }
  520. static int
  521. madwifi_sta_deauth(void *priv, const u8 *addr, int reason_code)
  522. {
  523. struct madwifi_driver_data *drv = priv;
  524. struct ieee80211req_mlme mlme;
  525. int ret;
  526. wpa_printf(MSG_DEBUG, "%s: addr=%s reason_code=%d",
  527. __func__, ether_sprintf(addr), reason_code);
  528. mlme.im_op = IEEE80211_MLME_DEAUTH;
  529. mlme.im_reason = reason_code;
  530. memcpy(mlme.im_macaddr, addr, IEEE80211_ADDR_LEN);
  531. ret = set80211priv(drv, IEEE80211_IOCTL_SETMLME, &mlme, sizeof(mlme));
  532. if (ret < 0) {
  533. wpa_printf(MSG_DEBUG, "%s: Failed to deauth STA (addr " MACSTR
  534. " reason %d)",
  535. __func__, MAC2STR(addr), reason_code);
  536. }
  537. return ret;
  538. }
  539. static int
  540. madwifi_sta_disassoc(void *priv, const u8 *addr, int reason_code)
  541. {
  542. struct madwifi_driver_data *drv = priv;
  543. struct ieee80211req_mlme mlme;
  544. int ret;
  545. wpa_printf(MSG_DEBUG, "%s: addr=%s reason_code=%d",
  546. __func__, ether_sprintf(addr), reason_code);
  547. mlme.im_op = IEEE80211_MLME_DISASSOC;
  548. mlme.im_reason = reason_code;
  549. memcpy(mlme.im_macaddr, addr, IEEE80211_ADDR_LEN);
  550. ret = set80211priv(drv, IEEE80211_IOCTL_SETMLME, &mlme, sizeof(mlme));
  551. if (ret < 0) {
  552. wpa_printf(MSG_DEBUG, "%s: Failed to disassoc STA (addr "
  553. MACSTR " reason %d)",
  554. __func__, MAC2STR(addr), reason_code);
  555. }
  556. return ret;
  557. }
  558. #ifdef CONFIG_WPS
  559. static void madwifi_raw_receive(void *ctx, const u8 *src_addr, const u8 *buf,
  560. size_t len)
  561. {
  562. struct madwifi_driver_data *drv = ctx;
  563. const struct ieee80211_mgmt *mgmt;
  564. const u8 *end, *ie;
  565. u16 fc;
  566. size_t ie_len;
  567. /* Send Probe Request information to WPS processing */
  568. if (len < IEEE80211_HDRLEN + sizeof(mgmt->u.probe_req))
  569. return;
  570. mgmt = (const struct ieee80211_mgmt *) buf;
  571. fc = le_to_host16(mgmt->frame_control);
  572. if (WLAN_FC_GET_TYPE(fc) != WLAN_FC_TYPE_MGMT ||
  573. WLAN_FC_GET_STYPE(fc) != WLAN_FC_STYPE_PROBE_REQ)
  574. return;
  575. end = buf + len;
  576. ie = mgmt->u.probe_req.variable;
  577. ie_len = len - (IEEE80211_HDRLEN + sizeof(mgmt->u.probe_req));
  578. hostapd_wps_probe_req_rx(drv->hapd, mgmt->sa, ie, ie_len);
  579. }
  580. #endif /* CONFIG_WPS */
  581. static int madwifi_receive_probe_req(struct madwifi_driver_data *drv)
  582. {
  583. int ret = 0;
  584. #ifdef CONFIG_WPS
  585. struct ieee80211req_set_filter filt;
  586. wpa_printf(MSG_DEBUG, "%s Enter", __func__);
  587. filt.app_filterype = IEEE80211_FILTER_TYPE_PROBE_REQ;
  588. ret = set80211priv(drv, IEEE80211_IOCTL_FILTERFRAME, &filt,
  589. sizeof(struct ieee80211req_set_filter));
  590. if (ret)
  591. return ret;
  592. drv->sock_raw = l2_packet_init(drv->iface, NULL, ETH_P_80211_RAW,
  593. madwifi_raw_receive, drv, 1);
  594. if (drv->sock_raw == NULL)
  595. return -1;
  596. #endif /* CONFIG_WPS */
  597. return ret;
  598. }
  599. #ifdef CONFIG_WPS
  600. static int
  601. madwifi_set_wps_ie(void *priv, const u8 *ie, size_t len, u32 frametype)
  602. {
  603. struct madwifi_driver_data *drv = priv;
  604. u8 buf[256];
  605. struct ieee80211req_getset_appiebuf *beac_ie;
  606. wpa_printf(MSG_DEBUG, "%s buflen = %lu", __func__,
  607. (unsigned long) len);
  608. beac_ie = (struct ieee80211req_getset_appiebuf *) buf;
  609. beac_ie->app_frmtype = frametype;
  610. beac_ie->app_buflen = len;
  611. memcpy(&(beac_ie->app_buf[0]), ie, len);
  612. return set80211priv(drv, IEEE80211_IOCTL_SET_APPIEBUF, beac_ie,
  613. sizeof(struct ieee80211req_getset_appiebuf) + len);
  614. }
  615. static int
  616. madwifi_set_wps_beacon_ie(const char *ifname, void *priv, const u8 *ie,
  617. size_t len)
  618. {
  619. return madwifi_set_wps_ie(priv, ie, len, IEEE80211_APPIE_FRAME_BEACON);
  620. }
  621. static int
  622. madwifi_set_wps_probe_resp_ie(const char *ifname, void *priv, const u8 *ie,
  623. size_t len)
  624. {
  625. return madwifi_set_wps_ie(priv, ie, len,
  626. IEEE80211_APPIE_FRAME_PROBE_RESP);
  627. }
  628. #else /* CONFIG_WPS */
  629. #define madwifi_set_wps_beacon_ie NULL
  630. #define madwifi_set_wps_probe_resp_ie NULL
  631. #endif /* CONFIG_WPS */
  632. static int
  633. madwifi_new_sta(struct madwifi_driver_data *drv, u8 addr[IEEE80211_ADDR_LEN])
  634. {
  635. struct hostapd_data *hapd = drv->hapd;
  636. struct ieee80211req_wpaie ie;
  637. int ielen = 0, res;
  638. u8 *iebuf = NULL;
  639. /*
  640. * Fetch negotiated WPA/RSN parameters from the system.
  641. */
  642. memset(&ie, 0, sizeof(ie));
  643. memcpy(ie.wpa_macaddr, addr, IEEE80211_ADDR_LEN);
  644. if (set80211priv(drv, IEEE80211_IOCTL_GETWPAIE, &ie, sizeof(ie))) {
  645. /*
  646. * See ATH_WPS_IE comment in the beginning of the file for a
  647. * possible cause for the failure..
  648. */
  649. wpa_printf(MSG_DEBUG, "%s: Failed to get WPA/RSN IE: %s",
  650. __func__, strerror(errno));
  651. goto no_ie;
  652. }
  653. wpa_hexdump(MSG_MSGDUMP, "madwifi req WPA IE",
  654. ie.wpa_ie, IEEE80211_MAX_OPT_IE);
  655. wpa_hexdump(MSG_MSGDUMP, "madwifi req RSN IE",
  656. ie.rsn_ie, IEEE80211_MAX_OPT_IE);
  657. iebuf = ie.wpa_ie;
  658. /* madwifi seems to return some random data if WPA/RSN IE is not set.
  659. * Assume the IE was not included if the IE type is unknown. */
  660. if (iebuf[0] != WLAN_EID_VENDOR_SPECIFIC)
  661. iebuf[1] = 0;
  662. if (iebuf[1] == 0 && ie.rsn_ie[1] > 0) {
  663. /* madwifi-ng svn #1453 added rsn_ie. Use it, if wpa_ie was not
  664. * set. This is needed for WPA2. */
  665. iebuf = ie.rsn_ie;
  666. if (iebuf[0] != WLAN_EID_RSN)
  667. iebuf[1] = 0;
  668. }
  669. ielen = iebuf[1];
  670. if (ielen == 0)
  671. iebuf = NULL;
  672. else
  673. ielen += 2;
  674. no_ie:
  675. res = hostapd_notif_assoc(hapd, addr, iebuf, ielen);
  676. if (memcmp(addr, drv->acct_mac, ETH_ALEN) == 0) {
  677. /* Cached accounting data is not valid anymore. */
  678. memset(drv->acct_mac, 0, ETH_ALEN);
  679. memset(&drv->acct_data, 0, sizeof(drv->acct_data));
  680. }
  681. return res;
  682. }
  683. static void
  684. madwifi_wireless_event_wireless_custom(struct madwifi_driver_data *drv,
  685. char *custom, char *end)
  686. {
  687. wpa_printf(MSG_DEBUG, "Custom wireless event: '%s'", custom);
  688. if (strncmp(custom, "MLME-MICHAELMICFAILURE.indication", 33) == 0) {
  689. char *pos;
  690. u8 addr[ETH_ALEN];
  691. pos = strstr(custom, "addr=");
  692. if (pos == NULL) {
  693. wpa_printf(MSG_DEBUG,
  694. "MLME-MICHAELMICFAILURE.indication "
  695. "without sender address ignored");
  696. return;
  697. }
  698. pos += 5;
  699. if (hwaddr_aton(pos, addr) == 0) {
  700. hostapd_michael_mic_failure(drv->hapd, addr);
  701. } else {
  702. wpa_printf(MSG_DEBUG,
  703. "MLME-MICHAELMICFAILURE.indication "
  704. "with invalid MAC address");
  705. }
  706. } else if (strncmp(custom, "STA-TRAFFIC-STAT", 16) == 0) {
  707. char *key, *value;
  708. u32 val;
  709. key = custom;
  710. while ((key = strchr(key, '\n')) != NULL) {
  711. key++;
  712. value = strchr(key, '=');
  713. if (value == NULL)
  714. continue;
  715. *value++ = '\0';
  716. val = strtoul(value, NULL, 10);
  717. if (strcmp(key, "mac") == 0)
  718. hwaddr_aton(value, drv->acct_mac);
  719. else if (strcmp(key, "rx_packets") == 0)
  720. drv->acct_data.rx_packets = val;
  721. else if (strcmp(key, "tx_packets") == 0)
  722. drv->acct_data.tx_packets = val;
  723. else if (strcmp(key, "rx_bytes") == 0)
  724. drv->acct_data.rx_bytes = val;
  725. else if (strcmp(key, "tx_bytes") == 0)
  726. drv->acct_data.tx_bytes = val;
  727. key = value;
  728. }
  729. #ifdef CONFIG_WPS
  730. } else if (strncmp(custom, "PUSH-BUTTON.indication", 22) == 0) {
  731. /* Some atheros kernels send push button as a wireless event */
  732. /* PROBLEM! this event is received for ALL BSSs ...
  733. * so all are enabled for WPS... ugh.
  734. */
  735. hostapd_wps_button_pushed(drv->hapd);
  736. } else if (strncmp(custom, "Manage.prob_req ", 16) == 0) {
  737. /*
  738. * Atheros driver uses a hack to pass Probe Request frames as a
  739. * binary data in the custom wireless event. The old way (using
  740. * packet sniffing) didn't work when bridging.
  741. * Format: "Manage.prob_req <frame len>" | zero padding | frame
  742. */
  743. #define WPS_FRAM_TAG_SIZE 30 /* hardcoded in driver */
  744. int len = atoi(custom + 16);
  745. if (len < 0 || custom + WPS_FRAM_TAG_SIZE + len > end) {
  746. wpa_printf(MSG_DEBUG, "Invalid Manage.prob_req event "
  747. "length %d", len);
  748. return;
  749. }
  750. madwifi_raw_receive(drv, NULL,
  751. (u8 *) custom + WPS_FRAM_TAG_SIZE, len);
  752. #endif /* CONFIG_WPS */
  753. }
  754. }
  755. static void
  756. madwifi_wireless_event_wireless(struct madwifi_driver_data *drv,
  757. char *data, int len)
  758. {
  759. struct iw_event iwe_buf, *iwe = &iwe_buf;
  760. char *pos, *end, *custom, *buf;
  761. pos = data;
  762. end = data + len;
  763. while (pos + IW_EV_LCP_LEN <= end) {
  764. /* Event data may be unaligned, so make a local, aligned copy
  765. * before processing. */
  766. memcpy(&iwe_buf, pos, IW_EV_LCP_LEN);
  767. wpa_printf(MSG_MSGDUMP, "Wireless event: cmd=0x%x len=%d",
  768. iwe->cmd, iwe->len);
  769. if (iwe->len <= IW_EV_LCP_LEN)
  770. return;
  771. custom = pos + IW_EV_POINT_LEN;
  772. if (drv->we_version > 18 &&
  773. (iwe->cmd == IWEVMICHAELMICFAILURE ||
  774. iwe->cmd == IWEVASSOCREQIE ||
  775. iwe->cmd == IWEVCUSTOM)) {
  776. /* WE-19 removed the pointer from struct iw_point */
  777. char *dpos = (char *) &iwe_buf.u.data.length;
  778. int dlen = dpos - (char *) &iwe_buf;
  779. memcpy(dpos, pos + IW_EV_LCP_LEN,
  780. sizeof(struct iw_event) - dlen);
  781. } else {
  782. memcpy(&iwe_buf, pos, sizeof(struct iw_event));
  783. custom += IW_EV_POINT_OFF;
  784. }
  785. switch (iwe->cmd) {
  786. case IWEVEXPIRED:
  787. hostapd_notif_disassoc(drv->hapd,
  788. (u8 *) iwe->u.addr.sa_data);
  789. break;
  790. case IWEVREGISTERED:
  791. madwifi_new_sta(drv, (u8 *) iwe->u.addr.sa_data);
  792. break;
  793. case IWEVASSOCREQIE:
  794. /* Driver hack.. Use IWEVASSOCREQIE to bypass
  795. * IWEVCUSTOM size limitations. Need to handle this
  796. * just like IWEVCUSTOM.
  797. */
  798. case IWEVCUSTOM:
  799. if (custom + iwe->u.data.length > end)
  800. return;
  801. buf = malloc(iwe->u.data.length + 1);
  802. if (buf == NULL)
  803. return; /* XXX */
  804. memcpy(buf, custom, iwe->u.data.length);
  805. buf[iwe->u.data.length] = '\0';
  806. madwifi_wireless_event_wireless_custom(
  807. drv, buf, buf + iwe->u.data.length);
  808. free(buf);
  809. break;
  810. }
  811. pos += iwe->len;
  812. }
  813. }
  814. static void
  815. madwifi_wireless_event_rtm_newlink(struct madwifi_driver_data *drv,
  816. struct nlmsghdr *h, int len)
  817. {
  818. struct ifinfomsg *ifi;
  819. int attrlen, nlmsg_len, rta_len;
  820. struct rtattr * attr;
  821. if (len < (int) sizeof(*ifi))
  822. return;
  823. ifi = NLMSG_DATA(h);
  824. if (ifi->ifi_index != drv->ifindex)
  825. return;
  826. nlmsg_len = NLMSG_ALIGN(sizeof(struct ifinfomsg));
  827. attrlen = h->nlmsg_len - nlmsg_len;
  828. if (attrlen < 0)
  829. return;
  830. attr = (struct rtattr *) (((char *) ifi) + nlmsg_len);
  831. rta_len = RTA_ALIGN(sizeof(struct rtattr));
  832. while (RTA_OK(attr, attrlen)) {
  833. if (attr->rta_type == IFLA_WIRELESS) {
  834. madwifi_wireless_event_wireless(
  835. drv, ((char *) attr) + rta_len,
  836. attr->rta_len - rta_len);
  837. }
  838. attr = RTA_NEXT(attr, attrlen);
  839. }
  840. }
  841. static void
  842. madwifi_wireless_event_receive(int sock, void *eloop_ctx, void *sock_ctx)
  843. {
  844. char buf[256];
  845. int left;
  846. struct sockaddr_nl from;
  847. socklen_t fromlen;
  848. struct nlmsghdr *h;
  849. struct madwifi_driver_data *drv = eloop_ctx;
  850. fromlen = sizeof(from);
  851. left = recvfrom(sock, buf, sizeof(buf), MSG_DONTWAIT,
  852. (struct sockaddr *) &from, &fromlen);
  853. if (left < 0) {
  854. if (errno != EINTR && errno != EAGAIN)
  855. perror("recvfrom(netlink)");
  856. return;
  857. }
  858. h = (struct nlmsghdr *) buf;
  859. while (left >= (int) sizeof(*h)) {
  860. int len, plen;
  861. len = h->nlmsg_len;
  862. plen = len - sizeof(*h);
  863. if (len > left || plen < 0) {
  864. printf("Malformed netlink message: "
  865. "len=%d left=%d plen=%d\n",
  866. len, left, plen);
  867. break;
  868. }
  869. switch (h->nlmsg_type) {
  870. case RTM_NEWLINK:
  871. madwifi_wireless_event_rtm_newlink(drv, h, plen);
  872. break;
  873. }
  874. len = NLMSG_ALIGN(len);
  875. left -= len;
  876. h = (struct nlmsghdr *) ((char *) h + len);
  877. }
  878. if (left > 0) {
  879. printf("%d extra bytes in the end of netlink message\n", left);
  880. }
  881. }
  882. static int
  883. madwifi_get_we_version(struct madwifi_driver_data *drv)
  884. {
  885. struct iw_range *range;
  886. struct iwreq iwr;
  887. int minlen;
  888. size_t buflen;
  889. drv->we_version = 0;
  890. /*
  891. * Use larger buffer than struct iw_range in order to allow the
  892. * structure to grow in the future.
  893. */
  894. buflen = sizeof(struct iw_range) + 500;
  895. range = os_zalloc(buflen);
  896. if (range == NULL)
  897. return -1;
  898. memset(&iwr, 0, sizeof(iwr));
  899. os_strlcpy(iwr.ifr_name, drv->iface, IFNAMSIZ);
  900. iwr.u.data.pointer = (caddr_t) range;
  901. iwr.u.data.length = buflen;
  902. minlen = ((char *) &range->enc_capa) - (char *) range +
  903. sizeof(range->enc_capa);
  904. if (ioctl(drv->ioctl_sock, SIOCGIWRANGE, &iwr) < 0) {
  905. perror("ioctl[SIOCGIWRANGE]");
  906. free(range);
  907. return -1;
  908. } else if (iwr.u.data.length >= minlen &&
  909. range->we_version_compiled >= 18) {
  910. wpa_printf(MSG_DEBUG, "SIOCGIWRANGE: WE(compiled)=%d "
  911. "WE(source)=%d enc_capa=0x%x",
  912. range->we_version_compiled,
  913. range->we_version_source,
  914. range->enc_capa);
  915. drv->we_version = range->we_version_compiled;
  916. }
  917. free(range);
  918. return 0;
  919. }
  920. static int
  921. madwifi_wireless_event_init(void *priv)
  922. {
  923. struct madwifi_driver_data *drv = priv;
  924. int s;
  925. struct sockaddr_nl local;
  926. madwifi_get_we_version(drv);
  927. drv->wext_sock = -1;
  928. s = socket(PF_NETLINK, SOCK_RAW, NETLINK_ROUTE);
  929. if (s < 0) {
  930. perror("socket(PF_NETLINK,SOCK_RAW,NETLINK_ROUTE)");
  931. return -1;
  932. }
  933. memset(&local, 0, sizeof(local));
  934. local.nl_family = AF_NETLINK;
  935. local.nl_groups = RTMGRP_LINK;
  936. if (bind(s, (struct sockaddr *) &local, sizeof(local)) < 0) {
  937. perror("bind(netlink)");
  938. close(s);
  939. return -1;
  940. }
  941. eloop_register_read_sock(s, madwifi_wireless_event_receive, drv, NULL);
  942. drv->wext_sock = s;
  943. return 0;
  944. }
  945. static void
  946. madwifi_wireless_event_deinit(void *priv)
  947. {
  948. struct madwifi_driver_data *drv = priv;
  949. if (drv != NULL) {
  950. if (drv->wext_sock < 0)
  951. return;
  952. eloop_unregister_read_sock(drv->wext_sock);
  953. close(drv->wext_sock);
  954. }
  955. }
  956. static int
  957. madwifi_send_eapol(void *priv, const u8 *addr, const u8 *data, size_t data_len,
  958. int encrypt, const u8 *own_addr)
  959. {
  960. struct madwifi_driver_data *drv = priv;
  961. unsigned char buf[3000];
  962. unsigned char *bp = buf;
  963. struct l2_ethhdr *eth;
  964. size_t len;
  965. int status;
  966. /*
  967. * Prepend the Ethernet header. If the caller left us
  968. * space at the front we could just insert it but since
  969. * we don't know we copy to a local buffer. Given the frequency
  970. * and size of frames this probably doesn't matter.
  971. */
  972. len = data_len + sizeof(struct l2_ethhdr);
  973. if (len > sizeof(buf)) {
  974. bp = malloc(len);
  975. if (bp == NULL) {
  976. printf("EAPOL frame discarded, cannot malloc temp "
  977. "buffer of size %lu!\n", (unsigned long) len);
  978. return -1;
  979. }
  980. }
  981. eth = (struct l2_ethhdr *) bp;
  982. memcpy(eth->h_dest, addr, ETH_ALEN);
  983. memcpy(eth->h_source, own_addr, ETH_ALEN);
  984. eth->h_proto = host_to_be16(ETH_P_EAPOL);
  985. memcpy(eth+1, data, data_len);
  986. wpa_hexdump(MSG_MSGDUMP, "TX EAPOL", bp, len);
  987. status = l2_packet_send(drv->sock_xmit, addr, ETH_P_EAPOL, bp, len);
  988. if (bp != buf)
  989. free(bp);
  990. return status;
  991. }
  992. static void
  993. handle_read(void *ctx, const u8 *src_addr, const u8 *buf, size_t len)
  994. {
  995. struct madwifi_driver_data *drv = ctx;
  996. hostapd_eapol_receive(drv->hapd, src_addr,
  997. buf + sizeof(struct l2_ethhdr),
  998. len - sizeof(struct l2_ethhdr));
  999. }
  1000. static void *
  1001. madwifi_init(struct hostapd_data *hapd)
  1002. {
  1003. struct madwifi_driver_data *drv;
  1004. struct ifreq ifr;
  1005. struct iwreq iwr;
  1006. drv = os_zalloc(sizeof(struct madwifi_driver_data));
  1007. if (drv == NULL) {
  1008. printf("Could not allocate memory for madwifi driver data\n");
  1009. return NULL;
  1010. }
  1011. drv->hapd = hapd;
  1012. drv->ioctl_sock = socket(PF_INET, SOCK_DGRAM, 0);
  1013. if (drv->ioctl_sock < 0) {
  1014. perror("socket[PF_INET,SOCK_DGRAM]");
  1015. goto bad;
  1016. }
  1017. memcpy(drv->iface, hapd->conf->iface, sizeof(drv->iface));
  1018. memset(&ifr, 0, sizeof(ifr));
  1019. os_strlcpy(ifr.ifr_name, drv->iface, sizeof(ifr.ifr_name));
  1020. if (ioctl(drv->ioctl_sock, SIOCGIFINDEX, &ifr) != 0) {
  1021. perror("ioctl(SIOCGIFINDEX)");
  1022. goto bad;
  1023. }
  1024. drv->ifindex = ifr.ifr_ifindex;
  1025. drv->sock_xmit = l2_packet_init(drv->iface, NULL, ETH_P_EAPOL,
  1026. handle_read, drv, 1);
  1027. if (drv->sock_xmit == NULL)
  1028. goto bad;
  1029. if (l2_packet_get_own_addr(drv->sock_xmit, hapd->own_addr))
  1030. goto bad;
  1031. if (hapd->conf->bridge[0] != '\0') {
  1032. wpa_printf(MSG_DEBUG, "Configure bridge %s for EAPOL traffic.",
  1033. hapd->conf->bridge);
  1034. drv->sock_recv = l2_packet_init(hapd->conf->bridge, NULL,
  1035. ETH_P_EAPOL, handle_read, drv,
  1036. 1);
  1037. if (drv->sock_recv == NULL)
  1038. goto bad;
  1039. } else
  1040. drv->sock_recv = drv->sock_xmit;
  1041. memset(&iwr, 0, sizeof(iwr));
  1042. os_strlcpy(iwr.ifr_name, drv->iface, IFNAMSIZ);
  1043. iwr.u.mode = IW_MODE_MASTER;
  1044. if (ioctl(drv->ioctl_sock, SIOCSIWMODE, &iwr) < 0) {
  1045. perror("ioctl[SIOCSIWMODE]");
  1046. printf("Could not set interface to master mode!\n");
  1047. goto bad;
  1048. }
  1049. madwifi_set_iface_flags(drv, 0); /* mark down during setup */
  1050. madwifi_set_privacy(drv->iface, drv, 0); /* default to no privacy */
  1051. madwifi_receive_probe_req(drv);
  1052. return drv;
  1053. bad:
  1054. if (drv->sock_xmit != NULL)
  1055. l2_packet_deinit(drv->sock_xmit);
  1056. if (drv->ioctl_sock >= 0)
  1057. close(drv->ioctl_sock);
  1058. if (drv != NULL)
  1059. free(drv);
  1060. return NULL;
  1061. }
  1062. static void
  1063. madwifi_deinit(void *priv)
  1064. {
  1065. struct madwifi_driver_data *drv = priv;
  1066. (void) madwifi_set_iface_flags(drv, 0);
  1067. if (drv->ioctl_sock >= 0)
  1068. close(drv->ioctl_sock);
  1069. if (drv->sock_recv != NULL && drv->sock_recv != drv->sock_xmit)
  1070. l2_packet_deinit(drv->sock_recv);
  1071. if (drv->sock_xmit != NULL)
  1072. l2_packet_deinit(drv->sock_xmit);
  1073. if (drv->sock_raw)
  1074. l2_packet_deinit(drv->sock_raw);
  1075. free(drv);
  1076. }
  1077. static int
  1078. madwifi_set_ssid(const char *ifname, void *priv, const u8 *buf, int len)
  1079. {
  1080. struct madwifi_driver_data *drv = priv;
  1081. struct iwreq iwr;
  1082. memset(&iwr, 0, sizeof(iwr));
  1083. os_strlcpy(iwr.ifr_name, drv->iface, IFNAMSIZ);
  1084. iwr.u.essid.flags = 1; /* SSID active */
  1085. iwr.u.essid.pointer = (caddr_t) buf;
  1086. iwr.u.essid.length = len + 1;
  1087. if (ioctl(drv->ioctl_sock, SIOCSIWESSID, &iwr) < 0) {
  1088. perror("ioctl[SIOCSIWESSID]");
  1089. printf("len=%d\n", len);
  1090. return -1;
  1091. }
  1092. return 0;
  1093. }
  1094. static int
  1095. madwifi_get_ssid(const char *ifname, void *priv, u8 *buf, int len)
  1096. {
  1097. struct madwifi_driver_data *drv = priv;
  1098. struct iwreq iwr;
  1099. int ret = 0;
  1100. memset(&iwr, 0, sizeof(iwr));
  1101. os_strlcpy(iwr.ifr_name, drv->iface, IFNAMSIZ);
  1102. iwr.u.essid.pointer = (caddr_t) buf;
  1103. iwr.u.essid.length = len;
  1104. if (ioctl(drv->ioctl_sock, SIOCGIWESSID, &iwr) < 0) {
  1105. perror("ioctl[SIOCGIWESSID]");
  1106. ret = -1;
  1107. } else
  1108. ret = iwr.u.essid.length;
  1109. return ret;
  1110. }
  1111. static int
  1112. madwifi_set_countermeasures(void *priv, int enabled)
  1113. {
  1114. struct madwifi_driver_data *drv = priv;
  1115. wpa_printf(MSG_DEBUG, "%s: enabled=%d", __FUNCTION__, enabled);
  1116. return set80211param(drv, IEEE80211_PARAM_COUNTERMEASURES, enabled);
  1117. }
  1118. static int
  1119. madwifi_commit(void *priv)
  1120. {
  1121. return madwifi_set_iface_flags(priv, 1);
  1122. }
  1123. const struct wpa_driver_ops wpa_driver_atheros_ops = {
  1124. .name = "atheros",
  1125. .init = madwifi_init,
  1126. .deinit = madwifi_deinit,
  1127. .set_ieee8021x = madwifi_set_ieee8021x,
  1128. .set_privacy = madwifi_set_privacy,
  1129. .set_encryption = madwifi_set_key,
  1130. .get_seqnum = madwifi_get_seqnum,
  1131. .flush = madwifi_flush,
  1132. .set_generic_elem = madwifi_set_opt_ie,
  1133. .wireless_event_init = madwifi_wireless_event_init,
  1134. .wireless_event_deinit = madwifi_wireless_event_deinit,
  1135. .sta_set_flags = madwifi_sta_set_flags,
  1136. .read_sta_data = madwifi_read_sta_driver_data,
  1137. .send_eapol = madwifi_send_eapol,
  1138. .sta_disassoc = madwifi_sta_disassoc,
  1139. .sta_deauth = madwifi_sta_deauth,
  1140. .set_ssid = madwifi_set_ssid,
  1141. .get_ssid = madwifi_get_ssid,
  1142. .set_countermeasures = madwifi_set_countermeasures,
  1143. .sta_clear_stats = madwifi_sta_clear_stats,
  1144. .commit = madwifi_commit,
  1145. .set_wps_beacon_ie = madwifi_set_wps_beacon_ie,
  1146. .set_wps_probe_resp_ie = madwifi_set_wps_probe_resp_ie,
  1147. };