mlme.c 121 KB

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  1. /*
  2. * BSS client mode implementation
  3. * Copyright 2003, Jouni Malinen <jkmaline@cc.hut.fi>
  4. * Copyright 2004, Instant802 Networks, Inc.
  5. * Copyright 2005, Devicescape Software, Inc.
  6. * Copyright 2006-2007 Jiri Benc <jbenc@suse.cz>
  7. * Copyright 2007, Michael Wu <flamingice@sourmilk.net>
  8. *
  9. * This program is free software; you can redistribute it and/or modify
  10. * it under the terms of the GNU General Public License version 2 as
  11. * published by the Free Software Foundation.
  12. */
  13. /* TODO:
  14. * order BSS list by RSSI(?) ("quality of AP")
  15. * scan result table filtering (by capability (privacy, IBSS/BSS, WPA/RSN IE,
  16. * SSID)
  17. */
  18. #include <linux/delay.h>
  19. #include <linux/if_ether.h>
  20. #include <linux/skbuff.h>
  21. #include <linux/netdevice.h>
  22. #include <linux/if_arp.h>
  23. #include <linux/wireless.h>
  24. #include <linux/random.h>
  25. #include <linux/etherdevice.h>
  26. #include <linux/rtnetlink.h>
  27. #include <net/iw_handler.h>
  28. #include <asm/types.h>
  29. #include <net/mac80211.h>
  30. #include "ieee80211_i.h"
  31. #include "rate.h"
  32. #include "led.h"
  33. #include "mesh.h"
  34. #define IEEE80211_AUTH_TIMEOUT (HZ / 5)
  35. #define IEEE80211_AUTH_MAX_TRIES 3
  36. #define IEEE80211_ASSOC_TIMEOUT (HZ / 5)
  37. #define IEEE80211_ASSOC_MAX_TRIES 3
  38. #define IEEE80211_MONITORING_INTERVAL (2 * HZ)
  39. #define IEEE80211_MESH_HOUSEKEEPING_INTERVAL (60 * HZ)
  40. #define IEEE80211_PROBE_INTERVAL (60 * HZ)
  41. #define IEEE80211_RETRY_AUTH_INTERVAL (1 * HZ)
  42. #define IEEE80211_SCAN_INTERVAL (2 * HZ)
  43. #define IEEE80211_SCAN_INTERVAL_SLOW (15 * HZ)
  44. #define IEEE80211_IBSS_JOIN_TIMEOUT (20 * HZ)
  45. #define IEEE80211_PROBE_DELAY (HZ / 33)
  46. #define IEEE80211_CHANNEL_TIME (HZ / 33)
  47. #define IEEE80211_PASSIVE_CHANNEL_TIME (HZ / 5)
  48. #define IEEE80211_SCAN_RESULT_EXPIRE (10 * HZ)
  49. #define IEEE80211_IBSS_MERGE_INTERVAL (30 * HZ)
  50. #define IEEE80211_IBSS_INACTIVITY_LIMIT (60 * HZ)
  51. #define IEEE80211_MESH_PEER_INACTIVITY_LIMIT (1800 * HZ)
  52. #define IEEE80211_IBSS_MAX_STA_ENTRIES 128
  53. #define ERP_INFO_USE_PROTECTION BIT(1)
  54. /* mgmt header + 1 byte action code */
  55. #define IEEE80211_MIN_ACTION_SIZE (24 + 1)
  56. #define IEEE80211_ADDBA_PARAM_POLICY_MASK 0x0002
  57. #define IEEE80211_ADDBA_PARAM_TID_MASK 0x003C
  58. #define IEEE80211_ADDBA_PARAM_BUF_SIZE_MASK 0xFFA0
  59. #define IEEE80211_DELBA_PARAM_TID_MASK 0xF000
  60. #define IEEE80211_DELBA_PARAM_INITIATOR_MASK 0x0800
  61. /* next values represent the buffer size for A-MPDU frame.
  62. * According to IEEE802.11n spec size varies from 8K to 64K (in powers of 2) */
  63. #define IEEE80211_MIN_AMPDU_BUF 0x8
  64. #define IEEE80211_MAX_AMPDU_BUF 0x40
  65. static void ieee80211_send_probe_req(struct net_device *dev, u8 *dst,
  66. u8 *ssid, size_t ssid_len);
  67. static struct ieee80211_sta_bss *
  68. ieee80211_rx_bss_get(struct net_device *dev, u8 *bssid, int freq,
  69. u8 *ssid, u8 ssid_len);
  70. static void ieee80211_rx_bss_put(struct net_device *dev,
  71. struct ieee80211_sta_bss *bss);
  72. static int ieee80211_sta_find_ibss(struct net_device *dev,
  73. struct ieee80211_if_sta *ifsta);
  74. static int ieee80211_sta_wep_configured(struct net_device *dev);
  75. static int ieee80211_sta_start_scan(struct net_device *dev,
  76. u8 *ssid, size_t ssid_len);
  77. static int ieee80211_sta_config_auth(struct net_device *dev,
  78. struct ieee80211_if_sta *ifsta);
  79. static void sta_rx_agg_session_timer_expired(unsigned long data);
  80. void ieee802_11_parse_elems(u8 *start, size_t len,
  81. struct ieee802_11_elems *elems)
  82. {
  83. size_t left = len;
  84. u8 *pos = start;
  85. memset(elems, 0, sizeof(*elems));
  86. while (left >= 2) {
  87. u8 id, elen;
  88. id = *pos++;
  89. elen = *pos++;
  90. left -= 2;
  91. if (elen > left)
  92. return;
  93. switch (id) {
  94. case WLAN_EID_SSID:
  95. elems->ssid = pos;
  96. elems->ssid_len = elen;
  97. break;
  98. case WLAN_EID_SUPP_RATES:
  99. elems->supp_rates = pos;
  100. elems->supp_rates_len = elen;
  101. break;
  102. case WLAN_EID_FH_PARAMS:
  103. elems->fh_params = pos;
  104. elems->fh_params_len = elen;
  105. break;
  106. case WLAN_EID_DS_PARAMS:
  107. elems->ds_params = pos;
  108. elems->ds_params_len = elen;
  109. break;
  110. case WLAN_EID_CF_PARAMS:
  111. elems->cf_params = pos;
  112. elems->cf_params_len = elen;
  113. break;
  114. case WLAN_EID_TIM:
  115. elems->tim = pos;
  116. elems->tim_len = elen;
  117. break;
  118. case WLAN_EID_IBSS_PARAMS:
  119. elems->ibss_params = pos;
  120. elems->ibss_params_len = elen;
  121. break;
  122. case WLAN_EID_CHALLENGE:
  123. elems->challenge = pos;
  124. elems->challenge_len = elen;
  125. break;
  126. case WLAN_EID_WPA:
  127. if (elen >= 4 && pos[0] == 0x00 && pos[1] == 0x50 &&
  128. pos[2] == 0xf2) {
  129. /* Microsoft OUI (00:50:F2) */
  130. if (pos[3] == 1) {
  131. /* OUI Type 1 - WPA IE */
  132. elems->wpa = pos;
  133. elems->wpa_len = elen;
  134. } else if (elen >= 5 && pos[3] == 2) {
  135. if (pos[4] == 0) {
  136. elems->wmm_info = pos;
  137. elems->wmm_info_len = elen;
  138. } else if (pos[4] == 1) {
  139. elems->wmm_param = pos;
  140. elems->wmm_param_len = elen;
  141. }
  142. }
  143. }
  144. break;
  145. case WLAN_EID_RSN:
  146. elems->rsn = pos;
  147. elems->rsn_len = elen;
  148. break;
  149. case WLAN_EID_ERP_INFO:
  150. elems->erp_info = pos;
  151. elems->erp_info_len = elen;
  152. break;
  153. case WLAN_EID_EXT_SUPP_RATES:
  154. elems->ext_supp_rates = pos;
  155. elems->ext_supp_rates_len = elen;
  156. break;
  157. case WLAN_EID_HT_CAPABILITY:
  158. elems->ht_cap_elem = pos;
  159. elems->ht_cap_elem_len = elen;
  160. break;
  161. case WLAN_EID_HT_EXTRA_INFO:
  162. elems->ht_info_elem = pos;
  163. elems->ht_info_elem_len = elen;
  164. break;
  165. case WLAN_EID_MESH_ID:
  166. elems->mesh_id = pos;
  167. elems->mesh_id_len = elen;
  168. break;
  169. case WLAN_EID_MESH_CONFIG:
  170. elems->mesh_config = pos;
  171. elems->mesh_config_len = elen;
  172. break;
  173. case WLAN_EID_PEER_LINK:
  174. elems->peer_link = pos;
  175. elems->peer_link_len = elen;
  176. break;
  177. case WLAN_EID_PREQ:
  178. elems->preq = pos;
  179. elems->preq_len = elen;
  180. break;
  181. case WLAN_EID_PREP:
  182. elems->prep = pos;
  183. elems->prep_len = elen;
  184. break;
  185. case WLAN_EID_PERR:
  186. elems->perr = pos;
  187. elems->perr_len = elen;
  188. break;
  189. default:
  190. break;
  191. }
  192. left -= elen;
  193. pos += elen;
  194. }
  195. }
  196. static int ecw2cw(int ecw)
  197. {
  198. return (1 << ecw) - 1;
  199. }
  200. static void ieee80211_sta_def_wmm_params(struct net_device *dev,
  201. struct ieee80211_sta_bss *bss,
  202. int ibss)
  203. {
  204. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  205. struct ieee80211_local *local = sdata->local;
  206. int i, have_higher_than_11mbit = 0;
  207. /* cf. IEEE 802.11 9.2.12 */
  208. for (i = 0; i < bss->supp_rates_len; i++)
  209. if ((bss->supp_rates[i] & 0x7f) * 5 > 110)
  210. have_higher_than_11mbit = 1;
  211. if (local->hw.conf.channel->band == IEEE80211_BAND_2GHZ &&
  212. have_higher_than_11mbit)
  213. sdata->flags |= IEEE80211_SDATA_OPERATING_GMODE;
  214. else
  215. sdata->flags &= ~IEEE80211_SDATA_OPERATING_GMODE;
  216. if (local->ops->conf_tx) {
  217. struct ieee80211_tx_queue_params qparam;
  218. memset(&qparam, 0, sizeof(qparam));
  219. qparam.aifs = 2;
  220. if (local->hw.conf.channel->band == IEEE80211_BAND_2GHZ &&
  221. !(sdata->flags & IEEE80211_SDATA_OPERATING_GMODE))
  222. qparam.cw_min = 31;
  223. else
  224. qparam.cw_min = 15;
  225. qparam.cw_max = 1023;
  226. qparam.txop = 0;
  227. for (i = 0; i < local_to_hw(local)->queues; i++)
  228. local->ops->conf_tx(local_to_hw(local), i, &qparam);
  229. }
  230. }
  231. static void ieee80211_sta_wmm_params(struct net_device *dev,
  232. struct ieee80211_if_sta *ifsta,
  233. u8 *wmm_param, size_t wmm_param_len)
  234. {
  235. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  236. struct ieee80211_tx_queue_params params;
  237. size_t left;
  238. int count;
  239. u8 *pos;
  240. if (!(ifsta->flags & IEEE80211_STA_WMM_ENABLED))
  241. return;
  242. if (!wmm_param)
  243. return;
  244. if (wmm_param_len < 8 || wmm_param[5] /* version */ != 1)
  245. return;
  246. count = wmm_param[6] & 0x0f;
  247. if (count == ifsta->wmm_last_param_set)
  248. return;
  249. ifsta->wmm_last_param_set = count;
  250. pos = wmm_param + 8;
  251. left = wmm_param_len - 8;
  252. memset(&params, 0, sizeof(params));
  253. if (!local->ops->conf_tx)
  254. return;
  255. local->wmm_acm = 0;
  256. for (; left >= 4; left -= 4, pos += 4) {
  257. int aci = (pos[0] >> 5) & 0x03;
  258. int acm = (pos[0] >> 4) & 0x01;
  259. int queue;
  260. switch (aci) {
  261. case 1:
  262. queue = 3;
  263. if (acm)
  264. local->wmm_acm |= BIT(0) | BIT(3);
  265. break;
  266. case 2:
  267. queue = 1;
  268. if (acm)
  269. local->wmm_acm |= BIT(4) | BIT(5);
  270. break;
  271. case 3:
  272. queue = 0;
  273. if (acm)
  274. local->wmm_acm |= BIT(6) | BIT(7);
  275. break;
  276. case 0:
  277. default:
  278. queue = 2;
  279. if (acm)
  280. local->wmm_acm |= BIT(1) | BIT(2);
  281. break;
  282. }
  283. params.aifs = pos[0] & 0x0f;
  284. params.cw_max = ecw2cw((pos[1] & 0xf0) >> 4);
  285. params.cw_min = ecw2cw(pos[1] & 0x0f);
  286. params.txop = pos[2] | (pos[3] << 8);
  287. #ifdef CONFIG_MAC80211_DEBUG
  288. printk(KERN_DEBUG "%s: WMM queue=%d aci=%d acm=%d aifs=%d "
  289. "cWmin=%d cWmax=%d txop=%d\n",
  290. dev->name, queue, aci, acm, params.aifs, params.cw_min,
  291. params.cw_max, params.txop);
  292. #endif
  293. /* TODO: handle ACM (block TX, fallback to next lowest allowed
  294. * AC for now) */
  295. if (local->ops->conf_tx(local_to_hw(local), queue, &params)) {
  296. printk(KERN_DEBUG "%s: failed to set TX queue "
  297. "parameters for queue %d\n", dev->name, queue);
  298. }
  299. }
  300. }
  301. static u32 ieee80211_handle_protect_preamb(struct ieee80211_sub_if_data *sdata,
  302. bool use_protection,
  303. bool use_short_preamble)
  304. {
  305. struct ieee80211_bss_conf *bss_conf = &sdata->bss_conf;
  306. struct ieee80211_if_sta *ifsta = &sdata->u.sta;
  307. DECLARE_MAC_BUF(mac);
  308. u32 changed = 0;
  309. if (use_protection != bss_conf->use_cts_prot) {
  310. if (net_ratelimit()) {
  311. printk(KERN_DEBUG "%s: CTS protection %s (BSSID="
  312. "%s)\n",
  313. sdata->dev->name,
  314. use_protection ? "enabled" : "disabled",
  315. print_mac(mac, ifsta->bssid));
  316. }
  317. bss_conf->use_cts_prot = use_protection;
  318. changed |= BSS_CHANGED_ERP_CTS_PROT;
  319. }
  320. if (use_short_preamble != bss_conf->use_short_preamble) {
  321. if (net_ratelimit()) {
  322. printk(KERN_DEBUG "%s: switched to %s barker preamble"
  323. " (BSSID=%s)\n",
  324. sdata->dev->name,
  325. use_short_preamble ? "short" : "long",
  326. print_mac(mac, ifsta->bssid));
  327. }
  328. bss_conf->use_short_preamble = use_short_preamble;
  329. changed |= BSS_CHANGED_ERP_PREAMBLE;
  330. }
  331. return changed;
  332. }
  333. static u32 ieee80211_handle_erp_ie(struct ieee80211_sub_if_data *sdata,
  334. u8 erp_value)
  335. {
  336. bool use_protection = (erp_value & WLAN_ERP_USE_PROTECTION) != 0;
  337. bool use_short_preamble = (erp_value & WLAN_ERP_BARKER_PREAMBLE) == 0;
  338. return ieee80211_handle_protect_preamb(sdata,
  339. use_protection, use_short_preamble);
  340. }
  341. static u32 ieee80211_handle_bss_capability(struct ieee80211_sub_if_data *sdata,
  342. struct ieee80211_sta_bss *bss)
  343. {
  344. u32 changed = 0;
  345. if (bss->has_erp_value)
  346. changed |= ieee80211_handle_erp_ie(sdata, bss->erp_value);
  347. else {
  348. u16 capab = bss->capability;
  349. changed |= ieee80211_handle_protect_preamb(sdata, false,
  350. (capab & WLAN_CAPABILITY_SHORT_PREAMBLE) != 0);
  351. }
  352. return changed;
  353. }
  354. int ieee80211_ht_cap_ie_to_ht_info(struct ieee80211_ht_cap *ht_cap_ie,
  355. struct ieee80211_ht_info *ht_info)
  356. {
  357. if (ht_info == NULL)
  358. return -EINVAL;
  359. memset(ht_info, 0, sizeof(*ht_info));
  360. if (ht_cap_ie) {
  361. u8 ampdu_info = ht_cap_ie->ampdu_params_info;
  362. ht_info->ht_supported = 1;
  363. ht_info->cap = le16_to_cpu(ht_cap_ie->cap_info);
  364. ht_info->ampdu_factor =
  365. ampdu_info & IEEE80211_HT_CAP_AMPDU_FACTOR;
  366. ht_info->ampdu_density =
  367. (ampdu_info & IEEE80211_HT_CAP_AMPDU_DENSITY) >> 2;
  368. memcpy(ht_info->supp_mcs_set, ht_cap_ie->supp_mcs_set, 16);
  369. } else
  370. ht_info->ht_supported = 0;
  371. return 0;
  372. }
  373. int ieee80211_ht_addt_info_ie_to_ht_bss_info(
  374. struct ieee80211_ht_addt_info *ht_add_info_ie,
  375. struct ieee80211_ht_bss_info *bss_info)
  376. {
  377. if (bss_info == NULL)
  378. return -EINVAL;
  379. memset(bss_info, 0, sizeof(*bss_info));
  380. if (ht_add_info_ie) {
  381. u16 op_mode;
  382. op_mode = le16_to_cpu(ht_add_info_ie->operation_mode);
  383. bss_info->primary_channel = ht_add_info_ie->control_chan;
  384. bss_info->bss_cap = ht_add_info_ie->ht_param;
  385. bss_info->bss_op_mode = (u8)(op_mode & 0xff);
  386. }
  387. return 0;
  388. }
  389. static void ieee80211_sta_send_associnfo(struct net_device *dev,
  390. struct ieee80211_if_sta *ifsta)
  391. {
  392. char *buf;
  393. size_t len;
  394. int i;
  395. union iwreq_data wrqu;
  396. if (!ifsta->assocreq_ies && !ifsta->assocresp_ies)
  397. return;
  398. buf = kmalloc(50 + 2 * (ifsta->assocreq_ies_len +
  399. ifsta->assocresp_ies_len), GFP_KERNEL);
  400. if (!buf)
  401. return;
  402. len = sprintf(buf, "ASSOCINFO(");
  403. if (ifsta->assocreq_ies) {
  404. len += sprintf(buf + len, "ReqIEs=");
  405. for (i = 0; i < ifsta->assocreq_ies_len; i++) {
  406. len += sprintf(buf + len, "%02x",
  407. ifsta->assocreq_ies[i]);
  408. }
  409. }
  410. if (ifsta->assocresp_ies) {
  411. if (ifsta->assocreq_ies)
  412. len += sprintf(buf + len, " ");
  413. len += sprintf(buf + len, "RespIEs=");
  414. for (i = 0; i < ifsta->assocresp_ies_len; i++) {
  415. len += sprintf(buf + len, "%02x",
  416. ifsta->assocresp_ies[i]);
  417. }
  418. }
  419. len += sprintf(buf + len, ")");
  420. if (len > IW_CUSTOM_MAX) {
  421. len = sprintf(buf, "ASSOCRESPIE=");
  422. for (i = 0; i < ifsta->assocresp_ies_len; i++) {
  423. len += sprintf(buf + len, "%02x",
  424. ifsta->assocresp_ies[i]);
  425. }
  426. }
  427. memset(&wrqu, 0, sizeof(wrqu));
  428. wrqu.data.length = len;
  429. wireless_send_event(dev, IWEVCUSTOM, &wrqu, buf);
  430. kfree(buf);
  431. }
  432. static void ieee80211_set_associated(struct net_device *dev,
  433. struct ieee80211_if_sta *ifsta,
  434. bool assoc)
  435. {
  436. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  437. struct ieee80211_local *local = sdata->local;
  438. struct ieee80211_conf *conf = &local_to_hw(local)->conf;
  439. union iwreq_data wrqu;
  440. u32 changed = BSS_CHANGED_ASSOC;
  441. if (assoc) {
  442. struct ieee80211_sta_bss *bss;
  443. ifsta->flags |= IEEE80211_STA_ASSOCIATED;
  444. if (sdata->vif.type != IEEE80211_IF_TYPE_STA)
  445. return;
  446. bss = ieee80211_rx_bss_get(dev, ifsta->bssid,
  447. conf->channel->center_freq,
  448. ifsta->ssid, ifsta->ssid_len);
  449. if (bss) {
  450. /* set timing information */
  451. sdata->bss_conf.beacon_int = bss->beacon_int;
  452. sdata->bss_conf.timestamp = bss->timestamp;
  453. changed |= ieee80211_handle_bss_capability(sdata, bss);
  454. ieee80211_rx_bss_put(dev, bss);
  455. }
  456. if (conf->flags & IEEE80211_CONF_SUPPORT_HT_MODE) {
  457. changed |= BSS_CHANGED_HT;
  458. sdata->bss_conf.assoc_ht = 1;
  459. sdata->bss_conf.ht_conf = &conf->ht_conf;
  460. sdata->bss_conf.ht_bss_conf = &conf->ht_bss_conf;
  461. }
  462. netif_carrier_on(dev);
  463. ifsta->flags |= IEEE80211_STA_PREV_BSSID_SET;
  464. memcpy(ifsta->prev_bssid, sdata->u.sta.bssid, ETH_ALEN);
  465. memcpy(wrqu.ap_addr.sa_data, sdata->u.sta.bssid, ETH_ALEN);
  466. ieee80211_sta_send_associnfo(dev, ifsta);
  467. } else {
  468. ieee80211_sta_tear_down_BA_sessions(dev, ifsta->bssid);
  469. ifsta->flags &= ~IEEE80211_STA_ASSOCIATED;
  470. netif_carrier_off(dev);
  471. ieee80211_reset_erp_info(dev);
  472. sdata->bss_conf.assoc_ht = 0;
  473. sdata->bss_conf.ht_conf = NULL;
  474. sdata->bss_conf.ht_bss_conf = NULL;
  475. memset(wrqu.ap_addr.sa_data, 0, ETH_ALEN);
  476. }
  477. ifsta->last_probe = jiffies;
  478. ieee80211_led_assoc(local, assoc);
  479. sdata->bss_conf.assoc = assoc;
  480. ieee80211_bss_info_change_notify(sdata, changed);
  481. wrqu.ap_addr.sa_family = ARPHRD_ETHER;
  482. wireless_send_event(dev, SIOCGIWAP, &wrqu, NULL);
  483. }
  484. static void ieee80211_set_disassoc(struct net_device *dev,
  485. struct ieee80211_if_sta *ifsta, int deauth)
  486. {
  487. if (deauth)
  488. ifsta->auth_tries = 0;
  489. ifsta->assoc_tries = 0;
  490. ieee80211_set_associated(dev, ifsta, 0);
  491. }
  492. void ieee80211_sta_tx(struct net_device *dev, struct sk_buff *skb,
  493. int encrypt)
  494. {
  495. struct ieee80211_sub_if_data *sdata;
  496. struct ieee80211_tx_packet_data *pkt_data;
  497. sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  498. skb->dev = sdata->local->mdev;
  499. skb_set_mac_header(skb, 0);
  500. skb_set_network_header(skb, 0);
  501. skb_set_transport_header(skb, 0);
  502. pkt_data = (struct ieee80211_tx_packet_data *) skb->cb;
  503. memset(pkt_data, 0, sizeof(struct ieee80211_tx_packet_data));
  504. pkt_data->ifindex = sdata->dev->ifindex;
  505. if (!encrypt)
  506. pkt_data->flags |= IEEE80211_TXPD_DO_NOT_ENCRYPT;
  507. dev_queue_xmit(skb);
  508. }
  509. static void ieee80211_send_auth(struct net_device *dev,
  510. struct ieee80211_if_sta *ifsta,
  511. int transaction, u8 *extra, size_t extra_len,
  512. int encrypt)
  513. {
  514. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  515. struct sk_buff *skb;
  516. struct ieee80211_mgmt *mgmt;
  517. skb = dev_alloc_skb(local->hw.extra_tx_headroom +
  518. sizeof(*mgmt) + 6 + extra_len);
  519. if (!skb) {
  520. printk(KERN_DEBUG "%s: failed to allocate buffer for auth "
  521. "frame\n", dev->name);
  522. return;
  523. }
  524. skb_reserve(skb, local->hw.extra_tx_headroom);
  525. mgmt = (struct ieee80211_mgmt *) skb_put(skb, 24 + 6);
  526. memset(mgmt, 0, 24 + 6);
  527. mgmt->frame_control = IEEE80211_FC(IEEE80211_FTYPE_MGMT,
  528. IEEE80211_STYPE_AUTH);
  529. if (encrypt)
  530. mgmt->frame_control |= cpu_to_le16(IEEE80211_FCTL_PROTECTED);
  531. memcpy(mgmt->da, ifsta->bssid, ETH_ALEN);
  532. memcpy(mgmt->sa, dev->dev_addr, ETH_ALEN);
  533. memcpy(mgmt->bssid, ifsta->bssid, ETH_ALEN);
  534. mgmt->u.auth.auth_alg = cpu_to_le16(ifsta->auth_alg);
  535. mgmt->u.auth.auth_transaction = cpu_to_le16(transaction);
  536. ifsta->auth_transaction = transaction + 1;
  537. mgmt->u.auth.status_code = cpu_to_le16(0);
  538. if (extra)
  539. memcpy(skb_put(skb, extra_len), extra, extra_len);
  540. ieee80211_sta_tx(dev, skb, encrypt);
  541. }
  542. static void ieee80211_authenticate(struct net_device *dev,
  543. struct ieee80211_if_sta *ifsta)
  544. {
  545. DECLARE_MAC_BUF(mac);
  546. ifsta->auth_tries++;
  547. if (ifsta->auth_tries > IEEE80211_AUTH_MAX_TRIES) {
  548. printk(KERN_DEBUG "%s: authentication with AP %s"
  549. " timed out\n",
  550. dev->name, print_mac(mac, ifsta->bssid));
  551. ifsta->state = IEEE80211_DISABLED;
  552. return;
  553. }
  554. ifsta->state = IEEE80211_AUTHENTICATE;
  555. printk(KERN_DEBUG "%s: authenticate with AP %s\n",
  556. dev->name, print_mac(mac, ifsta->bssid));
  557. ieee80211_send_auth(dev, ifsta, 1, NULL, 0, 0);
  558. mod_timer(&ifsta->timer, jiffies + IEEE80211_AUTH_TIMEOUT);
  559. }
  560. static void ieee80211_send_assoc(struct net_device *dev,
  561. struct ieee80211_if_sta *ifsta)
  562. {
  563. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  564. struct sk_buff *skb;
  565. struct ieee80211_mgmt *mgmt;
  566. u8 *pos, *ies;
  567. int i, len;
  568. u16 capab;
  569. struct ieee80211_sta_bss *bss;
  570. int wmm = 0;
  571. struct ieee80211_supported_band *sband;
  572. skb = dev_alloc_skb(local->hw.extra_tx_headroom +
  573. sizeof(*mgmt) + 200 + ifsta->extra_ie_len +
  574. ifsta->ssid_len);
  575. if (!skb) {
  576. printk(KERN_DEBUG "%s: failed to allocate buffer for assoc "
  577. "frame\n", dev->name);
  578. return;
  579. }
  580. skb_reserve(skb, local->hw.extra_tx_headroom);
  581. sband = local->hw.wiphy->bands[local->hw.conf.channel->band];
  582. capab = ifsta->capab;
  583. if (local->hw.conf.channel->band == IEEE80211_BAND_2GHZ) {
  584. if (!(local->hw.flags & IEEE80211_HW_2GHZ_SHORT_SLOT_INCAPABLE))
  585. capab |= WLAN_CAPABILITY_SHORT_SLOT_TIME;
  586. if (!(local->hw.flags & IEEE80211_HW_2GHZ_SHORT_PREAMBLE_INCAPABLE))
  587. capab |= WLAN_CAPABILITY_SHORT_PREAMBLE;
  588. }
  589. bss = ieee80211_rx_bss_get(dev, ifsta->bssid,
  590. local->hw.conf.channel->center_freq,
  591. ifsta->ssid, ifsta->ssid_len);
  592. if (bss) {
  593. if (bss->capability & WLAN_CAPABILITY_PRIVACY)
  594. capab |= WLAN_CAPABILITY_PRIVACY;
  595. if (bss->wmm_ie)
  596. wmm = 1;
  597. ieee80211_rx_bss_put(dev, bss);
  598. }
  599. mgmt = (struct ieee80211_mgmt *) skb_put(skb, 24);
  600. memset(mgmt, 0, 24);
  601. memcpy(mgmt->da, ifsta->bssid, ETH_ALEN);
  602. memcpy(mgmt->sa, dev->dev_addr, ETH_ALEN);
  603. memcpy(mgmt->bssid, ifsta->bssid, ETH_ALEN);
  604. if (ifsta->flags & IEEE80211_STA_PREV_BSSID_SET) {
  605. skb_put(skb, 10);
  606. mgmt->frame_control = IEEE80211_FC(IEEE80211_FTYPE_MGMT,
  607. IEEE80211_STYPE_REASSOC_REQ);
  608. mgmt->u.reassoc_req.capab_info = cpu_to_le16(capab);
  609. mgmt->u.reassoc_req.listen_interval = cpu_to_le16(1);
  610. memcpy(mgmt->u.reassoc_req.current_ap, ifsta->prev_bssid,
  611. ETH_ALEN);
  612. } else {
  613. skb_put(skb, 4);
  614. mgmt->frame_control = IEEE80211_FC(IEEE80211_FTYPE_MGMT,
  615. IEEE80211_STYPE_ASSOC_REQ);
  616. mgmt->u.assoc_req.capab_info = cpu_to_le16(capab);
  617. mgmt->u.assoc_req.listen_interval = cpu_to_le16(1);
  618. }
  619. /* SSID */
  620. ies = pos = skb_put(skb, 2 + ifsta->ssid_len);
  621. *pos++ = WLAN_EID_SSID;
  622. *pos++ = ifsta->ssid_len;
  623. memcpy(pos, ifsta->ssid, ifsta->ssid_len);
  624. len = sband->n_bitrates;
  625. if (len > 8)
  626. len = 8;
  627. pos = skb_put(skb, len + 2);
  628. *pos++ = WLAN_EID_SUPP_RATES;
  629. *pos++ = len;
  630. for (i = 0; i < len; i++) {
  631. int rate = sband->bitrates[i].bitrate;
  632. *pos++ = (u8) (rate / 5);
  633. }
  634. if (sband->n_bitrates > len) {
  635. pos = skb_put(skb, sband->n_bitrates - len + 2);
  636. *pos++ = WLAN_EID_EXT_SUPP_RATES;
  637. *pos++ = sband->n_bitrates - len;
  638. for (i = len; i < sband->n_bitrates; i++) {
  639. int rate = sband->bitrates[i].bitrate;
  640. *pos++ = (u8) (rate / 5);
  641. }
  642. }
  643. if (ifsta->extra_ie) {
  644. pos = skb_put(skb, ifsta->extra_ie_len);
  645. memcpy(pos, ifsta->extra_ie, ifsta->extra_ie_len);
  646. }
  647. if (wmm && (ifsta->flags & IEEE80211_STA_WMM_ENABLED)) {
  648. pos = skb_put(skb, 9);
  649. *pos++ = WLAN_EID_VENDOR_SPECIFIC;
  650. *pos++ = 7; /* len */
  651. *pos++ = 0x00; /* Microsoft OUI 00:50:F2 */
  652. *pos++ = 0x50;
  653. *pos++ = 0xf2;
  654. *pos++ = 2; /* WME */
  655. *pos++ = 0; /* WME info */
  656. *pos++ = 1; /* WME ver */
  657. *pos++ = 0;
  658. }
  659. /* wmm support is a must to HT */
  660. if (wmm && (ifsta->flags & IEEE80211_STA_WMM_ENABLED) &&
  661. sband->ht_info.ht_supported) {
  662. __le16 tmp = cpu_to_le16(sband->ht_info.cap);
  663. pos = skb_put(skb, sizeof(struct ieee80211_ht_cap)+2);
  664. *pos++ = WLAN_EID_HT_CAPABILITY;
  665. *pos++ = sizeof(struct ieee80211_ht_cap);
  666. memset(pos, 0, sizeof(struct ieee80211_ht_cap));
  667. memcpy(pos, &tmp, sizeof(u16));
  668. pos += sizeof(u16);
  669. /* TODO: needs a define here for << 2 */
  670. *pos++ = sband->ht_info.ampdu_factor |
  671. (sband->ht_info.ampdu_density << 2);
  672. memcpy(pos, sband->ht_info.supp_mcs_set, 16);
  673. }
  674. kfree(ifsta->assocreq_ies);
  675. ifsta->assocreq_ies_len = (skb->data + skb->len) - ies;
  676. ifsta->assocreq_ies = kmalloc(ifsta->assocreq_ies_len, GFP_KERNEL);
  677. if (ifsta->assocreq_ies)
  678. memcpy(ifsta->assocreq_ies, ies, ifsta->assocreq_ies_len);
  679. ieee80211_sta_tx(dev, skb, 0);
  680. }
  681. static void ieee80211_send_deauth(struct net_device *dev,
  682. struct ieee80211_if_sta *ifsta, u16 reason)
  683. {
  684. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  685. struct sk_buff *skb;
  686. struct ieee80211_mgmt *mgmt;
  687. skb = dev_alloc_skb(local->hw.extra_tx_headroom + sizeof(*mgmt));
  688. if (!skb) {
  689. printk(KERN_DEBUG "%s: failed to allocate buffer for deauth "
  690. "frame\n", dev->name);
  691. return;
  692. }
  693. skb_reserve(skb, local->hw.extra_tx_headroom);
  694. mgmt = (struct ieee80211_mgmt *) skb_put(skb, 24);
  695. memset(mgmt, 0, 24);
  696. memcpy(mgmt->da, ifsta->bssid, ETH_ALEN);
  697. memcpy(mgmt->sa, dev->dev_addr, ETH_ALEN);
  698. memcpy(mgmt->bssid, ifsta->bssid, ETH_ALEN);
  699. mgmt->frame_control = IEEE80211_FC(IEEE80211_FTYPE_MGMT,
  700. IEEE80211_STYPE_DEAUTH);
  701. skb_put(skb, 2);
  702. mgmt->u.deauth.reason_code = cpu_to_le16(reason);
  703. ieee80211_sta_tx(dev, skb, 0);
  704. }
  705. static void ieee80211_send_disassoc(struct net_device *dev,
  706. struct ieee80211_if_sta *ifsta, u16 reason)
  707. {
  708. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  709. struct sk_buff *skb;
  710. struct ieee80211_mgmt *mgmt;
  711. skb = dev_alloc_skb(local->hw.extra_tx_headroom + sizeof(*mgmt));
  712. if (!skb) {
  713. printk(KERN_DEBUG "%s: failed to allocate buffer for disassoc "
  714. "frame\n", dev->name);
  715. return;
  716. }
  717. skb_reserve(skb, local->hw.extra_tx_headroom);
  718. mgmt = (struct ieee80211_mgmt *) skb_put(skb, 24);
  719. memset(mgmt, 0, 24);
  720. memcpy(mgmt->da, ifsta->bssid, ETH_ALEN);
  721. memcpy(mgmt->sa, dev->dev_addr, ETH_ALEN);
  722. memcpy(mgmt->bssid, ifsta->bssid, ETH_ALEN);
  723. mgmt->frame_control = IEEE80211_FC(IEEE80211_FTYPE_MGMT,
  724. IEEE80211_STYPE_DISASSOC);
  725. skb_put(skb, 2);
  726. mgmt->u.disassoc.reason_code = cpu_to_le16(reason);
  727. ieee80211_sta_tx(dev, skb, 0);
  728. }
  729. static int ieee80211_privacy_mismatch(struct net_device *dev,
  730. struct ieee80211_if_sta *ifsta)
  731. {
  732. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  733. struct ieee80211_sta_bss *bss;
  734. int bss_privacy;
  735. int wep_privacy;
  736. int privacy_invoked;
  737. if (!ifsta || (ifsta->flags & IEEE80211_STA_MIXED_CELL))
  738. return 0;
  739. bss = ieee80211_rx_bss_get(dev, ifsta->bssid,
  740. local->hw.conf.channel->center_freq,
  741. ifsta->ssid, ifsta->ssid_len);
  742. if (!bss)
  743. return 0;
  744. bss_privacy = !!(bss->capability & WLAN_CAPABILITY_PRIVACY);
  745. wep_privacy = !!ieee80211_sta_wep_configured(dev);
  746. privacy_invoked = !!(ifsta->flags & IEEE80211_STA_PRIVACY_INVOKED);
  747. ieee80211_rx_bss_put(dev, bss);
  748. if ((bss_privacy == wep_privacy) || (bss_privacy == privacy_invoked))
  749. return 0;
  750. return 1;
  751. }
  752. static void ieee80211_associate(struct net_device *dev,
  753. struct ieee80211_if_sta *ifsta)
  754. {
  755. DECLARE_MAC_BUF(mac);
  756. ifsta->assoc_tries++;
  757. if (ifsta->assoc_tries > IEEE80211_ASSOC_MAX_TRIES) {
  758. printk(KERN_DEBUG "%s: association with AP %s"
  759. " timed out\n",
  760. dev->name, print_mac(mac, ifsta->bssid));
  761. ifsta->state = IEEE80211_DISABLED;
  762. return;
  763. }
  764. ifsta->state = IEEE80211_ASSOCIATE;
  765. printk(KERN_DEBUG "%s: associate with AP %s\n",
  766. dev->name, print_mac(mac, ifsta->bssid));
  767. if (ieee80211_privacy_mismatch(dev, ifsta)) {
  768. printk(KERN_DEBUG "%s: mismatch in privacy configuration and "
  769. "mixed-cell disabled - abort association\n", dev->name);
  770. ifsta->state = IEEE80211_DISABLED;
  771. return;
  772. }
  773. ieee80211_send_assoc(dev, ifsta);
  774. mod_timer(&ifsta->timer, jiffies + IEEE80211_ASSOC_TIMEOUT);
  775. }
  776. static void ieee80211_associated(struct net_device *dev,
  777. struct ieee80211_if_sta *ifsta)
  778. {
  779. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  780. struct sta_info *sta;
  781. int disassoc;
  782. DECLARE_MAC_BUF(mac);
  783. /* TODO: start monitoring current AP signal quality and number of
  784. * missed beacons. Scan other channels every now and then and search
  785. * for better APs. */
  786. /* TODO: remove expired BSSes */
  787. ifsta->state = IEEE80211_ASSOCIATED;
  788. rcu_read_lock();
  789. sta = sta_info_get(local, ifsta->bssid);
  790. if (!sta) {
  791. printk(KERN_DEBUG "%s: No STA entry for own AP %s\n",
  792. dev->name, print_mac(mac, ifsta->bssid));
  793. disassoc = 1;
  794. } else {
  795. disassoc = 0;
  796. if (time_after(jiffies,
  797. sta->last_rx + IEEE80211_MONITORING_INTERVAL)) {
  798. if (ifsta->flags & IEEE80211_STA_PROBEREQ_POLL) {
  799. printk(KERN_DEBUG "%s: No ProbeResp from "
  800. "current AP %s - assume out of "
  801. "range\n",
  802. dev->name, print_mac(mac, ifsta->bssid));
  803. disassoc = 1;
  804. sta_info_unlink(&sta);
  805. } else
  806. ieee80211_send_probe_req(dev, ifsta->bssid,
  807. local->scan_ssid,
  808. local->scan_ssid_len);
  809. ifsta->flags ^= IEEE80211_STA_PROBEREQ_POLL;
  810. } else {
  811. ifsta->flags &= ~IEEE80211_STA_PROBEREQ_POLL;
  812. if (time_after(jiffies, ifsta->last_probe +
  813. IEEE80211_PROBE_INTERVAL)) {
  814. ifsta->last_probe = jiffies;
  815. ieee80211_send_probe_req(dev, ifsta->bssid,
  816. ifsta->ssid,
  817. ifsta->ssid_len);
  818. }
  819. }
  820. }
  821. rcu_read_unlock();
  822. if (disassoc && sta)
  823. sta_info_destroy(sta);
  824. if (disassoc) {
  825. ifsta->state = IEEE80211_DISABLED;
  826. ieee80211_set_associated(dev, ifsta, 0);
  827. } else {
  828. mod_timer(&ifsta->timer, jiffies +
  829. IEEE80211_MONITORING_INTERVAL);
  830. }
  831. }
  832. static void ieee80211_send_probe_req(struct net_device *dev, u8 *dst,
  833. u8 *ssid, size_t ssid_len)
  834. {
  835. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  836. struct ieee80211_supported_band *sband;
  837. struct sk_buff *skb;
  838. struct ieee80211_mgmt *mgmt;
  839. u8 *pos, *supp_rates, *esupp_rates = NULL;
  840. int i;
  841. skb = dev_alloc_skb(local->hw.extra_tx_headroom + sizeof(*mgmt) + 200);
  842. if (!skb) {
  843. printk(KERN_DEBUG "%s: failed to allocate buffer for probe "
  844. "request\n", dev->name);
  845. return;
  846. }
  847. skb_reserve(skb, local->hw.extra_tx_headroom);
  848. mgmt = (struct ieee80211_mgmt *) skb_put(skb, 24);
  849. memset(mgmt, 0, 24);
  850. mgmt->frame_control = IEEE80211_FC(IEEE80211_FTYPE_MGMT,
  851. IEEE80211_STYPE_PROBE_REQ);
  852. memcpy(mgmt->sa, dev->dev_addr, ETH_ALEN);
  853. if (dst) {
  854. memcpy(mgmt->da, dst, ETH_ALEN);
  855. memcpy(mgmt->bssid, dst, ETH_ALEN);
  856. } else {
  857. memset(mgmt->da, 0xff, ETH_ALEN);
  858. memset(mgmt->bssid, 0xff, ETH_ALEN);
  859. }
  860. pos = skb_put(skb, 2 + ssid_len);
  861. *pos++ = WLAN_EID_SSID;
  862. *pos++ = ssid_len;
  863. memcpy(pos, ssid, ssid_len);
  864. supp_rates = skb_put(skb, 2);
  865. supp_rates[0] = WLAN_EID_SUPP_RATES;
  866. supp_rates[1] = 0;
  867. sband = local->hw.wiphy->bands[local->hw.conf.channel->band];
  868. for (i = 0; i < sband->n_bitrates; i++) {
  869. struct ieee80211_rate *rate = &sband->bitrates[i];
  870. if (esupp_rates) {
  871. pos = skb_put(skb, 1);
  872. esupp_rates[1]++;
  873. } else if (supp_rates[1] == 8) {
  874. esupp_rates = skb_put(skb, 3);
  875. esupp_rates[0] = WLAN_EID_EXT_SUPP_RATES;
  876. esupp_rates[1] = 1;
  877. pos = &esupp_rates[2];
  878. } else {
  879. pos = skb_put(skb, 1);
  880. supp_rates[1]++;
  881. }
  882. *pos = rate->bitrate / 5;
  883. }
  884. ieee80211_sta_tx(dev, skb, 0);
  885. }
  886. static int ieee80211_sta_wep_configured(struct net_device *dev)
  887. {
  888. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  889. if (!sdata || !sdata->default_key ||
  890. sdata->default_key->conf.alg != ALG_WEP)
  891. return 0;
  892. return 1;
  893. }
  894. static void ieee80211_auth_completed(struct net_device *dev,
  895. struct ieee80211_if_sta *ifsta)
  896. {
  897. printk(KERN_DEBUG "%s: authenticated\n", dev->name);
  898. ifsta->flags |= IEEE80211_STA_AUTHENTICATED;
  899. ieee80211_associate(dev, ifsta);
  900. }
  901. static void ieee80211_auth_challenge(struct net_device *dev,
  902. struct ieee80211_if_sta *ifsta,
  903. struct ieee80211_mgmt *mgmt,
  904. size_t len)
  905. {
  906. u8 *pos;
  907. struct ieee802_11_elems elems;
  908. printk(KERN_DEBUG "%s: replying to auth challenge\n", dev->name);
  909. pos = mgmt->u.auth.variable;
  910. ieee802_11_parse_elems(pos, len - (pos - (u8 *) mgmt), &elems);
  911. if (!elems.challenge) {
  912. printk(KERN_DEBUG "%s: no challenge IE in shared key auth "
  913. "frame\n", dev->name);
  914. return;
  915. }
  916. ieee80211_send_auth(dev, ifsta, 3, elems.challenge - 2,
  917. elems.challenge_len + 2, 1);
  918. }
  919. static void ieee80211_send_addba_resp(struct net_device *dev, u8 *da, u16 tid,
  920. u8 dialog_token, u16 status, u16 policy,
  921. u16 buf_size, u16 timeout)
  922. {
  923. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  924. struct ieee80211_if_sta *ifsta = &sdata->u.sta;
  925. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  926. struct sk_buff *skb;
  927. struct ieee80211_mgmt *mgmt;
  928. u16 capab;
  929. skb = dev_alloc_skb(sizeof(*mgmt) + local->hw.extra_tx_headroom);
  930. if (!skb) {
  931. printk(KERN_DEBUG "%s: failed to allocate buffer "
  932. "for addba resp frame\n", dev->name);
  933. return;
  934. }
  935. skb_reserve(skb, local->hw.extra_tx_headroom);
  936. mgmt = (struct ieee80211_mgmt *) skb_put(skb, 24);
  937. memset(mgmt, 0, 24);
  938. memcpy(mgmt->da, da, ETH_ALEN);
  939. memcpy(mgmt->sa, dev->dev_addr, ETH_ALEN);
  940. if (sdata->vif.type == IEEE80211_IF_TYPE_AP)
  941. memcpy(mgmt->bssid, dev->dev_addr, ETH_ALEN);
  942. else
  943. memcpy(mgmt->bssid, ifsta->bssid, ETH_ALEN);
  944. mgmt->frame_control = IEEE80211_FC(IEEE80211_FTYPE_MGMT,
  945. IEEE80211_STYPE_ACTION);
  946. skb_put(skb, 1 + sizeof(mgmt->u.action.u.addba_resp));
  947. mgmt->u.action.category = WLAN_CATEGORY_BACK;
  948. mgmt->u.action.u.addba_resp.action_code = WLAN_ACTION_ADDBA_RESP;
  949. mgmt->u.action.u.addba_resp.dialog_token = dialog_token;
  950. capab = (u16)(policy << 1); /* bit 1 aggregation policy */
  951. capab |= (u16)(tid << 2); /* bit 5:2 TID number */
  952. capab |= (u16)(buf_size << 6); /* bit 15:6 max size of aggregation */
  953. mgmt->u.action.u.addba_resp.capab = cpu_to_le16(capab);
  954. mgmt->u.action.u.addba_resp.timeout = cpu_to_le16(timeout);
  955. mgmt->u.action.u.addba_resp.status = cpu_to_le16(status);
  956. ieee80211_sta_tx(dev, skb, 0);
  957. return;
  958. }
  959. void ieee80211_send_addba_request(struct net_device *dev, const u8 *da,
  960. u16 tid, u8 dialog_token, u16 start_seq_num,
  961. u16 agg_size, u16 timeout)
  962. {
  963. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  964. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  965. struct ieee80211_if_sta *ifsta = &sdata->u.sta;
  966. struct sk_buff *skb;
  967. struct ieee80211_mgmt *mgmt;
  968. u16 capab;
  969. skb = dev_alloc_skb(sizeof(*mgmt) + local->hw.extra_tx_headroom);
  970. if (!skb) {
  971. printk(KERN_ERR "%s: failed to allocate buffer "
  972. "for addba request frame\n", dev->name);
  973. return;
  974. }
  975. skb_reserve(skb, local->hw.extra_tx_headroom);
  976. mgmt = (struct ieee80211_mgmt *) skb_put(skb, 24);
  977. memset(mgmt, 0, 24);
  978. memcpy(mgmt->da, da, ETH_ALEN);
  979. memcpy(mgmt->sa, dev->dev_addr, ETH_ALEN);
  980. if (sdata->vif.type == IEEE80211_IF_TYPE_AP)
  981. memcpy(mgmt->bssid, dev->dev_addr, ETH_ALEN);
  982. else
  983. memcpy(mgmt->bssid, ifsta->bssid, ETH_ALEN);
  984. mgmt->frame_control = IEEE80211_FC(IEEE80211_FTYPE_MGMT,
  985. IEEE80211_STYPE_ACTION);
  986. skb_put(skb, 1 + sizeof(mgmt->u.action.u.addba_req));
  987. mgmt->u.action.category = WLAN_CATEGORY_BACK;
  988. mgmt->u.action.u.addba_req.action_code = WLAN_ACTION_ADDBA_REQ;
  989. mgmt->u.action.u.addba_req.dialog_token = dialog_token;
  990. capab = (u16)(1 << 1); /* bit 1 aggregation policy */
  991. capab |= (u16)(tid << 2); /* bit 5:2 TID number */
  992. capab |= (u16)(agg_size << 6); /* bit 15:6 max size of aggergation */
  993. mgmt->u.action.u.addba_req.capab = cpu_to_le16(capab);
  994. mgmt->u.action.u.addba_req.timeout = cpu_to_le16(timeout);
  995. mgmt->u.action.u.addba_req.start_seq_num =
  996. cpu_to_le16(start_seq_num << 4);
  997. ieee80211_sta_tx(dev, skb, 0);
  998. }
  999. static void ieee80211_sta_process_addba_request(struct net_device *dev,
  1000. struct ieee80211_mgmt *mgmt,
  1001. size_t len)
  1002. {
  1003. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1004. struct ieee80211_hw *hw = &local->hw;
  1005. struct ieee80211_conf *conf = &hw->conf;
  1006. struct sta_info *sta;
  1007. struct tid_ampdu_rx *tid_agg_rx;
  1008. u16 capab, tid, timeout, ba_policy, buf_size, start_seq_num, status;
  1009. u8 dialog_token;
  1010. int ret = -EOPNOTSUPP;
  1011. DECLARE_MAC_BUF(mac);
  1012. rcu_read_lock();
  1013. sta = sta_info_get(local, mgmt->sa);
  1014. if (!sta) {
  1015. rcu_read_unlock();
  1016. return;
  1017. }
  1018. /* extract session parameters from addba request frame */
  1019. dialog_token = mgmt->u.action.u.addba_req.dialog_token;
  1020. timeout = le16_to_cpu(mgmt->u.action.u.addba_req.timeout);
  1021. start_seq_num =
  1022. le16_to_cpu(mgmt->u.action.u.addba_req.start_seq_num) >> 4;
  1023. capab = le16_to_cpu(mgmt->u.action.u.addba_req.capab);
  1024. ba_policy = (capab & IEEE80211_ADDBA_PARAM_POLICY_MASK) >> 1;
  1025. tid = (capab & IEEE80211_ADDBA_PARAM_TID_MASK) >> 2;
  1026. buf_size = (capab & IEEE80211_ADDBA_PARAM_BUF_SIZE_MASK) >> 6;
  1027. status = WLAN_STATUS_REQUEST_DECLINED;
  1028. /* sanity check for incoming parameters:
  1029. * check if configuration can support the BA policy
  1030. * and if buffer size does not exceeds max value */
  1031. if (((ba_policy != 1)
  1032. && (!(conf->ht_conf.cap & IEEE80211_HT_CAP_DELAY_BA)))
  1033. || (buf_size > IEEE80211_MAX_AMPDU_BUF)) {
  1034. status = WLAN_STATUS_INVALID_QOS_PARAM;
  1035. #ifdef CONFIG_MAC80211_HT_DEBUG
  1036. if (net_ratelimit())
  1037. printk(KERN_DEBUG "AddBA Req with bad params from "
  1038. "%s on tid %u. policy %d, buffer size %d\n",
  1039. print_mac(mac, mgmt->sa), tid, ba_policy,
  1040. buf_size);
  1041. #endif /* CONFIG_MAC80211_HT_DEBUG */
  1042. goto end_no_lock;
  1043. }
  1044. /* determine default buffer size */
  1045. if (buf_size == 0) {
  1046. struct ieee80211_supported_band *sband;
  1047. sband = local->hw.wiphy->bands[conf->channel->band];
  1048. buf_size = IEEE80211_MIN_AMPDU_BUF;
  1049. buf_size = buf_size << sband->ht_info.ampdu_factor;
  1050. }
  1051. /* examine state machine */
  1052. spin_lock_bh(&sta->lock);
  1053. if (sta->ampdu_mlme.tid_state_rx[tid] != HT_AGG_STATE_IDLE) {
  1054. #ifdef CONFIG_MAC80211_HT_DEBUG
  1055. if (net_ratelimit())
  1056. printk(KERN_DEBUG "unexpected AddBA Req from "
  1057. "%s on tid %u\n",
  1058. print_mac(mac, mgmt->sa), tid);
  1059. #endif /* CONFIG_MAC80211_HT_DEBUG */
  1060. goto end;
  1061. }
  1062. /* prepare A-MPDU MLME for Rx aggregation */
  1063. sta->ampdu_mlme.tid_rx[tid] =
  1064. kmalloc(sizeof(struct tid_ampdu_rx), GFP_ATOMIC);
  1065. if (!sta->ampdu_mlme.tid_rx[tid]) {
  1066. if (net_ratelimit())
  1067. printk(KERN_ERR "allocate rx mlme to tid %d failed\n",
  1068. tid);
  1069. goto end;
  1070. }
  1071. /* rx timer */
  1072. sta->ampdu_mlme.tid_rx[tid]->session_timer.function =
  1073. sta_rx_agg_session_timer_expired;
  1074. sta->ampdu_mlme.tid_rx[tid]->session_timer.data =
  1075. (unsigned long)&sta->timer_to_tid[tid];
  1076. init_timer(&sta->ampdu_mlme.tid_rx[tid]->session_timer);
  1077. tid_agg_rx = sta->ampdu_mlme.tid_rx[tid];
  1078. /* prepare reordering buffer */
  1079. tid_agg_rx->reorder_buf =
  1080. kmalloc(buf_size * sizeof(struct sk_buf *), GFP_ATOMIC);
  1081. if (!tid_agg_rx->reorder_buf) {
  1082. if (net_ratelimit())
  1083. printk(KERN_ERR "can not allocate reordering buffer "
  1084. "to tid %d\n", tid);
  1085. kfree(sta->ampdu_mlme.tid_rx[tid]);
  1086. goto end;
  1087. }
  1088. memset(tid_agg_rx->reorder_buf, 0,
  1089. buf_size * sizeof(struct sk_buf *));
  1090. if (local->ops->ampdu_action)
  1091. ret = local->ops->ampdu_action(hw, IEEE80211_AMPDU_RX_START,
  1092. sta->addr, tid, &start_seq_num);
  1093. #ifdef CONFIG_MAC80211_HT_DEBUG
  1094. printk(KERN_DEBUG "Rx A-MPDU request on tid %d result %d\n", tid, ret);
  1095. #endif /* CONFIG_MAC80211_HT_DEBUG */
  1096. if (ret) {
  1097. kfree(tid_agg_rx->reorder_buf);
  1098. kfree(tid_agg_rx);
  1099. sta->ampdu_mlme.tid_rx[tid] = NULL;
  1100. goto end;
  1101. }
  1102. /* change state and send addba resp */
  1103. sta->ampdu_mlme.tid_state_rx[tid] = HT_AGG_STATE_OPERATIONAL;
  1104. tid_agg_rx->dialog_token = dialog_token;
  1105. tid_agg_rx->ssn = start_seq_num;
  1106. tid_agg_rx->head_seq_num = start_seq_num;
  1107. tid_agg_rx->buf_size = buf_size;
  1108. tid_agg_rx->timeout = timeout;
  1109. tid_agg_rx->stored_mpdu_num = 0;
  1110. status = WLAN_STATUS_SUCCESS;
  1111. end:
  1112. spin_unlock_bh(&sta->lock);
  1113. end_no_lock:
  1114. ieee80211_send_addba_resp(sta->sdata->dev, sta->addr, tid,
  1115. dialog_token, status, 1, buf_size, timeout);
  1116. rcu_read_unlock();
  1117. }
  1118. static void ieee80211_sta_process_addba_resp(struct net_device *dev,
  1119. struct ieee80211_mgmt *mgmt,
  1120. size_t len)
  1121. {
  1122. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1123. struct ieee80211_hw *hw = &local->hw;
  1124. struct sta_info *sta;
  1125. u16 capab;
  1126. u16 tid;
  1127. u8 *state;
  1128. rcu_read_lock();
  1129. sta = sta_info_get(local, mgmt->sa);
  1130. if (!sta) {
  1131. rcu_read_unlock();
  1132. return;
  1133. }
  1134. capab = le16_to_cpu(mgmt->u.action.u.addba_resp.capab);
  1135. tid = (capab & IEEE80211_ADDBA_PARAM_TID_MASK) >> 2;
  1136. state = &sta->ampdu_mlme.tid_state_tx[tid];
  1137. spin_lock_bh(&sta->lock);
  1138. if (!(*state & HT_ADDBA_REQUESTED_MSK)) {
  1139. spin_unlock_bh(&sta->lock);
  1140. printk(KERN_DEBUG "state not HT_ADDBA_REQUESTED_MSK:"
  1141. "%d\n", *state);
  1142. goto addba_resp_exit;
  1143. }
  1144. if (mgmt->u.action.u.addba_resp.dialog_token !=
  1145. sta->ampdu_mlme.tid_tx[tid]->dialog_token) {
  1146. spin_unlock_bh(&sta->lock);
  1147. #ifdef CONFIG_MAC80211_HT_DEBUG
  1148. printk(KERN_DEBUG "wrong addBA response token, tid %d\n", tid);
  1149. #endif /* CONFIG_MAC80211_HT_DEBUG */
  1150. goto addba_resp_exit;
  1151. }
  1152. del_timer_sync(&sta->ampdu_mlme.tid_tx[tid]->addba_resp_timer);
  1153. #ifdef CONFIG_MAC80211_HT_DEBUG
  1154. printk(KERN_DEBUG "switched off addBA timer for tid %d \n", tid);
  1155. #endif /* CONFIG_MAC80211_HT_DEBUG */
  1156. if (le16_to_cpu(mgmt->u.action.u.addba_resp.status)
  1157. == WLAN_STATUS_SUCCESS) {
  1158. if (*state & HT_ADDBA_RECEIVED_MSK)
  1159. printk(KERN_DEBUG "double addBA response\n");
  1160. *state |= HT_ADDBA_RECEIVED_MSK;
  1161. sta->ampdu_mlme.addba_req_num[tid] = 0;
  1162. if (*state == HT_AGG_STATE_OPERATIONAL) {
  1163. printk(KERN_DEBUG "Aggregation on for tid %d \n", tid);
  1164. ieee80211_wake_queue(hw, sta->tid_to_tx_q[tid]);
  1165. }
  1166. spin_unlock_bh(&sta->lock);
  1167. printk(KERN_DEBUG "recipient accepted agg: tid %d \n", tid);
  1168. } else {
  1169. printk(KERN_DEBUG "recipient rejected agg: tid %d \n", tid);
  1170. sta->ampdu_mlme.addba_req_num[tid]++;
  1171. /* this will allow the state check in stop_BA_session */
  1172. *state = HT_AGG_STATE_OPERATIONAL;
  1173. spin_unlock_bh(&sta->lock);
  1174. ieee80211_stop_tx_ba_session(hw, sta->addr, tid,
  1175. WLAN_BACK_INITIATOR);
  1176. }
  1177. addba_resp_exit:
  1178. rcu_read_unlock();
  1179. }
  1180. void ieee80211_send_delba(struct net_device *dev, const u8 *da, u16 tid,
  1181. u16 initiator, u16 reason_code)
  1182. {
  1183. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1184. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  1185. struct ieee80211_if_sta *ifsta = &sdata->u.sta;
  1186. struct sk_buff *skb;
  1187. struct ieee80211_mgmt *mgmt;
  1188. u16 params;
  1189. skb = dev_alloc_skb(sizeof(*mgmt) + local->hw.extra_tx_headroom);
  1190. if (!skb) {
  1191. printk(KERN_ERR "%s: failed to allocate buffer "
  1192. "for delba frame\n", dev->name);
  1193. return;
  1194. }
  1195. skb_reserve(skb, local->hw.extra_tx_headroom);
  1196. mgmt = (struct ieee80211_mgmt *) skb_put(skb, 24);
  1197. memset(mgmt, 0, 24);
  1198. memcpy(mgmt->da, da, ETH_ALEN);
  1199. memcpy(mgmt->sa, dev->dev_addr, ETH_ALEN);
  1200. if (sdata->vif.type == IEEE80211_IF_TYPE_AP)
  1201. memcpy(mgmt->bssid, dev->dev_addr, ETH_ALEN);
  1202. else
  1203. memcpy(mgmt->bssid, ifsta->bssid, ETH_ALEN);
  1204. mgmt->frame_control = IEEE80211_FC(IEEE80211_FTYPE_MGMT,
  1205. IEEE80211_STYPE_ACTION);
  1206. skb_put(skb, 1 + sizeof(mgmt->u.action.u.delba));
  1207. mgmt->u.action.category = WLAN_CATEGORY_BACK;
  1208. mgmt->u.action.u.delba.action_code = WLAN_ACTION_DELBA;
  1209. params = (u16)(initiator << 11); /* bit 11 initiator */
  1210. params |= (u16)(tid << 12); /* bit 15:12 TID number */
  1211. mgmt->u.action.u.delba.params = cpu_to_le16(params);
  1212. mgmt->u.action.u.delba.reason_code = cpu_to_le16(reason_code);
  1213. ieee80211_sta_tx(dev, skb, 0);
  1214. }
  1215. void ieee80211_sta_stop_rx_ba_session(struct net_device *dev, u8 *ra, u16 tid,
  1216. u16 initiator, u16 reason)
  1217. {
  1218. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1219. struct ieee80211_hw *hw = &local->hw;
  1220. struct sta_info *sta;
  1221. int ret, i;
  1222. DECLARE_MAC_BUF(mac);
  1223. rcu_read_lock();
  1224. sta = sta_info_get(local, ra);
  1225. if (!sta) {
  1226. rcu_read_unlock();
  1227. return;
  1228. }
  1229. /* check if TID is in operational state */
  1230. spin_lock_bh(&sta->lock);
  1231. if (sta->ampdu_mlme.tid_state_rx[tid]
  1232. != HT_AGG_STATE_OPERATIONAL) {
  1233. spin_unlock_bh(&sta->lock);
  1234. rcu_read_unlock();
  1235. return;
  1236. }
  1237. sta->ampdu_mlme.tid_state_rx[tid] =
  1238. HT_AGG_STATE_REQ_STOP_BA_MSK |
  1239. (initiator << HT_AGG_STATE_INITIATOR_SHIFT);
  1240. spin_unlock_bh(&sta->lock);
  1241. /* stop HW Rx aggregation. ampdu_action existence
  1242. * already verified in session init so we add the BUG_ON */
  1243. BUG_ON(!local->ops->ampdu_action);
  1244. #ifdef CONFIG_MAC80211_HT_DEBUG
  1245. printk(KERN_DEBUG "Rx BA session stop requested for %s tid %u\n",
  1246. print_mac(mac, ra), tid);
  1247. #endif /* CONFIG_MAC80211_HT_DEBUG */
  1248. ret = local->ops->ampdu_action(hw, IEEE80211_AMPDU_RX_STOP,
  1249. ra, tid, NULL);
  1250. if (ret)
  1251. printk(KERN_DEBUG "HW problem - can not stop rx "
  1252. "aggergation for tid %d\n", tid);
  1253. /* shutdown timer has not expired */
  1254. if (initiator != WLAN_BACK_TIMER)
  1255. del_timer_sync(&sta->ampdu_mlme.tid_rx[tid]->session_timer);
  1256. /* check if this is a self generated aggregation halt */
  1257. if (initiator == WLAN_BACK_RECIPIENT || initiator == WLAN_BACK_TIMER)
  1258. ieee80211_send_delba(dev, ra, tid, 0, reason);
  1259. /* free the reordering buffer */
  1260. for (i = 0; i < sta->ampdu_mlme.tid_rx[tid]->buf_size; i++) {
  1261. if (sta->ampdu_mlme.tid_rx[tid]->reorder_buf[i]) {
  1262. /* release the reordered frames */
  1263. dev_kfree_skb(sta->ampdu_mlme.tid_rx[tid]->reorder_buf[i]);
  1264. sta->ampdu_mlme.tid_rx[tid]->stored_mpdu_num--;
  1265. sta->ampdu_mlme.tid_rx[tid]->reorder_buf[i] = NULL;
  1266. }
  1267. }
  1268. /* free resources */
  1269. kfree(sta->ampdu_mlme.tid_rx[tid]->reorder_buf);
  1270. kfree(sta->ampdu_mlme.tid_rx[tid]);
  1271. sta->ampdu_mlme.tid_rx[tid] = NULL;
  1272. sta->ampdu_mlme.tid_state_rx[tid] = HT_AGG_STATE_IDLE;
  1273. rcu_read_unlock();
  1274. }
  1275. static void ieee80211_sta_process_delba(struct net_device *dev,
  1276. struct ieee80211_mgmt *mgmt, size_t len)
  1277. {
  1278. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1279. struct sta_info *sta;
  1280. u16 tid, params;
  1281. u16 initiator;
  1282. DECLARE_MAC_BUF(mac);
  1283. rcu_read_lock();
  1284. sta = sta_info_get(local, mgmt->sa);
  1285. if (!sta) {
  1286. rcu_read_unlock();
  1287. return;
  1288. }
  1289. params = le16_to_cpu(mgmt->u.action.u.delba.params);
  1290. tid = (params & IEEE80211_DELBA_PARAM_TID_MASK) >> 12;
  1291. initiator = (params & IEEE80211_DELBA_PARAM_INITIATOR_MASK) >> 11;
  1292. #ifdef CONFIG_MAC80211_HT_DEBUG
  1293. if (net_ratelimit())
  1294. printk(KERN_DEBUG "delba from %s (%s) tid %d reason code %d\n",
  1295. print_mac(mac, mgmt->sa),
  1296. initiator ? "initiator" : "recipient", tid,
  1297. mgmt->u.action.u.delba.reason_code);
  1298. #endif /* CONFIG_MAC80211_HT_DEBUG */
  1299. if (initiator == WLAN_BACK_INITIATOR)
  1300. ieee80211_sta_stop_rx_ba_session(dev, sta->addr, tid,
  1301. WLAN_BACK_INITIATOR, 0);
  1302. else { /* WLAN_BACK_RECIPIENT */
  1303. spin_lock_bh(&sta->lock);
  1304. sta->ampdu_mlme.tid_state_tx[tid] =
  1305. HT_AGG_STATE_OPERATIONAL;
  1306. spin_unlock_bh(&sta->lock);
  1307. ieee80211_stop_tx_ba_session(&local->hw, sta->addr, tid,
  1308. WLAN_BACK_RECIPIENT);
  1309. }
  1310. rcu_read_unlock();
  1311. }
  1312. /*
  1313. * After sending add Block Ack request we activated a timer until
  1314. * add Block Ack response will arrive from the recipient.
  1315. * If this timer expires sta_addba_resp_timer_expired will be executed.
  1316. */
  1317. void sta_addba_resp_timer_expired(unsigned long data)
  1318. {
  1319. /* not an elegant detour, but there is no choice as the timer passes
  1320. * only one argument, and both sta_info and TID are needed, so init
  1321. * flow in sta_info_create gives the TID as data, while the timer_to_id
  1322. * array gives the sta through container_of */
  1323. u16 tid = *(int *)data;
  1324. struct sta_info *temp_sta = container_of((void *)data,
  1325. struct sta_info, timer_to_tid[tid]);
  1326. struct ieee80211_local *local = temp_sta->local;
  1327. struct ieee80211_hw *hw = &local->hw;
  1328. struct sta_info *sta;
  1329. u8 *state;
  1330. rcu_read_lock();
  1331. sta = sta_info_get(local, temp_sta->addr);
  1332. if (!sta) {
  1333. rcu_read_unlock();
  1334. return;
  1335. }
  1336. state = &sta->ampdu_mlme.tid_state_tx[tid];
  1337. /* check if the TID waits for addBA response */
  1338. spin_lock_bh(&sta->lock);
  1339. if (!(*state & HT_ADDBA_REQUESTED_MSK)) {
  1340. spin_unlock_bh(&sta->lock);
  1341. *state = HT_AGG_STATE_IDLE;
  1342. printk(KERN_DEBUG "timer expired on tid %d but we are not "
  1343. "expecting addBA response there", tid);
  1344. goto timer_expired_exit;
  1345. }
  1346. printk(KERN_DEBUG "addBA response timer expired on tid %d\n", tid);
  1347. /* go through the state check in stop_BA_session */
  1348. *state = HT_AGG_STATE_OPERATIONAL;
  1349. spin_unlock_bh(&sta->lock);
  1350. ieee80211_stop_tx_ba_session(hw, temp_sta->addr, tid,
  1351. WLAN_BACK_INITIATOR);
  1352. timer_expired_exit:
  1353. rcu_read_unlock();
  1354. }
  1355. /*
  1356. * After accepting the AddBA Request we activated a timer,
  1357. * resetting it after each frame that arrives from the originator.
  1358. * if this timer expires ieee80211_sta_stop_rx_ba_session will be executed.
  1359. */
  1360. static void sta_rx_agg_session_timer_expired(unsigned long data)
  1361. {
  1362. /* not an elegant detour, but there is no choice as the timer passes
  1363. * only one argument, and verious sta_info are needed here, so init
  1364. * flow in sta_info_create gives the TID as data, while the timer_to_id
  1365. * array gives the sta through container_of */
  1366. u8 *ptid = (u8 *)data;
  1367. u8 *timer_to_id = ptid - *ptid;
  1368. struct sta_info *sta = container_of(timer_to_id, struct sta_info,
  1369. timer_to_tid[0]);
  1370. printk(KERN_DEBUG "rx session timer expired on tid %d\n", (u16)*ptid);
  1371. ieee80211_sta_stop_rx_ba_session(sta->sdata->dev, sta->addr,
  1372. (u16)*ptid, WLAN_BACK_TIMER,
  1373. WLAN_REASON_QSTA_TIMEOUT);
  1374. }
  1375. void ieee80211_sta_tear_down_BA_sessions(struct net_device *dev, u8 *addr)
  1376. {
  1377. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1378. int i;
  1379. for (i = 0; i < STA_TID_NUM; i++) {
  1380. ieee80211_stop_tx_ba_session(&local->hw, addr, i,
  1381. WLAN_BACK_INITIATOR);
  1382. ieee80211_sta_stop_rx_ba_session(dev, addr, i,
  1383. WLAN_BACK_RECIPIENT,
  1384. WLAN_REASON_QSTA_LEAVE_QBSS);
  1385. }
  1386. }
  1387. static void ieee80211_rx_mgmt_auth(struct net_device *dev,
  1388. struct ieee80211_if_sta *ifsta,
  1389. struct ieee80211_mgmt *mgmt,
  1390. size_t len)
  1391. {
  1392. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  1393. u16 auth_alg, auth_transaction, status_code;
  1394. DECLARE_MAC_BUF(mac);
  1395. if (ifsta->state != IEEE80211_AUTHENTICATE &&
  1396. sdata->vif.type != IEEE80211_IF_TYPE_IBSS) {
  1397. printk(KERN_DEBUG "%s: authentication frame received from "
  1398. "%s, but not in authenticate state - ignored\n",
  1399. dev->name, print_mac(mac, mgmt->sa));
  1400. return;
  1401. }
  1402. if (len < 24 + 6) {
  1403. printk(KERN_DEBUG "%s: too short (%zd) authentication frame "
  1404. "received from %s - ignored\n",
  1405. dev->name, len, print_mac(mac, mgmt->sa));
  1406. return;
  1407. }
  1408. if (sdata->vif.type != IEEE80211_IF_TYPE_IBSS &&
  1409. memcmp(ifsta->bssid, mgmt->sa, ETH_ALEN) != 0) {
  1410. printk(KERN_DEBUG "%s: authentication frame received from "
  1411. "unknown AP (SA=%s BSSID=%s) - "
  1412. "ignored\n", dev->name, print_mac(mac, mgmt->sa),
  1413. print_mac(mac, mgmt->bssid));
  1414. return;
  1415. }
  1416. if (sdata->vif.type != IEEE80211_IF_TYPE_IBSS &&
  1417. memcmp(ifsta->bssid, mgmt->bssid, ETH_ALEN) != 0) {
  1418. printk(KERN_DEBUG "%s: authentication frame received from "
  1419. "unknown BSSID (SA=%s BSSID=%s) - "
  1420. "ignored\n", dev->name, print_mac(mac, mgmt->sa),
  1421. print_mac(mac, mgmt->bssid));
  1422. return;
  1423. }
  1424. auth_alg = le16_to_cpu(mgmt->u.auth.auth_alg);
  1425. auth_transaction = le16_to_cpu(mgmt->u.auth.auth_transaction);
  1426. status_code = le16_to_cpu(mgmt->u.auth.status_code);
  1427. printk(KERN_DEBUG "%s: RX authentication from %s (alg=%d "
  1428. "transaction=%d status=%d)\n",
  1429. dev->name, print_mac(mac, mgmt->sa), auth_alg,
  1430. auth_transaction, status_code);
  1431. if (sdata->vif.type == IEEE80211_IF_TYPE_IBSS) {
  1432. /* IEEE 802.11 standard does not require authentication in IBSS
  1433. * networks and most implementations do not seem to use it.
  1434. * However, try to reply to authentication attempts if someone
  1435. * has actually implemented this.
  1436. * TODO: Could implement shared key authentication. */
  1437. if (auth_alg != WLAN_AUTH_OPEN || auth_transaction != 1) {
  1438. printk(KERN_DEBUG "%s: unexpected IBSS authentication "
  1439. "frame (alg=%d transaction=%d)\n",
  1440. dev->name, auth_alg, auth_transaction);
  1441. return;
  1442. }
  1443. ieee80211_send_auth(dev, ifsta, 2, NULL, 0, 0);
  1444. }
  1445. if (auth_alg != ifsta->auth_alg ||
  1446. auth_transaction != ifsta->auth_transaction) {
  1447. printk(KERN_DEBUG "%s: unexpected authentication frame "
  1448. "(alg=%d transaction=%d)\n",
  1449. dev->name, auth_alg, auth_transaction);
  1450. return;
  1451. }
  1452. if (status_code != WLAN_STATUS_SUCCESS) {
  1453. printk(KERN_DEBUG "%s: AP denied authentication (auth_alg=%d "
  1454. "code=%d)\n", dev->name, ifsta->auth_alg, status_code);
  1455. if (status_code == WLAN_STATUS_NOT_SUPPORTED_AUTH_ALG) {
  1456. u8 algs[3];
  1457. const int num_algs = ARRAY_SIZE(algs);
  1458. int i, pos;
  1459. algs[0] = algs[1] = algs[2] = 0xff;
  1460. if (ifsta->auth_algs & IEEE80211_AUTH_ALG_OPEN)
  1461. algs[0] = WLAN_AUTH_OPEN;
  1462. if (ifsta->auth_algs & IEEE80211_AUTH_ALG_SHARED_KEY)
  1463. algs[1] = WLAN_AUTH_SHARED_KEY;
  1464. if (ifsta->auth_algs & IEEE80211_AUTH_ALG_LEAP)
  1465. algs[2] = WLAN_AUTH_LEAP;
  1466. if (ifsta->auth_alg == WLAN_AUTH_OPEN)
  1467. pos = 0;
  1468. else if (ifsta->auth_alg == WLAN_AUTH_SHARED_KEY)
  1469. pos = 1;
  1470. else
  1471. pos = 2;
  1472. for (i = 0; i < num_algs; i++) {
  1473. pos++;
  1474. if (pos >= num_algs)
  1475. pos = 0;
  1476. if (algs[pos] == ifsta->auth_alg ||
  1477. algs[pos] == 0xff)
  1478. continue;
  1479. if (algs[pos] == WLAN_AUTH_SHARED_KEY &&
  1480. !ieee80211_sta_wep_configured(dev))
  1481. continue;
  1482. ifsta->auth_alg = algs[pos];
  1483. printk(KERN_DEBUG "%s: set auth_alg=%d for "
  1484. "next try\n",
  1485. dev->name, ifsta->auth_alg);
  1486. break;
  1487. }
  1488. }
  1489. return;
  1490. }
  1491. switch (ifsta->auth_alg) {
  1492. case WLAN_AUTH_OPEN:
  1493. case WLAN_AUTH_LEAP:
  1494. ieee80211_auth_completed(dev, ifsta);
  1495. break;
  1496. case WLAN_AUTH_SHARED_KEY:
  1497. if (ifsta->auth_transaction == 4)
  1498. ieee80211_auth_completed(dev, ifsta);
  1499. else
  1500. ieee80211_auth_challenge(dev, ifsta, mgmt, len);
  1501. break;
  1502. }
  1503. }
  1504. static void ieee80211_rx_mgmt_deauth(struct net_device *dev,
  1505. struct ieee80211_if_sta *ifsta,
  1506. struct ieee80211_mgmt *mgmt,
  1507. size_t len)
  1508. {
  1509. u16 reason_code;
  1510. DECLARE_MAC_BUF(mac);
  1511. if (len < 24 + 2) {
  1512. printk(KERN_DEBUG "%s: too short (%zd) deauthentication frame "
  1513. "received from %s - ignored\n",
  1514. dev->name, len, print_mac(mac, mgmt->sa));
  1515. return;
  1516. }
  1517. if (memcmp(ifsta->bssid, mgmt->sa, ETH_ALEN) != 0) {
  1518. printk(KERN_DEBUG "%s: deauthentication frame received from "
  1519. "unknown AP (SA=%s BSSID=%s) - "
  1520. "ignored\n", dev->name, print_mac(mac, mgmt->sa),
  1521. print_mac(mac, mgmt->bssid));
  1522. return;
  1523. }
  1524. reason_code = le16_to_cpu(mgmt->u.deauth.reason_code);
  1525. printk(KERN_DEBUG "%s: RX deauthentication from %s"
  1526. " (reason=%d)\n",
  1527. dev->name, print_mac(mac, mgmt->sa), reason_code);
  1528. if (ifsta->flags & IEEE80211_STA_AUTHENTICATED)
  1529. printk(KERN_DEBUG "%s: deauthenticated\n", dev->name);
  1530. if (ifsta->state == IEEE80211_AUTHENTICATE ||
  1531. ifsta->state == IEEE80211_ASSOCIATE ||
  1532. ifsta->state == IEEE80211_ASSOCIATED) {
  1533. ifsta->state = IEEE80211_AUTHENTICATE;
  1534. mod_timer(&ifsta->timer, jiffies +
  1535. IEEE80211_RETRY_AUTH_INTERVAL);
  1536. }
  1537. ieee80211_set_disassoc(dev, ifsta, 1);
  1538. ifsta->flags &= ~IEEE80211_STA_AUTHENTICATED;
  1539. }
  1540. static void ieee80211_rx_mgmt_disassoc(struct net_device *dev,
  1541. struct ieee80211_if_sta *ifsta,
  1542. struct ieee80211_mgmt *mgmt,
  1543. size_t len)
  1544. {
  1545. u16 reason_code;
  1546. DECLARE_MAC_BUF(mac);
  1547. if (len < 24 + 2) {
  1548. printk(KERN_DEBUG "%s: too short (%zd) disassociation frame "
  1549. "received from %s - ignored\n",
  1550. dev->name, len, print_mac(mac, mgmt->sa));
  1551. return;
  1552. }
  1553. if (memcmp(ifsta->bssid, mgmt->sa, ETH_ALEN) != 0) {
  1554. printk(KERN_DEBUG "%s: disassociation frame received from "
  1555. "unknown AP (SA=%s BSSID=%s) - "
  1556. "ignored\n", dev->name, print_mac(mac, mgmt->sa),
  1557. print_mac(mac, mgmt->bssid));
  1558. return;
  1559. }
  1560. reason_code = le16_to_cpu(mgmt->u.disassoc.reason_code);
  1561. printk(KERN_DEBUG "%s: RX disassociation from %s"
  1562. " (reason=%d)\n",
  1563. dev->name, print_mac(mac, mgmt->sa), reason_code);
  1564. if (ifsta->flags & IEEE80211_STA_ASSOCIATED)
  1565. printk(KERN_DEBUG "%s: disassociated\n", dev->name);
  1566. if (ifsta->state == IEEE80211_ASSOCIATED) {
  1567. ifsta->state = IEEE80211_ASSOCIATE;
  1568. mod_timer(&ifsta->timer, jiffies +
  1569. IEEE80211_RETRY_AUTH_INTERVAL);
  1570. }
  1571. ieee80211_set_disassoc(dev, ifsta, 0);
  1572. }
  1573. static void ieee80211_rx_mgmt_assoc_resp(struct ieee80211_sub_if_data *sdata,
  1574. struct ieee80211_if_sta *ifsta,
  1575. struct ieee80211_mgmt *mgmt,
  1576. size_t len,
  1577. int reassoc)
  1578. {
  1579. struct ieee80211_local *local = sdata->local;
  1580. struct net_device *dev = sdata->dev;
  1581. struct ieee80211_supported_band *sband;
  1582. struct sta_info *sta;
  1583. u64 rates, basic_rates;
  1584. u16 capab_info, status_code, aid;
  1585. struct ieee802_11_elems elems;
  1586. struct ieee80211_bss_conf *bss_conf = &sdata->bss_conf;
  1587. u8 *pos;
  1588. int i, j;
  1589. DECLARE_MAC_BUF(mac);
  1590. bool have_higher_than_11mbit = false;
  1591. /* AssocResp and ReassocResp have identical structure, so process both
  1592. * of them in this function. */
  1593. if (ifsta->state != IEEE80211_ASSOCIATE) {
  1594. printk(KERN_DEBUG "%s: association frame received from "
  1595. "%s, but not in associate state - ignored\n",
  1596. dev->name, print_mac(mac, mgmt->sa));
  1597. return;
  1598. }
  1599. if (len < 24 + 6) {
  1600. printk(KERN_DEBUG "%s: too short (%zd) association frame "
  1601. "received from %s - ignored\n",
  1602. dev->name, len, print_mac(mac, mgmt->sa));
  1603. return;
  1604. }
  1605. if (memcmp(ifsta->bssid, mgmt->sa, ETH_ALEN) != 0) {
  1606. printk(KERN_DEBUG "%s: association frame received from "
  1607. "unknown AP (SA=%s BSSID=%s) - "
  1608. "ignored\n", dev->name, print_mac(mac, mgmt->sa),
  1609. print_mac(mac, mgmt->bssid));
  1610. return;
  1611. }
  1612. capab_info = le16_to_cpu(mgmt->u.assoc_resp.capab_info);
  1613. status_code = le16_to_cpu(mgmt->u.assoc_resp.status_code);
  1614. aid = le16_to_cpu(mgmt->u.assoc_resp.aid);
  1615. printk(KERN_DEBUG "%s: RX %sssocResp from %s (capab=0x%x "
  1616. "status=%d aid=%d)\n",
  1617. dev->name, reassoc ? "Rea" : "A", print_mac(mac, mgmt->sa),
  1618. capab_info, status_code, (u16)(aid & ~(BIT(15) | BIT(14))));
  1619. if (status_code != WLAN_STATUS_SUCCESS) {
  1620. printk(KERN_DEBUG "%s: AP denied association (code=%d)\n",
  1621. dev->name, status_code);
  1622. /* if this was a reassociation, ensure we try a "full"
  1623. * association next time. This works around some broken APs
  1624. * which do not correctly reject reassociation requests. */
  1625. ifsta->flags &= ~IEEE80211_STA_PREV_BSSID_SET;
  1626. return;
  1627. }
  1628. if ((aid & (BIT(15) | BIT(14))) != (BIT(15) | BIT(14)))
  1629. printk(KERN_DEBUG "%s: invalid aid value %d; bits 15:14 not "
  1630. "set\n", dev->name, aid);
  1631. aid &= ~(BIT(15) | BIT(14));
  1632. pos = mgmt->u.assoc_resp.variable;
  1633. ieee802_11_parse_elems(pos, len - (pos - (u8 *) mgmt), &elems);
  1634. if (!elems.supp_rates) {
  1635. printk(KERN_DEBUG "%s: no SuppRates element in AssocResp\n",
  1636. dev->name);
  1637. return;
  1638. }
  1639. printk(KERN_DEBUG "%s: associated\n", dev->name);
  1640. ifsta->aid = aid;
  1641. ifsta->ap_capab = capab_info;
  1642. kfree(ifsta->assocresp_ies);
  1643. ifsta->assocresp_ies_len = len - (pos - (u8 *) mgmt);
  1644. ifsta->assocresp_ies = kmalloc(ifsta->assocresp_ies_len, GFP_KERNEL);
  1645. if (ifsta->assocresp_ies)
  1646. memcpy(ifsta->assocresp_ies, pos, ifsta->assocresp_ies_len);
  1647. rcu_read_lock();
  1648. /* Add STA entry for the AP */
  1649. sta = sta_info_get(local, ifsta->bssid);
  1650. if (!sta) {
  1651. struct ieee80211_sta_bss *bss;
  1652. int err;
  1653. sta = sta_info_alloc(sdata, ifsta->bssid, GFP_ATOMIC);
  1654. if (!sta) {
  1655. printk(KERN_DEBUG "%s: failed to alloc STA entry for"
  1656. " the AP\n", dev->name);
  1657. rcu_read_unlock();
  1658. return;
  1659. }
  1660. bss = ieee80211_rx_bss_get(dev, ifsta->bssid,
  1661. local->hw.conf.channel->center_freq,
  1662. ifsta->ssid, ifsta->ssid_len);
  1663. if (bss) {
  1664. sta->last_rssi = bss->rssi;
  1665. sta->last_signal = bss->signal;
  1666. sta->last_noise = bss->noise;
  1667. ieee80211_rx_bss_put(dev, bss);
  1668. }
  1669. err = sta_info_insert(sta);
  1670. if (err) {
  1671. printk(KERN_DEBUG "%s: failed to insert STA entry for"
  1672. " the AP (error %d)\n", dev->name, err);
  1673. rcu_read_unlock();
  1674. return;
  1675. }
  1676. }
  1677. /*
  1678. * FIXME: Do we really need to update the sta_info's information here?
  1679. * We already know about the AP (we found it in our list) so it
  1680. * should already be filled with the right info, no?
  1681. * As is stands, all this is racy because typically we assume
  1682. * the information that is filled in here (except flags) doesn't
  1683. * change while a STA structure is alive. As such, it should move
  1684. * to between the sta_info_alloc() and sta_info_insert() above.
  1685. */
  1686. set_sta_flags(sta, WLAN_STA_AUTH | WLAN_STA_ASSOC | WLAN_STA_ASSOC_AP |
  1687. WLAN_STA_AUTHORIZED);
  1688. rates = 0;
  1689. basic_rates = 0;
  1690. sband = local->hw.wiphy->bands[local->hw.conf.channel->band];
  1691. for (i = 0; i < elems.supp_rates_len; i++) {
  1692. int rate = (elems.supp_rates[i] & 0x7f) * 5;
  1693. if (rate > 110)
  1694. have_higher_than_11mbit = true;
  1695. for (j = 0; j < sband->n_bitrates; j++) {
  1696. if (sband->bitrates[j].bitrate == rate)
  1697. rates |= BIT(j);
  1698. if (elems.supp_rates[i] & 0x80)
  1699. basic_rates |= BIT(j);
  1700. }
  1701. }
  1702. for (i = 0; i < elems.ext_supp_rates_len; i++) {
  1703. int rate = (elems.ext_supp_rates[i] & 0x7f) * 5;
  1704. if (rate > 110)
  1705. have_higher_than_11mbit = true;
  1706. for (j = 0; j < sband->n_bitrates; j++) {
  1707. if (sband->bitrates[j].bitrate == rate)
  1708. rates |= BIT(j);
  1709. if (elems.ext_supp_rates[i] & 0x80)
  1710. basic_rates |= BIT(j);
  1711. }
  1712. }
  1713. sta->supp_rates[local->hw.conf.channel->band] = rates;
  1714. sdata->basic_rates = basic_rates;
  1715. /* cf. IEEE 802.11 9.2.12 */
  1716. if (local->hw.conf.channel->band == IEEE80211_BAND_2GHZ &&
  1717. have_higher_than_11mbit)
  1718. sdata->flags |= IEEE80211_SDATA_OPERATING_GMODE;
  1719. else
  1720. sdata->flags &= ~IEEE80211_SDATA_OPERATING_GMODE;
  1721. if (elems.ht_cap_elem && elems.ht_info_elem && elems.wmm_param &&
  1722. (ifsta->flags & IEEE80211_STA_WMM_ENABLED)) {
  1723. struct ieee80211_ht_bss_info bss_info;
  1724. ieee80211_ht_cap_ie_to_ht_info(
  1725. (struct ieee80211_ht_cap *)
  1726. elems.ht_cap_elem, &sta->ht_info);
  1727. ieee80211_ht_addt_info_ie_to_ht_bss_info(
  1728. (struct ieee80211_ht_addt_info *)
  1729. elems.ht_info_elem, &bss_info);
  1730. ieee80211_handle_ht(local, 1, &sta->ht_info, &bss_info);
  1731. }
  1732. rate_control_rate_init(sta, local);
  1733. if (elems.wmm_param) {
  1734. set_sta_flags(sta, WLAN_STA_WME);
  1735. rcu_read_unlock();
  1736. ieee80211_sta_wmm_params(dev, ifsta, elems.wmm_param,
  1737. elems.wmm_param_len);
  1738. } else
  1739. rcu_read_unlock();
  1740. /* set AID and assoc capability,
  1741. * ieee80211_set_associated() will tell the driver */
  1742. bss_conf->aid = aid;
  1743. bss_conf->assoc_capability = capab_info;
  1744. ieee80211_set_associated(dev, ifsta, 1);
  1745. ieee80211_associated(dev, ifsta);
  1746. }
  1747. /* Caller must hold local->sta_bss_lock */
  1748. static void __ieee80211_rx_bss_hash_add(struct net_device *dev,
  1749. struct ieee80211_sta_bss *bss)
  1750. {
  1751. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1752. u8 hash_idx;
  1753. if (bss_mesh_cfg(bss))
  1754. hash_idx = mesh_id_hash(bss_mesh_id(bss),
  1755. bss_mesh_id_len(bss));
  1756. else
  1757. hash_idx = STA_HASH(bss->bssid);
  1758. bss->hnext = local->sta_bss_hash[hash_idx];
  1759. local->sta_bss_hash[hash_idx] = bss;
  1760. }
  1761. /* Caller must hold local->sta_bss_lock */
  1762. static void __ieee80211_rx_bss_hash_del(struct net_device *dev,
  1763. struct ieee80211_sta_bss *bss)
  1764. {
  1765. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1766. struct ieee80211_sta_bss *b, *prev = NULL;
  1767. b = local->sta_bss_hash[STA_HASH(bss->bssid)];
  1768. while (b) {
  1769. if (b == bss) {
  1770. if (!prev)
  1771. local->sta_bss_hash[STA_HASH(bss->bssid)] =
  1772. bss->hnext;
  1773. else
  1774. prev->hnext = bss->hnext;
  1775. break;
  1776. }
  1777. prev = b;
  1778. b = b->hnext;
  1779. }
  1780. }
  1781. static struct ieee80211_sta_bss *
  1782. ieee80211_rx_bss_add(struct net_device *dev, u8 *bssid, int freq,
  1783. u8 *ssid, u8 ssid_len)
  1784. {
  1785. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1786. struct ieee80211_sta_bss *bss;
  1787. bss = kzalloc(sizeof(*bss), GFP_ATOMIC);
  1788. if (!bss)
  1789. return NULL;
  1790. atomic_inc(&bss->users);
  1791. atomic_inc(&bss->users);
  1792. memcpy(bss->bssid, bssid, ETH_ALEN);
  1793. bss->freq = freq;
  1794. if (ssid && ssid_len <= IEEE80211_MAX_SSID_LEN) {
  1795. memcpy(bss->ssid, ssid, ssid_len);
  1796. bss->ssid_len = ssid_len;
  1797. }
  1798. spin_lock_bh(&local->sta_bss_lock);
  1799. /* TODO: order by RSSI? */
  1800. list_add_tail(&bss->list, &local->sta_bss_list);
  1801. __ieee80211_rx_bss_hash_add(dev, bss);
  1802. spin_unlock_bh(&local->sta_bss_lock);
  1803. return bss;
  1804. }
  1805. static struct ieee80211_sta_bss *
  1806. ieee80211_rx_bss_get(struct net_device *dev, u8 *bssid, int freq,
  1807. u8 *ssid, u8 ssid_len)
  1808. {
  1809. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1810. struct ieee80211_sta_bss *bss;
  1811. spin_lock_bh(&local->sta_bss_lock);
  1812. bss = local->sta_bss_hash[STA_HASH(bssid)];
  1813. while (bss) {
  1814. if (!bss_mesh_cfg(bss) &&
  1815. !memcmp(bss->bssid, bssid, ETH_ALEN) &&
  1816. bss->freq == freq &&
  1817. bss->ssid_len == ssid_len &&
  1818. (ssid_len == 0 || !memcmp(bss->ssid, ssid, ssid_len))) {
  1819. atomic_inc(&bss->users);
  1820. break;
  1821. }
  1822. bss = bss->hnext;
  1823. }
  1824. spin_unlock_bh(&local->sta_bss_lock);
  1825. return bss;
  1826. }
  1827. #ifdef CONFIG_MAC80211_MESH
  1828. static struct ieee80211_sta_bss *
  1829. ieee80211_rx_mesh_bss_get(struct net_device *dev, u8 *mesh_id, int mesh_id_len,
  1830. u8 *mesh_cfg, int freq)
  1831. {
  1832. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1833. struct ieee80211_sta_bss *bss;
  1834. spin_lock_bh(&local->sta_bss_lock);
  1835. bss = local->sta_bss_hash[mesh_id_hash(mesh_id, mesh_id_len)];
  1836. while (bss) {
  1837. if (bss_mesh_cfg(bss) &&
  1838. !memcmp(bss_mesh_cfg(bss), mesh_cfg, MESH_CFG_CMP_LEN) &&
  1839. bss->freq == freq &&
  1840. mesh_id_len == bss->mesh_id_len &&
  1841. (mesh_id_len == 0 || !memcmp(bss->mesh_id, mesh_id,
  1842. mesh_id_len))) {
  1843. atomic_inc(&bss->users);
  1844. break;
  1845. }
  1846. bss = bss->hnext;
  1847. }
  1848. spin_unlock_bh(&local->sta_bss_lock);
  1849. return bss;
  1850. }
  1851. static struct ieee80211_sta_bss *
  1852. ieee80211_rx_mesh_bss_add(struct net_device *dev, u8 *mesh_id, int mesh_id_len,
  1853. u8 *mesh_cfg, int mesh_config_len, int freq)
  1854. {
  1855. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1856. struct ieee80211_sta_bss *bss;
  1857. if (mesh_config_len != MESH_CFG_LEN)
  1858. return NULL;
  1859. bss = kzalloc(sizeof(*bss), GFP_ATOMIC);
  1860. if (!bss)
  1861. return NULL;
  1862. bss->mesh_cfg = kmalloc(MESH_CFG_CMP_LEN, GFP_ATOMIC);
  1863. if (!bss->mesh_cfg) {
  1864. kfree(bss);
  1865. return NULL;
  1866. }
  1867. if (mesh_id_len && mesh_id_len <= IEEE80211_MAX_MESH_ID_LEN) {
  1868. bss->mesh_id = kmalloc(mesh_id_len, GFP_ATOMIC);
  1869. if (!bss->mesh_id) {
  1870. kfree(bss->mesh_cfg);
  1871. kfree(bss);
  1872. return NULL;
  1873. }
  1874. memcpy(bss->mesh_id, mesh_id, mesh_id_len);
  1875. }
  1876. atomic_inc(&bss->users);
  1877. atomic_inc(&bss->users);
  1878. memcpy(bss->mesh_cfg, mesh_cfg, MESH_CFG_CMP_LEN);
  1879. bss->mesh_id_len = mesh_id_len;
  1880. bss->freq = freq;
  1881. spin_lock_bh(&local->sta_bss_lock);
  1882. /* TODO: order by RSSI? */
  1883. list_add_tail(&bss->list, &local->sta_bss_list);
  1884. __ieee80211_rx_bss_hash_add(dev, bss);
  1885. spin_unlock_bh(&local->sta_bss_lock);
  1886. return bss;
  1887. }
  1888. #endif
  1889. static void ieee80211_rx_bss_free(struct ieee80211_sta_bss *bss)
  1890. {
  1891. kfree(bss->wpa_ie);
  1892. kfree(bss->rsn_ie);
  1893. kfree(bss->wmm_ie);
  1894. kfree(bss->ht_ie);
  1895. kfree(bss_mesh_id(bss));
  1896. kfree(bss_mesh_cfg(bss));
  1897. kfree(bss);
  1898. }
  1899. static void ieee80211_rx_bss_put(struct net_device *dev,
  1900. struct ieee80211_sta_bss *bss)
  1901. {
  1902. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1903. local_bh_disable();
  1904. if (!atomic_dec_and_lock(&bss->users, &local->sta_bss_lock)) {
  1905. local_bh_enable();
  1906. return;
  1907. }
  1908. __ieee80211_rx_bss_hash_del(dev, bss);
  1909. list_del(&bss->list);
  1910. spin_unlock_bh(&local->sta_bss_lock);
  1911. ieee80211_rx_bss_free(bss);
  1912. }
  1913. void ieee80211_rx_bss_list_init(struct net_device *dev)
  1914. {
  1915. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1916. spin_lock_init(&local->sta_bss_lock);
  1917. INIT_LIST_HEAD(&local->sta_bss_list);
  1918. }
  1919. void ieee80211_rx_bss_list_deinit(struct net_device *dev)
  1920. {
  1921. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1922. struct ieee80211_sta_bss *bss, *tmp;
  1923. list_for_each_entry_safe(bss, tmp, &local->sta_bss_list, list)
  1924. ieee80211_rx_bss_put(dev, bss);
  1925. }
  1926. static int ieee80211_sta_join_ibss(struct net_device *dev,
  1927. struct ieee80211_if_sta *ifsta,
  1928. struct ieee80211_sta_bss *bss)
  1929. {
  1930. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  1931. int res, rates, i, j;
  1932. struct sk_buff *skb;
  1933. struct ieee80211_mgmt *mgmt;
  1934. struct ieee80211_tx_control control;
  1935. struct rate_selection ratesel;
  1936. u8 *pos;
  1937. struct ieee80211_sub_if_data *sdata;
  1938. struct ieee80211_supported_band *sband;
  1939. sband = local->hw.wiphy->bands[local->hw.conf.channel->band];
  1940. sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  1941. /* Remove possible STA entries from other IBSS networks. */
  1942. sta_info_flush_delayed(sdata);
  1943. if (local->ops->reset_tsf) {
  1944. /* Reset own TSF to allow time synchronization work. */
  1945. local->ops->reset_tsf(local_to_hw(local));
  1946. }
  1947. memcpy(ifsta->bssid, bss->bssid, ETH_ALEN);
  1948. res = ieee80211_if_config(dev);
  1949. if (res)
  1950. return res;
  1951. local->hw.conf.beacon_int = bss->beacon_int >= 10 ? bss->beacon_int : 10;
  1952. sdata->drop_unencrypted = bss->capability &
  1953. WLAN_CAPABILITY_PRIVACY ? 1 : 0;
  1954. res = ieee80211_set_freq(local, bss->freq);
  1955. if (local->oper_channel->flags & IEEE80211_CHAN_NO_IBSS) {
  1956. printk(KERN_DEBUG "%s: IBSS not allowed on frequency "
  1957. "%d MHz\n", dev->name, local->oper_channel->center_freq);
  1958. return -1;
  1959. }
  1960. /* Set beacon template */
  1961. skb = dev_alloc_skb(local->hw.extra_tx_headroom + 400);
  1962. do {
  1963. if (!skb)
  1964. break;
  1965. skb_reserve(skb, local->hw.extra_tx_headroom);
  1966. mgmt = (struct ieee80211_mgmt *)
  1967. skb_put(skb, 24 + sizeof(mgmt->u.beacon));
  1968. memset(mgmt, 0, 24 + sizeof(mgmt->u.beacon));
  1969. mgmt->frame_control = IEEE80211_FC(IEEE80211_FTYPE_MGMT,
  1970. IEEE80211_STYPE_BEACON);
  1971. memset(mgmt->da, 0xff, ETH_ALEN);
  1972. memcpy(mgmt->sa, dev->dev_addr, ETH_ALEN);
  1973. memcpy(mgmt->bssid, ifsta->bssid, ETH_ALEN);
  1974. mgmt->u.beacon.beacon_int =
  1975. cpu_to_le16(local->hw.conf.beacon_int);
  1976. mgmt->u.beacon.capab_info = cpu_to_le16(bss->capability);
  1977. pos = skb_put(skb, 2 + ifsta->ssid_len);
  1978. *pos++ = WLAN_EID_SSID;
  1979. *pos++ = ifsta->ssid_len;
  1980. memcpy(pos, ifsta->ssid, ifsta->ssid_len);
  1981. rates = bss->supp_rates_len;
  1982. if (rates > 8)
  1983. rates = 8;
  1984. pos = skb_put(skb, 2 + rates);
  1985. *pos++ = WLAN_EID_SUPP_RATES;
  1986. *pos++ = rates;
  1987. memcpy(pos, bss->supp_rates, rates);
  1988. if (bss->band == IEEE80211_BAND_2GHZ) {
  1989. pos = skb_put(skb, 2 + 1);
  1990. *pos++ = WLAN_EID_DS_PARAMS;
  1991. *pos++ = 1;
  1992. *pos++ = ieee80211_frequency_to_channel(bss->freq);
  1993. }
  1994. pos = skb_put(skb, 2 + 2);
  1995. *pos++ = WLAN_EID_IBSS_PARAMS;
  1996. *pos++ = 2;
  1997. /* FIX: set ATIM window based on scan results */
  1998. *pos++ = 0;
  1999. *pos++ = 0;
  2000. if (bss->supp_rates_len > 8) {
  2001. rates = bss->supp_rates_len - 8;
  2002. pos = skb_put(skb, 2 + rates);
  2003. *pos++ = WLAN_EID_EXT_SUPP_RATES;
  2004. *pos++ = rates;
  2005. memcpy(pos, &bss->supp_rates[8], rates);
  2006. }
  2007. memset(&control, 0, sizeof(control));
  2008. rate_control_get_rate(dev, sband, skb, &ratesel);
  2009. if (!ratesel.rate) {
  2010. printk(KERN_DEBUG "%s: Failed to determine TX rate "
  2011. "for IBSS beacon\n", dev->name);
  2012. break;
  2013. }
  2014. control.vif = &sdata->vif;
  2015. control.tx_rate = ratesel.rate;
  2016. if (sdata->bss_conf.use_short_preamble &&
  2017. ratesel.rate->flags & IEEE80211_RATE_SHORT_PREAMBLE)
  2018. control.flags |= IEEE80211_TXCTL_SHORT_PREAMBLE;
  2019. control.antenna_sel_tx = local->hw.conf.antenna_sel_tx;
  2020. control.flags |= IEEE80211_TXCTL_NO_ACK;
  2021. control.retry_limit = 1;
  2022. ifsta->probe_resp = skb_copy(skb, GFP_ATOMIC);
  2023. if (ifsta->probe_resp) {
  2024. mgmt = (struct ieee80211_mgmt *)
  2025. ifsta->probe_resp->data;
  2026. mgmt->frame_control =
  2027. IEEE80211_FC(IEEE80211_FTYPE_MGMT,
  2028. IEEE80211_STYPE_PROBE_RESP);
  2029. } else {
  2030. printk(KERN_DEBUG "%s: Could not allocate ProbeResp "
  2031. "template for IBSS\n", dev->name);
  2032. }
  2033. if (local->ops->beacon_update &&
  2034. local->ops->beacon_update(local_to_hw(local),
  2035. skb, &control) == 0) {
  2036. printk(KERN_DEBUG "%s: Configured IBSS beacon "
  2037. "template\n", dev->name);
  2038. skb = NULL;
  2039. }
  2040. rates = 0;
  2041. sband = local->hw.wiphy->bands[local->hw.conf.channel->band];
  2042. for (i = 0; i < bss->supp_rates_len; i++) {
  2043. int bitrate = (bss->supp_rates[i] & 0x7f) * 5;
  2044. for (j = 0; j < sband->n_bitrates; j++)
  2045. if (sband->bitrates[j].bitrate == bitrate)
  2046. rates |= BIT(j);
  2047. }
  2048. ifsta->supp_rates_bits[local->hw.conf.channel->band] = rates;
  2049. ieee80211_sta_def_wmm_params(dev, bss, 1);
  2050. } while (0);
  2051. if (skb) {
  2052. printk(KERN_DEBUG "%s: Failed to configure IBSS beacon "
  2053. "template\n", dev->name);
  2054. dev_kfree_skb(skb);
  2055. }
  2056. ifsta->state = IEEE80211_IBSS_JOINED;
  2057. mod_timer(&ifsta->timer, jiffies + IEEE80211_IBSS_MERGE_INTERVAL);
  2058. ieee80211_rx_bss_put(dev, bss);
  2059. return res;
  2060. }
  2061. u64 ieee80211_sta_get_rates(struct ieee80211_local *local,
  2062. struct ieee802_11_elems *elems,
  2063. enum ieee80211_band band)
  2064. {
  2065. struct ieee80211_supported_band *sband;
  2066. struct ieee80211_rate *bitrates;
  2067. size_t num_rates;
  2068. u64 supp_rates;
  2069. int i, j;
  2070. sband = local->hw.wiphy->bands[band];
  2071. if (!sband) {
  2072. WARN_ON(1);
  2073. sband = local->hw.wiphy->bands[local->hw.conf.channel->band];
  2074. }
  2075. bitrates = sband->bitrates;
  2076. num_rates = sband->n_bitrates;
  2077. supp_rates = 0;
  2078. for (i = 0; i < elems->supp_rates_len +
  2079. elems->ext_supp_rates_len; i++) {
  2080. u8 rate = 0;
  2081. int own_rate;
  2082. if (i < elems->supp_rates_len)
  2083. rate = elems->supp_rates[i];
  2084. else if (elems->ext_supp_rates)
  2085. rate = elems->ext_supp_rates
  2086. [i - elems->supp_rates_len];
  2087. own_rate = 5 * (rate & 0x7f);
  2088. for (j = 0; j < num_rates; j++)
  2089. if (bitrates[j].bitrate == own_rate)
  2090. supp_rates |= BIT(j);
  2091. }
  2092. return supp_rates;
  2093. }
  2094. static void ieee80211_rx_bss_info(struct net_device *dev,
  2095. struct ieee80211_mgmt *mgmt,
  2096. size_t len,
  2097. struct ieee80211_rx_status *rx_status,
  2098. int beacon)
  2099. {
  2100. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  2101. struct ieee802_11_elems elems;
  2102. size_t baselen;
  2103. int freq, clen;
  2104. struct ieee80211_sta_bss *bss;
  2105. struct sta_info *sta;
  2106. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2107. u64 beacon_timestamp, rx_timestamp;
  2108. struct ieee80211_channel *channel;
  2109. DECLARE_MAC_BUF(mac);
  2110. DECLARE_MAC_BUF(mac2);
  2111. if (!beacon && memcmp(mgmt->da, dev->dev_addr, ETH_ALEN))
  2112. return; /* ignore ProbeResp to foreign address */
  2113. #if 0
  2114. printk(KERN_DEBUG "%s: RX %s from %s to %s\n",
  2115. dev->name, beacon ? "Beacon" : "Probe Response",
  2116. print_mac(mac, mgmt->sa), print_mac(mac2, mgmt->da));
  2117. #endif
  2118. baselen = (u8 *) mgmt->u.beacon.variable - (u8 *) mgmt;
  2119. if (baselen > len)
  2120. return;
  2121. beacon_timestamp = le64_to_cpu(mgmt->u.beacon.timestamp);
  2122. ieee802_11_parse_elems(mgmt->u.beacon.variable, len - baselen, &elems);
  2123. if (ieee80211_vif_is_mesh(&sdata->vif) && elems.mesh_id &&
  2124. elems.mesh_config && mesh_matches_local(&elems, dev)) {
  2125. u64 rates = ieee80211_sta_get_rates(local, &elems,
  2126. rx_status->band);
  2127. mesh_neighbour_update(mgmt->sa, rates, dev,
  2128. mesh_peer_accepts_plinks(&elems, dev));
  2129. }
  2130. rcu_read_lock();
  2131. if (sdata->vif.type == IEEE80211_IF_TYPE_IBSS && elems.supp_rates &&
  2132. memcmp(mgmt->bssid, sdata->u.sta.bssid, ETH_ALEN) == 0 &&
  2133. (sta = sta_info_get(local, mgmt->sa))) {
  2134. u64 prev_rates;
  2135. u64 supp_rates = ieee80211_sta_get_rates(local, &elems,
  2136. rx_status->band);
  2137. prev_rates = sta->supp_rates[rx_status->band];
  2138. sta->supp_rates[rx_status->band] &= supp_rates;
  2139. if (sta->supp_rates[rx_status->band] == 0) {
  2140. /* No matching rates - this should not really happen.
  2141. * Make sure that at least one rate is marked
  2142. * supported to avoid issues with TX rate ctrl. */
  2143. sta->supp_rates[rx_status->band] =
  2144. sdata->u.sta.supp_rates_bits[rx_status->band];
  2145. }
  2146. if (sta->supp_rates[rx_status->band] != prev_rates) {
  2147. printk(KERN_DEBUG "%s: updated supp_rates set for "
  2148. "%s based on beacon info (0x%llx & 0x%llx -> "
  2149. "0x%llx)\n",
  2150. dev->name, print_mac(mac, sta->addr),
  2151. (unsigned long long) prev_rates,
  2152. (unsigned long long) supp_rates,
  2153. (unsigned long long) sta->supp_rates[rx_status->band]);
  2154. }
  2155. }
  2156. rcu_read_unlock();
  2157. if (elems.ds_params && elems.ds_params_len == 1)
  2158. freq = ieee80211_channel_to_frequency(elems.ds_params[0]);
  2159. else
  2160. freq = rx_status->freq;
  2161. channel = ieee80211_get_channel(local->hw.wiphy, freq);
  2162. if (!channel || channel->flags & IEEE80211_CHAN_DISABLED)
  2163. return;
  2164. #ifdef CONFIG_MAC80211_MESH
  2165. if (elems.mesh_config)
  2166. bss = ieee80211_rx_mesh_bss_get(dev, elems.mesh_id,
  2167. elems.mesh_id_len, elems.mesh_config, freq);
  2168. else
  2169. #endif
  2170. bss = ieee80211_rx_bss_get(dev, mgmt->bssid, freq,
  2171. elems.ssid, elems.ssid_len);
  2172. if (!bss) {
  2173. #ifdef CONFIG_MAC80211_MESH
  2174. if (elems.mesh_config)
  2175. bss = ieee80211_rx_mesh_bss_add(dev, elems.mesh_id,
  2176. elems.mesh_id_len, elems.mesh_config,
  2177. elems.mesh_config_len, freq);
  2178. else
  2179. #endif
  2180. bss = ieee80211_rx_bss_add(dev, mgmt->bssid, freq,
  2181. elems.ssid, elems.ssid_len);
  2182. if (!bss)
  2183. return;
  2184. } else {
  2185. #if 0
  2186. /* TODO: order by RSSI? */
  2187. spin_lock_bh(&local->sta_bss_lock);
  2188. list_move_tail(&bss->list, &local->sta_bss_list);
  2189. spin_unlock_bh(&local->sta_bss_lock);
  2190. #endif
  2191. }
  2192. /* save the ERP value so that it is available at association time */
  2193. if (elems.erp_info && elems.erp_info_len >= 1) {
  2194. bss->erp_value = elems.erp_info[0];
  2195. bss->has_erp_value = 1;
  2196. }
  2197. if (elems.ht_cap_elem &&
  2198. (!bss->ht_ie || bss->ht_ie_len != elems.ht_cap_elem_len ||
  2199. memcmp(bss->ht_ie, elems.ht_cap_elem, elems.ht_cap_elem_len))) {
  2200. kfree(bss->ht_ie);
  2201. bss->ht_ie = kmalloc(elems.ht_cap_elem_len + 2, GFP_ATOMIC);
  2202. if (bss->ht_ie) {
  2203. memcpy(bss->ht_ie, elems.ht_cap_elem - 2,
  2204. elems.ht_cap_elem_len + 2);
  2205. bss->ht_ie_len = elems.ht_cap_elem_len + 2;
  2206. } else
  2207. bss->ht_ie_len = 0;
  2208. } else if (!elems.ht_cap_elem && bss->ht_ie) {
  2209. kfree(bss->ht_ie);
  2210. bss->ht_ie = NULL;
  2211. bss->ht_ie_len = 0;
  2212. }
  2213. bss->beacon_int = le16_to_cpu(mgmt->u.beacon.beacon_int);
  2214. bss->capability = le16_to_cpu(mgmt->u.beacon.capab_info);
  2215. bss->supp_rates_len = 0;
  2216. if (elems.supp_rates) {
  2217. clen = IEEE80211_MAX_SUPP_RATES - bss->supp_rates_len;
  2218. if (clen > elems.supp_rates_len)
  2219. clen = elems.supp_rates_len;
  2220. memcpy(&bss->supp_rates[bss->supp_rates_len], elems.supp_rates,
  2221. clen);
  2222. bss->supp_rates_len += clen;
  2223. }
  2224. if (elems.ext_supp_rates) {
  2225. clen = IEEE80211_MAX_SUPP_RATES - bss->supp_rates_len;
  2226. if (clen > elems.ext_supp_rates_len)
  2227. clen = elems.ext_supp_rates_len;
  2228. memcpy(&bss->supp_rates[bss->supp_rates_len],
  2229. elems.ext_supp_rates, clen);
  2230. bss->supp_rates_len += clen;
  2231. }
  2232. bss->band = rx_status->band;
  2233. bss->timestamp = beacon_timestamp;
  2234. bss->last_update = jiffies;
  2235. bss->rssi = rx_status->ssi;
  2236. bss->signal = rx_status->signal;
  2237. bss->noise = rx_status->noise;
  2238. if (!beacon && !bss->probe_resp)
  2239. bss->probe_resp = true;
  2240. /*
  2241. * In STA mode, the remaining parameters should not be overridden
  2242. * by beacons because they're not necessarily accurate there.
  2243. */
  2244. if (sdata->vif.type != IEEE80211_IF_TYPE_IBSS &&
  2245. bss->probe_resp && beacon) {
  2246. ieee80211_rx_bss_put(dev, bss);
  2247. return;
  2248. }
  2249. if (elems.wpa &&
  2250. (!bss->wpa_ie || bss->wpa_ie_len != elems.wpa_len ||
  2251. memcmp(bss->wpa_ie, elems.wpa, elems.wpa_len))) {
  2252. kfree(bss->wpa_ie);
  2253. bss->wpa_ie = kmalloc(elems.wpa_len + 2, GFP_ATOMIC);
  2254. if (bss->wpa_ie) {
  2255. memcpy(bss->wpa_ie, elems.wpa - 2, elems.wpa_len + 2);
  2256. bss->wpa_ie_len = elems.wpa_len + 2;
  2257. } else
  2258. bss->wpa_ie_len = 0;
  2259. } else if (!elems.wpa && bss->wpa_ie) {
  2260. kfree(bss->wpa_ie);
  2261. bss->wpa_ie = NULL;
  2262. bss->wpa_ie_len = 0;
  2263. }
  2264. if (elems.rsn &&
  2265. (!bss->rsn_ie || bss->rsn_ie_len != elems.rsn_len ||
  2266. memcmp(bss->rsn_ie, elems.rsn, elems.rsn_len))) {
  2267. kfree(bss->rsn_ie);
  2268. bss->rsn_ie = kmalloc(elems.rsn_len + 2, GFP_ATOMIC);
  2269. if (bss->rsn_ie) {
  2270. memcpy(bss->rsn_ie, elems.rsn - 2, elems.rsn_len + 2);
  2271. bss->rsn_ie_len = elems.rsn_len + 2;
  2272. } else
  2273. bss->rsn_ie_len = 0;
  2274. } else if (!elems.rsn && bss->rsn_ie) {
  2275. kfree(bss->rsn_ie);
  2276. bss->rsn_ie = NULL;
  2277. bss->rsn_ie_len = 0;
  2278. }
  2279. /*
  2280. * Cf.
  2281. * http://www.wipo.int/pctdb/en/wo.jsp?wo=2007047181&IA=WO2007047181&DISPLAY=DESC
  2282. *
  2283. * quoting:
  2284. *
  2285. * In particular, "Wi-Fi CERTIFIED for WMM - Support for Multimedia
  2286. * Applications with Quality of Service in Wi-Fi Networks," Wi- Fi
  2287. * Alliance (September 1, 2004) is incorporated by reference herein.
  2288. * The inclusion of the WMM Parameters in probe responses and
  2289. * association responses is mandatory for WMM enabled networks. The
  2290. * inclusion of the WMM Parameters in beacons, however, is optional.
  2291. */
  2292. if (elems.wmm_param &&
  2293. (!bss->wmm_ie || bss->wmm_ie_len != elems.wmm_param_len ||
  2294. memcmp(bss->wmm_ie, elems.wmm_param, elems.wmm_param_len))) {
  2295. kfree(bss->wmm_ie);
  2296. bss->wmm_ie = kmalloc(elems.wmm_param_len + 2, GFP_ATOMIC);
  2297. if (bss->wmm_ie) {
  2298. memcpy(bss->wmm_ie, elems.wmm_param - 2,
  2299. elems.wmm_param_len + 2);
  2300. bss->wmm_ie_len = elems.wmm_param_len + 2;
  2301. } else
  2302. bss->wmm_ie_len = 0;
  2303. } else if (elems.wmm_info &&
  2304. (!bss->wmm_ie || bss->wmm_ie_len != elems.wmm_info_len ||
  2305. memcmp(bss->wmm_ie, elems.wmm_info, elems.wmm_info_len))) {
  2306. /* As for certain AP's Fifth bit is not set in WMM IE in
  2307. * beacon frames.So while parsing the beacon frame the
  2308. * wmm_info structure is used instead of wmm_param.
  2309. * wmm_info structure was never used to set bss->wmm_ie.
  2310. * This code fixes this problem by copying the WME
  2311. * information from wmm_info to bss->wmm_ie and enabling
  2312. * n-band association.
  2313. */
  2314. kfree(bss->wmm_ie);
  2315. bss->wmm_ie = kmalloc(elems.wmm_info_len + 2, GFP_ATOMIC);
  2316. if (bss->wmm_ie) {
  2317. memcpy(bss->wmm_ie, elems.wmm_info - 2,
  2318. elems.wmm_info_len + 2);
  2319. bss->wmm_ie_len = elems.wmm_info_len + 2;
  2320. } else
  2321. bss->wmm_ie_len = 0;
  2322. } else if (!elems.wmm_param && !elems.wmm_info && bss->wmm_ie) {
  2323. kfree(bss->wmm_ie);
  2324. bss->wmm_ie = NULL;
  2325. bss->wmm_ie_len = 0;
  2326. }
  2327. /* check if we need to merge IBSS */
  2328. if (sdata->vif.type == IEEE80211_IF_TYPE_IBSS && beacon &&
  2329. !local->sta_sw_scanning && !local->sta_hw_scanning &&
  2330. bss->capability & WLAN_CAPABILITY_IBSS &&
  2331. bss->freq == local->oper_channel->center_freq &&
  2332. elems.ssid_len == sdata->u.sta.ssid_len &&
  2333. memcmp(elems.ssid, sdata->u.sta.ssid, sdata->u.sta.ssid_len) == 0) {
  2334. if (rx_status->flag & RX_FLAG_TSFT) {
  2335. /* in order for correct IBSS merging we need mactime
  2336. *
  2337. * since mactime is defined as the time the first data
  2338. * symbol of the frame hits the PHY, and the timestamp
  2339. * of the beacon is defined as "the time that the data
  2340. * symbol containing the first bit of the timestamp is
  2341. * transmitted to the PHY plus the transmitting STA’s
  2342. * delays through its local PHY from the MAC-PHY
  2343. * interface to its interface with the WM"
  2344. * (802.11 11.1.2) - equals the time this bit arrives at
  2345. * the receiver - we have to take into account the
  2346. * offset between the two.
  2347. * e.g: at 1 MBit that means mactime is 192 usec earlier
  2348. * (=24 bytes * 8 usecs/byte) than the beacon timestamp.
  2349. */
  2350. int rate = local->hw.wiphy->bands[rx_status->band]->
  2351. bitrates[rx_status->rate_idx].bitrate;
  2352. rx_timestamp = rx_status->mactime + (24 * 8 * 10 / rate);
  2353. } else if (local && local->ops && local->ops->get_tsf)
  2354. /* second best option: get current TSF */
  2355. rx_timestamp = local->ops->get_tsf(local_to_hw(local));
  2356. else
  2357. /* can't merge without knowing the TSF */
  2358. rx_timestamp = -1LLU;
  2359. #ifdef CONFIG_MAC80211_IBSS_DEBUG
  2360. printk(KERN_DEBUG "RX beacon SA=%s BSSID="
  2361. "%s TSF=0x%llx BCN=0x%llx diff=%lld @%lu\n",
  2362. print_mac(mac, mgmt->sa),
  2363. print_mac(mac2, mgmt->bssid),
  2364. (unsigned long long)rx_timestamp,
  2365. (unsigned long long)beacon_timestamp,
  2366. (unsigned long long)(rx_timestamp - beacon_timestamp),
  2367. jiffies);
  2368. #endif /* CONFIG_MAC80211_IBSS_DEBUG */
  2369. if (beacon_timestamp > rx_timestamp) {
  2370. #ifndef CONFIG_MAC80211_IBSS_DEBUG
  2371. if (net_ratelimit())
  2372. #endif
  2373. printk(KERN_DEBUG "%s: beacon TSF higher than "
  2374. "local TSF - IBSS merge with BSSID %s\n",
  2375. dev->name, print_mac(mac, mgmt->bssid));
  2376. ieee80211_sta_join_ibss(dev, &sdata->u.sta, bss);
  2377. ieee80211_ibss_add_sta(dev, NULL,
  2378. mgmt->bssid, mgmt->sa);
  2379. }
  2380. }
  2381. ieee80211_rx_bss_put(dev, bss);
  2382. }
  2383. static void ieee80211_rx_mgmt_probe_resp(struct net_device *dev,
  2384. struct ieee80211_mgmt *mgmt,
  2385. size_t len,
  2386. struct ieee80211_rx_status *rx_status)
  2387. {
  2388. ieee80211_rx_bss_info(dev, mgmt, len, rx_status, 0);
  2389. }
  2390. static void ieee80211_rx_mgmt_beacon(struct net_device *dev,
  2391. struct ieee80211_mgmt *mgmt,
  2392. size_t len,
  2393. struct ieee80211_rx_status *rx_status)
  2394. {
  2395. struct ieee80211_sub_if_data *sdata;
  2396. struct ieee80211_if_sta *ifsta;
  2397. size_t baselen;
  2398. struct ieee802_11_elems elems;
  2399. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  2400. struct ieee80211_conf *conf = &local->hw.conf;
  2401. u32 changed = 0;
  2402. ieee80211_rx_bss_info(dev, mgmt, len, rx_status, 1);
  2403. sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2404. if (sdata->vif.type != IEEE80211_IF_TYPE_STA)
  2405. return;
  2406. ifsta = &sdata->u.sta;
  2407. if (!(ifsta->flags & IEEE80211_STA_ASSOCIATED) ||
  2408. memcmp(ifsta->bssid, mgmt->bssid, ETH_ALEN) != 0)
  2409. return;
  2410. /* Process beacon from the current BSS */
  2411. baselen = (u8 *) mgmt->u.beacon.variable - (u8 *) mgmt;
  2412. if (baselen > len)
  2413. return;
  2414. ieee802_11_parse_elems(mgmt->u.beacon.variable, len - baselen, &elems);
  2415. ieee80211_sta_wmm_params(dev, ifsta, elems.wmm_param,
  2416. elems.wmm_param_len);
  2417. /* Do not send changes to driver if we are scanning. This removes
  2418. * requirement that driver's bss_info_changed function needs to be
  2419. * atomic. */
  2420. if (local->sta_sw_scanning || local->sta_hw_scanning)
  2421. return;
  2422. if (elems.erp_info && elems.erp_info_len >= 1)
  2423. changed |= ieee80211_handle_erp_ie(sdata, elems.erp_info[0]);
  2424. else {
  2425. u16 capab = le16_to_cpu(mgmt->u.beacon.capab_info);
  2426. changed |= ieee80211_handle_protect_preamb(sdata, false,
  2427. (capab & WLAN_CAPABILITY_SHORT_PREAMBLE) != 0);
  2428. }
  2429. if (elems.ht_cap_elem && elems.ht_info_elem &&
  2430. elems.wmm_param && conf->flags & IEEE80211_CONF_SUPPORT_HT_MODE) {
  2431. struct ieee80211_ht_bss_info bss_info;
  2432. ieee80211_ht_addt_info_ie_to_ht_bss_info(
  2433. (struct ieee80211_ht_addt_info *)
  2434. elems.ht_info_elem, &bss_info);
  2435. changed |= ieee80211_handle_ht(local, 1, &conf->ht_conf,
  2436. &bss_info);
  2437. }
  2438. ieee80211_bss_info_change_notify(sdata, changed);
  2439. }
  2440. static void ieee80211_rx_mgmt_probe_req(struct net_device *dev,
  2441. struct ieee80211_if_sta *ifsta,
  2442. struct ieee80211_mgmt *mgmt,
  2443. size_t len,
  2444. struct ieee80211_rx_status *rx_status)
  2445. {
  2446. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  2447. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2448. int tx_last_beacon;
  2449. struct sk_buff *skb;
  2450. struct ieee80211_mgmt *resp;
  2451. u8 *pos, *end;
  2452. DECLARE_MAC_BUF(mac);
  2453. #ifdef CONFIG_MAC80211_IBSS_DEBUG
  2454. DECLARE_MAC_BUF(mac2);
  2455. DECLARE_MAC_BUF(mac3);
  2456. #endif
  2457. if (sdata->vif.type != IEEE80211_IF_TYPE_IBSS ||
  2458. ifsta->state != IEEE80211_IBSS_JOINED ||
  2459. len < 24 + 2 || !ifsta->probe_resp)
  2460. return;
  2461. if (local->ops->tx_last_beacon)
  2462. tx_last_beacon = local->ops->tx_last_beacon(local_to_hw(local));
  2463. else
  2464. tx_last_beacon = 1;
  2465. #ifdef CONFIG_MAC80211_IBSS_DEBUG
  2466. printk(KERN_DEBUG "%s: RX ProbeReq SA=%s DA=%s BSSID="
  2467. "%s (tx_last_beacon=%d)\n",
  2468. dev->name, print_mac(mac, mgmt->sa), print_mac(mac2, mgmt->da),
  2469. print_mac(mac3, mgmt->bssid), tx_last_beacon);
  2470. #endif /* CONFIG_MAC80211_IBSS_DEBUG */
  2471. if (!tx_last_beacon)
  2472. return;
  2473. if (memcmp(mgmt->bssid, ifsta->bssid, ETH_ALEN) != 0 &&
  2474. memcmp(mgmt->bssid, "\xff\xff\xff\xff\xff\xff", ETH_ALEN) != 0)
  2475. return;
  2476. end = ((u8 *) mgmt) + len;
  2477. pos = mgmt->u.probe_req.variable;
  2478. if (pos[0] != WLAN_EID_SSID ||
  2479. pos + 2 + pos[1] > end) {
  2480. if (net_ratelimit()) {
  2481. printk(KERN_DEBUG "%s: Invalid SSID IE in ProbeReq "
  2482. "from %s\n",
  2483. dev->name, print_mac(mac, mgmt->sa));
  2484. }
  2485. return;
  2486. }
  2487. if (pos[1] != 0 &&
  2488. (pos[1] != ifsta->ssid_len ||
  2489. memcmp(pos + 2, ifsta->ssid, ifsta->ssid_len) != 0)) {
  2490. /* Ignore ProbeReq for foreign SSID */
  2491. return;
  2492. }
  2493. /* Reply with ProbeResp */
  2494. skb = skb_copy(ifsta->probe_resp, GFP_KERNEL);
  2495. if (!skb)
  2496. return;
  2497. resp = (struct ieee80211_mgmt *) skb->data;
  2498. memcpy(resp->da, mgmt->sa, ETH_ALEN);
  2499. #ifdef CONFIG_MAC80211_IBSS_DEBUG
  2500. printk(KERN_DEBUG "%s: Sending ProbeResp to %s\n",
  2501. dev->name, print_mac(mac, resp->da));
  2502. #endif /* CONFIG_MAC80211_IBSS_DEBUG */
  2503. ieee80211_sta_tx(dev, skb, 0);
  2504. }
  2505. static void ieee80211_rx_mgmt_action(struct net_device *dev,
  2506. struct ieee80211_if_sta *ifsta,
  2507. struct ieee80211_mgmt *mgmt,
  2508. size_t len,
  2509. struct ieee80211_rx_status *rx_status)
  2510. {
  2511. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2512. if (len < IEEE80211_MIN_ACTION_SIZE)
  2513. return;
  2514. switch (mgmt->u.action.category) {
  2515. case WLAN_CATEGORY_BACK:
  2516. switch (mgmt->u.action.u.addba_req.action_code) {
  2517. case WLAN_ACTION_ADDBA_REQ:
  2518. if (len < (IEEE80211_MIN_ACTION_SIZE +
  2519. sizeof(mgmt->u.action.u.addba_req)))
  2520. break;
  2521. ieee80211_sta_process_addba_request(dev, mgmt, len);
  2522. break;
  2523. case WLAN_ACTION_ADDBA_RESP:
  2524. if (len < (IEEE80211_MIN_ACTION_SIZE +
  2525. sizeof(mgmt->u.action.u.addba_resp)))
  2526. break;
  2527. ieee80211_sta_process_addba_resp(dev, mgmt, len);
  2528. break;
  2529. case WLAN_ACTION_DELBA:
  2530. if (len < (IEEE80211_MIN_ACTION_SIZE +
  2531. sizeof(mgmt->u.action.u.delba)))
  2532. break;
  2533. ieee80211_sta_process_delba(dev, mgmt, len);
  2534. break;
  2535. default:
  2536. if (net_ratelimit())
  2537. printk(KERN_DEBUG "%s: Rx unknown A-MPDU action\n",
  2538. dev->name);
  2539. break;
  2540. }
  2541. break;
  2542. case PLINK_CATEGORY:
  2543. if (ieee80211_vif_is_mesh(&sdata->vif))
  2544. mesh_rx_plink_frame(dev, mgmt, len, rx_status);
  2545. break;
  2546. case MESH_PATH_SEL_CATEGORY:
  2547. if (ieee80211_vif_is_mesh(&sdata->vif))
  2548. mesh_rx_path_sel_frame(dev, mgmt, len);
  2549. break;
  2550. default:
  2551. if (net_ratelimit())
  2552. printk(KERN_DEBUG "%s: Rx unknown action frame - "
  2553. "category=%d\n", dev->name, mgmt->u.action.category);
  2554. break;
  2555. }
  2556. }
  2557. void ieee80211_sta_rx_mgmt(struct net_device *dev, struct sk_buff *skb,
  2558. struct ieee80211_rx_status *rx_status)
  2559. {
  2560. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  2561. struct ieee80211_sub_if_data *sdata;
  2562. struct ieee80211_if_sta *ifsta;
  2563. struct ieee80211_mgmt *mgmt;
  2564. u16 fc;
  2565. if (skb->len < 24)
  2566. goto fail;
  2567. sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2568. ifsta = &sdata->u.sta;
  2569. mgmt = (struct ieee80211_mgmt *) skb->data;
  2570. fc = le16_to_cpu(mgmt->frame_control);
  2571. switch (fc & IEEE80211_FCTL_STYPE) {
  2572. case IEEE80211_STYPE_PROBE_REQ:
  2573. case IEEE80211_STYPE_PROBE_RESP:
  2574. case IEEE80211_STYPE_BEACON:
  2575. case IEEE80211_STYPE_ACTION:
  2576. memcpy(skb->cb, rx_status, sizeof(*rx_status));
  2577. case IEEE80211_STYPE_AUTH:
  2578. case IEEE80211_STYPE_ASSOC_RESP:
  2579. case IEEE80211_STYPE_REASSOC_RESP:
  2580. case IEEE80211_STYPE_DEAUTH:
  2581. case IEEE80211_STYPE_DISASSOC:
  2582. skb_queue_tail(&ifsta->skb_queue, skb);
  2583. queue_work(local->hw.workqueue, &ifsta->work);
  2584. return;
  2585. default:
  2586. printk(KERN_DEBUG "%s: received unknown management frame - "
  2587. "stype=%d\n", dev->name,
  2588. (fc & IEEE80211_FCTL_STYPE) >> 4);
  2589. break;
  2590. }
  2591. fail:
  2592. kfree_skb(skb);
  2593. }
  2594. static void ieee80211_sta_rx_queued_mgmt(struct net_device *dev,
  2595. struct sk_buff *skb)
  2596. {
  2597. struct ieee80211_rx_status *rx_status;
  2598. struct ieee80211_sub_if_data *sdata;
  2599. struct ieee80211_if_sta *ifsta;
  2600. struct ieee80211_mgmt *mgmt;
  2601. u16 fc;
  2602. sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2603. ifsta = &sdata->u.sta;
  2604. rx_status = (struct ieee80211_rx_status *) skb->cb;
  2605. mgmt = (struct ieee80211_mgmt *) skb->data;
  2606. fc = le16_to_cpu(mgmt->frame_control);
  2607. switch (fc & IEEE80211_FCTL_STYPE) {
  2608. case IEEE80211_STYPE_PROBE_REQ:
  2609. ieee80211_rx_mgmt_probe_req(dev, ifsta, mgmt, skb->len,
  2610. rx_status);
  2611. break;
  2612. case IEEE80211_STYPE_PROBE_RESP:
  2613. ieee80211_rx_mgmt_probe_resp(dev, mgmt, skb->len, rx_status);
  2614. break;
  2615. case IEEE80211_STYPE_BEACON:
  2616. ieee80211_rx_mgmt_beacon(dev, mgmt, skb->len, rx_status);
  2617. break;
  2618. case IEEE80211_STYPE_AUTH:
  2619. ieee80211_rx_mgmt_auth(dev, ifsta, mgmt, skb->len);
  2620. break;
  2621. case IEEE80211_STYPE_ASSOC_RESP:
  2622. ieee80211_rx_mgmt_assoc_resp(sdata, ifsta, mgmt, skb->len, 0);
  2623. break;
  2624. case IEEE80211_STYPE_REASSOC_RESP:
  2625. ieee80211_rx_mgmt_assoc_resp(sdata, ifsta, mgmt, skb->len, 1);
  2626. break;
  2627. case IEEE80211_STYPE_DEAUTH:
  2628. ieee80211_rx_mgmt_deauth(dev, ifsta, mgmt, skb->len);
  2629. break;
  2630. case IEEE80211_STYPE_DISASSOC:
  2631. ieee80211_rx_mgmt_disassoc(dev, ifsta, mgmt, skb->len);
  2632. break;
  2633. case IEEE80211_STYPE_ACTION:
  2634. ieee80211_rx_mgmt_action(dev, ifsta, mgmt, skb->len, rx_status);
  2635. break;
  2636. }
  2637. kfree_skb(skb);
  2638. }
  2639. ieee80211_rx_result
  2640. ieee80211_sta_rx_scan(struct net_device *dev, struct sk_buff *skb,
  2641. struct ieee80211_rx_status *rx_status)
  2642. {
  2643. struct ieee80211_mgmt *mgmt;
  2644. u16 fc;
  2645. if (skb->len < 2)
  2646. return RX_DROP_UNUSABLE;
  2647. mgmt = (struct ieee80211_mgmt *) skb->data;
  2648. fc = le16_to_cpu(mgmt->frame_control);
  2649. if ((fc & IEEE80211_FCTL_FTYPE) == IEEE80211_FTYPE_CTL)
  2650. return RX_CONTINUE;
  2651. if (skb->len < 24)
  2652. return RX_DROP_MONITOR;
  2653. if ((fc & IEEE80211_FCTL_FTYPE) == IEEE80211_FTYPE_MGMT) {
  2654. if ((fc & IEEE80211_FCTL_STYPE) == IEEE80211_STYPE_PROBE_RESP) {
  2655. ieee80211_rx_mgmt_probe_resp(dev, mgmt,
  2656. skb->len, rx_status);
  2657. dev_kfree_skb(skb);
  2658. return RX_QUEUED;
  2659. } else if ((fc & IEEE80211_FCTL_STYPE) == IEEE80211_STYPE_BEACON) {
  2660. ieee80211_rx_mgmt_beacon(dev, mgmt, skb->len,
  2661. rx_status);
  2662. dev_kfree_skb(skb);
  2663. return RX_QUEUED;
  2664. }
  2665. }
  2666. return RX_CONTINUE;
  2667. }
  2668. static int ieee80211_sta_active_ibss(struct net_device *dev)
  2669. {
  2670. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  2671. int active = 0;
  2672. struct sta_info *sta;
  2673. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2674. rcu_read_lock();
  2675. list_for_each_entry_rcu(sta, &local->sta_list, list) {
  2676. if (sta->sdata == sdata &&
  2677. time_after(sta->last_rx + IEEE80211_IBSS_MERGE_INTERVAL,
  2678. jiffies)) {
  2679. active++;
  2680. break;
  2681. }
  2682. }
  2683. rcu_read_unlock();
  2684. return active;
  2685. }
  2686. static void ieee80211_sta_expire(struct net_device *dev, unsigned long exp_time)
  2687. {
  2688. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  2689. struct sta_info *sta, *tmp;
  2690. LIST_HEAD(tmp_list);
  2691. DECLARE_MAC_BUF(mac);
  2692. unsigned long flags;
  2693. spin_lock_irqsave(&local->sta_lock, flags);
  2694. list_for_each_entry_safe(sta, tmp, &local->sta_list, list)
  2695. if (time_after(jiffies, sta->last_rx + exp_time)) {
  2696. printk(KERN_DEBUG "%s: expiring inactive STA %s\n",
  2697. dev->name, print_mac(mac, sta->addr));
  2698. __sta_info_unlink(&sta);
  2699. if (sta)
  2700. list_add(&sta->list, &tmp_list);
  2701. }
  2702. spin_unlock_irqrestore(&local->sta_lock, flags);
  2703. list_for_each_entry_safe(sta, tmp, &tmp_list, list)
  2704. sta_info_destroy(sta);
  2705. }
  2706. static void ieee80211_sta_merge_ibss(struct net_device *dev,
  2707. struct ieee80211_if_sta *ifsta)
  2708. {
  2709. mod_timer(&ifsta->timer, jiffies + IEEE80211_IBSS_MERGE_INTERVAL);
  2710. ieee80211_sta_expire(dev, IEEE80211_IBSS_INACTIVITY_LIMIT);
  2711. if (ieee80211_sta_active_ibss(dev))
  2712. return;
  2713. printk(KERN_DEBUG "%s: No active IBSS STAs - trying to scan for other "
  2714. "IBSS networks with same SSID (merge)\n", dev->name);
  2715. ieee80211_sta_req_scan(dev, ifsta->ssid, ifsta->ssid_len);
  2716. }
  2717. #ifdef CONFIG_MAC80211_MESH
  2718. static void ieee80211_mesh_housekeeping(struct net_device *dev,
  2719. struct ieee80211_if_sta *ifsta)
  2720. {
  2721. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2722. bool free_plinks;
  2723. ieee80211_sta_expire(dev, IEEE80211_MESH_PEER_INACTIVITY_LIMIT);
  2724. mesh_path_expire(dev);
  2725. free_plinks = mesh_plink_availables(sdata);
  2726. if (free_plinks != sdata->u.sta.accepting_plinks)
  2727. ieee80211_if_config_beacon(dev);
  2728. mod_timer(&ifsta->timer, jiffies +
  2729. IEEE80211_MESH_HOUSEKEEPING_INTERVAL);
  2730. }
  2731. void ieee80211_start_mesh(struct net_device *dev)
  2732. {
  2733. struct ieee80211_if_sta *ifsta;
  2734. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2735. ifsta = &sdata->u.sta;
  2736. ifsta->state = IEEE80211_MESH_UP;
  2737. ieee80211_sta_timer((unsigned long)sdata);
  2738. }
  2739. #endif
  2740. void ieee80211_sta_timer(unsigned long data)
  2741. {
  2742. struct ieee80211_sub_if_data *sdata =
  2743. (struct ieee80211_sub_if_data *) data;
  2744. struct ieee80211_if_sta *ifsta = &sdata->u.sta;
  2745. struct ieee80211_local *local = wdev_priv(&sdata->wdev);
  2746. set_bit(IEEE80211_STA_REQ_RUN, &ifsta->request);
  2747. queue_work(local->hw.workqueue, &ifsta->work);
  2748. }
  2749. void ieee80211_sta_work(struct work_struct *work)
  2750. {
  2751. struct ieee80211_sub_if_data *sdata =
  2752. container_of(work, struct ieee80211_sub_if_data, u.sta.work);
  2753. struct net_device *dev = sdata->dev;
  2754. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  2755. struct ieee80211_if_sta *ifsta;
  2756. struct sk_buff *skb;
  2757. if (!netif_running(dev))
  2758. return;
  2759. if (local->sta_sw_scanning || local->sta_hw_scanning)
  2760. return;
  2761. if (sdata->vif.type != IEEE80211_IF_TYPE_STA &&
  2762. sdata->vif.type != IEEE80211_IF_TYPE_IBSS &&
  2763. sdata->vif.type != IEEE80211_IF_TYPE_MESH_POINT) {
  2764. printk(KERN_DEBUG "%s: ieee80211_sta_work: non-STA interface "
  2765. "(type=%d)\n", dev->name, sdata->vif.type);
  2766. return;
  2767. }
  2768. ifsta = &sdata->u.sta;
  2769. while ((skb = skb_dequeue(&ifsta->skb_queue)))
  2770. ieee80211_sta_rx_queued_mgmt(dev, skb);
  2771. #ifdef CONFIG_MAC80211_MESH
  2772. if (ifsta->preq_queue_len &&
  2773. time_after(jiffies,
  2774. ifsta->last_preq + msecs_to_jiffies(ifsta->mshcfg.dot11MeshHWMPpreqMinInterval)))
  2775. mesh_path_start_discovery(dev);
  2776. #endif
  2777. if (ifsta->state != IEEE80211_AUTHENTICATE &&
  2778. ifsta->state != IEEE80211_ASSOCIATE &&
  2779. test_and_clear_bit(IEEE80211_STA_REQ_SCAN, &ifsta->request)) {
  2780. if (ifsta->scan_ssid_len)
  2781. ieee80211_sta_start_scan(dev, ifsta->scan_ssid, ifsta->scan_ssid_len);
  2782. else
  2783. ieee80211_sta_start_scan(dev, NULL, 0);
  2784. return;
  2785. }
  2786. if (test_and_clear_bit(IEEE80211_STA_REQ_AUTH, &ifsta->request)) {
  2787. if (ieee80211_sta_config_auth(dev, ifsta))
  2788. return;
  2789. clear_bit(IEEE80211_STA_REQ_RUN, &ifsta->request);
  2790. } else if (!test_and_clear_bit(IEEE80211_STA_REQ_RUN, &ifsta->request))
  2791. return;
  2792. switch (ifsta->state) {
  2793. case IEEE80211_DISABLED:
  2794. break;
  2795. case IEEE80211_AUTHENTICATE:
  2796. ieee80211_authenticate(dev, ifsta);
  2797. break;
  2798. case IEEE80211_ASSOCIATE:
  2799. ieee80211_associate(dev, ifsta);
  2800. break;
  2801. case IEEE80211_ASSOCIATED:
  2802. ieee80211_associated(dev, ifsta);
  2803. break;
  2804. case IEEE80211_IBSS_SEARCH:
  2805. ieee80211_sta_find_ibss(dev, ifsta);
  2806. break;
  2807. case IEEE80211_IBSS_JOINED:
  2808. ieee80211_sta_merge_ibss(dev, ifsta);
  2809. break;
  2810. #ifdef CONFIG_MAC80211_MESH
  2811. case IEEE80211_MESH_UP:
  2812. ieee80211_mesh_housekeeping(dev, ifsta);
  2813. break;
  2814. #endif
  2815. default:
  2816. printk(KERN_DEBUG "ieee80211_sta_work: Unknown state %d\n",
  2817. ifsta->state);
  2818. break;
  2819. }
  2820. if (ieee80211_privacy_mismatch(dev, ifsta)) {
  2821. printk(KERN_DEBUG "%s: privacy configuration mismatch and "
  2822. "mixed-cell disabled - disassociate\n", dev->name);
  2823. ieee80211_send_disassoc(dev, ifsta, WLAN_REASON_UNSPECIFIED);
  2824. ieee80211_set_disassoc(dev, ifsta, 0);
  2825. }
  2826. }
  2827. static void ieee80211_sta_reset_auth(struct net_device *dev,
  2828. struct ieee80211_if_sta *ifsta)
  2829. {
  2830. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  2831. if (local->ops->reset_tsf) {
  2832. /* Reset own TSF to allow time synchronization work. */
  2833. local->ops->reset_tsf(local_to_hw(local));
  2834. }
  2835. ifsta->wmm_last_param_set = -1; /* allow any WMM update */
  2836. if (ifsta->auth_algs & IEEE80211_AUTH_ALG_OPEN)
  2837. ifsta->auth_alg = WLAN_AUTH_OPEN;
  2838. else if (ifsta->auth_algs & IEEE80211_AUTH_ALG_SHARED_KEY)
  2839. ifsta->auth_alg = WLAN_AUTH_SHARED_KEY;
  2840. else if (ifsta->auth_algs & IEEE80211_AUTH_ALG_LEAP)
  2841. ifsta->auth_alg = WLAN_AUTH_LEAP;
  2842. else
  2843. ifsta->auth_alg = WLAN_AUTH_OPEN;
  2844. printk(KERN_DEBUG "%s: Initial auth_alg=%d\n", dev->name,
  2845. ifsta->auth_alg);
  2846. ifsta->auth_transaction = -1;
  2847. ifsta->flags &= ~IEEE80211_STA_ASSOCIATED;
  2848. ifsta->auth_tries = ifsta->assoc_tries = 0;
  2849. netif_carrier_off(dev);
  2850. }
  2851. void ieee80211_sta_req_auth(struct net_device *dev,
  2852. struct ieee80211_if_sta *ifsta)
  2853. {
  2854. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  2855. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2856. if (sdata->vif.type != IEEE80211_IF_TYPE_STA)
  2857. return;
  2858. if ((ifsta->flags & (IEEE80211_STA_BSSID_SET |
  2859. IEEE80211_STA_AUTO_BSSID_SEL)) &&
  2860. (ifsta->flags & (IEEE80211_STA_SSID_SET |
  2861. IEEE80211_STA_AUTO_SSID_SEL))) {
  2862. set_bit(IEEE80211_STA_REQ_AUTH, &ifsta->request);
  2863. queue_work(local->hw.workqueue, &ifsta->work);
  2864. }
  2865. }
  2866. static int ieee80211_sta_match_ssid(struct ieee80211_if_sta *ifsta,
  2867. const char *ssid, int ssid_len)
  2868. {
  2869. int tmp, hidden_ssid;
  2870. if (ssid_len == ifsta->ssid_len &&
  2871. !memcmp(ifsta->ssid, ssid, ssid_len))
  2872. return 1;
  2873. if (ifsta->flags & IEEE80211_STA_AUTO_BSSID_SEL)
  2874. return 0;
  2875. hidden_ssid = 1;
  2876. tmp = ssid_len;
  2877. while (tmp--) {
  2878. if (ssid[tmp] != '\0') {
  2879. hidden_ssid = 0;
  2880. break;
  2881. }
  2882. }
  2883. if (hidden_ssid && ifsta->ssid_len == ssid_len)
  2884. return 1;
  2885. if (ssid_len == 1 && ssid[0] == ' ')
  2886. return 1;
  2887. return 0;
  2888. }
  2889. static int ieee80211_sta_config_auth(struct net_device *dev,
  2890. struct ieee80211_if_sta *ifsta)
  2891. {
  2892. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  2893. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2894. struct ieee80211_sta_bss *bss, *selected = NULL;
  2895. int top_rssi = 0, freq;
  2896. if (!(ifsta->flags & (IEEE80211_STA_AUTO_SSID_SEL |
  2897. IEEE80211_STA_AUTO_BSSID_SEL | IEEE80211_STA_AUTO_CHANNEL_SEL))) {
  2898. ifsta->state = IEEE80211_AUTHENTICATE;
  2899. ieee80211_sta_reset_auth(dev, ifsta);
  2900. return 0;
  2901. }
  2902. spin_lock_bh(&local->sta_bss_lock);
  2903. freq = local->oper_channel->center_freq;
  2904. list_for_each_entry(bss, &local->sta_bss_list, list) {
  2905. if (!(bss->capability & WLAN_CAPABILITY_ESS))
  2906. continue;
  2907. if (!!(bss->capability & WLAN_CAPABILITY_PRIVACY) ^
  2908. !!sdata->default_key)
  2909. continue;
  2910. if (!(ifsta->flags & IEEE80211_STA_AUTO_CHANNEL_SEL) &&
  2911. bss->freq != freq)
  2912. continue;
  2913. if (!(ifsta->flags & IEEE80211_STA_AUTO_BSSID_SEL) &&
  2914. memcmp(bss->bssid, ifsta->bssid, ETH_ALEN))
  2915. continue;
  2916. if (!(ifsta->flags & IEEE80211_STA_AUTO_SSID_SEL) &&
  2917. !ieee80211_sta_match_ssid(ifsta, bss->ssid, bss->ssid_len))
  2918. continue;
  2919. if (!selected || top_rssi < bss->rssi) {
  2920. selected = bss;
  2921. top_rssi = bss->rssi;
  2922. }
  2923. }
  2924. if (selected)
  2925. atomic_inc(&selected->users);
  2926. spin_unlock_bh(&local->sta_bss_lock);
  2927. if (selected) {
  2928. ieee80211_set_freq(local, selected->freq);
  2929. if (!(ifsta->flags & IEEE80211_STA_SSID_SET))
  2930. ieee80211_sta_set_ssid(dev, selected->ssid,
  2931. selected->ssid_len);
  2932. ieee80211_sta_set_bssid(dev, selected->bssid);
  2933. ieee80211_sta_def_wmm_params(dev, selected, 0);
  2934. ieee80211_rx_bss_put(dev, selected);
  2935. ifsta->state = IEEE80211_AUTHENTICATE;
  2936. ieee80211_sta_reset_auth(dev, ifsta);
  2937. return 0;
  2938. } else {
  2939. if (ifsta->state != IEEE80211_AUTHENTICATE) {
  2940. if (ifsta->flags & IEEE80211_STA_AUTO_SSID_SEL)
  2941. ieee80211_sta_start_scan(dev, NULL, 0);
  2942. else
  2943. ieee80211_sta_start_scan(dev, ifsta->ssid,
  2944. ifsta->ssid_len);
  2945. ifsta->state = IEEE80211_AUTHENTICATE;
  2946. set_bit(IEEE80211_STA_REQ_AUTH, &ifsta->request);
  2947. } else
  2948. ifsta->state = IEEE80211_DISABLED;
  2949. }
  2950. return -1;
  2951. }
  2952. static int ieee80211_sta_create_ibss(struct net_device *dev,
  2953. struct ieee80211_if_sta *ifsta)
  2954. {
  2955. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  2956. struct ieee80211_sta_bss *bss;
  2957. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  2958. struct ieee80211_supported_band *sband;
  2959. u8 bssid[ETH_ALEN], *pos;
  2960. int i;
  2961. DECLARE_MAC_BUF(mac);
  2962. #if 0
  2963. /* Easier testing, use fixed BSSID. */
  2964. memset(bssid, 0xfe, ETH_ALEN);
  2965. #else
  2966. /* Generate random, not broadcast, locally administered BSSID. Mix in
  2967. * own MAC address to make sure that devices that do not have proper
  2968. * random number generator get different BSSID. */
  2969. get_random_bytes(bssid, ETH_ALEN);
  2970. for (i = 0; i < ETH_ALEN; i++)
  2971. bssid[i] ^= dev->dev_addr[i];
  2972. bssid[0] &= ~0x01;
  2973. bssid[0] |= 0x02;
  2974. #endif
  2975. printk(KERN_DEBUG "%s: Creating new IBSS network, BSSID %s\n",
  2976. dev->name, print_mac(mac, bssid));
  2977. bss = ieee80211_rx_bss_add(dev, bssid,
  2978. local->hw.conf.channel->center_freq,
  2979. sdata->u.sta.ssid, sdata->u.sta.ssid_len);
  2980. if (!bss)
  2981. return -ENOMEM;
  2982. bss->band = local->hw.conf.channel->band;
  2983. sband = local->hw.wiphy->bands[bss->band];
  2984. if (local->hw.conf.beacon_int == 0)
  2985. local->hw.conf.beacon_int = 10000;
  2986. bss->beacon_int = local->hw.conf.beacon_int;
  2987. bss->last_update = jiffies;
  2988. bss->capability = WLAN_CAPABILITY_IBSS;
  2989. if (sdata->default_key)
  2990. bss->capability |= WLAN_CAPABILITY_PRIVACY;
  2991. else
  2992. sdata->drop_unencrypted = 0;
  2993. bss->supp_rates_len = sband->n_bitrates;
  2994. pos = bss->supp_rates;
  2995. for (i = 0; i < sband->n_bitrates; i++) {
  2996. int rate = sband->bitrates[i].bitrate;
  2997. *pos++ = (u8) (rate / 5);
  2998. }
  2999. return ieee80211_sta_join_ibss(dev, ifsta, bss);
  3000. }
  3001. static int ieee80211_sta_find_ibss(struct net_device *dev,
  3002. struct ieee80211_if_sta *ifsta)
  3003. {
  3004. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  3005. struct ieee80211_sta_bss *bss;
  3006. int found = 0;
  3007. u8 bssid[ETH_ALEN];
  3008. int active_ibss;
  3009. DECLARE_MAC_BUF(mac);
  3010. DECLARE_MAC_BUF(mac2);
  3011. if (ifsta->ssid_len == 0)
  3012. return -EINVAL;
  3013. active_ibss = ieee80211_sta_active_ibss(dev);
  3014. #ifdef CONFIG_MAC80211_IBSS_DEBUG
  3015. printk(KERN_DEBUG "%s: sta_find_ibss (active_ibss=%d)\n",
  3016. dev->name, active_ibss);
  3017. #endif /* CONFIG_MAC80211_IBSS_DEBUG */
  3018. spin_lock_bh(&local->sta_bss_lock);
  3019. list_for_each_entry(bss, &local->sta_bss_list, list) {
  3020. if (ifsta->ssid_len != bss->ssid_len ||
  3021. memcmp(ifsta->ssid, bss->ssid, bss->ssid_len) != 0
  3022. || !(bss->capability & WLAN_CAPABILITY_IBSS))
  3023. continue;
  3024. #ifdef CONFIG_MAC80211_IBSS_DEBUG
  3025. printk(KERN_DEBUG " bssid=%s found\n",
  3026. print_mac(mac, bss->bssid));
  3027. #endif /* CONFIG_MAC80211_IBSS_DEBUG */
  3028. memcpy(bssid, bss->bssid, ETH_ALEN);
  3029. found = 1;
  3030. if (active_ibss || memcmp(bssid, ifsta->bssid, ETH_ALEN) != 0)
  3031. break;
  3032. }
  3033. spin_unlock_bh(&local->sta_bss_lock);
  3034. #ifdef CONFIG_MAC80211_IBSS_DEBUG
  3035. printk(KERN_DEBUG " sta_find_ibss: selected %s current "
  3036. "%s\n", print_mac(mac, bssid), print_mac(mac2, ifsta->bssid));
  3037. #endif /* CONFIG_MAC80211_IBSS_DEBUG */
  3038. if (found && memcmp(ifsta->bssid, bssid, ETH_ALEN) != 0 &&
  3039. (bss = ieee80211_rx_bss_get(dev, bssid,
  3040. local->hw.conf.channel->center_freq,
  3041. ifsta->ssid, ifsta->ssid_len))) {
  3042. printk(KERN_DEBUG "%s: Selected IBSS BSSID %s"
  3043. " based on configured SSID\n",
  3044. dev->name, print_mac(mac, bssid));
  3045. return ieee80211_sta_join_ibss(dev, ifsta, bss);
  3046. }
  3047. #ifdef CONFIG_MAC80211_IBSS_DEBUG
  3048. printk(KERN_DEBUG " did not try to join ibss\n");
  3049. #endif /* CONFIG_MAC80211_IBSS_DEBUG */
  3050. /* Selected IBSS not found in current scan results - try to scan */
  3051. if (ifsta->state == IEEE80211_IBSS_JOINED &&
  3052. !ieee80211_sta_active_ibss(dev)) {
  3053. mod_timer(&ifsta->timer, jiffies +
  3054. IEEE80211_IBSS_MERGE_INTERVAL);
  3055. } else if (time_after(jiffies, local->last_scan_completed +
  3056. IEEE80211_SCAN_INTERVAL)) {
  3057. printk(KERN_DEBUG "%s: Trigger new scan to find an IBSS to "
  3058. "join\n", dev->name);
  3059. return ieee80211_sta_req_scan(dev, ifsta->ssid,
  3060. ifsta->ssid_len);
  3061. } else if (ifsta->state != IEEE80211_IBSS_JOINED) {
  3062. int interval = IEEE80211_SCAN_INTERVAL;
  3063. if (time_after(jiffies, ifsta->ibss_join_req +
  3064. IEEE80211_IBSS_JOIN_TIMEOUT)) {
  3065. if ((ifsta->flags & IEEE80211_STA_CREATE_IBSS) &&
  3066. (!(local->oper_channel->flags &
  3067. IEEE80211_CHAN_NO_IBSS)))
  3068. return ieee80211_sta_create_ibss(dev, ifsta);
  3069. if (ifsta->flags & IEEE80211_STA_CREATE_IBSS) {
  3070. printk(KERN_DEBUG "%s: IBSS not allowed on"
  3071. " %d MHz\n", dev->name,
  3072. local->hw.conf.channel->center_freq);
  3073. }
  3074. /* No IBSS found - decrease scan interval and continue
  3075. * scanning. */
  3076. interval = IEEE80211_SCAN_INTERVAL_SLOW;
  3077. }
  3078. ifsta->state = IEEE80211_IBSS_SEARCH;
  3079. mod_timer(&ifsta->timer, jiffies + interval);
  3080. return 0;
  3081. }
  3082. return 0;
  3083. }
  3084. int ieee80211_sta_set_ssid(struct net_device *dev, char *ssid, size_t len)
  3085. {
  3086. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  3087. struct ieee80211_if_sta *ifsta;
  3088. if (len > IEEE80211_MAX_SSID_LEN)
  3089. return -EINVAL;
  3090. ifsta = &sdata->u.sta;
  3091. if (ifsta->ssid_len != len || memcmp(ifsta->ssid, ssid, len) != 0)
  3092. ifsta->flags &= ~IEEE80211_STA_PREV_BSSID_SET;
  3093. memcpy(ifsta->ssid, ssid, len);
  3094. memset(ifsta->ssid + len, 0, IEEE80211_MAX_SSID_LEN - len);
  3095. ifsta->ssid_len = len;
  3096. if (len)
  3097. ifsta->flags |= IEEE80211_STA_SSID_SET;
  3098. else
  3099. ifsta->flags &= ~IEEE80211_STA_SSID_SET;
  3100. if (sdata->vif.type == IEEE80211_IF_TYPE_IBSS &&
  3101. !(ifsta->flags & IEEE80211_STA_BSSID_SET)) {
  3102. ifsta->ibss_join_req = jiffies;
  3103. ifsta->state = IEEE80211_IBSS_SEARCH;
  3104. return ieee80211_sta_find_ibss(dev, ifsta);
  3105. }
  3106. return 0;
  3107. }
  3108. int ieee80211_sta_get_ssid(struct net_device *dev, char *ssid, size_t *len)
  3109. {
  3110. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  3111. struct ieee80211_if_sta *ifsta = &sdata->u.sta;
  3112. memcpy(ssid, ifsta->ssid, ifsta->ssid_len);
  3113. *len = ifsta->ssid_len;
  3114. return 0;
  3115. }
  3116. int ieee80211_sta_set_bssid(struct net_device *dev, u8 *bssid)
  3117. {
  3118. struct ieee80211_sub_if_data *sdata;
  3119. struct ieee80211_if_sta *ifsta;
  3120. int res;
  3121. sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  3122. ifsta = &sdata->u.sta;
  3123. if (memcmp(ifsta->bssid, bssid, ETH_ALEN) != 0) {
  3124. memcpy(ifsta->bssid, bssid, ETH_ALEN);
  3125. res = ieee80211_if_config(dev);
  3126. if (res) {
  3127. printk(KERN_DEBUG "%s: Failed to config new BSSID to "
  3128. "the low-level driver\n", dev->name);
  3129. return res;
  3130. }
  3131. }
  3132. if (is_valid_ether_addr(bssid))
  3133. ifsta->flags |= IEEE80211_STA_BSSID_SET;
  3134. else
  3135. ifsta->flags &= ~IEEE80211_STA_BSSID_SET;
  3136. return 0;
  3137. }
  3138. static void ieee80211_send_nullfunc(struct ieee80211_local *local,
  3139. struct ieee80211_sub_if_data *sdata,
  3140. int powersave)
  3141. {
  3142. struct sk_buff *skb;
  3143. struct ieee80211_hdr *nullfunc;
  3144. u16 fc;
  3145. skb = dev_alloc_skb(local->hw.extra_tx_headroom + 24);
  3146. if (!skb) {
  3147. printk(KERN_DEBUG "%s: failed to allocate buffer for nullfunc "
  3148. "frame\n", sdata->dev->name);
  3149. return;
  3150. }
  3151. skb_reserve(skb, local->hw.extra_tx_headroom);
  3152. nullfunc = (struct ieee80211_hdr *) skb_put(skb, 24);
  3153. memset(nullfunc, 0, 24);
  3154. fc = IEEE80211_FTYPE_DATA | IEEE80211_STYPE_NULLFUNC |
  3155. IEEE80211_FCTL_TODS;
  3156. if (powersave)
  3157. fc |= IEEE80211_FCTL_PM;
  3158. nullfunc->frame_control = cpu_to_le16(fc);
  3159. memcpy(nullfunc->addr1, sdata->u.sta.bssid, ETH_ALEN);
  3160. memcpy(nullfunc->addr2, sdata->dev->dev_addr, ETH_ALEN);
  3161. memcpy(nullfunc->addr3, sdata->u.sta.bssid, ETH_ALEN);
  3162. ieee80211_sta_tx(sdata->dev, skb, 0);
  3163. }
  3164. static void ieee80211_restart_sta_timer(struct ieee80211_sub_if_data *sdata)
  3165. {
  3166. if (sdata->vif.type == IEEE80211_IF_TYPE_STA ||
  3167. ieee80211_vif_is_mesh(&sdata->vif))
  3168. ieee80211_sta_timer((unsigned long)sdata);
  3169. }
  3170. void ieee80211_scan_completed(struct ieee80211_hw *hw)
  3171. {
  3172. struct ieee80211_local *local = hw_to_local(hw);
  3173. struct net_device *dev = local->scan_dev;
  3174. struct ieee80211_sub_if_data *sdata;
  3175. union iwreq_data wrqu;
  3176. local->last_scan_completed = jiffies;
  3177. memset(&wrqu, 0, sizeof(wrqu));
  3178. wireless_send_event(dev, SIOCGIWSCAN, &wrqu, NULL);
  3179. if (local->sta_hw_scanning) {
  3180. local->sta_hw_scanning = 0;
  3181. if (ieee80211_hw_config(local))
  3182. printk(KERN_DEBUG "%s: failed to restore operational "
  3183. "channel after scan\n", dev->name);
  3184. /* Restart STA timer for HW scan case */
  3185. rcu_read_lock();
  3186. list_for_each_entry_rcu(sdata, &local->interfaces, list)
  3187. ieee80211_restart_sta_timer(sdata);
  3188. rcu_read_unlock();
  3189. goto done;
  3190. }
  3191. local->sta_sw_scanning = 0;
  3192. if (ieee80211_hw_config(local))
  3193. printk(KERN_DEBUG "%s: failed to restore operational "
  3194. "channel after scan\n", dev->name);
  3195. netif_tx_lock_bh(local->mdev);
  3196. local->filter_flags &= ~FIF_BCN_PRBRESP_PROMISC;
  3197. local->ops->configure_filter(local_to_hw(local),
  3198. FIF_BCN_PRBRESP_PROMISC,
  3199. &local->filter_flags,
  3200. local->mdev->mc_count,
  3201. local->mdev->mc_list);
  3202. netif_tx_unlock_bh(local->mdev);
  3203. rcu_read_lock();
  3204. list_for_each_entry_rcu(sdata, &local->interfaces, list) {
  3205. /* No need to wake the master device. */
  3206. if (sdata->dev == local->mdev)
  3207. continue;
  3208. /* Tell AP we're back */
  3209. if (sdata->vif.type == IEEE80211_IF_TYPE_STA &&
  3210. sdata->u.sta.flags & IEEE80211_STA_ASSOCIATED)
  3211. ieee80211_send_nullfunc(local, sdata, 0);
  3212. ieee80211_restart_sta_timer(sdata);
  3213. netif_wake_queue(sdata->dev);
  3214. }
  3215. rcu_read_unlock();
  3216. done:
  3217. sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  3218. if (sdata->vif.type == IEEE80211_IF_TYPE_IBSS) {
  3219. struct ieee80211_if_sta *ifsta = &sdata->u.sta;
  3220. if (!(ifsta->flags & IEEE80211_STA_BSSID_SET) ||
  3221. (!ifsta->state == IEEE80211_IBSS_JOINED &&
  3222. !ieee80211_sta_active_ibss(dev)))
  3223. ieee80211_sta_find_ibss(dev, ifsta);
  3224. }
  3225. }
  3226. EXPORT_SYMBOL(ieee80211_scan_completed);
  3227. void ieee80211_sta_scan_work(struct work_struct *work)
  3228. {
  3229. struct ieee80211_local *local =
  3230. container_of(work, struct ieee80211_local, scan_work.work);
  3231. struct net_device *dev = local->scan_dev;
  3232. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  3233. struct ieee80211_supported_band *sband;
  3234. struct ieee80211_channel *chan;
  3235. int skip;
  3236. unsigned long next_delay = 0;
  3237. if (!local->sta_sw_scanning)
  3238. return;
  3239. switch (local->scan_state) {
  3240. case SCAN_SET_CHANNEL:
  3241. /*
  3242. * Get current scan band. scan_band may be IEEE80211_NUM_BANDS
  3243. * after we successfully scanned the last channel of the last
  3244. * band (and the last band is supported by the hw)
  3245. */
  3246. if (local->scan_band < IEEE80211_NUM_BANDS)
  3247. sband = local->hw.wiphy->bands[local->scan_band];
  3248. else
  3249. sband = NULL;
  3250. /*
  3251. * If we are at an unsupported band and have more bands
  3252. * left to scan, advance to the next supported one.
  3253. */
  3254. while (!sband && local->scan_band < IEEE80211_NUM_BANDS - 1) {
  3255. local->scan_band++;
  3256. sband = local->hw.wiphy->bands[local->scan_band];
  3257. local->scan_channel_idx = 0;
  3258. }
  3259. /* if no more bands/channels left, complete scan */
  3260. if (!sband || local->scan_channel_idx >= sband->n_channels) {
  3261. ieee80211_scan_completed(local_to_hw(local));
  3262. return;
  3263. }
  3264. skip = 0;
  3265. chan = &sband->channels[local->scan_channel_idx];
  3266. if (chan->flags & IEEE80211_CHAN_DISABLED ||
  3267. (sdata->vif.type == IEEE80211_IF_TYPE_IBSS &&
  3268. chan->flags & IEEE80211_CHAN_NO_IBSS))
  3269. skip = 1;
  3270. if (!skip) {
  3271. local->scan_channel = chan;
  3272. if (ieee80211_hw_config(local)) {
  3273. printk(KERN_DEBUG "%s: failed to set freq to "
  3274. "%d MHz for scan\n", dev->name,
  3275. chan->center_freq);
  3276. skip = 1;
  3277. }
  3278. }
  3279. /* advance state machine to next channel/band */
  3280. local->scan_channel_idx++;
  3281. if (local->scan_channel_idx >= sband->n_channels) {
  3282. /*
  3283. * scan_band may end up == IEEE80211_NUM_BANDS, but
  3284. * we'll catch that case above and complete the scan
  3285. * if that is the case.
  3286. */
  3287. local->scan_band++;
  3288. local->scan_channel_idx = 0;
  3289. }
  3290. if (skip)
  3291. break;
  3292. next_delay = IEEE80211_PROBE_DELAY +
  3293. usecs_to_jiffies(local->hw.channel_change_time);
  3294. local->scan_state = SCAN_SEND_PROBE;
  3295. break;
  3296. case SCAN_SEND_PROBE:
  3297. next_delay = IEEE80211_PASSIVE_CHANNEL_TIME;
  3298. local->scan_state = SCAN_SET_CHANNEL;
  3299. if (local->scan_channel->flags & IEEE80211_CHAN_PASSIVE_SCAN)
  3300. break;
  3301. ieee80211_send_probe_req(dev, NULL, local->scan_ssid,
  3302. local->scan_ssid_len);
  3303. next_delay = IEEE80211_CHANNEL_TIME;
  3304. break;
  3305. }
  3306. if (local->sta_sw_scanning)
  3307. queue_delayed_work(local->hw.workqueue, &local->scan_work,
  3308. next_delay);
  3309. }
  3310. static int ieee80211_sta_start_scan(struct net_device *dev,
  3311. u8 *ssid, size_t ssid_len)
  3312. {
  3313. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  3314. struct ieee80211_sub_if_data *sdata;
  3315. if (ssid_len > IEEE80211_MAX_SSID_LEN)
  3316. return -EINVAL;
  3317. /* MLME-SCAN.request (page 118) page 144 (11.1.3.1)
  3318. * BSSType: INFRASTRUCTURE, INDEPENDENT, ANY_BSS
  3319. * BSSID: MACAddress
  3320. * SSID
  3321. * ScanType: ACTIVE, PASSIVE
  3322. * ProbeDelay: delay (in microseconds) to be used prior to transmitting
  3323. * a Probe frame during active scanning
  3324. * ChannelList
  3325. * MinChannelTime (>= ProbeDelay), in TU
  3326. * MaxChannelTime: (>= MinChannelTime), in TU
  3327. */
  3328. /* MLME-SCAN.confirm
  3329. * BSSDescriptionSet
  3330. * ResultCode: SUCCESS, INVALID_PARAMETERS
  3331. */
  3332. if (local->sta_sw_scanning || local->sta_hw_scanning) {
  3333. if (local->scan_dev == dev)
  3334. return 0;
  3335. return -EBUSY;
  3336. }
  3337. if (local->ops->hw_scan) {
  3338. int rc = local->ops->hw_scan(local_to_hw(local),
  3339. ssid, ssid_len);
  3340. if (!rc) {
  3341. local->sta_hw_scanning = 1;
  3342. local->scan_dev = dev;
  3343. }
  3344. return rc;
  3345. }
  3346. local->sta_sw_scanning = 1;
  3347. rcu_read_lock();
  3348. list_for_each_entry_rcu(sdata, &local->interfaces, list) {
  3349. /* Don't stop the master interface, otherwise we can't transmit
  3350. * probes! */
  3351. if (sdata->dev == local->mdev)
  3352. continue;
  3353. netif_stop_queue(sdata->dev);
  3354. if (sdata->vif.type == IEEE80211_IF_TYPE_STA &&
  3355. (sdata->u.sta.flags & IEEE80211_STA_ASSOCIATED))
  3356. ieee80211_send_nullfunc(local, sdata, 1);
  3357. }
  3358. rcu_read_unlock();
  3359. if (ssid) {
  3360. local->scan_ssid_len = ssid_len;
  3361. memcpy(local->scan_ssid, ssid, ssid_len);
  3362. } else
  3363. local->scan_ssid_len = 0;
  3364. local->scan_state = SCAN_SET_CHANNEL;
  3365. local->scan_channel_idx = 0;
  3366. local->scan_band = IEEE80211_BAND_2GHZ;
  3367. local->scan_dev = dev;
  3368. netif_tx_lock_bh(local->mdev);
  3369. local->filter_flags |= FIF_BCN_PRBRESP_PROMISC;
  3370. local->ops->configure_filter(local_to_hw(local),
  3371. FIF_BCN_PRBRESP_PROMISC,
  3372. &local->filter_flags,
  3373. local->mdev->mc_count,
  3374. local->mdev->mc_list);
  3375. netif_tx_unlock_bh(local->mdev);
  3376. /* TODO: start scan as soon as all nullfunc frames are ACKed */
  3377. queue_delayed_work(local->hw.workqueue, &local->scan_work,
  3378. IEEE80211_CHANNEL_TIME);
  3379. return 0;
  3380. }
  3381. int ieee80211_sta_req_scan(struct net_device *dev, u8 *ssid, size_t ssid_len)
  3382. {
  3383. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  3384. struct ieee80211_if_sta *ifsta = &sdata->u.sta;
  3385. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  3386. if (sdata->vif.type != IEEE80211_IF_TYPE_STA)
  3387. return ieee80211_sta_start_scan(dev, ssid, ssid_len);
  3388. if (local->sta_sw_scanning || local->sta_hw_scanning) {
  3389. if (local->scan_dev == dev)
  3390. return 0;
  3391. return -EBUSY;
  3392. }
  3393. ifsta->scan_ssid_len = ssid_len;
  3394. if (ssid_len)
  3395. memcpy(ifsta->scan_ssid, ssid, ssid_len);
  3396. set_bit(IEEE80211_STA_REQ_SCAN, &ifsta->request);
  3397. queue_work(local->hw.workqueue, &ifsta->work);
  3398. return 0;
  3399. }
  3400. static char *
  3401. ieee80211_sta_scan_result(struct net_device *dev,
  3402. struct ieee80211_sta_bss *bss,
  3403. char *current_ev, char *end_buf)
  3404. {
  3405. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  3406. struct iw_event iwe;
  3407. if (time_after(jiffies,
  3408. bss->last_update + IEEE80211_SCAN_RESULT_EXPIRE))
  3409. return current_ev;
  3410. memset(&iwe, 0, sizeof(iwe));
  3411. iwe.cmd = SIOCGIWAP;
  3412. iwe.u.ap_addr.sa_family = ARPHRD_ETHER;
  3413. memcpy(iwe.u.ap_addr.sa_data, bss->bssid, ETH_ALEN);
  3414. current_ev = iwe_stream_add_event(current_ev, end_buf, &iwe,
  3415. IW_EV_ADDR_LEN);
  3416. memset(&iwe, 0, sizeof(iwe));
  3417. iwe.cmd = SIOCGIWESSID;
  3418. if (bss_mesh_cfg(bss)) {
  3419. iwe.u.data.length = bss_mesh_id_len(bss);
  3420. iwe.u.data.flags = 1;
  3421. current_ev = iwe_stream_add_point(current_ev, end_buf, &iwe,
  3422. bss_mesh_id(bss));
  3423. } else {
  3424. iwe.u.data.length = bss->ssid_len;
  3425. iwe.u.data.flags = 1;
  3426. current_ev = iwe_stream_add_point(current_ev, end_buf, &iwe,
  3427. bss->ssid);
  3428. }
  3429. if (bss->capability & (WLAN_CAPABILITY_ESS | WLAN_CAPABILITY_IBSS)
  3430. || bss_mesh_cfg(bss)) {
  3431. memset(&iwe, 0, sizeof(iwe));
  3432. iwe.cmd = SIOCGIWMODE;
  3433. if (bss_mesh_cfg(bss))
  3434. iwe.u.mode = IW_MODE_MESH;
  3435. else if (bss->capability & WLAN_CAPABILITY_ESS)
  3436. iwe.u.mode = IW_MODE_MASTER;
  3437. else
  3438. iwe.u.mode = IW_MODE_ADHOC;
  3439. current_ev = iwe_stream_add_event(current_ev, end_buf, &iwe,
  3440. IW_EV_UINT_LEN);
  3441. }
  3442. memset(&iwe, 0, sizeof(iwe));
  3443. iwe.cmd = SIOCGIWFREQ;
  3444. iwe.u.freq.m = bss->freq;
  3445. iwe.u.freq.e = 6;
  3446. current_ev = iwe_stream_add_event(current_ev, end_buf, &iwe,
  3447. IW_EV_FREQ_LEN);
  3448. memset(&iwe, 0, sizeof(iwe));
  3449. iwe.cmd = SIOCGIWFREQ;
  3450. iwe.u.freq.m = ieee80211_frequency_to_channel(bss->freq);
  3451. iwe.u.freq.e = 0;
  3452. current_ev = iwe_stream_add_event(current_ev, end_buf, &iwe,
  3453. IW_EV_FREQ_LEN);
  3454. memset(&iwe, 0, sizeof(iwe));
  3455. iwe.cmd = IWEVQUAL;
  3456. iwe.u.qual.qual = bss->signal;
  3457. iwe.u.qual.level = bss->rssi;
  3458. iwe.u.qual.noise = bss->noise;
  3459. iwe.u.qual.updated = local->wstats_flags;
  3460. current_ev = iwe_stream_add_event(current_ev, end_buf, &iwe,
  3461. IW_EV_QUAL_LEN);
  3462. memset(&iwe, 0, sizeof(iwe));
  3463. iwe.cmd = SIOCGIWENCODE;
  3464. if (bss->capability & WLAN_CAPABILITY_PRIVACY)
  3465. iwe.u.data.flags = IW_ENCODE_ENABLED | IW_ENCODE_NOKEY;
  3466. else
  3467. iwe.u.data.flags = IW_ENCODE_DISABLED;
  3468. iwe.u.data.length = 0;
  3469. current_ev = iwe_stream_add_point(current_ev, end_buf, &iwe, "");
  3470. if (bss && bss->wpa_ie) {
  3471. memset(&iwe, 0, sizeof(iwe));
  3472. iwe.cmd = IWEVGENIE;
  3473. iwe.u.data.length = bss->wpa_ie_len;
  3474. current_ev = iwe_stream_add_point(current_ev, end_buf, &iwe,
  3475. bss->wpa_ie);
  3476. }
  3477. if (bss && bss->rsn_ie) {
  3478. memset(&iwe, 0, sizeof(iwe));
  3479. iwe.cmd = IWEVGENIE;
  3480. iwe.u.data.length = bss->rsn_ie_len;
  3481. current_ev = iwe_stream_add_point(current_ev, end_buf, &iwe,
  3482. bss->rsn_ie);
  3483. }
  3484. if (bss && bss->supp_rates_len > 0) {
  3485. /* display all supported rates in readable format */
  3486. char *p = current_ev + IW_EV_LCP_LEN;
  3487. int i;
  3488. memset(&iwe, 0, sizeof(iwe));
  3489. iwe.cmd = SIOCGIWRATE;
  3490. /* Those two flags are ignored... */
  3491. iwe.u.bitrate.fixed = iwe.u.bitrate.disabled = 0;
  3492. for (i = 0; i < bss->supp_rates_len; i++) {
  3493. iwe.u.bitrate.value = ((bss->supp_rates[i] &
  3494. 0x7f) * 500000);
  3495. p = iwe_stream_add_value(current_ev, p,
  3496. end_buf, &iwe, IW_EV_PARAM_LEN);
  3497. }
  3498. current_ev = p;
  3499. }
  3500. if (bss) {
  3501. char *buf;
  3502. buf = kmalloc(30, GFP_ATOMIC);
  3503. if (buf) {
  3504. memset(&iwe, 0, sizeof(iwe));
  3505. iwe.cmd = IWEVCUSTOM;
  3506. sprintf(buf, "tsf=%016llx", (unsigned long long)(bss->timestamp));
  3507. iwe.u.data.length = strlen(buf);
  3508. current_ev = iwe_stream_add_point(current_ev, end_buf,
  3509. &iwe, buf);
  3510. kfree(buf);
  3511. }
  3512. }
  3513. if (bss_mesh_cfg(bss)) {
  3514. char *buf;
  3515. u8 *cfg = bss_mesh_cfg(bss);
  3516. buf = kmalloc(50, GFP_ATOMIC);
  3517. if (buf) {
  3518. memset(&iwe, 0, sizeof(iwe));
  3519. iwe.cmd = IWEVCUSTOM;
  3520. sprintf(buf, "Mesh network (version %d)", cfg[0]);
  3521. iwe.u.data.length = strlen(buf);
  3522. current_ev = iwe_stream_add_point(current_ev, end_buf,
  3523. &iwe, buf);
  3524. sprintf(buf, "Path Selection Protocol ID: "
  3525. "0x%02X%02X%02X%02X", cfg[1], cfg[2], cfg[3],
  3526. cfg[4]);
  3527. iwe.u.data.length = strlen(buf);
  3528. current_ev = iwe_stream_add_point(current_ev, end_buf,
  3529. &iwe, buf);
  3530. sprintf(buf, "Path Selection Metric ID: "
  3531. "0x%02X%02X%02X%02X", cfg[5], cfg[6], cfg[7],
  3532. cfg[8]);
  3533. iwe.u.data.length = strlen(buf);
  3534. current_ev = iwe_stream_add_point(current_ev, end_buf,
  3535. &iwe, buf);
  3536. sprintf(buf, "Congestion Control Mode ID: "
  3537. "0x%02X%02X%02X%02X", cfg[9], cfg[10],
  3538. cfg[11], cfg[12]);
  3539. iwe.u.data.length = strlen(buf);
  3540. current_ev = iwe_stream_add_point(current_ev, end_buf,
  3541. &iwe, buf);
  3542. sprintf(buf, "Channel Precedence: "
  3543. "0x%02X%02X%02X%02X", cfg[13], cfg[14],
  3544. cfg[15], cfg[16]);
  3545. iwe.u.data.length = strlen(buf);
  3546. current_ev = iwe_stream_add_point(current_ev, end_buf,
  3547. &iwe, buf);
  3548. kfree(buf);
  3549. }
  3550. }
  3551. return current_ev;
  3552. }
  3553. int ieee80211_sta_scan_results(struct net_device *dev, char *buf, size_t len)
  3554. {
  3555. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  3556. char *current_ev = buf;
  3557. char *end_buf = buf + len;
  3558. struct ieee80211_sta_bss *bss;
  3559. spin_lock_bh(&local->sta_bss_lock);
  3560. list_for_each_entry(bss, &local->sta_bss_list, list) {
  3561. if (buf + len - current_ev <= IW_EV_ADDR_LEN) {
  3562. spin_unlock_bh(&local->sta_bss_lock);
  3563. return -E2BIG;
  3564. }
  3565. current_ev = ieee80211_sta_scan_result(dev, bss, current_ev,
  3566. end_buf);
  3567. }
  3568. spin_unlock_bh(&local->sta_bss_lock);
  3569. return current_ev - buf;
  3570. }
  3571. int ieee80211_sta_set_extra_ie(struct net_device *dev, char *ie, size_t len)
  3572. {
  3573. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  3574. struct ieee80211_if_sta *ifsta = &sdata->u.sta;
  3575. kfree(ifsta->extra_ie);
  3576. if (len == 0) {
  3577. ifsta->extra_ie = NULL;
  3578. ifsta->extra_ie_len = 0;
  3579. return 0;
  3580. }
  3581. ifsta->extra_ie = kmalloc(len, GFP_KERNEL);
  3582. if (!ifsta->extra_ie) {
  3583. ifsta->extra_ie_len = 0;
  3584. return -ENOMEM;
  3585. }
  3586. memcpy(ifsta->extra_ie, ie, len);
  3587. ifsta->extra_ie_len = len;
  3588. return 0;
  3589. }
  3590. struct sta_info *ieee80211_ibss_add_sta(struct net_device *dev,
  3591. struct sk_buff *skb, u8 *bssid,
  3592. u8 *addr)
  3593. {
  3594. struct ieee80211_local *local = wdev_priv(dev->ieee80211_ptr);
  3595. struct sta_info *sta;
  3596. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  3597. DECLARE_MAC_BUF(mac);
  3598. /* TODO: Could consider removing the least recently used entry and
  3599. * allow new one to be added. */
  3600. if (local->num_sta >= IEEE80211_IBSS_MAX_STA_ENTRIES) {
  3601. if (net_ratelimit()) {
  3602. printk(KERN_DEBUG "%s: No room for a new IBSS STA "
  3603. "entry %s\n", dev->name, print_mac(mac, addr));
  3604. }
  3605. return NULL;
  3606. }
  3607. printk(KERN_DEBUG "%s: Adding new IBSS station %s (dev=%s)\n",
  3608. wiphy_name(local->hw.wiphy), print_mac(mac, addr), dev->name);
  3609. sta = sta_info_alloc(sdata, addr, GFP_ATOMIC);
  3610. if (!sta)
  3611. return NULL;
  3612. set_sta_flags(sta, WLAN_STA_AUTHORIZED);
  3613. sta->supp_rates[local->hw.conf.channel->band] =
  3614. sdata->u.sta.supp_rates_bits[local->hw.conf.channel->band];
  3615. rate_control_rate_init(sta, local);
  3616. if (sta_info_insert(sta))
  3617. return NULL;
  3618. return sta;
  3619. }
  3620. int ieee80211_sta_deauthenticate(struct net_device *dev, u16 reason)
  3621. {
  3622. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  3623. struct ieee80211_if_sta *ifsta = &sdata->u.sta;
  3624. printk(KERN_DEBUG "%s: deauthenticate(reason=%d)\n",
  3625. dev->name, reason);
  3626. if (sdata->vif.type != IEEE80211_IF_TYPE_STA &&
  3627. sdata->vif.type != IEEE80211_IF_TYPE_IBSS)
  3628. return -EINVAL;
  3629. ieee80211_send_deauth(dev, ifsta, reason);
  3630. ieee80211_set_disassoc(dev, ifsta, 1);
  3631. return 0;
  3632. }
  3633. int ieee80211_sta_disassociate(struct net_device *dev, u16 reason)
  3634. {
  3635. struct ieee80211_sub_if_data *sdata = IEEE80211_DEV_TO_SUB_IF(dev);
  3636. struct ieee80211_if_sta *ifsta = &sdata->u.sta;
  3637. printk(KERN_DEBUG "%s: disassociate(reason=%d)\n",
  3638. dev->name, reason);
  3639. if (sdata->vif.type != IEEE80211_IF_TYPE_STA)
  3640. return -EINVAL;
  3641. if (!(ifsta->flags & IEEE80211_STA_ASSOCIATED))
  3642. return -1;
  3643. ieee80211_send_disassoc(dev, ifsta, reason);
  3644. ieee80211_set_disassoc(dev, ifsta, 0);
  3645. return 0;
  3646. }
  3647. void ieee80211_notify_mac(struct ieee80211_hw *hw,
  3648. enum ieee80211_notification_types notif_type)
  3649. {
  3650. struct ieee80211_local *local = hw_to_local(hw);
  3651. struct ieee80211_sub_if_data *sdata;
  3652. switch (notif_type) {
  3653. case IEEE80211_NOTIFY_RE_ASSOC:
  3654. rcu_read_lock();
  3655. list_for_each_entry_rcu(sdata, &local->interfaces, list) {
  3656. if (sdata->vif.type == IEEE80211_IF_TYPE_STA) {
  3657. ieee80211_sta_req_auth(sdata->dev,
  3658. &sdata->u.sta);
  3659. }
  3660. }
  3661. rcu_read_unlock();
  3662. break;
  3663. }
  3664. }
  3665. EXPORT_SYMBOL(ieee80211_notify_mac);