cfg80211.c 21 KB

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  1. /*
  2. * Intel Wireless Multicomm 3200 WiFi driver
  3. *
  4. * Copyright (C) 2009 Intel Corporation <ilw@linux.intel.com>
  5. * Samuel Ortiz <samuel.ortiz@intel.com>
  6. * Zhu Yi <yi.zhu@intel.com>
  7. *
  8. * This program is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU General Public License version
  10. * 2 as published by the Free Software Foundation.
  11. *
  12. * This program is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. * GNU General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA
  20. * 02110-1301, USA.
  21. *
  22. */
  23. #include <linux/kernel.h>
  24. #include <linux/netdevice.h>
  25. #include <linux/sched.h>
  26. #include <linux/etherdevice.h>
  27. #include <linux/wireless.h>
  28. #include <linux/ieee80211.h>
  29. #include <linux/slab.h>
  30. #include <net/cfg80211.h>
  31. #include "iwm.h"
  32. #include "commands.h"
  33. #include "cfg80211.h"
  34. #include "debug.h"
  35. #define RATETAB_ENT(_rate, _rateid, _flags) \
  36. { \
  37. .bitrate = (_rate), \
  38. .hw_value = (_rateid), \
  39. .flags = (_flags), \
  40. }
  41. #define CHAN2G(_channel, _freq, _flags) { \
  42. .band = IEEE80211_BAND_2GHZ, \
  43. .center_freq = (_freq), \
  44. .hw_value = (_channel), \
  45. .flags = (_flags), \
  46. .max_antenna_gain = 0, \
  47. .max_power = 30, \
  48. }
  49. #define CHAN5G(_channel, _flags) { \
  50. .band = IEEE80211_BAND_5GHZ, \
  51. .center_freq = 5000 + (5 * (_channel)), \
  52. .hw_value = (_channel), \
  53. .flags = (_flags), \
  54. .max_antenna_gain = 0, \
  55. .max_power = 30, \
  56. }
  57. static struct ieee80211_rate iwm_rates[] = {
  58. RATETAB_ENT(10, 0x1, 0),
  59. RATETAB_ENT(20, 0x2, 0),
  60. RATETAB_ENT(55, 0x4, 0),
  61. RATETAB_ENT(110, 0x8, 0),
  62. RATETAB_ENT(60, 0x10, 0),
  63. RATETAB_ENT(90, 0x20, 0),
  64. RATETAB_ENT(120, 0x40, 0),
  65. RATETAB_ENT(180, 0x80, 0),
  66. RATETAB_ENT(240, 0x100, 0),
  67. RATETAB_ENT(360, 0x200, 0),
  68. RATETAB_ENT(480, 0x400, 0),
  69. RATETAB_ENT(540, 0x800, 0),
  70. };
  71. #define iwm_a_rates (iwm_rates + 4)
  72. #define iwm_a_rates_size 8
  73. #define iwm_g_rates (iwm_rates + 0)
  74. #define iwm_g_rates_size 12
  75. static struct ieee80211_channel iwm_2ghz_channels[] = {
  76. CHAN2G(1, 2412, 0),
  77. CHAN2G(2, 2417, 0),
  78. CHAN2G(3, 2422, 0),
  79. CHAN2G(4, 2427, 0),
  80. CHAN2G(5, 2432, 0),
  81. CHAN2G(6, 2437, 0),
  82. CHAN2G(7, 2442, 0),
  83. CHAN2G(8, 2447, 0),
  84. CHAN2G(9, 2452, 0),
  85. CHAN2G(10, 2457, 0),
  86. CHAN2G(11, 2462, 0),
  87. CHAN2G(12, 2467, 0),
  88. CHAN2G(13, 2472, 0),
  89. CHAN2G(14, 2484, 0),
  90. };
  91. static struct ieee80211_channel iwm_5ghz_a_channels[] = {
  92. CHAN5G(34, 0), CHAN5G(36, 0),
  93. CHAN5G(38, 0), CHAN5G(40, 0),
  94. CHAN5G(42, 0), CHAN5G(44, 0),
  95. CHAN5G(46, 0), CHAN5G(48, 0),
  96. CHAN5G(52, 0), CHAN5G(56, 0),
  97. CHAN5G(60, 0), CHAN5G(64, 0),
  98. CHAN5G(100, 0), CHAN5G(104, 0),
  99. CHAN5G(108, 0), CHAN5G(112, 0),
  100. CHAN5G(116, 0), CHAN5G(120, 0),
  101. CHAN5G(124, 0), CHAN5G(128, 0),
  102. CHAN5G(132, 0), CHAN5G(136, 0),
  103. CHAN5G(140, 0), CHAN5G(149, 0),
  104. CHAN5G(153, 0), CHAN5G(157, 0),
  105. CHAN5G(161, 0), CHAN5G(165, 0),
  106. CHAN5G(184, 0), CHAN5G(188, 0),
  107. CHAN5G(192, 0), CHAN5G(196, 0),
  108. CHAN5G(200, 0), CHAN5G(204, 0),
  109. CHAN5G(208, 0), CHAN5G(212, 0),
  110. CHAN5G(216, 0),
  111. };
  112. static struct ieee80211_supported_band iwm_band_2ghz = {
  113. .channels = iwm_2ghz_channels,
  114. .n_channels = ARRAY_SIZE(iwm_2ghz_channels),
  115. .bitrates = iwm_g_rates,
  116. .n_bitrates = iwm_g_rates_size,
  117. };
  118. static struct ieee80211_supported_band iwm_band_5ghz = {
  119. .channels = iwm_5ghz_a_channels,
  120. .n_channels = ARRAY_SIZE(iwm_5ghz_a_channels),
  121. .bitrates = iwm_a_rates,
  122. .n_bitrates = iwm_a_rates_size,
  123. };
  124. static int iwm_key_init(struct iwm_key *key, u8 key_index,
  125. const u8 *mac_addr, struct key_params *params)
  126. {
  127. key->hdr.key_idx = key_index;
  128. if (!mac_addr || is_broadcast_ether_addr(mac_addr)) {
  129. key->hdr.multicast = 1;
  130. memset(key->hdr.mac, 0xff, ETH_ALEN);
  131. } else {
  132. key->hdr.multicast = 0;
  133. memcpy(key->hdr.mac, mac_addr, ETH_ALEN);
  134. }
  135. if (params) {
  136. if (params->key_len > WLAN_MAX_KEY_LEN ||
  137. params->seq_len > IW_ENCODE_SEQ_MAX_SIZE)
  138. return -EINVAL;
  139. key->cipher = params->cipher;
  140. key->key_len = params->key_len;
  141. key->seq_len = params->seq_len;
  142. memcpy(key->key, params->key, key->key_len);
  143. memcpy(key->seq, params->seq, key->seq_len);
  144. }
  145. return 0;
  146. }
  147. static int iwm_cfg80211_add_key(struct wiphy *wiphy, struct net_device *ndev,
  148. u8 key_index, bool pairwise, const u8 *mac_addr,
  149. struct key_params *params)
  150. {
  151. struct iwm_priv *iwm = ndev_to_iwm(ndev);
  152. struct iwm_key *key = &iwm->keys[key_index];
  153. int ret;
  154. IWM_DBG_WEXT(iwm, DBG, "Adding key for %pM\n", mac_addr);
  155. memset(key, 0, sizeof(struct iwm_key));
  156. ret = iwm_key_init(key, key_index, mac_addr, params);
  157. if (ret < 0) {
  158. IWM_ERR(iwm, "Invalid key_params\n");
  159. return ret;
  160. }
  161. return iwm_set_key(iwm, 0, key);
  162. }
  163. static int iwm_cfg80211_get_key(struct wiphy *wiphy, struct net_device *ndev,
  164. u8 key_index, bool pairwise, const u8 *mac_addr,
  165. void *cookie,
  166. void (*callback)(void *cookie,
  167. struct key_params*))
  168. {
  169. struct iwm_priv *iwm = ndev_to_iwm(ndev);
  170. struct iwm_key *key = &iwm->keys[key_index];
  171. struct key_params params;
  172. IWM_DBG_WEXT(iwm, DBG, "Getting key %d\n", key_index);
  173. memset(&params, 0, sizeof(params));
  174. params.cipher = key->cipher;
  175. params.key_len = key->key_len;
  176. params.seq_len = key->seq_len;
  177. params.seq = key->seq;
  178. params.key = key->key;
  179. callback(cookie, &params);
  180. return key->key_len ? 0 : -ENOENT;
  181. }
  182. static int iwm_cfg80211_del_key(struct wiphy *wiphy, struct net_device *ndev,
  183. u8 key_index, bool pairwise, const u8 *mac_addr)
  184. {
  185. struct iwm_priv *iwm = ndev_to_iwm(ndev);
  186. struct iwm_key *key = &iwm->keys[key_index];
  187. if (!iwm->keys[key_index].key_len) {
  188. IWM_DBG_WEXT(iwm, DBG, "Key %d not used\n", key_index);
  189. return 0;
  190. }
  191. if (key_index == iwm->default_key)
  192. iwm->default_key = -1;
  193. return iwm_set_key(iwm, 1, key);
  194. }
  195. static int iwm_cfg80211_set_default_key(struct wiphy *wiphy,
  196. struct net_device *ndev,
  197. u8 key_index)
  198. {
  199. struct iwm_priv *iwm = ndev_to_iwm(ndev);
  200. IWM_DBG_WEXT(iwm, DBG, "Default key index is: %d\n", key_index);
  201. if (!iwm->keys[key_index].key_len) {
  202. IWM_ERR(iwm, "Key %d not used\n", key_index);
  203. return -EINVAL;
  204. }
  205. iwm->default_key = key_index;
  206. return iwm_set_tx_key(iwm, key_index);
  207. }
  208. static int iwm_cfg80211_get_station(struct wiphy *wiphy,
  209. struct net_device *ndev,
  210. u8 *mac, struct station_info *sinfo)
  211. {
  212. struct iwm_priv *iwm = ndev_to_iwm(ndev);
  213. if (memcmp(mac, iwm->bssid, ETH_ALEN))
  214. return -ENOENT;
  215. sinfo->filled |= STATION_INFO_TX_BITRATE;
  216. sinfo->txrate.legacy = iwm->rate * 10;
  217. if (test_bit(IWM_STATUS_ASSOCIATED, &iwm->status)) {
  218. sinfo->filled |= STATION_INFO_SIGNAL;
  219. sinfo->signal = iwm->wstats.qual.level;
  220. }
  221. return 0;
  222. }
  223. int iwm_cfg80211_inform_bss(struct iwm_priv *iwm)
  224. {
  225. struct wiphy *wiphy = iwm_to_wiphy(iwm);
  226. struct iwm_bss_info *bss;
  227. struct iwm_umac_notif_bss_info *umac_bss;
  228. struct ieee80211_mgmt *mgmt;
  229. struct ieee80211_channel *channel;
  230. struct ieee80211_supported_band *band;
  231. s32 signal;
  232. int freq;
  233. list_for_each_entry(bss, &iwm->bss_list, node) {
  234. umac_bss = bss->bss;
  235. mgmt = (struct ieee80211_mgmt *)(umac_bss->frame_buf);
  236. if (umac_bss->band == UMAC_BAND_2GHZ)
  237. band = wiphy->bands[IEEE80211_BAND_2GHZ];
  238. else if (umac_bss->band == UMAC_BAND_5GHZ)
  239. band = wiphy->bands[IEEE80211_BAND_5GHZ];
  240. else {
  241. IWM_ERR(iwm, "Invalid band: %d\n", umac_bss->band);
  242. return -EINVAL;
  243. }
  244. freq = ieee80211_channel_to_frequency(umac_bss->channel);
  245. channel = ieee80211_get_channel(wiphy, freq);
  246. signal = umac_bss->rssi * 100;
  247. if (!cfg80211_inform_bss_frame(wiphy, channel, mgmt,
  248. le16_to_cpu(umac_bss->frame_len),
  249. signal, GFP_KERNEL))
  250. return -EINVAL;
  251. }
  252. return 0;
  253. }
  254. static int iwm_cfg80211_change_iface(struct wiphy *wiphy,
  255. struct net_device *ndev,
  256. enum nl80211_iftype type, u32 *flags,
  257. struct vif_params *params)
  258. {
  259. struct wireless_dev *wdev;
  260. struct iwm_priv *iwm;
  261. u32 old_mode;
  262. wdev = ndev->ieee80211_ptr;
  263. iwm = ndev_to_iwm(ndev);
  264. old_mode = iwm->conf.mode;
  265. switch (type) {
  266. case NL80211_IFTYPE_STATION:
  267. iwm->conf.mode = UMAC_MODE_BSS;
  268. break;
  269. case NL80211_IFTYPE_ADHOC:
  270. iwm->conf.mode = UMAC_MODE_IBSS;
  271. break;
  272. default:
  273. return -EOPNOTSUPP;
  274. }
  275. wdev->iftype = type;
  276. if ((old_mode == iwm->conf.mode) || !iwm->umac_profile)
  277. return 0;
  278. iwm->umac_profile->mode = cpu_to_le32(iwm->conf.mode);
  279. if (iwm->umac_profile_active)
  280. iwm_invalidate_mlme_profile(iwm);
  281. return 0;
  282. }
  283. static int iwm_cfg80211_scan(struct wiphy *wiphy, struct net_device *ndev,
  284. struct cfg80211_scan_request *request)
  285. {
  286. struct iwm_priv *iwm = ndev_to_iwm(ndev);
  287. int ret;
  288. if (!test_bit(IWM_STATUS_READY, &iwm->status)) {
  289. IWM_ERR(iwm, "Scan while device is not ready\n");
  290. return -EIO;
  291. }
  292. if (test_bit(IWM_STATUS_SCANNING, &iwm->status)) {
  293. IWM_ERR(iwm, "Scanning already\n");
  294. return -EAGAIN;
  295. }
  296. if (test_bit(IWM_STATUS_SCAN_ABORTING, &iwm->status)) {
  297. IWM_ERR(iwm, "Scanning being aborted\n");
  298. return -EAGAIN;
  299. }
  300. set_bit(IWM_STATUS_SCANNING, &iwm->status);
  301. ret = iwm_scan_ssids(iwm, request->ssids, request->n_ssids);
  302. if (ret) {
  303. clear_bit(IWM_STATUS_SCANNING, &iwm->status);
  304. return ret;
  305. }
  306. iwm->scan_request = request;
  307. return 0;
  308. }
  309. static int iwm_cfg80211_set_wiphy_params(struct wiphy *wiphy, u32 changed)
  310. {
  311. struct iwm_priv *iwm = wiphy_to_iwm(wiphy);
  312. if (changed & WIPHY_PARAM_RTS_THRESHOLD &&
  313. (iwm->conf.rts_threshold != wiphy->rts_threshold)) {
  314. int ret;
  315. iwm->conf.rts_threshold = wiphy->rts_threshold;
  316. ret = iwm_umac_set_config_fix(iwm, UMAC_PARAM_TBL_CFG_FIX,
  317. CFG_RTS_THRESHOLD,
  318. iwm->conf.rts_threshold);
  319. if (ret < 0)
  320. return ret;
  321. }
  322. if (changed & WIPHY_PARAM_FRAG_THRESHOLD &&
  323. (iwm->conf.frag_threshold != wiphy->frag_threshold)) {
  324. int ret;
  325. iwm->conf.frag_threshold = wiphy->frag_threshold;
  326. ret = iwm_umac_set_config_fix(iwm, UMAC_PARAM_TBL_FA_CFG_FIX,
  327. CFG_FRAG_THRESHOLD,
  328. iwm->conf.frag_threshold);
  329. if (ret < 0)
  330. return ret;
  331. }
  332. return 0;
  333. }
  334. static int iwm_cfg80211_join_ibss(struct wiphy *wiphy, struct net_device *dev,
  335. struct cfg80211_ibss_params *params)
  336. {
  337. struct iwm_priv *iwm = wiphy_to_iwm(wiphy);
  338. struct ieee80211_channel *chan = params->channel;
  339. if (!test_bit(IWM_STATUS_READY, &iwm->status))
  340. return -EIO;
  341. /* UMAC doesn't support creating or joining an IBSS network
  342. * with specified bssid. */
  343. if (params->bssid)
  344. return -EOPNOTSUPP;
  345. iwm->channel = ieee80211_frequency_to_channel(chan->center_freq);
  346. iwm->umac_profile->ibss.band = chan->band;
  347. iwm->umac_profile->ibss.channel = iwm->channel;
  348. iwm->umac_profile->ssid.ssid_len = params->ssid_len;
  349. memcpy(iwm->umac_profile->ssid.ssid, params->ssid, params->ssid_len);
  350. return iwm_send_mlme_profile(iwm);
  351. }
  352. static int iwm_cfg80211_leave_ibss(struct wiphy *wiphy, struct net_device *dev)
  353. {
  354. struct iwm_priv *iwm = wiphy_to_iwm(wiphy);
  355. if (iwm->umac_profile_active)
  356. return iwm_invalidate_mlme_profile(iwm);
  357. return 0;
  358. }
  359. static int iwm_set_auth_type(struct iwm_priv *iwm,
  360. enum nl80211_auth_type sme_auth_type)
  361. {
  362. u8 *auth_type = &iwm->umac_profile->sec.auth_type;
  363. switch (sme_auth_type) {
  364. case NL80211_AUTHTYPE_AUTOMATIC:
  365. case NL80211_AUTHTYPE_OPEN_SYSTEM:
  366. IWM_DBG_WEXT(iwm, DBG, "OPEN auth\n");
  367. *auth_type = UMAC_AUTH_TYPE_OPEN;
  368. break;
  369. case NL80211_AUTHTYPE_SHARED_KEY:
  370. if (iwm->umac_profile->sec.flags &
  371. (UMAC_SEC_FLG_WPA_ON_MSK | UMAC_SEC_FLG_RSNA_ON_MSK)) {
  372. IWM_DBG_WEXT(iwm, DBG, "WPA auth alg\n");
  373. *auth_type = UMAC_AUTH_TYPE_RSNA_PSK;
  374. } else {
  375. IWM_DBG_WEXT(iwm, DBG, "WEP shared key auth alg\n");
  376. *auth_type = UMAC_AUTH_TYPE_LEGACY_PSK;
  377. }
  378. break;
  379. default:
  380. IWM_ERR(iwm, "Unsupported auth alg: 0x%x\n", sme_auth_type);
  381. return -ENOTSUPP;
  382. }
  383. return 0;
  384. }
  385. static int iwm_set_wpa_version(struct iwm_priv *iwm, u32 wpa_version)
  386. {
  387. IWM_DBG_WEXT(iwm, DBG, "wpa_version: %d\n", wpa_version);
  388. if (!wpa_version) {
  389. iwm->umac_profile->sec.flags = UMAC_SEC_FLG_LEGACY_PROFILE;
  390. return 0;
  391. }
  392. if (wpa_version & NL80211_WPA_VERSION_1)
  393. iwm->umac_profile->sec.flags = UMAC_SEC_FLG_WPA_ON_MSK;
  394. if (wpa_version & NL80211_WPA_VERSION_2)
  395. iwm->umac_profile->sec.flags = UMAC_SEC_FLG_RSNA_ON_MSK;
  396. return 0;
  397. }
  398. static int iwm_set_cipher(struct iwm_priv *iwm, u32 cipher, bool ucast)
  399. {
  400. u8 *profile_cipher = ucast ? &iwm->umac_profile->sec.ucast_cipher :
  401. &iwm->umac_profile->sec.mcast_cipher;
  402. if (!cipher) {
  403. *profile_cipher = UMAC_CIPHER_TYPE_NONE;
  404. return 0;
  405. }
  406. IWM_DBG_WEXT(iwm, DBG, "%ccast cipher is 0x%x\n", ucast ? 'u' : 'm',
  407. cipher);
  408. switch (cipher) {
  409. case IW_AUTH_CIPHER_NONE:
  410. *profile_cipher = UMAC_CIPHER_TYPE_NONE;
  411. break;
  412. case WLAN_CIPHER_SUITE_WEP40:
  413. *profile_cipher = UMAC_CIPHER_TYPE_WEP_40;
  414. break;
  415. case WLAN_CIPHER_SUITE_WEP104:
  416. *profile_cipher = UMAC_CIPHER_TYPE_WEP_104;
  417. break;
  418. case WLAN_CIPHER_SUITE_TKIP:
  419. *profile_cipher = UMAC_CIPHER_TYPE_TKIP;
  420. break;
  421. case WLAN_CIPHER_SUITE_CCMP:
  422. *profile_cipher = UMAC_CIPHER_TYPE_CCMP;
  423. break;
  424. default:
  425. IWM_ERR(iwm, "Unsupported cipher: 0x%x\n", cipher);
  426. return -ENOTSUPP;
  427. }
  428. return 0;
  429. }
  430. static int iwm_set_key_mgt(struct iwm_priv *iwm, u32 key_mgt)
  431. {
  432. u8 *auth_type = &iwm->umac_profile->sec.auth_type;
  433. IWM_DBG_WEXT(iwm, DBG, "key_mgt: 0x%x\n", key_mgt);
  434. if (key_mgt == WLAN_AKM_SUITE_8021X)
  435. *auth_type = UMAC_AUTH_TYPE_8021X;
  436. else if (key_mgt == WLAN_AKM_SUITE_PSK) {
  437. if (iwm->umac_profile->sec.flags &
  438. (UMAC_SEC_FLG_WPA_ON_MSK | UMAC_SEC_FLG_RSNA_ON_MSK))
  439. *auth_type = UMAC_AUTH_TYPE_RSNA_PSK;
  440. else
  441. *auth_type = UMAC_AUTH_TYPE_LEGACY_PSK;
  442. } else {
  443. IWM_ERR(iwm, "Invalid key mgt: 0x%x\n", key_mgt);
  444. return -EINVAL;
  445. }
  446. return 0;
  447. }
  448. static int iwm_cfg80211_connect(struct wiphy *wiphy, struct net_device *dev,
  449. struct cfg80211_connect_params *sme)
  450. {
  451. struct iwm_priv *iwm = wiphy_to_iwm(wiphy);
  452. struct ieee80211_channel *chan = sme->channel;
  453. struct key_params key_param;
  454. int ret;
  455. if (!test_bit(IWM_STATUS_READY, &iwm->status))
  456. return -EIO;
  457. if (!sme->ssid)
  458. return -EINVAL;
  459. if (iwm->umac_profile_active) {
  460. ret = iwm_invalidate_mlme_profile(iwm);
  461. if (ret) {
  462. IWM_ERR(iwm, "Couldn't invalidate profile\n");
  463. return ret;
  464. }
  465. }
  466. if (chan)
  467. iwm->channel =
  468. ieee80211_frequency_to_channel(chan->center_freq);
  469. iwm->umac_profile->ssid.ssid_len = sme->ssid_len;
  470. memcpy(iwm->umac_profile->ssid.ssid, sme->ssid, sme->ssid_len);
  471. if (sme->bssid) {
  472. IWM_DBG_WEXT(iwm, DBG, "BSSID: %pM\n", sme->bssid);
  473. memcpy(&iwm->umac_profile->bssid[0], sme->bssid, ETH_ALEN);
  474. iwm->umac_profile->bss_num = 1;
  475. } else {
  476. memset(&iwm->umac_profile->bssid[0], 0, ETH_ALEN);
  477. iwm->umac_profile->bss_num = 0;
  478. }
  479. ret = iwm_set_wpa_version(iwm, sme->crypto.wpa_versions);
  480. if (ret < 0)
  481. return ret;
  482. ret = iwm_set_auth_type(iwm, sme->auth_type);
  483. if (ret < 0)
  484. return ret;
  485. if (sme->crypto.n_ciphers_pairwise) {
  486. ret = iwm_set_cipher(iwm, sme->crypto.ciphers_pairwise[0],
  487. true);
  488. if (ret < 0)
  489. return ret;
  490. }
  491. ret = iwm_set_cipher(iwm, sme->crypto.cipher_group, false);
  492. if (ret < 0)
  493. return ret;
  494. if (sme->crypto.n_akm_suites) {
  495. ret = iwm_set_key_mgt(iwm, sme->crypto.akm_suites[0]);
  496. if (ret < 0)
  497. return ret;
  498. }
  499. /*
  500. * We save the WEP key in case we want to do shared authentication.
  501. * We have to do it so because UMAC will assert whenever it gets a
  502. * key before a profile.
  503. */
  504. if (sme->key) {
  505. key_param.key = kmemdup(sme->key, sme->key_len, GFP_KERNEL);
  506. if (key_param.key == NULL)
  507. return -ENOMEM;
  508. key_param.key_len = sme->key_len;
  509. key_param.seq_len = 0;
  510. key_param.cipher = sme->crypto.ciphers_pairwise[0];
  511. ret = iwm_key_init(&iwm->keys[sme->key_idx], sme->key_idx,
  512. NULL, &key_param);
  513. kfree(key_param.key);
  514. if (ret < 0) {
  515. IWM_ERR(iwm, "Invalid key_params\n");
  516. return ret;
  517. }
  518. iwm->default_key = sme->key_idx;
  519. }
  520. /* WPA and open AUTH type from wpa_s means WPS (a.k.a. WSC) */
  521. if ((iwm->umac_profile->sec.flags &
  522. (UMAC_SEC_FLG_WPA_ON_MSK | UMAC_SEC_FLG_RSNA_ON_MSK)) &&
  523. iwm->umac_profile->sec.auth_type == UMAC_AUTH_TYPE_OPEN) {
  524. iwm->umac_profile->sec.flags = UMAC_SEC_FLG_WSC_ON_MSK;
  525. }
  526. ret = iwm_send_mlme_profile(iwm);
  527. if (iwm->umac_profile->sec.auth_type != UMAC_AUTH_TYPE_LEGACY_PSK ||
  528. sme->key == NULL)
  529. return ret;
  530. /*
  531. * We want to do shared auth.
  532. * We need to actually set the key we previously cached,
  533. * and then tell the UMAC it's the default one.
  534. * That will trigger the auth+assoc UMAC machinery, and again,
  535. * this must be done after setting the profile.
  536. */
  537. ret = iwm_set_key(iwm, 0, &iwm->keys[sme->key_idx]);
  538. if (ret < 0)
  539. return ret;
  540. return iwm_set_tx_key(iwm, iwm->default_key);
  541. }
  542. static int iwm_cfg80211_disconnect(struct wiphy *wiphy, struct net_device *dev,
  543. u16 reason_code)
  544. {
  545. struct iwm_priv *iwm = wiphy_to_iwm(wiphy);
  546. IWM_DBG_WEXT(iwm, DBG, "Active: %d\n", iwm->umac_profile_active);
  547. if (iwm->umac_profile_active)
  548. iwm_invalidate_mlme_profile(iwm);
  549. return 0;
  550. }
  551. static int iwm_cfg80211_set_txpower(struct wiphy *wiphy,
  552. enum nl80211_tx_power_setting type, int mbm)
  553. {
  554. struct iwm_priv *iwm = wiphy_to_iwm(wiphy);
  555. int ret;
  556. switch (type) {
  557. case NL80211_TX_POWER_AUTOMATIC:
  558. return 0;
  559. case NL80211_TX_POWER_FIXED:
  560. if (mbm < 0 || (mbm % 100))
  561. return -EOPNOTSUPP;
  562. if (!test_bit(IWM_STATUS_READY, &iwm->status))
  563. return 0;
  564. ret = iwm_umac_set_config_fix(iwm, UMAC_PARAM_TBL_CFG_FIX,
  565. CFG_TX_PWR_LIMIT_USR,
  566. MBM_TO_DBM(mbm) * 2);
  567. if (ret < 0)
  568. return ret;
  569. return iwm_tx_power_trigger(iwm);
  570. default:
  571. IWM_ERR(iwm, "Unsupported power type: %d\n", type);
  572. return -EOPNOTSUPP;
  573. }
  574. return 0;
  575. }
  576. static int iwm_cfg80211_get_txpower(struct wiphy *wiphy, int *dbm)
  577. {
  578. struct iwm_priv *iwm = wiphy_to_iwm(wiphy);
  579. *dbm = iwm->txpower >> 1;
  580. return 0;
  581. }
  582. static int iwm_cfg80211_set_power_mgmt(struct wiphy *wiphy,
  583. struct net_device *dev,
  584. bool enabled, int timeout)
  585. {
  586. struct iwm_priv *iwm = wiphy_to_iwm(wiphy);
  587. u32 power_index;
  588. if (enabled)
  589. power_index = IWM_POWER_INDEX_DEFAULT;
  590. else
  591. power_index = IWM_POWER_INDEX_MIN;
  592. if (power_index == iwm->conf.power_index)
  593. return 0;
  594. iwm->conf.power_index = power_index;
  595. return iwm_umac_set_config_fix(iwm, UMAC_PARAM_TBL_CFG_FIX,
  596. CFG_POWER_INDEX, iwm->conf.power_index);
  597. }
  598. static int iwm_cfg80211_set_pmksa(struct wiphy *wiphy,
  599. struct net_device *netdev,
  600. struct cfg80211_pmksa *pmksa)
  601. {
  602. struct iwm_priv *iwm = wiphy_to_iwm(wiphy);
  603. return iwm_send_pmkid_update(iwm, pmksa, IWM_CMD_PMKID_ADD);
  604. }
  605. static int iwm_cfg80211_del_pmksa(struct wiphy *wiphy,
  606. struct net_device *netdev,
  607. struct cfg80211_pmksa *pmksa)
  608. {
  609. struct iwm_priv *iwm = wiphy_to_iwm(wiphy);
  610. return iwm_send_pmkid_update(iwm, pmksa, IWM_CMD_PMKID_DEL);
  611. }
  612. static int iwm_cfg80211_flush_pmksa(struct wiphy *wiphy,
  613. struct net_device *netdev)
  614. {
  615. struct iwm_priv *iwm = wiphy_to_iwm(wiphy);
  616. struct cfg80211_pmksa pmksa;
  617. memset(&pmksa, 0, sizeof(struct cfg80211_pmksa));
  618. return iwm_send_pmkid_update(iwm, &pmksa, IWM_CMD_PMKID_FLUSH);
  619. }
  620. static struct cfg80211_ops iwm_cfg80211_ops = {
  621. .change_virtual_intf = iwm_cfg80211_change_iface,
  622. .add_key = iwm_cfg80211_add_key,
  623. .get_key = iwm_cfg80211_get_key,
  624. .del_key = iwm_cfg80211_del_key,
  625. .set_default_key = iwm_cfg80211_set_default_key,
  626. .get_station = iwm_cfg80211_get_station,
  627. .scan = iwm_cfg80211_scan,
  628. .set_wiphy_params = iwm_cfg80211_set_wiphy_params,
  629. .connect = iwm_cfg80211_connect,
  630. .disconnect = iwm_cfg80211_disconnect,
  631. .join_ibss = iwm_cfg80211_join_ibss,
  632. .leave_ibss = iwm_cfg80211_leave_ibss,
  633. .set_tx_power = iwm_cfg80211_set_txpower,
  634. .get_tx_power = iwm_cfg80211_get_txpower,
  635. .set_power_mgmt = iwm_cfg80211_set_power_mgmt,
  636. .set_pmksa = iwm_cfg80211_set_pmksa,
  637. .del_pmksa = iwm_cfg80211_del_pmksa,
  638. .flush_pmksa = iwm_cfg80211_flush_pmksa,
  639. };
  640. static const u32 cipher_suites[] = {
  641. WLAN_CIPHER_SUITE_WEP40,
  642. WLAN_CIPHER_SUITE_WEP104,
  643. WLAN_CIPHER_SUITE_TKIP,
  644. WLAN_CIPHER_SUITE_CCMP,
  645. };
  646. struct wireless_dev *iwm_wdev_alloc(int sizeof_bus, struct device *dev)
  647. {
  648. int ret = 0;
  649. struct wireless_dev *wdev;
  650. /*
  651. * We're trying to have the following memory
  652. * layout:
  653. *
  654. * +-------------------------+
  655. * | struct wiphy |
  656. * +-------------------------+
  657. * | struct iwm_priv |
  658. * +-------------------------+
  659. * | bus private data |
  660. * | (e.g. iwm_priv_sdio) |
  661. * +-------------------------+
  662. *
  663. */
  664. wdev = kzalloc(sizeof(struct wireless_dev), GFP_KERNEL);
  665. if (!wdev) {
  666. dev_err(dev, "Couldn't allocate wireless device\n");
  667. return ERR_PTR(-ENOMEM);
  668. }
  669. wdev->wiphy = wiphy_new(&iwm_cfg80211_ops,
  670. sizeof(struct iwm_priv) + sizeof_bus);
  671. if (!wdev->wiphy) {
  672. dev_err(dev, "Couldn't allocate wiphy device\n");
  673. ret = -ENOMEM;
  674. goto out_err_new;
  675. }
  676. set_wiphy_dev(wdev->wiphy, dev);
  677. wdev->wiphy->max_scan_ssids = UMAC_WIFI_IF_PROBE_OPTION_MAX;
  678. wdev->wiphy->max_num_pmkids = UMAC_MAX_NUM_PMKIDS;
  679. wdev->wiphy->interface_modes = BIT(NL80211_IFTYPE_STATION) |
  680. BIT(NL80211_IFTYPE_ADHOC);
  681. wdev->wiphy->bands[IEEE80211_BAND_2GHZ] = &iwm_band_2ghz;
  682. wdev->wiphy->bands[IEEE80211_BAND_5GHZ] = &iwm_band_5ghz;
  683. wdev->wiphy->signal_type = CFG80211_SIGNAL_TYPE_MBM;
  684. wdev->wiphy->cipher_suites = cipher_suites;
  685. wdev->wiphy->n_cipher_suites = ARRAY_SIZE(cipher_suites);
  686. ret = wiphy_register(wdev->wiphy);
  687. if (ret < 0) {
  688. dev_err(dev, "Couldn't register wiphy device\n");
  689. goto out_err_register;
  690. }
  691. return wdev;
  692. out_err_register:
  693. wiphy_free(wdev->wiphy);
  694. out_err_new:
  695. kfree(wdev);
  696. return ERR_PTR(ret);
  697. }
  698. void iwm_wdev_free(struct iwm_priv *iwm)
  699. {
  700. struct wireless_dev *wdev = iwm_to_wdev(iwm);
  701. if (!wdev)
  702. return;
  703. wiphy_unregister(wdev->wiphy);
  704. wiphy_free(wdev->wiphy);
  705. kfree(wdev);
  706. }