uap_cmd.c 20 KB

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  1. /*
  2. * Marvell Wireless LAN device driver: AP specific command handling
  3. *
  4. * Copyright (C) 2012, Marvell International Ltd.
  5. *
  6. * This software file (the "File") is distributed by Marvell International
  7. * Ltd. under the terms of the GNU General Public License Version 2, June 1991
  8. * (the "License"). You may use, redistribute and/or modify this File in
  9. * accordance with the terms and conditions of the License, a copy of which
  10. * is available by writing to the Free Software Foundation, Inc.,
  11. * 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA or on the
  12. * worldwide web at http://www.gnu.org/licenses/old-licenses/gpl-2.0.txt.
  13. *
  14. * THE FILE IS DISTRIBUTED AS-IS, WITHOUT WARRANTY OF ANY KIND, AND THE
  15. * IMPLIED WARRANTIES OF MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE
  16. * ARE EXPRESSLY DISCLAIMED. The License provides additional details about
  17. * this warranty disclaimer.
  18. */
  19. #include "main.h"
  20. /* This function parses security related parameters from cfg80211_ap_settings
  21. * and sets into FW understandable bss_config structure.
  22. */
  23. int mwifiex_set_secure_params(struct mwifiex_private *priv,
  24. struct mwifiex_uap_bss_param *bss_config,
  25. struct cfg80211_ap_settings *params) {
  26. int i;
  27. struct mwifiex_wep_key wep_key;
  28. if (!params->privacy) {
  29. bss_config->protocol = PROTOCOL_NO_SECURITY;
  30. bss_config->key_mgmt = KEY_MGMT_NONE;
  31. bss_config->wpa_cfg.length = 0;
  32. priv->sec_info.wep_enabled = 0;
  33. priv->sec_info.wpa_enabled = 0;
  34. priv->sec_info.wpa2_enabled = 0;
  35. return 0;
  36. }
  37. switch (params->auth_type) {
  38. case NL80211_AUTHTYPE_OPEN_SYSTEM:
  39. bss_config->auth_mode = WLAN_AUTH_OPEN;
  40. break;
  41. case NL80211_AUTHTYPE_SHARED_KEY:
  42. bss_config->auth_mode = WLAN_AUTH_SHARED_KEY;
  43. break;
  44. case NL80211_AUTHTYPE_NETWORK_EAP:
  45. bss_config->auth_mode = WLAN_AUTH_LEAP;
  46. break;
  47. default:
  48. bss_config->auth_mode = MWIFIEX_AUTH_MODE_AUTO;
  49. break;
  50. }
  51. bss_config->key_mgmt_operation |= KEY_MGMT_ON_HOST;
  52. for (i = 0; i < params->crypto.n_akm_suites; i++) {
  53. switch (params->crypto.akm_suites[i]) {
  54. case WLAN_AKM_SUITE_8021X:
  55. if (params->crypto.wpa_versions &
  56. NL80211_WPA_VERSION_1) {
  57. bss_config->protocol = PROTOCOL_WPA;
  58. bss_config->key_mgmt = KEY_MGMT_EAP;
  59. }
  60. if (params->crypto.wpa_versions &
  61. NL80211_WPA_VERSION_2) {
  62. bss_config->protocol |= PROTOCOL_WPA2;
  63. bss_config->key_mgmt = KEY_MGMT_EAP;
  64. }
  65. break;
  66. case WLAN_AKM_SUITE_PSK:
  67. if (params->crypto.wpa_versions &
  68. NL80211_WPA_VERSION_1) {
  69. bss_config->protocol = PROTOCOL_WPA;
  70. bss_config->key_mgmt = KEY_MGMT_PSK;
  71. }
  72. if (params->crypto.wpa_versions &
  73. NL80211_WPA_VERSION_2) {
  74. bss_config->protocol |= PROTOCOL_WPA2;
  75. bss_config->key_mgmt = KEY_MGMT_PSK;
  76. }
  77. break;
  78. default:
  79. break;
  80. }
  81. }
  82. for (i = 0; i < params->crypto.n_ciphers_pairwise; i++) {
  83. switch (params->crypto.ciphers_pairwise[i]) {
  84. case WLAN_CIPHER_SUITE_WEP40:
  85. case WLAN_CIPHER_SUITE_WEP104:
  86. break;
  87. case WLAN_CIPHER_SUITE_TKIP:
  88. if (params->crypto.wpa_versions & NL80211_WPA_VERSION_1)
  89. bss_config->wpa_cfg.pairwise_cipher_wpa |=
  90. CIPHER_TKIP;
  91. if (params->crypto.wpa_versions & NL80211_WPA_VERSION_2)
  92. bss_config->wpa_cfg.pairwise_cipher_wpa2 |=
  93. CIPHER_TKIP;
  94. break;
  95. case WLAN_CIPHER_SUITE_CCMP:
  96. if (params->crypto.wpa_versions & NL80211_WPA_VERSION_1)
  97. bss_config->wpa_cfg.pairwise_cipher_wpa |=
  98. CIPHER_AES_CCMP;
  99. if (params->crypto.wpa_versions & NL80211_WPA_VERSION_2)
  100. bss_config->wpa_cfg.pairwise_cipher_wpa2 |=
  101. CIPHER_AES_CCMP;
  102. default:
  103. break;
  104. }
  105. }
  106. switch (params->crypto.cipher_group) {
  107. case WLAN_CIPHER_SUITE_WEP40:
  108. case WLAN_CIPHER_SUITE_WEP104:
  109. if (priv->sec_info.wep_enabled) {
  110. bss_config->protocol = PROTOCOL_STATIC_WEP;
  111. bss_config->key_mgmt = KEY_MGMT_NONE;
  112. bss_config->wpa_cfg.length = 0;
  113. for (i = 0; i < NUM_WEP_KEYS; i++) {
  114. wep_key = priv->wep_key[i];
  115. bss_config->wep_cfg[i].key_index = i;
  116. if (priv->wep_key_curr_index == i)
  117. bss_config->wep_cfg[i].is_default = 1;
  118. else
  119. bss_config->wep_cfg[i].is_default = 0;
  120. bss_config->wep_cfg[i].length =
  121. wep_key.key_length;
  122. memcpy(&bss_config->wep_cfg[i].key,
  123. &wep_key.key_material,
  124. wep_key.key_length);
  125. }
  126. }
  127. break;
  128. case WLAN_CIPHER_SUITE_TKIP:
  129. bss_config->wpa_cfg.group_cipher = CIPHER_TKIP;
  130. break;
  131. case WLAN_CIPHER_SUITE_CCMP:
  132. bss_config->wpa_cfg.group_cipher = CIPHER_AES_CCMP;
  133. break;
  134. default:
  135. break;
  136. }
  137. return 0;
  138. }
  139. /* This function updates 11n related parameters from IE and sets them into
  140. * bss_config structure.
  141. */
  142. void
  143. mwifiex_set_ht_params(struct mwifiex_private *priv,
  144. struct mwifiex_uap_bss_param *bss_cfg,
  145. struct cfg80211_ap_settings *params)
  146. {
  147. const u8 *ht_ie;
  148. if (!ISSUPP_11NENABLED(priv->adapter->fw_cap_info))
  149. return;
  150. ht_ie = cfg80211_find_ie(WLAN_EID_HT_CAPABILITY, params->beacon.tail,
  151. params->beacon.tail_len);
  152. if (ht_ie) {
  153. memcpy(&bss_cfg->ht_cap, ht_ie + 2,
  154. sizeof(struct ieee80211_ht_cap));
  155. priv->ap_11n_enabled = 1;
  156. } else {
  157. memset(&bss_cfg->ht_cap , 0, sizeof(struct ieee80211_ht_cap));
  158. bss_cfg->ht_cap.cap_info = cpu_to_le16(MWIFIEX_DEF_HT_CAP);
  159. bss_cfg->ht_cap.ampdu_params_info = MWIFIEX_DEF_AMPDU;
  160. }
  161. return;
  162. }
  163. /* This function finds supported rates IE from beacon parameter and sets
  164. * these rates into bss_config structure.
  165. */
  166. void
  167. mwifiex_set_uap_rates(struct mwifiex_uap_bss_param *bss_cfg,
  168. struct cfg80211_ap_settings *params)
  169. {
  170. struct ieee_types_header *rate_ie;
  171. int var_offset = offsetof(struct ieee80211_mgmt, u.beacon.variable);
  172. const u8 *var_pos = params->beacon.head + var_offset;
  173. int len = params->beacon.head_len - var_offset;
  174. rate_ie = (void *)cfg80211_find_ie(WLAN_EID_SUPP_RATES, var_pos, len);
  175. if (rate_ie)
  176. memcpy(bss_cfg->rates, rate_ie + 1, rate_ie->len);
  177. return;
  178. }
  179. /* This function initializes some of mwifiex_uap_bss_param variables.
  180. * This helps FW in ignoring invalid values. These values may or may not
  181. * be get updated to valid ones at later stage.
  182. */
  183. void mwifiex_set_sys_config_invalid_data(struct mwifiex_uap_bss_param *config)
  184. {
  185. config->bcast_ssid_ctl = 0x7F;
  186. config->radio_ctl = 0x7F;
  187. config->dtim_period = 0x7F;
  188. config->beacon_period = 0x7FFF;
  189. config->auth_mode = 0x7F;
  190. config->rts_threshold = 0x7FFF;
  191. config->frag_threshold = 0x7FFF;
  192. config->retry_limit = 0x7F;
  193. }
  194. /* This function parses BSS related parameters from structure
  195. * and prepares TLVs specific to WPA/WPA2 security.
  196. * These TLVs are appended to command buffer.
  197. */
  198. static void
  199. mwifiex_uap_bss_wpa(u8 **tlv_buf, void *cmd_buf, u16 *param_size)
  200. {
  201. struct host_cmd_tlv_pwk_cipher *pwk_cipher;
  202. struct host_cmd_tlv_gwk_cipher *gwk_cipher;
  203. struct host_cmd_tlv_passphrase *passphrase;
  204. struct host_cmd_tlv_akmp *tlv_akmp;
  205. struct mwifiex_uap_bss_param *bss_cfg = cmd_buf;
  206. u16 cmd_size = *param_size;
  207. u8 *tlv = *tlv_buf;
  208. tlv_akmp = (struct host_cmd_tlv_akmp *)tlv;
  209. tlv_akmp->tlv.type = cpu_to_le16(TLV_TYPE_UAP_AKMP);
  210. tlv_akmp->tlv.len = cpu_to_le16(sizeof(struct host_cmd_tlv_akmp) -
  211. sizeof(struct host_cmd_tlv));
  212. tlv_akmp->key_mgmt_operation = cpu_to_le16(bss_cfg->key_mgmt_operation);
  213. tlv_akmp->key_mgmt = cpu_to_le16(bss_cfg->key_mgmt);
  214. cmd_size += sizeof(struct host_cmd_tlv_akmp);
  215. tlv += sizeof(struct host_cmd_tlv_akmp);
  216. if (bss_cfg->wpa_cfg.pairwise_cipher_wpa & VALID_CIPHER_BITMAP) {
  217. pwk_cipher = (struct host_cmd_tlv_pwk_cipher *)tlv;
  218. pwk_cipher->tlv.type = cpu_to_le16(TLV_TYPE_PWK_CIPHER);
  219. pwk_cipher->tlv.len =
  220. cpu_to_le16(sizeof(struct host_cmd_tlv_pwk_cipher) -
  221. sizeof(struct host_cmd_tlv));
  222. pwk_cipher->proto = cpu_to_le16(PROTOCOL_WPA);
  223. pwk_cipher->cipher = bss_cfg->wpa_cfg.pairwise_cipher_wpa;
  224. cmd_size += sizeof(struct host_cmd_tlv_pwk_cipher);
  225. tlv += sizeof(struct host_cmd_tlv_pwk_cipher);
  226. }
  227. if (bss_cfg->wpa_cfg.pairwise_cipher_wpa2 & VALID_CIPHER_BITMAP) {
  228. pwk_cipher = (struct host_cmd_tlv_pwk_cipher *)tlv;
  229. pwk_cipher->tlv.type = cpu_to_le16(TLV_TYPE_PWK_CIPHER);
  230. pwk_cipher->tlv.len =
  231. cpu_to_le16(sizeof(struct host_cmd_tlv_pwk_cipher) -
  232. sizeof(struct host_cmd_tlv));
  233. pwk_cipher->proto = cpu_to_le16(PROTOCOL_WPA2);
  234. pwk_cipher->cipher = bss_cfg->wpa_cfg.pairwise_cipher_wpa2;
  235. cmd_size += sizeof(struct host_cmd_tlv_pwk_cipher);
  236. tlv += sizeof(struct host_cmd_tlv_pwk_cipher);
  237. }
  238. if (bss_cfg->wpa_cfg.group_cipher & VALID_CIPHER_BITMAP) {
  239. gwk_cipher = (struct host_cmd_tlv_gwk_cipher *)tlv;
  240. gwk_cipher->tlv.type = cpu_to_le16(TLV_TYPE_GWK_CIPHER);
  241. gwk_cipher->tlv.len =
  242. cpu_to_le16(sizeof(struct host_cmd_tlv_gwk_cipher) -
  243. sizeof(struct host_cmd_tlv));
  244. gwk_cipher->cipher = bss_cfg->wpa_cfg.group_cipher;
  245. cmd_size += sizeof(struct host_cmd_tlv_gwk_cipher);
  246. tlv += sizeof(struct host_cmd_tlv_gwk_cipher);
  247. }
  248. if (bss_cfg->wpa_cfg.length) {
  249. passphrase = (struct host_cmd_tlv_passphrase *)tlv;
  250. passphrase->tlv.type = cpu_to_le16(TLV_TYPE_UAP_WPA_PASSPHRASE);
  251. passphrase->tlv.len = cpu_to_le16(bss_cfg->wpa_cfg.length);
  252. memcpy(passphrase->passphrase, bss_cfg->wpa_cfg.passphrase,
  253. bss_cfg->wpa_cfg.length);
  254. cmd_size += sizeof(struct host_cmd_tlv) +
  255. bss_cfg->wpa_cfg.length;
  256. tlv += sizeof(struct host_cmd_tlv) + bss_cfg->wpa_cfg.length;
  257. }
  258. *param_size = cmd_size;
  259. *tlv_buf = tlv;
  260. return;
  261. }
  262. /* This function parses BSS related parameters from structure
  263. * and prepares TLVs specific to WEP encryption.
  264. * These TLVs are appended to command buffer.
  265. */
  266. static void
  267. mwifiex_uap_bss_wep(u8 **tlv_buf, void *cmd_buf, u16 *param_size)
  268. {
  269. struct host_cmd_tlv_wep_key *wep_key;
  270. u16 cmd_size = *param_size;
  271. int i;
  272. u8 *tlv = *tlv_buf;
  273. struct mwifiex_uap_bss_param *bss_cfg = cmd_buf;
  274. for (i = 0; i < NUM_WEP_KEYS; i++) {
  275. if (bss_cfg->wep_cfg[i].length &&
  276. (bss_cfg->wep_cfg[i].length == WLAN_KEY_LEN_WEP40 ||
  277. bss_cfg->wep_cfg[i].length == WLAN_KEY_LEN_WEP104)) {
  278. wep_key = (struct host_cmd_tlv_wep_key *)tlv;
  279. wep_key->tlv.type = cpu_to_le16(TLV_TYPE_UAP_WEP_KEY);
  280. wep_key->tlv.len =
  281. cpu_to_le16(bss_cfg->wep_cfg[i].length + 2);
  282. wep_key->key_index = bss_cfg->wep_cfg[i].key_index;
  283. wep_key->is_default = bss_cfg->wep_cfg[i].is_default;
  284. memcpy(wep_key->key, bss_cfg->wep_cfg[i].key,
  285. bss_cfg->wep_cfg[i].length);
  286. cmd_size += sizeof(struct host_cmd_tlv) + 2 +
  287. bss_cfg->wep_cfg[i].length;
  288. tlv += sizeof(struct host_cmd_tlv) + 2 +
  289. bss_cfg->wep_cfg[i].length;
  290. }
  291. }
  292. *param_size = cmd_size;
  293. *tlv_buf = tlv;
  294. return;
  295. }
  296. /* This function parses BSS related parameters from structure
  297. * and prepares TLVs. These TLVs are appended to command buffer.
  298. */
  299. static int
  300. mwifiex_uap_bss_param_prepare(u8 *tlv, void *cmd_buf, u16 *param_size)
  301. {
  302. struct host_cmd_tlv_dtim_period *dtim_period;
  303. struct host_cmd_tlv_beacon_period *beacon_period;
  304. struct host_cmd_tlv_ssid *ssid;
  305. struct host_cmd_tlv_bcast_ssid *bcast_ssid;
  306. struct host_cmd_tlv_channel_band *chan_band;
  307. struct host_cmd_tlv_frag_threshold *frag_threshold;
  308. struct host_cmd_tlv_rts_threshold *rts_threshold;
  309. struct host_cmd_tlv_retry_limit *retry_limit;
  310. struct host_cmd_tlv_encrypt_protocol *encrypt_protocol;
  311. struct host_cmd_tlv_auth_type *auth_type;
  312. struct host_cmd_tlv_rates *tlv_rates;
  313. struct host_cmd_tlv_ageout_timer *ao_timer, *ps_ao_timer;
  314. struct mwifiex_ie_types_htcap *htcap;
  315. struct mwifiex_uap_bss_param *bss_cfg = cmd_buf;
  316. int i;
  317. u16 cmd_size = *param_size;
  318. if (bss_cfg->ssid.ssid_len) {
  319. ssid = (struct host_cmd_tlv_ssid *)tlv;
  320. ssid->tlv.type = cpu_to_le16(TLV_TYPE_UAP_SSID);
  321. ssid->tlv.len = cpu_to_le16((u16)bss_cfg->ssid.ssid_len);
  322. memcpy(ssid->ssid, bss_cfg->ssid.ssid, bss_cfg->ssid.ssid_len);
  323. cmd_size += sizeof(struct host_cmd_tlv) +
  324. bss_cfg->ssid.ssid_len;
  325. tlv += sizeof(struct host_cmd_tlv) + bss_cfg->ssid.ssid_len;
  326. bcast_ssid = (struct host_cmd_tlv_bcast_ssid *)tlv;
  327. bcast_ssid->tlv.type = cpu_to_le16(TLV_TYPE_UAP_BCAST_SSID);
  328. bcast_ssid->tlv.len =
  329. cpu_to_le16(sizeof(bcast_ssid->bcast_ctl));
  330. bcast_ssid->bcast_ctl = bss_cfg->bcast_ssid_ctl;
  331. cmd_size += sizeof(struct host_cmd_tlv_bcast_ssid);
  332. tlv += sizeof(struct host_cmd_tlv_bcast_ssid);
  333. }
  334. if (bss_cfg->rates[0]) {
  335. tlv_rates = (struct host_cmd_tlv_rates *)tlv;
  336. tlv_rates->tlv.type = cpu_to_le16(TLV_TYPE_UAP_RATES);
  337. for (i = 0; i < MWIFIEX_SUPPORTED_RATES && bss_cfg->rates[i];
  338. i++)
  339. tlv_rates->rates[i] = bss_cfg->rates[i];
  340. tlv_rates->tlv.len = cpu_to_le16(i);
  341. cmd_size += sizeof(struct host_cmd_tlv_rates) + i;
  342. tlv += sizeof(struct host_cmd_tlv_rates) + i;
  343. }
  344. if (bss_cfg->channel &&
  345. ((bss_cfg->band_cfg == BAND_CONFIG_BG &&
  346. bss_cfg->channel <= MAX_CHANNEL_BAND_BG) ||
  347. (bss_cfg->band_cfg == BAND_CONFIG_A &&
  348. bss_cfg->channel <= MAX_CHANNEL_BAND_A))) {
  349. chan_band = (struct host_cmd_tlv_channel_band *)tlv;
  350. chan_band->tlv.type = cpu_to_le16(TLV_TYPE_CHANNELBANDLIST);
  351. chan_band->tlv.len =
  352. cpu_to_le16(sizeof(struct host_cmd_tlv_channel_band) -
  353. sizeof(struct host_cmd_tlv));
  354. chan_band->band_config = bss_cfg->band_cfg;
  355. chan_band->channel = bss_cfg->channel;
  356. cmd_size += sizeof(struct host_cmd_tlv_channel_band);
  357. tlv += sizeof(struct host_cmd_tlv_channel_band);
  358. }
  359. if (bss_cfg->beacon_period >= MIN_BEACON_PERIOD &&
  360. bss_cfg->beacon_period <= MAX_BEACON_PERIOD) {
  361. beacon_period = (struct host_cmd_tlv_beacon_period *)tlv;
  362. beacon_period->tlv.type =
  363. cpu_to_le16(TLV_TYPE_UAP_BEACON_PERIOD);
  364. beacon_period->tlv.len =
  365. cpu_to_le16(sizeof(struct host_cmd_tlv_beacon_period) -
  366. sizeof(struct host_cmd_tlv));
  367. beacon_period->period = cpu_to_le16(bss_cfg->beacon_period);
  368. cmd_size += sizeof(struct host_cmd_tlv_beacon_period);
  369. tlv += sizeof(struct host_cmd_tlv_beacon_period);
  370. }
  371. if (bss_cfg->dtim_period >= MIN_DTIM_PERIOD &&
  372. bss_cfg->dtim_period <= MAX_DTIM_PERIOD) {
  373. dtim_period = (struct host_cmd_tlv_dtim_period *)tlv;
  374. dtim_period->tlv.type = cpu_to_le16(TLV_TYPE_UAP_DTIM_PERIOD);
  375. dtim_period->tlv.len =
  376. cpu_to_le16(sizeof(struct host_cmd_tlv_dtim_period) -
  377. sizeof(struct host_cmd_tlv));
  378. dtim_period->period = bss_cfg->dtim_period;
  379. cmd_size += sizeof(struct host_cmd_tlv_dtim_period);
  380. tlv += sizeof(struct host_cmd_tlv_dtim_period);
  381. }
  382. if (bss_cfg->rts_threshold <= MWIFIEX_RTS_MAX_VALUE) {
  383. rts_threshold = (struct host_cmd_tlv_rts_threshold *)tlv;
  384. rts_threshold->tlv.type =
  385. cpu_to_le16(TLV_TYPE_UAP_RTS_THRESHOLD);
  386. rts_threshold->tlv.len =
  387. cpu_to_le16(sizeof(struct host_cmd_tlv_rts_threshold) -
  388. sizeof(struct host_cmd_tlv));
  389. rts_threshold->rts_thr = cpu_to_le16(bss_cfg->rts_threshold);
  390. cmd_size += sizeof(struct host_cmd_tlv_frag_threshold);
  391. tlv += sizeof(struct host_cmd_tlv_frag_threshold);
  392. }
  393. if ((bss_cfg->frag_threshold >= MWIFIEX_FRAG_MIN_VALUE) &&
  394. (bss_cfg->frag_threshold <= MWIFIEX_FRAG_MAX_VALUE)) {
  395. frag_threshold = (struct host_cmd_tlv_frag_threshold *)tlv;
  396. frag_threshold->tlv.type =
  397. cpu_to_le16(TLV_TYPE_UAP_FRAG_THRESHOLD);
  398. frag_threshold->tlv.len =
  399. cpu_to_le16(sizeof(struct host_cmd_tlv_frag_threshold) -
  400. sizeof(struct host_cmd_tlv));
  401. frag_threshold->frag_thr = cpu_to_le16(bss_cfg->frag_threshold);
  402. cmd_size += sizeof(struct host_cmd_tlv_frag_threshold);
  403. tlv += sizeof(struct host_cmd_tlv_frag_threshold);
  404. }
  405. if (bss_cfg->retry_limit <= MWIFIEX_RETRY_LIMIT) {
  406. retry_limit = (struct host_cmd_tlv_retry_limit *)tlv;
  407. retry_limit->tlv.type = cpu_to_le16(TLV_TYPE_UAP_RETRY_LIMIT);
  408. retry_limit->tlv.len =
  409. cpu_to_le16(sizeof(struct host_cmd_tlv_retry_limit) -
  410. sizeof(struct host_cmd_tlv));
  411. retry_limit->limit = (u8)bss_cfg->retry_limit;
  412. cmd_size += sizeof(struct host_cmd_tlv_retry_limit);
  413. tlv += sizeof(struct host_cmd_tlv_retry_limit);
  414. }
  415. if ((bss_cfg->protocol & PROTOCOL_WPA) ||
  416. (bss_cfg->protocol & PROTOCOL_WPA2) ||
  417. (bss_cfg->protocol & PROTOCOL_EAP))
  418. mwifiex_uap_bss_wpa(&tlv, cmd_buf, &cmd_size);
  419. else
  420. mwifiex_uap_bss_wep(&tlv, cmd_buf, &cmd_size);
  421. if ((bss_cfg->auth_mode <= WLAN_AUTH_SHARED_KEY) ||
  422. (bss_cfg->auth_mode == MWIFIEX_AUTH_MODE_AUTO)) {
  423. auth_type = (struct host_cmd_tlv_auth_type *)tlv;
  424. auth_type->tlv.type = cpu_to_le16(TLV_TYPE_AUTH_TYPE);
  425. auth_type->tlv.len =
  426. cpu_to_le16(sizeof(struct host_cmd_tlv_auth_type) -
  427. sizeof(struct host_cmd_tlv));
  428. auth_type->auth_type = (u8)bss_cfg->auth_mode;
  429. cmd_size += sizeof(struct host_cmd_tlv_auth_type);
  430. tlv += sizeof(struct host_cmd_tlv_auth_type);
  431. }
  432. if (bss_cfg->protocol) {
  433. encrypt_protocol = (struct host_cmd_tlv_encrypt_protocol *)tlv;
  434. encrypt_protocol->tlv.type =
  435. cpu_to_le16(TLV_TYPE_UAP_ENCRY_PROTOCOL);
  436. encrypt_protocol->tlv.len =
  437. cpu_to_le16(sizeof(struct host_cmd_tlv_encrypt_protocol)
  438. - sizeof(struct host_cmd_tlv));
  439. encrypt_protocol->proto = cpu_to_le16(bss_cfg->protocol);
  440. cmd_size += sizeof(struct host_cmd_tlv_encrypt_protocol);
  441. tlv += sizeof(struct host_cmd_tlv_encrypt_protocol);
  442. }
  443. if (bss_cfg->ht_cap.cap_info) {
  444. htcap = (struct mwifiex_ie_types_htcap *)tlv;
  445. htcap->header.type = cpu_to_le16(WLAN_EID_HT_CAPABILITY);
  446. htcap->header.len =
  447. cpu_to_le16(sizeof(struct ieee80211_ht_cap));
  448. htcap->ht_cap.cap_info = bss_cfg->ht_cap.cap_info;
  449. htcap->ht_cap.ampdu_params_info =
  450. bss_cfg->ht_cap.ampdu_params_info;
  451. memcpy(&htcap->ht_cap.mcs, &bss_cfg->ht_cap.mcs,
  452. sizeof(struct ieee80211_mcs_info));
  453. htcap->ht_cap.extended_ht_cap_info =
  454. bss_cfg->ht_cap.extended_ht_cap_info;
  455. htcap->ht_cap.tx_BF_cap_info = bss_cfg->ht_cap.tx_BF_cap_info;
  456. htcap->ht_cap.antenna_selection_info =
  457. bss_cfg->ht_cap.antenna_selection_info;
  458. cmd_size += sizeof(struct mwifiex_ie_types_htcap);
  459. tlv += sizeof(struct mwifiex_ie_types_htcap);
  460. }
  461. if (bss_cfg->sta_ao_timer) {
  462. ao_timer = (struct host_cmd_tlv_ageout_timer *)tlv;
  463. ao_timer->tlv.type = cpu_to_le16(TLV_TYPE_UAP_AO_TIMER);
  464. ao_timer->tlv.len = cpu_to_le16(sizeof(*ao_timer) -
  465. sizeof(struct host_cmd_tlv));
  466. ao_timer->sta_ao_timer = cpu_to_le32(bss_cfg->sta_ao_timer);
  467. cmd_size += sizeof(*ao_timer);
  468. tlv += sizeof(*ao_timer);
  469. }
  470. if (bss_cfg->ps_sta_ao_timer) {
  471. ps_ao_timer = (struct host_cmd_tlv_ageout_timer *)tlv;
  472. ps_ao_timer->tlv.type = cpu_to_le16(TLV_TYPE_UAP_PS_AO_TIMER);
  473. ps_ao_timer->tlv.len = cpu_to_le16(sizeof(*ps_ao_timer) -
  474. sizeof(struct host_cmd_tlv));
  475. ps_ao_timer->sta_ao_timer =
  476. cpu_to_le32(bss_cfg->ps_sta_ao_timer);
  477. cmd_size += sizeof(*ps_ao_timer);
  478. tlv += sizeof(*ps_ao_timer);
  479. }
  480. *param_size = cmd_size;
  481. return 0;
  482. }
  483. /* This function parses custom IEs from IE list and prepares command buffer */
  484. static int mwifiex_uap_custom_ie_prepare(u8 *tlv, void *cmd_buf, u16 *ie_size)
  485. {
  486. struct mwifiex_ie_list *ap_ie = cmd_buf;
  487. struct host_cmd_tlv *tlv_ie = (struct host_cmd_tlv *)tlv;
  488. if (!ap_ie || !ap_ie->len || !ap_ie->ie_list)
  489. return -1;
  490. *ie_size += le16_to_cpu(ap_ie->len) + sizeof(struct host_cmd_tlv);
  491. tlv_ie->type = cpu_to_le16(TLV_TYPE_MGMT_IE);
  492. tlv_ie->len = ap_ie->len;
  493. tlv += sizeof(struct host_cmd_tlv);
  494. memcpy(tlv, ap_ie->ie_list, le16_to_cpu(ap_ie->len));
  495. return 0;
  496. }
  497. /* Parse AP config structure and prepare TLV based command structure
  498. * to be sent to FW for uAP configuration
  499. */
  500. static int
  501. mwifiex_cmd_uap_sys_config(struct host_cmd_ds_command *cmd, u16 cmd_action,
  502. u32 type, void *cmd_buf)
  503. {
  504. u8 *tlv;
  505. u16 cmd_size, param_size, ie_size;
  506. struct host_cmd_ds_sys_config *sys_cfg;
  507. cmd->command = cpu_to_le16(HostCmd_CMD_UAP_SYS_CONFIG);
  508. cmd_size = (u16)(sizeof(struct host_cmd_ds_sys_config) + S_DS_GEN);
  509. sys_cfg = (struct host_cmd_ds_sys_config *)&cmd->params.uap_sys_config;
  510. sys_cfg->action = cpu_to_le16(cmd_action);
  511. tlv = sys_cfg->tlv;
  512. switch (type) {
  513. case UAP_BSS_PARAMS_I:
  514. param_size = cmd_size;
  515. if (mwifiex_uap_bss_param_prepare(tlv, cmd_buf, &param_size))
  516. return -1;
  517. cmd->size = cpu_to_le16(param_size);
  518. break;
  519. case UAP_CUSTOM_IE_I:
  520. ie_size = cmd_size;
  521. if (mwifiex_uap_custom_ie_prepare(tlv, cmd_buf, &ie_size))
  522. return -1;
  523. cmd->size = cpu_to_le16(ie_size);
  524. break;
  525. default:
  526. return -1;
  527. }
  528. return 0;
  529. }
  530. /* This function prepares the AP specific commands before sending them
  531. * to the firmware.
  532. * This is a generic function which calls specific command preparation
  533. * routines based upon the command number.
  534. */
  535. int mwifiex_uap_prepare_cmd(struct mwifiex_private *priv, u16 cmd_no,
  536. u16 cmd_action, u32 type,
  537. void *data_buf, void *cmd_buf)
  538. {
  539. struct host_cmd_ds_command *cmd = cmd_buf;
  540. switch (cmd_no) {
  541. case HostCmd_CMD_UAP_SYS_CONFIG:
  542. if (mwifiex_cmd_uap_sys_config(cmd, cmd_action, type, data_buf))
  543. return -1;
  544. break;
  545. case HostCmd_CMD_UAP_BSS_START:
  546. case HostCmd_CMD_UAP_BSS_STOP:
  547. cmd->command = cpu_to_le16(cmd_no);
  548. cmd->size = cpu_to_le16(S_DS_GEN);
  549. break;
  550. default:
  551. dev_err(priv->adapter->dev,
  552. "PREP_CMD: unknown cmd %#x\n", cmd_no);
  553. return -1;
  554. }
  555. return 0;
  556. }