ioctl_linux.c 375 KB

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  1. /******************************************************************************
  2. *
  3. * Copyright(c) 2007 - 2012 Realtek Corporation. All rights reserved.
  4. *
  5. * This program is free software; you can redistribute it and/or modify it
  6. * under the terms of version 2 of the GNU General Public License as
  7. * published by the Free Software Foundation.
  8. *
  9. * This program is distributed in the hope that it will be useful, but WITHOUT
  10. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  11. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  12. * more details.
  13. *
  14. * You should have received a copy of the GNU General Public License along with
  15. * this program; if not, write to the Free Software Foundation, Inc.,
  16. * 51 Franklin Street, Fifth Floor, Boston, MA 02110, USA
  17. *
  18. *
  19. ******************************************************************************/
  20. #define _IOCTL_LINUX_C_
  21. #include <drv_types.h>
  22. #include <rtw_mp.h>
  23. #include <rtw_mp_ioctl.h>
  24. #include "../../hal/phydm/phydm_precomp.h"
  25. #ifdef RTW_HALMAC
  26. #include "../../hal/hal_halmac.h"
  27. #endif
  28. #if (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 27))
  29. #define iwe_stream_add_event(a, b, c, d, e) iwe_stream_add_event(b, c, d, e)
  30. #define iwe_stream_add_point(a, b, c, d, e) iwe_stream_add_point(b, c, d, e)
  31. #endif
  32. #ifdef CONFIG_80211N_HT
  33. extern int rtw_ht_enable;
  34. #endif
  35. #define RTL_IOCTL_WPA_SUPPLICANT (SIOCIWFIRSTPRIV+30)
  36. #define SCAN_ITEM_SIZE 768
  37. #define MAX_CUSTOM_LEN 64
  38. #define RATE_COUNT 4
  39. #ifdef CONFIG_GLOBAL_UI_PID
  40. extern int ui_pid[3];
  41. #endif
  42. /* combo scan */
  43. #define WEXT_CSCAN_AMOUNT 9
  44. #define WEXT_CSCAN_BUF_LEN 360
  45. #define WEXT_CSCAN_HEADER "CSCAN S\x01\x00\x00S\x00"
  46. #define WEXT_CSCAN_HEADER_SIZE 12
  47. #define WEXT_CSCAN_SSID_SECTION 'S'
  48. #define WEXT_CSCAN_CHANNEL_SECTION 'C'
  49. #define WEXT_CSCAN_NPROBE_SECTION 'N'
  50. #define WEXT_CSCAN_ACTV_DWELL_SECTION 'A'
  51. #define WEXT_CSCAN_PASV_DWELL_SECTION 'P'
  52. #define WEXT_CSCAN_HOME_DWELL_SECTION 'H'
  53. #define WEXT_CSCAN_TYPE_SECTION 'T'
  54. extern u8 key_2char2num(u8 hch, u8 lch);
  55. extern u8 str_2char2num(u8 hch, u8 lch);
  56. extern void macstr2num(u8 *dst, u8 *src);
  57. extern u8 convert_ip_addr(u8 hch, u8 mch, u8 lch);
  58. u32 rtw_rates[] = {1000000, 2000000, 5500000, 11000000,
  59. 6000000, 9000000, 12000000, 18000000, 24000000, 36000000, 48000000, 54000000};
  60. static const char *const iw_operation_mode[] = {
  61. "Auto", "Ad-Hoc", "Managed", "Master", "Repeater", "Secondary", "Monitor"
  62. };
  63. static int hex2num_i(char c)
  64. {
  65. if (c >= '0' && c <= '9')
  66. return c - '0';
  67. if (c >= 'a' && c <= 'f')
  68. return c - 'a' + 10;
  69. if (c >= 'A' && c <= 'F')
  70. return c - 'A' + 10;
  71. return -1;
  72. }
  73. static int hex2byte_i(const char *hex)
  74. {
  75. int a, b;
  76. a = hex2num_i(*hex++);
  77. if (a < 0)
  78. return -1;
  79. b = hex2num_i(*hex++);
  80. if (b < 0)
  81. return -1;
  82. return (a << 4) | b;
  83. }
  84. /**
  85. * hwaddr_aton - Convert ASCII string to MAC address
  86. * @txt: MAC address as a string (e.g., "00:11:22:33:44:55")
  87. * @addr: Buffer for the MAC address (ETH_ALEN = 6 bytes)
  88. * Returns: 0 on success, -1 on failure (e.g., string not a MAC address)
  89. */
  90. static int hwaddr_aton_i(const char *txt, u8 *addr)
  91. {
  92. int i;
  93. for (i = 0; i < 6; i++) {
  94. int a, b;
  95. a = hex2num_i(*txt++);
  96. if (a < 0)
  97. return -1;
  98. b = hex2num_i(*txt++);
  99. if (b < 0)
  100. return -1;
  101. *addr++ = (a << 4) | b;
  102. if (i < 5 && *txt++ != ':')
  103. return -1;
  104. }
  105. return 0;
  106. }
  107. static void indicate_wx_custom_event(_adapter *padapter, char *msg)
  108. {
  109. u8 *buff, *p;
  110. union iwreq_data wrqu;
  111. if (strlen(msg) > IW_CUSTOM_MAX) {
  112. RTW_INFO("%s strlen(msg):%zu > IW_CUSTOM_MAX:%u\n", __FUNCTION__ , strlen(msg), IW_CUSTOM_MAX);
  113. return;
  114. }
  115. buff = rtw_zmalloc(IW_CUSTOM_MAX + 1);
  116. if (!buff)
  117. return;
  118. _rtw_memcpy(buff, msg, strlen(msg));
  119. _rtw_memset(&wrqu, 0, sizeof(wrqu));
  120. wrqu.data.length = strlen(msg);
  121. RTW_INFO("%s %s\n", __FUNCTION__, buff);
  122. #ifndef CONFIG_IOCTL_CFG80211
  123. wireless_send_event(padapter->pnetdev, IWEVCUSTOM, &wrqu, buff);
  124. #endif
  125. rtw_mfree(buff, IW_CUSTOM_MAX + 1);
  126. }
  127. static void request_wps_pbc_event(_adapter *padapter)
  128. {
  129. u8 *buff, *p;
  130. union iwreq_data wrqu;
  131. buff = rtw_malloc(IW_CUSTOM_MAX);
  132. if (!buff)
  133. return;
  134. _rtw_memset(buff, 0, IW_CUSTOM_MAX);
  135. p = buff;
  136. p += sprintf(p, "WPS_PBC_START.request=TRUE");
  137. _rtw_memset(&wrqu, 0, sizeof(wrqu));
  138. wrqu.data.length = p - buff;
  139. wrqu.data.length = (wrqu.data.length < IW_CUSTOM_MAX) ? wrqu.data.length : IW_CUSTOM_MAX;
  140. RTW_INFO("%s\n", __FUNCTION__);
  141. #ifndef CONFIG_IOCTL_CFG80211
  142. wireless_send_event(padapter->pnetdev, IWEVCUSTOM, &wrqu, buff);
  143. #endif
  144. if (buff)
  145. rtw_mfree(buff, IW_CUSTOM_MAX);
  146. }
  147. #ifdef CONFIG_SUPPORT_HW_WPS_PBC
  148. void rtw_request_wps_pbc_event(_adapter *padapter)
  149. {
  150. #ifdef RTK_DMP_PLATFORM
  151. #if (LINUX_VERSION_CODE > KERNEL_VERSION(2, 6, 12))
  152. kobject_uevent(&padapter->pnetdev->dev.kobj, KOBJ_NET_PBC);
  153. #else
  154. kobject_hotplug(&padapter->pnetdev->class_dev.kobj, KOBJ_NET_PBC);
  155. #endif
  156. #else
  157. if (padapter->pid[0] == 0) {
  158. /* 0 is the default value and it means the application monitors the HW PBC doesn't privde its pid to driver. */
  159. return;
  160. }
  161. rtw_signal_process(padapter->pid[0], SIGUSR1);
  162. #endif
  163. rtw_led_control(padapter, LED_CTL_START_WPS_BOTTON);
  164. }
  165. #endif/* #ifdef CONFIG_SUPPORT_HW_WPS_PBC */
  166. void indicate_wx_scan_complete_event(_adapter *padapter)
  167. {
  168. union iwreq_data wrqu;
  169. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  170. _rtw_memset(&wrqu, 0, sizeof(union iwreq_data));
  171. /* RTW_INFO("+rtw_indicate_wx_scan_complete_event\n"); */
  172. #ifndef CONFIG_IOCTL_CFG80211
  173. wireless_send_event(padapter->pnetdev, SIOCGIWSCAN, &wrqu, NULL);
  174. #endif
  175. }
  176. void rtw_indicate_wx_assoc_event(_adapter *padapter)
  177. {
  178. union iwreq_data wrqu;
  179. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  180. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  181. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  182. WLAN_BSSID_EX *pnetwork = (WLAN_BSSID_EX *)(&(pmlmeinfo->network));
  183. _rtw_memset(&wrqu, 0, sizeof(union iwreq_data));
  184. wrqu.ap_addr.sa_family = ARPHRD_ETHER;
  185. if (check_fwstate(pmlmepriv, WIFI_ADHOC_MASTER_STATE) == _TRUE)
  186. _rtw_memcpy(wrqu.ap_addr.sa_data, pnetwork->MacAddress, ETH_ALEN);
  187. else
  188. _rtw_memcpy(wrqu.ap_addr.sa_data, pmlmepriv->cur_network.network.MacAddress, ETH_ALEN);
  189. RTW_PRINT("assoc success\n");
  190. #ifndef CONFIG_IOCTL_CFG80211
  191. wireless_send_event(padapter->pnetdev, SIOCGIWAP, &wrqu, NULL);
  192. #endif
  193. }
  194. void rtw_indicate_wx_disassoc_event(_adapter *padapter)
  195. {
  196. union iwreq_data wrqu;
  197. _rtw_memset(&wrqu, 0, sizeof(union iwreq_data));
  198. wrqu.ap_addr.sa_family = ARPHRD_ETHER;
  199. _rtw_memset(wrqu.ap_addr.sa_data, 0, ETH_ALEN);
  200. #ifndef CONFIG_IOCTL_CFG80211
  201. RTW_PRINT("indicate disassoc\n");
  202. wireless_send_event(padapter->pnetdev, SIOCGIWAP, &wrqu, NULL);
  203. #endif
  204. }
  205. /*
  206. uint rtw_is_cckrates_included(u8 *rate)
  207. {
  208. u32 i = 0;
  209. while(rate[i]!=0)
  210. {
  211. if ( (((rate[i]) & 0x7f) == 2) || (((rate[i]) & 0x7f) == 4) ||
  212. (((rate[i]) & 0x7f) == 11) || (((rate[i]) & 0x7f) == 22) )
  213. return _TRUE;
  214. i++;
  215. }
  216. return _FALSE;
  217. }
  218. uint rtw_is_cckratesonly_included(u8 *rate)
  219. {
  220. u32 i = 0;
  221. while(rate[i]!=0)
  222. {
  223. if ( (((rate[i]) & 0x7f) != 2) && (((rate[i]) & 0x7f) != 4) &&
  224. (((rate[i]) & 0x7f) != 11) && (((rate[i]) & 0x7f) != 22) )
  225. return _FALSE;
  226. i++;
  227. }
  228. return _TRUE;
  229. }
  230. */
  231. static int search_p2p_wfd_ie(_adapter *padapter,
  232. struct iw_request_info *info, struct wlan_network *pnetwork,
  233. char *start, char *stop)
  234. {
  235. #ifdef CONFIG_P2P
  236. struct wifidirect_info *pwdinfo = &padapter->wdinfo;
  237. #ifdef CONFIG_WFD
  238. if (SCAN_RESULT_ALL == pwdinfo->wfd_info->scan_result_type) {
  239. } else if ((SCAN_RESULT_P2P_ONLY == pwdinfo->wfd_info->scan_result_type) ||
  240. (SCAN_RESULT_WFD_TYPE == pwdinfo->wfd_info->scan_result_type))
  241. #endif /* CONFIG_WFD */
  242. {
  243. if (!rtw_p2p_chk_state(pwdinfo, P2P_STATE_NONE)) {
  244. u32 blnGotP2PIE = _FALSE;
  245. /* User is doing the P2P device discovery */
  246. /* The prefix of SSID should be "DIRECT-" and the IE should contains the P2P IE. */
  247. /* If not, the driver should ignore this AP and go to the next AP. */
  248. /* Verifying the SSID */
  249. if (_rtw_memcmp(pnetwork->network.Ssid.Ssid, pwdinfo->p2p_wildcard_ssid, P2P_WILDCARD_SSID_LEN)) {
  250. u32 p2pielen = 0;
  251. /* Verifying the P2P IE */
  252. if (rtw_bss_ex_get_p2p_ie(&pnetwork->network, NULL, &p2pielen))
  253. blnGotP2PIE = _TRUE;
  254. }
  255. if (blnGotP2PIE == _FALSE)
  256. return _FALSE;
  257. }
  258. }
  259. #ifdef CONFIG_WFD
  260. if (SCAN_RESULT_WFD_TYPE == pwdinfo->wfd_info->scan_result_type) {
  261. u32 blnGotWFD = _FALSE;
  262. u8 *wfd_ie;
  263. uint wfd_ielen = 0;
  264. wfd_ie = rtw_bss_ex_get_wfd_ie(&pnetwork->network, NULL, &wfd_ielen);
  265. if (wfd_ie) {
  266. u8 *wfd_devinfo;
  267. uint wfd_devlen;
  268. wfd_devinfo = rtw_get_wfd_attr_content(wfd_ie, wfd_ielen, WFD_ATTR_DEVICE_INFO, NULL, &wfd_devlen);
  269. if (wfd_devinfo) {
  270. if (pwdinfo->wfd_info->wfd_device_type == WFD_DEVINFO_PSINK) {
  271. /* the first two bits will indicate the WFD device type */
  272. if ((wfd_devinfo[1] & 0x03) == WFD_DEVINFO_SOURCE) {
  273. /* If this device is Miracast PSink device, the scan reuslt should just provide the Miracast source. */
  274. blnGotWFD = _TRUE;
  275. }
  276. } else if (pwdinfo->wfd_info->wfd_device_type == WFD_DEVINFO_SOURCE) {
  277. /* the first two bits will indicate the WFD device type */
  278. if ((wfd_devinfo[1] & 0x03) == WFD_DEVINFO_PSINK) {
  279. /* If this device is Miracast source device, the scan reuslt should just provide the Miracast PSink. */
  280. /* Todo: How about the SSink?! */
  281. blnGotWFD = _TRUE;
  282. }
  283. }
  284. }
  285. }
  286. if (blnGotWFD == _FALSE)
  287. return _FALSE;
  288. }
  289. #endif /* CONFIG_WFD */
  290. #endif /* CONFIG_P2P */
  291. return _TRUE;
  292. }
  293. static inline char *iwe_stream_mac_addr_proess(_adapter *padapter,
  294. struct iw_request_info *info, struct wlan_network *pnetwork,
  295. char *start, char *stop, struct iw_event *iwe)
  296. {
  297. /* AP MAC address */
  298. iwe->cmd = SIOCGIWAP;
  299. iwe->u.ap_addr.sa_family = ARPHRD_ETHER;
  300. _rtw_memcpy(iwe->u.ap_addr.sa_data, pnetwork->network.MacAddress, ETH_ALEN);
  301. start = iwe_stream_add_event(info, start, stop, iwe, IW_EV_ADDR_LEN);
  302. return start;
  303. }
  304. static inline char *iwe_stream_essid_proess(_adapter *padapter,
  305. struct iw_request_info *info, struct wlan_network *pnetwork,
  306. char *start, char *stop, struct iw_event *iwe)
  307. {
  308. /* Add the ESSID */
  309. iwe->cmd = SIOCGIWESSID;
  310. iwe->u.data.flags = 1;
  311. iwe->u.data.length = min((u16)pnetwork->network.Ssid.SsidLength, (u16)32);
  312. start = iwe_stream_add_point(info, start, stop, iwe, pnetwork->network.Ssid.Ssid);
  313. return start;
  314. }
  315. static inline char *iwe_stream_chan_process(_adapter *padapter,
  316. struct iw_request_info *info, struct wlan_network *pnetwork,
  317. char *start, char *stop, struct iw_event *iwe)
  318. {
  319. if (pnetwork->network.Configuration.DSConfig < 1 /*|| pnetwork->network.Configuration.DSConfig>14*/)
  320. pnetwork->network.Configuration.DSConfig = 1;
  321. /* Add frequency/channel */
  322. iwe->cmd = SIOCGIWFREQ;
  323. iwe->u.freq.m = rtw_ch2freq(pnetwork->network.Configuration.DSConfig) * 100000;
  324. iwe->u.freq.e = 1;
  325. iwe->u.freq.i = pnetwork->network.Configuration.DSConfig;
  326. start = iwe_stream_add_event(info, start, stop, iwe, IW_EV_FREQ_LEN);
  327. return start;
  328. }
  329. static inline char *iwe_stream_mode_process(_adapter *padapter,
  330. struct iw_request_info *info, struct wlan_network *pnetwork,
  331. char *start, char *stop, struct iw_event *iwe, u16 cap)
  332. {
  333. /* Add mode */
  334. if (cap & (WLAN_CAPABILITY_IBSS | WLAN_CAPABILITY_BSS)) {
  335. iwe->cmd = SIOCGIWMODE;
  336. if (cap & WLAN_CAPABILITY_BSS)
  337. iwe->u.mode = IW_MODE_MASTER;
  338. else
  339. iwe->u.mode = IW_MODE_ADHOC;
  340. start = iwe_stream_add_event(info, start, stop, iwe, IW_EV_UINT_LEN);
  341. }
  342. return start;
  343. }
  344. static inline char *iwe_stream_encryption_process(_adapter *padapter,
  345. struct iw_request_info *info, struct wlan_network *pnetwork,
  346. char *start, char *stop, struct iw_event *iwe, u16 cap)
  347. {
  348. /* Add encryption capability */
  349. iwe->cmd = SIOCGIWENCODE;
  350. if (cap & WLAN_CAPABILITY_PRIVACY)
  351. iwe->u.data.flags = IW_ENCODE_ENABLED | IW_ENCODE_NOKEY;
  352. else
  353. iwe->u.data.flags = IW_ENCODE_DISABLED;
  354. iwe->u.data.length = 0;
  355. start = iwe_stream_add_point(info, start, stop, iwe, pnetwork->network.Ssid.Ssid);
  356. return start;
  357. }
  358. static inline char *iwe_stream_protocol_process(_adapter *padapter,
  359. struct iw_request_info *info, struct wlan_network *pnetwork,
  360. char *start, char *stop, struct iw_event *iwe)
  361. {
  362. u16 ht_cap = _FALSE, vht_cap = _FALSE;
  363. u32 ht_ielen = 0, vht_ielen = 0;
  364. char *p;
  365. u8 ie_offset = (pnetwork->network.Reserved[0] == 2 ? 0 : 12); /* Probe Request */
  366. /* parsing HT_CAP_IE */
  367. p = rtw_get_ie(&pnetwork->network.IEs[ie_offset], _HT_CAPABILITY_IE_, &ht_ielen, pnetwork->network.IELength - ie_offset);
  368. if (p && ht_ielen > 0)
  369. ht_cap = _TRUE;
  370. #ifdef CONFIG_80211AC_VHT
  371. /* parsing VHT_CAP_IE */
  372. p = rtw_get_ie(&pnetwork->network.IEs[ie_offset], EID_VHTCapability, &vht_ielen, pnetwork->network.IELength - ie_offset);
  373. if (p && vht_ielen > 0)
  374. vht_cap = _TRUE;
  375. #endif
  376. /* Add the protocol name */
  377. iwe->cmd = SIOCGIWNAME;
  378. if ((rtw_is_cckratesonly_included((u8 *)&pnetwork->network.SupportedRates)) == _TRUE) {
  379. if (ht_cap == _TRUE)
  380. snprintf(iwe->u.name, IFNAMSIZ, "IEEE 802.11bn");
  381. else
  382. snprintf(iwe->u.name, IFNAMSIZ, "IEEE 802.11b");
  383. } else if ((rtw_is_cckrates_included((u8 *)&pnetwork->network.SupportedRates)) == _TRUE) {
  384. if (ht_cap == _TRUE)
  385. snprintf(iwe->u.name, IFNAMSIZ, "IEEE 802.11bgn");
  386. else
  387. snprintf(iwe->u.name, IFNAMSIZ, "IEEE 802.11bg");
  388. } else {
  389. if (pnetwork->network.Configuration.DSConfig > 14) {
  390. #ifdef CONFIG_80211AC_VHT
  391. if (vht_cap == _TRUE)
  392. snprintf(iwe->u.name, IFNAMSIZ, "IEEE 802.11AC");
  393. else
  394. #endif
  395. {
  396. if (ht_cap == _TRUE)
  397. snprintf(iwe->u.name, IFNAMSIZ, "IEEE 802.11an");
  398. else
  399. snprintf(iwe->u.name, IFNAMSIZ, "IEEE 802.11a");
  400. }
  401. } else {
  402. if (ht_cap == _TRUE)
  403. snprintf(iwe->u.name, IFNAMSIZ, "IEEE 802.11gn");
  404. else
  405. snprintf(iwe->u.name, IFNAMSIZ, "IEEE 802.11g");
  406. }
  407. }
  408. start = iwe_stream_add_event(info, start, stop, iwe, IW_EV_CHAR_LEN);
  409. return start;
  410. }
  411. static inline char *iwe_stream_rate_process(_adapter *padapter,
  412. struct iw_request_info *info, struct wlan_network *pnetwork,
  413. char *start, char *stop, struct iw_event *iwe)
  414. {
  415. u32 ht_ielen = 0, vht_ielen = 0;
  416. char *p;
  417. u16 max_rate = 0, rate, ht_cap = _FALSE, vht_cap = _FALSE;
  418. u32 i = 0;
  419. u8 bw_40MHz = 0, short_GI = 0, bw_160MHz = 0, vht_highest_rate = 0;
  420. u16 mcs_rate = 0, vht_data_rate = 0;
  421. char custom[MAX_CUSTOM_LEN] = {0};
  422. u8 ie_offset = (pnetwork->network.Reserved[0] == 2 ? 0 : 12); /* Probe Request */
  423. /* parsing HT_CAP_IE */
  424. p = rtw_get_ie(&pnetwork->network.IEs[ie_offset], _HT_CAPABILITY_IE_, &ht_ielen, pnetwork->network.IELength - ie_offset);
  425. if (p && ht_ielen > 0) {
  426. struct rtw_ieee80211_ht_cap *pht_capie;
  427. ht_cap = _TRUE;
  428. pht_capie = (struct rtw_ieee80211_ht_cap *)(p + 2);
  429. _rtw_memcpy(&mcs_rate , pht_capie->supp_mcs_set, 2);
  430. bw_40MHz = (pht_capie->cap_info & IEEE80211_HT_CAP_SUP_WIDTH) ? 1 : 0;
  431. short_GI = (pht_capie->cap_info & (IEEE80211_HT_CAP_SGI_20 | IEEE80211_HT_CAP_SGI_40)) ? 1 : 0;
  432. }
  433. #ifdef CONFIG_80211AC_VHT
  434. /* parsing VHT_CAP_IE */
  435. p = rtw_get_ie(&pnetwork->network.IEs[ie_offset], EID_VHTCapability, &vht_ielen, pnetwork->network.IELength - ie_offset);
  436. if (p && vht_ielen > 0) {
  437. u8 mcs_map[2];
  438. vht_cap = _TRUE;
  439. bw_160MHz = GET_VHT_CAPABILITY_ELE_CHL_WIDTH(p + 2);
  440. if (bw_160MHz)
  441. short_GI = GET_VHT_CAPABILITY_ELE_SHORT_GI160M(p + 2);
  442. else
  443. short_GI = GET_VHT_CAPABILITY_ELE_SHORT_GI80M(p + 2);
  444. _rtw_memcpy(mcs_map, GET_VHT_CAPABILITY_ELE_TX_MCS(p + 2), 2);
  445. vht_highest_rate = rtw_get_vht_highest_rate(mcs_map);
  446. vht_data_rate = rtw_vht_mcs_to_data_rate(CHANNEL_WIDTH_80, short_GI, vht_highest_rate);
  447. }
  448. #endif
  449. /*Add basic and extended rates */
  450. p = custom;
  451. p += snprintf(p, MAX_CUSTOM_LEN - (p - custom), " Rates (Mb/s): ");
  452. while (pnetwork->network.SupportedRates[i] != 0) {
  453. rate = pnetwork->network.SupportedRates[i] & 0x7F;
  454. if (rate > max_rate)
  455. max_rate = rate;
  456. p += snprintf(p, MAX_CUSTOM_LEN - (p - custom),
  457. "%d%s ", rate >> 1, (rate & 1) ? ".5" : "");
  458. i++;
  459. }
  460. #ifdef CONFIG_80211AC_VHT
  461. if (vht_cap == _TRUE)
  462. max_rate = vht_data_rate;
  463. else
  464. #endif
  465. if (ht_cap == _TRUE) {
  466. if (mcs_rate & 0x8000) /* MCS15 */
  467. max_rate = (bw_40MHz) ? ((short_GI) ? 300 : 270) : ((short_GI) ? 144 : 130);
  468. else if (mcs_rate & 0x0080) /* MCS7 */
  469. max_rate = (bw_40MHz) ? ((short_GI) ? 150 : 135) : ((short_GI) ? 72 : 65);
  470. else { /* default MCS7 */
  471. /* RTW_INFO("wx_get_scan, mcs_rate_bitmap=0x%x\n", mcs_rate); */
  472. max_rate = (bw_40MHz) ? ((short_GI) ? 150 : 135) : ((short_GI) ? 72 : 65);
  473. }
  474. max_rate = max_rate * 2; /* Mbps/2; */
  475. }
  476. iwe->cmd = SIOCGIWRATE;
  477. iwe->u.bitrate.fixed = iwe->u.bitrate.disabled = 0;
  478. iwe->u.bitrate.value = max_rate * 500000;
  479. start = iwe_stream_add_event(info, start, stop, iwe, IW_EV_PARAM_LEN);
  480. return start ;
  481. }
  482. static inline char *iwe_stream_wpa_wpa2_process(_adapter *padapter,
  483. struct iw_request_info *info, struct wlan_network *pnetwork,
  484. char *start, char *stop, struct iw_event *iwe)
  485. {
  486. int buf_size = MAX_WPA_IE_LEN * 2;
  487. /* u8 pbuf[buf_size]={0}; */
  488. u8 *pbuf = rtw_zmalloc(buf_size);
  489. u8 wpa_ie[255] = {0}, rsn_ie[255] = {0};
  490. u16 i, wpa_len = 0, rsn_len = 0;
  491. u8 *p;
  492. sint out_len = 0;
  493. if (pbuf) {
  494. p = pbuf;
  495. /* parsing WPA/WPA2 IE */
  496. if (pnetwork->network.Reserved[0] != 2) { /* Probe Request */
  497. out_len = rtw_get_sec_ie(pnetwork->network.IEs , pnetwork->network.IELength, rsn_ie, &rsn_len, wpa_ie, &wpa_len);
  498. if (wpa_len > 0) {
  499. _rtw_memset(pbuf, 0, buf_size);
  500. p += sprintf(p, "wpa_ie=");
  501. for (i = 0; i < wpa_len; i++)
  502. p += sprintf(p, "%02x", wpa_ie[i]);
  503. if (wpa_len > 100) {
  504. printk("-----------------Len %d----------------\n", wpa_len);
  505. for (i = 0; i < wpa_len; i++)
  506. printk("%02x ", wpa_ie[i]);
  507. printk("\n");
  508. printk("-----------------Len %d----------------\n", wpa_len);
  509. }
  510. _rtw_memset(iwe, 0, sizeof(*iwe));
  511. iwe->cmd = IWEVCUSTOM;
  512. iwe->u.data.length = strlen(pbuf);
  513. start = iwe_stream_add_point(info, start, stop, iwe, pbuf);
  514. _rtw_memset(iwe, 0, sizeof(*iwe));
  515. iwe->cmd = IWEVGENIE;
  516. iwe->u.data.length = wpa_len;
  517. start = iwe_stream_add_point(info, start, stop, iwe, wpa_ie);
  518. }
  519. if (rsn_len > 0) {
  520. _rtw_memset(pbuf, 0, buf_size);
  521. p += sprintf(p, "rsn_ie=");
  522. for (i = 0; i < rsn_len; i++)
  523. p += sprintf(p, "%02x", rsn_ie[i]);
  524. _rtw_memset(iwe, 0, sizeof(*iwe));
  525. iwe->cmd = IWEVCUSTOM;
  526. iwe->u.data.length = strlen(pbuf);
  527. start = iwe_stream_add_point(info, start, stop, iwe, pbuf);
  528. _rtw_memset(iwe, 0, sizeof(*iwe));
  529. iwe->cmd = IWEVGENIE;
  530. iwe->u.data.length = rsn_len;
  531. start = iwe_stream_add_point(info, start, stop, iwe, rsn_ie);
  532. }
  533. }
  534. rtw_mfree(pbuf, buf_size);
  535. }
  536. return start;
  537. }
  538. static inline char *iwe_stream_wps_process(_adapter *padapter,
  539. struct iw_request_info *info, struct wlan_network *pnetwork,
  540. char *start, char *stop, struct iw_event *iwe)
  541. {
  542. /* parsing WPS IE */
  543. uint cnt = 0, total_ielen;
  544. u8 *wpsie_ptr = NULL;
  545. uint wps_ielen = 0;
  546. u8 ie_offset = (pnetwork->network.Reserved[0] == 2 ? 0 : 12);
  547. u8 *ie_ptr = pnetwork->network.IEs + ie_offset;
  548. total_ielen = pnetwork->network.IELength - ie_offset;
  549. if (pnetwork->network.Reserved[0] == 2) { /* Probe Request */
  550. ie_ptr = pnetwork->network.IEs;
  551. total_ielen = pnetwork->network.IELength;
  552. } else { /* Beacon or Probe Respones */
  553. ie_ptr = pnetwork->network.IEs + _FIXED_IE_LENGTH_;
  554. total_ielen = pnetwork->network.IELength - _FIXED_IE_LENGTH_;
  555. }
  556. while (cnt < total_ielen) {
  557. if (rtw_is_wps_ie(&ie_ptr[cnt], &wps_ielen) && (wps_ielen > 2)) {
  558. wpsie_ptr = &ie_ptr[cnt];
  559. iwe->cmd = IWEVGENIE;
  560. iwe->u.data.length = (u16)wps_ielen;
  561. start = iwe_stream_add_point(info, start, stop, iwe, wpsie_ptr);
  562. }
  563. cnt += ie_ptr[cnt + 1] + 2; /* goto next */
  564. }
  565. return start;
  566. }
  567. static inline char *iwe_stream_wapi_process(_adapter *padapter,
  568. struct iw_request_info *info, struct wlan_network *pnetwork,
  569. char *start, char *stop, struct iw_event *iwe)
  570. {
  571. #ifdef CONFIG_WAPI_SUPPORT
  572. char *p;
  573. if (pnetwork->network.Reserved[0] != 2) { /* Probe Request */
  574. sint out_len_wapi = 0;
  575. /* here use static for stack size */
  576. static u8 buf_wapi[MAX_WAPI_IE_LEN * 2] = {0};
  577. static u8 wapi_ie[MAX_WAPI_IE_LEN] = {0};
  578. u16 wapi_len = 0;
  579. u16 i;
  580. out_len_wapi = rtw_get_wapi_ie(pnetwork->network.IEs , pnetwork->network.IELength, wapi_ie, &wapi_len);
  581. RTW_INFO("rtw_wx_get_scan: %s ", pnetwork->network.Ssid.Ssid);
  582. RTW_INFO("rtw_wx_get_scan: ssid = %d ", wapi_len);
  583. if (wapi_len > 0) {
  584. p = buf_wapi;
  585. /* _rtw_memset(buf_wapi, 0, MAX_WAPI_IE_LEN*2); */
  586. p += sprintf(p, "wapi_ie=");
  587. for (i = 0; i < wapi_len; i++)
  588. p += sprintf(p, "%02x", wapi_ie[i]);
  589. _rtw_memset(iwe, 0, sizeof(*iwe));
  590. iwe->cmd = IWEVCUSTOM;
  591. iwe->u.data.length = strlen(buf_wapi);
  592. start = iwe_stream_add_point(info, start, stop, iwe, buf_wapi);
  593. _rtw_memset(iwe, 0, sizeof(*iwe));
  594. iwe->cmd = IWEVGENIE;
  595. iwe->u.data.length = wapi_len;
  596. start = iwe_stream_add_point(info, start, stop, iwe, wapi_ie);
  597. }
  598. }
  599. #endif/* #ifdef CONFIG_WAPI_SUPPORT */
  600. return start;
  601. }
  602. static inline char *iwe_stream_rssi_process(_adapter *padapter,
  603. struct iw_request_info *info, struct wlan_network *pnetwork,
  604. char *start, char *stop, struct iw_event *iwe)
  605. {
  606. u8 ss, sq;
  607. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  608. /* Add quality statistics */
  609. iwe->cmd = IWEVQUAL;
  610. iwe->u.qual.updated = IW_QUAL_QUAL_UPDATED | IW_QUAL_LEVEL_UPDATED
  611. #if defined(CONFIG_SIGNAL_DISPLAY_DBM) && defined(CONFIG_BACKGROUND_NOISE_MONITOR)
  612. | IW_QUAL_NOISE_UPDATED
  613. #else
  614. | IW_QUAL_NOISE_INVALID
  615. #endif
  616. #ifdef CONFIG_SIGNAL_DISPLAY_DBM
  617. | IW_QUAL_DBM
  618. #endif
  619. ;
  620. if (check_fwstate(pmlmepriv, _FW_LINKED) == _TRUE &&
  621. is_same_network(&pmlmepriv->cur_network.network, &pnetwork->network, 0)) {
  622. ss = padapter->recvpriv.signal_strength;
  623. sq = padapter->recvpriv.signal_qual;
  624. } else {
  625. ss = pnetwork->network.PhyInfo.SignalStrength;
  626. sq = pnetwork->network.PhyInfo.SignalQuality;
  627. }
  628. #ifdef CONFIG_SIGNAL_DISPLAY_DBM
  629. iwe->u.qual.level = (u8) translate_percentage_to_dbm(ss); /* dbm */
  630. #else
  631. #ifdef CONFIG_SIGNAL_SCALE_MAPPING
  632. iwe->u.qual.level = (u8)ss; /* % */
  633. #else
  634. {
  635. /* Do signal scale mapping when using percentage as the unit of signal strength, since the scale mapping is skipped in odm */
  636. HAL_DATA_TYPE *pHal = GET_HAL_DATA(padapter);
  637. iwe->u.qual.level = (u8)odm_signal_scale_mapping(&pHal->odmpriv, ss);
  638. }
  639. #endif
  640. #endif
  641. iwe->u.qual.qual = (u8)sq; /* signal quality */
  642. #ifdef CONFIG_PLATFORM_ROCKCHIPS
  643. iwe->u.qual.noise = -100; /* noise level suggest by zhf@rockchips */
  644. #else
  645. #if defined(CONFIG_SIGNAL_DISPLAY_DBM) && defined(CONFIG_BACKGROUND_NOISE_MONITOR)
  646. {
  647. s16 tmp_noise = 0;
  648. rtw_hal_get_odm_var(padapter, HAL_ODM_NOISE_MONITOR, &(pnetwork->network.Configuration.DSConfig), &(tmp_noise));
  649. iwe->u.qual.noise = tmp_noise ;
  650. }
  651. #else
  652. iwe->u.qual.noise = 0; /* noise level */
  653. #endif
  654. #endif /* CONFIG_PLATFORM_ROCKCHIPS */
  655. /* RTW_INFO("iqual=%d, ilevel=%d, inoise=%d, iupdated=%d\n", iwe.u.qual.qual, iwe.u.qual.level , iwe.u.qual.noise, iwe.u.qual.updated); */
  656. start = iwe_stream_add_event(info, start, stop, iwe, IW_EV_QUAL_LEN);
  657. return start;
  658. }
  659. static inline char *iwe_stream_net_rsv_process(_adapter *padapter,
  660. struct iw_request_info *info, struct wlan_network *pnetwork,
  661. char *start, char *stop, struct iw_event *iwe)
  662. {
  663. u8 buf[32] = {0};
  664. u8 *p, *pos;
  665. int len;
  666. p = buf;
  667. pos = pnetwork->network.Reserved;
  668. p += sprintf(p, "fm=%02X%02X", pos[1], pos[0]);
  669. _rtw_memset(iwe, 0, sizeof(*iwe));
  670. iwe->cmd = IWEVCUSTOM;
  671. iwe->u.data.length = strlen(buf);
  672. start = iwe_stream_add_point(info, start, stop, iwe, buf);
  673. return start;
  674. }
  675. #if 1
  676. static char *translate_scan(_adapter *padapter,
  677. struct iw_request_info *info, struct wlan_network *pnetwork,
  678. char *start, char *stop)
  679. {
  680. struct iw_event iwe;
  681. u16 cap = 0;
  682. _rtw_memset(&iwe, 0, sizeof(iwe));
  683. if (_FALSE == search_p2p_wfd_ie(padapter, info, pnetwork, start, stop))
  684. return start;
  685. start = iwe_stream_mac_addr_proess(padapter, info, pnetwork, start, stop, &iwe);
  686. start = iwe_stream_essid_proess(padapter, info, pnetwork, start, stop, &iwe);
  687. start = iwe_stream_protocol_process(padapter, info, pnetwork, start, stop, &iwe);
  688. if (pnetwork->network.Reserved[0] == 2) /* Probe Request */
  689. cap = 0;
  690. else {
  691. _rtw_memcpy((u8 *)&cap, rtw_get_capability_from_ie(pnetwork->network.IEs), 2);
  692. cap = le16_to_cpu(cap);
  693. }
  694. start = iwe_stream_mode_process(padapter, info, pnetwork, start, stop, &iwe, cap);
  695. start = iwe_stream_chan_process(padapter, info, pnetwork, start, stop, &iwe);
  696. start = iwe_stream_encryption_process(padapter, info, pnetwork, start, stop, &iwe, cap);
  697. start = iwe_stream_rate_process(padapter, info, pnetwork, start, stop, &iwe);
  698. start = iwe_stream_wpa_wpa2_process(padapter, info, pnetwork, start, stop, &iwe);
  699. start = iwe_stream_wps_process(padapter, info, pnetwork, start, stop, &iwe);
  700. start = iwe_stream_wapi_process(padapter, info, pnetwork, start, stop, &iwe);
  701. start = iwe_stream_rssi_process(padapter, info, pnetwork, start, stop, &iwe);
  702. start = iwe_stream_net_rsv_process(padapter, info, pnetwork, start, stop, &iwe);
  703. return start;
  704. }
  705. #else
  706. static char *translate_scan(_adapter *padapter,
  707. struct iw_request_info *info, struct wlan_network *pnetwork,
  708. char *start, char *stop)
  709. {
  710. struct iw_event iwe;
  711. u16 cap;
  712. u32 ht_ielen = 0, vht_ielen = 0;
  713. char custom[MAX_CUSTOM_LEN];
  714. char *p;
  715. u16 max_rate = 0, rate, ht_cap = _FALSE, vht_cap = _FALSE;
  716. u32 i = 0;
  717. char *current_val;
  718. long rssi;
  719. u8 bw_40MHz = 0, short_GI = 0, bw_160MHz = 0, vht_highest_rate = 0;
  720. u16 mcs_rate = 0, vht_data_rate = 0;
  721. u8 ie_offset = (pnetwork->network.Reserved[0] == 2 ? 0 : 12);
  722. struct registry_priv *pregpriv = &padapter->registrypriv;
  723. if (_FALSE == search_p2p_wfd_ie(padapter, info, pnetwork, start, stop))
  724. return start;
  725. /* AP MAC address */
  726. iwe.cmd = SIOCGIWAP;
  727. iwe.u.ap_addr.sa_family = ARPHRD_ETHER;
  728. _rtw_memcpy(iwe.u.ap_addr.sa_data, pnetwork->network.MacAddress, ETH_ALEN);
  729. start = iwe_stream_add_event(info, start, stop, &iwe, IW_EV_ADDR_LEN);
  730. /* Add the ESSID */
  731. iwe.cmd = SIOCGIWESSID;
  732. iwe.u.data.flags = 1;
  733. iwe.u.data.length = min((u16)pnetwork->network.Ssid.SsidLength, (u16)32);
  734. start = iwe_stream_add_point(info, start, stop, &iwe, pnetwork->network.Ssid.Ssid);
  735. /* parsing HT_CAP_IE */
  736. if (pnetwork->network.Reserved[0] == 2) /* Probe Request */
  737. p = rtw_get_ie(&pnetwork->network.IEs[0], _HT_CAPABILITY_IE_, &ht_ielen, pnetwork->network.IELength);
  738. else
  739. p = rtw_get_ie(&pnetwork->network.IEs[12], _HT_CAPABILITY_IE_, &ht_ielen, pnetwork->network.IELength - 12);
  740. if (p && ht_ielen > 0) {
  741. struct rtw_ieee80211_ht_cap *pht_capie;
  742. ht_cap = _TRUE;
  743. pht_capie = (struct rtw_ieee80211_ht_cap *)(p + 2);
  744. _rtw_memcpy(&mcs_rate , pht_capie->supp_mcs_set, 2);
  745. bw_40MHz = (pht_capie->cap_info & IEEE80211_HT_CAP_SUP_WIDTH) ? 1 : 0;
  746. short_GI = (pht_capie->cap_info & (IEEE80211_HT_CAP_SGI_20 | IEEE80211_HT_CAP_SGI_40)) ? 1 : 0;
  747. }
  748. #ifdef CONFIG_80211AC_VHT
  749. /* parsing VHT_CAP_IE */
  750. p = rtw_get_ie(&pnetwork->network.IEs[ie_offset], EID_VHTCapability, &vht_ielen, pnetwork->network.IELength - ie_offset);
  751. if (p && vht_ielen > 0) {
  752. u8 mcs_map[2];
  753. vht_cap = _TRUE;
  754. bw_160MHz = GET_VHT_CAPABILITY_ELE_CHL_WIDTH(p + 2);
  755. if (bw_160MHz)
  756. short_GI = GET_VHT_CAPABILITY_ELE_SHORT_GI160M(p + 2);
  757. else
  758. short_GI = GET_VHT_CAPABILITY_ELE_SHORT_GI80M(p + 2);
  759. _rtw_memcpy(mcs_map, GET_VHT_CAPABILITY_ELE_TX_MCS(p + 2), 2);
  760. vht_highest_rate = rtw_get_vht_highest_rate(mcs_map);
  761. vht_data_rate = rtw_vht_mcs_to_data_rate(CHANNEL_WIDTH_80, short_GI, vht_highest_rate);
  762. }
  763. #endif
  764. /* Add the protocol name */
  765. iwe.cmd = SIOCGIWNAME;
  766. if ((rtw_is_cckratesonly_included((u8 *)&pnetwork->network.SupportedRates)) == _TRUE) {
  767. if (ht_cap == _TRUE)
  768. snprintf(iwe.u.name, IFNAMSIZ, "IEEE 802.11bn");
  769. else
  770. snprintf(iwe.u.name, IFNAMSIZ, "IEEE 802.11b");
  771. } else if ((rtw_is_cckrates_included((u8 *)&pnetwork->network.SupportedRates)) == _TRUE) {
  772. if (ht_cap == _TRUE)
  773. snprintf(iwe.u.name, IFNAMSIZ, "IEEE 802.11bgn");
  774. else
  775. snprintf(iwe.u.name, IFNAMSIZ, "IEEE 802.11bg");
  776. } else {
  777. if (pnetwork->network.Configuration.DSConfig > 14) {
  778. if (vht_cap == _TRUE)
  779. snprintf(iwe.u.name, IFNAMSIZ, "IEEE 802.11AC");
  780. else if (ht_cap == _TRUE)
  781. snprintf(iwe.u.name, IFNAMSIZ, "IEEE 802.11an");
  782. else
  783. snprintf(iwe.u.name, IFNAMSIZ, "IEEE 802.11a");
  784. } else {
  785. if (ht_cap == _TRUE)
  786. snprintf(iwe.u.name, IFNAMSIZ, "IEEE 802.11gn");
  787. else
  788. snprintf(iwe.u.name, IFNAMSIZ, "IEEE 802.11g");
  789. }
  790. }
  791. start = iwe_stream_add_event(info, start, stop, &iwe, IW_EV_CHAR_LEN);
  792. /* Add mode */
  793. if (pnetwork->network.Reserved[0] == 2) /* Probe Request */
  794. cap = 0;
  795. else {
  796. iwe.cmd = SIOCGIWMODE;
  797. _rtw_memcpy((u8 *)&cap, rtw_get_capability_from_ie(pnetwork->network.IEs), 2);
  798. cap = le16_to_cpu(cap);
  799. }
  800. if (cap & (WLAN_CAPABILITY_IBSS | WLAN_CAPABILITY_BSS)) {
  801. if (cap & WLAN_CAPABILITY_BSS)
  802. iwe.u.mode = IW_MODE_MASTER;
  803. else
  804. iwe.u.mode = IW_MODE_ADHOC;
  805. start = iwe_stream_add_event(info, start, stop, &iwe, IW_EV_UINT_LEN);
  806. }
  807. if (pnetwork->network.Configuration.DSConfig < 1 /*|| pnetwork->network.Configuration.DSConfig>14*/)
  808. pnetwork->network.Configuration.DSConfig = 1;
  809. /* Add frequency/channel */
  810. iwe.cmd = SIOCGIWFREQ;
  811. iwe.u.freq.m = rtw_ch2freq(pnetwork->network.Configuration.DSConfig) * 100000;
  812. iwe.u.freq.e = 1;
  813. iwe.u.freq.i = pnetwork->network.Configuration.DSConfig;
  814. start = iwe_stream_add_event(info, start, stop, &iwe, IW_EV_FREQ_LEN);
  815. /* Add encryption capability */
  816. iwe.cmd = SIOCGIWENCODE;
  817. if (cap & WLAN_CAPABILITY_PRIVACY)
  818. iwe.u.data.flags = IW_ENCODE_ENABLED | IW_ENCODE_NOKEY;
  819. else
  820. iwe.u.data.flags = IW_ENCODE_DISABLED;
  821. iwe.u.data.length = 0;
  822. start = iwe_stream_add_point(info, start, stop, &iwe, pnetwork->network.Ssid.Ssid);
  823. /*Add basic and extended rates */
  824. max_rate = 0;
  825. p = custom;
  826. p += snprintf(p, MAX_CUSTOM_LEN - (p - custom), " Rates (Mb/s): ");
  827. while (pnetwork->network.SupportedRates[i] != 0) {
  828. rate = pnetwork->network.SupportedRates[i] & 0x7F;
  829. if (rate > max_rate)
  830. max_rate = rate;
  831. p += snprintf(p, MAX_CUSTOM_LEN - (p - custom),
  832. "%d%s ", rate >> 1, (rate & 1) ? ".5" : "");
  833. i++;
  834. }
  835. if (vht_cap == _TRUE)
  836. max_rate = vht_data_rate;
  837. else if (ht_cap == _TRUE) {
  838. if (mcs_rate & 0x8000) /* MCS15 */
  839. max_rate = (bw_40MHz) ? ((short_GI) ? 300 : 270) : ((short_GI) ? 144 : 130);
  840. else if (mcs_rate & 0x0080) /* MCS7 */
  841. max_rate = (bw_40MHz) ? ((short_GI) ? 150 : 135) : ((short_GI) ? 72 : 65);
  842. else { /* default MCS7 */
  843. /* RTW_INFO("wx_get_scan, mcs_rate_bitmap=0x%x\n", mcs_rate); */
  844. max_rate = (bw_40MHz) ? ((short_GI) ? 150 : 135) : ((short_GI) ? 72 : 65);
  845. }
  846. max_rate = max_rate * 2; /* Mbps/2; */
  847. }
  848. iwe.cmd = SIOCGIWRATE;
  849. iwe.u.bitrate.fixed = iwe.u.bitrate.disabled = 0;
  850. iwe.u.bitrate.value = max_rate * 500000;
  851. start = iwe_stream_add_event(info, start, stop, &iwe, IW_EV_PARAM_LEN);
  852. /* parsing WPA/WPA2 IE */
  853. if (pnetwork->network.Reserved[0] != 2) { /* Probe Request */
  854. u8 buf[MAX_WPA_IE_LEN * 2];
  855. u8 wpa_ie[255], rsn_ie[255];
  856. u16 wpa_len = 0, rsn_len = 0;
  857. u8 *p;
  858. sint out_len = 0;
  859. out_len = rtw_get_sec_ie(pnetwork->network.IEs , pnetwork->network.IELength, rsn_ie, &rsn_len, wpa_ie, &wpa_len);
  860. if (wpa_len > 0) {
  861. p = buf;
  862. _rtw_memset(buf, 0, MAX_WPA_IE_LEN * 2);
  863. p += sprintf(p, "wpa_ie=");
  864. for (i = 0; i < wpa_len; i++)
  865. p += sprintf(p, "%02x", wpa_ie[i]);
  866. if (wpa_len > 100) {
  867. printk("-----------------Len %d----------------\n", wpa_len);
  868. for (i = 0; i < wpa_len; i++)
  869. printk("%02x ", wpa_ie[i]);
  870. printk("\n");
  871. printk("-----------------Len %d----------------\n", wpa_len);
  872. }
  873. _rtw_memset(&iwe, 0, sizeof(iwe));
  874. iwe.cmd = IWEVCUSTOM;
  875. iwe.u.data.length = strlen(buf);
  876. start = iwe_stream_add_point(info, start, stop, &iwe, buf);
  877. _rtw_memset(&iwe, 0, sizeof(iwe));
  878. iwe.cmd = IWEVGENIE;
  879. iwe.u.data.length = wpa_len;
  880. start = iwe_stream_add_point(info, start, stop, &iwe, wpa_ie);
  881. }
  882. if (rsn_len > 0) {
  883. p = buf;
  884. _rtw_memset(buf, 0, MAX_WPA_IE_LEN * 2);
  885. p += sprintf(p, "rsn_ie=");
  886. for (i = 0; i < rsn_len; i++)
  887. p += sprintf(p, "%02x", rsn_ie[i]);
  888. _rtw_memset(&iwe, 0, sizeof(iwe));
  889. iwe.cmd = IWEVCUSTOM;
  890. iwe.u.data.length = strlen(buf);
  891. start = iwe_stream_add_point(info, start, stop, &iwe, buf);
  892. _rtw_memset(&iwe, 0, sizeof(iwe));
  893. iwe.cmd = IWEVGENIE;
  894. iwe.u.data.length = rsn_len;
  895. start = iwe_stream_add_point(info, start, stop, &iwe, rsn_ie);
  896. }
  897. }
  898. { /* parsing WPS IE */
  899. uint cnt = 0, total_ielen;
  900. u8 *wpsie_ptr = NULL;
  901. uint wps_ielen = 0;
  902. u8 *ie_ptr = pnetwork->network.IEs + ie_offset;
  903. total_ielen = pnetwork->network.IELength - ie_offset;
  904. if (pnetwork->network.Reserved[0] == 2) { /* Probe Request */
  905. ie_ptr = pnetwork->network.IEs;
  906. total_ielen = pnetwork->network.IELength;
  907. } else { /* Beacon or Probe Respones */
  908. ie_ptr = pnetwork->network.IEs + _FIXED_IE_LENGTH_;
  909. total_ielen = pnetwork->network.IELength - _FIXED_IE_LENGTH_;
  910. }
  911. while (cnt < total_ielen) {
  912. if (rtw_is_wps_ie(&ie_ptr[cnt], &wps_ielen) && (wps_ielen > 2)) {
  913. wpsie_ptr = &ie_ptr[cnt];
  914. iwe.cmd = IWEVGENIE;
  915. iwe.u.data.length = (u16)wps_ielen;
  916. start = iwe_stream_add_point(info, start, stop, &iwe, wpsie_ptr);
  917. }
  918. cnt += ie_ptr[cnt + 1] + 2; /* goto next */
  919. }
  920. }
  921. #ifdef CONFIG_WAPI_SUPPORT
  922. if (pnetwork->network.Reserved[0] != 2) { /* Probe Request */
  923. sint out_len_wapi = 0;
  924. /* here use static for stack size */
  925. static u8 buf_wapi[MAX_WAPI_IE_LEN * 2];
  926. static u8 wapi_ie[MAX_WAPI_IE_LEN];
  927. u16 wapi_len = 0;
  928. u16 i;
  929. _rtw_memset(buf_wapi, 0, MAX_WAPI_IE_LEN);
  930. _rtw_memset(wapi_ie, 0, MAX_WAPI_IE_LEN);
  931. out_len_wapi = rtw_get_wapi_ie(pnetwork->network.IEs , pnetwork->network.IELength, wapi_ie, &wapi_len);
  932. RTW_INFO("rtw_wx_get_scan: %s ", pnetwork->network.Ssid.Ssid);
  933. RTW_INFO("rtw_wx_get_scan: ssid = %d ", wapi_len);
  934. if (wapi_len > 0) {
  935. p = buf_wapi;
  936. _rtw_memset(buf_wapi, 0, MAX_WAPI_IE_LEN * 2);
  937. p += sprintf(p, "wapi_ie=");
  938. for (i = 0; i < wapi_len; i++)
  939. p += sprintf(p, "%02x", wapi_ie[i]);
  940. _rtw_memset(&iwe, 0, sizeof(iwe));
  941. iwe.cmd = IWEVCUSTOM;
  942. iwe.u.data.length = strlen(buf_wapi);
  943. start = iwe_stream_add_point(info, start, stop, &iwe, buf_wapi);
  944. _rtw_memset(&iwe, 0, sizeof(iwe));
  945. iwe.cmd = IWEVGENIE;
  946. iwe.u.data.length = wapi_len;
  947. start = iwe_stream_add_point(info, start, stop, &iwe, wapi_ie);
  948. }
  949. }
  950. #endif
  951. {
  952. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  953. u8 ss, sq;
  954. /* Add quality statistics */
  955. iwe.cmd = IWEVQUAL;
  956. iwe.u.qual.updated = IW_QUAL_QUAL_UPDATED | IW_QUAL_LEVEL_UPDATED
  957. #if defined(CONFIG_SIGNAL_DISPLAY_DBM) && defined(CONFIG_BACKGROUND_NOISE_MONITOR)
  958. | IW_QUAL_NOISE_UPDATED
  959. #else
  960. | IW_QUAL_NOISE_INVALID
  961. #endif
  962. #ifdef CONFIG_SIGNAL_DISPLAY_DBM
  963. | IW_QUAL_DBM
  964. #endif
  965. ;
  966. if (check_fwstate(pmlmepriv, _FW_LINKED) == _TRUE &&
  967. is_same_network(&pmlmepriv->cur_network.network, &pnetwork->network, 0)) {
  968. ss = padapter->recvpriv.signal_strength;
  969. sq = padapter->recvpriv.signal_qual;
  970. } else {
  971. ss = pnetwork->network.PhyInfo.SignalStrength;
  972. sq = pnetwork->network.PhyInfo.SignalQuality;
  973. }
  974. #ifdef CONFIG_SIGNAL_DISPLAY_DBM
  975. iwe.u.qual.level = (u8) translate_percentage_to_dbm(ss); /* dbm */
  976. #else
  977. #ifdef CONFIG_SIGNAL_SCALE_MAPPING
  978. iwe.u.qual.level = (u8)ss; /* % */
  979. #else
  980. {
  981. /* Do signal scale mapping when using percentage as the unit of signal strength, since the scale mapping is skipped in odm */
  982. HAL_DATA_TYPE *pHal = GET_HAL_DATA(padapter);
  983. iwe.u.qual.level = (u8)odm_signal_scale_mapping(&pHal->odmpriv, ss);
  984. }
  985. #endif
  986. #endif
  987. iwe.u.qual.qual = (u8)sq; /* signal quality */
  988. #ifdef CONFIG_PLATFORM_ROCKCHIPS
  989. iwe.u.qual.noise = -100; /* noise level suggest by zhf@rockchips */
  990. #else
  991. #if defined(CONFIG_SIGNAL_DISPLAY_DBM) && defined(CONFIG_BACKGROUND_NOISE_MONITOR)
  992. {
  993. s16 tmp_noise = 0;
  994. rtw_hal_get_odm_var(padapter, HAL_ODM_NOISE_MONITOR, &(pnetwork->network.Configuration.DSConfig), &(tmp_noise));
  995. iwe.u.qual.noise = tmp_noise ;
  996. }
  997. #else
  998. iwe.u.qual.noise = 0; /* noise level */
  999. #endif
  1000. #endif /* CONFIG_PLATFORM_ROCKCHIPS */
  1001. /* RTW_INFO("iqual=%d, ilevel=%d, inoise=%d, iupdated=%d\n", iwe.u.qual.qual, iwe.u.qual.level , iwe.u.qual.noise, iwe.u.qual.updated); */
  1002. start = iwe_stream_add_event(info, start, stop, &iwe, IW_EV_QUAL_LEN);
  1003. }
  1004. {
  1005. u8 buf[MAX_WPA_IE_LEN];
  1006. u8 *p, *pos;
  1007. int len;
  1008. p = buf;
  1009. pos = pnetwork->network.Reserved;
  1010. _rtw_memset(buf, 0, MAX_WPA_IE_LEN);
  1011. p += sprintf(p, "fm=%02X%02X", pos[1], pos[0]);
  1012. _rtw_memset(&iwe, 0, sizeof(iwe));
  1013. iwe.cmd = IWEVCUSTOM;
  1014. iwe.u.data.length = strlen(buf);
  1015. start = iwe_stream_add_point(info, start, stop, &iwe, buf);
  1016. }
  1017. return start;
  1018. }
  1019. #endif
  1020. static int wpa_set_auth_algs(struct net_device *dev, u32 value)
  1021. {
  1022. _adapter *padapter = (_adapter *) rtw_netdev_priv(dev);
  1023. int ret = 0;
  1024. if ((value & AUTH_ALG_SHARED_KEY) && (value & AUTH_ALG_OPEN_SYSTEM)) {
  1025. RTW_INFO("wpa_set_auth_algs, AUTH_ALG_SHARED_KEY and AUTH_ALG_OPEN_SYSTEM [value:0x%x]\n", value);
  1026. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption1Enabled;
  1027. padapter->securitypriv.ndisauthtype = Ndis802_11AuthModeAutoSwitch;
  1028. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Auto;
  1029. } else if (value & AUTH_ALG_SHARED_KEY) {
  1030. RTW_INFO("wpa_set_auth_algs, AUTH_ALG_SHARED_KEY [value:0x%x]\n", value);
  1031. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption1Enabled;
  1032. #ifdef CONFIG_PLATFORM_MT53XX
  1033. padapter->securitypriv.ndisauthtype = Ndis802_11AuthModeAutoSwitch;
  1034. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Auto;
  1035. #else
  1036. padapter->securitypriv.ndisauthtype = Ndis802_11AuthModeShared;
  1037. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Shared;
  1038. #endif
  1039. } else if (value & AUTH_ALG_OPEN_SYSTEM) {
  1040. RTW_INFO("wpa_set_auth_algs, AUTH_ALG_OPEN_SYSTEM\n");
  1041. /* padapter->securitypriv.ndisencryptstatus = Ndis802_11EncryptionDisabled; */
  1042. if (padapter->securitypriv.ndisauthtype < Ndis802_11AuthModeWPAPSK) {
  1043. #ifdef CONFIG_PLATFORM_MT53XX
  1044. padapter->securitypriv.ndisauthtype = Ndis802_11AuthModeAutoSwitch;
  1045. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Auto;
  1046. #else
  1047. padapter->securitypriv.ndisauthtype = Ndis802_11AuthModeOpen;
  1048. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Open;
  1049. #endif
  1050. }
  1051. } else if (value & AUTH_ALG_LEAP)
  1052. RTW_INFO("wpa_set_auth_algs, AUTH_ALG_LEAP\n");
  1053. else {
  1054. RTW_INFO("wpa_set_auth_algs, error!\n");
  1055. ret = -EINVAL;
  1056. }
  1057. return ret;
  1058. }
  1059. static int wpa_set_encryption(struct net_device *dev, struct ieee_param *param, u32 param_len)
  1060. {
  1061. int ret = 0;
  1062. u32 wep_key_idx, wep_key_len, wep_total_len;
  1063. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1064. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  1065. struct security_priv *psecuritypriv = &padapter->securitypriv;
  1066. #ifdef CONFIG_P2P
  1067. struct wifidirect_info *pwdinfo = &padapter->wdinfo;
  1068. #endif /* CONFIG_P2P */
  1069. param->u.crypt.err = 0;
  1070. param->u.crypt.alg[IEEE_CRYPT_ALG_NAME_LEN - 1] = '\0';
  1071. if (param_len < (u32)((u8 *) param->u.crypt.key - (u8 *) param) + param->u.crypt.key_len) {
  1072. ret = -EINVAL;
  1073. goto exit;
  1074. }
  1075. if (param->sta_addr[0] == 0xff && param->sta_addr[1] == 0xff &&
  1076. param->sta_addr[2] == 0xff && param->sta_addr[3] == 0xff &&
  1077. param->sta_addr[4] == 0xff && param->sta_addr[5] == 0xff) {
  1078. if (param->u.crypt.idx >= WEP_KEYS
  1079. #ifdef CONFIG_IEEE80211W
  1080. && param->u.crypt.idx > BIP_MAX_KEYID
  1081. #endif /* CONFIG_IEEE80211W */
  1082. ) {
  1083. ret = -EINVAL;
  1084. goto exit;
  1085. }
  1086. } else {
  1087. #ifdef CONFIG_WAPI_SUPPORT
  1088. if (strcmp(param->u.crypt.alg, "SMS4"))
  1089. #endif
  1090. {
  1091. ret = -EINVAL;
  1092. goto exit;
  1093. }
  1094. }
  1095. if (strcmp(param->u.crypt.alg, "WEP") == 0) {
  1096. RTW_INFO("wpa_set_encryption, crypt.alg = WEP\n");
  1097. wep_key_idx = param->u.crypt.idx;
  1098. wep_key_len = param->u.crypt.key_len;
  1099. if ((wep_key_idx > WEP_KEYS) || (wep_key_len <= 0)) {
  1100. ret = -EINVAL;
  1101. goto exit;
  1102. }
  1103. if (psecuritypriv->bWepDefaultKeyIdxSet == 0) {
  1104. /* wep default key has not been set, so use this key index as default key.*/
  1105. wep_key_len = wep_key_len <= 5 ? 5 : 13;
  1106. psecuritypriv->ndisencryptstatus = Ndis802_11Encryption1Enabled;
  1107. psecuritypriv->dot11PrivacyAlgrthm = _WEP40_;
  1108. psecuritypriv->dot118021XGrpPrivacy = _WEP40_;
  1109. if (wep_key_len == 13) {
  1110. psecuritypriv->dot11PrivacyAlgrthm = _WEP104_;
  1111. psecuritypriv->dot118021XGrpPrivacy = _WEP104_;
  1112. }
  1113. psecuritypriv->dot11PrivacyKeyIndex = wep_key_idx;
  1114. }
  1115. _rtw_memcpy(&(psecuritypriv->dot11DefKey[wep_key_idx].skey[0]), param->u.crypt.key, wep_key_len);
  1116. psecuritypriv->dot11DefKeylen[wep_key_idx] = wep_key_len;
  1117. psecuritypriv->key_mask |= BIT(wep_key_idx);
  1118. goto exit;
  1119. }
  1120. if (padapter->securitypriv.dot11AuthAlgrthm == dot11AuthAlgrthm_8021X) { /* 802_1x */
  1121. struct sta_info *psta, *pbcmc_sta;
  1122. struct sta_priv *pstapriv = &padapter->stapriv;
  1123. if (check_fwstate(pmlmepriv, WIFI_STATION_STATE | WIFI_MP_STATE) == _TRUE) { /* sta mode */
  1124. psta = rtw_get_stainfo(pstapriv, get_bssid(pmlmepriv));
  1125. if (psta == NULL) {
  1126. /* DEBUG_ERR( ("Set wpa_set_encryption: Obtain Sta_info fail\n")); */
  1127. } else {
  1128. /* Jeff: don't disable ieee8021x_blocked while clearing key */
  1129. if (strcmp(param->u.crypt.alg, "none") != 0)
  1130. psta->ieee8021x_blocked = _FALSE;
  1131. if ((padapter->securitypriv.ndisencryptstatus == Ndis802_11Encryption2Enabled) ||
  1132. (padapter->securitypriv.ndisencryptstatus == Ndis802_11Encryption3Enabled))
  1133. psta->dot118021XPrivacy = padapter->securitypriv.dot11PrivacyAlgrthm;
  1134. if (param->u.crypt.set_tx == 1) { /* pairwise key */
  1135. _rtw_memcpy(psta->dot118021x_UncstKey.skey, param->u.crypt.key, (param->u.crypt.key_len > 16 ? 16 : param->u.crypt.key_len));
  1136. if (strcmp(param->u.crypt.alg, "TKIP") == 0) { /* set mic key */
  1137. /* DEBUG_ERR(("\nset key length :param->u.crypt.key_len=%d\n", param->u.crypt.key_len)); */
  1138. _rtw_memcpy(psta->dot11tkiptxmickey.skey, &(param->u.crypt.key[16]), 8);
  1139. _rtw_memcpy(psta->dot11tkiprxmickey.skey, &(param->u.crypt.key[24]), 8);
  1140. padapter->securitypriv.busetkipkey = _FALSE;
  1141. }
  1142. /* DEBUG_ERR((" param->u.crypt.key_len=%d\n",param->u.crypt.key_len)); */
  1143. RTW_INFO(" ~~~~set sta key:unicastkey\n");
  1144. rtw_setstakey_cmd(padapter, psta, UNICAST_KEY, _TRUE);
  1145. psta->bpairwise_key_installed = _TRUE;
  1146. } else { /* group key */
  1147. if (strcmp(param->u.crypt.alg, "TKIP") == 0 || strcmp(param->u.crypt.alg, "CCMP") == 0) {
  1148. _rtw_memcpy(padapter->securitypriv.dot118021XGrpKey[param->u.crypt.idx].skey, param->u.crypt.key,
  1149. (param->u.crypt.key_len > 16 ? 16 : param->u.crypt.key_len));
  1150. /* only TKIP group key need to install this */
  1151. if (param->u.crypt.key_len > 16) {
  1152. _rtw_memcpy(padapter->securitypriv.dot118021XGrptxmickey[param->u.crypt.idx].skey, &(param->u.crypt.key[16]), 8);
  1153. _rtw_memcpy(padapter->securitypriv.dot118021XGrprxmickey[param->u.crypt.idx].skey, &(param->u.crypt.key[24]), 8);
  1154. }
  1155. padapter->securitypriv.binstallGrpkey = _TRUE;
  1156. /* DEBUG_ERR((" param->u.crypt.key_len=%d\n", param->u.crypt.key_len)); */
  1157. RTW_INFO(" ~~~~set sta key:groupkey\n");
  1158. padapter->securitypriv.dot118021XGrpKeyid = param->u.crypt.idx;
  1159. rtw_set_key(padapter, &padapter->securitypriv, param->u.crypt.idx, 1, _TRUE);
  1160. }
  1161. #ifdef CONFIG_IEEE80211W
  1162. else if (strcmp(param->u.crypt.alg, "BIP") == 0) {
  1163. int no;
  1164. /* printk("BIP key_len=%d , index=%d @@@@@@@@@@@@@@@@@@\n", param->u.crypt.key_len, param->u.crypt.idx); */
  1165. /* save the IGTK key, length 16 bytes */
  1166. _rtw_memcpy(padapter->securitypriv.dot11wBIPKey[param->u.crypt.idx].skey, param->u.crypt.key,
  1167. (param->u.crypt.key_len > 16 ? 16 : param->u.crypt.key_len));
  1168. /*printk("IGTK key below:\n");
  1169. for(no=0;no<16;no++)
  1170. printk(" %02x ", padapter->securitypriv.dot11wBIPKey[param->u.crypt.idx].skey[no]);
  1171. printk("\n");*/
  1172. padapter->securitypriv.dot11wBIPKeyid = param->u.crypt.idx;
  1173. padapter->securitypriv.binstallBIPkey = _TRUE;
  1174. RTW_INFO(" ~~~~set sta key:IGKT\n");
  1175. }
  1176. #endif /* CONFIG_IEEE80211W */
  1177. #ifdef CONFIG_P2P
  1178. if (rtw_p2p_chk_state(pwdinfo, P2P_STATE_PROVISIONING_ING))
  1179. rtw_p2p_set_state(pwdinfo, P2P_STATE_PROVISIONING_DONE);
  1180. #endif /* CONFIG_P2P */
  1181. }
  1182. }
  1183. pbcmc_sta = rtw_get_bcmc_stainfo(padapter);
  1184. if (pbcmc_sta == NULL) {
  1185. /* DEBUG_ERR( ("Set OID_802_11_ADD_KEY: bcmc stainfo is null\n")); */
  1186. } else {
  1187. /* Jeff: don't disable ieee8021x_blocked while clearing key */
  1188. if (strcmp(param->u.crypt.alg, "none") != 0)
  1189. pbcmc_sta->ieee8021x_blocked = _FALSE;
  1190. if ((padapter->securitypriv.ndisencryptstatus == Ndis802_11Encryption2Enabled) ||
  1191. (padapter->securitypriv.ndisencryptstatus == Ndis802_11Encryption3Enabled))
  1192. pbcmc_sta->dot118021XPrivacy = padapter->securitypriv.dot11PrivacyAlgrthm;
  1193. }
  1194. } else if (check_fwstate(pmlmepriv, WIFI_ADHOC_STATE)) { /* adhoc mode */
  1195. }
  1196. }
  1197. #ifdef CONFIG_WAPI_SUPPORT
  1198. if (strcmp(param->u.crypt.alg, "SMS4") == 0) {
  1199. PRT_WAPI_T pWapiInfo = &padapter->wapiInfo;
  1200. PRT_WAPI_STA_INFO pWapiSta;
  1201. u8 WapiASUEPNInitialValueSrc[16] = {0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C} ;
  1202. u8 WapiAEPNInitialValueSrc[16] = {0x37, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C} ;
  1203. u8 WapiAEMultiCastPNInitialValueSrc[16] = {0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C, 0x36, 0x5C} ;
  1204. if (param->u.crypt.set_tx == 1) {
  1205. list_for_each_entry(pWapiSta, &pWapiInfo->wapiSTAUsedList, list) {
  1206. if (_rtw_memcmp(pWapiSta->PeerMacAddr, param->sta_addr, 6)) {
  1207. _rtw_memcpy(pWapiSta->lastTxUnicastPN, WapiASUEPNInitialValueSrc, 16);
  1208. pWapiSta->wapiUsk.bSet = true;
  1209. _rtw_memcpy(pWapiSta->wapiUsk.dataKey, param->u.crypt.key, 16);
  1210. _rtw_memcpy(pWapiSta->wapiUsk.micKey, param->u.crypt.key + 16, 16);
  1211. pWapiSta->wapiUsk.keyId = param->u.crypt.idx ;
  1212. pWapiSta->wapiUsk.bTxEnable = true;
  1213. _rtw_memcpy(pWapiSta->lastRxUnicastPNBEQueue, WapiAEPNInitialValueSrc, 16);
  1214. _rtw_memcpy(pWapiSta->lastRxUnicastPNBKQueue, WapiAEPNInitialValueSrc, 16);
  1215. _rtw_memcpy(pWapiSta->lastRxUnicastPNVIQueue, WapiAEPNInitialValueSrc, 16);
  1216. _rtw_memcpy(pWapiSta->lastRxUnicastPNVOQueue, WapiAEPNInitialValueSrc, 16);
  1217. _rtw_memcpy(pWapiSta->lastRxUnicastPN, WapiAEPNInitialValueSrc, 16);
  1218. pWapiSta->wapiUskUpdate.bTxEnable = false;
  1219. pWapiSta->wapiUskUpdate.bSet = false;
  1220. if (psecuritypriv->sw_encrypt == false || psecuritypriv->sw_decrypt == false) {
  1221. /* set unicast key for ASUE */
  1222. rtw_wapi_set_key(padapter, &pWapiSta->wapiUsk, pWapiSta, false, false);
  1223. }
  1224. }
  1225. }
  1226. } else {
  1227. list_for_each_entry(pWapiSta, &pWapiInfo->wapiSTAUsedList, list) {
  1228. if (_rtw_memcmp(pWapiSta->PeerMacAddr, get_bssid(pmlmepriv), 6)) {
  1229. pWapiSta->wapiMsk.bSet = true;
  1230. _rtw_memcpy(pWapiSta->wapiMsk.dataKey, param->u.crypt.key, 16);
  1231. _rtw_memcpy(pWapiSta->wapiMsk.micKey, param->u.crypt.key + 16, 16);
  1232. pWapiSta->wapiMsk.keyId = param->u.crypt.idx ;
  1233. pWapiSta->wapiMsk.bTxEnable = false;
  1234. if (!pWapiSta->bSetkeyOk)
  1235. pWapiSta->bSetkeyOk = true;
  1236. pWapiSta->bAuthenticateInProgress = false;
  1237. _rtw_memcpy(pWapiSta->lastRxMulticastPN, WapiAEMultiCastPNInitialValueSrc, 16);
  1238. if (psecuritypriv->sw_decrypt == false) {
  1239. /* set rx broadcast key for ASUE */
  1240. rtw_wapi_set_key(padapter, &pWapiSta->wapiMsk, pWapiSta, true, false);
  1241. }
  1242. }
  1243. }
  1244. }
  1245. }
  1246. #endif
  1247. exit:
  1248. return ret;
  1249. }
  1250. static int rtw_set_wpa_ie(_adapter *padapter, char *pie, unsigned short ielen)
  1251. {
  1252. u8 *buf = NULL, *pos = NULL;
  1253. u32 left;
  1254. int group_cipher = 0, pairwise_cipher = 0;
  1255. int ret = 0;
  1256. u8 null_addr[] = {0, 0, 0, 0, 0, 0};
  1257. #ifdef CONFIG_P2P
  1258. struct wifidirect_info *pwdinfo = &padapter->wdinfo;
  1259. #endif /* CONFIG_P2P */
  1260. if ((ielen > MAX_WPA_IE_LEN) || (pie == NULL)) {
  1261. _clr_fwstate_(&padapter->mlmepriv, WIFI_UNDER_WPS);
  1262. if (pie == NULL)
  1263. return ret;
  1264. else
  1265. return -EINVAL;
  1266. }
  1267. if (ielen) {
  1268. buf = rtw_zmalloc(ielen);
  1269. if (buf == NULL) {
  1270. ret = -ENOMEM;
  1271. goto exit;
  1272. }
  1273. _rtw_memcpy(buf, pie , ielen);
  1274. /* dump */
  1275. {
  1276. int i;
  1277. RTW_INFO("\n wpa_ie(length:%d):\n", ielen);
  1278. for (i = 0; i < ielen; i = i + 8)
  1279. RTW_INFO("0x%.2x 0x%.2x 0x%.2x 0x%.2x 0x%.2x 0x%.2x 0x%.2x 0x%.2x\n", buf[i], buf[i + 1], buf[i + 2], buf[i + 3], buf[i + 4], buf[i + 5], buf[i + 6], buf[i + 7]);
  1280. }
  1281. pos = buf;
  1282. if (ielen < RSN_HEADER_LEN) {
  1283. ret = -1;
  1284. goto exit;
  1285. }
  1286. #if 0
  1287. pos += RSN_HEADER_LEN;
  1288. left = ielen - RSN_HEADER_LEN;
  1289. if (left >= RSN_SELECTOR_LEN) {
  1290. pos += RSN_SELECTOR_LEN;
  1291. left -= RSN_SELECTOR_LEN;
  1292. } else if (left > 0) {
  1293. ret = -1;
  1294. goto exit;
  1295. }
  1296. #endif
  1297. if (rtw_parse_wpa_ie(buf, ielen, &group_cipher, &pairwise_cipher, NULL) == _SUCCESS) {
  1298. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_8021X;
  1299. padapter->securitypriv.ndisauthtype = Ndis802_11AuthModeWPAPSK;
  1300. _rtw_memcpy(padapter->securitypriv.supplicant_ie, &buf[0], ielen);
  1301. }
  1302. if (rtw_parse_wpa2_ie(buf, ielen, &group_cipher, &pairwise_cipher, NULL) == _SUCCESS) {
  1303. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_8021X;
  1304. padapter->securitypriv.ndisauthtype = Ndis802_11AuthModeWPA2PSK;
  1305. _rtw_memcpy(padapter->securitypriv.supplicant_ie, &buf[0], ielen);
  1306. }
  1307. if (group_cipher == 0)
  1308. group_cipher = WPA_CIPHER_NONE;
  1309. if (pairwise_cipher == 0)
  1310. pairwise_cipher = WPA_CIPHER_NONE;
  1311. switch (group_cipher) {
  1312. case WPA_CIPHER_NONE:
  1313. padapter->securitypriv.dot118021XGrpPrivacy = _NO_PRIVACY_;
  1314. padapter->securitypriv.ndisencryptstatus = Ndis802_11EncryptionDisabled;
  1315. break;
  1316. case WPA_CIPHER_WEP40:
  1317. padapter->securitypriv.dot118021XGrpPrivacy = _WEP40_;
  1318. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption1Enabled;
  1319. break;
  1320. case WPA_CIPHER_TKIP:
  1321. padapter->securitypriv.dot118021XGrpPrivacy = _TKIP_;
  1322. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption2Enabled;
  1323. break;
  1324. case WPA_CIPHER_CCMP:
  1325. padapter->securitypriv.dot118021XGrpPrivacy = _AES_;
  1326. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption3Enabled;
  1327. break;
  1328. case WPA_CIPHER_WEP104:
  1329. padapter->securitypriv.dot118021XGrpPrivacy = _WEP104_;
  1330. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption1Enabled;
  1331. break;
  1332. }
  1333. switch (pairwise_cipher) {
  1334. case WPA_CIPHER_NONE:
  1335. padapter->securitypriv.dot11PrivacyAlgrthm = _NO_PRIVACY_;
  1336. padapter->securitypriv.ndisencryptstatus = Ndis802_11EncryptionDisabled;
  1337. break;
  1338. case WPA_CIPHER_WEP40:
  1339. padapter->securitypriv.dot11PrivacyAlgrthm = _WEP40_;
  1340. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption1Enabled;
  1341. break;
  1342. case WPA_CIPHER_TKIP:
  1343. padapter->securitypriv.dot11PrivacyAlgrthm = _TKIP_;
  1344. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption2Enabled;
  1345. break;
  1346. case WPA_CIPHER_CCMP:
  1347. padapter->securitypriv.dot11PrivacyAlgrthm = _AES_;
  1348. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption3Enabled;
  1349. break;
  1350. case WPA_CIPHER_WEP104:
  1351. padapter->securitypriv.dot11PrivacyAlgrthm = _WEP104_;
  1352. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption1Enabled;
  1353. break;
  1354. }
  1355. _clr_fwstate_(&padapter->mlmepriv, WIFI_UNDER_WPS);
  1356. {/* set wps_ie */
  1357. u16 cnt = 0;
  1358. u8 eid, wps_oui[4] = {0x0, 0x50, 0xf2, 0x04};
  1359. while (cnt < ielen) {
  1360. eid = buf[cnt];
  1361. if ((eid == _VENDOR_SPECIFIC_IE_) && (_rtw_memcmp(&buf[cnt + 2], wps_oui, 4) == _TRUE)) {
  1362. RTW_INFO("SET WPS_IE\n");
  1363. padapter->securitypriv.wps_ie_len = ((buf[cnt + 1] + 2) < MAX_WPS_IE_LEN) ? (buf[cnt + 1] + 2) : MAX_WPS_IE_LEN;
  1364. _rtw_memcpy(padapter->securitypriv.wps_ie, &buf[cnt], padapter->securitypriv.wps_ie_len);
  1365. set_fwstate(&padapter->mlmepriv, WIFI_UNDER_WPS);
  1366. #ifdef CONFIG_P2P
  1367. if (rtw_p2p_chk_state(pwdinfo, P2P_STATE_GONEGO_OK))
  1368. rtw_p2p_set_state(pwdinfo, P2P_STATE_PROVISIONING_ING);
  1369. #endif /* CONFIG_P2P */
  1370. cnt += buf[cnt + 1] + 2;
  1371. break;
  1372. } else {
  1373. cnt += buf[cnt + 1] + 2; /* goto next */
  1374. }
  1375. }
  1376. }
  1377. }
  1378. /* TKIP and AES disallow multicast packets until installing group key */
  1379. if (padapter->securitypriv.dot11PrivacyAlgrthm == _TKIP_
  1380. || padapter->securitypriv.dot11PrivacyAlgrthm == _TKIP_WTMIC_
  1381. || padapter->securitypriv.dot11PrivacyAlgrthm == _AES_)
  1382. /* WPS open need to enable multicast
  1383. * || check_fwstate(&padapter->mlmepriv, WIFI_UNDER_WPS) == _TRUE) */
  1384. rtw_hal_set_hwreg(padapter, HW_VAR_OFF_RCR_AM, null_addr);
  1385. exit:
  1386. if (buf)
  1387. rtw_mfree(buf, ielen);
  1388. return ret;
  1389. }
  1390. static int rtw_wx_get_name(struct net_device *dev,
  1391. struct iw_request_info *info,
  1392. union iwreq_data *wrqu, char *extra)
  1393. {
  1394. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1395. u16 cap;
  1396. u32 ht_ielen = 0;
  1397. char *p;
  1398. u8 ht_cap = _FALSE, vht_cap = _FALSE;
  1399. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1400. WLAN_BSSID_EX *pcur_bss = &pmlmepriv->cur_network.network;
  1401. NDIS_802_11_RATES_EX *prates = NULL;
  1402. if (check_fwstate(pmlmepriv, _FW_LINKED | WIFI_ADHOC_MASTER_STATE) == _TRUE) {
  1403. /* parsing HT_CAP_IE */
  1404. p = rtw_get_ie(&pcur_bss->IEs[12], _HT_CAPABILITY_IE_, &ht_ielen, pcur_bss->IELength - 12);
  1405. if (p && ht_ielen > 0)
  1406. ht_cap = _TRUE;
  1407. #ifdef CONFIG_80211AC_VHT
  1408. if (pmlmepriv->vhtpriv.vht_option == _TRUE)
  1409. vht_cap = _TRUE;
  1410. #endif
  1411. prates = &pcur_bss->SupportedRates;
  1412. if (rtw_is_cckratesonly_included((u8 *)prates) == _TRUE) {
  1413. if (ht_cap == _TRUE)
  1414. snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11bn");
  1415. else
  1416. snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11b");
  1417. } else if ((rtw_is_cckrates_included((u8 *)prates)) == _TRUE) {
  1418. if (ht_cap == _TRUE)
  1419. snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11bgn");
  1420. else
  1421. snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11bg");
  1422. } else {
  1423. if (pcur_bss->Configuration.DSConfig > 14) {
  1424. #ifdef CONFIG_80211AC_VHT
  1425. if (vht_cap == _TRUE)
  1426. snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11AC");
  1427. else
  1428. #endif
  1429. {
  1430. if (ht_cap == _TRUE)
  1431. snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11an");
  1432. else
  1433. snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11a");
  1434. }
  1435. } else {
  1436. if (ht_cap == _TRUE)
  1437. snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11gn");
  1438. else
  1439. snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11g");
  1440. }
  1441. }
  1442. } else {
  1443. /* prates = &padapter->registrypriv.dev_network.SupportedRates; */
  1444. /* snprintf(wrqu->name, IFNAMSIZ, "IEEE 802.11g"); */
  1445. snprintf(wrqu->name, IFNAMSIZ, "unassociated");
  1446. }
  1447. return 0;
  1448. }
  1449. static int rtw_wx_set_freq(struct net_device *dev,
  1450. struct iw_request_info *info,
  1451. union iwreq_data *wrqu, char *extra)
  1452. {
  1453. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1454. HAL_DATA_TYPE *hal_data = GET_HAL_DATA(padapter);
  1455. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1456. struct wlan_network *cur_network = &(pmlmepriv->cur_network);
  1457. int exp = 1, freq = 0, div = 0;
  1458. if (wrqu->freq.m <= 1000) {
  1459. if (wrqu->freq.flags == IW_FREQ_AUTO) {
  1460. if (rtw_chset_search_ch(padapter->mlmeextpriv.channel_set, wrqu->freq.m) > 0) {
  1461. padapter->mlmeextpriv.cur_channel = wrqu->freq.m;
  1462. RTW_INFO("%s: channel is auto, set to channel %d\n", __func__, wrqu->freq.m);
  1463. } else {
  1464. padapter->mlmeextpriv.cur_channel = 1;
  1465. RTW_INFO("%s: channel is auto, Channel Plan don't match just set to channel 1\n", __func__);
  1466. }
  1467. } else {
  1468. padapter->mlmeextpriv.cur_channel = wrqu->freq.m;
  1469. RTW_INFO("%s: set to channel %d\n", __func__, padapter->mlmeextpriv.cur_channel);
  1470. }
  1471. } else {
  1472. while (wrqu->freq.e) {
  1473. exp *= 10;
  1474. wrqu->freq.e--;
  1475. }
  1476. freq = wrqu->freq.m;
  1477. while (!(freq % 10)) {
  1478. freq /= 10;
  1479. exp *= 10;
  1480. }
  1481. /* freq unit is MHz here */
  1482. div = 1000000 / exp;
  1483. if (div)
  1484. freq /= div;
  1485. else {
  1486. div = exp / 1000000;
  1487. freq *= div;
  1488. }
  1489. /* If freq is invalid, rtw_freq2ch() will return channel 1 */
  1490. padapter->mlmeextpriv.cur_channel = rtw_freq2ch(freq);
  1491. RTW_INFO("%s: set to channel %d\n", __func__, padapter->mlmeextpriv.cur_channel);
  1492. }
  1493. rtw_ps_deny(padapter, PS_DENY_IOCTL);
  1494. LeaveAllPowerSaveModeDirect(padapter); /* leave PS mode for guaranteeing to access hw register successfully */
  1495. set_channel_bwmode(padapter, padapter->mlmeextpriv.cur_channel, HAL_PRIME_CHNL_OFFSET_DONT_CARE, CHANNEL_WIDTH_20);
  1496. rtw_ps_deny_cancel(padapter, PS_DENY_IOCTL);
  1497. return 0;
  1498. }
  1499. static int rtw_wx_get_freq(struct net_device *dev,
  1500. struct iw_request_info *info,
  1501. union iwreq_data *wrqu, char *extra)
  1502. {
  1503. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1504. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1505. WLAN_BSSID_EX *pcur_bss = &pmlmepriv->cur_network.network;
  1506. if (check_fwstate(pmlmepriv, _FW_LINKED) == _TRUE && check_fwstate(pmlmepriv, WIFI_MONITOR_STATE) != _TRUE) {
  1507. wrqu->freq.m = rtw_ch2freq(pcur_bss->Configuration.DSConfig) * 100000;
  1508. wrqu->freq.e = 1;
  1509. wrqu->freq.i = pcur_bss->Configuration.DSConfig;
  1510. } else {
  1511. wrqu->freq.m = rtw_ch2freq(padapter->mlmeextpriv.cur_channel) * 100000;
  1512. wrqu->freq.e = 1;
  1513. wrqu->freq.i = padapter->mlmeextpriv.cur_channel;
  1514. }
  1515. return 0;
  1516. }
  1517. static int rtw_wx_set_mode(struct net_device *dev, struct iw_request_info *a,
  1518. union iwreq_data *wrqu, char *b)
  1519. {
  1520. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1521. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1522. NDIS_802_11_NETWORK_INFRASTRUCTURE networkType ;
  1523. int ret = 0;
  1524. if (_FAIL == rtw_pwr_wakeup(padapter)) {
  1525. ret = -EPERM;
  1526. goto exit;
  1527. }
  1528. if (!rtw_is_hw_init_completed(padapter)) {
  1529. ret = -EPERM;
  1530. goto exit;
  1531. }
  1532. /* initial default type */
  1533. dev->type = ARPHRD_ETHER;
  1534. if (wrqu->mode == IW_MODE_MONITOR) {
  1535. rtw_ps_deny(padapter, PS_DENY_MONITOR_MODE);
  1536. LeaveAllPowerSaveMode(padapter);
  1537. } else {
  1538. rtw_ps_deny_cancel(padapter, PS_DENY_MONITOR_MODE);
  1539. }
  1540. switch (wrqu->mode) {
  1541. case IW_MODE_MONITOR:
  1542. networkType = Ndis802_11Monitor;
  1543. #if 0
  1544. dev->type = ARPHRD_IEEE80211; /* IEEE 802.11 : 801 */
  1545. #endif
  1546. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 24))
  1547. dev->type = ARPHRD_IEEE80211_RADIOTAP; /* IEEE 802.11 + radiotap header : 803 */
  1548. RTW_INFO("set_mode = IW_MODE_MONITOR\n");
  1549. #else
  1550. RTW_INFO("kernel version < 2.6.24 not support IW_MODE_MONITOR\n");
  1551. #endif
  1552. break;
  1553. case IW_MODE_AUTO:
  1554. networkType = Ndis802_11AutoUnknown;
  1555. RTW_INFO("set_mode = IW_MODE_AUTO\n");
  1556. break;
  1557. case IW_MODE_ADHOC:
  1558. networkType = Ndis802_11IBSS;
  1559. RTW_INFO("set_mode = IW_MODE_ADHOC\n");
  1560. break;
  1561. case IW_MODE_MASTER:
  1562. networkType = Ndis802_11APMode;
  1563. RTW_INFO("set_mode = IW_MODE_MASTER\n");
  1564. /* rtw_setopmode_cmd(padapter, networkType,_TRUE); */
  1565. break;
  1566. case IW_MODE_INFRA:
  1567. networkType = Ndis802_11Infrastructure;
  1568. RTW_INFO("set_mode = IW_MODE_INFRA\n");
  1569. break;
  1570. default:
  1571. ret = -EINVAL;;
  1572. goto exit;
  1573. }
  1574. /*
  1575. if(Ndis802_11APMode == networkType)
  1576. {
  1577. rtw_setopmode_cmd(padapter, networkType,_TRUE);
  1578. }
  1579. else
  1580. {
  1581. rtw_setopmode_cmd(padapter, Ndis802_11AutoUnknown,_TRUE);
  1582. }
  1583. */
  1584. if (rtw_set_802_11_infrastructure_mode(padapter, networkType) == _FALSE) {
  1585. ret = -EPERM;
  1586. goto exit;
  1587. }
  1588. rtw_setopmode_cmd(padapter, networkType, _TRUE);
  1589. if (check_fwstate(pmlmepriv, WIFI_MONITOR_STATE) == _TRUE)
  1590. rtw_indicate_connect(padapter);
  1591. exit:
  1592. return ret;
  1593. }
  1594. static int rtw_wx_get_mode(struct net_device *dev, struct iw_request_info *a,
  1595. union iwreq_data *wrqu, char *b)
  1596. {
  1597. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1598. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1599. if (check_fwstate(pmlmepriv, WIFI_STATION_STATE) == _TRUE)
  1600. wrqu->mode = IW_MODE_INFRA;
  1601. else if ((check_fwstate(pmlmepriv, WIFI_ADHOC_MASTER_STATE) == _TRUE) ||
  1602. (check_fwstate(pmlmepriv, WIFI_ADHOC_STATE) == _TRUE))
  1603. wrqu->mode = IW_MODE_ADHOC;
  1604. else if (check_fwstate(pmlmepriv, WIFI_AP_STATE) == _TRUE)
  1605. wrqu->mode = IW_MODE_MASTER;
  1606. else if (check_fwstate(pmlmepriv, WIFI_MONITOR_STATE) == _TRUE)
  1607. wrqu->mode = IW_MODE_MONITOR;
  1608. else
  1609. wrqu->mode = IW_MODE_AUTO;
  1610. return 0;
  1611. }
  1612. static int rtw_wx_set_pmkid(struct net_device *dev,
  1613. struct iw_request_info *a,
  1614. union iwreq_data *wrqu, char *extra)
  1615. {
  1616. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1617. u8 j, blInserted = _FALSE;
  1618. int intReturn = _FALSE;
  1619. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  1620. struct security_priv *psecuritypriv = &padapter->securitypriv;
  1621. struct iw_pmksa *pPMK = (struct iw_pmksa *) extra;
  1622. u8 strZeroMacAddress[ETH_ALEN] = { 0x00 };
  1623. u8 strIssueBssid[ETH_ALEN] = { 0x00 };
  1624. #if 0
  1625. struct iw_pmksa {
  1626. __u32 cmd;
  1627. struct sockaddr bssid;
  1628. __u8 pmkid[IW_PMKID_LEN]; /* IW_PMKID_LEN=16 */
  1629. }
  1630. There are the BSSID information in the bssid.sa_data array.
  1631. If cmd is IW_PMKSA_FLUSH, it means the wpa_suppplicant wants to clear all the PMKID information.
  1632. If cmd is IW_PMKSA_ADD, it means the wpa_supplicant wants to add a PMKID / BSSID to driver.
  1633. If cmd is IW_PMKSA_REMOVE, it means the wpa_supplicant wants to remove a PMKID / BSSID from driver.
  1634. #endif
  1635. _rtw_memcpy(strIssueBssid, pPMK->bssid.sa_data, ETH_ALEN);
  1636. if (pPMK->cmd == IW_PMKSA_ADD) {
  1637. RTW_INFO("[rtw_wx_set_pmkid] IW_PMKSA_ADD!\n");
  1638. if (_rtw_memcmp(strIssueBssid, strZeroMacAddress, ETH_ALEN) == _TRUE)
  1639. return intReturn ;
  1640. else
  1641. intReturn = _TRUE;
  1642. blInserted = _FALSE;
  1643. /* overwrite PMKID */
  1644. for (j = 0 ; j < NUM_PMKID_CACHE; j++) {
  1645. if (_rtw_memcmp(psecuritypriv->PMKIDList[j].Bssid, strIssueBssid, ETH_ALEN) == _TRUE) {
  1646. /* BSSID is matched, the same AP => rewrite with new PMKID. */
  1647. RTW_INFO("[rtw_wx_set_pmkid] BSSID exists in the PMKList.\n");
  1648. _rtw_memcpy(psecuritypriv->PMKIDList[j].PMKID, pPMK->pmkid, IW_PMKID_LEN);
  1649. psecuritypriv->PMKIDList[j].bUsed = _TRUE;
  1650. psecuritypriv->PMKIDIndex = j + 1;
  1651. blInserted = _TRUE;
  1652. break;
  1653. }
  1654. }
  1655. if (!blInserted) {
  1656. /* Find a new entry */
  1657. RTW_INFO("[rtw_wx_set_pmkid] Use the new entry index = %d for this PMKID.\n",
  1658. psecuritypriv->PMKIDIndex);
  1659. _rtw_memcpy(psecuritypriv->PMKIDList[psecuritypriv->PMKIDIndex].Bssid, strIssueBssid, ETH_ALEN);
  1660. _rtw_memcpy(psecuritypriv->PMKIDList[psecuritypriv->PMKIDIndex].PMKID, pPMK->pmkid, IW_PMKID_LEN);
  1661. psecuritypriv->PMKIDList[psecuritypriv->PMKIDIndex].bUsed = _TRUE;
  1662. psecuritypriv->PMKIDIndex++ ;
  1663. if (psecuritypriv->PMKIDIndex == 16)
  1664. psecuritypriv->PMKIDIndex = 0;
  1665. }
  1666. } else if (pPMK->cmd == IW_PMKSA_REMOVE) {
  1667. RTW_INFO("[rtw_wx_set_pmkid] IW_PMKSA_REMOVE!\n");
  1668. intReturn = _TRUE;
  1669. for (j = 0 ; j < NUM_PMKID_CACHE; j++) {
  1670. if (_rtw_memcmp(psecuritypriv->PMKIDList[j].Bssid, strIssueBssid, ETH_ALEN) == _TRUE) {
  1671. /* BSSID is matched, the same AP => Remove this PMKID information and reset it. */
  1672. _rtw_memset(psecuritypriv->PMKIDList[j].Bssid, 0x00, ETH_ALEN);
  1673. psecuritypriv->PMKIDList[j].bUsed = _FALSE;
  1674. break;
  1675. }
  1676. }
  1677. } else if (pPMK->cmd == IW_PMKSA_FLUSH) {
  1678. RTW_INFO("[rtw_wx_set_pmkid] IW_PMKSA_FLUSH!\n");
  1679. _rtw_memset(&psecuritypriv->PMKIDList[0], 0x00, sizeof(RT_PMKID_LIST) * NUM_PMKID_CACHE);
  1680. psecuritypriv->PMKIDIndex = 0;
  1681. intReturn = _TRUE;
  1682. }
  1683. return intReturn ;
  1684. }
  1685. static int rtw_wx_get_sens(struct net_device *dev,
  1686. struct iw_request_info *info,
  1687. union iwreq_data *wrqu, char *extra)
  1688. {
  1689. #ifdef CONFIG_PLATFORM_ROCKCHIPS
  1690. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1691. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1692. /*
  1693. * 20110311 Commented by Jeff
  1694. * For rockchip platform's wpa_driver_wext_get_rssi
  1695. */
  1696. if (check_fwstate(pmlmepriv, _FW_LINKED) == _TRUE) {
  1697. /* wrqu->sens.value=-padapter->recvpriv.signal_strength; */
  1698. wrqu->sens.value = -padapter->recvpriv.rssi;
  1699. /* RTW_INFO("%s: %d\n", __FUNCTION__, wrqu->sens.value); */
  1700. wrqu->sens.fixed = 0; /* no auto select */
  1701. } else
  1702. #endif
  1703. {
  1704. wrqu->sens.value = 0;
  1705. wrqu->sens.fixed = 0; /* no auto select */
  1706. wrqu->sens.disabled = 1;
  1707. }
  1708. return 0;
  1709. }
  1710. static int rtw_wx_get_range(struct net_device *dev,
  1711. struct iw_request_info *info,
  1712. union iwreq_data *wrqu, char *extra)
  1713. {
  1714. struct iw_range *range = (struct iw_range *)extra;
  1715. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1716. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1717. u16 val;
  1718. int i;
  1719. wrqu->data.length = sizeof(*range);
  1720. _rtw_memset(range, 0, sizeof(*range));
  1721. /* Let's try to keep this struct in the same order as in
  1722. * linux/include/wireless.h
  1723. */
  1724. /* TODO: See what values we can set, and remove the ones we can't
  1725. * set, or fill them with some default data.
  1726. */
  1727. /* ~5 Mb/s real (802.11b) */
  1728. range->throughput = 5 * 1000 * 1000;
  1729. /* TODO: Not used in 802.11b?
  1730. * range->min_nwid; Minimal NWID we are able to set */
  1731. /* TODO: Not used in 802.11b?
  1732. * range->max_nwid; Maximal NWID we are able to set */
  1733. /* Old Frequency (backward compat - moved lower ) */
  1734. /* range->old_num_channels;
  1735. * range->old_num_frequency;
  1736. * range->old_freq[6]; Filler to keep "version" at the same offset */
  1737. /* signal level threshold range */
  1738. /* Quality of link & SNR stuff */
  1739. /* Quality range (link, level, noise)
  1740. * If the quality is absolute, it will be in the range [0 ; max_qual],
  1741. * if the quality is dBm, it will be in the range [max_qual ; 0].
  1742. * Don't forget that we use 8 bit arithmetics...
  1743. *
  1744. * If percentage range is 0~100
  1745. * Signal strength dbm range logical is -100 ~ 0
  1746. * but usually value is -90 ~ -20
  1747. * When CONFIG_SIGNAL_SCALE_MAPPING is defined, dbm range is -95 ~ -45
  1748. */
  1749. range->max_qual.qual = 100;
  1750. #ifdef CONFIG_SIGNAL_DISPLAY_DBM
  1751. range->max_qual.level = (u8)-100;
  1752. range->max_qual.noise = (u8)-100;
  1753. range->max_qual.updated = IW_QUAL_ALL_UPDATED; /* Updated all three */
  1754. range->max_qual.updated |= IW_QUAL_DBM;
  1755. #else /* !CONFIG_SIGNAL_DISPLAY_DBM */
  1756. /* percent values between 0 and 100. */
  1757. range->max_qual.level = 100;
  1758. range->max_qual.noise = 100;
  1759. range->max_qual.updated = IW_QUAL_ALL_UPDATED; /* Updated all three */
  1760. #endif /* !CONFIG_SIGNAL_DISPLAY_DBM */
  1761. /* This should contain the average/typical values of the quality
  1762. * indicator. This should be the threshold between a "good" and
  1763. * a "bad" link (example : monitor going from green to orange).
  1764. * Currently, user space apps like quality monitors don't have any
  1765. * way to calibrate the measurement. With this, they can split
  1766. * the range between 0 and max_qual in different quality level
  1767. * (using a geometric subdivision centered on the average).
  1768. * I expect that people doing the user space apps will feedback
  1769. * us on which value we need to put in each driver... */
  1770. range->avg_qual.qual = 92; /* > 8% missed beacons is 'bad' */
  1771. #ifdef CONFIG_SIGNAL_DISPLAY_DBM
  1772. /* TODO: Find real 'good' to 'bad' threshold value for RSSI */
  1773. range->avg_qual.level = (u8)-70;
  1774. range->avg_qual.noise = 0;
  1775. range->avg_qual.updated = IW_QUAL_ALL_UPDATED; /* Updated all three */
  1776. range->avg_qual.updated |= IW_QUAL_DBM;
  1777. #else /* !CONFIG_SIGNAL_DISPLAY_DBM */
  1778. /* TODO: Find real 'good' to 'bad' threshol value for RSSI */
  1779. range->avg_qual.level = 30;
  1780. range->avg_qual.noise = 100;
  1781. range->avg_qual.updated = IW_QUAL_ALL_UPDATED; /* Updated all three */
  1782. #endif /* !CONFIG_SIGNAL_DISPLAY_DBM */
  1783. range->num_bitrates = RATE_COUNT;
  1784. for (i = 0; i < RATE_COUNT && i < IW_MAX_BITRATES; i++)
  1785. range->bitrate[i] = rtw_rates[i];
  1786. range->min_frag = MIN_FRAG_THRESHOLD;
  1787. range->max_frag = MAX_FRAG_THRESHOLD;
  1788. range->pm_capa = 0;
  1789. range->we_version_compiled = WIRELESS_EXT;
  1790. range->we_version_source = 16;
  1791. /* range->retry_capa; What retry options are supported
  1792. * range->retry_flags; How to decode max/min retry limit
  1793. * range->r_time_flags; How to decode max/min retry life
  1794. * range->min_retry; Minimal number of retries
  1795. * range->max_retry; Maximal number of retries
  1796. * range->min_r_time; Minimal retry lifetime
  1797. * range->max_r_time; Maximal retry lifetime */
  1798. for (i = 0, val = 0; i < pmlmeext->max_chan_nums; i++) {
  1799. /* Include only legal frequencies for some countries */
  1800. if (pmlmeext->channel_set[i].ChannelNum != 0) {
  1801. range->freq[val].i = pmlmeext->channel_set[i].ChannelNum;
  1802. range->freq[val].m = rtw_ch2freq(pmlmeext->channel_set[i].ChannelNum) * 100000;
  1803. range->freq[val].e = 1;
  1804. val++;
  1805. }
  1806. if (val == IW_MAX_FREQUENCIES)
  1807. break;
  1808. }
  1809. range->num_channels = val;
  1810. range->num_frequency = val;
  1811. /* Commented by Albert 2009/10/13
  1812. * The following code will proivde the security capability to network manager.
  1813. * If the driver doesn't provide this capability to network manager,
  1814. * the WPA/WPA2 routers can't be choosen in the network manager. */
  1815. /*
  1816. #define IW_SCAN_CAPA_NONE 0x00
  1817. #define IW_SCAN_CAPA_ESSID 0x01
  1818. #define IW_SCAN_CAPA_BSSID 0x02
  1819. #define IW_SCAN_CAPA_CHANNEL 0x04
  1820. #define IW_SCAN_CAPA_MODE 0x08
  1821. #define IW_SCAN_CAPA_RATE 0x10
  1822. #define IW_SCAN_CAPA_TYPE 0x20
  1823. #define IW_SCAN_CAPA_TIME 0x40
  1824. */
  1825. #if WIRELESS_EXT > 17
  1826. range->enc_capa = IW_ENC_CAPA_WPA | IW_ENC_CAPA_WPA2 |
  1827. IW_ENC_CAPA_CIPHER_TKIP | IW_ENC_CAPA_CIPHER_CCMP;
  1828. #endif
  1829. #ifdef IW_SCAN_CAPA_ESSID /* WIRELESS_EXT > 21 */
  1830. range->scan_capa = IW_SCAN_CAPA_ESSID | IW_SCAN_CAPA_TYPE | IW_SCAN_CAPA_BSSID |
  1831. IW_SCAN_CAPA_CHANNEL | IW_SCAN_CAPA_MODE | IW_SCAN_CAPA_RATE;
  1832. #endif
  1833. return 0;
  1834. }
  1835. /* set bssid flow
  1836. * s1. rtw_set_802_11_infrastructure_mode()
  1837. * s2. rtw_set_802_11_authentication_mode()
  1838. * s3. set_802_11_encryption_mode()
  1839. * s4. rtw_set_802_11_bssid() */
  1840. static int rtw_wx_set_wap(struct net_device *dev,
  1841. struct iw_request_info *info,
  1842. union iwreq_data *awrq,
  1843. char *extra)
  1844. {
  1845. _irqL irqL;
  1846. uint ret = 0;
  1847. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1848. struct sockaddr *temp = (struct sockaddr *)awrq;
  1849. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1850. _list *phead;
  1851. u8 *dst_bssid, *src_bssid;
  1852. _queue *queue = &(pmlmepriv->scanned_queue);
  1853. struct wlan_network *pnetwork = NULL;
  1854. NDIS_802_11_AUTHENTICATION_MODE authmode;
  1855. /*
  1856. #ifdef CONFIG_CONCURRENT_MODE
  1857. if(padapter->adapter_type > PRIMARY_IFACE)
  1858. {
  1859. ret = -EINVAL;
  1860. goto exit;
  1861. }
  1862. #endif
  1863. */
  1864. #ifdef CONFIG_CONCURRENT_MODE
  1865. if (rtw_mi_buddy_check_fwstate(padapter, _FW_UNDER_SURVEY | _FW_UNDER_LINKING) == _TRUE) {
  1866. RTW_INFO("set bssid, but buddy_intf is under scanning or linking\n");
  1867. ret = -EINVAL;
  1868. goto exit;
  1869. }
  1870. #endif
  1871. rtw_ps_deny(padapter, PS_DENY_JOIN);
  1872. if (_FAIL == rtw_pwr_wakeup(padapter)) {
  1873. ret = -1;
  1874. goto cancel_ps_deny;
  1875. }
  1876. if (!padapter->bup) {
  1877. ret = -1;
  1878. goto cancel_ps_deny;
  1879. }
  1880. if (temp->sa_family != ARPHRD_ETHER) {
  1881. ret = -EINVAL;
  1882. goto cancel_ps_deny;
  1883. }
  1884. authmode = padapter->securitypriv.ndisauthtype;
  1885. _enter_critical_bh(&queue->lock, &irqL);
  1886. phead = get_list_head(queue);
  1887. pmlmepriv->pscanned = get_next(phead);
  1888. while (1) {
  1889. if ((rtw_end_of_queue_search(phead, pmlmepriv->pscanned)) == _TRUE) {
  1890. #if 0
  1891. ret = -EINVAL;
  1892. goto cancel_ps_deny;
  1893. if (check_fwstate(pmlmepriv, WIFI_ADHOC_STATE) == _TRUE) {
  1894. rtw_set_802_11_bssid(padapter, temp->sa_data);
  1895. goto cancel_ps_deny;
  1896. } else {
  1897. ret = -EINVAL;
  1898. goto cancel_ps_deny;
  1899. }
  1900. #endif
  1901. break;
  1902. }
  1903. pnetwork = LIST_CONTAINOR(pmlmepriv->pscanned, struct wlan_network, list);
  1904. pmlmepriv->pscanned = get_next(pmlmepriv->pscanned);
  1905. dst_bssid = pnetwork->network.MacAddress;
  1906. src_bssid = temp->sa_data;
  1907. if ((_rtw_memcmp(dst_bssid, src_bssid, ETH_ALEN)) == _TRUE) {
  1908. if (!rtw_set_802_11_infrastructure_mode(padapter, pnetwork->network.InfrastructureMode)) {
  1909. ret = -1;
  1910. _exit_critical_bh(&queue->lock, &irqL);
  1911. goto cancel_ps_deny;
  1912. }
  1913. break;
  1914. }
  1915. }
  1916. _exit_critical_bh(&queue->lock, &irqL);
  1917. rtw_set_802_11_authentication_mode(padapter, authmode);
  1918. /* set_802_11_encryption_mode(padapter, padapter->securitypriv.ndisencryptstatus); */
  1919. if (rtw_set_802_11_bssid(padapter, temp->sa_data) == _FALSE) {
  1920. ret = -1;
  1921. goto cancel_ps_deny;
  1922. }
  1923. cancel_ps_deny:
  1924. rtw_ps_deny_cancel(padapter, PS_DENY_JOIN);
  1925. exit:
  1926. return ret;
  1927. }
  1928. static int rtw_wx_get_wap(struct net_device *dev,
  1929. struct iw_request_info *info,
  1930. union iwreq_data *wrqu, char *extra)
  1931. {
  1932. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1933. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1934. WLAN_BSSID_EX *pcur_bss = &pmlmepriv->cur_network.network;
  1935. wrqu->ap_addr.sa_family = ARPHRD_ETHER;
  1936. _rtw_memset(wrqu->ap_addr.sa_data, 0, ETH_ALEN);
  1937. if (((check_fwstate(pmlmepriv, _FW_LINKED)) == _TRUE) ||
  1938. ((check_fwstate(pmlmepriv, WIFI_ADHOC_MASTER_STATE)) == _TRUE) ||
  1939. ((check_fwstate(pmlmepriv, WIFI_AP_STATE)) == _TRUE))
  1940. _rtw_memcpy(wrqu->ap_addr.sa_data, pcur_bss->MacAddress, ETH_ALEN);
  1941. else
  1942. _rtw_memset(wrqu->ap_addr.sa_data, 0, ETH_ALEN);
  1943. return 0;
  1944. }
  1945. static int rtw_wx_set_mlme(struct net_device *dev,
  1946. struct iw_request_info *info,
  1947. union iwreq_data *wrqu, char *extra)
  1948. {
  1949. #if 0
  1950. /* SIOCSIWMLME data */
  1951. struct iw_mlme {
  1952. __u16 cmd; /* IW_MLME_* */
  1953. __u16 reason_code;
  1954. struct sockaddr addr;
  1955. };
  1956. #endif
  1957. int ret = 0;
  1958. u16 reason;
  1959. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1960. struct iw_mlme *mlme = (struct iw_mlme *) extra;
  1961. if (mlme == NULL)
  1962. return -1;
  1963. RTW_INFO("%s\n", __FUNCTION__);
  1964. reason = cpu_to_le16(mlme->reason_code);
  1965. RTW_INFO("%s, cmd=%d, reason=%d\n", __FUNCTION__, mlme->cmd, reason);
  1966. switch (mlme->cmd) {
  1967. case IW_MLME_DEAUTH:
  1968. if (!rtw_set_802_11_disassociate(padapter))
  1969. ret = -1;
  1970. break;
  1971. case IW_MLME_DISASSOC:
  1972. if (!rtw_set_802_11_disassociate(padapter))
  1973. ret = -1;
  1974. break;
  1975. default:
  1976. return -EOPNOTSUPP;
  1977. }
  1978. return ret;
  1979. }
  1980. static int rtw_wx_set_scan(struct net_device *dev, struct iw_request_info *a,
  1981. union iwreq_data *wrqu, char *extra)
  1982. {
  1983. u8 _status = _FALSE;
  1984. int ret = 0;
  1985. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  1986. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  1987. NDIS_802_11_SSID ssid[RTW_SSID_SCAN_AMOUNT];
  1988. #ifdef CONFIG_P2P
  1989. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  1990. #endif /* CONFIG_P2P */
  1991. #ifdef DBG_IOCTL
  1992. RTW_INFO("DBG_IOCTL %s:%d\n", __FUNCTION__, __LINE__);
  1993. #endif
  1994. #ifdef CONFIG_MP_INCLUDED
  1995. if (rtw_mi_mp_mode_check(padapter)) {
  1996. RTW_INFO("MP mode block Scan request\n");
  1997. ret = -EPERM;
  1998. goto exit;
  1999. }
  2000. #endif
  2001. if (rtw_is_scan_deny(padapter)) {
  2002. indicate_wx_scan_complete_event(padapter);
  2003. goto exit;
  2004. }
  2005. rtw_ps_deny(padapter, PS_DENY_SCAN);
  2006. if (_FAIL == rtw_pwr_wakeup(padapter)) {
  2007. ret = -1;
  2008. goto cancel_ps_deny;
  2009. }
  2010. if (!rtw_is_adapter_up(padapter)) {
  2011. ret = -1;
  2012. goto cancel_ps_deny;
  2013. }
  2014. #ifndef CONFIG_DOSCAN_IN_BUSYTRAFFIC
  2015. /* When Busy Traffic, driver do not site survey. So driver return success. */
  2016. /* wpa_supplicant will not issue SIOCSIWSCAN cmd again after scan timeout. */
  2017. /* modify by thomas 2011-02-22. */
  2018. if (rtw_mi_busy_traffic_check(padapter, _FALSE)) {
  2019. indicate_wx_scan_complete_event(padapter);
  2020. goto cancel_ps_deny;
  2021. }
  2022. #endif
  2023. if (check_fwstate(pmlmepriv, WIFI_AP_STATE) && check_fwstate(pmlmepriv, WIFI_UNDER_WPS)) {
  2024. RTW_INFO("AP mode process WPS\n");
  2025. indicate_wx_scan_complete_event(padapter);
  2026. goto cancel_ps_deny;
  2027. }
  2028. if (check_fwstate(pmlmepriv, _FW_UNDER_SURVEY | _FW_UNDER_LINKING) == _TRUE) {
  2029. indicate_wx_scan_complete_event(padapter);
  2030. goto cancel_ps_deny;
  2031. }
  2032. #ifdef CONFIG_CONCURRENT_MODE
  2033. if (rtw_mi_buddy_check_fwstate(padapter,
  2034. _FW_UNDER_SURVEY | _FW_UNDER_LINKING | WIFI_UNDER_WPS)) {
  2035. indicate_wx_scan_complete_event(padapter);
  2036. goto cancel_ps_deny;
  2037. }
  2038. #endif
  2039. #ifdef CONFIG_P2P
  2040. if (pwdinfo->p2p_state != P2P_STATE_NONE) {
  2041. rtw_p2p_set_pre_state(pwdinfo, rtw_p2p_state(pwdinfo));
  2042. rtw_p2p_set_state(pwdinfo, P2P_STATE_FIND_PHASE_SEARCH);
  2043. rtw_p2p_findphase_ex_set(pwdinfo, P2P_FINDPHASE_EX_FULL);
  2044. rtw_free_network_queue(padapter, _TRUE);
  2045. }
  2046. #endif /* CONFIG_P2P */
  2047. _rtw_memset(ssid, 0, sizeof(NDIS_802_11_SSID) * RTW_SSID_SCAN_AMOUNT);
  2048. #if WIRELESS_EXT >= 17
  2049. if (wrqu->data.length == sizeof(struct iw_scan_req)) {
  2050. struct iw_scan_req *req = (struct iw_scan_req *)extra;
  2051. if (wrqu->data.flags & IW_SCAN_THIS_ESSID) {
  2052. int len = min((int)req->essid_len, IW_ESSID_MAX_SIZE);
  2053. _rtw_memcpy(ssid[0].Ssid, req->essid, len);
  2054. ssid[0].SsidLength = len;
  2055. RTW_INFO("IW_SCAN_THIS_ESSID, ssid=%s, len=%d\n", req->essid, req->essid_len);
  2056. _status = rtw_set_802_11_bssid_list_scan(padapter, ssid, 1, NULL, 0);
  2057. } else if (req->scan_type == IW_SCAN_TYPE_PASSIVE)
  2058. RTW_INFO("rtw_wx_set_scan, req->scan_type == IW_SCAN_TYPE_PASSIVE\n");
  2059. } else
  2060. #endif
  2061. if (wrqu->data.length >= WEXT_CSCAN_HEADER_SIZE
  2062. && _rtw_memcmp(extra, WEXT_CSCAN_HEADER, WEXT_CSCAN_HEADER_SIZE) == _TRUE
  2063. ) {
  2064. int len = wrqu->data.length - WEXT_CSCAN_HEADER_SIZE;
  2065. char *pos = extra + WEXT_CSCAN_HEADER_SIZE;
  2066. char section;
  2067. char sec_len;
  2068. int ssid_index = 0;
  2069. /* RTW_INFO("%s COMBO_SCAN header is recognized\n", __FUNCTION__); */
  2070. while (len >= 1) {
  2071. section = *(pos++);
  2072. len -= 1;
  2073. switch (section) {
  2074. case WEXT_CSCAN_SSID_SECTION:
  2075. /* RTW_INFO("WEXT_CSCAN_SSID_SECTION\n"); */
  2076. if (len < 1) {
  2077. len = 0;
  2078. break;
  2079. }
  2080. sec_len = *(pos++);
  2081. len -= 1;
  2082. if (sec_len > 0 && sec_len <= len) {
  2083. ssid[ssid_index].SsidLength = sec_len;
  2084. _rtw_memcpy(ssid[ssid_index].Ssid, pos, ssid[ssid_index].SsidLength);
  2085. /* RTW_INFO("%s COMBO_SCAN with specific ssid:%s, %d\n", __FUNCTION__ */
  2086. /* , ssid[ssid_index].Ssid, ssid[ssid_index].SsidLength); */
  2087. ssid_index++;
  2088. }
  2089. pos += sec_len;
  2090. len -= sec_len;
  2091. break;
  2092. case WEXT_CSCAN_CHANNEL_SECTION:
  2093. /* RTW_INFO("WEXT_CSCAN_CHANNEL_SECTION\n"); */
  2094. pos += 1;
  2095. len -= 1;
  2096. break;
  2097. case WEXT_CSCAN_ACTV_DWELL_SECTION:
  2098. /* RTW_INFO("WEXT_CSCAN_ACTV_DWELL_SECTION\n"); */
  2099. pos += 2;
  2100. len -= 2;
  2101. break;
  2102. case WEXT_CSCAN_PASV_DWELL_SECTION:
  2103. /* RTW_INFO("WEXT_CSCAN_PASV_DWELL_SECTION\n"); */
  2104. pos += 2;
  2105. len -= 2;
  2106. break;
  2107. case WEXT_CSCAN_HOME_DWELL_SECTION:
  2108. /* RTW_INFO("WEXT_CSCAN_HOME_DWELL_SECTION\n"); */
  2109. pos += 2;
  2110. len -= 2;
  2111. break;
  2112. case WEXT_CSCAN_TYPE_SECTION:
  2113. /* RTW_INFO("WEXT_CSCAN_TYPE_SECTION\n"); */
  2114. pos += 1;
  2115. len -= 1;
  2116. break;
  2117. #if 0
  2118. case WEXT_CSCAN_NPROBE_SECTION:
  2119. RTW_INFO("WEXT_CSCAN_NPROBE_SECTION\n");
  2120. break;
  2121. #endif
  2122. default:
  2123. /* RTW_INFO("Unknown CSCAN section %c\n", section); */
  2124. len = 0; /* stop parsing */
  2125. }
  2126. /* RTW_INFO("len:%d\n", len); */
  2127. }
  2128. /* jeff: it has still some scan paramater to parse, we only do this now... */
  2129. _status = rtw_set_802_11_bssid_list_scan(padapter, ssid, RTW_SSID_SCAN_AMOUNT, NULL, 0);
  2130. } else
  2131. _status = rtw_set_802_11_bssid_list_scan(padapter, NULL, 0, NULL, 0);
  2132. if (_status == _FALSE)
  2133. ret = -1;
  2134. cancel_ps_deny:
  2135. rtw_ps_deny_cancel(padapter, PS_DENY_SCAN);
  2136. exit:
  2137. #ifdef DBG_IOCTL
  2138. RTW_INFO("DBG_IOCTL %s:%d return %d\n", __FUNCTION__, __LINE__, ret);
  2139. #endif
  2140. return ret;
  2141. }
  2142. static int rtw_wx_get_scan(struct net_device *dev, struct iw_request_info *a,
  2143. union iwreq_data *wrqu, char *extra)
  2144. {
  2145. _irqL irqL;
  2146. _list *plist, *phead;
  2147. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2148. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  2149. _queue *queue = &(pmlmepriv->scanned_queue);
  2150. struct wlan_network *pnetwork = NULL;
  2151. char *ev = extra;
  2152. char *stop = ev + wrqu->data.length;
  2153. u32 ret = 0;
  2154. u32 cnt = 0;
  2155. u32 wait_for_surveydone;
  2156. sint wait_status;
  2157. #ifdef CONFIG_P2P
  2158. struct wifidirect_info *pwdinfo = &padapter->wdinfo;
  2159. #endif /* CONFIG_P2P */
  2160. #ifdef DBG_IOCTL
  2161. RTW_INFO("DBG_IOCTL %s:%d\n", __FUNCTION__, __LINE__);
  2162. #endif
  2163. if (adapter_to_pwrctl(padapter)->brfoffbyhw && rtw_is_drv_stopped(padapter)) {
  2164. ret = -EINVAL;
  2165. goto exit;
  2166. }
  2167. #ifdef CONFIG_P2P
  2168. if (!rtw_p2p_chk_state(pwdinfo, P2P_STATE_NONE))
  2169. wait_for_surveydone = 200;
  2170. else {
  2171. /* P2P is disabled */
  2172. wait_for_surveydone = 100;
  2173. }
  2174. #else
  2175. {
  2176. wait_for_surveydone = 100;
  2177. }
  2178. #endif /* CONFIG_P2P */
  2179. #if 1 /* Wireless Extension use EAGAIN to try */
  2180. wait_status = _FW_UNDER_SURVEY
  2181. #ifndef CONFIG_ANDROID
  2182. | _FW_UNDER_LINKING
  2183. #endif
  2184. ;
  2185. while (check_fwstate(pmlmepriv, wait_status) == _TRUE)
  2186. return -EAGAIN;
  2187. #else
  2188. wait_status = _FW_UNDER_SURVEY
  2189. #ifndef CONFIG_ANDROID
  2190. | _FW_UNDER_LINKING
  2191. #endif
  2192. ;
  2193. while (check_fwstate(pmlmepriv, wait_status) == _TRUE) {
  2194. rtw_msleep_os(30);
  2195. cnt++;
  2196. if (cnt > wait_for_surveydone)
  2197. break;
  2198. }
  2199. #endif
  2200. _enter_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  2201. phead = get_list_head(queue);
  2202. plist = get_next(phead);
  2203. while (1) {
  2204. if (rtw_end_of_queue_search(phead, plist) == _TRUE)
  2205. break;
  2206. if ((stop - ev) < SCAN_ITEM_SIZE) {
  2207. ret = -E2BIG;
  2208. break;
  2209. }
  2210. pnetwork = LIST_CONTAINOR(plist, struct wlan_network, list);
  2211. /* report network only if the current channel set contains the channel to which this network belongs */
  2212. if (rtw_chset_search_ch(padapter->mlmeextpriv.channel_set, pnetwork->network.Configuration.DSConfig) >= 0
  2213. && rtw_mlme_band_check(padapter, pnetwork->network.Configuration.DSConfig) == _TRUE
  2214. && _TRUE == rtw_validate_ssid(&(pnetwork->network.Ssid))
  2215. )
  2216. ev = translate_scan(padapter, a, pnetwork, ev, stop);
  2217. plist = get_next(plist);
  2218. }
  2219. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  2220. wrqu->data.length = ev - extra;
  2221. wrqu->data.flags = 0;
  2222. exit:
  2223. #ifdef DBG_IOCTL
  2224. RTW_INFO("DBG_IOCTL %s:%d return %d\n", __FUNCTION__, __LINE__, ret);
  2225. #endif
  2226. return ret ;
  2227. }
  2228. /* set ssid flow
  2229. * s1. rtw_set_802_11_infrastructure_mode()
  2230. * s2. set_802_11_authenticaion_mode()
  2231. * s3. set_802_11_encryption_mode()
  2232. * s4. rtw_set_802_11_ssid() */
  2233. static int rtw_wx_set_essid(struct net_device *dev,
  2234. struct iw_request_info *a,
  2235. union iwreq_data *wrqu, char *extra)
  2236. {
  2237. _irqL irqL;
  2238. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2239. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  2240. _queue *queue = &pmlmepriv->scanned_queue;
  2241. _list *phead;
  2242. s8 status = _TRUE;
  2243. struct wlan_network *pnetwork = NULL;
  2244. NDIS_802_11_AUTHENTICATION_MODE authmode;
  2245. NDIS_802_11_SSID ndis_ssid;
  2246. u8 *dst_ssid, *src_ssid;
  2247. uint ret = 0, len;
  2248. #ifdef DBG_IOCTL
  2249. RTW_INFO("DBG_IOCTL %s:%d\n", __FUNCTION__, __LINE__);
  2250. #endif
  2251. #ifdef CONFIG_WEXT_DONT_JOIN_BYSSID
  2252. RTW_INFO("%s: CONFIG_WEXT_DONT_JOIN_BYSSID be defined!! only allow bssid joining\n", __func__);
  2253. return -EPERM;
  2254. #endif
  2255. #if WIRELESS_EXT <= 20
  2256. if ((wrqu->essid.length - 1) > IW_ESSID_MAX_SIZE) {
  2257. #else
  2258. if (wrqu->essid.length > IW_ESSID_MAX_SIZE) {
  2259. #endif
  2260. ret = -E2BIG;
  2261. goto exit;
  2262. }
  2263. rtw_ps_deny(padapter, PS_DENY_JOIN);
  2264. if (_FAIL == rtw_pwr_wakeup(padapter)) {
  2265. ret = -1;
  2266. goto cancel_ps_deny;
  2267. }
  2268. if (!padapter->bup) {
  2269. ret = -1;
  2270. goto cancel_ps_deny;
  2271. }
  2272. if (check_fwstate(pmlmepriv, WIFI_AP_STATE)) {
  2273. ret = -1;
  2274. goto cancel_ps_deny;
  2275. }
  2276. #ifdef CONFIG_CONCURRENT_MODE
  2277. if (rtw_mi_buddy_check_fwstate(padapter, _FW_UNDER_SURVEY | _FW_UNDER_LINKING)) {
  2278. RTW_INFO("set ssid, but buddy_intf is under scanning or linking\n");
  2279. ret = -EINVAL;
  2280. goto cancel_ps_deny;
  2281. }
  2282. #endif
  2283. authmode = padapter->securitypriv.ndisauthtype;
  2284. RTW_INFO("=>%s\n", __FUNCTION__);
  2285. if (wrqu->essid.flags && wrqu->essid.length) {
  2286. /* Commented by Albert 20100519 */
  2287. /* We got the codes in "set_info" function of iwconfig source code. */
  2288. /* ========================================= */
  2289. /* wrq.u.essid.length = strlen(essid) + 1; */
  2290. /* if(we_kernel_version > 20) */
  2291. /* wrq.u.essid.length--; */
  2292. /* ========================================= */
  2293. /* That means, if the WIRELESS_EXT less than or equal to 20, the correct ssid len should subtract 1. */
  2294. #if WIRELESS_EXT <= 20
  2295. len = ((wrqu->essid.length - 1) < IW_ESSID_MAX_SIZE) ? (wrqu->essid.length - 1) : IW_ESSID_MAX_SIZE;
  2296. #else
  2297. len = (wrqu->essid.length < IW_ESSID_MAX_SIZE) ? wrqu->essid.length : IW_ESSID_MAX_SIZE;
  2298. #endif
  2299. if (wrqu->essid.length != 33)
  2300. RTW_INFO("ssid=%s, len=%d\n", extra, wrqu->essid.length);
  2301. _rtw_memset(&ndis_ssid, 0, sizeof(NDIS_802_11_SSID));
  2302. ndis_ssid.SsidLength = len;
  2303. _rtw_memcpy(ndis_ssid.Ssid, extra, len);
  2304. src_ssid = ndis_ssid.Ssid;
  2305. _enter_critical_bh(&queue->lock, &irqL);
  2306. phead = get_list_head(queue);
  2307. pmlmepriv->pscanned = get_next(phead);
  2308. while (1) {
  2309. if (rtw_end_of_queue_search(phead, pmlmepriv->pscanned) == _TRUE) {
  2310. #if 0
  2311. if (check_fwstate(pmlmepriv, WIFI_ADHOC_STATE) == _TRUE) {
  2312. rtw_set_802_11_ssid(padapter, &ndis_ssid);
  2313. goto cancel_ps_deny;
  2314. } else {
  2315. ret = -EINVAL;
  2316. goto cancel_ps_deny;
  2317. }
  2318. #endif
  2319. break;
  2320. }
  2321. pnetwork = LIST_CONTAINOR(pmlmepriv->pscanned, struct wlan_network, list);
  2322. pmlmepriv->pscanned = get_next(pmlmepriv->pscanned);
  2323. dst_ssid = pnetwork->network.Ssid.Ssid;
  2324. if ((_rtw_memcmp(dst_ssid, src_ssid, ndis_ssid.SsidLength) == _TRUE) &&
  2325. (pnetwork->network.Ssid.SsidLength == ndis_ssid.SsidLength)) {
  2326. if (check_fwstate(pmlmepriv, WIFI_ADHOC_STATE) == _TRUE) {
  2327. if (pnetwork->network.InfrastructureMode != pmlmepriv->cur_network.network.InfrastructureMode)
  2328. continue;
  2329. }
  2330. if (rtw_set_802_11_infrastructure_mode(padapter, pnetwork->network.InfrastructureMode) == _FALSE) {
  2331. ret = -1;
  2332. _exit_critical_bh(&queue->lock, &irqL);
  2333. goto cancel_ps_deny;
  2334. }
  2335. break;
  2336. }
  2337. }
  2338. _exit_critical_bh(&queue->lock, &irqL);
  2339. rtw_set_802_11_authentication_mode(padapter, authmode);
  2340. /* set_802_11_encryption_mode(padapter, padapter->securitypriv.ndisencryptstatus); */
  2341. if (rtw_set_802_11_ssid(padapter, &ndis_ssid) == _FALSE) {
  2342. ret = -1;
  2343. goto cancel_ps_deny;
  2344. }
  2345. }
  2346. cancel_ps_deny:
  2347. rtw_ps_deny_cancel(padapter, PS_DENY_JOIN);
  2348. exit:
  2349. RTW_INFO("<=%s, ret %d\n", __FUNCTION__, ret);
  2350. #ifdef DBG_IOCTL
  2351. RTW_INFO("DBG_IOCTL %s:%d return %d\n", __FUNCTION__, __LINE__, ret);
  2352. #endif
  2353. return ret;
  2354. }
  2355. static int rtw_wx_get_essid(struct net_device *dev,
  2356. struct iw_request_info *a,
  2357. union iwreq_data *wrqu, char *extra)
  2358. {
  2359. u32 len, ret = 0;
  2360. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2361. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  2362. WLAN_BSSID_EX *pcur_bss = &pmlmepriv->cur_network.network;
  2363. if ((check_fwstate(pmlmepriv, _FW_LINKED) == _TRUE) ||
  2364. (check_fwstate(pmlmepriv, WIFI_ADHOC_MASTER_STATE) == _TRUE)) {
  2365. len = pcur_bss->Ssid.SsidLength;
  2366. wrqu->essid.length = len;
  2367. _rtw_memcpy(extra, pcur_bss->Ssid.Ssid, len);
  2368. wrqu->essid.flags = 1;
  2369. } else {
  2370. ret = -1;
  2371. goto exit;
  2372. }
  2373. exit:
  2374. return ret;
  2375. }
  2376. static int rtw_wx_set_rate(struct net_device *dev,
  2377. struct iw_request_info *a,
  2378. union iwreq_data *wrqu, char *extra)
  2379. {
  2380. int i, ret = 0;
  2381. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2382. u8 datarates[NumRates];
  2383. u32 target_rate = wrqu->bitrate.value;
  2384. u32 fixed = wrqu->bitrate.fixed;
  2385. u32 ratevalue = 0;
  2386. u8 mpdatarate[NumRates] = {11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 0xff};
  2387. if (target_rate == -1) {
  2388. ratevalue = 11;
  2389. goto set_rate;
  2390. }
  2391. target_rate = target_rate / 100000;
  2392. switch (target_rate) {
  2393. case 10:
  2394. ratevalue = 0;
  2395. break;
  2396. case 20:
  2397. ratevalue = 1;
  2398. break;
  2399. case 55:
  2400. ratevalue = 2;
  2401. break;
  2402. case 60:
  2403. ratevalue = 3;
  2404. break;
  2405. case 90:
  2406. ratevalue = 4;
  2407. break;
  2408. case 110:
  2409. ratevalue = 5;
  2410. break;
  2411. case 120:
  2412. ratevalue = 6;
  2413. break;
  2414. case 180:
  2415. ratevalue = 7;
  2416. break;
  2417. case 240:
  2418. ratevalue = 8;
  2419. break;
  2420. case 360:
  2421. ratevalue = 9;
  2422. break;
  2423. case 480:
  2424. ratevalue = 10;
  2425. break;
  2426. case 540:
  2427. ratevalue = 11;
  2428. break;
  2429. default:
  2430. ratevalue = 11;
  2431. break;
  2432. }
  2433. set_rate:
  2434. for (i = 0; i < NumRates; i++) {
  2435. if (ratevalue == mpdatarate[i]) {
  2436. datarates[i] = mpdatarate[i];
  2437. if (fixed == 0)
  2438. break;
  2439. } else
  2440. datarates[i] = 0xff;
  2441. }
  2442. if (rtw_setdatarate_cmd(padapter, datarates) != _SUCCESS) {
  2443. ret = -1;
  2444. }
  2445. return ret;
  2446. }
  2447. static int rtw_wx_get_rate(struct net_device *dev,
  2448. struct iw_request_info *info,
  2449. union iwreq_data *wrqu, char *extra)
  2450. {
  2451. u16 max_rate = 0;
  2452. max_rate = rtw_get_cur_max_rate((_adapter *)rtw_netdev_priv(dev));
  2453. if (max_rate == 0)
  2454. return -EPERM;
  2455. wrqu->bitrate.fixed = 0; /* no auto select */
  2456. wrqu->bitrate.value = max_rate * 100000;
  2457. return 0;
  2458. }
  2459. static int rtw_wx_set_rts(struct net_device *dev,
  2460. struct iw_request_info *info,
  2461. union iwreq_data *wrqu, char *extra)
  2462. {
  2463. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2464. if (wrqu->rts.disabled)
  2465. padapter->registrypriv.rts_thresh = 2347;
  2466. else {
  2467. if (wrqu->rts.value < 0 ||
  2468. wrqu->rts.value > 2347)
  2469. return -EINVAL;
  2470. padapter->registrypriv.rts_thresh = wrqu->rts.value;
  2471. }
  2472. RTW_INFO("%s, rts_thresh=%d\n", __func__, padapter->registrypriv.rts_thresh);
  2473. return 0;
  2474. }
  2475. static int rtw_wx_get_rts(struct net_device *dev,
  2476. struct iw_request_info *info,
  2477. union iwreq_data *wrqu, char *extra)
  2478. {
  2479. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2480. RTW_INFO("%s, rts_thresh=%d\n", __func__, padapter->registrypriv.rts_thresh);
  2481. wrqu->rts.value = padapter->registrypriv.rts_thresh;
  2482. wrqu->rts.fixed = 0; /* no auto select */
  2483. /* wrqu->rts.disabled = (wrqu->rts.value == DEFAULT_RTS_THRESHOLD); */
  2484. return 0;
  2485. }
  2486. static int rtw_wx_set_frag(struct net_device *dev,
  2487. struct iw_request_info *info,
  2488. union iwreq_data *wrqu, char *extra)
  2489. {
  2490. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2491. if (wrqu->frag.disabled)
  2492. padapter->xmitpriv.frag_len = MAX_FRAG_THRESHOLD;
  2493. else {
  2494. if (wrqu->frag.value < MIN_FRAG_THRESHOLD ||
  2495. wrqu->frag.value > MAX_FRAG_THRESHOLD)
  2496. return -EINVAL;
  2497. padapter->xmitpriv.frag_len = wrqu->frag.value & ~0x1;
  2498. }
  2499. RTW_INFO("%s, frag_len=%d\n", __func__, padapter->xmitpriv.frag_len);
  2500. return 0;
  2501. }
  2502. static int rtw_wx_get_frag(struct net_device *dev,
  2503. struct iw_request_info *info,
  2504. union iwreq_data *wrqu, char *extra)
  2505. {
  2506. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2507. RTW_INFO("%s, frag_len=%d\n", __func__, padapter->xmitpriv.frag_len);
  2508. wrqu->frag.value = padapter->xmitpriv.frag_len;
  2509. wrqu->frag.fixed = 0; /* no auto select */
  2510. /* wrqu->frag.disabled = (wrqu->frag.value == DEFAULT_FRAG_THRESHOLD); */
  2511. return 0;
  2512. }
  2513. static int rtw_wx_get_retry(struct net_device *dev,
  2514. struct iw_request_info *info,
  2515. union iwreq_data *wrqu, char *extra)
  2516. {
  2517. /* _adapter *padapter = (_adapter *)rtw_netdev_priv(dev); */
  2518. wrqu->retry.value = 7;
  2519. wrqu->retry.fixed = 0; /* no auto select */
  2520. wrqu->retry.disabled = 1;
  2521. return 0;
  2522. }
  2523. #if 0
  2524. #define IW_ENCODE_INDEX 0x00FF /* Token index (if needed) */
  2525. #define IW_ENCODE_FLAGS 0xFF00 /* Flags defined below */
  2526. #define IW_ENCODE_MODE 0xF000 /* Modes defined below */
  2527. #define IW_ENCODE_DISABLED 0x8000 /* Encoding disabled */
  2528. #define IW_ENCODE_ENABLED 0x0000 /* Encoding enabled */
  2529. #define IW_ENCODE_RESTRICTED 0x4000 /* Refuse non-encoded packets */
  2530. #define IW_ENCODE_OPEN 0x2000 /* Accept non-encoded packets */
  2531. #define IW_ENCODE_NOKEY 0x0800 /* Key is write only, so not present */
  2532. #define IW_ENCODE_TEMP 0x0400 /* Temporary key */
  2533. /*
  2534. iwconfig wlan0 key on->flags = 0x6001->maybe it means auto
  2535. iwconfig wlan0 key off->flags = 0x8800
  2536. iwconfig wlan0 key open->flags = 0x2800
  2537. iwconfig wlan0 key open 1234567890->flags = 0x2000
  2538. iwconfig wlan0 key restricted->flags = 0x4800
  2539. iwconfig wlan0 key open [3] 1234567890->flags = 0x2003
  2540. iwconfig wlan0 key restricted [2] 1234567890->flags = 0x4002
  2541. iwconfig wlan0 key open [3] -> flags = 0x2803
  2542. iwconfig wlan0 key restricted [2] -> flags = 0x4802
  2543. */
  2544. #endif
  2545. static int rtw_wx_set_enc(struct net_device *dev,
  2546. struct iw_request_info *info,
  2547. union iwreq_data *wrqu, char *keybuf)
  2548. {
  2549. u32 key, ret = 0;
  2550. u32 keyindex_provided;
  2551. NDIS_802_11_WEP wep;
  2552. NDIS_802_11_AUTHENTICATION_MODE authmode;
  2553. struct iw_point *erq = &(wrqu->encoding);
  2554. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2555. struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(padapter);
  2556. RTW_INFO("+rtw_wx_set_enc, flags=0x%x\n", erq->flags);
  2557. _rtw_memset(&wep, 0, sizeof(NDIS_802_11_WEP));
  2558. key = erq->flags & IW_ENCODE_INDEX;
  2559. if (erq->flags & IW_ENCODE_DISABLED) {
  2560. RTW_INFO("EncryptionDisabled\n");
  2561. padapter->securitypriv.ndisencryptstatus = Ndis802_11EncryptionDisabled;
  2562. padapter->securitypriv.dot11PrivacyAlgrthm = _NO_PRIVACY_;
  2563. padapter->securitypriv.dot118021XGrpPrivacy = _NO_PRIVACY_;
  2564. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Open; /* open system */
  2565. authmode = Ndis802_11AuthModeOpen;
  2566. padapter->securitypriv.ndisauthtype = authmode;
  2567. goto exit;
  2568. }
  2569. if (key) {
  2570. if (key > WEP_KEYS)
  2571. return -EINVAL;
  2572. key--;
  2573. keyindex_provided = 1;
  2574. } else {
  2575. keyindex_provided = 0;
  2576. key = padapter->securitypriv.dot11PrivacyKeyIndex;
  2577. RTW_INFO("rtw_wx_set_enc, key=%d\n", key);
  2578. }
  2579. /* set authentication mode */
  2580. if (erq->flags & IW_ENCODE_OPEN) {
  2581. RTW_INFO("rtw_wx_set_enc():IW_ENCODE_OPEN\n");
  2582. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption1Enabled;/* Ndis802_11EncryptionDisabled; */
  2583. #ifdef CONFIG_PLATFORM_MT53XX
  2584. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Auto;
  2585. #else
  2586. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Open;
  2587. #endif
  2588. padapter->securitypriv.dot11PrivacyAlgrthm = _NO_PRIVACY_;
  2589. padapter->securitypriv.dot118021XGrpPrivacy = _NO_PRIVACY_;
  2590. authmode = Ndis802_11AuthModeOpen;
  2591. padapter->securitypriv.ndisauthtype = authmode;
  2592. } else if (erq->flags & IW_ENCODE_RESTRICTED) {
  2593. RTW_INFO("rtw_wx_set_enc():IW_ENCODE_RESTRICTED\n");
  2594. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption1Enabled;
  2595. #ifdef CONFIG_PLATFORM_MT53XX
  2596. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Auto;
  2597. #else
  2598. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Shared;
  2599. #endif
  2600. padapter->securitypriv.dot11PrivacyAlgrthm = _WEP40_;
  2601. padapter->securitypriv.dot118021XGrpPrivacy = _WEP40_;
  2602. authmode = Ndis802_11AuthModeShared;
  2603. padapter->securitypriv.ndisauthtype = authmode;
  2604. } else {
  2605. RTW_INFO("rtw_wx_set_enc():erq->flags=0x%x\n", erq->flags);
  2606. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption1Enabled;/* Ndis802_11EncryptionDisabled; */
  2607. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Open; /* open system */
  2608. padapter->securitypriv.dot11PrivacyAlgrthm = _NO_PRIVACY_;
  2609. padapter->securitypriv.dot118021XGrpPrivacy = _NO_PRIVACY_;
  2610. authmode = Ndis802_11AuthModeOpen;
  2611. padapter->securitypriv.ndisauthtype = authmode;
  2612. }
  2613. wep.KeyIndex = key;
  2614. if (erq->length > 0) {
  2615. wep.KeyLength = erq->length <= 5 ? 5 : 13;
  2616. wep.Length = wep.KeyLength + FIELD_OFFSET(NDIS_802_11_WEP, KeyMaterial);
  2617. } else {
  2618. wep.KeyLength = 0 ;
  2619. if (keyindex_provided == 1) { /* set key_id only, no given KeyMaterial(erq->length==0). */
  2620. padapter->securitypriv.dot11PrivacyKeyIndex = key;
  2621. RTW_INFO("(keyindex_provided == 1), keyid=%d, key_len=%d\n", key, padapter->securitypriv.dot11DefKeylen[key]);
  2622. switch (padapter->securitypriv.dot11DefKeylen[key]) {
  2623. case 5:
  2624. padapter->securitypriv.dot11PrivacyAlgrthm = _WEP40_;
  2625. break;
  2626. case 13:
  2627. padapter->securitypriv.dot11PrivacyAlgrthm = _WEP104_;
  2628. break;
  2629. default:
  2630. padapter->securitypriv.dot11PrivacyAlgrthm = _NO_PRIVACY_;
  2631. break;
  2632. }
  2633. goto exit;
  2634. }
  2635. }
  2636. wep.KeyIndex |= 0x80000000;
  2637. _rtw_memcpy(wep.KeyMaterial, keybuf, wep.KeyLength);
  2638. if (rtw_set_802_11_add_wep(padapter, &wep) == _FALSE) {
  2639. if (rf_on == pwrpriv->rf_pwrstate)
  2640. ret = -EOPNOTSUPP;
  2641. goto exit;
  2642. }
  2643. exit:
  2644. return ret;
  2645. }
  2646. static int rtw_wx_get_enc(struct net_device *dev,
  2647. struct iw_request_info *info,
  2648. union iwreq_data *wrqu, char *keybuf)
  2649. {
  2650. uint key, ret = 0;
  2651. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2652. struct iw_point *erq = &(wrqu->encoding);
  2653. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  2654. if (check_fwstate(pmlmepriv, _FW_LINKED) != _TRUE) {
  2655. if (check_fwstate(pmlmepriv, WIFI_ADHOC_MASTER_STATE) != _TRUE) {
  2656. erq->length = 0;
  2657. erq->flags |= IW_ENCODE_DISABLED;
  2658. return 0;
  2659. }
  2660. }
  2661. key = erq->flags & IW_ENCODE_INDEX;
  2662. if (key) {
  2663. if (key > WEP_KEYS)
  2664. return -EINVAL;
  2665. key--;
  2666. } else
  2667. key = padapter->securitypriv.dot11PrivacyKeyIndex;
  2668. erq->flags = key + 1;
  2669. /* if(padapter->securitypriv.ndisauthtype == Ndis802_11AuthModeOpen) */
  2670. /* { */
  2671. /* erq->flags |= IW_ENCODE_OPEN; */
  2672. /* } */
  2673. switch (padapter->securitypriv.ndisencryptstatus) {
  2674. case Ndis802_11EncryptionNotSupported:
  2675. case Ndis802_11EncryptionDisabled:
  2676. erq->length = 0;
  2677. erq->flags |= IW_ENCODE_DISABLED;
  2678. break;
  2679. case Ndis802_11Encryption1Enabled:
  2680. erq->length = padapter->securitypriv.dot11DefKeylen[key];
  2681. if (erq->length) {
  2682. _rtw_memcpy(keybuf, padapter->securitypriv.dot11DefKey[key].skey, padapter->securitypriv.dot11DefKeylen[key]);
  2683. erq->flags |= IW_ENCODE_ENABLED;
  2684. if (padapter->securitypriv.ndisauthtype == Ndis802_11AuthModeOpen)
  2685. erq->flags |= IW_ENCODE_OPEN;
  2686. else if (padapter->securitypriv.ndisauthtype == Ndis802_11AuthModeShared)
  2687. erq->flags |= IW_ENCODE_RESTRICTED;
  2688. } else {
  2689. erq->length = 0;
  2690. erq->flags |= IW_ENCODE_DISABLED;
  2691. }
  2692. break;
  2693. case Ndis802_11Encryption2Enabled:
  2694. case Ndis802_11Encryption3Enabled:
  2695. erq->length = 16;
  2696. erq->flags |= (IW_ENCODE_ENABLED | IW_ENCODE_OPEN | IW_ENCODE_NOKEY);
  2697. break;
  2698. default:
  2699. erq->length = 0;
  2700. erq->flags |= IW_ENCODE_DISABLED;
  2701. break;
  2702. }
  2703. return ret;
  2704. }
  2705. static int rtw_wx_get_power(struct net_device *dev,
  2706. struct iw_request_info *info,
  2707. union iwreq_data *wrqu, char *extra)
  2708. {
  2709. /* _adapter *padapter = (_adapter *)rtw_netdev_priv(dev); */
  2710. wrqu->power.value = 0;
  2711. wrqu->power.fixed = 0; /* no auto select */
  2712. wrqu->power.disabled = 1;
  2713. return 0;
  2714. }
  2715. static int rtw_wx_set_gen_ie(struct net_device *dev,
  2716. struct iw_request_info *info,
  2717. union iwreq_data *wrqu, char *extra)
  2718. {
  2719. int ret;
  2720. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2721. ret = rtw_set_wpa_ie(padapter, extra, wrqu->data.length);
  2722. return ret;
  2723. }
  2724. static int rtw_wx_set_auth(struct net_device *dev,
  2725. struct iw_request_info *info,
  2726. union iwreq_data *wrqu, char *extra)
  2727. {
  2728. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  2729. struct iw_param *param = (struct iw_param *)&(wrqu->param);
  2730. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  2731. struct security_priv *psecuritypriv = &padapter->securitypriv;
  2732. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  2733. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  2734. u32 value = param->value;
  2735. int ret = 0;
  2736. switch (param->flags & IW_AUTH_INDEX) {
  2737. case IW_AUTH_WPA_VERSION:
  2738. #ifdef CONFIG_WAPI_SUPPORT
  2739. #ifndef CONFIG_IOCTL_CFG80211
  2740. padapter->wapiInfo.bWapiEnable = false;
  2741. if (value == IW_AUTH_WAPI_VERSION_1) {
  2742. padapter->wapiInfo.bWapiEnable = true;
  2743. psecuritypriv->dot11PrivacyAlgrthm = _SMS4_;
  2744. psecuritypriv->dot118021XGrpPrivacy = _SMS4_;
  2745. psecuritypriv->dot11AuthAlgrthm = dot11AuthAlgrthm_WAPI;
  2746. pmlmeinfo->auth_algo = psecuritypriv->dot11AuthAlgrthm;
  2747. padapter->wapiInfo.extra_prefix_len = WAPI_EXT_LEN;
  2748. padapter->wapiInfo.extra_postfix_len = SMS4_MIC_LEN;
  2749. }
  2750. #endif
  2751. #endif
  2752. break;
  2753. case IW_AUTH_CIPHER_PAIRWISE:
  2754. break;
  2755. case IW_AUTH_CIPHER_GROUP:
  2756. break;
  2757. case IW_AUTH_KEY_MGMT:
  2758. #ifdef CONFIG_WAPI_SUPPORT
  2759. #ifndef CONFIG_IOCTL_CFG80211
  2760. RTW_INFO("rtw_wx_set_auth: IW_AUTH_KEY_MGMT case\n");
  2761. if (value == IW_AUTH_KEY_MGMT_WAPI_PSK)
  2762. padapter->wapiInfo.bWapiPSK = true;
  2763. else
  2764. padapter->wapiInfo.bWapiPSK = false;
  2765. RTW_INFO("rtw_wx_set_auth: IW_AUTH_KEY_MGMT bwapipsk %d\n", padapter->wapiInfo.bWapiPSK);
  2766. #endif
  2767. #endif
  2768. /*
  2769. * ??? does not use these parameters
  2770. */
  2771. break;
  2772. case IW_AUTH_TKIP_COUNTERMEASURES: {
  2773. if (param->value) {
  2774. /* wpa_supplicant is enabling the tkip countermeasure. */
  2775. padapter->securitypriv.btkip_countermeasure = _TRUE;
  2776. } else {
  2777. /* wpa_supplicant is disabling the tkip countermeasure. */
  2778. padapter->securitypriv.btkip_countermeasure = _FALSE;
  2779. }
  2780. break;
  2781. }
  2782. case IW_AUTH_DROP_UNENCRYPTED: {
  2783. /* HACK:
  2784. *
  2785. * wpa_supplicant calls set_wpa_enabled when the driver
  2786. * is loaded and unloaded, regardless of if WPA is being
  2787. * used. No other calls are made which can be used to
  2788. * determine if encryption will be used or not prior to
  2789. * association being expected. If encryption is not being
  2790. * used, drop_unencrypted is set to false, else true -- we
  2791. * can use this to determine if the CAP_PRIVACY_ON bit should
  2792. * be set.
  2793. */
  2794. if (padapter->securitypriv.ndisencryptstatus == Ndis802_11Encryption1Enabled) {
  2795. break;/* it means init value, or using wep, ndisencryptstatus = Ndis802_11Encryption1Enabled, */
  2796. /* then it needn't reset it; */
  2797. }
  2798. if (param->value) {
  2799. padapter->securitypriv.ndisencryptstatus = Ndis802_11EncryptionDisabled;
  2800. padapter->securitypriv.dot11PrivacyAlgrthm = _NO_PRIVACY_;
  2801. padapter->securitypriv.dot118021XGrpPrivacy = _NO_PRIVACY_;
  2802. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Open; /* open system */
  2803. padapter->securitypriv.ndisauthtype = Ndis802_11AuthModeOpen;
  2804. }
  2805. break;
  2806. }
  2807. case IW_AUTH_80211_AUTH_ALG:
  2808. #if defined(CONFIG_ANDROID) || 1
  2809. /*
  2810. * It's the starting point of a link layer connection using wpa_supplicant
  2811. */
  2812. if (check_fwstate(&padapter->mlmepriv, _FW_LINKED)) {
  2813. LeaveAllPowerSaveMode(padapter);
  2814. rtw_disassoc_cmd(padapter, 500, RTW_CMDF_DIRECTLY);
  2815. RTW_INFO("%s...call rtw_indicate_disconnect\n ", __FUNCTION__);
  2816. rtw_indicate_disconnect(padapter, 0, _FALSE);
  2817. rtw_free_assoc_resources(padapter, 1);
  2818. }
  2819. #endif
  2820. ret = wpa_set_auth_algs(dev, (u32)param->value);
  2821. break;
  2822. case IW_AUTH_WPA_ENABLED:
  2823. /* if(param->value) */
  2824. /* padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_8021X; */ /* 802.1x */
  2825. /* else */
  2826. /* padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_Open; */ /* open system */
  2827. /* _disassociate(priv); */
  2828. break;
  2829. case IW_AUTH_RX_UNENCRYPTED_EAPOL:
  2830. /* ieee->ieee802_1x = param->value; */
  2831. break;
  2832. case IW_AUTH_PRIVACY_INVOKED:
  2833. /* ieee->privacy_invoked = param->value; */
  2834. break;
  2835. #ifdef CONFIG_WAPI_SUPPORT
  2836. #ifndef CONFIG_IOCTL_CFG80211
  2837. case IW_AUTH_WAPI_ENABLED:
  2838. break;
  2839. #endif
  2840. #endif
  2841. default:
  2842. return -EOPNOTSUPP;
  2843. }
  2844. return ret;
  2845. }
  2846. static int rtw_wx_set_enc_ext(struct net_device *dev,
  2847. struct iw_request_info *info,
  2848. union iwreq_data *wrqu, char *extra)
  2849. {
  2850. char *alg_name;
  2851. u32 param_len;
  2852. struct ieee_param *param = NULL;
  2853. struct iw_point *pencoding = &wrqu->encoding;
  2854. struct iw_encode_ext *pext = (struct iw_encode_ext *)extra;
  2855. int ret = 0;
  2856. param_len = sizeof(struct ieee_param) + pext->key_len;
  2857. param = (struct ieee_param *)rtw_malloc(param_len);
  2858. if (param == NULL)
  2859. return -1;
  2860. _rtw_memset(param, 0, param_len);
  2861. param->cmd = IEEE_CMD_SET_ENCRYPTION;
  2862. _rtw_memset(param->sta_addr, 0xff, ETH_ALEN);
  2863. switch (pext->alg) {
  2864. case IW_ENCODE_ALG_NONE:
  2865. /* todo: remove key */
  2866. /* remove = 1; */
  2867. alg_name = "none";
  2868. break;
  2869. case IW_ENCODE_ALG_WEP:
  2870. alg_name = "WEP";
  2871. break;
  2872. case IW_ENCODE_ALG_TKIP:
  2873. alg_name = "TKIP";
  2874. break;
  2875. case IW_ENCODE_ALG_CCMP:
  2876. alg_name = "CCMP";
  2877. break;
  2878. #ifdef CONFIG_IEEE80211W
  2879. case IW_ENCODE_ALG_AES_CMAC:
  2880. alg_name = "BIP";
  2881. break;
  2882. #endif /* CONFIG_IEEE80211W */
  2883. #ifdef CONFIG_WAPI_SUPPORT
  2884. #ifndef CONFIG_IOCTL_CFG80211
  2885. case IW_ENCODE_ALG_SM4:
  2886. alg_name = "SMS4";
  2887. _rtw_memcpy(param->sta_addr, pext->addr.sa_data, ETH_ALEN);
  2888. RTW_INFO("rtw_wx_set_enc_ext: SMS4 case\n");
  2889. break;
  2890. #endif
  2891. #endif
  2892. default:
  2893. ret = -1;
  2894. goto exit;
  2895. }
  2896. strncpy((char *)param->u.crypt.alg, alg_name, IEEE_CRYPT_ALG_NAME_LEN);
  2897. if (pext->ext_flags & IW_ENCODE_EXT_SET_TX_KEY)
  2898. param->u.crypt.set_tx = 1;
  2899. /* cliW: WEP does not have group key
  2900. * just not checking GROUP key setting
  2901. */
  2902. if ((pext->alg != IW_ENCODE_ALG_WEP) &&
  2903. ((pext->ext_flags & IW_ENCODE_EXT_GROUP_KEY)
  2904. #ifdef CONFIG_IEEE80211W
  2905. || (pext->ext_flags & IW_ENCODE_ALG_AES_CMAC)
  2906. #endif /* CONFIG_IEEE80211W */
  2907. ))
  2908. param->u.crypt.set_tx = 0;
  2909. param->u.crypt.idx = (pencoding->flags & 0x00FF) - 1 ;
  2910. if (pext->ext_flags & IW_ENCODE_EXT_RX_SEQ_VALID) {
  2911. #ifdef CONFIG_WAPI_SUPPORT
  2912. #ifndef CONFIG_IOCTL_CFG80211
  2913. if (pext->alg == IW_ENCODE_ALG_SM4)
  2914. _rtw_memcpy(param->u.crypt.seq, pext->rx_seq, 16);
  2915. else
  2916. #endif /* CONFIG_IOCTL_CFG80211 */
  2917. #endif /* CONFIG_WAPI_SUPPORT */
  2918. _rtw_memcpy(param->u.crypt.seq, pext->rx_seq, 8);
  2919. }
  2920. if (pext->key_len) {
  2921. param->u.crypt.key_len = pext->key_len;
  2922. /* _rtw_memcpy(param + 1, pext + 1, pext->key_len); */
  2923. _rtw_memcpy(param->u.crypt.key, pext + 1, pext->key_len);
  2924. }
  2925. if (pencoding->flags & IW_ENCODE_DISABLED) {
  2926. /* todo: remove key */
  2927. /* remove = 1; */
  2928. }
  2929. ret = wpa_set_encryption(dev, param, param_len);
  2930. exit:
  2931. if (param)
  2932. rtw_mfree((u8 *)param, param_len);
  2933. return ret;
  2934. }
  2935. static int rtw_wx_get_nick(struct net_device *dev,
  2936. struct iw_request_info *info,
  2937. union iwreq_data *wrqu, char *extra)
  2938. {
  2939. /* _adapter *padapter = (_adapter *)rtw_netdev_priv(dev); */
  2940. /* struct mlme_priv *pmlmepriv = &(padapter->mlmepriv); */
  2941. /* struct security_priv *psecuritypriv = &padapter->securitypriv; */
  2942. if (extra) {
  2943. wrqu->data.length = 14;
  2944. wrqu->data.flags = 1;
  2945. _rtw_memcpy(extra, "<WIFI@REALTEK>", 14);
  2946. }
  2947. /* rtw_signal_process(pid, SIGUSR1); */ /* for test */
  2948. /* dump debug info here */
  2949. #if 0
  2950. u32 dot11AuthAlgrthm; /* 802.11 auth, could be open, shared, and 8021x */
  2951. u32 dot11PrivacyAlgrthm; /* This specify the privacy for shared auth. algorithm. */
  2952. u32 dot118021XGrpPrivacy; /* This specify the privacy algthm. used for Grp key */
  2953. u32 ndisauthtype;
  2954. u32 ndisencryptstatus;
  2955. #endif
  2956. /* RTW_INFO("auth_alg=0x%x, enc_alg=0x%x, auth_type=0x%x, enc_type=0x%x\n", */
  2957. /* psecuritypriv->dot11AuthAlgrthm, psecuritypriv->dot11PrivacyAlgrthm, */
  2958. /* psecuritypriv->ndisauthtype, psecuritypriv->ndisencryptstatus); */
  2959. /* RTW_INFO("enc_alg=0x%x\n", psecuritypriv->dot11PrivacyAlgrthm); */
  2960. /* RTW_INFO("auth_type=0x%x\n", psecuritypriv->ndisauthtype); */
  2961. /* RTW_INFO("enc_type=0x%x\n", psecuritypriv->ndisencryptstatus); */
  2962. #if 0
  2963. RTW_INFO("dbg(0x210)=0x%x\n", rtw_read32(padapter, 0x210));
  2964. RTW_INFO("dbg(0x608)=0x%x\n", rtw_read32(padapter, 0x608));
  2965. RTW_INFO("dbg(0x280)=0x%x\n", rtw_read32(padapter, 0x280));
  2966. RTW_INFO("dbg(0x284)=0x%x\n", rtw_read32(padapter, 0x284));
  2967. RTW_INFO("dbg(0x288)=0x%x\n", rtw_read32(padapter, 0x288));
  2968. RTW_INFO("dbg(0x664)=0x%x\n", rtw_read32(padapter, 0x664));
  2969. RTW_INFO("\n");
  2970. RTW_INFO("dbg(0x430)=0x%x\n", rtw_read32(padapter, 0x430));
  2971. RTW_INFO("dbg(0x438)=0x%x\n", rtw_read32(padapter, 0x438));
  2972. RTW_INFO("dbg(0x440)=0x%x\n", rtw_read32(padapter, 0x440));
  2973. RTW_INFO("dbg(0x458)=0x%x\n", rtw_read32(padapter, 0x458));
  2974. RTW_INFO("dbg(0x484)=0x%x\n", rtw_read32(padapter, 0x484));
  2975. RTW_INFO("dbg(0x488)=0x%x\n", rtw_read32(padapter, 0x488));
  2976. RTW_INFO("dbg(0x444)=0x%x\n", rtw_read32(padapter, 0x444));
  2977. RTW_INFO("dbg(0x448)=0x%x\n", rtw_read32(padapter, 0x448));
  2978. RTW_INFO("dbg(0x44c)=0x%x\n", rtw_read32(padapter, 0x44c));
  2979. RTW_INFO("dbg(0x450)=0x%x\n", rtw_read32(padapter, 0x450));
  2980. #endif
  2981. return 0;
  2982. }
  2983. static int rtw_wx_read32(struct net_device *dev,
  2984. struct iw_request_info *info,
  2985. union iwreq_data *wrqu, char *extra)
  2986. {
  2987. PADAPTER padapter;
  2988. struct iw_point *p;
  2989. u16 len;
  2990. u32 addr;
  2991. u32 data32;
  2992. u32 bytes;
  2993. u8 *ptmp;
  2994. int ret;
  2995. ret = 0;
  2996. padapter = (PADAPTER)rtw_netdev_priv(dev);
  2997. p = &wrqu->data;
  2998. len = p->length;
  2999. if (0 == len)
  3000. return -EINVAL;
  3001. ptmp = (u8 *)rtw_malloc(len);
  3002. if (NULL == ptmp)
  3003. return -ENOMEM;
  3004. if (copy_from_user(ptmp, p->pointer, len)) {
  3005. ret = -EFAULT;
  3006. goto exit;
  3007. }
  3008. bytes = 0;
  3009. addr = 0;
  3010. sscanf(ptmp, "%d,%x", &bytes, &addr);
  3011. switch (bytes) {
  3012. case 1:
  3013. data32 = rtw_read8(padapter, addr);
  3014. sprintf(extra, "0x%02X", data32);
  3015. break;
  3016. case 2:
  3017. data32 = rtw_read16(padapter, addr);
  3018. sprintf(extra, "0x%04X", data32);
  3019. break;
  3020. case 4:
  3021. data32 = rtw_read32(padapter, addr);
  3022. sprintf(extra, "0x%08X", data32);
  3023. break;
  3024. #if defined(CONFIG_SDIO_HCI) && defined(CONFIG_SDIO_INDIRECT_ACCESS) && defined(DBG_SDIO_INDIRECT_ACCESS)
  3025. case 11:
  3026. data32 = rtw_sd_iread8(padapter, addr);
  3027. sprintf(extra, "0x%02X", data32);
  3028. break;
  3029. case 12:
  3030. data32 = rtw_sd_iread16(padapter, addr);
  3031. sprintf(extra, "0x%04X", data32);
  3032. break;
  3033. case 14:
  3034. data32 = rtw_sd_iread32(padapter, addr);
  3035. sprintf(extra, "0x%08X", data32);
  3036. break;
  3037. #endif
  3038. default:
  3039. RTW_INFO("%s: usage> read [bytes],[address(hex)]\n", __func__);
  3040. ret = -EINVAL;
  3041. goto exit;
  3042. }
  3043. RTW_INFO("%s: addr=0x%08X data=%s\n", __func__, addr, extra);
  3044. exit:
  3045. rtw_mfree(ptmp, len);
  3046. return 0;
  3047. }
  3048. static int rtw_wx_write32(struct net_device *dev,
  3049. struct iw_request_info *info,
  3050. union iwreq_data *wrqu, char *extra)
  3051. {
  3052. PADAPTER padapter = (PADAPTER)rtw_netdev_priv(dev);
  3053. u32 addr;
  3054. u32 data32;
  3055. u32 bytes;
  3056. bytes = 0;
  3057. addr = 0;
  3058. data32 = 0;
  3059. sscanf(extra, "%d,%x,%x", &bytes, &addr, &data32);
  3060. switch (bytes) {
  3061. case 1:
  3062. rtw_write8(padapter, addr, (u8)data32);
  3063. RTW_INFO("%s: addr=0x%08X data=0x%02X\n", __func__, addr, (u8)data32);
  3064. break;
  3065. case 2:
  3066. rtw_write16(padapter, addr, (u16)data32);
  3067. RTW_INFO("%s: addr=0x%08X data=0x%04X\n", __func__, addr, (u16)data32);
  3068. break;
  3069. case 4:
  3070. rtw_write32(padapter, addr, data32);
  3071. RTW_INFO("%s: addr=0x%08X data=0x%08X\n", __func__, addr, data32);
  3072. break;
  3073. default:
  3074. RTW_INFO("%s: usage> write [bytes],[address(hex)],[data(hex)]\n", __func__);
  3075. return -EINVAL;
  3076. }
  3077. return 0;
  3078. }
  3079. static int rtw_wx_read_rf(struct net_device *dev,
  3080. struct iw_request_info *info,
  3081. union iwreq_data *wrqu, char *extra)
  3082. {
  3083. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3084. u32 path, addr, data32;
  3085. path = *(u32 *)extra;
  3086. addr = *((u32 *)extra + 1);
  3087. data32 = rtw_hal_read_rfreg(padapter, path, addr, 0xFFFFF);
  3088. /* RTW_INFO("%s: path=%d addr=0x%02x data=0x%05x\n", __func__, path, addr, data32); */
  3089. /*
  3090. * IMPORTANT!!
  3091. * Only when wireless private ioctl is at odd order,
  3092. * "extra" would be copied to user space.
  3093. */
  3094. sprintf(extra, "0x%05x", data32);
  3095. return 0;
  3096. }
  3097. static int rtw_wx_write_rf(struct net_device *dev,
  3098. struct iw_request_info *info,
  3099. union iwreq_data *wrqu, char *extra)
  3100. {
  3101. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3102. u32 path, addr, data32;
  3103. path = *(u32 *)extra;
  3104. addr = *((u32 *)extra + 1);
  3105. data32 = *((u32 *)extra + 2);
  3106. /* RTW_INFO("%s: path=%d addr=0x%02x data=0x%05x\n", __func__, path, addr, data32); */
  3107. rtw_hal_write_rfreg(padapter, path, addr, 0xFFFFF, data32);
  3108. return 0;
  3109. }
  3110. static int rtw_wx_priv_null(struct net_device *dev, struct iw_request_info *a,
  3111. union iwreq_data *wrqu, char *b)
  3112. {
  3113. return -1;
  3114. }
  3115. static int dummy(struct net_device *dev, struct iw_request_info *a,
  3116. union iwreq_data *wrqu, char *b)
  3117. {
  3118. /* _adapter *padapter = (_adapter *)rtw_netdev_priv(dev); */
  3119. /* struct mlme_priv *pmlmepriv = &(padapter->mlmepriv); */
  3120. /* RTW_INFO("cmd_code=%x, fwstate=0x%x\n", a->cmd, get_fwstate(pmlmepriv)); */
  3121. return -1;
  3122. }
  3123. static int rtw_wx_set_channel_plan(struct net_device *dev,
  3124. struct iw_request_info *info,
  3125. union iwreq_data *wrqu, char *extra)
  3126. {
  3127. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3128. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3129. u8 channel_plan_req = (u8)(*((int *)wrqu));
  3130. if (_SUCCESS != rtw_set_channel_plan(padapter, channel_plan_req))
  3131. return -EPERM;
  3132. return 0;
  3133. }
  3134. static int rtw_wx_set_mtk_wps_probe_ie(struct net_device *dev,
  3135. struct iw_request_info *a,
  3136. union iwreq_data *wrqu, char *b)
  3137. {
  3138. #ifdef CONFIG_PLATFORM_MT53XX
  3139. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3140. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3141. #endif
  3142. return 0;
  3143. }
  3144. static int rtw_wx_get_sensitivity(struct net_device *dev,
  3145. struct iw_request_info *info,
  3146. union iwreq_data *wrqu, char *buf)
  3147. {
  3148. #ifdef CONFIG_PLATFORM_MT53XX
  3149. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3150. /* Modified by Albert 20110914 */
  3151. /* This is in dbm format for MTK platform. */
  3152. wrqu->qual.level = padapter->recvpriv.rssi;
  3153. RTW_INFO(" level = %u\n", wrqu->qual.level);
  3154. #endif
  3155. return 0;
  3156. }
  3157. static int rtw_wx_set_mtk_wps_ie(struct net_device *dev,
  3158. struct iw_request_info *info,
  3159. union iwreq_data *wrqu, char *extra)
  3160. {
  3161. #ifdef CONFIG_PLATFORM_MT53XX
  3162. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3163. return rtw_set_wpa_ie(padapter, wrqu->data.pointer, wrqu->data.length);
  3164. #else
  3165. return 0;
  3166. #endif
  3167. }
  3168. /*
  3169. typedef int (*iw_handler)(struct net_device *dev, struct iw_request_info *info,
  3170. union iwreq_data *wrqu, char *extra);
  3171. */
  3172. /*
  3173. * For all data larger than 16 octets, we need to use a
  3174. * pointer to memory allocated in user space.
  3175. */
  3176. static int rtw_drvext_hdl(struct net_device *dev, struct iw_request_info *info,
  3177. union iwreq_data *wrqu, char *extra)
  3178. {
  3179. #if 0
  3180. struct iw_point {
  3181. void __user *pointer; /* Pointer to the data (in user space) */
  3182. __u16 length; /* number of fields or size in bytes */
  3183. __u16 flags; /* Optional params */
  3184. };
  3185. #endif
  3186. #ifdef CONFIG_DRVEXT_MODULE
  3187. u8 res;
  3188. struct drvext_handler *phandler;
  3189. struct drvext_oidparam *poidparam;
  3190. int ret;
  3191. u16 len;
  3192. u8 *pparmbuf, bset;
  3193. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3194. struct iw_point *p = &wrqu->data;
  3195. if ((!p->length) || (!p->pointer)) {
  3196. ret = -EINVAL;
  3197. goto _rtw_drvext_hdl_exit;
  3198. }
  3199. bset = (u8)(p->flags & 0xFFFF);
  3200. len = p->length;
  3201. pparmbuf = (u8 *)rtw_malloc(len);
  3202. if (pparmbuf == NULL) {
  3203. ret = -ENOMEM;
  3204. goto _rtw_drvext_hdl_exit;
  3205. }
  3206. if (bset) { /* set info */
  3207. if (copy_from_user(pparmbuf, p->pointer, len)) {
  3208. rtw_mfree(pparmbuf, len);
  3209. ret = -EFAULT;
  3210. goto _rtw_drvext_hdl_exit;
  3211. }
  3212. } else { /* query info */
  3213. }
  3214. /* */
  3215. poidparam = (struct drvext_oidparam *)pparmbuf;
  3216. /* check subcode */
  3217. if (poidparam->subcode >= MAX_DRVEXT_HANDLERS) {
  3218. ret = -EINVAL;
  3219. goto _rtw_drvext_hdl_exit;
  3220. }
  3221. if (poidparam->subcode >= MAX_DRVEXT_OID_SUBCODES) {
  3222. ret = -EINVAL;
  3223. goto _rtw_drvext_hdl_exit;
  3224. }
  3225. phandler = drvextoidhandlers + poidparam->subcode;
  3226. if (poidparam->len != phandler->parmsize) {
  3227. ret = -EINVAL;
  3228. goto _rtw_drvext_hdl_exit;
  3229. }
  3230. res = phandler->handler(&padapter->drvextpriv, bset, poidparam->data);
  3231. if (res == 0) {
  3232. ret = 0;
  3233. if (bset == 0x00) {/* query info */
  3234. /* _rtw_memcpy(p->pointer, pparmbuf, len); */
  3235. if (copy_to_user(p->pointer, pparmbuf, len))
  3236. ret = -EFAULT;
  3237. }
  3238. } else
  3239. ret = -EFAULT;
  3240. _rtw_drvext_hdl_exit:
  3241. return ret;
  3242. #endif
  3243. return 0;
  3244. }
  3245. static void rtw_dbg_mode_hdl(_adapter *padapter, u32 id, u8 *pdata, u32 len)
  3246. {
  3247. pRW_Reg RegRWStruct;
  3248. struct rf_reg_param *prfreg;
  3249. u8 path;
  3250. u8 offset;
  3251. u32 value;
  3252. RTW_INFO("%s\n", __FUNCTION__);
  3253. switch (id) {
  3254. case GEN_MP_IOCTL_SUBCODE(MP_START):
  3255. RTW_INFO("871x_driver is only for normal mode, can't enter mp mode\n");
  3256. break;
  3257. case GEN_MP_IOCTL_SUBCODE(READ_REG):
  3258. RegRWStruct = (pRW_Reg)pdata;
  3259. switch (RegRWStruct->width) {
  3260. case 1:
  3261. RegRWStruct->value = rtw_read8(padapter, RegRWStruct->offset);
  3262. break;
  3263. case 2:
  3264. RegRWStruct->value = rtw_read16(padapter, RegRWStruct->offset);
  3265. break;
  3266. case 4:
  3267. RegRWStruct->value = rtw_read32(padapter, RegRWStruct->offset);
  3268. break;
  3269. default:
  3270. break;
  3271. }
  3272. break;
  3273. case GEN_MP_IOCTL_SUBCODE(WRITE_REG):
  3274. RegRWStruct = (pRW_Reg)pdata;
  3275. switch (RegRWStruct->width) {
  3276. case 1:
  3277. rtw_write8(padapter, RegRWStruct->offset, (u8)RegRWStruct->value);
  3278. break;
  3279. case 2:
  3280. rtw_write16(padapter, RegRWStruct->offset, (u16)RegRWStruct->value);
  3281. break;
  3282. case 4:
  3283. rtw_write32(padapter, RegRWStruct->offset, (u32)RegRWStruct->value);
  3284. break;
  3285. default:
  3286. break;
  3287. }
  3288. break;
  3289. case GEN_MP_IOCTL_SUBCODE(READ_RF_REG):
  3290. prfreg = (struct rf_reg_param *)pdata;
  3291. path = (u8)prfreg->path;
  3292. offset = (u8)prfreg->offset;
  3293. value = rtw_hal_read_rfreg(padapter, path, offset, 0xffffffff);
  3294. prfreg->value = value;
  3295. break;
  3296. case GEN_MP_IOCTL_SUBCODE(WRITE_RF_REG):
  3297. prfreg = (struct rf_reg_param *)pdata;
  3298. path = (u8)prfreg->path;
  3299. offset = (u8)prfreg->offset;
  3300. value = prfreg->value;
  3301. rtw_hal_write_rfreg(padapter, path, offset, 0xffffffff, value);
  3302. break;
  3303. case GEN_MP_IOCTL_SUBCODE(TRIGGER_GPIO):
  3304. RTW_INFO("==> trigger gpio 0\n");
  3305. rtw_hal_set_hwreg(padapter, HW_VAR_TRIGGER_GPIO_0, 0);
  3306. break;
  3307. #ifdef CONFIG_BT_COEXIST
  3308. case GEN_MP_IOCTL_SUBCODE(SET_DM_BT):
  3309. RTW_INFO("==> set dm_bt_coexist:%x\n", *(u8 *)pdata);
  3310. rtw_hal_set_hwreg(padapter, HW_VAR_BT_SET_COEXIST, pdata);
  3311. break;
  3312. case GEN_MP_IOCTL_SUBCODE(DEL_BA):
  3313. RTW_INFO("==> delete ba:%x\n", *(u8 *)pdata);
  3314. rtw_hal_set_hwreg(padapter, HW_VAR_BT_ISSUE_DELBA, pdata);
  3315. break;
  3316. #endif
  3317. #ifdef DBG_CONFIG_ERROR_DETECT
  3318. case GEN_MP_IOCTL_SUBCODE(GET_WIFI_STATUS):
  3319. *pdata = rtw_hal_sreset_get_wifi_status(padapter);
  3320. break;
  3321. #endif
  3322. default:
  3323. break;
  3324. }
  3325. }
  3326. #ifdef MP_IOCTL_HDL
  3327. static int rtw_mp_ioctl_hdl(struct net_device *dev, struct iw_request_info *info,
  3328. union iwreq_data *wrqu, char *extra)
  3329. {
  3330. int ret = 0;
  3331. u32 BytesRead, BytesWritten, BytesNeeded;
  3332. struct oid_par_priv oid_par;
  3333. struct mp_ioctl_handler *phandler;
  3334. struct mp_ioctl_param *poidparam;
  3335. uint status = 0;
  3336. u16 len;
  3337. u8 *pparmbuf = NULL, bset;
  3338. PADAPTER padapter = (PADAPTER)rtw_netdev_priv(dev);
  3339. struct iw_point *p = &wrqu->data;
  3340. /* RTW_INFO("+rtw_mp_ioctl_hdl\n"); */
  3341. /* mutex_lock(&ioctl_mutex); */
  3342. if ((!p->length) || (!p->pointer)) {
  3343. ret = -EINVAL;
  3344. goto _rtw_mp_ioctl_hdl_exit;
  3345. }
  3346. pparmbuf = NULL;
  3347. bset = (u8)(p->flags & 0xFFFF);
  3348. len = p->length;
  3349. pparmbuf = (u8 *)rtw_malloc(len);
  3350. if (pparmbuf == NULL) {
  3351. ret = -ENOMEM;
  3352. goto _rtw_mp_ioctl_hdl_exit;
  3353. }
  3354. if (copy_from_user(pparmbuf, p->pointer, len)) {
  3355. ret = -EFAULT;
  3356. goto _rtw_mp_ioctl_hdl_exit;
  3357. }
  3358. poidparam = (struct mp_ioctl_param *)pparmbuf;
  3359. if (poidparam->subcode >= MAX_MP_IOCTL_SUBCODE) {
  3360. ret = -EINVAL;
  3361. goto _rtw_mp_ioctl_hdl_exit;
  3362. }
  3363. /* RTW_INFO("%s: %d\n", __func__, poidparam->subcode); */
  3364. #ifdef CONFIG_MP_INCLUDED
  3365. if (padapter->registrypriv.mp_mode == 1) {
  3366. phandler = mp_ioctl_hdl + poidparam->subcode;
  3367. if ((phandler->paramsize != 0) && (poidparam->len < phandler->paramsize)) {
  3368. ret = -EINVAL;
  3369. goto _rtw_mp_ioctl_hdl_exit;
  3370. }
  3371. if (phandler->handler) {
  3372. oid_par.adapter_context = padapter;
  3373. oid_par.oid = phandler->oid;
  3374. oid_par.information_buf = poidparam->data;
  3375. oid_par.information_buf_len = poidparam->len;
  3376. oid_par.dbg = 0;
  3377. BytesWritten = 0;
  3378. BytesNeeded = 0;
  3379. if (bset) {
  3380. oid_par.bytes_rw = &BytesRead;
  3381. oid_par.bytes_needed = &BytesNeeded;
  3382. oid_par.type_of_oid = SET_OID;
  3383. } else {
  3384. oid_par.bytes_rw = &BytesWritten;
  3385. oid_par.bytes_needed = &BytesNeeded;
  3386. oid_par.type_of_oid = QUERY_OID;
  3387. }
  3388. status = phandler->handler(&oid_par);
  3389. /* todo:check status, BytesNeeded, etc. */
  3390. } else {
  3391. RTW_INFO("rtw_mp_ioctl_hdl(): err!, subcode=%d, oid=%d, handler=%p\n",
  3392. poidparam->subcode, phandler->oid, phandler->handler);
  3393. ret = -EFAULT;
  3394. goto _rtw_mp_ioctl_hdl_exit;
  3395. }
  3396. } else
  3397. #endif
  3398. {
  3399. rtw_dbg_mode_hdl(padapter, poidparam->subcode, poidparam->data, poidparam->len);
  3400. }
  3401. if (bset == 0x00) {/* query info */
  3402. if (copy_to_user(p->pointer, pparmbuf, len))
  3403. ret = -EFAULT;
  3404. }
  3405. if (status) {
  3406. ret = -EFAULT;
  3407. goto _rtw_mp_ioctl_hdl_exit;
  3408. }
  3409. _rtw_mp_ioctl_hdl_exit:
  3410. if (pparmbuf)
  3411. rtw_mfree(pparmbuf, len);
  3412. /* mutex_unlock(&ioctl_mutex); */
  3413. return ret;
  3414. }
  3415. #endif
  3416. static int rtw_get_ap_info(struct net_device *dev,
  3417. struct iw_request_info *info,
  3418. union iwreq_data *wrqu, char *extra)
  3419. {
  3420. int bssid_match, ret = 0;
  3421. u32 cnt = 0, wpa_ielen;
  3422. _irqL irqL;
  3423. _list *plist, *phead;
  3424. unsigned char *pbuf;
  3425. u8 bssid[ETH_ALEN];
  3426. char data[32];
  3427. struct wlan_network *pnetwork = NULL;
  3428. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3429. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  3430. _queue *queue = &(pmlmepriv->scanned_queue);
  3431. struct iw_point *pdata = &wrqu->data;
  3432. RTW_INFO("+rtw_get_aplist_info\n");
  3433. if (rtw_is_drv_stopped(padapter) || (pdata == NULL)) {
  3434. ret = -EINVAL;
  3435. goto exit;
  3436. }
  3437. while ((check_fwstate(pmlmepriv, (_FW_UNDER_SURVEY | _FW_UNDER_LINKING))) == _TRUE) {
  3438. rtw_msleep_os(30);
  3439. cnt++;
  3440. if (cnt > 100)
  3441. break;
  3442. }
  3443. /* pdata->length = 0; */ /* ? */
  3444. pdata->flags = 0;
  3445. if (pdata->length >= 32) {
  3446. if (copy_from_user(data, pdata->pointer, 32)) {
  3447. ret = -EINVAL;
  3448. goto exit;
  3449. }
  3450. } else {
  3451. ret = -EINVAL;
  3452. goto exit;
  3453. }
  3454. _enter_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  3455. phead = get_list_head(queue);
  3456. plist = get_next(phead);
  3457. while (1) {
  3458. if (rtw_end_of_queue_search(phead, plist) == _TRUE)
  3459. break;
  3460. pnetwork = LIST_CONTAINOR(plist, struct wlan_network, list);
  3461. /* if(hwaddr_aton_i(pdata->pointer, bssid)) */
  3462. if (hwaddr_aton_i(data, bssid)) {
  3463. RTW_INFO("Invalid BSSID '%s'.\n", (u8 *)data);
  3464. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  3465. return -EINVAL;
  3466. }
  3467. if (_rtw_memcmp(bssid, pnetwork->network.MacAddress, ETH_ALEN) == _TRUE) { /* BSSID match, then check if supporting wpa/wpa2 */
  3468. RTW_INFO("BSSID:" MAC_FMT "\n", MAC_ARG(bssid));
  3469. pbuf = rtw_get_wpa_ie(&pnetwork->network.IEs[12], &wpa_ielen, pnetwork->network.IELength - 12);
  3470. if (pbuf && (wpa_ielen > 0)) {
  3471. pdata->flags = 1;
  3472. break;
  3473. }
  3474. pbuf = rtw_get_wpa2_ie(&pnetwork->network.IEs[12], &wpa_ielen, pnetwork->network.IELength - 12);
  3475. if (pbuf && (wpa_ielen > 0)) {
  3476. pdata->flags = 2;
  3477. break;
  3478. }
  3479. }
  3480. plist = get_next(plist);
  3481. }
  3482. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  3483. if (pdata->length >= 34) {
  3484. if (copy_to_user((u8 *)pdata->pointer + 32, (u8 *)&pdata->flags, 1)) {
  3485. ret = -EINVAL;
  3486. goto exit;
  3487. }
  3488. }
  3489. exit:
  3490. return ret;
  3491. }
  3492. static int rtw_set_pid(struct net_device *dev,
  3493. struct iw_request_info *info,
  3494. union iwreq_data *wrqu, char *extra)
  3495. {
  3496. int ret = 0;
  3497. _adapter *padapter = rtw_netdev_priv(dev);
  3498. int *pdata = (int *)wrqu;
  3499. int selector;
  3500. if (rtw_is_drv_stopped(padapter) || (pdata == NULL)) {
  3501. ret = -EINVAL;
  3502. goto exit;
  3503. }
  3504. selector = *pdata;
  3505. if (selector < 3 && selector >= 0) {
  3506. padapter->pid[selector] = *(pdata + 1);
  3507. #ifdef CONFIG_GLOBAL_UI_PID
  3508. ui_pid[selector] = *(pdata + 1);
  3509. #endif
  3510. RTW_INFO("%s set pid[%d]=%d\n", __FUNCTION__, selector , padapter->pid[selector]);
  3511. } else
  3512. RTW_INFO("%s selector %d error\n", __FUNCTION__, selector);
  3513. exit:
  3514. return ret;
  3515. }
  3516. static int rtw_wps_start(struct net_device *dev,
  3517. struct iw_request_info *info,
  3518. union iwreq_data *wrqu, char *extra)
  3519. {
  3520. int ret = 0;
  3521. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3522. struct iw_point *pdata = &wrqu->data;
  3523. u32 u32wps_start = 0;
  3524. unsigned int uintRet = 0;
  3525. if (RTW_CANNOT_RUN(padapter) || (NULL == pdata)) {
  3526. ret = -EINVAL;
  3527. goto exit;
  3528. }
  3529. uintRet = copy_from_user((void *) &u32wps_start, pdata->pointer, 4);
  3530. if (u32wps_start == 0)
  3531. u32wps_start = *extra;
  3532. RTW_INFO("[%s] wps_start = %d\n", __FUNCTION__, u32wps_start);
  3533. if (u32wps_start == 1) /* WPS Start */
  3534. rtw_led_control(padapter, LED_CTL_START_WPS);
  3535. else if (u32wps_start == 2) /* WPS Stop because of wps success */
  3536. rtw_led_control(padapter, LED_CTL_STOP_WPS);
  3537. else if (u32wps_start == 3) /* WPS Stop because of wps fail */
  3538. rtw_led_control(padapter, LED_CTL_STOP_WPS_FAIL);
  3539. #ifdef CONFIG_INTEL_WIDI
  3540. process_intel_widi_wps_status(padapter, u32wps_start);
  3541. #endif /* CONFIG_INTEL_WIDI */
  3542. exit:
  3543. return ret;
  3544. }
  3545. #ifdef CONFIG_P2P
  3546. static int rtw_wext_p2p_enable(struct net_device *dev,
  3547. struct iw_request_info *info,
  3548. union iwreq_data *wrqu, char *extra)
  3549. {
  3550. int ret = 0;
  3551. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3552. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  3553. struct iw_point *pdata = &wrqu->data;
  3554. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3555. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  3556. enum P2P_ROLE init_role = P2P_ROLE_DISABLE;
  3557. if (*extra == '0')
  3558. init_role = P2P_ROLE_DISABLE;
  3559. else if (*extra == '1')
  3560. init_role = P2P_ROLE_DEVICE;
  3561. else if (*extra == '2')
  3562. init_role = P2P_ROLE_CLIENT;
  3563. else if (*extra == '3')
  3564. init_role = P2P_ROLE_GO;
  3565. if (_FAIL == rtw_p2p_enable(padapter, init_role)) {
  3566. ret = -EFAULT;
  3567. goto exit;
  3568. }
  3569. /* set channel/bandwidth */
  3570. if (init_role != P2P_ROLE_DISABLE) {
  3571. u8 channel, ch_offset;
  3572. u16 bwmode;
  3573. if (rtw_p2p_chk_state(pwdinfo, P2P_STATE_LISTEN)) {
  3574. /* Stay at the listen state and wait for discovery. */
  3575. channel = pwdinfo->listen_channel;
  3576. pwdinfo->operating_channel = pwdinfo->listen_channel;
  3577. ch_offset = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
  3578. bwmode = CHANNEL_WIDTH_20;
  3579. }
  3580. #ifdef CONFIG_CONCURRENT_MODE
  3581. else if (rtw_p2p_chk_state(pwdinfo, P2P_STATE_IDLE)) {
  3582. _set_timer(&pwdinfo->ap_p2p_switch_timer, pwdinfo->ext_listen_interval);
  3583. channel = rtw_mi_get_union_chan(padapter);
  3584. ch_offset = rtw_mi_get_union_offset(padapter);
  3585. bwmode = rtw_mi_get_union_bw(padapter);
  3586. pwdinfo->operating_channel = channel;
  3587. }
  3588. #endif
  3589. else {
  3590. pwdinfo->operating_channel = pmlmeext->cur_channel;
  3591. channel = pwdinfo->operating_channel;
  3592. ch_offset = pmlmeext->cur_ch_offset;
  3593. bwmode = pmlmeext->cur_bwmode;
  3594. }
  3595. set_channel_bwmode(padapter, channel, ch_offset, bwmode);
  3596. }
  3597. exit:
  3598. return ret;
  3599. }
  3600. static int rtw_p2p_set_go_nego_ssid(struct net_device *dev,
  3601. struct iw_request_info *info,
  3602. union iwreq_data *wrqu, char *extra)
  3603. {
  3604. int ret = 0;
  3605. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3606. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  3607. struct iw_point *pdata = &wrqu->data;
  3608. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3609. RTW_INFO("[%s] ssid = %s, len = %zu\n", __FUNCTION__, extra, strlen(extra));
  3610. _rtw_memcpy(pwdinfo->nego_ssid, extra, strlen(extra));
  3611. pwdinfo->nego_ssidlen = strlen(extra);
  3612. return ret;
  3613. }
  3614. static int rtw_p2p_set_intent(struct net_device *dev,
  3615. struct iw_request_info *info,
  3616. union iwreq_data *wrqu, char *extra)
  3617. {
  3618. int ret = 0;
  3619. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3620. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3621. u8 intent = pwdinfo->intent;
  3622. extra[wrqu->data.length] = 0x00;
  3623. intent = rtw_atoi(extra);
  3624. if (intent <= 15)
  3625. pwdinfo->intent = intent;
  3626. else
  3627. ret = -1;
  3628. RTW_INFO("[%s] intent = %d\n", __FUNCTION__, intent);
  3629. return ret;
  3630. }
  3631. static int rtw_p2p_set_listen_ch(struct net_device *dev,
  3632. struct iw_request_info *info,
  3633. union iwreq_data *wrqu, char *extra)
  3634. {
  3635. int ret = 0;
  3636. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3637. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3638. u8 listen_ch = pwdinfo->listen_channel; /* Listen channel number */
  3639. extra[wrqu->data.length] = 0x00;
  3640. listen_ch = rtw_atoi(extra);
  3641. if ((listen_ch == 1) || (listen_ch == 6) || (listen_ch == 11)) {
  3642. pwdinfo->listen_channel = listen_ch;
  3643. set_channel_bwmode(padapter, pwdinfo->listen_channel, HAL_PRIME_CHNL_OFFSET_DONT_CARE, CHANNEL_WIDTH_20);
  3644. } else
  3645. ret = -1;
  3646. RTW_INFO("[%s] listen_ch = %d\n", __FUNCTION__, pwdinfo->listen_channel);
  3647. return ret;
  3648. }
  3649. static int rtw_p2p_set_op_ch(struct net_device *dev,
  3650. struct iw_request_info *info,
  3651. union iwreq_data *wrqu, char *extra)
  3652. {
  3653. /* Commented by Albert 20110524
  3654. * This function is used to set the operating channel if the driver will become the group owner */
  3655. int ret = 0;
  3656. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3657. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3658. u8 op_ch = pwdinfo->operating_channel; /* Operating channel number */
  3659. extra[wrqu->data.length] = 0x00;
  3660. op_ch = (u8) rtw_atoi(extra);
  3661. if (op_ch > 0)
  3662. pwdinfo->operating_channel = op_ch;
  3663. else
  3664. ret = -1;
  3665. RTW_INFO("[%s] op_ch = %d\n", __FUNCTION__, pwdinfo->operating_channel);
  3666. return ret;
  3667. }
  3668. static int rtw_p2p_profilefound(struct net_device *dev,
  3669. struct iw_request_info *info,
  3670. union iwreq_data *wrqu, char *extra)
  3671. {
  3672. int ret = 0;
  3673. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3674. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3675. /* Comment by Albert 2010/10/13 */
  3676. /* Input data format: */
  3677. /* Ex: 0 */
  3678. /* Ex: 1XX:XX:XX:XX:XX:XXYYSSID */
  3679. /* 0 => Reflush the profile record list. */
  3680. /* 1 => Add the profile list */
  3681. /* XX:XX:XX:XX:XX:XX => peer's MAC Address ( ex: 00:E0:4C:00:00:01 ) */
  3682. /* YY => SSID Length */
  3683. /* SSID => SSID for persistence group */
  3684. RTW_INFO("[%s] In value = %s, len = %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  3685. /* The upper application should pass the SSID to driver by using this rtw_p2p_profilefound function. */
  3686. if (!rtw_p2p_chk_state(pwdinfo, P2P_STATE_NONE)) {
  3687. if (extra[0] == '0') {
  3688. /* Remove all the profile information of wifidirect_info structure. */
  3689. _rtw_memset(&pwdinfo->profileinfo[0], 0x00, sizeof(struct profile_info) * P2P_MAX_PERSISTENT_GROUP_NUM);
  3690. pwdinfo->profileindex = 0;
  3691. } else {
  3692. if (pwdinfo->profileindex >= P2P_MAX_PERSISTENT_GROUP_NUM)
  3693. ret = -1;
  3694. else {
  3695. int jj, kk;
  3696. /* Add this profile information into pwdinfo->profileinfo */
  3697. /* Ex: 1XX:XX:XX:XX:XX:XXYYSSID */
  3698. for (jj = 0, kk = 1; jj < ETH_ALEN; jj++, kk += 3)
  3699. pwdinfo->profileinfo[pwdinfo->profileindex].peermac[jj] = key_2char2num(extra[kk], extra[kk + 1]);
  3700. /* pwdinfo->profileinfo[pwdinfo->profileindex].ssidlen = ( extra[18] - '0' ) * 10 + ( extra[19] - '0' ); */
  3701. /* _rtw_memcpy( pwdinfo->profileinfo[pwdinfo->profileindex].ssid, &extra[20], pwdinfo->profileinfo[pwdinfo->profileindex].ssidlen ); */
  3702. pwdinfo->profileindex++;
  3703. }
  3704. }
  3705. }
  3706. return ret;
  3707. }
  3708. static int rtw_p2p_setDN(struct net_device *dev,
  3709. struct iw_request_info *info,
  3710. union iwreq_data *wrqu, char *extra)
  3711. {
  3712. int ret = 0;
  3713. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3714. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3715. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  3716. _rtw_memset(pwdinfo->device_name, 0x00, WPS_MAX_DEVICE_NAME_LEN);
  3717. _rtw_memcpy(pwdinfo->device_name, extra, wrqu->data.length - 1);
  3718. pwdinfo->device_name_len = wrqu->data.length - 1;
  3719. return ret;
  3720. }
  3721. static int rtw_p2p_get_status(struct net_device *dev,
  3722. struct iw_request_info *info,
  3723. union iwreq_data *wrqu, char *extra)
  3724. {
  3725. int ret = 0;
  3726. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3727. struct iw_point *pdata = &wrqu->data;
  3728. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3729. if (padapter->bShowGetP2PState) {
  3730. RTW_INFO("[%s] Role = %d, Status = %d, peer addr = %.2X:%.2X:%.2X:%.2X:%.2X:%.2X\n", __FUNCTION__, rtw_p2p_role(pwdinfo), rtw_p2p_state(pwdinfo),
  3731. pwdinfo->p2p_peer_interface_addr[0], pwdinfo->p2p_peer_interface_addr[1], pwdinfo->p2p_peer_interface_addr[2],
  3732. pwdinfo->p2p_peer_interface_addr[3], pwdinfo->p2p_peer_interface_addr[4], pwdinfo->p2p_peer_interface_addr[5]);
  3733. }
  3734. /* Commented by Albert 2010/10/12 */
  3735. /* Because of the output size limitation, I had removed the "Role" information. */
  3736. /* About the "Role" information, we will use the new private IOCTL to get the "Role" information. */
  3737. sprintf(extra, "\n\nStatus=%.2d\n", rtw_p2p_state(pwdinfo));
  3738. wrqu->data.length = strlen(extra);
  3739. return ret;
  3740. }
  3741. /* Commented by Albert 20110520
  3742. * This function will return the config method description
  3743. * This config method description will show us which config method the remote P2P device is intented to use
  3744. * by sending the provisioning discovery request frame. */
  3745. static int rtw_p2p_get_req_cm(struct net_device *dev,
  3746. struct iw_request_info *info,
  3747. union iwreq_data *wrqu, char *extra)
  3748. {
  3749. int ret = 0;
  3750. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3751. struct iw_point *pdata = &wrqu->data;
  3752. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3753. sprintf(extra, "\n\nCM=%s\n", pwdinfo->rx_prov_disc_info.strconfig_method_desc_of_prov_disc_req);
  3754. wrqu->data.length = strlen(extra);
  3755. return ret;
  3756. }
  3757. static int rtw_p2p_get_role(struct net_device *dev,
  3758. struct iw_request_info *info,
  3759. union iwreq_data *wrqu, char *extra)
  3760. {
  3761. int ret = 0;
  3762. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3763. struct iw_point *pdata = &wrqu->data;
  3764. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3765. RTW_INFO("[%s] Role = %d, Status = %d, peer addr = %.2X:%.2X:%.2X:%.2X:%.2X:%.2X\n", __FUNCTION__, rtw_p2p_role(pwdinfo), rtw_p2p_state(pwdinfo),
  3766. pwdinfo->p2p_peer_interface_addr[0], pwdinfo->p2p_peer_interface_addr[1], pwdinfo->p2p_peer_interface_addr[2],
  3767. pwdinfo->p2p_peer_interface_addr[3], pwdinfo->p2p_peer_interface_addr[4], pwdinfo->p2p_peer_interface_addr[5]);
  3768. sprintf(extra, "\n\nRole=%.2d\n", rtw_p2p_role(pwdinfo));
  3769. wrqu->data.length = strlen(extra);
  3770. return ret;
  3771. }
  3772. static int rtw_p2p_get_peer_ifaddr(struct net_device *dev,
  3773. struct iw_request_info *info,
  3774. union iwreq_data *wrqu, char *extra)
  3775. {
  3776. int ret = 0;
  3777. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3778. struct iw_point *pdata = &wrqu->data;
  3779. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3780. RTW_INFO("[%s] Role = %d, Status = %d, peer addr = %.2X:%.2X:%.2X:%.2X:%.2X:%.2X\n", __FUNCTION__, rtw_p2p_role(pwdinfo), rtw_p2p_state(pwdinfo),
  3781. pwdinfo->p2p_peer_interface_addr[0], pwdinfo->p2p_peer_interface_addr[1], pwdinfo->p2p_peer_interface_addr[2],
  3782. pwdinfo->p2p_peer_interface_addr[3], pwdinfo->p2p_peer_interface_addr[4], pwdinfo->p2p_peer_interface_addr[5]);
  3783. sprintf(extra, "\nMAC %.2X:%.2X:%.2X:%.2X:%.2X:%.2X",
  3784. pwdinfo->p2p_peer_interface_addr[0], pwdinfo->p2p_peer_interface_addr[1], pwdinfo->p2p_peer_interface_addr[2],
  3785. pwdinfo->p2p_peer_interface_addr[3], pwdinfo->p2p_peer_interface_addr[4], pwdinfo->p2p_peer_interface_addr[5]);
  3786. wrqu->data.length = strlen(extra);
  3787. return ret;
  3788. }
  3789. static int rtw_p2p_get_peer_devaddr(struct net_device *dev,
  3790. struct iw_request_info *info,
  3791. union iwreq_data *wrqu, char *extra)
  3792. {
  3793. int ret = 0;
  3794. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3795. struct iw_point *pdata = &wrqu->data;
  3796. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3797. RTW_INFO("[%s] Role = %d, Status = %d, peer addr = %.2X:%.2X:%.2X:%.2X:%.2X:%.2X\n", __FUNCTION__, rtw_p2p_role(pwdinfo), rtw_p2p_state(pwdinfo),
  3798. pwdinfo->rx_prov_disc_info.peerDevAddr[0], pwdinfo->rx_prov_disc_info.peerDevAddr[1],
  3799. pwdinfo->rx_prov_disc_info.peerDevAddr[2], pwdinfo->rx_prov_disc_info.peerDevAddr[3],
  3800. pwdinfo->rx_prov_disc_info.peerDevAddr[4], pwdinfo->rx_prov_disc_info.peerDevAddr[5]);
  3801. sprintf(extra, "\n%.2X%.2X%.2X%.2X%.2X%.2X",
  3802. pwdinfo->rx_prov_disc_info.peerDevAddr[0], pwdinfo->rx_prov_disc_info.peerDevAddr[1],
  3803. pwdinfo->rx_prov_disc_info.peerDevAddr[2], pwdinfo->rx_prov_disc_info.peerDevAddr[3],
  3804. pwdinfo->rx_prov_disc_info.peerDevAddr[4], pwdinfo->rx_prov_disc_info.peerDevAddr[5]);
  3805. wrqu->data.length = strlen(extra);
  3806. return ret;
  3807. }
  3808. static int rtw_p2p_get_peer_devaddr_by_invitation(struct net_device *dev,
  3809. struct iw_request_info *info,
  3810. union iwreq_data *wrqu, char *extra)
  3811. {
  3812. int ret = 0;
  3813. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3814. struct iw_point *pdata = &wrqu->data;
  3815. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3816. RTW_INFO("[%s] Role = %d, Status = %d, peer addr = %.2X:%.2X:%.2X:%.2X:%.2X:%.2X\n", __FUNCTION__, rtw_p2p_role(pwdinfo), rtw_p2p_state(pwdinfo),
  3817. pwdinfo->p2p_peer_device_addr[0], pwdinfo->p2p_peer_device_addr[1],
  3818. pwdinfo->p2p_peer_device_addr[2], pwdinfo->p2p_peer_device_addr[3],
  3819. pwdinfo->p2p_peer_device_addr[4], pwdinfo->p2p_peer_device_addr[5]);
  3820. sprintf(extra, "\nMAC %.2X:%.2X:%.2X:%.2X:%.2X:%.2X",
  3821. pwdinfo->p2p_peer_device_addr[0], pwdinfo->p2p_peer_device_addr[1],
  3822. pwdinfo->p2p_peer_device_addr[2], pwdinfo->p2p_peer_device_addr[3],
  3823. pwdinfo->p2p_peer_device_addr[4], pwdinfo->p2p_peer_device_addr[5]);
  3824. wrqu->data.length = strlen(extra);
  3825. return ret;
  3826. }
  3827. static int rtw_p2p_get_groupid(struct net_device *dev,
  3828. struct iw_request_info *info,
  3829. union iwreq_data *wrqu, char *extra)
  3830. {
  3831. int ret = 0;
  3832. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3833. struct iw_point *pdata = &wrqu->data;
  3834. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3835. sprintf(extra, "\n%.2X:%.2X:%.2X:%.2X:%.2X:%.2X %s",
  3836. pwdinfo->groupid_info.go_device_addr[0], pwdinfo->groupid_info.go_device_addr[1],
  3837. pwdinfo->groupid_info.go_device_addr[2], pwdinfo->groupid_info.go_device_addr[3],
  3838. pwdinfo->groupid_info.go_device_addr[4], pwdinfo->groupid_info.go_device_addr[5],
  3839. pwdinfo->groupid_info.ssid);
  3840. wrqu->data.length = strlen(extra);
  3841. return ret;
  3842. }
  3843. static int rtw_p2p_get_op_ch(struct net_device *dev,
  3844. struct iw_request_info *info,
  3845. union iwreq_data *wrqu, char *extra)
  3846. {
  3847. int ret = 0;
  3848. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3849. struct iw_point *pdata = &wrqu->data;
  3850. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3851. RTW_INFO("[%s] Op_ch = %02x\n", __FUNCTION__, pwdinfo->operating_channel);
  3852. sprintf(extra, "\n\nOp_ch=%.2d\n", pwdinfo->operating_channel);
  3853. wrqu->data.length = strlen(extra);
  3854. return ret;
  3855. }
  3856. static int rtw_p2p_get_wps_configmethod(struct net_device *dev,
  3857. struct iw_request_info *info,
  3858. union iwreq_data *wrqu, char *extra, char *subcmd)
  3859. {
  3860. int ret = 0;
  3861. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3862. u8 peerMAC[ETH_ALEN] = { 0x00 };
  3863. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3864. _irqL irqL;
  3865. _list *plist, *phead;
  3866. _queue *queue = &(pmlmepriv->scanned_queue);
  3867. struct wlan_network *pnetwork = NULL;
  3868. u8 blnMatch = 0;
  3869. u16 attr_content = 0;
  3870. uint attr_contentlen = 0;
  3871. u8 attr_content_str[P2P_PRIVATE_IOCTL_SET_LEN] = { 0x00 };
  3872. /* Commented by Albert 20110727 */
  3873. /* The input data is the MAC address which the application wants to know its WPS config method. */
  3874. /* After knowing its WPS config method, the application can decide the config method for provisioning discovery. */
  3875. /* Format: iwpriv wlanx p2p_get_wpsCM 00:E0:4C:00:00:05 */
  3876. RTW_INFO("[%s] data = %s\n", __FUNCTION__, subcmd);
  3877. macstr2num(peerMAC, subcmd);
  3878. _enter_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  3879. phead = get_list_head(queue);
  3880. plist = get_next(phead);
  3881. while (1) {
  3882. if (rtw_end_of_queue_search(phead, plist) == _TRUE)
  3883. break;
  3884. pnetwork = LIST_CONTAINOR(plist, struct wlan_network, list);
  3885. if (_rtw_memcmp(pnetwork->network.MacAddress, peerMAC, ETH_ALEN)) {
  3886. u8 *wpsie;
  3887. uint wpsie_len = 0;
  3888. /* The mac address is matched. */
  3889. wpsie = rtw_get_wps_ie_from_scan_queue(&pnetwork->network.IEs[0], pnetwork->network.IELength, NULL, &wpsie_len, pnetwork->network.Reserved[0]);
  3890. if (wpsie) {
  3891. rtw_get_wps_attr_content(wpsie, wpsie_len, WPS_ATTR_CONF_METHOD, (u8 *)&attr_content, &attr_contentlen);
  3892. if (attr_contentlen) {
  3893. attr_content = be16_to_cpu(attr_content);
  3894. sprintf(attr_content_str, "\n\nM=%.4d", attr_content);
  3895. blnMatch = 1;
  3896. }
  3897. }
  3898. break;
  3899. }
  3900. plist = get_next(plist);
  3901. }
  3902. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  3903. if (!blnMatch)
  3904. sprintf(attr_content_str, "\n\nM=0000");
  3905. wrqu->data.length = strlen(attr_content_str);
  3906. _rtw_memcpy(extra, attr_content_str, wrqu->data.length);
  3907. return ret;
  3908. }
  3909. #ifdef CONFIG_WFD
  3910. static int rtw_p2p_get_peer_wfd_port(struct net_device *dev,
  3911. struct iw_request_info *info,
  3912. union iwreq_data *wrqu, char *extra)
  3913. {
  3914. int ret = 0;
  3915. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3916. struct iw_point *pdata = &wrqu->data;
  3917. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3918. RTW_INFO("[%s] p2p_state = %d\n", __FUNCTION__, rtw_p2p_state(pwdinfo));
  3919. sprintf(extra, "\n\nPort=%d\n", pwdinfo->wfd_info->peer_rtsp_ctrlport);
  3920. RTW_INFO("[%s] remote port = %d\n", __FUNCTION__, pwdinfo->wfd_info->peer_rtsp_ctrlport);
  3921. wrqu->data.length = strlen(extra);
  3922. return ret;
  3923. }
  3924. static int rtw_p2p_get_peer_wfd_preferred_connection(struct net_device *dev,
  3925. struct iw_request_info *info,
  3926. union iwreq_data *wrqu, char *extra)
  3927. {
  3928. int ret = 0;
  3929. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3930. struct iw_point *pdata = &wrqu->data;
  3931. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3932. sprintf(extra, "\n\nwfd_pc=%d\n", pwdinfo->wfd_info->wfd_pc);
  3933. RTW_INFO("[%s] wfd_pc = %d\n", __FUNCTION__, pwdinfo->wfd_info->wfd_pc);
  3934. wrqu->data.length = strlen(extra);
  3935. pwdinfo->wfd_info->wfd_pc = _FALSE; /* Reset the WFD preferred connection to P2P */
  3936. return ret;
  3937. }
  3938. static int rtw_p2p_get_peer_wfd_session_available(struct net_device *dev,
  3939. struct iw_request_info *info,
  3940. union iwreq_data *wrqu, char *extra)
  3941. {
  3942. int ret = 0;
  3943. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3944. struct iw_point *pdata = &wrqu->data;
  3945. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  3946. sprintf(extra, "\n\nwfd_sa=%d\n", pwdinfo->wfd_info->peer_session_avail);
  3947. RTW_INFO("[%s] wfd_sa = %d\n", __FUNCTION__, pwdinfo->wfd_info->peer_session_avail);
  3948. wrqu->data.length = strlen(extra);
  3949. pwdinfo->wfd_info->peer_session_avail = _TRUE; /* Reset the WFD session available */
  3950. return ret;
  3951. }
  3952. #endif /* CONFIG_WFD */
  3953. static int rtw_p2p_get_go_device_address(struct net_device *dev,
  3954. struct iw_request_info *info,
  3955. union iwreq_data *wrqu, char *extra, char *subcmd)
  3956. {
  3957. int ret = 0;
  3958. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  3959. u8 peerMAC[ETH_ALEN] = { 0x00 };
  3960. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3961. _irqL irqL;
  3962. _list *plist, *phead;
  3963. _queue *queue = &(pmlmepriv->scanned_queue);
  3964. struct wlan_network *pnetwork = NULL;
  3965. u8 blnMatch = 0;
  3966. u8 *p2pie;
  3967. uint p2pielen = 0, attr_contentlen = 0;
  3968. u8 attr_content[100] = { 0x00 };
  3969. u8 go_devadd_str[P2P_PRIVATE_IOCTL_SET_LEN] = { 0x00 };
  3970. /* Commented by Albert 20121209 */
  3971. /* The input data is the GO's interface address which the application wants to know its device address. */
  3972. /* Format: iwpriv wlanx p2p_get2 go_devadd=00:E0:4C:00:00:05 */
  3973. RTW_INFO("[%s] data = %s\n", __FUNCTION__, subcmd);
  3974. macstr2num(peerMAC, subcmd);
  3975. _enter_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  3976. phead = get_list_head(queue);
  3977. plist = get_next(phead);
  3978. while (1) {
  3979. if (rtw_end_of_queue_search(phead, plist) == _TRUE)
  3980. break;
  3981. pnetwork = LIST_CONTAINOR(plist, struct wlan_network, list);
  3982. if (_rtw_memcmp(pnetwork->network.MacAddress, peerMAC, ETH_ALEN)) {
  3983. /* Commented by Albert 2011/05/18 */
  3984. /* Match the device address located in the P2P IE */
  3985. /* This is for the case that the P2P device address is not the same as the P2P interface address. */
  3986. p2pie = rtw_bss_ex_get_p2p_ie(&pnetwork->network, NULL, &p2pielen);
  3987. if (p2pie) {
  3988. while (p2pie) {
  3989. /* The P2P Device ID attribute is included in the Beacon frame. */
  3990. /* The P2P Device Info attribute is included in the probe response frame. */
  3991. _rtw_memset(attr_content, 0x00, 100);
  3992. if (rtw_get_p2p_attr_content(p2pie, p2pielen, P2P_ATTR_DEVICE_ID, attr_content, &attr_contentlen)) {
  3993. /* Handle the P2P Device ID attribute of Beacon first */
  3994. blnMatch = 1;
  3995. break;
  3996. } else if (rtw_get_p2p_attr_content(p2pie, p2pielen, P2P_ATTR_DEVICE_INFO, attr_content, &attr_contentlen)) {
  3997. /* Handle the P2P Device Info attribute of probe response */
  3998. blnMatch = 1;
  3999. break;
  4000. }
  4001. /* Get the next P2P IE */
  4002. p2pie = rtw_get_p2p_ie(p2pie + p2pielen, BSS_EX_TLV_IES_LEN(&pnetwork->network) - (p2pie + p2pielen - BSS_EX_TLV_IES(&pnetwork->network)), NULL, &p2pielen);
  4003. }
  4004. }
  4005. }
  4006. plist = get_next(plist);
  4007. }
  4008. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4009. if (!blnMatch)
  4010. sprintf(go_devadd_str, "\n\ndev_add=NULL");
  4011. else {
  4012. sprintf(go_devadd_str, "\n\ndev_add=%.2X:%.2X:%.2X:%.2X:%.2X:%.2X",
  4013. attr_content[0], attr_content[1], attr_content[2], attr_content[3], attr_content[4], attr_content[5]);
  4014. }
  4015. wrqu->data.length = strlen(go_devadd_str);
  4016. _rtw_memcpy(extra, go_devadd_str, wrqu->data.length);
  4017. return ret;
  4018. }
  4019. static int rtw_p2p_get_device_type(struct net_device *dev,
  4020. struct iw_request_info *info,
  4021. union iwreq_data *wrqu, char *extra, char *subcmd)
  4022. {
  4023. int ret = 0;
  4024. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4025. u8 peerMAC[ETH_ALEN] = { 0x00 };
  4026. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  4027. _irqL irqL;
  4028. _list *plist, *phead;
  4029. _queue *queue = &(pmlmepriv->scanned_queue);
  4030. struct wlan_network *pnetwork = NULL;
  4031. u8 blnMatch = 0;
  4032. u8 dev_type[8] = { 0x00 };
  4033. uint dev_type_len = 0;
  4034. u8 dev_type_str[P2P_PRIVATE_IOCTL_SET_LEN] = { 0x00 }; /* +9 is for the str "dev_type=", we have to clear it at wrqu->data.pointer */
  4035. /* Commented by Albert 20121209 */
  4036. /* The input data is the MAC address which the application wants to know its device type. */
  4037. /* Such user interface could know the device type. */
  4038. /* Format: iwpriv wlanx p2p_get2 dev_type=00:E0:4C:00:00:05 */
  4039. RTW_INFO("[%s] data = %s\n", __FUNCTION__, subcmd);
  4040. macstr2num(peerMAC, subcmd);
  4041. _enter_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4042. phead = get_list_head(queue);
  4043. plist = get_next(phead);
  4044. while (1) {
  4045. if (rtw_end_of_queue_search(phead, plist) == _TRUE)
  4046. break;
  4047. pnetwork = LIST_CONTAINOR(plist, struct wlan_network, list);
  4048. if (_rtw_memcmp(pnetwork->network.MacAddress, peerMAC, ETH_ALEN)) {
  4049. u8 *wpsie;
  4050. uint wpsie_len = 0;
  4051. /* The mac address is matched. */
  4052. wpsie = rtw_get_wps_ie_from_scan_queue(&pnetwork->network.IEs[0], pnetwork->network.IELength, NULL, &wpsie_len, pnetwork->network.Reserved[0]);
  4053. if (wpsie) {
  4054. rtw_get_wps_attr_content(wpsie, wpsie_len, WPS_ATTR_PRIMARY_DEV_TYPE, dev_type, &dev_type_len);
  4055. if (dev_type_len) {
  4056. u16 type = 0;
  4057. _rtw_memcpy(&type, dev_type, 2);
  4058. type = be16_to_cpu(type);
  4059. sprintf(dev_type_str, "\n\nN=%.2d", type);
  4060. blnMatch = 1;
  4061. }
  4062. }
  4063. break;
  4064. }
  4065. plist = get_next(plist);
  4066. }
  4067. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4068. if (!blnMatch)
  4069. sprintf(dev_type_str, "\n\nN=00");
  4070. wrqu->data.length = strlen(dev_type_str);
  4071. _rtw_memcpy(extra, dev_type_str, wrqu->data.length);
  4072. return ret;
  4073. }
  4074. static int rtw_p2p_get_device_name(struct net_device *dev,
  4075. struct iw_request_info *info,
  4076. union iwreq_data *wrqu, char *extra, char *subcmd)
  4077. {
  4078. int ret = 0;
  4079. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4080. u8 peerMAC[ETH_ALEN] = { 0x00 };
  4081. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  4082. _irqL irqL;
  4083. _list *plist, *phead;
  4084. _queue *queue = &(pmlmepriv->scanned_queue);
  4085. struct wlan_network *pnetwork = NULL;
  4086. u8 blnMatch = 0;
  4087. u8 dev_name[WPS_MAX_DEVICE_NAME_LEN] = { 0x00 };
  4088. uint dev_len = 0;
  4089. u8 dev_name_str[P2P_PRIVATE_IOCTL_SET_LEN] = { 0x00 };
  4090. /* Commented by Albert 20121225 */
  4091. /* The input data is the MAC address which the application wants to know its device name. */
  4092. /* Such user interface could show peer device's device name instead of ssid. */
  4093. /* Format: iwpriv wlanx p2p_get2 devN=00:E0:4C:00:00:05 */
  4094. RTW_INFO("[%s] data = %s\n", __FUNCTION__, subcmd);
  4095. macstr2num(peerMAC, subcmd);
  4096. _enter_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4097. phead = get_list_head(queue);
  4098. plist = get_next(phead);
  4099. while (1) {
  4100. if (rtw_end_of_queue_search(phead, plist) == _TRUE)
  4101. break;
  4102. pnetwork = LIST_CONTAINOR(plist, struct wlan_network, list);
  4103. if (_rtw_memcmp(pnetwork->network.MacAddress, peerMAC, ETH_ALEN)) {
  4104. u8 *wpsie;
  4105. uint wpsie_len = 0;
  4106. /* The mac address is matched. */
  4107. wpsie = rtw_get_wps_ie_from_scan_queue(&pnetwork->network.IEs[0], pnetwork->network.IELength, NULL, &wpsie_len, pnetwork->network.Reserved[0]);
  4108. if (wpsie) {
  4109. rtw_get_wps_attr_content(wpsie, wpsie_len, WPS_ATTR_DEVICE_NAME, dev_name, &dev_len);
  4110. if (dev_len) {
  4111. sprintf(dev_name_str, "\n\nN=%s", dev_name);
  4112. blnMatch = 1;
  4113. }
  4114. }
  4115. break;
  4116. }
  4117. plist = get_next(plist);
  4118. }
  4119. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4120. if (!blnMatch)
  4121. sprintf(dev_name_str, "\n\nN=0000");
  4122. wrqu->data.length = strlen(dev_name_str);
  4123. _rtw_memcpy(extra, dev_name_str, wrqu->data.length);
  4124. return ret;
  4125. }
  4126. static int rtw_p2p_get_invitation_procedure(struct net_device *dev,
  4127. struct iw_request_info *info,
  4128. union iwreq_data *wrqu, char *extra, char *subcmd)
  4129. {
  4130. int ret = 0;
  4131. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4132. u8 peerMAC[ETH_ALEN] = { 0x00 };
  4133. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  4134. _irqL irqL;
  4135. _list *plist, *phead;
  4136. _queue *queue = &(pmlmepriv->scanned_queue);
  4137. struct wlan_network *pnetwork = NULL;
  4138. u8 blnMatch = 0;
  4139. u8 *p2pie;
  4140. uint p2pielen = 0, attr_contentlen = 0;
  4141. u8 attr_content[2] = { 0x00 };
  4142. u8 inv_proc_str[P2P_PRIVATE_IOCTL_SET_LEN] = { 0x00 };
  4143. /* Commented by Ouden 20121226 */
  4144. /* The application wants to know P2P initation procedure is support or not. */
  4145. /* Format: iwpriv wlanx p2p_get2 InvProc=00:E0:4C:00:00:05 */
  4146. RTW_INFO("[%s] data = %s\n", __FUNCTION__, subcmd);
  4147. macstr2num(peerMAC, subcmd);
  4148. _enter_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4149. phead = get_list_head(queue);
  4150. plist = get_next(phead);
  4151. while (1) {
  4152. if (rtw_end_of_queue_search(phead, plist) == _TRUE)
  4153. break;
  4154. pnetwork = LIST_CONTAINOR(plist, struct wlan_network, list);
  4155. if (_rtw_memcmp(pnetwork->network.MacAddress, peerMAC, ETH_ALEN)) {
  4156. /* Commented by Albert 20121226 */
  4157. /* Match the device address located in the P2P IE */
  4158. /* This is for the case that the P2P device address is not the same as the P2P interface address. */
  4159. p2pie = rtw_bss_ex_get_p2p_ie(&pnetwork->network, NULL, &p2pielen);
  4160. if (p2pie) {
  4161. while (p2pie) {
  4162. /* _rtw_memset( attr_content, 0x00, 2); */
  4163. if (rtw_get_p2p_attr_content(p2pie, p2pielen, P2P_ATTR_CAPABILITY, attr_content, &attr_contentlen)) {
  4164. /* Handle the P2P capability attribute */
  4165. blnMatch = 1;
  4166. break;
  4167. }
  4168. /* Get the next P2P IE */
  4169. p2pie = rtw_get_p2p_ie(p2pie + p2pielen, BSS_EX_TLV_IES_LEN(&pnetwork->network) - (p2pie + p2pielen - BSS_EX_TLV_IES(&pnetwork->network)), NULL, &p2pielen);
  4170. }
  4171. }
  4172. }
  4173. plist = get_next(plist);
  4174. }
  4175. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4176. if (!blnMatch)
  4177. sprintf(inv_proc_str, "\nIP=-1");
  4178. else {
  4179. if ((attr_content[0] & 0x20) == 0x20)
  4180. sprintf(inv_proc_str, "\nIP=1");
  4181. else
  4182. sprintf(inv_proc_str, "\nIP=0");
  4183. }
  4184. wrqu->data.length = strlen(inv_proc_str);
  4185. _rtw_memcpy(extra, inv_proc_str, wrqu->data.length);
  4186. return ret;
  4187. }
  4188. static int rtw_p2p_connect(struct net_device *dev,
  4189. struct iw_request_info *info,
  4190. union iwreq_data *wrqu, char *extra)
  4191. {
  4192. int ret = 0;
  4193. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4194. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4195. u8 peerMAC[ETH_ALEN] = { 0x00 };
  4196. int jj, kk;
  4197. u8 peerMACStr[ETH_ALEN * 2] = { 0x00 };
  4198. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  4199. _irqL irqL;
  4200. _list *plist, *phead;
  4201. _queue *queue = &(pmlmepriv->scanned_queue);
  4202. struct wlan_network *pnetwork = NULL;
  4203. uint uintPeerChannel = 0;
  4204. /* Commented by Albert 20110304 */
  4205. /* The input data contains two informations. */
  4206. /* 1. First information is the MAC address which wants to formate with */
  4207. /* 2. Second information is the WPS PINCode or "pbc" string for push button method */
  4208. /* Format: 00:E0:4C:00:00:05 */
  4209. /* Format: 00:E0:4C:00:00:05 */
  4210. RTW_INFO("[%s] data = %s\n", __FUNCTION__, extra);
  4211. if (pwdinfo->p2p_state == P2P_STATE_NONE) {
  4212. RTW_INFO("[%s] WiFi Direct is disable!\n", __FUNCTION__);
  4213. return ret;
  4214. }
  4215. #ifdef CONFIG_INTEL_WIDI
  4216. if (check_fwstate(pmlmepriv, _FW_UNDER_SURVEY) == _TRUE) {
  4217. RTW_INFO("[%s] WiFi is under survey!\n", __FUNCTION__);
  4218. return ret;
  4219. }
  4220. #endif /* CONFIG_INTEL_WIDI */
  4221. if (pwdinfo->ui_got_wps_info == P2P_NO_WPSINFO)
  4222. return -1;
  4223. for (jj = 0, kk = 0; jj < ETH_ALEN; jj++, kk += 3)
  4224. peerMAC[jj] = key_2char2num(extra[kk], extra[kk + 1]);
  4225. _enter_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4226. phead = get_list_head(queue);
  4227. plist = get_next(phead);
  4228. while (1) {
  4229. if (rtw_end_of_queue_search(phead, plist) == _TRUE)
  4230. break;
  4231. pnetwork = LIST_CONTAINOR(plist, struct wlan_network, list);
  4232. if (_rtw_memcmp(pnetwork->network.MacAddress, peerMAC, ETH_ALEN)) {
  4233. if (pnetwork->network.Configuration.DSConfig != 0)
  4234. uintPeerChannel = pnetwork->network.Configuration.DSConfig;
  4235. else if (pwdinfo->nego_req_info.peer_ch != 0)
  4236. uintPeerChannel = pnetwork->network.Configuration.DSConfig = pwdinfo->nego_req_info.peer_ch;
  4237. else {
  4238. /* Unexpected case */
  4239. uintPeerChannel = 0;
  4240. RTW_INFO("%s uintPeerChannel = 0\n", __func__);
  4241. }
  4242. break;
  4243. }
  4244. plist = get_next(plist);
  4245. }
  4246. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4247. if (uintPeerChannel) {
  4248. #ifdef CONFIG_CONCURRENT_MODE
  4249. if (rtw_mi_check_status(padapter, MI_LINKED))
  4250. _cancel_timer_ex(&pwdinfo->ap_p2p_switch_timer);
  4251. #endif /* CONFIG_CONCURRENT_MODE */
  4252. _rtw_memset(&pwdinfo->nego_req_info, 0x00, sizeof(struct tx_nego_req_info));
  4253. _rtw_memset(&pwdinfo->groupid_info, 0x00, sizeof(struct group_id_info));
  4254. pwdinfo->nego_req_info.peer_channel_num[0] = uintPeerChannel;
  4255. _rtw_memcpy(pwdinfo->nego_req_info.peerDevAddr, pnetwork->network.MacAddress, ETH_ALEN);
  4256. pwdinfo->nego_req_info.benable = _TRUE;
  4257. _cancel_timer_ex(&pwdinfo->restore_p2p_state_timer);
  4258. if (rtw_p2p_state(pwdinfo) != P2P_STATE_GONEGO_OK) {
  4259. /* Restore to the listen state if the current p2p state is not nego OK */
  4260. rtw_p2p_set_state(pwdinfo, P2P_STATE_LISTEN);
  4261. }
  4262. rtw_p2p_set_pre_state(pwdinfo, rtw_p2p_state(pwdinfo));
  4263. rtw_p2p_set_state(pwdinfo, P2P_STATE_GONEGO_ING);
  4264. #ifdef CONFIG_CONCURRENT_MODE
  4265. if (rtw_mi_check_status(padapter, MI_LINKED)) {
  4266. u8 union_ch = rtw_mi_get_union_chan(padapter);
  4267. u8 union_bw = rtw_mi_get_union_bw(padapter);
  4268. u8 union_offset = rtw_mi_get_union_offset(padapter);
  4269. /* Have to enter the power saving with the AP */
  4270. set_channel_bwmode(padapter, union_ch, union_offset, union_bw);
  4271. rtw_mi_buddy_issue_nulldata(padapter, NULL, 1, 3, 500);
  4272. }
  4273. #endif /* CONFIG_CONCURRENT_MODE */
  4274. RTW_INFO("[%s] Start PreTx Procedure!\n", __FUNCTION__);
  4275. _set_timer(&pwdinfo->pre_tx_scan_timer, P2P_TX_PRESCAN_TIMEOUT);
  4276. #ifdef CONFIG_CONCURRENT_MODE
  4277. if (rtw_mi_check_status(padapter, MI_LINKED))
  4278. _set_timer(&pwdinfo->restore_p2p_state_timer, P2P_CONCURRENT_GO_NEGO_TIMEOUT);
  4279. else
  4280. _set_timer(&pwdinfo->restore_p2p_state_timer, P2P_GO_NEGO_TIMEOUT);
  4281. #else
  4282. _set_timer(&pwdinfo->restore_p2p_state_timer, P2P_GO_NEGO_TIMEOUT);
  4283. #endif /* CONFIG_CONCURRENT_MODE */
  4284. } else {
  4285. RTW_INFO("[%s] Not Found in Scanning Queue~\n", __FUNCTION__);
  4286. #ifdef CONFIG_INTEL_WIDI
  4287. _cancel_timer_ex(&pwdinfo->restore_p2p_state_timer);
  4288. rtw_p2p_set_state(pwdinfo, P2P_STATE_FIND_PHASE_SEARCH);
  4289. rtw_p2p_findphase_ex_set(pwdinfo, P2P_FINDPHASE_EX_NONE);
  4290. rtw_free_network_queue(padapter, _TRUE);
  4291. /**
  4292. * For WiDi, if we can't find candidate device in scanning queue,
  4293. * driver will do scanning itself
  4294. */
  4295. _enter_critical_bh(&pmlmepriv->lock, &irqL);
  4296. rtw_sitesurvey_cmd(padapter, NULL, 0, NULL, 0);
  4297. _exit_critical_bh(&pmlmepriv->lock, &irqL);
  4298. #endif /* CONFIG_INTEL_WIDI */
  4299. ret = -1;
  4300. }
  4301. exit:
  4302. return ret;
  4303. }
  4304. static int rtw_p2p_invite_req(struct net_device *dev,
  4305. struct iw_request_info *info,
  4306. union iwreq_data *wrqu, char *extra)
  4307. {
  4308. int ret = 0;
  4309. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4310. struct iw_point *pdata = &wrqu->data;
  4311. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4312. int jj, kk;
  4313. u8 peerMACStr[ETH_ALEN * 2] = { 0x00 };
  4314. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  4315. _list *plist, *phead;
  4316. _queue *queue = &(pmlmepriv->scanned_queue);
  4317. struct wlan_network *pnetwork = NULL;
  4318. uint uintPeerChannel = 0;
  4319. u8 attr_content[50] = { 0x00 }, _status = 0;
  4320. u8 *p2pie;
  4321. uint p2pielen = 0, attr_contentlen = 0;
  4322. _irqL irqL;
  4323. struct tx_invite_req_info *pinvite_req_info = &pwdinfo->invitereq_info;
  4324. /* Commented by Albert 20120321 */
  4325. /* The input data contains two informations. */
  4326. /* 1. First information is the P2P device address which you want to send to. */
  4327. /* 2. Second information is the group id which combines with GO's mac address, space and GO's ssid. */
  4328. /* Command line sample: iwpriv wlan0 p2p_set invite="00:11:22:33:44:55 00:E0:4C:00:00:05 DIRECT-xy" */
  4329. /* Format: 00:11:22:33:44:55 00:E0:4C:00:00:05 DIRECT-xy */
  4330. RTW_INFO("[%s] data = %s\n", __FUNCTION__, extra);
  4331. if (wrqu->data.length <= 37) {
  4332. RTW_INFO("[%s] Wrong format!\n", __FUNCTION__);
  4333. return ret;
  4334. }
  4335. if (rtw_p2p_chk_state(pwdinfo, P2P_STATE_NONE)) {
  4336. RTW_INFO("[%s] WiFi Direct is disable!\n", __FUNCTION__);
  4337. return ret;
  4338. } else {
  4339. /* Reset the content of struct tx_invite_req_info */
  4340. pinvite_req_info->benable = _FALSE;
  4341. _rtw_memset(pinvite_req_info->go_bssid, 0x00, ETH_ALEN);
  4342. _rtw_memset(pinvite_req_info->go_ssid, 0x00, WLAN_SSID_MAXLEN);
  4343. pinvite_req_info->ssidlen = 0x00;
  4344. pinvite_req_info->operating_ch = pwdinfo->operating_channel;
  4345. _rtw_memset(pinvite_req_info->peer_macaddr, 0x00, ETH_ALEN);
  4346. pinvite_req_info->token = 3;
  4347. }
  4348. for (jj = 0, kk = 0; jj < ETH_ALEN; jj++, kk += 3)
  4349. pinvite_req_info->peer_macaddr[jj] = key_2char2num(extra[kk], extra[kk + 1]);
  4350. _enter_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4351. phead = get_list_head(queue);
  4352. plist = get_next(phead);
  4353. while (1) {
  4354. if (rtw_end_of_queue_search(phead, plist) == _TRUE)
  4355. break;
  4356. pnetwork = LIST_CONTAINOR(plist, struct wlan_network, list);
  4357. /* Commented by Albert 2011/05/18 */
  4358. /* Match the device address located in the P2P IE */
  4359. /* This is for the case that the P2P device address is not the same as the P2P interface address. */
  4360. p2pie = rtw_bss_ex_get_p2p_ie(&pnetwork->network, NULL, &p2pielen);
  4361. if (p2pie) {
  4362. /* The P2P Device ID attribute is included in the Beacon frame. */
  4363. /* The P2P Device Info attribute is included in the probe response frame. */
  4364. if (rtw_get_p2p_attr_content(p2pie, p2pielen, P2P_ATTR_DEVICE_ID, attr_content, &attr_contentlen)) {
  4365. /* Handle the P2P Device ID attribute of Beacon first */
  4366. if (_rtw_memcmp(attr_content, pinvite_req_info->peer_macaddr, ETH_ALEN)) {
  4367. uintPeerChannel = pnetwork->network.Configuration.DSConfig;
  4368. break;
  4369. }
  4370. } else if (rtw_get_p2p_attr_content(p2pie, p2pielen, P2P_ATTR_DEVICE_INFO, attr_content, &attr_contentlen)) {
  4371. /* Handle the P2P Device Info attribute of probe response */
  4372. if (_rtw_memcmp(attr_content, pinvite_req_info->peer_macaddr, ETH_ALEN)) {
  4373. uintPeerChannel = pnetwork->network.Configuration.DSConfig;
  4374. break;
  4375. }
  4376. }
  4377. }
  4378. plist = get_next(plist);
  4379. }
  4380. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4381. #ifdef CONFIG_WFD
  4382. if (hal_chk_wl_func(padapter, WL_FUNC_MIRACAST) && uintPeerChannel) {
  4383. struct wifi_display_info *pwfd_info = pwdinfo->wfd_info;
  4384. u8 *wfd_ie;
  4385. uint wfd_ielen = 0;
  4386. wfd_ie = rtw_bss_ex_get_wfd_ie(&pnetwork->network, NULL, &wfd_ielen);
  4387. if (wfd_ie) {
  4388. u8 *wfd_devinfo;
  4389. uint wfd_devlen;
  4390. RTW_INFO("[%s] Found WFD IE!\n", __FUNCTION__);
  4391. wfd_devinfo = rtw_get_wfd_attr_content(wfd_ie, wfd_ielen, WFD_ATTR_DEVICE_INFO, NULL, &wfd_devlen);
  4392. if (wfd_devinfo) {
  4393. u16 wfd_devinfo_field = 0;
  4394. /* Commented by Albert 20120319 */
  4395. /* The first two bytes are the WFD device information field of WFD device information subelement. */
  4396. /* In big endian format. */
  4397. wfd_devinfo_field = RTW_GET_BE16(wfd_devinfo);
  4398. if (wfd_devinfo_field & WFD_DEVINFO_SESSION_AVAIL)
  4399. pwfd_info->peer_session_avail = _TRUE;
  4400. else
  4401. pwfd_info->peer_session_avail = _FALSE;
  4402. }
  4403. }
  4404. if (_FALSE == pwfd_info->peer_session_avail) {
  4405. RTW_INFO("[%s] WFD Session not avaiable!\n", __FUNCTION__);
  4406. goto exit;
  4407. }
  4408. }
  4409. #endif /* CONFIG_WFD */
  4410. if (uintPeerChannel) {
  4411. #ifdef CONFIG_CONCURRENT_MODE
  4412. if (rtw_mi_check_status(padapter, MI_LINKED))
  4413. _cancel_timer_ex(&pwdinfo->ap_p2p_switch_timer);
  4414. #endif /* CONFIG_CONCURRENT_MODE */
  4415. /* Store the GO's bssid */
  4416. for (jj = 0, kk = 18; jj < ETH_ALEN; jj++, kk += 3)
  4417. pinvite_req_info->go_bssid[jj] = key_2char2num(extra[kk], extra[kk + 1]);
  4418. /* Store the GO's ssid */
  4419. pinvite_req_info->ssidlen = wrqu->data.length - 36;
  4420. _rtw_memcpy(pinvite_req_info->go_ssid, &extra[36], (u32) pinvite_req_info->ssidlen);
  4421. pinvite_req_info->benable = _TRUE;
  4422. pinvite_req_info->peer_ch = uintPeerChannel;
  4423. rtw_p2p_set_pre_state(pwdinfo, rtw_p2p_state(pwdinfo));
  4424. rtw_p2p_set_state(pwdinfo, P2P_STATE_TX_INVITE_REQ);
  4425. #ifdef CONFIG_CONCURRENT_MODE
  4426. if (rtw_mi_check_status(padapter, MI_LINKED)) {
  4427. u8 union_ch = rtw_mi_get_union_chan(padapter);
  4428. u8 union_bw = rtw_mi_get_union_bw(padapter);
  4429. u8 union_offset = rtw_mi_get_union_offset(padapter);
  4430. /* Have to enter the power saving with the AP */
  4431. set_channel_bwmode(padapter, union_ch, union_offset, union_bw);
  4432. rtw_mi_buddy_issue_nulldata(padapter, NULL, 1, 3, 500);
  4433. } else
  4434. set_channel_bwmode(padapter, uintPeerChannel, HAL_PRIME_CHNL_OFFSET_DONT_CARE, CHANNEL_WIDTH_20);
  4435. #else
  4436. set_channel_bwmode(padapter, uintPeerChannel, HAL_PRIME_CHNL_OFFSET_DONT_CARE, CHANNEL_WIDTH_20);
  4437. #endif
  4438. _set_timer(&pwdinfo->pre_tx_scan_timer, P2P_TX_PRESCAN_TIMEOUT);
  4439. #ifdef CONFIG_CONCURRENT_MODE
  4440. if (rtw_mi_check_status(padapter, MI_LINKED))
  4441. _set_timer(&pwdinfo->restore_p2p_state_timer, P2P_CONCURRENT_INVITE_TIMEOUT);
  4442. else
  4443. _set_timer(&pwdinfo->restore_p2p_state_timer, P2P_INVITE_TIMEOUT);
  4444. #else
  4445. _set_timer(&pwdinfo->restore_p2p_state_timer, P2P_INVITE_TIMEOUT);
  4446. #endif /* CONFIG_CONCURRENT_MODE */
  4447. } else
  4448. RTW_INFO("[%s] NOT Found in the Scanning Queue!\n", __FUNCTION__);
  4449. exit:
  4450. return ret;
  4451. }
  4452. static int rtw_p2p_set_persistent(struct net_device *dev,
  4453. struct iw_request_info *info,
  4454. union iwreq_data *wrqu, char *extra)
  4455. {
  4456. int ret = 0;
  4457. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4458. struct iw_point *pdata = &wrqu->data;
  4459. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4460. int jj, kk;
  4461. u8 peerMACStr[ETH_ALEN * 2] = { 0x00 };
  4462. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  4463. _list *plist, *phead;
  4464. _queue *queue = &(pmlmepriv->scanned_queue);
  4465. struct wlan_network *pnetwork = NULL;
  4466. uint uintPeerChannel = 0;
  4467. u8 attr_content[50] = { 0x00 }, _status = 0;
  4468. u8 *p2pie;
  4469. uint p2pielen = 0, attr_contentlen = 0;
  4470. _irqL irqL;
  4471. struct tx_invite_req_info *pinvite_req_info = &pwdinfo->invitereq_info;
  4472. /* Commented by Albert 20120328 */
  4473. /* The input data is 0 or 1 */
  4474. /* 0: disable persistent group functionality */
  4475. /* 1: enable persistent group founctionality */
  4476. RTW_INFO("[%s] data = %s\n", __FUNCTION__, extra);
  4477. if (rtw_p2p_chk_state(pwdinfo, P2P_STATE_NONE)) {
  4478. RTW_INFO("[%s] WiFi Direct is disable!\n", __FUNCTION__);
  4479. return ret;
  4480. } else {
  4481. if (extra[0] == '0') /* Disable the persistent group function. */
  4482. pwdinfo->persistent_supported = _FALSE;
  4483. else if (extra[0] == '1') /* Enable the persistent group function. */
  4484. pwdinfo->persistent_supported = _TRUE;
  4485. else
  4486. pwdinfo->persistent_supported = _FALSE;
  4487. }
  4488. printk("[%s] persistent_supported = %d\n", __FUNCTION__, pwdinfo->persistent_supported);
  4489. exit:
  4490. return ret;
  4491. }
  4492. static int hexstr2bin(const char *hex, u8 *buf, size_t len)
  4493. {
  4494. size_t i;
  4495. int a;
  4496. const char *ipos = hex;
  4497. u8 *opos = buf;
  4498. for (i = 0; i < len; i++) {
  4499. a = hex2byte_i(ipos);
  4500. if (a < 0)
  4501. return -1;
  4502. *opos++ = a;
  4503. ipos += 2;
  4504. }
  4505. return 0;
  4506. }
  4507. static int uuid_str2bin(const char *str, u8 *bin)
  4508. {
  4509. const char *pos;
  4510. u8 *opos;
  4511. pos = str;
  4512. opos = bin;
  4513. if (hexstr2bin(pos, opos, 4))
  4514. return -1;
  4515. pos += 8;
  4516. opos += 4;
  4517. if (*pos++ != '-' || hexstr2bin(pos, opos, 2))
  4518. return -1;
  4519. pos += 4;
  4520. opos += 2;
  4521. if (*pos++ != '-' || hexstr2bin(pos, opos, 2))
  4522. return -1;
  4523. pos += 4;
  4524. opos += 2;
  4525. if (*pos++ != '-' || hexstr2bin(pos, opos, 2))
  4526. return -1;
  4527. pos += 4;
  4528. opos += 2;
  4529. if (*pos++ != '-' || hexstr2bin(pos, opos, 6))
  4530. return -1;
  4531. return 0;
  4532. }
  4533. static int rtw_p2p_set_wps_uuid(struct net_device *dev,
  4534. struct iw_request_info *info,
  4535. union iwreq_data *wrqu, char *extra)
  4536. {
  4537. int ret = 0;
  4538. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4539. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4540. RTW_INFO("[%s] data = %s\n", __FUNCTION__, extra);
  4541. if ((36 == strlen(extra)) && (uuid_str2bin(extra, pwdinfo->uuid) == 0))
  4542. pwdinfo->external_uuid = 1;
  4543. else {
  4544. pwdinfo->external_uuid = 0;
  4545. ret = -EINVAL;
  4546. }
  4547. return ret;
  4548. }
  4549. #ifdef CONFIG_WFD
  4550. static int rtw_p2p_set_pc(struct net_device *dev,
  4551. struct iw_request_info *info,
  4552. union iwreq_data *wrqu, char *extra)
  4553. {
  4554. int ret = 0;
  4555. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4556. struct iw_point *pdata = &wrqu->data;
  4557. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4558. u8 peerMAC[ETH_ALEN] = { 0x00 };
  4559. int jj, kk;
  4560. u8 peerMACStr[ETH_ALEN * 2] = { 0x00 };
  4561. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  4562. _list *plist, *phead;
  4563. _queue *queue = &(pmlmepriv->scanned_queue);
  4564. struct wlan_network *pnetwork = NULL;
  4565. u8 attr_content[50] = { 0x00 }, _status = 0;
  4566. u8 *p2pie;
  4567. uint p2pielen = 0, attr_contentlen = 0;
  4568. _irqL irqL;
  4569. uint uintPeerChannel = 0;
  4570. struct wifi_display_info *pwfd_info = pwdinfo->wfd_info;
  4571. /* Commented by Albert 20120512 */
  4572. /* 1. Input information is the MAC address which wants to know the Preferred Connection bit (PC bit) */
  4573. /* Format: 00:E0:4C:00:00:05 */
  4574. RTW_INFO("[%s] data = %s\n", __FUNCTION__, extra);
  4575. if (rtw_p2p_chk_state(pwdinfo, P2P_STATE_NONE)) {
  4576. RTW_INFO("[%s] WiFi Direct is disable!\n", __FUNCTION__);
  4577. return ret;
  4578. }
  4579. for (jj = 0, kk = 0; jj < ETH_ALEN; jj++, kk += 3)
  4580. peerMAC[jj] = key_2char2num(extra[kk], extra[kk + 1]);
  4581. _enter_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4582. phead = get_list_head(queue);
  4583. plist = get_next(phead);
  4584. while (1) {
  4585. if (rtw_end_of_queue_search(phead, plist) == _TRUE)
  4586. break;
  4587. pnetwork = LIST_CONTAINOR(plist, struct wlan_network, list);
  4588. /* Commented by Albert 2011/05/18 */
  4589. /* Match the device address located in the P2P IE */
  4590. /* This is for the case that the P2P device address is not the same as the P2P interface address. */
  4591. p2pie = rtw_bss_ex_get_p2p_ie(&pnetwork->network, NULL, &p2pielen);
  4592. if (p2pie) {
  4593. /* The P2P Device ID attribute is included in the Beacon frame. */
  4594. /* The P2P Device Info attribute is included in the probe response frame. */
  4595. printk("[%s] Got P2P IE\n", __FUNCTION__);
  4596. if (rtw_get_p2p_attr_content(p2pie, p2pielen, P2P_ATTR_DEVICE_ID, attr_content, &attr_contentlen)) {
  4597. /* Handle the P2P Device ID attribute of Beacon first */
  4598. printk("[%s] P2P_ATTR_DEVICE_ID\n", __FUNCTION__);
  4599. if (_rtw_memcmp(attr_content, peerMAC, ETH_ALEN)) {
  4600. uintPeerChannel = pnetwork->network.Configuration.DSConfig;
  4601. break;
  4602. }
  4603. } else if (rtw_get_p2p_attr_content(p2pie, p2pielen, P2P_ATTR_DEVICE_INFO, attr_content, &attr_contentlen)) {
  4604. /* Handle the P2P Device Info attribute of probe response */
  4605. printk("[%s] P2P_ATTR_DEVICE_INFO\n", __FUNCTION__);
  4606. if (_rtw_memcmp(attr_content, peerMAC, ETH_ALEN)) {
  4607. uintPeerChannel = pnetwork->network.Configuration.DSConfig;
  4608. break;
  4609. }
  4610. }
  4611. }
  4612. plist = get_next(plist);
  4613. }
  4614. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4615. printk("[%s] channel = %d\n", __FUNCTION__, uintPeerChannel);
  4616. if (uintPeerChannel) {
  4617. u8 *wfd_ie;
  4618. uint wfd_ielen = 0;
  4619. wfd_ie = rtw_bss_ex_get_wfd_ie(&pnetwork->network, NULL, &wfd_ielen);
  4620. if (wfd_ie) {
  4621. u8 *wfd_devinfo;
  4622. uint wfd_devlen;
  4623. RTW_INFO("[%s] Found WFD IE!\n", __FUNCTION__);
  4624. wfd_devinfo = rtw_get_wfd_attr_content(wfd_ie, wfd_ielen, WFD_ATTR_DEVICE_INFO, NULL, &wfd_devlen);
  4625. if (wfd_devinfo) {
  4626. u16 wfd_devinfo_field = 0;
  4627. /* Commented by Albert 20120319 */
  4628. /* The first two bytes are the WFD device information field of WFD device information subelement. */
  4629. /* In big endian format. */
  4630. wfd_devinfo_field = RTW_GET_BE16(wfd_devinfo);
  4631. if (wfd_devinfo_field & WFD_DEVINFO_PC_TDLS)
  4632. pwfd_info->wfd_pc = _TRUE;
  4633. else
  4634. pwfd_info->wfd_pc = _FALSE;
  4635. }
  4636. }
  4637. } else
  4638. RTW_INFO("[%s] NOT Found in the Scanning Queue!\n", __FUNCTION__);
  4639. exit:
  4640. return ret;
  4641. }
  4642. static int rtw_p2p_set_wfd_device_type(struct net_device *dev,
  4643. struct iw_request_info *info,
  4644. union iwreq_data *wrqu, char *extra)
  4645. {
  4646. int ret = 0;
  4647. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4648. struct iw_point *pdata = &wrqu->data;
  4649. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4650. struct wifi_display_info *pwfd_info = pwdinfo->wfd_info;
  4651. /* Commented by Albert 20120328 */
  4652. /* The input data is 0 or 1 */
  4653. /* 0: specify to Miracast source device */
  4654. /* 1 or others: specify to Miracast sink device (display device) */
  4655. RTW_INFO("[%s] data = %s\n", __FUNCTION__, extra);
  4656. if (extra[0] == '0') /* Set to Miracast source device. */
  4657. pwfd_info->wfd_device_type = WFD_DEVINFO_SOURCE;
  4658. else /* Set to Miracast sink device. */
  4659. pwfd_info->wfd_device_type = WFD_DEVINFO_PSINK;
  4660. exit:
  4661. return ret;
  4662. }
  4663. static int rtw_p2p_set_wfd_enable(struct net_device *dev,
  4664. struct iw_request_info *info,
  4665. union iwreq_data *wrqu, char *extra)
  4666. {
  4667. /* Commented by Kurt 20121206
  4668. * This function is used to set wfd enabled */
  4669. int ret = 0;
  4670. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4671. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4672. if (*extra == '0')
  4673. rtw_wfd_enable(padapter, 0);
  4674. else if (*extra == '1')
  4675. rtw_wfd_enable(padapter, 1);
  4676. RTW_INFO("[%s] wfd_enable = %d\n", __FUNCTION__, pwdinfo->wfd_info->wfd_enable);
  4677. return ret;
  4678. }
  4679. static int rtw_p2p_set_driver_iface(struct net_device *dev,
  4680. struct iw_request_info *info,
  4681. union iwreq_data *wrqu, char *extra)
  4682. {
  4683. /* Commented by Kurt 20121206
  4684. * This function is used to set driver iface is WEXT or CFG80211 */
  4685. int ret = 0;
  4686. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4687. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4688. if (*extra == '1') {
  4689. pwdinfo->driver_interface = DRIVER_WEXT;
  4690. RTW_INFO("[%s] driver_interface = WEXT\n", __FUNCTION__);
  4691. } else if (*extra == '2') {
  4692. pwdinfo->driver_interface = DRIVER_CFG80211;
  4693. RTW_INFO("[%s] driver_interface = CFG80211\n", __FUNCTION__);
  4694. }
  4695. return ret;
  4696. }
  4697. /* To set the WFD session available to enable or disable */
  4698. static int rtw_p2p_set_sa(struct net_device *dev,
  4699. struct iw_request_info *info,
  4700. union iwreq_data *wrqu, char *extra)
  4701. {
  4702. int ret = 0;
  4703. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4704. struct iw_point *pdata = &wrqu->data;
  4705. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4706. struct wifi_display_info *pwfd_info = pwdinfo->wfd_info;
  4707. RTW_INFO("[%s] data = %s\n", __FUNCTION__, extra);
  4708. if (0) {
  4709. RTW_INFO("[%s] WiFi Direct is disable!\n", __FUNCTION__);
  4710. return ret;
  4711. } else {
  4712. if (extra[0] == '0') /* Disable the session available. */
  4713. pwdinfo->session_available = _FALSE;
  4714. else if (extra[0] == '1') /* Enable the session available. */
  4715. pwdinfo->session_available = _TRUE;
  4716. else
  4717. pwdinfo->session_available = _FALSE;
  4718. }
  4719. printk("[%s] session available = %d\n", __FUNCTION__, pwdinfo->session_available);
  4720. exit:
  4721. return ret;
  4722. }
  4723. #endif /* CONFIG_WFD */
  4724. static int rtw_p2p_prov_disc(struct net_device *dev,
  4725. struct iw_request_info *info,
  4726. union iwreq_data *wrqu, char *extra)
  4727. {
  4728. int ret = 0;
  4729. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4730. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4731. u8 peerMAC[ETH_ALEN] = { 0x00 };
  4732. int jj, kk;
  4733. u8 peerMACStr[ETH_ALEN * 2] = { 0x00 };
  4734. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  4735. _list *plist, *phead;
  4736. _queue *queue = &(pmlmepriv->scanned_queue);
  4737. struct wlan_network *pnetwork = NULL;
  4738. uint uintPeerChannel = 0;
  4739. u8 attr_content[100] = { 0x00 }, _status = 0;
  4740. u8 *p2pie;
  4741. uint p2pielen = 0, attr_contentlen = 0;
  4742. _irqL irqL;
  4743. /* Commented by Albert 20110301 */
  4744. /* The input data contains two informations. */
  4745. /* 1. First information is the MAC address which wants to issue the provisioning discovery request frame. */
  4746. /* 2. Second information is the WPS configuration method which wants to discovery */
  4747. /* Format: 00:E0:4C:00:00:05_display */
  4748. /* Format: 00:E0:4C:00:00:05_keypad */
  4749. /* Format: 00:E0:4C:00:00:05_pbc */
  4750. /* Format: 00:E0:4C:00:00:05_label */
  4751. RTW_INFO("[%s] data = %s\n", __FUNCTION__, extra);
  4752. if (pwdinfo->p2p_state == P2P_STATE_NONE) {
  4753. RTW_INFO("[%s] WiFi Direct is disable!\n", __FUNCTION__);
  4754. return ret;
  4755. } else {
  4756. #ifdef CONFIG_INTEL_WIDI
  4757. if (check_fwstate(pmlmepriv, _FW_UNDER_SURVEY) == _TRUE) {
  4758. RTW_INFO("[%s] WiFi is under survey!\n", __FUNCTION__);
  4759. return ret;
  4760. }
  4761. #endif /* CONFIG_INTEL_WIDI */
  4762. /* Reset the content of struct tx_provdisc_req_info excluded the wps_config_method_request. */
  4763. _rtw_memset(pwdinfo->tx_prov_disc_info.peerDevAddr, 0x00, ETH_ALEN);
  4764. _rtw_memset(pwdinfo->tx_prov_disc_info.peerIFAddr, 0x00, ETH_ALEN);
  4765. _rtw_memset(&pwdinfo->tx_prov_disc_info.ssid, 0x00, sizeof(NDIS_802_11_SSID));
  4766. pwdinfo->tx_prov_disc_info.peer_channel_num[0] = 0;
  4767. pwdinfo->tx_prov_disc_info.peer_channel_num[1] = 0;
  4768. pwdinfo->tx_prov_disc_info.benable = _FALSE;
  4769. }
  4770. for (jj = 0, kk = 0; jj < ETH_ALEN; jj++, kk += 3)
  4771. peerMAC[jj] = key_2char2num(extra[kk], extra[kk + 1]);
  4772. if (_rtw_memcmp(&extra[18], "display", 7))
  4773. pwdinfo->tx_prov_disc_info.wps_config_method_request = WPS_CM_DISPLYA;
  4774. else if (_rtw_memcmp(&extra[18], "keypad", 7))
  4775. pwdinfo->tx_prov_disc_info.wps_config_method_request = WPS_CM_KEYPAD;
  4776. else if (_rtw_memcmp(&extra[18], "pbc", 3))
  4777. pwdinfo->tx_prov_disc_info.wps_config_method_request = WPS_CM_PUSH_BUTTON;
  4778. else if (_rtw_memcmp(&extra[18], "label", 5))
  4779. pwdinfo->tx_prov_disc_info.wps_config_method_request = WPS_CM_LABEL;
  4780. else {
  4781. RTW_INFO("[%s] Unknown WPS config methodn", __FUNCTION__);
  4782. return ret ;
  4783. }
  4784. _enter_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4785. phead = get_list_head(queue);
  4786. plist = get_next(phead);
  4787. while (1) {
  4788. if (rtw_end_of_queue_search(phead, plist) == _TRUE)
  4789. break;
  4790. if (uintPeerChannel != 0)
  4791. break;
  4792. pnetwork = LIST_CONTAINOR(plist, struct wlan_network, list);
  4793. /* Commented by Albert 2011/05/18 */
  4794. /* Match the device address located in the P2P IE */
  4795. /* This is for the case that the P2P device address is not the same as the P2P interface address. */
  4796. p2pie = rtw_bss_ex_get_p2p_ie(&pnetwork->network, NULL, &p2pielen);
  4797. if (p2pie) {
  4798. while (p2pie) {
  4799. /* The P2P Device ID attribute is included in the Beacon frame. */
  4800. /* The P2P Device Info attribute is included in the probe response frame. */
  4801. if (rtw_get_p2p_attr_content(p2pie, p2pielen, P2P_ATTR_DEVICE_ID, attr_content, &attr_contentlen)) {
  4802. /* Handle the P2P Device ID attribute of Beacon first */
  4803. if (_rtw_memcmp(attr_content, peerMAC, ETH_ALEN)) {
  4804. uintPeerChannel = pnetwork->network.Configuration.DSConfig;
  4805. break;
  4806. }
  4807. } else if (rtw_get_p2p_attr_content(p2pie, p2pielen, P2P_ATTR_DEVICE_INFO, attr_content, &attr_contentlen)) {
  4808. /* Handle the P2P Device Info attribute of probe response */
  4809. if (_rtw_memcmp(attr_content, peerMAC, ETH_ALEN)) {
  4810. uintPeerChannel = pnetwork->network.Configuration.DSConfig;
  4811. break;
  4812. }
  4813. }
  4814. /* Get the next P2P IE */
  4815. p2pie = rtw_get_p2p_ie(p2pie + p2pielen, BSS_EX_TLV_IES_LEN(&pnetwork->network) - (p2pie + p2pielen - BSS_EX_TLV_IES(&pnetwork->network)), NULL, &p2pielen);
  4816. }
  4817. }
  4818. #ifdef CONFIG_INTEL_WIDI
  4819. /* Some Intel WiDi source may not provide P2P IE, */
  4820. /* so we could only compare mac addr by 802.11 Source Address */
  4821. if (pmlmepriv->widi_state == INTEL_WIDI_STATE_WFD_CONNECTION
  4822. && uintPeerChannel == 0) {
  4823. if (_rtw_memcmp(pnetwork->network.MacAddress, peerMAC, ETH_ALEN)) {
  4824. uintPeerChannel = pnetwork->network.Configuration.DSConfig;
  4825. break;
  4826. }
  4827. }
  4828. #endif /* CONFIG_INTEL_WIDI */
  4829. plist = get_next(plist);
  4830. }
  4831. _exit_critical_bh(&(pmlmepriv->scanned_queue.lock), &irqL);
  4832. if (uintPeerChannel) {
  4833. #ifdef CONFIG_WFD
  4834. if (hal_chk_wl_func(padapter, WL_FUNC_MIRACAST)) {
  4835. struct wifi_display_info *pwfd_info = pwdinfo->wfd_info;
  4836. u8 *wfd_ie;
  4837. uint wfd_ielen = 0;
  4838. wfd_ie = rtw_bss_ex_get_wfd_ie(&pnetwork->network, NULL, &wfd_ielen);
  4839. if (wfd_ie) {
  4840. u8 *wfd_devinfo;
  4841. uint wfd_devlen;
  4842. RTW_INFO("[%s] Found WFD IE!\n", __FUNCTION__);
  4843. wfd_devinfo = rtw_get_wfd_attr_content(wfd_ie, wfd_ielen, WFD_ATTR_DEVICE_INFO, NULL, &wfd_devlen);
  4844. if (wfd_devinfo) {
  4845. u16 wfd_devinfo_field = 0;
  4846. /* Commented by Albert 20120319 */
  4847. /* The first two bytes are the WFD device information field of WFD device information subelement. */
  4848. /* In big endian format. */
  4849. wfd_devinfo_field = RTW_GET_BE16(wfd_devinfo);
  4850. if (wfd_devinfo_field & WFD_DEVINFO_SESSION_AVAIL)
  4851. pwfd_info->peer_session_avail = _TRUE;
  4852. else
  4853. pwfd_info->peer_session_avail = _FALSE;
  4854. }
  4855. }
  4856. if (_FALSE == pwfd_info->peer_session_avail) {
  4857. RTW_INFO("[%s] WFD Session not avaiable!\n", __FUNCTION__);
  4858. goto exit;
  4859. }
  4860. }
  4861. #endif /* CONFIG_WFD */
  4862. RTW_INFO("[%s] peer channel: %d!\n", __FUNCTION__, uintPeerChannel);
  4863. #ifdef CONFIG_CONCURRENT_MODE
  4864. if (rtw_mi_check_status(padapter, MI_LINKED))
  4865. _cancel_timer_ex(&pwdinfo->ap_p2p_switch_timer);
  4866. #endif /* CONFIG_CONCURRENT_MODE */
  4867. _rtw_memcpy(pwdinfo->tx_prov_disc_info.peerIFAddr, pnetwork->network.MacAddress, ETH_ALEN);
  4868. _rtw_memcpy(pwdinfo->tx_prov_disc_info.peerDevAddr, peerMAC, ETH_ALEN);
  4869. pwdinfo->tx_prov_disc_info.peer_channel_num[0] = (u16) uintPeerChannel;
  4870. pwdinfo->tx_prov_disc_info.benable = _TRUE;
  4871. rtw_p2p_set_pre_state(pwdinfo, rtw_p2p_state(pwdinfo));
  4872. rtw_p2p_set_state(pwdinfo, P2P_STATE_TX_PROVISION_DIS_REQ);
  4873. if (rtw_p2p_chk_role(pwdinfo, P2P_ROLE_CLIENT))
  4874. _rtw_memcpy(&pwdinfo->tx_prov_disc_info.ssid, &pnetwork->network.Ssid, sizeof(NDIS_802_11_SSID));
  4875. else if (rtw_p2p_chk_role(pwdinfo, P2P_ROLE_DEVICE) || rtw_p2p_chk_role(pwdinfo, P2P_ROLE_GO)) {
  4876. _rtw_memcpy(pwdinfo->tx_prov_disc_info.ssid.Ssid, pwdinfo->p2p_wildcard_ssid, P2P_WILDCARD_SSID_LEN);
  4877. pwdinfo->tx_prov_disc_info.ssid.SsidLength = P2P_WILDCARD_SSID_LEN;
  4878. }
  4879. #ifdef CONFIG_CONCURRENT_MODE
  4880. if (rtw_mi_check_status(padapter, MI_LINKED)) {
  4881. u8 union_ch = rtw_mi_get_union_chan(padapter);
  4882. u8 union_bw = rtw_mi_get_union_bw(padapter);
  4883. u8 union_offset = rtw_mi_get_union_offset(padapter);
  4884. /* Have to enter the power saving with the AP */
  4885. set_channel_bwmode(padapter, union_ch, union_offset, union_bw);
  4886. rtw_mi_buddy_issue_nulldata(padapter, NULL, 1, 3, 500);
  4887. } else
  4888. set_channel_bwmode(padapter, uintPeerChannel, HAL_PRIME_CHNL_OFFSET_DONT_CARE, CHANNEL_WIDTH_20);
  4889. #else
  4890. set_channel_bwmode(padapter, uintPeerChannel, HAL_PRIME_CHNL_OFFSET_DONT_CARE, CHANNEL_WIDTH_20);
  4891. #endif
  4892. _set_timer(&pwdinfo->pre_tx_scan_timer, P2P_TX_PRESCAN_TIMEOUT);
  4893. #ifdef CONFIG_CONCURRENT_MODE
  4894. if (rtw_mi_check_status(padapter, MI_LINKED))
  4895. _set_timer(&pwdinfo->restore_p2p_state_timer, P2P_CONCURRENT_PROVISION_TIMEOUT);
  4896. else
  4897. _set_timer(&pwdinfo->restore_p2p_state_timer, P2P_PROVISION_TIMEOUT);
  4898. #else
  4899. _set_timer(&pwdinfo->restore_p2p_state_timer, P2P_PROVISION_TIMEOUT);
  4900. #endif /* CONFIG_CONCURRENT_MODE */
  4901. } else {
  4902. RTW_INFO("[%s] NOT Found in the Scanning Queue!\n", __FUNCTION__);
  4903. #ifdef CONFIG_INTEL_WIDI
  4904. _cancel_timer_ex(&pwdinfo->restore_p2p_state_timer);
  4905. rtw_p2p_set_state(pwdinfo, P2P_STATE_FIND_PHASE_SEARCH);
  4906. rtw_p2p_findphase_ex_set(pwdinfo, P2P_FINDPHASE_EX_NONE);
  4907. rtw_free_network_queue(padapter, _TRUE);
  4908. _enter_critical_bh(&pmlmepriv->lock, &irqL);
  4909. rtw_sitesurvey_cmd(padapter, NULL, 0, NULL, 0);
  4910. _exit_critical_bh(&pmlmepriv->lock, &irqL);
  4911. #endif /* CONFIG_INTEL_WIDI */
  4912. }
  4913. exit:
  4914. return ret;
  4915. }
  4916. /* Added by Albert 20110328
  4917. * This function is used to inform the driver the user had specified the pin code value or pbc
  4918. * to application. */
  4919. static int rtw_p2p_got_wpsinfo(struct net_device *dev,
  4920. struct iw_request_info *info,
  4921. union iwreq_data *wrqu, char *extra)
  4922. {
  4923. int ret = 0;
  4924. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4925. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4926. RTW_INFO("[%s] data = %s\n", __FUNCTION__, extra);
  4927. /* Added by Albert 20110328 */
  4928. /* if the input data is P2P_NO_WPSINFO -> reset the wpsinfo */
  4929. /* if the input data is P2P_GOT_WPSINFO_PEER_DISPLAY_PIN -> the utility just input the PIN code got from the peer P2P device. */
  4930. /* if the input data is P2P_GOT_WPSINFO_SELF_DISPLAY_PIN -> the utility just got the PIN code from itself. */
  4931. /* if the input data is P2P_GOT_WPSINFO_PBC -> the utility just determine to use the PBC */
  4932. if (*extra == '0')
  4933. pwdinfo->ui_got_wps_info = P2P_NO_WPSINFO;
  4934. else if (*extra == '1')
  4935. pwdinfo->ui_got_wps_info = P2P_GOT_WPSINFO_PEER_DISPLAY_PIN;
  4936. else if (*extra == '2')
  4937. pwdinfo->ui_got_wps_info = P2P_GOT_WPSINFO_SELF_DISPLAY_PIN;
  4938. else if (*extra == '3')
  4939. pwdinfo->ui_got_wps_info = P2P_GOT_WPSINFO_PBC;
  4940. else
  4941. pwdinfo->ui_got_wps_info = P2P_NO_WPSINFO;
  4942. return ret;
  4943. }
  4944. #endif /* CONFIG_P2P */
  4945. static int rtw_p2p_set(struct net_device *dev,
  4946. struct iw_request_info *info,
  4947. union iwreq_data *wrqu, char *extra)
  4948. {
  4949. int ret = 0;
  4950. #ifdef CONFIG_P2P
  4951. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  4952. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  4953. struct iw_point *pdata = &wrqu->data;
  4954. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  4955. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  4956. RTW_INFO("[%s] extra = %s\n", __FUNCTION__, extra);
  4957. if (_rtw_memcmp(extra, "enable=", 7))
  4958. rtw_wext_p2p_enable(dev, info, wrqu, &extra[7]);
  4959. else if (_rtw_memcmp(extra, "setDN=", 6)) {
  4960. wrqu->data.length -= 6;
  4961. rtw_p2p_setDN(dev, info, wrqu, &extra[6]);
  4962. } else if (_rtw_memcmp(extra, "profilefound=", 13)) {
  4963. wrqu->data.length -= 13;
  4964. rtw_p2p_profilefound(dev, info, wrqu, &extra[13]);
  4965. } else if (_rtw_memcmp(extra, "prov_disc=", 10)) {
  4966. wrqu->data.length -= 10;
  4967. rtw_p2p_prov_disc(dev, info, wrqu, &extra[10]);
  4968. } else if (_rtw_memcmp(extra, "nego=", 5)) {
  4969. wrqu->data.length -= 5;
  4970. rtw_p2p_connect(dev, info, wrqu, &extra[5]);
  4971. } else if (_rtw_memcmp(extra, "intent=", 7)) {
  4972. /* Commented by Albert 2011/03/23 */
  4973. /* The wrqu->data.length will include the null character */
  4974. /* So, we will decrease 7 + 1 */
  4975. wrqu->data.length -= 8;
  4976. rtw_p2p_set_intent(dev, info, wrqu, &extra[7]);
  4977. } else if (_rtw_memcmp(extra, "ssid=", 5)) {
  4978. wrqu->data.length -= 5;
  4979. rtw_p2p_set_go_nego_ssid(dev, info, wrqu, &extra[5]);
  4980. } else if (_rtw_memcmp(extra, "got_wpsinfo=", 12)) {
  4981. wrqu->data.length -= 12;
  4982. rtw_p2p_got_wpsinfo(dev, info, wrqu, &extra[12]);
  4983. } else if (_rtw_memcmp(extra, "listen_ch=", 10)) {
  4984. /* Commented by Albert 2011/05/24 */
  4985. /* The wrqu->data.length will include the null character */
  4986. /* So, we will decrease (10 + 1) */
  4987. wrqu->data.length -= 11;
  4988. rtw_p2p_set_listen_ch(dev, info, wrqu, &extra[10]);
  4989. } else if (_rtw_memcmp(extra, "op_ch=", 6)) {
  4990. /* Commented by Albert 2011/05/24 */
  4991. /* The wrqu->data.length will include the null character */
  4992. /* So, we will decrease (6 + 1) */
  4993. wrqu->data.length -= 7;
  4994. rtw_p2p_set_op_ch(dev, info, wrqu, &extra[6]);
  4995. } else if (_rtw_memcmp(extra, "invite=", 7)) {
  4996. wrqu->data.length -= 8;
  4997. rtw_p2p_invite_req(dev, info, wrqu, &extra[7]);
  4998. } else if (_rtw_memcmp(extra, "persistent=", 11)) {
  4999. wrqu->data.length -= 11;
  5000. rtw_p2p_set_persistent(dev, info, wrqu, &extra[11]);
  5001. } else if (_rtw_memcmp(extra, "uuid=", 5)) {
  5002. wrqu->data.length -= 5;
  5003. ret = rtw_p2p_set_wps_uuid(dev, info, wrqu, &extra[5]);
  5004. }
  5005. #ifdef CONFIG_WFD
  5006. if (hal_chk_wl_func(padapter, WL_FUNC_MIRACAST)) {
  5007. if (_rtw_memcmp(extra, "sa=", 3)) {
  5008. /* sa: WFD Session Available information */
  5009. wrqu->data.length -= 3;
  5010. rtw_p2p_set_sa(dev, info, wrqu, &extra[3]);
  5011. } else if (_rtw_memcmp(extra, "pc=", 3)) {
  5012. /* pc: WFD Preferred Connection */
  5013. wrqu->data.length -= 3;
  5014. rtw_p2p_set_pc(dev, info, wrqu, &extra[3]);
  5015. } else if (_rtw_memcmp(extra, "wfd_type=", 9)) {
  5016. wrqu->data.length -= 9;
  5017. rtw_p2p_set_wfd_device_type(dev, info, wrqu, &extra[9]);
  5018. } else if (_rtw_memcmp(extra, "wfd_enable=", 11)) {
  5019. wrqu->data.length -= 11;
  5020. rtw_p2p_set_wfd_enable(dev, info, wrqu, &extra[11]);
  5021. } else if (_rtw_memcmp(extra, "driver_iface=", 13)) {
  5022. wrqu->data.length -= 13;
  5023. rtw_p2p_set_driver_iface(dev, info, wrqu, &extra[13]);
  5024. }
  5025. }
  5026. #endif /* CONFIG_WFD */
  5027. #endif /* CONFIG_P2P */
  5028. return ret;
  5029. }
  5030. static int rtw_p2p_get(struct net_device *dev,
  5031. struct iw_request_info *info,
  5032. union iwreq_data *wrqu, char *extra)
  5033. {
  5034. int ret = 0;
  5035. #ifdef CONFIG_P2P
  5036. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  5037. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  5038. struct iw_point *pdata = &wrqu->data;
  5039. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  5040. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  5041. if (padapter->bShowGetP2PState)
  5042. RTW_INFO("[%s] extra = %s\n", __FUNCTION__, (char *) wrqu->data.pointer);
  5043. if (_rtw_memcmp(wrqu->data.pointer, "status", 6))
  5044. rtw_p2p_get_status(dev, info, wrqu, extra);
  5045. else if (_rtw_memcmp(wrqu->data.pointer, "role", 4))
  5046. rtw_p2p_get_role(dev, info, wrqu, extra);
  5047. else if (_rtw_memcmp(wrqu->data.pointer, "peer_ifa", 8))
  5048. rtw_p2p_get_peer_ifaddr(dev, info, wrqu, extra);
  5049. else if (_rtw_memcmp(wrqu->data.pointer, "req_cm", 6))
  5050. rtw_p2p_get_req_cm(dev, info, wrqu, extra);
  5051. else if (_rtw_memcmp(wrqu->data.pointer, "peer_deva", 9)) {
  5052. /* Get the P2P device address when receiving the provision discovery request frame. */
  5053. rtw_p2p_get_peer_devaddr(dev, info, wrqu, extra);
  5054. } else if (_rtw_memcmp(wrqu->data.pointer, "group_id", 8))
  5055. rtw_p2p_get_groupid(dev, info, wrqu, extra);
  5056. else if (_rtw_memcmp(wrqu->data.pointer, "inv_peer_deva", 13)) {
  5057. /* Get the P2P device address when receiving the P2P Invitation request frame. */
  5058. rtw_p2p_get_peer_devaddr_by_invitation(dev, info, wrqu, extra);
  5059. } else if (_rtw_memcmp(wrqu->data.pointer, "op_ch", 5))
  5060. rtw_p2p_get_op_ch(dev, info, wrqu, extra);
  5061. #ifdef CONFIG_WFD
  5062. if (hal_chk_wl_func(padapter, WL_FUNC_MIRACAST)) {
  5063. if (_rtw_memcmp(wrqu->data.pointer, "peer_port", 9))
  5064. rtw_p2p_get_peer_wfd_port(dev, info, wrqu, extra);
  5065. else if (_rtw_memcmp(wrqu->data.pointer, "wfd_sa", 6))
  5066. rtw_p2p_get_peer_wfd_session_available(dev, info, wrqu, extra);
  5067. else if (_rtw_memcmp(wrqu->data.pointer, "wfd_pc", 6))
  5068. rtw_p2p_get_peer_wfd_preferred_connection(dev, info, wrqu, extra);
  5069. }
  5070. #endif /* CONFIG_WFD */
  5071. #endif /* CONFIG_P2P */
  5072. return ret;
  5073. }
  5074. static int rtw_p2p_get2(struct net_device *dev,
  5075. struct iw_request_info *info,
  5076. union iwreq_data *wrqu, char *extra)
  5077. {
  5078. int ret = 0;
  5079. #ifdef CONFIG_P2P
  5080. int length = wrqu->data.length;
  5081. char *buffer = (u8 *)rtw_malloc(length);
  5082. if (buffer == NULL) {
  5083. ret = -ENOMEM;
  5084. goto bad;
  5085. }
  5086. if (copy_from_user(buffer, wrqu->data.pointer, wrqu->data.length)) {
  5087. ret = -EFAULT;
  5088. goto bad;
  5089. }
  5090. RTW_INFO("[%s] buffer = %s\n", __FUNCTION__, buffer);
  5091. if (_rtw_memcmp(buffer, "wpsCM=", 6))
  5092. ret = rtw_p2p_get_wps_configmethod(dev, info, wrqu, extra, &buffer[6]);
  5093. else if (_rtw_memcmp(buffer, "devN=", 5))
  5094. ret = rtw_p2p_get_device_name(dev, info, wrqu, extra, &buffer[5]);
  5095. else if (_rtw_memcmp(buffer, "dev_type=", 9))
  5096. ret = rtw_p2p_get_device_type(dev, info, wrqu, extra, &buffer[9]);
  5097. else if (_rtw_memcmp(buffer, "go_devadd=", 10))
  5098. ret = rtw_p2p_get_go_device_address(dev, info, wrqu, extra, &buffer[10]);
  5099. else if (_rtw_memcmp(buffer, "InvProc=", 8))
  5100. ret = rtw_p2p_get_invitation_procedure(dev, info, wrqu, extra, &buffer[8]);
  5101. else {
  5102. snprintf(extra, sizeof("Command not found."), "Command not found.");
  5103. wrqu->data.length = strlen(extra);
  5104. }
  5105. bad:
  5106. if (buffer)
  5107. rtw_mfree(buffer, length);
  5108. #endif /* CONFIG_P2P */
  5109. return ret;
  5110. }
  5111. static int rtw_cta_test_start(struct net_device *dev,
  5112. struct iw_request_info *info,
  5113. union iwreq_data *wrqu, char *extra)
  5114. {
  5115. int ret = 0;
  5116. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  5117. RTW_INFO("%s %s\n", __func__, extra);
  5118. if (!strcmp(extra, "1"))
  5119. padapter->in_cta_test = 1;
  5120. else
  5121. padapter->in_cta_test = 0;
  5122. if (padapter->in_cta_test) {
  5123. u32 v = rtw_read32(padapter, REG_RCR);
  5124. v &= ~(RCR_CBSSID_DATA | RCR_CBSSID_BCN); /* | RCR_ADF */
  5125. rtw_write32(padapter, REG_RCR, v);
  5126. RTW_INFO("enable RCR_ADF\n");
  5127. } else {
  5128. u32 v = rtw_read32(padapter, REG_RCR);
  5129. v |= RCR_CBSSID_DATA | RCR_CBSSID_BCN ;/* | RCR_ADF */
  5130. rtw_write32(padapter, REG_RCR, v);
  5131. RTW_INFO("disable RCR_ADF\n");
  5132. }
  5133. return ret;
  5134. }
  5135. extern int rtw_change_ifname(_adapter *padapter, const char *ifname);
  5136. static int rtw_rereg_nd_name(struct net_device *dev,
  5137. struct iw_request_info *info,
  5138. union iwreq_data *wrqu, char *extra)
  5139. {
  5140. int ret = 0;
  5141. _adapter *padapter = rtw_netdev_priv(dev);
  5142. struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
  5143. struct rereg_nd_name_data *rereg_priv = &padapter->rereg_nd_name_priv;
  5144. char new_ifname[IFNAMSIZ];
  5145. if (rereg_priv->old_ifname[0] == 0) {
  5146. char *reg_ifname;
  5147. #ifdef CONFIG_CONCURRENT_MODE
  5148. if (padapter->isprimary)
  5149. reg_ifname = padapter->registrypriv.ifname;
  5150. else
  5151. #endif
  5152. reg_ifname = padapter->registrypriv.if2name;
  5153. strncpy(rereg_priv->old_ifname, reg_ifname, IFNAMSIZ);
  5154. rereg_priv->old_ifname[IFNAMSIZ - 1] = 0;
  5155. }
  5156. /* RTW_INFO("%s wrqu->data.length:%d\n", __FUNCTION__, wrqu->data.length); */
  5157. if (wrqu->data.length > IFNAMSIZ)
  5158. return -EFAULT;
  5159. if (copy_from_user(new_ifname, wrqu->data.pointer, IFNAMSIZ))
  5160. return -EFAULT;
  5161. if (0 == strcmp(rereg_priv->old_ifname, new_ifname))
  5162. return ret;
  5163. RTW_INFO("%s new_ifname:%s\n", __FUNCTION__, new_ifname);
  5164. rtw_set_rtnl_lock_holder(dvobj, current);
  5165. ret = rtw_change_ifname(padapter, new_ifname);
  5166. rtw_set_rtnl_lock_holder(dvobj, NULL);
  5167. if (0 != ret)
  5168. goto exit;
  5169. if (_rtw_memcmp(rereg_priv->old_ifname, "disable%d", 9) == _TRUE) {
  5170. padapter->ledpriv.bRegUseLed = rereg_priv->old_bRegUseLed;
  5171. rtw_hal_sw_led_init(padapter);
  5172. /* rtw_ips_mode_req(&padapter->pwrctrlpriv, rereg_priv->old_ips_mode); */
  5173. }
  5174. strncpy(rereg_priv->old_ifname, new_ifname, IFNAMSIZ);
  5175. rereg_priv->old_ifname[IFNAMSIZ - 1] = 0;
  5176. if (_rtw_memcmp(new_ifname, "disable%d", 9) == _TRUE) {
  5177. RTW_INFO("%s disable\n", __FUNCTION__);
  5178. /* free network queue for Android's timming issue */
  5179. rtw_free_network_queue(padapter, _TRUE);
  5180. /* close led */
  5181. rtw_led_control(padapter, LED_CTL_POWER_OFF);
  5182. rereg_priv->old_bRegUseLed = padapter->ledpriv.bRegUseLed;
  5183. padapter->ledpriv.bRegUseLed = _FALSE;
  5184. rtw_hal_sw_led_deinit(padapter);
  5185. /* the interface is being "disabled", we can do deeper IPS */
  5186. /* rereg_priv->old_ips_mode = rtw_get_ips_mode_req(&padapter->pwrctrlpriv); */
  5187. /* rtw_ips_mode_req(&padapter->pwrctrlpriv, IPS_NORMAL); */
  5188. }
  5189. exit:
  5190. return ret;
  5191. }
  5192. #ifdef CONFIG_IOL
  5193. #include <rtw_iol.h>
  5194. #endif
  5195. #ifdef DBG_CMD_QUEUE
  5196. u8 dump_cmd_id = 0;
  5197. #endif
  5198. /*
  5199. #ifdef DBG_DUMP_TSF_BY_PORT
  5200. extern void get_tsf_by_port(_adapter *adapter, u8 *tsftr, u8 hw_port);
  5201. #endif
  5202. */
  5203. static int rtw_dbg_port(struct net_device *dev,
  5204. struct iw_request_info *info,
  5205. union iwreq_data *wrqu, char *extra)
  5206. {
  5207. _irqL irqL;
  5208. int ret = 0;
  5209. u8 major_cmd, minor_cmd;
  5210. u16 arg;
  5211. u32 extra_arg, *pdata, val32;
  5212. struct sta_info *psta;
  5213. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  5214. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  5215. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  5216. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  5217. struct security_priv *psecuritypriv = &padapter->securitypriv;
  5218. struct wlan_network *cur_network = &(pmlmepriv->cur_network);
  5219. struct sta_priv *pstapriv = &padapter->stapriv;
  5220. pdata = (u32 *)&wrqu->data;
  5221. val32 = *pdata;
  5222. arg = (u16)(val32 & 0x0000ffff);
  5223. major_cmd = (u8)(val32 >> 24);
  5224. minor_cmd = (u8)((val32 >> 16) & 0x00ff);
  5225. extra_arg = *(pdata + 1);
  5226. switch (major_cmd) {
  5227. case 0x70: /* read_reg */
  5228. switch (minor_cmd) {
  5229. case 1:
  5230. RTW_INFO("rtw_read8(0x%x)=0x%02x\n", arg, rtw_read8(padapter, arg));
  5231. break;
  5232. case 2:
  5233. RTW_INFO("rtw_read16(0x%x)=0x%04x\n", arg, rtw_read16(padapter, arg));
  5234. break;
  5235. case 4:
  5236. RTW_INFO("rtw_read32(0x%x)=0x%08x\n", arg, rtw_read32(padapter, arg));
  5237. break;
  5238. }
  5239. break;
  5240. case 0x71: /* write_reg */
  5241. switch (minor_cmd) {
  5242. case 1:
  5243. rtw_write8(padapter, arg, extra_arg);
  5244. RTW_INFO("rtw_write8(0x%x)=0x%02x\n", arg, rtw_read8(padapter, arg));
  5245. break;
  5246. case 2:
  5247. rtw_write16(padapter, arg, extra_arg);
  5248. RTW_INFO("rtw_write16(0x%x)=0x%04x\n", arg, rtw_read16(padapter, arg));
  5249. break;
  5250. case 4:
  5251. rtw_write32(padapter, arg, extra_arg);
  5252. RTW_INFO("rtw_write32(0x%x)=0x%08x\n", arg, rtw_read32(padapter, arg));
  5253. break;
  5254. }
  5255. break;
  5256. case 0x72: /* read_bb */
  5257. RTW_INFO("read_bbreg(0x%x)=0x%x\n", arg, rtw_hal_read_bbreg(padapter, arg, 0xffffffff));
  5258. break;
  5259. case 0x73: /* write_bb */
  5260. rtw_hal_write_bbreg(padapter, arg, 0xffffffff, extra_arg);
  5261. RTW_INFO("write_bbreg(0x%x)=0x%x\n", arg, rtw_hal_read_bbreg(padapter, arg, 0xffffffff));
  5262. break;
  5263. case 0x74: /* read_rf */
  5264. RTW_INFO("read RF_reg path(0x%02x),offset(0x%x),value(0x%08x)\n", minor_cmd, arg, rtw_hal_read_rfreg(padapter, minor_cmd, arg, 0xffffffff));
  5265. break;
  5266. case 0x75: /* write_rf */
  5267. rtw_hal_write_rfreg(padapter, minor_cmd, arg, 0xffffffff, extra_arg);
  5268. RTW_INFO("write RF_reg path(0x%02x),offset(0x%x),value(0x%08x)\n", minor_cmd, arg, rtw_hal_read_rfreg(padapter, minor_cmd, arg, 0xffffffff));
  5269. break;
  5270. case 0x76:
  5271. switch (minor_cmd) {
  5272. case 0x00: /* normal mode, */
  5273. padapter->recvpriv.is_signal_dbg = 0;
  5274. break;
  5275. case 0x01: /* dbg mode */
  5276. padapter->recvpriv.is_signal_dbg = 1;
  5277. extra_arg = extra_arg > 100 ? 100 : extra_arg;
  5278. padapter->recvpriv.signal_strength_dbg = extra_arg;
  5279. break;
  5280. }
  5281. break;
  5282. case 0x78: /* IOL test */
  5283. switch (minor_cmd) {
  5284. #ifdef CONFIG_IOL
  5285. case 0x04: { /* LLT table initialization test */
  5286. u8 page_boundary = 0xf9;
  5287. {
  5288. struct xmit_frame *xmit_frame;
  5289. xmit_frame = rtw_IOL_accquire_xmit_frame(padapter);
  5290. if (xmit_frame == NULL) {
  5291. ret = -ENOMEM;
  5292. break;
  5293. }
  5294. rtw_IOL_append_LLT_cmd(xmit_frame, page_boundary);
  5295. if (_SUCCESS != rtw_IOL_exec_cmds_sync(padapter, xmit_frame, 500, 0))
  5296. ret = -EPERM;
  5297. }
  5298. }
  5299. break;
  5300. case 0x05: { /* blink LED test */
  5301. u16 reg = 0x4c;
  5302. u32 blink_num = 50;
  5303. u32 blink_delay_ms = 200;
  5304. int i;
  5305. {
  5306. struct xmit_frame *xmit_frame;
  5307. xmit_frame = rtw_IOL_accquire_xmit_frame(padapter);
  5308. if (xmit_frame == NULL) {
  5309. ret = -ENOMEM;
  5310. break;
  5311. }
  5312. for (i = 0; i < blink_num; i++) {
  5313. #ifdef CONFIG_IOL_NEW_GENERATION
  5314. rtw_IOL_append_WB_cmd(xmit_frame, reg, 0x00, 0xff);
  5315. rtw_IOL_append_DELAY_MS_cmd(xmit_frame, blink_delay_ms);
  5316. rtw_IOL_append_WB_cmd(xmit_frame, reg, 0x08, 0xff);
  5317. rtw_IOL_append_DELAY_MS_cmd(xmit_frame, blink_delay_ms);
  5318. #else
  5319. rtw_IOL_append_WB_cmd(xmit_frame, reg, 0x00);
  5320. rtw_IOL_append_DELAY_MS_cmd(xmit_frame, blink_delay_ms);
  5321. rtw_IOL_append_WB_cmd(xmit_frame, reg, 0x08);
  5322. rtw_IOL_append_DELAY_MS_cmd(xmit_frame, blink_delay_ms);
  5323. #endif
  5324. }
  5325. if (_SUCCESS != rtw_IOL_exec_cmds_sync(padapter, xmit_frame, (blink_delay_ms * blink_num * 2) + 200, 0))
  5326. ret = -EPERM;
  5327. }
  5328. }
  5329. break;
  5330. case 0x06: { /* continuous wirte byte test */
  5331. u16 reg = arg;
  5332. u16 start_value = 0;
  5333. u32 write_num = extra_arg;
  5334. int i;
  5335. u8 final;
  5336. {
  5337. struct xmit_frame *xmit_frame;
  5338. xmit_frame = rtw_IOL_accquire_xmit_frame(padapter);
  5339. if (xmit_frame == NULL) {
  5340. ret = -ENOMEM;
  5341. break;
  5342. }
  5343. for (i = 0; i < write_num; i++) {
  5344. #ifdef CONFIG_IOL_NEW_GENERATION
  5345. rtw_IOL_append_WB_cmd(xmit_frame, reg, i + start_value, 0xFF);
  5346. #else
  5347. rtw_IOL_append_WB_cmd(xmit_frame, reg, i + start_value);
  5348. #endif
  5349. }
  5350. if (_SUCCESS != rtw_IOL_exec_cmds_sync(padapter, xmit_frame, 5000, 0))
  5351. ret = -EPERM;
  5352. }
  5353. final = rtw_read8(padapter, reg);
  5354. if (start_value + write_num - 1 == final)
  5355. RTW_INFO("continuous IOL_CMD_WB_REG to 0x%x %u times Success, start:%u, final:%u\n", reg, write_num, start_value, final);
  5356. else
  5357. RTW_INFO("continuous IOL_CMD_WB_REG to 0x%x %u times Fail, start:%u, final:%u\n", reg, write_num, start_value, final);
  5358. }
  5359. break;
  5360. case 0x07: { /* continuous wirte word test */
  5361. u16 reg = arg;
  5362. u16 start_value = 200;
  5363. u32 write_num = extra_arg;
  5364. int i;
  5365. u16 final;
  5366. {
  5367. struct xmit_frame *xmit_frame;
  5368. xmit_frame = rtw_IOL_accquire_xmit_frame(padapter);
  5369. if (xmit_frame == NULL) {
  5370. ret = -ENOMEM;
  5371. break;
  5372. }
  5373. for (i = 0; i < write_num; i++) {
  5374. #ifdef CONFIG_IOL_NEW_GENERATION
  5375. rtw_IOL_append_WW_cmd(xmit_frame, reg, i + start_value, 0xFFFF);
  5376. #else
  5377. rtw_IOL_append_WW_cmd(xmit_frame, reg, i + start_value);
  5378. #endif
  5379. }
  5380. if (_SUCCESS != rtw_IOL_exec_cmds_sync(padapter, xmit_frame, 5000, 0))
  5381. ret = -EPERM;
  5382. }
  5383. final = rtw_read16(padapter, reg);
  5384. if (start_value + write_num - 1 == final)
  5385. RTW_INFO("continuous IOL_CMD_WW_REG to 0x%x %u times Success, start:%u, final:%u\n", reg, write_num, start_value, final);
  5386. else
  5387. RTW_INFO("continuous IOL_CMD_WW_REG to 0x%x %u times Fail, start:%u, final:%u\n", reg, write_num, start_value, final);
  5388. }
  5389. break;
  5390. case 0x08: { /* continuous wirte dword test */
  5391. u16 reg = arg;
  5392. u32 start_value = 0x110000c7;
  5393. u32 write_num = extra_arg;
  5394. int i;
  5395. u32 final;
  5396. {
  5397. struct xmit_frame *xmit_frame;
  5398. xmit_frame = rtw_IOL_accquire_xmit_frame(padapter);
  5399. if (xmit_frame == NULL) {
  5400. ret = -ENOMEM;
  5401. break;
  5402. }
  5403. for (i = 0; i < write_num; i++) {
  5404. #ifdef CONFIG_IOL_NEW_GENERATION
  5405. rtw_IOL_append_WD_cmd(xmit_frame, reg, i + start_value, 0xFFFFFFFF);
  5406. #else
  5407. rtw_IOL_append_WD_cmd(xmit_frame, reg, i + start_value);
  5408. #endif
  5409. }
  5410. if (_SUCCESS != rtw_IOL_exec_cmds_sync(padapter, xmit_frame, 5000, 0))
  5411. ret = -EPERM;
  5412. }
  5413. final = rtw_read32(padapter, reg);
  5414. if (start_value + write_num - 1 == final)
  5415. RTW_INFO("continuous IOL_CMD_WD_REG to 0x%x %u times Success, start:%u, final:%u\n", reg, write_num, start_value, final);
  5416. else
  5417. RTW_INFO("continuous IOL_CMD_WD_REG to 0x%x %u times Fail, start:%u, final:%u\n", reg, write_num, start_value, final);
  5418. }
  5419. break;
  5420. #endif /* CONFIG_IOL */
  5421. }
  5422. break;
  5423. case 0x79: {
  5424. /*
  5425. * dbg 0x79000000 [value], set RESP_TXAGC to + value, value:0~15
  5426. * dbg 0x79010000 [value], set RESP_TXAGC to - value, value:0~15
  5427. */
  5428. u8 value = extra_arg & 0x0f;
  5429. u8 sign = minor_cmd;
  5430. u16 write_value = 0;
  5431. RTW_INFO("%s set RESP_TXAGC to %s %u\n", __func__, sign ? "minus" : "plus", value);
  5432. if (sign)
  5433. value = value | 0x10;
  5434. write_value = value | (value << 5);
  5435. rtw_write16(padapter, 0x6d9, write_value);
  5436. }
  5437. break;
  5438. case 0x7a:
  5439. receive_disconnect(padapter, pmlmeinfo->network.MacAddress
  5440. , WLAN_REASON_EXPIRATION_CHK, _FALSE);
  5441. break;
  5442. case 0x7F:
  5443. switch (minor_cmd) {
  5444. case 0x0:
  5445. RTW_INFO("fwstate=0x%x\n", get_fwstate(pmlmepriv));
  5446. break;
  5447. case 0x01:
  5448. RTW_INFO("auth_alg=0x%x, enc_alg=0x%x, auth_type=0x%x, enc_type=0x%x\n",
  5449. psecuritypriv->dot11AuthAlgrthm, psecuritypriv->dot11PrivacyAlgrthm,
  5450. psecuritypriv->ndisauthtype, psecuritypriv->ndisencryptstatus);
  5451. break;
  5452. case 0x02:
  5453. RTW_INFO("pmlmeinfo->state=0x%x\n", pmlmeinfo->state);
  5454. RTW_INFO("DrvBcnEarly=%d\n", pmlmeext->DrvBcnEarly);
  5455. RTW_INFO("DrvBcnTimeOut=%d\n", pmlmeext->DrvBcnTimeOut);
  5456. break;
  5457. case 0x03:
  5458. RTW_INFO("qos_option=%d\n", pmlmepriv->qospriv.qos_option);
  5459. #ifdef CONFIG_80211N_HT
  5460. RTW_INFO("ht_option=%d\n", pmlmepriv->htpriv.ht_option);
  5461. #endif /* CONFIG_80211N_HT */
  5462. break;
  5463. case 0x04:
  5464. RTW_INFO("cur_ch=%d\n", pmlmeext->cur_channel);
  5465. RTW_INFO("cur_bw=%d\n", pmlmeext->cur_bwmode);
  5466. RTW_INFO("cur_ch_off=%d\n", pmlmeext->cur_ch_offset);
  5467. RTW_INFO("oper_ch=%d\n", rtw_get_oper_ch(padapter));
  5468. RTW_INFO("oper_bw=%d\n", rtw_get_oper_bw(padapter));
  5469. RTW_INFO("oper_ch_offet=%d\n", rtw_get_oper_choffset(padapter));
  5470. break;
  5471. case 0x05:
  5472. psta = rtw_get_stainfo(pstapriv, cur_network->network.MacAddress);
  5473. if (psta) {
  5474. RTW_INFO("SSID=%s\n", cur_network->network.Ssid.Ssid);
  5475. RTW_INFO("sta's macaddr:" MAC_FMT "\n", MAC_ARG(psta->hwaddr));
  5476. RTW_INFO("cur_channel=%d, cur_bwmode=%d, cur_ch_offset=%d\n", pmlmeext->cur_channel, pmlmeext->cur_bwmode, pmlmeext->cur_ch_offset);
  5477. RTW_INFO("rtsen=%d, cts2slef=%d\n", psta->rtsen, psta->cts2self);
  5478. RTW_INFO("state=0x%x, aid=%d, macid=%d, raid=%d\n", psta->state, psta->aid, psta->mac_id, psta->raid);
  5479. #ifdef CONFIG_80211N_HT
  5480. RTW_INFO("qos_en=%d, ht_en=%d, init_rate=%d\n", psta->qos_option, psta->htpriv.ht_option, psta->init_rate);
  5481. RTW_INFO("bwmode=%d, ch_offset=%d, sgi_20m=%d,sgi_40m=%d\n", psta->bw_mode, psta->htpriv.ch_offset, psta->htpriv.sgi_20m, psta->htpriv.sgi_40m);
  5482. RTW_INFO("ampdu_enable = %d\n", psta->htpriv.ampdu_enable);
  5483. RTW_INFO("agg_enable_bitmap=%x, candidate_tid_bitmap=%x\n", psta->htpriv.agg_enable_bitmap, psta->htpriv.candidate_tid_bitmap);
  5484. #endif /* CONFIG_80211N_HT */
  5485. sta_rx_reorder_ctl_dump(RTW_DBGDUMP, psta);
  5486. } else
  5487. RTW_INFO("can't get sta's macaddr, cur_network's macaddr:" MAC_FMT "\n", MAC_ARG(cur_network->network.MacAddress));
  5488. break;
  5489. case 0x06: {
  5490. #ifdef DBG_DUMP_TSF_BY_PORT
  5491. u64 tsf = 0;
  5492. get_tsf_by_port(padapter, (u8 *)&tsf, extra_arg);
  5493. RTW_INFO(" PORT-%d TSF :%lld\n", extra_arg, tsf);
  5494. #endif
  5495. }
  5496. break;
  5497. case 0x07:
  5498. RTW_INFO("bSurpriseRemoved=%s, bDriverStopped=%s\n"
  5499. , rtw_is_surprise_removed(padapter) ? "True" : "False"
  5500. , rtw_is_drv_stopped(padapter) ? "True" : "False");
  5501. break;
  5502. case 0x08: {
  5503. struct xmit_priv *pxmitpriv = &padapter->xmitpriv;
  5504. struct recv_priv *precvpriv = &padapter->recvpriv;
  5505. RTW_INFO("free_xmitbuf_cnt=%d, free_xmitframe_cnt=%d"
  5506. ", free_xmit_extbuf_cnt=%d, free_xframe_ext_cnt=%d"
  5507. ", free_recvframe_cnt=%d\n",
  5508. pxmitpriv->free_xmitbuf_cnt, pxmitpriv->free_xmitframe_cnt,
  5509. pxmitpriv->free_xmit_extbuf_cnt, pxmitpriv->free_xframe_ext_cnt,
  5510. precvpriv->free_recvframe_cnt);
  5511. #ifdef CONFIG_USB_HCI
  5512. RTW_INFO("rx_urb_pending_cn=%d\n", ATOMIC_READ(&(precvpriv->rx_pending_cnt)));
  5513. #endif
  5514. }
  5515. break;
  5516. case 0x09: {
  5517. int i;
  5518. _list *plist, *phead;
  5519. #ifdef CONFIG_AP_MODE
  5520. RTW_INFO("sta_dz_bitmap=0x%x, tim_bitmap=0x%x\n", pstapriv->sta_dz_bitmap, pstapriv->tim_bitmap);
  5521. #endif
  5522. _enter_critical_bh(&pstapriv->sta_hash_lock, &irqL);
  5523. for (i = 0; i < NUM_STA; i++) {
  5524. phead = &(pstapriv->sta_hash[i]);
  5525. plist = get_next(phead);
  5526. while ((rtw_end_of_queue_search(phead, plist)) == _FALSE) {
  5527. psta = LIST_CONTAINOR(plist, struct sta_info, hash_list);
  5528. plist = get_next(plist);
  5529. if (extra_arg == psta->aid) {
  5530. RTW_INFO("sta's macaddr:" MAC_FMT "\n", MAC_ARG(psta->hwaddr));
  5531. RTW_INFO("rtsen=%d, cts2slef=%d\n", psta->rtsen, psta->cts2self);
  5532. RTW_INFO("state=0x%x, aid=%d, macid=%d, raid=%d\n", psta->state, psta->aid, psta->mac_id, psta->raid);
  5533. #ifdef CONFIG_80211N_HT
  5534. RTW_INFO("qos_en=%d, ht_en=%d, init_rate=%d\n", psta->qos_option, psta->htpriv.ht_option, psta->init_rate);
  5535. RTW_INFO("bwmode=%d, ch_offset=%d, sgi_20m=%d,sgi_40m=%d\n", psta->bw_mode, psta->htpriv.ch_offset, psta->htpriv.sgi_20m,
  5536. psta->htpriv.sgi_40m);
  5537. RTW_INFO("ampdu_enable = %d\n", psta->htpriv.ampdu_enable);
  5538. RTW_INFO("agg_enable_bitmap=%x, candidate_tid_bitmap=%x\n", psta->htpriv.agg_enable_bitmap, psta->htpriv.candidate_tid_bitmap);
  5539. #endif /* CONFIG_80211N_HT */
  5540. #ifdef CONFIG_AP_MODE
  5541. RTW_INFO("capability=0x%x\n", psta->capability);
  5542. RTW_INFO("flags=0x%x\n", psta->flags);
  5543. RTW_INFO("wpa_psk=0x%x\n", psta->wpa_psk);
  5544. RTW_INFO("wpa2_group_cipher=0x%x\n", psta->wpa2_group_cipher);
  5545. RTW_INFO("wpa2_pairwise_cipher=0x%x\n", psta->wpa2_pairwise_cipher);
  5546. RTW_INFO("qos_info=0x%x\n", psta->qos_info);
  5547. #endif
  5548. RTW_INFO("dot118021XPrivacy=0x%x\n", psta->dot118021XPrivacy);
  5549. sta_rx_reorder_ctl_dump(RTW_DBGDUMP, psta);
  5550. }
  5551. }
  5552. }
  5553. _exit_critical_bh(&pstapriv->sta_hash_lock, &irqL);
  5554. }
  5555. break;
  5556. case 0x0b: { /* Enable=1, Disable=0 driver control vrtl_carrier_sense. */
  5557. /* u8 driver_vcs_en; */ /* Enable=1, Disable=0 driver control vrtl_carrier_sense. */
  5558. /* u8 driver_vcs_type; */ /* force 0:disable VCS, 1:RTS-CTS, 2:CTS-to-self when vcs_en=1. */
  5559. if (arg == 0) {
  5560. RTW_INFO("disable driver ctrl vcs\n");
  5561. padapter->driver_vcs_en = 0;
  5562. } else if (arg == 1) {
  5563. RTW_INFO("enable driver ctrl vcs = %d\n", extra_arg);
  5564. padapter->driver_vcs_en = 1;
  5565. if (extra_arg > 2)
  5566. padapter->driver_vcs_type = 1;
  5567. else
  5568. padapter->driver_vcs_type = extra_arg;
  5569. }
  5570. }
  5571. break;
  5572. case 0x0c: { /* dump rx/tx packet */
  5573. if (arg == 0) {
  5574. RTW_INFO("dump rx packet (%d)\n", extra_arg);
  5575. /* pHalData->bDumpRxPkt =extra_arg; */
  5576. rtw_hal_set_def_var(padapter, HAL_DEF_DBG_DUMP_RXPKT, &(extra_arg));
  5577. } else if (arg == 1) {
  5578. RTW_INFO("dump tx packet (%d)\n", extra_arg);
  5579. rtw_hal_set_def_var(padapter, HAL_DEF_DBG_DUMP_TXPKT, &(extra_arg));
  5580. }
  5581. }
  5582. break;
  5583. case 0x0e: {
  5584. if (arg == 0) {
  5585. RTW_INFO("disable driver ctrl rx_ampdu_factor\n");
  5586. padapter->driver_rx_ampdu_factor = 0xFF;
  5587. } else if (arg == 1) {
  5588. RTW_INFO("enable driver ctrl rx_ampdu_factor = %d\n", extra_arg);
  5589. if (extra_arg > 0x03)
  5590. padapter->driver_rx_ampdu_factor = 0xFF;
  5591. else
  5592. padapter->driver_rx_ampdu_factor = extra_arg;
  5593. }
  5594. }
  5595. break;
  5596. #ifdef DBG_CONFIG_ERROR_DETECT
  5597. case 0x0f: {
  5598. if (extra_arg == 0) {
  5599. RTW_INFO("###### silent reset test.......#####\n");
  5600. rtw_hal_sreset_reset(padapter);
  5601. } else {
  5602. HAL_DATA_TYPE *pHalData = GET_HAL_DATA(padapter);
  5603. struct sreset_priv *psrtpriv = &pHalData->srestpriv;
  5604. psrtpriv->dbg_trigger_point = extra_arg;
  5605. }
  5606. }
  5607. break;
  5608. case 0x15: {
  5609. struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(padapter);
  5610. RTW_INFO("==>silent resete cnts:%d\n", pwrpriv->ips_enter_cnts);
  5611. }
  5612. break;
  5613. #endif
  5614. case 0x10: /* driver version display */
  5615. dump_drv_version(RTW_DBGDUMP);
  5616. break;
  5617. case 0x11: { /* dump linked status */
  5618. int pre_mode;
  5619. pre_mode = padapter->bLinkInfoDump;
  5620. /* linked_info_dump(padapter,extra_arg); */
  5621. if (extra_arg == 1 || (extra_arg == 0 && pre_mode == 1)) /* not consider pwr_saving 0: */
  5622. padapter->bLinkInfoDump = extra_arg;
  5623. else if ((extra_arg == 2) || (extra_arg == 0 && pre_mode == 2)) { /* consider power_saving */
  5624. /* RTW_INFO("linked_info_dump =%s\n", (padapter->bLinkInfoDump)?"enable":"disable") */
  5625. linked_info_dump(padapter, extra_arg);
  5626. }
  5627. }
  5628. break;
  5629. #ifdef CONFIG_80211N_HT
  5630. case 0x12: { /* set rx_stbc */
  5631. struct registry_priv *pregpriv = &padapter->registrypriv;
  5632. /* 0: disable, bit(0):enable 2.4g, bit(1):enable 5g, 0x3: enable both 2.4g and 5g */
  5633. /* default is set to enable 2.4GHZ for IOT issue with bufflao's AP at 5GHZ */
  5634. if (pregpriv && (extra_arg == 0 || extra_arg == 1 || extra_arg == 2 || extra_arg == 3)) {
  5635. pregpriv->rx_stbc = extra_arg;
  5636. RTW_INFO("set rx_stbc=%d\n", pregpriv->rx_stbc);
  5637. } else
  5638. RTW_INFO("get rx_stbc=%d\n", pregpriv->rx_stbc);
  5639. }
  5640. break;
  5641. case 0x13: { /* set ampdu_enable */
  5642. struct registry_priv *pregpriv = &padapter->registrypriv;
  5643. /* 0: disable, 0x1:enable */
  5644. if (pregpriv && extra_arg < 2) {
  5645. pregpriv->ampdu_enable = extra_arg;
  5646. RTW_INFO("set ampdu_enable=%d\n", pregpriv->ampdu_enable);
  5647. } else
  5648. RTW_INFO("get ampdu_enable=%d\n", pregpriv->ampdu_enable);
  5649. }
  5650. break;
  5651. #endif
  5652. case 0x14: { /* get wifi_spec */
  5653. struct registry_priv *pregpriv = &padapter->registrypriv;
  5654. RTW_INFO("get wifi_spec=%d\n", pregpriv->wifi_spec);
  5655. }
  5656. break;
  5657. #ifdef DBG_FIXED_CHAN
  5658. case 0x17: {
  5659. struct mlme_ext_priv *pmlmeext = &(padapter->mlmeextpriv);
  5660. printk("===> Fixed channel to %d\n", extra_arg);
  5661. pmlmeext->fixed_chan = extra_arg;
  5662. }
  5663. break;
  5664. #endif
  5665. #ifdef CONFIG_80211N_HT
  5666. case 0x19: {
  5667. struct registry_priv *pregistrypriv = &padapter->registrypriv;
  5668. /* extra_arg : */
  5669. /* BIT0: Enable VHT LDPC Rx, BIT1: Enable VHT LDPC Tx, */
  5670. /* BIT4: Enable HT LDPC Rx, BIT5: Enable HT LDPC Tx */
  5671. if (arg == 0) {
  5672. RTW_INFO("driver disable LDPC\n");
  5673. pregistrypriv->ldpc_cap = 0x00;
  5674. } else if (arg == 1) {
  5675. RTW_INFO("driver set LDPC cap = 0x%x\n", extra_arg);
  5676. pregistrypriv->ldpc_cap = (u8)(extra_arg & 0x33);
  5677. }
  5678. }
  5679. break;
  5680. case 0x1a: {
  5681. struct registry_priv *pregistrypriv = &padapter->registrypriv;
  5682. /* extra_arg : */
  5683. /* BIT0: Enable VHT STBC Rx, BIT1: Enable VHT STBC Tx, */
  5684. /* BIT4: Enable HT STBC Rx, BIT5: Enable HT STBC Tx */
  5685. if (arg == 0) {
  5686. RTW_INFO("driver disable STBC\n");
  5687. pregistrypriv->stbc_cap = 0x00;
  5688. } else if (arg == 1) {
  5689. RTW_INFO("driver set STBC cap = 0x%x\n", extra_arg);
  5690. pregistrypriv->stbc_cap = (u8)(extra_arg & 0x33);
  5691. }
  5692. }
  5693. break;
  5694. #endif /* CONFIG_80211N_HT */
  5695. case 0x1b: {
  5696. struct registry_priv *pregistrypriv = &padapter->registrypriv;
  5697. if (arg == 0) {
  5698. RTW_INFO("disable driver ctrl max_rx_rate, reset to default_rate_set\n");
  5699. init_mlme_default_rate_set(padapter);
  5700. #ifdef CONFIG_80211N_HT
  5701. pregistrypriv->ht_enable = (u8)rtw_ht_enable;
  5702. #endif /* CONFIG_80211N_HT */
  5703. } else if (arg == 1) {
  5704. int i;
  5705. u8 max_rx_rate;
  5706. RTW_INFO("enable driver ctrl max_rx_rate = 0x%x\n", extra_arg);
  5707. max_rx_rate = (u8)extra_arg;
  5708. if (max_rx_rate < 0xc) { /* max_rx_rate < MSC0->B or G -> disable HT */
  5709. #ifdef CONFIG_80211N_HT
  5710. pregistrypriv->ht_enable = 0;
  5711. #endif /* CONFIG_80211N_HT */
  5712. for (i = 0; i < NumRates; i++) {
  5713. if (pmlmeext->datarate[i] > max_rx_rate)
  5714. pmlmeext->datarate[i] = 0xff;
  5715. }
  5716. }
  5717. #ifdef CONFIG_80211N_HT
  5718. else if (max_rx_rate < 0x1c) { /* mcs0~mcs15 */
  5719. u32 mcs_bitmap = 0x0;
  5720. for (i = 0; i < ((max_rx_rate + 1) - 0xc); i++)
  5721. mcs_bitmap |= BIT(i);
  5722. set_mcs_rate_by_mask(pmlmeext->default_supported_mcs_set, mcs_bitmap);
  5723. }
  5724. #endif /* CONFIG_80211N_HT */
  5725. }
  5726. }
  5727. break;
  5728. case 0x1c: { /* enable/disable driver control AMPDU Density for peer sta's rx */
  5729. if (arg == 0) {
  5730. RTW_INFO("disable driver ctrl ampdu density\n");
  5731. padapter->driver_ampdu_spacing = 0xFF;
  5732. } else if (arg == 1) {
  5733. RTW_INFO("enable driver ctrl ampdu density = %d\n", extra_arg);
  5734. if (extra_arg > 0x07)
  5735. padapter->driver_ampdu_spacing = 0xFF;
  5736. else
  5737. padapter->driver_ampdu_spacing = extra_arg;
  5738. }
  5739. }
  5740. break;
  5741. #ifdef CONFIG_BACKGROUND_NOISE_MONITOR
  5742. case 0x1e: {
  5743. HAL_DATA_TYPE *pHalData = GET_HAL_DATA(padapter);
  5744. struct PHY_DM_STRUCT *pDM_Odm = &pHalData->odmpriv;
  5745. u8 chan = rtw_get_oper_ch(padapter);
  5746. RTW_INFO("===========================================\n");
  5747. odm_inband_noise_monitor(pDM_Odm, _TRUE, 0x1e, 100);
  5748. RTW_INFO("channel(%d),noise_a = %d, noise_b = %d , noise_all:%d\n",
  5749. chan, pDM_Odm->noise_level.noise[ODM_RF_PATH_A],
  5750. pDM_Odm->noise_level.noise[ODM_RF_PATH_B],
  5751. pDM_Odm->noise_level.noise_all);
  5752. RTW_INFO("===========================================\n");
  5753. }
  5754. break;
  5755. #endif
  5756. #if defined(CONFIG_SDIO_HCI) && defined(CONFIG_SDIO_INDIRECT_ACCESS) && defined(DBG_SDIO_INDIRECT_ACCESS)
  5757. case 0x1f:
  5758. {
  5759. int i, j = 0, test_cnts = 0;
  5760. static u8 test_code = 0x5A;
  5761. static u32 data_misatch_cnt = 0, d_acc_err_cnt = 0;
  5762. u32 d_data, i_data;
  5763. u32 imr;
  5764. test_cnts = extra_arg;
  5765. for (i = 0; i < test_cnts; i++) {
  5766. if (RTW_CANNOT_IO(padapter))
  5767. break;
  5768. rtw_write8(padapter, 0x07, test_code);
  5769. d_data = rtw_read32(padapter, 0x04);
  5770. imr = rtw_read32(padapter, 0x10250014);
  5771. rtw_write32(padapter, 0x10250014, 0);
  5772. rtw_msleep_os(50);
  5773. i_data = rtw_sd_iread32(padapter, 0x04);
  5774. rtw_write32(padapter, 0x10250014, imr);
  5775. if (d_data != i_data) {
  5776. data_misatch_cnt++;
  5777. RTW_ERR("d_data :0x%08x, i_data : 0x%08x\n", d_data, i_data);
  5778. }
  5779. if (test_code != (i_data >> 24)) {
  5780. d_acc_err_cnt++;
  5781. rtw_write8(padapter, 0x07, 0xAA);
  5782. RTW_ERR("test_code :0x%02x, i_data : 0x%08x\n", test_code, i_data);
  5783. }
  5784. if ((j++) == 100) {
  5785. rtw_msleep_os(2000);
  5786. RTW_INFO(" Indirect access testing..........%d/%d\n", i, test_cnts);
  5787. j = 0;
  5788. }
  5789. test_code = ~test_code;
  5790. rtw_msleep_os(50);
  5791. }
  5792. RTW_INFO("========Indirect access test=========\n");
  5793. RTW_INFO(" test_cnts = %d\n", test_cnts);
  5794. RTW_INFO(" direct & indirect read32 data missatch cnts = %d\n", data_misatch_cnt);
  5795. RTW_INFO(" indirect rdata is not equal to wdata cnts = %d\n", d_acc_err_cnt);
  5796. RTW_INFO("========Indirect access test=========\n\n");
  5797. data_misatch_cnt = d_acc_err_cnt = 0;
  5798. }
  5799. break;
  5800. #endif
  5801. case 0x20:
  5802. {
  5803. if (arg == 0xAA) {
  5804. u8 page_offset, page_num;
  5805. u32 page_size = 0;
  5806. u8 *buffer = NULL;
  5807. u32 buf_size = 0;
  5808. page_offset = (u8)(extra_arg >> 16);
  5809. page_num = (u8)(extra_arg & 0xFF);
  5810. rtw_dump_rsvd_page(RTW_DBGDUMP, padapter, page_offset, page_num);
  5811. }
  5812. #ifdef CONFIG_SUPPORT_FIFO_DUMP
  5813. else {
  5814. u8 fifo_sel;
  5815. u32 addr, size;
  5816. u8 *buffer = NULL;
  5817. fifo_sel = (u8)(arg & 0x0F);
  5818. addr = (extra_arg >> 16) & 0xFFFF;
  5819. size = extra_arg & 0xFFFF;
  5820. RTW_INFO("fifo_sel:%d, start_addr:0x%04x, size:%d\n", fifo_sel, addr, size);
  5821. if (size) {
  5822. size = RND4(size);
  5823. buffer = rtw_zvmalloc(size);
  5824. if (NULL == buffer)
  5825. size = 0;
  5826. }
  5827. rtw_halmac_dump_fifo(adapter_to_dvobj(padapter), fifo_sel, addr, size, buffer);
  5828. if (buffer)
  5829. rtw_vmfree(buffer, size);
  5830. }
  5831. #endif
  5832. }
  5833. break;
  5834. case 0x23: {
  5835. RTW_INFO("turn %s the bNotifyChannelChange Variable\n", (extra_arg == 1) ? "on" : "off");
  5836. padapter->bNotifyChannelChange = extra_arg;
  5837. break;
  5838. }
  5839. case 0x24: {
  5840. #ifdef CONFIG_P2P
  5841. RTW_INFO("turn %s the bShowGetP2PState Variable\n", (extra_arg == 1) ? "on" : "off");
  5842. padapter->bShowGetP2PState = extra_arg;
  5843. #endif /* CONFIG_P2P */
  5844. break;
  5845. }
  5846. #ifdef CONFIG_GPIO_API
  5847. case 0x25: { /* Get GPIO register */
  5848. /*
  5849. * dbg 0x7f250000 [gpio_num], Get gpio value, gpio_num:0~7
  5850. */
  5851. u8 value;
  5852. RTW_INFO("Read GPIO Value extra_arg = %d\n", extra_arg);
  5853. value = rtw_hal_get_gpio(padapter, extra_arg);
  5854. RTW_INFO("Read GPIO Value = %d\n", value);
  5855. break;
  5856. }
  5857. case 0x26: { /* Set GPIO direction */
  5858. /* dbg 0x7f26000x [y], Set gpio direction,
  5859. * x: gpio_num,4~7 y: indicate direction, 0~1
  5860. */
  5861. int value;
  5862. RTW_INFO("Set GPIO Direction! arg = %d ,extra_arg=%d\n", arg , extra_arg);
  5863. value = rtw_hal_config_gpio(padapter, arg, extra_arg);
  5864. RTW_INFO("Set GPIO Direction %s\n", (value == -1) ? "Fail!!!" : "Success");
  5865. break;
  5866. }
  5867. case 0x27: { /* Set GPIO output direction value */
  5868. /*
  5869. * dbg 0x7f27000x [y], Set gpio output direction value,
  5870. * x: gpio_num,4~7 y: indicate direction, 0~1
  5871. */
  5872. int value;
  5873. RTW_INFO("Set GPIO Value! arg = %d ,extra_arg=%d\n", arg , extra_arg);
  5874. value = rtw_hal_set_gpio_output_value(padapter, arg, extra_arg);
  5875. RTW_INFO("Set GPIO Value %s\n", (value == -1) ? "Fail!!!" : "Success");
  5876. break;
  5877. }
  5878. #endif
  5879. #ifdef DBG_CMD_QUEUE
  5880. case 0x28: {
  5881. dump_cmd_id = extra_arg;
  5882. RTW_INFO("dump_cmd_id:%d\n", dump_cmd_id);
  5883. }
  5884. break;
  5885. #endif /* DBG_CMD_QUEUE */
  5886. case 0xaa: {
  5887. if ((extra_arg & 0x7F) > 0x3F)
  5888. extra_arg = 0xFF;
  5889. RTW_INFO("chang data rate to :0x%02x\n", extra_arg);
  5890. padapter->fix_rate = extra_arg;
  5891. }
  5892. break;
  5893. case 0xdd: { /* registers dump , 0 for mac reg,1 for bb reg, 2 for rf reg */
  5894. if (extra_arg == 0)
  5895. mac_reg_dump(RTW_DBGDUMP, padapter);
  5896. else if (extra_arg == 1)
  5897. bb_reg_dump(RTW_DBGDUMP, padapter);
  5898. else if (extra_arg == 2)
  5899. rf_reg_dump(RTW_DBGDUMP, padapter);
  5900. else if (extra_arg == 11)
  5901. bb_reg_dump_ex(RTW_DBGDUMP, padapter);
  5902. }
  5903. break;
  5904. case 0xee: {
  5905. RTW_INFO(" === please control /proc to trun on/off PHYDM func ===\n");
  5906. }
  5907. break;
  5908. case 0xfd:
  5909. rtw_write8(padapter, 0xc50, arg);
  5910. RTW_INFO("wr(0xc50)=0x%x\n", rtw_read8(padapter, 0xc50));
  5911. rtw_write8(padapter, 0xc58, arg);
  5912. RTW_INFO("wr(0xc58)=0x%x\n", rtw_read8(padapter, 0xc58));
  5913. break;
  5914. case 0xfe:
  5915. RTW_INFO("rd(0xc50)=0x%x\n", rtw_read8(padapter, 0xc50));
  5916. RTW_INFO("rd(0xc58)=0x%x\n", rtw_read8(padapter, 0xc58));
  5917. break;
  5918. case 0xff: {
  5919. RTW_INFO("dbg(0x210)=0x%x\n", rtw_read32(padapter, 0x210));
  5920. RTW_INFO("dbg(0x608)=0x%x\n", rtw_read32(padapter, 0x608));
  5921. RTW_INFO("dbg(0x280)=0x%x\n", rtw_read32(padapter, 0x280));
  5922. RTW_INFO("dbg(0x284)=0x%x\n", rtw_read32(padapter, 0x284));
  5923. RTW_INFO("dbg(0x288)=0x%x\n", rtw_read32(padapter, 0x288));
  5924. RTW_INFO("dbg(0x664)=0x%x\n", rtw_read32(padapter, 0x664));
  5925. RTW_INFO("\n");
  5926. RTW_INFO("dbg(0x430)=0x%x\n", rtw_read32(padapter, 0x430));
  5927. RTW_INFO("dbg(0x438)=0x%x\n", rtw_read32(padapter, 0x438));
  5928. RTW_INFO("dbg(0x440)=0x%x\n", rtw_read32(padapter, 0x440));
  5929. RTW_INFO("dbg(0x458)=0x%x\n", rtw_read32(padapter, 0x458));
  5930. RTW_INFO("dbg(0x484)=0x%x\n", rtw_read32(padapter, 0x484));
  5931. RTW_INFO("dbg(0x488)=0x%x\n", rtw_read32(padapter, 0x488));
  5932. RTW_INFO("dbg(0x444)=0x%x\n", rtw_read32(padapter, 0x444));
  5933. RTW_INFO("dbg(0x448)=0x%x\n", rtw_read32(padapter, 0x448));
  5934. RTW_INFO("dbg(0x44c)=0x%x\n", rtw_read32(padapter, 0x44c));
  5935. RTW_INFO("dbg(0x450)=0x%x\n", rtw_read32(padapter, 0x450));
  5936. }
  5937. break;
  5938. }
  5939. break;
  5940. default:
  5941. RTW_INFO("error dbg cmd!\n");
  5942. break;
  5943. }
  5944. return ret;
  5945. }
  5946. static int wpa_set_param(struct net_device *dev, u8 name, u32 value)
  5947. {
  5948. uint ret = 0;
  5949. u32 flags;
  5950. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  5951. switch (name) {
  5952. case IEEE_PARAM_WPA_ENABLED:
  5953. padapter->securitypriv.dot11AuthAlgrthm = dot11AuthAlgrthm_8021X; /* 802.1x */
  5954. /* ret = ieee80211_wpa_enable(ieee, value); */
  5955. switch ((value) & 0xff) {
  5956. case 1: /* WPA */
  5957. padapter->securitypriv.ndisauthtype = Ndis802_11AuthModeWPAPSK; /* WPA_PSK */
  5958. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption2Enabled;
  5959. break;
  5960. case 2: /* WPA2 */
  5961. padapter->securitypriv.ndisauthtype = Ndis802_11AuthModeWPA2PSK; /* WPA2_PSK */
  5962. padapter->securitypriv.ndisencryptstatus = Ndis802_11Encryption3Enabled;
  5963. break;
  5964. }
  5965. break;
  5966. case IEEE_PARAM_TKIP_COUNTERMEASURES:
  5967. /* ieee->tkip_countermeasures=value; */
  5968. break;
  5969. case IEEE_PARAM_DROP_UNENCRYPTED: {
  5970. /* HACK:
  5971. *
  5972. * wpa_supplicant calls set_wpa_enabled when the driver
  5973. * is loaded and unloaded, regardless of if WPA is being
  5974. * used. No other calls are made which can be used to
  5975. * determine if encryption will be used or not prior to
  5976. * association being expected. If encryption is not being
  5977. * used, drop_unencrypted is set to false, else true -- we
  5978. * can use this to determine if the CAP_PRIVACY_ON bit should
  5979. * be set.
  5980. */
  5981. #if 0
  5982. struct ieee80211_security sec = {
  5983. .flags = SEC_ENABLED,
  5984. .enabled = value,
  5985. };
  5986. ieee->drop_unencrypted = value;
  5987. /* We only change SEC_LEVEL for open mode. Others
  5988. * are set by ipw_wpa_set_encryption.
  5989. */
  5990. if (!value) {
  5991. sec.flags |= SEC_LEVEL;
  5992. sec.level = SEC_LEVEL_0;
  5993. } else {
  5994. sec.flags |= SEC_LEVEL;
  5995. sec.level = SEC_LEVEL_1;
  5996. }
  5997. if (ieee->set_security)
  5998. ieee->set_security(ieee->dev, &sec);
  5999. #endif
  6000. break;
  6001. }
  6002. case IEEE_PARAM_PRIVACY_INVOKED:
  6003. /* ieee->privacy_invoked=value; */
  6004. break;
  6005. case IEEE_PARAM_AUTH_ALGS:
  6006. ret = wpa_set_auth_algs(dev, value);
  6007. break;
  6008. case IEEE_PARAM_IEEE_802_1X:
  6009. /* ieee->ieee802_1x=value; */
  6010. break;
  6011. case IEEE_PARAM_WPAX_SELECT:
  6012. /* added for WPA2 mixed mode */
  6013. /*RTW_WARN("------------------------>wpax value = %x\n", value);*/
  6014. /*
  6015. spin_lock_irqsave(&ieee->wpax_suitlist_lock,flags);
  6016. ieee->wpax_type_set = 1;
  6017. ieee->wpax_type_notify = value;
  6018. spin_unlock_irqrestore(&ieee->wpax_suitlist_lock,flags);
  6019. */
  6020. break;
  6021. default:
  6022. ret = -EOPNOTSUPP;
  6023. break;
  6024. }
  6025. return ret;
  6026. }
  6027. static int wpa_mlme(struct net_device *dev, u32 command, u32 reason)
  6028. {
  6029. int ret = 0;
  6030. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6031. switch (command) {
  6032. case IEEE_MLME_STA_DEAUTH:
  6033. if (!rtw_set_802_11_disassociate(padapter))
  6034. ret = -1;
  6035. break;
  6036. case IEEE_MLME_STA_DISASSOC:
  6037. if (!rtw_set_802_11_disassociate(padapter))
  6038. ret = -1;
  6039. break;
  6040. default:
  6041. ret = -EOPNOTSUPP;
  6042. break;
  6043. }
  6044. return ret;
  6045. }
  6046. static int wpa_supplicant_ioctl(struct net_device *dev, struct iw_point *p)
  6047. {
  6048. struct ieee_param *param;
  6049. uint ret = 0;
  6050. /* down(&ieee->wx_sem); */
  6051. if (p->length < sizeof(struct ieee_param) || !p->pointer) {
  6052. ret = -EINVAL;
  6053. goto out;
  6054. }
  6055. param = (struct ieee_param *)rtw_malloc(p->length);
  6056. if (param == NULL) {
  6057. ret = -ENOMEM;
  6058. goto out;
  6059. }
  6060. if (copy_from_user(param, p->pointer, p->length)) {
  6061. rtw_mfree((u8 *)param, p->length);
  6062. ret = -EFAULT;
  6063. goto out;
  6064. }
  6065. switch (param->cmd) {
  6066. case IEEE_CMD_SET_WPA_PARAM:
  6067. ret = wpa_set_param(dev, param->u.wpa_param.name, param->u.wpa_param.value);
  6068. break;
  6069. case IEEE_CMD_SET_WPA_IE:
  6070. /* ret = wpa_set_wpa_ie(dev, param, p->length); */
  6071. ret = rtw_set_wpa_ie((_adapter *)rtw_netdev_priv(dev), (char *)param->u.wpa_ie.data, (u16)param->u.wpa_ie.len);
  6072. break;
  6073. case IEEE_CMD_SET_ENCRYPTION:
  6074. ret = wpa_set_encryption(dev, param, p->length);
  6075. break;
  6076. case IEEE_CMD_MLME:
  6077. ret = wpa_mlme(dev, param->u.mlme.command, param->u.mlme.reason_code);
  6078. break;
  6079. default:
  6080. RTW_INFO("Unknown WPA supplicant request: %d\n", param->cmd);
  6081. ret = -EOPNOTSUPP;
  6082. break;
  6083. }
  6084. if (ret == 0 && copy_to_user(p->pointer, param, p->length))
  6085. ret = -EFAULT;
  6086. rtw_mfree((u8 *)param, p->length);
  6087. out:
  6088. /* up(&ieee->wx_sem); */
  6089. return ret;
  6090. }
  6091. #ifdef CONFIG_AP_MODE
  6092. static int rtw_set_encryption(struct net_device *dev, struct ieee_param *param, u32 param_len)
  6093. {
  6094. int ret = 0;
  6095. u32 wep_key_idx, wep_key_len, wep_total_len;
  6096. NDIS_802_11_WEP *pwep = NULL;
  6097. struct sta_info *psta = NULL, *pbcmc_sta = NULL;
  6098. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6099. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  6100. struct security_priv *psecuritypriv = &(padapter->securitypriv);
  6101. struct sta_priv *pstapriv = &padapter->stapriv;
  6102. RTW_INFO("%s\n", __FUNCTION__);
  6103. param->u.crypt.err = 0;
  6104. param->u.crypt.alg[IEEE_CRYPT_ALG_NAME_LEN - 1] = '\0';
  6105. /* sizeof(struct ieee_param) = 64 bytes; */
  6106. /* if (param_len != (u32) ((u8 *) param->u.crypt.key - (u8 *) param) + param->u.crypt.key_len) */
  6107. if (param_len != sizeof(struct ieee_param) + param->u.crypt.key_len) {
  6108. ret = -EINVAL;
  6109. goto exit;
  6110. }
  6111. if (param->sta_addr[0] == 0xff && param->sta_addr[1] == 0xff &&
  6112. param->sta_addr[2] == 0xff && param->sta_addr[3] == 0xff &&
  6113. param->sta_addr[4] == 0xff && param->sta_addr[5] == 0xff) {
  6114. if (param->u.crypt.idx >= WEP_KEYS
  6115. #ifdef CONFIG_IEEE80211W
  6116. && param->u.crypt.idx > BIP_MAX_KEYID
  6117. #endif /* CONFIG_IEEE80211W */
  6118. ) {
  6119. ret = -EINVAL;
  6120. goto exit;
  6121. }
  6122. } else {
  6123. psta = rtw_get_stainfo(pstapriv, param->sta_addr);
  6124. if (!psta) {
  6125. /* ret = -EINVAL; */
  6126. RTW_INFO("rtw_set_encryption(), sta has already been removed or never been added\n");
  6127. goto exit;
  6128. }
  6129. }
  6130. if (strcmp(param->u.crypt.alg, "none") == 0 && (psta == NULL)) {
  6131. /* todo:clear default encryption keys */
  6132. psecuritypriv->dot11AuthAlgrthm = dot11AuthAlgrthm_Open;
  6133. psecuritypriv->ndisencryptstatus = Ndis802_11EncryptionDisabled;
  6134. psecuritypriv->dot11PrivacyAlgrthm = _NO_PRIVACY_;
  6135. psecuritypriv->dot118021XGrpPrivacy = _NO_PRIVACY_;
  6136. RTW_INFO("clear default encryption keys, keyid=%d\n", param->u.crypt.idx);
  6137. goto exit;
  6138. }
  6139. if (strcmp(param->u.crypt.alg, "WEP") == 0 && (psta == NULL)) {
  6140. RTW_INFO("r871x_set_encryption, crypt.alg = WEP\n");
  6141. wep_key_idx = param->u.crypt.idx;
  6142. wep_key_len = param->u.crypt.key_len;
  6143. RTW_INFO("r871x_set_encryption, wep_key_idx=%d, len=%d\n", wep_key_idx, wep_key_len);
  6144. if ((wep_key_idx >= WEP_KEYS) || (wep_key_len <= 0)) {
  6145. ret = -EINVAL;
  6146. goto exit;
  6147. }
  6148. if (wep_key_len > 0) {
  6149. wep_key_len = wep_key_len <= 5 ? 5 : 13;
  6150. wep_total_len = wep_key_len + FIELD_OFFSET(NDIS_802_11_WEP, KeyMaterial);
  6151. pwep = (NDIS_802_11_WEP *)rtw_malloc(wep_total_len);
  6152. if (pwep == NULL) {
  6153. RTW_INFO(" r871x_set_encryption: pwep allocate fail !!!\n");
  6154. goto exit;
  6155. }
  6156. _rtw_memset(pwep, 0, wep_total_len);
  6157. pwep->KeyLength = wep_key_len;
  6158. pwep->Length = wep_total_len;
  6159. }
  6160. pwep->KeyIndex = wep_key_idx;
  6161. _rtw_memcpy(pwep->KeyMaterial, param->u.crypt.key, pwep->KeyLength);
  6162. if (param->u.crypt.set_tx) {
  6163. RTW_INFO("wep, set_tx=1\n");
  6164. psecuritypriv->dot11AuthAlgrthm = dot11AuthAlgrthm_Auto;
  6165. psecuritypriv->ndisencryptstatus = Ndis802_11Encryption1Enabled;
  6166. psecuritypriv->dot11PrivacyAlgrthm = _WEP40_;
  6167. psecuritypriv->dot118021XGrpPrivacy = _WEP40_;
  6168. if (pwep->KeyLength == 13) {
  6169. psecuritypriv->dot11PrivacyAlgrthm = _WEP104_;
  6170. psecuritypriv->dot118021XGrpPrivacy = _WEP104_;
  6171. }
  6172. psecuritypriv->dot11PrivacyKeyIndex = wep_key_idx;
  6173. _rtw_memcpy(&(psecuritypriv->dot11DefKey[wep_key_idx].skey[0]), pwep->KeyMaterial, pwep->KeyLength);
  6174. psecuritypriv->dot11DefKeylen[wep_key_idx] = pwep->KeyLength;
  6175. rtw_ap_set_wep_key(padapter, pwep->KeyMaterial, pwep->KeyLength, wep_key_idx, 1);
  6176. } else {
  6177. RTW_INFO("wep, set_tx=0\n");
  6178. /* don't update "psecuritypriv->dot11PrivacyAlgrthm" and */
  6179. /* "psecuritypriv->dot11PrivacyKeyIndex=keyid", but can rtw_set_key to cam */
  6180. _rtw_memcpy(&(psecuritypriv->dot11DefKey[wep_key_idx].skey[0]), pwep->KeyMaterial, pwep->KeyLength);
  6181. psecuritypriv->dot11DefKeylen[wep_key_idx] = pwep->KeyLength;
  6182. rtw_ap_set_wep_key(padapter, pwep->KeyMaterial, pwep->KeyLength, wep_key_idx, 0);
  6183. }
  6184. goto exit;
  6185. }
  6186. if (!psta && check_fwstate(pmlmepriv, WIFI_AP_STATE)) /* */ { /* group key */
  6187. if (param->u.crypt.set_tx == 1) {
  6188. if (strcmp(param->u.crypt.alg, "WEP") == 0) {
  6189. RTW_INFO("%s, set group_key, WEP\n", __FUNCTION__);
  6190. _rtw_memcpy(psecuritypriv->dot118021XGrpKey[param->u.crypt.idx].skey, param->u.crypt.key, (param->u.crypt.key_len > 16 ? 16 : param->u.crypt.key_len));
  6191. psecuritypriv->dot118021XGrpPrivacy = _WEP40_;
  6192. if (param->u.crypt.key_len == 13)
  6193. psecuritypriv->dot118021XGrpPrivacy = _WEP104_;
  6194. } else if (strcmp(param->u.crypt.alg, "TKIP") == 0) {
  6195. RTW_INFO("%s, set group_key, TKIP\n", __FUNCTION__);
  6196. psecuritypriv->dot118021XGrpPrivacy = _TKIP_;
  6197. _rtw_memcpy(psecuritypriv->dot118021XGrpKey[param->u.crypt.idx].skey, param->u.crypt.key, (param->u.crypt.key_len > 16 ? 16 : param->u.crypt.key_len));
  6198. /* DEBUG_ERR("set key length :param->u.crypt.key_len=%d\n", param->u.crypt.key_len); */
  6199. /* set mic key */
  6200. _rtw_memcpy(psecuritypriv->dot118021XGrptxmickey[param->u.crypt.idx].skey, &(param->u.crypt.key[16]), 8);
  6201. _rtw_memcpy(psecuritypriv->dot118021XGrprxmickey[param->u.crypt.idx].skey, &(param->u.crypt.key[24]), 8);
  6202. psecuritypriv->busetkipkey = _TRUE;
  6203. } else if (strcmp(param->u.crypt.alg, "CCMP") == 0) {
  6204. RTW_INFO("%s, set group_key, CCMP\n", __FUNCTION__);
  6205. psecuritypriv->dot118021XGrpPrivacy = _AES_;
  6206. _rtw_memcpy(psecuritypriv->dot118021XGrpKey[param->u.crypt.idx].skey, param->u.crypt.key, (param->u.crypt.key_len > 16 ? 16 : param->u.crypt.key_len));
  6207. }
  6208. #ifdef CONFIG_IEEE80211W
  6209. else if (strcmp(param->u.crypt.alg, "BIP") == 0) {
  6210. int no;
  6211. RTW_INFO("BIP key_len=%d , index=%d\n", param->u.crypt.key_len, param->u.crypt.idx);
  6212. /* save the IGTK key, length 16 bytes */
  6213. _rtw_memcpy(padapter->securitypriv.dot11wBIPKey[param->u.crypt.idx].skey, param->u.crypt.key, (param->u.crypt.key_len > 16 ? 16 : param->u.crypt.key_len));
  6214. /* RTW_INFO("IGTK key below:\n");
  6215. for(no=0;no<16;no++)
  6216. printk(" %02x ", padapter->securitypriv.dot11wBIPKey[param->u.crypt.idx].skey[no]);
  6217. RTW_INFO("\n"); */
  6218. padapter->securitypriv.dot11wBIPKeyid = param->u.crypt.idx;
  6219. padapter->securitypriv.binstallBIPkey = _TRUE;
  6220. RTW_INFO(" ~~~~set sta key:IGKT\n");
  6221. goto exit;
  6222. }
  6223. #endif /* CONFIG_IEEE80211W */
  6224. else {
  6225. RTW_INFO("%s, set group_key, none\n", __FUNCTION__);
  6226. psecuritypriv->dot118021XGrpPrivacy = _NO_PRIVACY_;
  6227. }
  6228. psecuritypriv->dot118021XGrpKeyid = param->u.crypt.idx;
  6229. psecuritypriv->binstallGrpkey = _TRUE;
  6230. psecuritypriv->dot11PrivacyAlgrthm = psecuritypriv->dot118021XGrpPrivacy;/* !!! */
  6231. rtw_ap_set_group_key(padapter, param->u.crypt.key, psecuritypriv->dot118021XGrpPrivacy, param->u.crypt.idx);
  6232. pbcmc_sta = rtw_get_bcmc_stainfo(padapter);
  6233. if (pbcmc_sta) {
  6234. pbcmc_sta->ieee8021x_blocked = _FALSE;
  6235. pbcmc_sta->dot118021XPrivacy = psecuritypriv->dot118021XGrpPrivacy; /* rx will use bmc_sta's dot118021XPrivacy */
  6236. }
  6237. }
  6238. goto exit;
  6239. }
  6240. if (psecuritypriv->dot11AuthAlgrthm == dot11AuthAlgrthm_8021X && psta) { /* psk/802_1x */
  6241. if (check_fwstate(pmlmepriv, WIFI_AP_STATE)) {
  6242. if (param->u.crypt.set_tx == 1) {
  6243. _rtw_memcpy(psta->dot118021x_UncstKey.skey, param->u.crypt.key, (param->u.crypt.key_len > 16 ? 16 : param->u.crypt.key_len));
  6244. if (strcmp(param->u.crypt.alg, "WEP") == 0) {
  6245. RTW_INFO("%s, set pairwise key, WEP\n", __FUNCTION__);
  6246. psta->dot118021XPrivacy = _WEP40_;
  6247. if (param->u.crypt.key_len == 13)
  6248. psta->dot118021XPrivacy = _WEP104_;
  6249. } else if (strcmp(param->u.crypt.alg, "TKIP") == 0) {
  6250. RTW_INFO("%s, set pairwise key, TKIP\n", __FUNCTION__);
  6251. psta->dot118021XPrivacy = _TKIP_;
  6252. /* DEBUG_ERR("set key length :param->u.crypt.key_len=%d\n", param->u.crypt.key_len); */
  6253. /* set mic key */
  6254. _rtw_memcpy(psta->dot11tkiptxmickey.skey, &(param->u.crypt.key[16]), 8);
  6255. _rtw_memcpy(psta->dot11tkiprxmickey.skey, &(param->u.crypt.key[24]), 8);
  6256. psecuritypriv->busetkipkey = _TRUE;
  6257. } else if (strcmp(param->u.crypt.alg, "CCMP") == 0) {
  6258. RTW_INFO("%s, set pairwise key, CCMP\n", __FUNCTION__);
  6259. psta->dot118021XPrivacy = _AES_;
  6260. } else {
  6261. RTW_INFO("%s, set pairwise key, none\n", __FUNCTION__);
  6262. psta->dot118021XPrivacy = _NO_PRIVACY_;
  6263. }
  6264. rtw_ap_set_pairwise_key(padapter, psta);
  6265. psta->ieee8021x_blocked = _FALSE;
  6266. psta->bpairwise_key_installed = _TRUE;
  6267. } else { /* group key??? */
  6268. if (strcmp(param->u.crypt.alg, "WEP") == 0) {
  6269. _rtw_memcpy(psecuritypriv->dot118021XGrpKey[param->u.crypt.idx].skey, param->u.crypt.key, (param->u.crypt.key_len > 16 ? 16 : param->u.crypt.key_len));
  6270. psecuritypriv->dot118021XGrpPrivacy = _WEP40_;
  6271. if (param->u.crypt.key_len == 13)
  6272. psecuritypriv->dot118021XGrpPrivacy = _WEP104_;
  6273. } else if (strcmp(param->u.crypt.alg, "TKIP") == 0) {
  6274. psecuritypriv->dot118021XGrpPrivacy = _TKIP_;
  6275. _rtw_memcpy(psecuritypriv->dot118021XGrpKey[param->u.crypt.idx].skey, param->u.crypt.key, (param->u.crypt.key_len > 16 ? 16 : param->u.crypt.key_len));
  6276. /* DEBUG_ERR("set key length :param->u.crypt.key_len=%d\n", param->u.crypt.key_len); */
  6277. /* set mic key */
  6278. _rtw_memcpy(psecuritypriv->dot118021XGrptxmickey[param->u.crypt.idx].skey, &(param->u.crypt.key[16]), 8);
  6279. _rtw_memcpy(psecuritypriv->dot118021XGrprxmickey[param->u.crypt.idx].skey, &(param->u.crypt.key[24]), 8);
  6280. psecuritypriv->busetkipkey = _TRUE;
  6281. } else if (strcmp(param->u.crypt.alg, "CCMP") == 0) {
  6282. psecuritypriv->dot118021XGrpPrivacy = _AES_;
  6283. _rtw_memcpy(psecuritypriv->dot118021XGrpKey[param->u.crypt.idx].skey, param->u.crypt.key, (param->u.crypt.key_len > 16 ? 16 : param->u.crypt.key_len));
  6284. } else
  6285. psecuritypriv->dot118021XGrpPrivacy = _NO_PRIVACY_;
  6286. psecuritypriv->dot118021XGrpKeyid = param->u.crypt.idx;
  6287. psecuritypriv->binstallGrpkey = _TRUE;
  6288. psecuritypriv->dot11PrivacyAlgrthm = psecuritypriv->dot118021XGrpPrivacy;/* !!! */
  6289. rtw_ap_set_group_key(padapter, param->u.crypt.key, psecuritypriv->dot118021XGrpPrivacy, param->u.crypt.idx);
  6290. pbcmc_sta = rtw_get_bcmc_stainfo(padapter);
  6291. if (pbcmc_sta) {
  6292. pbcmc_sta->ieee8021x_blocked = _FALSE;
  6293. pbcmc_sta->dot118021XPrivacy = psecuritypriv->dot118021XGrpPrivacy; /* rx will use bmc_sta's dot118021XPrivacy */
  6294. }
  6295. }
  6296. }
  6297. }
  6298. exit:
  6299. if (pwep)
  6300. rtw_mfree((u8 *)pwep, wep_total_len);
  6301. return ret;
  6302. }
  6303. static int rtw_set_beacon(struct net_device *dev, struct ieee_param *param, int len)
  6304. {
  6305. int ret = 0;
  6306. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6307. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6308. struct sta_priv *pstapriv = &padapter->stapriv;
  6309. unsigned char *pbuf = param->u.bcn_ie.buf;
  6310. RTW_INFO("%s, len=%d\n", __FUNCTION__, len);
  6311. if (check_fwstate(pmlmepriv, WIFI_AP_STATE) != _TRUE)
  6312. return -EINVAL;
  6313. _rtw_memcpy(&pstapriv->max_num_sta, param->u.bcn_ie.reserved, 2);
  6314. if ((pstapriv->max_num_sta > NUM_STA) || (pstapriv->max_num_sta <= 0))
  6315. pstapriv->max_num_sta = NUM_STA;
  6316. if (rtw_check_beacon_data(padapter, pbuf, (len - 12 - 2)) == _SUCCESS) /* 12 = param header, 2:no packed */
  6317. ret = 0;
  6318. else
  6319. ret = -EINVAL;
  6320. return ret;
  6321. }
  6322. static int rtw_hostapd_sta_flush(struct net_device *dev)
  6323. {
  6324. /* _irqL irqL; */
  6325. /* _list *phead, *plist; */
  6326. int ret = 0;
  6327. /* struct sta_info *psta = NULL; */
  6328. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6329. /* struct sta_priv *pstapriv = &padapter->stapriv; */
  6330. RTW_INFO("%s\n", __FUNCTION__);
  6331. flush_all_cam_entry(padapter); /* clear CAM */
  6332. ret = rtw_sta_flush(padapter, _TRUE);
  6333. return ret;
  6334. }
  6335. static int rtw_add_sta(struct net_device *dev, struct ieee_param *param)
  6336. {
  6337. _irqL irqL;
  6338. int ret = 0;
  6339. struct sta_info *psta = NULL;
  6340. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6341. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6342. struct sta_priv *pstapriv = &padapter->stapriv;
  6343. RTW_INFO("rtw_add_sta(aid=%d)=" MAC_FMT "\n", param->u.add_sta.aid, MAC_ARG(param->sta_addr));
  6344. if (check_fwstate(pmlmepriv, (_FW_LINKED | WIFI_AP_STATE)) != _TRUE)
  6345. return -EINVAL;
  6346. if (param->sta_addr[0] == 0xff && param->sta_addr[1] == 0xff &&
  6347. param->sta_addr[2] == 0xff && param->sta_addr[3] == 0xff &&
  6348. param->sta_addr[4] == 0xff && param->sta_addr[5] == 0xff)
  6349. return -EINVAL;
  6350. #if 0
  6351. psta = rtw_get_stainfo(pstapriv, param->sta_addr);
  6352. if (psta) {
  6353. RTW_INFO("rtw_add_sta(), free has been added psta=%p\n", psta);
  6354. /* _enter_critical_bh(&(pstapriv->sta_hash_lock), &irqL); */
  6355. rtw_free_stainfo(padapter, psta);
  6356. /* _exit_critical_bh(&(pstapriv->sta_hash_lock), &irqL); */
  6357. psta = NULL;
  6358. }
  6359. #endif
  6360. /* psta = rtw_alloc_stainfo(pstapriv, param->sta_addr); */
  6361. psta = rtw_get_stainfo(pstapriv, param->sta_addr);
  6362. if (psta) {
  6363. int flags = param->u.add_sta.flags;
  6364. /* RTW_INFO("rtw_add_sta(), init sta's variables, psta=%p\n", psta); */
  6365. psta->aid = param->u.add_sta.aid;/* aid=1~2007 */
  6366. _rtw_memcpy(psta->bssrateset, param->u.add_sta.tx_supp_rates, 16);
  6367. /* check wmm cap. */
  6368. if (WLAN_STA_WME & flags)
  6369. psta->qos_option = 1;
  6370. else
  6371. psta->qos_option = 0;
  6372. if (pmlmepriv->qospriv.qos_option == 0)
  6373. psta->qos_option = 0;
  6374. #ifdef CONFIG_80211N_HT
  6375. /* chec 802.11n ht cap. */
  6376. if (WLAN_STA_HT & flags) {
  6377. psta->htpriv.ht_option = _TRUE;
  6378. psta->qos_option = 1;
  6379. _rtw_memcpy((void *)&psta->htpriv.ht_cap, (void *)&param->u.add_sta.ht_cap, sizeof(struct rtw_ieee80211_ht_cap));
  6380. } else
  6381. psta->htpriv.ht_option = _FALSE;
  6382. if (pmlmepriv->htpriv.ht_option == _FALSE)
  6383. psta->htpriv.ht_option = _FALSE;
  6384. #endif
  6385. update_sta_info_apmode(padapter, psta);
  6386. } else
  6387. ret = -ENOMEM;
  6388. return ret;
  6389. }
  6390. static int rtw_del_sta(struct net_device *dev, struct ieee_param *param)
  6391. {
  6392. _irqL irqL;
  6393. int ret = 0;
  6394. struct sta_info *psta = NULL;
  6395. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6396. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6397. struct sta_priv *pstapriv = &padapter->stapriv;
  6398. RTW_INFO("rtw_del_sta=" MAC_FMT "\n", MAC_ARG(param->sta_addr));
  6399. if (check_fwstate(pmlmepriv, (_FW_LINKED | WIFI_AP_STATE)) != _TRUE)
  6400. return -EINVAL;
  6401. if (param->sta_addr[0] == 0xff && param->sta_addr[1] == 0xff &&
  6402. param->sta_addr[2] == 0xff && param->sta_addr[3] == 0xff &&
  6403. param->sta_addr[4] == 0xff && param->sta_addr[5] == 0xff)
  6404. return -EINVAL;
  6405. psta = rtw_get_stainfo(pstapriv, param->sta_addr);
  6406. if (psta) {
  6407. u8 updated = _FALSE;
  6408. /* RTW_INFO("free psta=%p, aid=%d\n", psta, psta->aid); */
  6409. _enter_critical_bh(&pstapriv->asoc_list_lock, &irqL);
  6410. if (rtw_is_list_empty(&psta->asoc_list) == _FALSE) {
  6411. rtw_list_delete(&psta->asoc_list);
  6412. pstapriv->asoc_list_cnt--;
  6413. updated = ap_free_sta(padapter, psta, _TRUE, WLAN_REASON_DEAUTH_LEAVING, _TRUE);
  6414. }
  6415. _exit_critical_bh(&pstapriv->asoc_list_lock, &irqL);
  6416. associated_clients_update(padapter, updated, STA_INFO_UPDATE_ALL);
  6417. psta = NULL;
  6418. } else {
  6419. RTW_INFO("rtw_del_sta(), sta has already been removed or never been added\n");
  6420. /* ret = -1; */
  6421. }
  6422. return ret;
  6423. }
  6424. static int rtw_ioctl_get_sta_data(struct net_device *dev, struct ieee_param *param, int len)
  6425. {
  6426. int ret = 0;
  6427. struct sta_info *psta = NULL;
  6428. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6429. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6430. struct sta_priv *pstapriv = &padapter->stapriv;
  6431. struct ieee_param_ex *param_ex = (struct ieee_param_ex *)param;
  6432. struct sta_data *psta_data = (struct sta_data *)param_ex->data;
  6433. RTW_INFO("rtw_ioctl_get_sta_info, sta_addr: " MAC_FMT "\n", MAC_ARG(param_ex->sta_addr));
  6434. if (check_fwstate(pmlmepriv, (_FW_LINKED | WIFI_AP_STATE)) != _TRUE)
  6435. return -EINVAL;
  6436. if (param_ex->sta_addr[0] == 0xff && param_ex->sta_addr[1] == 0xff &&
  6437. param_ex->sta_addr[2] == 0xff && param_ex->sta_addr[3] == 0xff &&
  6438. param_ex->sta_addr[4] == 0xff && param_ex->sta_addr[5] == 0xff)
  6439. return -EINVAL;
  6440. psta = rtw_get_stainfo(pstapriv, param_ex->sta_addr);
  6441. if (psta) {
  6442. #if 0
  6443. struct {
  6444. u16 aid;
  6445. u16 capability;
  6446. int flags;
  6447. u32 sta_set;
  6448. u8 tx_supp_rates[16];
  6449. u32 tx_supp_rates_len;
  6450. struct rtw_ieee80211_ht_cap ht_cap;
  6451. u64 rx_pkts;
  6452. u64 rx_bytes;
  6453. u64 rx_drops;
  6454. u64 tx_pkts;
  6455. u64 tx_bytes;
  6456. u64 tx_drops;
  6457. } get_sta;
  6458. #endif
  6459. psta_data->aid = (u16)psta->aid;
  6460. psta_data->capability = psta->capability;
  6461. psta_data->flags = psta->flags;
  6462. /*
  6463. nonerp_set : BIT(0)
  6464. no_short_slot_time_set : BIT(1)
  6465. no_short_preamble_set : BIT(2)
  6466. no_ht_gf_set : BIT(3)
  6467. no_ht_set : BIT(4)
  6468. ht_20mhz_set : BIT(5)
  6469. */
  6470. psta_data->sta_set = ((psta->nonerp_set) |
  6471. (psta->no_short_slot_time_set << 1) |
  6472. (psta->no_short_preamble_set << 2) |
  6473. (psta->no_ht_gf_set << 3) |
  6474. (psta->no_ht_set << 4) |
  6475. (psta->ht_20mhz_set << 5));
  6476. psta_data->tx_supp_rates_len = psta->bssratelen;
  6477. _rtw_memcpy(psta_data->tx_supp_rates, psta->bssrateset, psta->bssratelen);
  6478. #ifdef CONFIG_80211N_HT
  6479. _rtw_memcpy(&psta_data->ht_cap, &psta->htpriv.ht_cap, sizeof(struct rtw_ieee80211_ht_cap));
  6480. #endif /* CONFIG_80211N_HT */
  6481. psta_data->rx_pkts = psta->sta_stats.rx_data_pkts;
  6482. psta_data->rx_bytes = psta->sta_stats.rx_bytes;
  6483. psta_data->rx_drops = psta->sta_stats.rx_drops;
  6484. psta_data->tx_pkts = psta->sta_stats.tx_pkts;
  6485. psta_data->tx_bytes = psta->sta_stats.tx_bytes;
  6486. psta_data->tx_drops = psta->sta_stats.tx_drops;
  6487. } else
  6488. ret = -1;
  6489. return ret;
  6490. }
  6491. static int rtw_get_sta_wpaie(struct net_device *dev, struct ieee_param *param)
  6492. {
  6493. int ret = 0;
  6494. struct sta_info *psta = NULL;
  6495. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6496. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6497. struct sta_priv *pstapriv = &padapter->stapriv;
  6498. RTW_INFO("rtw_get_sta_wpaie, sta_addr: " MAC_FMT "\n", MAC_ARG(param->sta_addr));
  6499. if (check_fwstate(pmlmepriv, (_FW_LINKED | WIFI_AP_STATE)) != _TRUE)
  6500. return -EINVAL;
  6501. if (param->sta_addr[0] == 0xff && param->sta_addr[1] == 0xff &&
  6502. param->sta_addr[2] == 0xff && param->sta_addr[3] == 0xff &&
  6503. param->sta_addr[4] == 0xff && param->sta_addr[5] == 0xff)
  6504. return -EINVAL;
  6505. psta = rtw_get_stainfo(pstapriv, param->sta_addr);
  6506. if (psta) {
  6507. if ((psta->wpa_ie[0] == WLAN_EID_RSN) || (psta->wpa_ie[0] == WLAN_EID_GENERIC)) {
  6508. int wpa_ie_len;
  6509. int copy_len;
  6510. wpa_ie_len = psta->wpa_ie[1];
  6511. copy_len = ((wpa_ie_len + 2) > sizeof(psta->wpa_ie)) ? (sizeof(psta->wpa_ie)) : (wpa_ie_len + 2);
  6512. param->u.wpa_ie.len = copy_len;
  6513. _rtw_memcpy(param->u.wpa_ie.reserved, psta->wpa_ie, copy_len);
  6514. } else {
  6515. /* ret = -1; */
  6516. RTW_INFO("sta's wpa_ie is NONE\n");
  6517. }
  6518. } else
  6519. ret = -1;
  6520. return ret;
  6521. }
  6522. static int rtw_set_wps_beacon(struct net_device *dev, struct ieee_param *param, int len)
  6523. {
  6524. int ret = 0;
  6525. unsigned char wps_oui[4] = {0x0, 0x50, 0xf2, 0x04};
  6526. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6527. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6528. struct mlme_ext_priv *pmlmeext = &(padapter->mlmeextpriv);
  6529. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  6530. int ie_len;
  6531. RTW_INFO("%s, len=%d\n", __FUNCTION__, len);
  6532. if (check_fwstate(pmlmepriv, WIFI_AP_STATE) != _TRUE)
  6533. return -EINVAL;
  6534. ie_len = len - 12 - 2; /* 12 = param header, 2:no packed */
  6535. if (pmlmepriv->wps_beacon_ie) {
  6536. rtw_mfree(pmlmepriv->wps_beacon_ie, pmlmepriv->wps_beacon_ie_len);
  6537. pmlmepriv->wps_beacon_ie = NULL;
  6538. }
  6539. if (ie_len > 0) {
  6540. pmlmepriv->wps_beacon_ie = rtw_malloc(ie_len);
  6541. pmlmepriv->wps_beacon_ie_len = ie_len;
  6542. if (pmlmepriv->wps_beacon_ie == NULL) {
  6543. RTW_INFO("%s()-%d: rtw_malloc() ERROR!\n", __FUNCTION__, __LINE__);
  6544. return -EINVAL;
  6545. }
  6546. _rtw_memcpy(pmlmepriv->wps_beacon_ie, param->u.bcn_ie.buf, ie_len);
  6547. update_beacon(padapter, _VENDOR_SPECIFIC_IE_, wps_oui, _TRUE);
  6548. pmlmeext->bstart_bss = _TRUE;
  6549. }
  6550. return ret;
  6551. }
  6552. static int rtw_set_wps_probe_resp(struct net_device *dev, struct ieee_param *param, int len)
  6553. {
  6554. int ret = 0;
  6555. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6556. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6557. int ie_len;
  6558. RTW_INFO("%s, len=%d\n", __FUNCTION__, len);
  6559. if (check_fwstate(pmlmepriv, WIFI_AP_STATE) != _TRUE)
  6560. return -EINVAL;
  6561. ie_len = len - 12 - 2; /* 12 = param header, 2:no packed */
  6562. if (pmlmepriv->wps_probe_resp_ie) {
  6563. rtw_mfree(pmlmepriv->wps_probe_resp_ie, pmlmepriv->wps_probe_resp_ie_len);
  6564. pmlmepriv->wps_probe_resp_ie = NULL;
  6565. }
  6566. if (ie_len > 0) {
  6567. pmlmepriv->wps_probe_resp_ie = rtw_malloc(ie_len);
  6568. pmlmepriv->wps_probe_resp_ie_len = ie_len;
  6569. if (pmlmepriv->wps_probe_resp_ie == NULL) {
  6570. RTW_INFO("%s()-%d: rtw_malloc() ERROR!\n", __FUNCTION__, __LINE__);
  6571. return -EINVAL;
  6572. }
  6573. _rtw_memcpy(pmlmepriv->wps_probe_resp_ie, param->u.bcn_ie.buf, ie_len);
  6574. }
  6575. return ret;
  6576. }
  6577. static int rtw_set_wps_assoc_resp(struct net_device *dev, struct ieee_param *param, int len)
  6578. {
  6579. int ret = 0;
  6580. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6581. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6582. int ie_len;
  6583. RTW_INFO("%s, len=%d\n", __FUNCTION__, len);
  6584. if (check_fwstate(pmlmepriv, WIFI_AP_STATE) != _TRUE)
  6585. return -EINVAL;
  6586. ie_len = len - 12 - 2; /* 12 = param header, 2:no packed */
  6587. if (pmlmepriv->wps_assoc_resp_ie) {
  6588. rtw_mfree(pmlmepriv->wps_assoc_resp_ie, pmlmepriv->wps_assoc_resp_ie_len);
  6589. pmlmepriv->wps_assoc_resp_ie = NULL;
  6590. }
  6591. if (ie_len > 0) {
  6592. pmlmepriv->wps_assoc_resp_ie = rtw_malloc(ie_len);
  6593. pmlmepriv->wps_assoc_resp_ie_len = ie_len;
  6594. if (pmlmepriv->wps_assoc_resp_ie == NULL) {
  6595. RTW_INFO("%s()-%d: rtw_malloc() ERROR!\n", __FUNCTION__, __LINE__);
  6596. return -EINVAL;
  6597. }
  6598. _rtw_memcpy(pmlmepriv->wps_assoc_resp_ie, param->u.bcn_ie.buf, ie_len);
  6599. }
  6600. return ret;
  6601. }
  6602. static int rtw_set_hidden_ssid(struct net_device *dev, struct ieee_param *param, int len)
  6603. {
  6604. int ret = 0;
  6605. _adapter *adapter = (_adapter *)rtw_netdev_priv(dev);
  6606. struct mlme_priv *mlmepriv = &(adapter->mlmepriv);
  6607. struct mlme_ext_priv *mlmeext = &(adapter->mlmeextpriv);
  6608. struct mlme_ext_info *mlmeinfo = &(mlmeext->mlmext_info);
  6609. int ie_len;
  6610. u8 *ssid_ie;
  6611. char ssid[NDIS_802_11_LENGTH_SSID + 1];
  6612. sint ssid_len = 0;
  6613. u8 ignore_broadcast_ssid;
  6614. if (check_fwstate(mlmepriv, WIFI_AP_STATE) != _TRUE)
  6615. return -EPERM;
  6616. if (param->u.bcn_ie.reserved[0] != 0xea)
  6617. return -EINVAL;
  6618. mlmeinfo->hidden_ssid_mode = ignore_broadcast_ssid = param->u.bcn_ie.reserved[1];
  6619. ie_len = len - 12 - 2; /* 12 = param header, 2:no packed */
  6620. ssid_ie = rtw_get_ie(param->u.bcn_ie.buf, WLAN_EID_SSID, &ssid_len, ie_len);
  6621. if (ssid_ie && ssid_len > 0 && ssid_len <= NDIS_802_11_LENGTH_SSID) {
  6622. WLAN_BSSID_EX *pbss_network = &mlmepriv->cur_network.network;
  6623. WLAN_BSSID_EX *pbss_network_ext = &mlmeinfo->network;
  6624. _rtw_memcpy(ssid, ssid_ie + 2, ssid_len);
  6625. ssid[ssid_len] = 0x0;
  6626. if (0)
  6627. RTW_INFO(FUNC_ADPT_FMT" ssid:(%s,%d), from ie:(%s,%d), (%s,%d)\n", FUNC_ADPT_ARG(adapter),
  6628. ssid, ssid_len,
  6629. pbss_network->Ssid.Ssid, pbss_network->Ssid.SsidLength,
  6630. pbss_network_ext->Ssid.Ssid, pbss_network_ext->Ssid.SsidLength);
  6631. _rtw_memcpy(pbss_network->Ssid.Ssid, (void *)ssid, ssid_len);
  6632. pbss_network->Ssid.SsidLength = ssid_len;
  6633. _rtw_memcpy(pbss_network_ext->Ssid.Ssid, (void *)ssid, ssid_len);
  6634. pbss_network_ext->Ssid.SsidLength = ssid_len;
  6635. if (0)
  6636. RTW_INFO(FUNC_ADPT_FMT" after ssid:(%s,%d), (%s,%d)\n", FUNC_ADPT_ARG(adapter),
  6637. pbss_network->Ssid.Ssid, pbss_network->Ssid.SsidLength,
  6638. pbss_network_ext->Ssid.Ssid, pbss_network_ext->Ssid.SsidLength);
  6639. }
  6640. RTW_INFO(FUNC_ADPT_FMT" ignore_broadcast_ssid:%d, %s,%d\n", FUNC_ADPT_ARG(adapter),
  6641. ignore_broadcast_ssid, ssid, ssid_len);
  6642. return ret;
  6643. }
  6644. #if CONFIG_RTW_MACADDR_ACL
  6645. static int rtw_ioctl_acl_remove_sta(struct net_device *dev, struct ieee_param *param, int len)
  6646. {
  6647. int ret = 0;
  6648. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6649. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6650. if (check_fwstate(pmlmepriv, WIFI_AP_STATE) != _TRUE)
  6651. return -EINVAL;
  6652. if (param->sta_addr[0] == 0xff && param->sta_addr[1] == 0xff &&
  6653. param->sta_addr[2] == 0xff && param->sta_addr[3] == 0xff &&
  6654. param->sta_addr[4] == 0xff && param->sta_addr[5] == 0xff)
  6655. return -EINVAL;
  6656. ret = rtw_acl_remove_sta(padapter, param->sta_addr);
  6657. return ret;
  6658. }
  6659. static int rtw_ioctl_acl_add_sta(struct net_device *dev, struct ieee_param *param, int len)
  6660. {
  6661. int ret = 0;
  6662. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6663. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6664. if (check_fwstate(pmlmepriv, WIFI_AP_STATE) != _TRUE)
  6665. return -EINVAL;
  6666. if (param->sta_addr[0] == 0xff && param->sta_addr[1] == 0xff &&
  6667. param->sta_addr[2] == 0xff && param->sta_addr[3] == 0xff &&
  6668. param->sta_addr[4] == 0xff && param->sta_addr[5] == 0xff)
  6669. return -EINVAL;
  6670. ret = rtw_acl_add_sta(padapter, param->sta_addr);
  6671. return ret;
  6672. }
  6673. static int rtw_ioctl_set_macaddr_acl(struct net_device *dev, struct ieee_param *param, int len)
  6674. {
  6675. int ret = 0;
  6676. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6677. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6678. if (check_fwstate(pmlmepriv, WIFI_AP_STATE) != _TRUE)
  6679. return -EINVAL;
  6680. rtw_set_macaddr_acl(padapter, param->u.mlme.command);
  6681. return ret;
  6682. }
  6683. #endif /* CONFIG_RTW_MACADDR_ACL */
  6684. static int rtw_hostapd_ioctl(struct net_device *dev, struct iw_point *p)
  6685. {
  6686. struct ieee_param *param;
  6687. int ret = 0;
  6688. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6689. /* RTW_INFO("%s\n", __FUNCTION__); */
  6690. /*
  6691. * this function is expect to call in master mode, which allows no power saving
  6692. * so, we just check hw_init_completed
  6693. */
  6694. if (!rtw_is_hw_init_completed(padapter)) {
  6695. ret = -EPERM;
  6696. goto out;
  6697. }
  6698. /* if (p->length < sizeof(struct ieee_param) || !p->pointer){ */
  6699. if (!p->pointer) {
  6700. ret = -EINVAL;
  6701. goto out;
  6702. }
  6703. param = (struct ieee_param *)rtw_malloc(p->length);
  6704. if (param == NULL) {
  6705. ret = -ENOMEM;
  6706. goto out;
  6707. }
  6708. if (copy_from_user(param, p->pointer, p->length)) {
  6709. rtw_mfree((u8 *)param, p->length);
  6710. ret = -EFAULT;
  6711. goto out;
  6712. }
  6713. /* RTW_INFO("%s, cmd=%d\n", __FUNCTION__, param->cmd); */
  6714. switch (param->cmd) {
  6715. case RTL871X_HOSTAPD_FLUSH:
  6716. ret = rtw_hostapd_sta_flush(dev);
  6717. break;
  6718. case RTL871X_HOSTAPD_ADD_STA:
  6719. ret = rtw_add_sta(dev, param);
  6720. break;
  6721. case RTL871X_HOSTAPD_REMOVE_STA:
  6722. ret = rtw_del_sta(dev, param);
  6723. break;
  6724. case RTL871X_HOSTAPD_SET_BEACON:
  6725. ret = rtw_set_beacon(dev, param, p->length);
  6726. break;
  6727. case RTL871X_SET_ENCRYPTION:
  6728. ret = rtw_set_encryption(dev, param, p->length);
  6729. break;
  6730. case RTL871X_HOSTAPD_GET_WPAIE_STA:
  6731. ret = rtw_get_sta_wpaie(dev, param);
  6732. break;
  6733. case RTL871X_HOSTAPD_SET_WPS_BEACON:
  6734. ret = rtw_set_wps_beacon(dev, param, p->length);
  6735. break;
  6736. case RTL871X_HOSTAPD_SET_WPS_PROBE_RESP:
  6737. ret = rtw_set_wps_probe_resp(dev, param, p->length);
  6738. break;
  6739. case RTL871X_HOSTAPD_SET_WPS_ASSOC_RESP:
  6740. ret = rtw_set_wps_assoc_resp(dev, param, p->length);
  6741. break;
  6742. case RTL871X_HOSTAPD_SET_HIDDEN_SSID:
  6743. ret = rtw_set_hidden_ssid(dev, param, p->length);
  6744. break;
  6745. case RTL871X_HOSTAPD_GET_INFO_STA:
  6746. ret = rtw_ioctl_get_sta_data(dev, param, p->length);
  6747. break;
  6748. #if CONFIG_RTW_MACADDR_ACL
  6749. case RTL871X_HOSTAPD_SET_MACADDR_ACL:
  6750. ret = rtw_ioctl_set_macaddr_acl(dev, param, p->length);
  6751. break;
  6752. case RTL871X_HOSTAPD_ACL_ADD_STA:
  6753. ret = rtw_ioctl_acl_add_sta(dev, param, p->length);
  6754. break;
  6755. case RTL871X_HOSTAPD_ACL_REMOVE_STA:
  6756. ret = rtw_ioctl_acl_remove_sta(dev, param, p->length);
  6757. break;
  6758. #endif /* CONFIG_RTW_MACADDR_ACL */
  6759. default:
  6760. RTW_INFO("Unknown hostapd request: %d\n", param->cmd);
  6761. ret = -EOPNOTSUPP;
  6762. break;
  6763. }
  6764. if (ret == 0 && copy_to_user(p->pointer, param, p->length))
  6765. ret = -EFAULT;
  6766. rtw_mfree((u8 *)param, p->length);
  6767. out:
  6768. return ret;
  6769. }
  6770. #endif
  6771. static int rtw_wx_set_priv(struct net_device *dev,
  6772. struct iw_request_info *info,
  6773. union iwreq_data *awrq,
  6774. char *extra)
  6775. {
  6776. #ifdef CONFIG_DEBUG_RTW_WX_SET_PRIV
  6777. char *ext_dbg;
  6778. #endif
  6779. int ret = 0;
  6780. int len = 0;
  6781. char *ext;
  6782. int i;
  6783. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6784. struct iw_point *dwrq = (struct iw_point *)awrq;
  6785. if (dwrq->length == 0)
  6786. return -EFAULT;
  6787. len = dwrq->length;
  6788. ext = rtw_vmalloc(len);
  6789. if (!ext)
  6790. return -ENOMEM;
  6791. if (copy_from_user(ext, dwrq->pointer, len)) {
  6792. rtw_vmfree(ext, len);
  6793. return -EFAULT;
  6794. }
  6795. #ifdef CONFIG_DEBUG_RTW_WX_SET_PRIV
  6796. ext_dbg = rtw_vmalloc(len);
  6797. if (!ext_dbg) {
  6798. rtw_vmfree(ext, len);
  6799. return -ENOMEM;
  6800. }
  6801. _rtw_memcpy(ext_dbg, ext, len);
  6802. #endif
  6803. /* added for wps2.0 @20110524 */
  6804. if (dwrq->flags == 0x8766 && len > 8) {
  6805. u32 cp_sz;
  6806. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6807. u8 *probereq_wpsie = ext;
  6808. int probereq_wpsie_len = len;
  6809. u8 wps_oui[4] = {0x0, 0x50, 0xf2, 0x04};
  6810. if ((_VENDOR_SPECIFIC_IE_ == probereq_wpsie[0]) &&
  6811. (_rtw_memcmp(&probereq_wpsie[2], wps_oui, 4) == _TRUE)) {
  6812. cp_sz = probereq_wpsie_len > MAX_WPS_IE_LEN ? MAX_WPS_IE_LEN : probereq_wpsie_len;
  6813. if (pmlmepriv->wps_probe_req_ie) {
  6814. u32 free_len = pmlmepriv->wps_probe_req_ie_len;
  6815. pmlmepriv->wps_probe_req_ie_len = 0;
  6816. rtw_mfree(pmlmepriv->wps_probe_req_ie, free_len);
  6817. pmlmepriv->wps_probe_req_ie = NULL;
  6818. }
  6819. pmlmepriv->wps_probe_req_ie = rtw_malloc(cp_sz);
  6820. if (pmlmepriv->wps_probe_req_ie == NULL) {
  6821. printk("%s()-%d: rtw_malloc() ERROR!\n", __FUNCTION__, __LINE__);
  6822. ret = -EINVAL;
  6823. goto FREE_EXT;
  6824. }
  6825. _rtw_memcpy(pmlmepriv->wps_probe_req_ie, probereq_wpsie, cp_sz);
  6826. pmlmepriv->wps_probe_req_ie_len = cp_sz;
  6827. }
  6828. goto FREE_EXT;
  6829. }
  6830. if (len >= WEXT_CSCAN_HEADER_SIZE
  6831. && _rtw_memcmp(ext, WEXT_CSCAN_HEADER, WEXT_CSCAN_HEADER_SIZE) == _TRUE
  6832. ) {
  6833. ret = rtw_wx_set_scan(dev, info, awrq, ext);
  6834. goto FREE_EXT;
  6835. }
  6836. #ifdef CONFIG_ANDROID
  6837. /* RTW_INFO("rtw_wx_set_priv: %s req=%s\n", dev->name, ext); */
  6838. i = rtw_android_cmdstr_to_num(ext);
  6839. switch (i) {
  6840. case ANDROID_WIFI_CMD_START:
  6841. indicate_wx_custom_event(padapter, "START");
  6842. break;
  6843. case ANDROID_WIFI_CMD_STOP:
  6844. indicate_wx_custom_event(padapter, "STOP");
  6845. break;
  6846. case ANDROID_WIFI_CMD_RSSI: {
  6847. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  6848. struct wlan_network *pcur_network = &pmlmepriv->cur_network;
  6849. if (check_fwstate(pmlmepriv, _FW_LINKED) == _TRUE)
  6850. sprintf(ext, "%s rssi %d", pcur_network->network.Ssid.Ssid, padapter->recvpriv.rssi);
  6851. else
  6852. sprintf(ext, "OK");
  6853. }
  6854. break;
  6855. case ANDROID_WIFI_CMD_LINKSPEED: {
  6856. u16 mbps = rtw_get_cur_max_rate(padapter) / 10;
  6857. sprintf(ext, "LINKSPEED %d", mbps);
  6858. }
  6859. break;
  6860. case ANDROID_WIFI_CMD_MACADDR:
  6861. sprintf(ext, "MACADDR = " MAC_FMT, MAC_ARG(dev->dev_addr));
  6862. break;
  6863. case ANDROID_WIFI_CMD_SCAN_ACTIVE: {
  6864. /* rtw_set_scan_mode(padapter, SCAN_ACTIVE); */
  6865. sprintf(ext, "OK");
  6866. }
  6867. break;
  6868. case ANDROID_WIFI_CMD_SCAN_PASSIVE: {
  6869. /* rtw_set_scan_mode(padapter, SCAN_PASSIVE); */
  6870. sprintf(ext, "OK");
  6871. }
  6872. break;
  6873. case ANDROID_WIFI_CMD_COUNTRY: {
  6874. char country_code[10];
  6875. sscanf(ext, "%*s %s", country_code);
  6876. rtw_set_country(padapter, country_code);
  6877. sprintf(ext, "OK");
  6878. }
  6879. break;
  6880. default:
  6881. #ifdef CONFIG_DEBUG_RTW_WX_SET_PRIV
  6882. RTW_INFO("%s: %s unknowned req=%s\n", __FUNCTION__,
  6883. dev->name, ext_dbg);
  6884. #endif
  6885. sprintf(ext, "OK");
  6886. }
  6887. if (copy_to_user(dwrq->pointer, ext, min(dwrq->length, (u16)(strlen(ext) + 1))))
  6888. ret = -EFAULT;
  6889. #ifdef CONFIG_DEBUG_RTW_WX_SET_PRIV
  6890. RTW_INFO("%s: %s req=%s rep=%s dwrq->length=%d, strlen(ext)+1=%d\n", __FUNCTION__,
  6891. dev->name, ext_dbg , ext, dwrq->length, (u16)(strlen(ext) + 1));
  6892. #endif
  6893. #endif /* end of CONFIG_ANDROID */
  6894. FREE_EXT:
  6895. rtw_vmfree(ext, len);
  6896. #ifdef CONFIG_DEBUG_RTW_WX_SET_PRIV
  6897. rtw_vmfree(ext_dbg, len);
  6898. #endif
  6899. /* RTW_INFO("rtw_wx_set_priv: (SIOCSIWPRIV) %s ret=%d\n", */
  6900. /* dev->name, ret); */
  6901. return ret;
  6902. }
  6903. #ifdef CONFIG_WOWLAN
  6904. static int rtw_wowlan_ctrl(struct net_device *dev,
  6905. struct iw_request_info *info,
  6906. union iwreq_data *wrqu, char *extra)
  6907. {
  6908. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6909. struct wowlan_ioctl_param poidparam;
  6910. struct pwrctrl_priv *pwrctrlpriv = adapter_to_pwrctl(padapter);
  6911. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  6912. struct sta_info *psta = NULL;
  6913. int ret = 0;
  6914. u32 start_time = rtw_get_current_time();
  6915. poidparam.subcode = 0;
  6916. RTW_INFO("+rtw_wowlan_ctrl: %s\n", extra);
  6917. if (!check_fwstate(pmlmepriv, _FW_LINKED) &&
  6918. check_fwstate(pmlmepriv, WIFI_STATION_STATE)) {
  6919. #ifdef CONFIG_PNO_SUPPORT
  6920. pwrctrlpriv->wowlan_pno_enable = _TRUE;
  6921. #else
  6922. RTW_INFO("[%s] WARNING: Please Connect With AP First!!\n", __func__);
  6923. goto _rtw_wowlan_ctrl_exit_free;
  6924. #endif /* CONFIG_PNO_SUPPORT */
  6925. }
  6926. if (check_fwstate(pmlmepriv, _FW_UNDER_SURVEY))
  6927. rtw_scan_abort(padapter);
  6928. if (_rtw_memcmp(extra, "enable", 6))
  6929. rtw_suspend_common(padapter);
  6930. else if (_rtw_memcmp(extra, "disable", 7)) {
  6931. #ifdef CONFIG_USB_HCI
  6932. RTW_ENABLE_FUNC(padapter, DF_RX_BIT);
  6933. RTW_ENABLE_FUNC(padapter, DF_TX_BIT);
  6934. #endif
  6935. rtw_resume_common(padapter);
  6936. #ifdef CONFIG_PNO_SUPPORT
  6937. pwrctrlpriv->wowlan_pno_enable = _FALSE;
  6938. #endif /* CONFIG_PNO_SUPPORT */
  6939. } else {
  6940. RTW_INFO("[%s] Invalid Parameter.\n", __func__);
  6941. goto _rtw_wowlan_ctrl_exit_free;
  6942. }
  6943. /* mutex_lock(&ioctl_mutex); */
  6944. _rtw_wowlan_ctrl_exit_free:
  6945. RTW_INFO("-rtw_wowlan_ctrl( subcode = %d)\n", poidparam.subcode);
  6946. RTW_PRINT("%s in %d ms\n", __func__,
  6947. rtw_get_passing_time_ms(start_time));
  6948. _rtw_wowlan_ctrl_exit:
  6949. return ret;
  6950. }
  6951. /*
  6952. * IP filter This pattern if for a frame containing a ip packet:
  6953. * AA:AA:AA:AA:AA:AA:BB:BB:BB:BB:BB:BB:CC:CC:DD:-:-:-:-:-:-:-:-:EE:-:-:FF:FF:FF:FF:GG:GG:GG:GG:HH:HH:II:II
  6954. *
  6955. * A: Ethernet destination address
  6956. * B: Ethernet source address
  6957. * C: Ethernet protocol type
  6958. * D: IP header VER+Hlen, use: 0x45 (4 is for ver 4, 5 is for len 20)
  6959. * E: IP protocol
  6960. * F: IP source address ( 192.168.0.4: C0:A8:00:2C )
  6961. * G: IP destination address ( 192.168.0.4: C0:A8:00:2C )
  6962. * H: Source port (1024: 04:00)
  6963. * I: Destination port (1024: 04:00)
  6964. */
  6965. static int rtw_wowlan_set_pattern(struct net_device *dev,
  6966. struct iw_request_info *info,
  6967. union iwreq_data *wrqu, char *extra)
  6968. {
  6969. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  6970. struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(padapter);
  6971. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  6972. struct wowlan_ioctl_param poidparam;
  6973. int ret = 0, len = 0, i = 0;
  6974. u32 start_time = rtw_get_current_time();
  6975. u8 input[wrqu->data.length];
  6976. u8 index = 0;
  6977. poidparam.subcode = 0;
  6978. if (!check_fwstate(pmlmepriv, _FW_LINKED) &&
  6979. check_fwstate(pmlmepriv, WIFI_STATION_STATE)) {
  6980. ret = -EFAULT;
  6981. RTW_INFO("Please Connect With AP First!!\n");
  6982. goto _rtw_wowlan_set_pattern_exit;
  6983. }
  6984. if (wrqu->data.length <= 0) {
  6985. ret = -EFAULT;
  6986. RTW_INFO("ERROR: parameter length <= 0\n");
  6987. goto _rtw_wowlan_set_pattern_exit;
  6988. } else {
  6989. /* set pattern */
  6990. if (copy_from_user(input,
  6991. wrqu->data.pointer, wrqu->data.length))
  6992. return -EFAULT;
  6993. /* leave PS first */
  6994. rtw_ps_deny(padapter, PS_DENY_IOCTL);
  6995. LeaveAllPowerSaveModeDirect(padapter);
  6996. if (strncmp(input, "pattern=", 8) == 0) {
  6997. if (pwrpriv->wowlan_pattern_idx >= MAX_WKFM_CAM_NUM) {
  6998. RTW_INFO("WARNING: priv-pattern is full(idx: %d)\n",
  6999. pwrpriv->wowlan_pattern_idx);
  7000. RTW_INFO("WARNING: please clean priv-pattern first\n");
  7001. ret = -EINVAL;
  7002. goto _rtw_wowlan_set_pattern_exit;
  7003. } else {
  7004. index = pwrpriv->wowlan_pattern_idx;
  7005. ret = rtw_wowlan_parser_pattern_cmd(input,
  7006. pwrpriv->patterns[index].content,
  7007. &pwrpriv->patterns[index].len,
  7008. pwrpriv->patterns[index].mask);
  7009. if (ret == _TRUE)
  7010. pwrpriv->wowlan_pattern_idx++;
  7011. }
  7012. } else if (strncmp(input, "clean", 5) == 0) {
  7013. poidparam.subcode = WOWLAN_PATTERN_CLEAN;
  7014. rtw_hal_set_hwreg(padapter,
  7015. HW_VAR_WOWLAN, (u8 *)&poidparam);
  7016. } else if (strncmp(input, "show", 4) == 0) {
  7017. rtw_wow_pattern_cam_dump(padapter);
  7018. rtw_wow_pattern_sw_dump(padapter);
  7019. } else {
  7020. RTW_INFO("ERROR: incorrect parameter!\n");
  7021. ret = -EINVAL;
  7022. }
  7023. rtw_ps_deny_cancel(padapter, PS_DENY_IOCTL);
  7024. }
  7025. _rtw_wowlan_set_pattern_exit:
  7026. return ret;
  7027. }
  7028. #endif /* CONFIG_WOWLAN */
  7029. #ifdef CONFIG_AP_WOWLAN
  7030. static int rtw_ap_wowlan_ctrl(struct net_device *dev,
  7031. struct iw_request_info *info,
  7032. union iwreq_data *wrqu, char *extra)
  7033. {
  7034. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  7035. struct wowlan_ioctl_param poidparam;
  7036. struct pwrctrl_priv *pwrctrlpriv = adapter_to_pwrctl(padapter);
  7037. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  7038. struct sta_info *psta = NULL;
  7039. int ret = 0;
  7040. u32 start_time = rtw_get_current_time();
  7041. poidparam.subcode = 0;
  7042. RTW_INFO("+rtw_ap_wowlan_ctrl: %s\n", extra);
  7043. if (!check_fwstate(pmlmepriv, WIFI_AP_STATE)) {
  7044. RTW_INFO("[%s] It is not AP mode!!\n", __func__);
  7045. goto _rtw_ap_wowlan_ctrl_exit_free;
  7046. }
  7047. if (_rtw_memcmp(extra, "enable", 6)) {
  7048. pwrctrlpriv->wowlan_ap_mode = _TRUE;
  7049. rtw_suspend_common(padapter);
  7050. } else if (_rtw_memcmp(extra, "disable", 7)) {
  7051. #ifdef CONFIG_USB_HCI
  7052. RTW_ENABLE_FUNC(padapter, DF_RX_BIT);
  7053. RTW_ENABLE_FUNC(padapter, DF_TX_BIT);
  7054. #endif
  7055. rtw_resume_common(padapter);
  7056. } else {
  7057. RTW_INFO("[%s] Invalid Parameter.\n", __func__);
  7058. goto _rtw_ap_wowlan_ctrl_exit_free;
  7059. }
  7060. /* mutex_lock(&ioctl_mutex); */
  7061. _rtw_ap_wowlan_ctrl_exit_free:
  7062. RTW_INFO("-rtw_ap_wowlan_ctrl( subcode = %d)\n", poidparam.subcode);
  7063. RTW_PRINT("%s in %d ms\n", __func__,
  7064. rtw_get_passing_time_ms(start_time));
  7065. _rtw_ap_wowlan_ctrl_exit:
  7066. return ret;
  7067. }
  7068. #endif /* CONFIG_AP_WOWLAN */
  7069. static int rtw_pm_set(struct net_device *dev,
  7070. struct iw_request_info *info,
  7071. union iwreq_data *wrqu, char *extra)
  7072. {
  7073. int ret = 0;
  7074. unsigned mode = 0;
  7075. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  7076. RTW_INFO("[%s] extra = %s\n", __FUNCTION__, extra);
  7077. if (_rtw_memcmp(extra, "lps=", 4)) {
  7078. sscanf(extra + 4, "%u", &mode);
  7079. ret = rtw_pm_set_lps(padapter, mode);
  7080. } else if (_rtw_memcmp(extra, "ips=", 4)) {
  7081. sscanf(extra + 4, "%u", &mode);
  7082. ret = rtw_pm_set_ips(padapter, mode);
  7083. } else if (_rtw_memcmp(extra, "lps_level=", 10)) {
  7084. if (sscanf(extra + 10, "%u", &mode) > 0)
  7085. ret = rtw_pm_set_lps_level(padapter, mode);
  7086. } else
  7087. ret = -EINVAL;
  7088. return ret;
  7089. }
  7090. #ifdef CONFIG_APPEND_VENDOR_IE_ENABLE
  7091. int rtw_vendor_ie_get_raw_data(struct net_device *dev, u32 vendor_ie_num,
  7092. char *extra, u32 length)
  7093. {
  7094. int j;
  7095. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  7096. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  7097. u32 vendor_ie_mask = 0;
  7098. char *pstring;
  7099. if (vendor_ie_num >= WLAN_MAX_VENDOR_IE_NUM) {
  7100. RTW_INFO("[%s] only support %d vendor ie\n", __func__ ,
  7101. WLAN_MAX_VENDOR_IE_NUM);
  7102. return -EFAULT;
  7103. }
  7104. if (pmlmepriv->vendor_ielen[vendor_ie_num] == 0) {
  7105. RTW_INFO("[%s] Fail, vendor_ie_num: %d is not set\n", __func__,
  7106. vendor_ie_num);
  7107. return -EFAULT;
  7108. }
  7109. if (length < 2 * pmlmepriv->vendor_ielen[vendor_ie_num] + 5) {
  7110. RTW_INFO("[%s] Fail, buffer size is too small\n", __func__);
  7111. return -EFAULT;
  7112. }
  7113. vendor_ie_mask = pmlmepriv->vendor_ie_mask[vendor_ie_num];
  7114. _rtw_memset(extra, 0, length);
  7115. pstring = extra;
  7116. pstring += sprintf(pstring, "%d,%x,", vendor_ie_num, vendor_ie_mask);
  7117. for (j = 0; j < pmlmepriv->vendor_ielen[vendor_ie_num]; j++)
  7118. pstring += sprintf(pstring, "%02x", pmlmepriv->vendor_ie[vendor_ie_num][j]);
  7119. length = pstring - extra;
  7120. return length;
  7121. }
  7122. int rtw_vendor_ie_get_data(struct net_device *dev, int vendor_ie_num, char *extra)
  7123. {
  7124. int j;
  7125. char *pstring;
  7126. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  7127. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  7128. u32 vendor_ie_mask = 0;
  7129. __u16 length = 0;
  7130. vendor_ie_mask = pmlmepriv->vendor_ie_mask[vendor_ie_num];
  7131. pstring = extra;
  7132. pstring += sprintf(pstring , "\nVendor IE num %d , Mask:%x " , vendor_ie_num , vendor_ie_mask);
  7133. if (vendor_ie_mask & WIFI_BEACON_VENDOR_IE_BIT)
  7134. pstring += sprintf(pstring , "[Beacon]");
  7135. if (vendor_ie_mask & WIFI_PROBEREQ_VENDOR_IE_BIT)
  7136. pstring += sprintf(pstring , "[Probe Req]");
  7137. if (vendor_ie_mask & WIFI_PROBERESP_VENDOR_IE_BIT)
  7138. pstring += sprintf(pstring , "[Probe Resp]");
  7139. if (vendor_ie_mask & WIFI_ASSOCREQ_VENDOR_IE_BIT)
  7140. pstring += sprintf(pstring , "[Assoc Req]");
  7141. if (vendor_ie_mask & WIFI_ASSOCRESP_VENDOR_IE_BIT)
  7142. pstring += sprintf(pstring , "[Assoc Resp]");
  7143. pstring += sprintf(pstring , "\nVendor IE:\n");
  7144. for (j = 0 ; j < pmlmepriv->vendor_ielen[vendor_ie_num] ; j++)
  7145. pstring += sprintf(pstring , "%02x" , pmlmepriv->vendor_ie[vendor_ie_num][j]);
  7146. length = pstring - extra;
  7147. return length;
  7148. }
  7149. int rtw_vendor_ie_get(struct net_device *dev, struct iw_request_info *info, union iwreq_data *wrqu, char *extra)
  7150. {
  7151. int ret = 0, vendor_ie_num = 0, cmdlen;
  7152. struct iw_point *p;
  7153. u8 *ptmp;
  7154. p = &wrqu->data;
  7155. cmdlen = p->length;
  7156. if (0 == cmdlen)
  7157. return -EINVAL;
  7158. ptmp = (u8 *)rtw_malloc(cmdlen);
  7159. if (NULL == ptmp)
  7160. return -ENOMEM;
  7161. if (copy_from_user(ptmp, p->pointer, cmdlen)) {
  7162. ret = -EFAULT;
  7163. goto exit;
  7164. }
  7165. ret = sscanf(ptmp , "%d", &vendor_ie_num);
  7166. if (vendor_ie_num > WLAN_MAX_VENDOR_IE_NUM - 1) {
  7167. ret = -EFAULT;
  7168. goto exit;
  7169. }
  7170. wrqu->data.length = rtw_vendor_ie_get_data(dev, vendor_ie_num, extra);
  7171. exit:
  7172. rtw_mfree(ptmp, cmdlen);
  7173. return 0;
  7174. }
  7175. int rtw_vendor_ie_set(struct net_device *dev, struct iw_request_info *info, union iwreq_data *wrqu, char *extra)
  7176. {
  7177. int ret = 0, i , len = 0 , totoal_ie_len = 0 , total_ie_len_byte = 0;
  7178. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  7179. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  7180. u32 vendor_ie_mask = 0;
  7181. u32 vendor_ie_num = 0;
  7182. u32 id, elen;
  7183. ret = sscanf(extra, "%d,%x,%*s", &vendor_ie_num , &vendor_ie_mask);
  7184. if (strrchr(extra , ','))
  7185. extra = strrchr(extra , ',') + 1;
  7186. else
  7187. return -EINVAL;
  7188. totoal_ie_len = strlen(extra);
  7189. RTW_INFO("[%s] vendor_ie_num = %d , vendor_ie_mask = %x , vendor_ie = %s , len = %d\n", __func__ , vendor_ie_num , vendor_ie_mask , extra , totoal_ie_len);
  7190. if (vendor_ie_num > WLAN_MAX_VENDOR_IE_NUM - 1) {
  7191. RTW_INFO("[%s] only support %d vendor ie\n", __func__ , WLAN_MAX_VENDOR_IE_NUM);
  7192. return -EFAULT;
  7193. }
  7194. if (totoal_ie_len > WLAN_MAX_VENDOR_IE_LEN) {
  7195. RTW_INFO("[%s] Fail , not support ie length extend %d\n", __func__ , WLAN_MAX_VENDOR_IE_LEN);
  7196. return -EFAULT;
  7197. }
  7198. if (vendor_ie_mask == 0) {
  7199. RTW_INFO("[%s] Clear vendor_ie_num %d group\n", __func__ , vendor_ie_num);
  7200. goto _clear_path;
  7201. }
  7202. if (totoal_ie_len % 2 != 0) {
  7203. RTW_INFO("[%s] Fail , IE length = %zu is odd\n" , __func__ , strlen(extra));
  7204. return -EFAULT;
  7205. }
  7206. if (totoal_ie_len > 0) {
  7207. for (i = 0 ; i < strlen(extra) ; i += 2) {
  7208. pmlmepriv->vendor_ie[vendor_ie_num][len] = key_2char2num(extra[i] , extra[i + 1]);
  7209. if (len == 0) {
  7210. id = pmlmepriv->vendor_ie[vendor_ie_num][len];
  7211. if (id != WLAN_EID_VENDOR_SPECIFIC) {
  7212. RTW_INFO("[%s] Fail , VENDOR SPECIFIC IE ID \"%x\" was not correct\n", __func__ , id);
  7213. goto _clear_path;
  7214. }
  7215. } else if (len == 1) {
  7216. total_ie_len_byte = (totoal_ie_len / 2) - 2;
  7217. elen = pmlmepriv->vendor_ie[vendor_ie_num][len];
  7218. if (elen != total_ie_len_byte) {
  7219. RTW_INFO("[%s] Fail , Input IE length = \"%d\"(hex:%x) bytes , not match input total IE context length \"%d\" bytes\n", __func__ , elen , elen ,
  7220. total_ie_len_byte);
  7221. goto _clear_path;
  7222. }
  7223. }
  7224. len++;
  7225. }
  7226. pmlmepriv->vendor_ielen[vendor_ie_num] = len;
  7227. } else
  7228. pmlmepriv->vendor_ielen[vendor_ie_num] = 0;
  7229. if (vendor_ie_mask & WIFI_BEACON_VENDOR_IE_BIT)
  7230. RTW_INFO("[%s] Beacon append vendor ie\n", __func__);
  7231. if (vendor_ie_mask & WIFI_PROBEREQ_VENDOR_IE_BIT)
  7232. RTW_INFO("[%s] Probe Req append vendor ie\n", __func__);
  7233. if (vendor_ie_mask & WIFI_PROBERESP_VENDOR_IE_BIT)
  7234. RTW_INFO("[%s] Probe Resp append vendor ie\n", __func__);
  7235. if (vendor_ie_mask & WIFI_ASSOCREQ_VENDOR_IE_BIT)
  7236. RTW_INFO("[%s] Assoc Req append vendor ie\n", __func__);
  7237. if (vendor_ie_mask & WIFI_ASSOCRESP_VENDOR_IE_BIT)
  7238. RTW_INFO("[%s] Assoc Resp append vendor ie\n", __func__);
  7239. pmlmepriv->vendor_ie_mask[vendor_ie_num] = vendor_ie_mask;
  7240. return ret;
  7241. _clear_path:
  7242. _rtw_memset(pmlmepriv->vendor_ie[vendor_ie_num] , 0 , sizeof(u32) * WLAN_MAX_VENDOR_IE_LEN);
  7243. pmlmepriv->vendor_ielen[vendor_ie_num] = 0;
  7244. pmlmepriv->vendor_ie_mask[vendor_ie_num] = 0;
  7245. return -EFAULT;
  7246. }
  7247. #endif
  7248. static int rtw_mp_efuse_get(struct net_device *dev,
  7249. struct iw_request_info *info,
  7250. union iwreq_data *wdata, char *extra)
  7251. {
  7252. PADAPTER padapter = rtw_netdev_priv(dev);
  7253. HAL_DATA_TYPE *pHalData = GET_HAL_DATA(padapter);
  7254. PEFUSE_HAL pEfuseHal;
  7255. struct iw_point *wrqu;
  7256. u8 *PROMContent = pHalData->efuse_eeprom_data;
  7257. u8 ips_mode = IPS_NUM; /* init invalid value */
  7258. u8 lps_mode = PS_MODE_NUM; /* init invalid value */
  7259. struct pwrctrl_priv *pwrctrlpriv ;
  7260. u8 *data = NULL;
  7261. u8 *rawdata = NULL;
  7262. char *pch, *ptmp, *token, *tmp[3] = {0x00, 0x00, 0x00};
  7263. u16 i = 0, j = 0, mapLen = 0, addr = 0, cnts = 0;
  7264. u16 max_available_len = 0, raw_cursize = 0, raw_maxsize = 0;
  7265. u16 mask_len;
  7266. u8 mask_buf[64] = "";
  7267. int err;
  7268. #ifdef CONFIG_IOL
  7269. u8 org_fw_iol = padapter->registrypriv.fw_iol;/* 0:Disable, 1:enable, 2:by usb speed */
  7270. #endif
  7271. wrqu = (struct iw_point *)wdata;
  7272. pwrctrlpriv = adapter_to_pwrctl(padapter);
  7273. pEfuseHal = &pHalData->EfuseHal;
  7274. err = 0;
  7275. data = rtw_zmalloc(EFUSE_BT_MAX_MAP_LEN);
  7276. if (data == NULL) {
  7277. err = -ENOMEM;
  7278. goto exit;
  7279. }
  7280. rawdata = rtw_zmalloc(EFUSE_BT_MAX_MAP_LEN);
  7281. if (rawdata == NULL) {
  7282. err = -ENOMEM;
  7283. goto exit;
  7284. }
  7285. if (copy_from_user(extra, wrqu->pointer, wrqu->length)) {
  7286. err = -EFAULT;
  7287. goto exit;
  7288. }
  7289. #ifdef CONFIG_LPS
  7290. lps_mode = pwrctrlpriv->power_mgnt;/* keep org value */
  7291. rtw_pm_set_lps(padapter, PS_MODE_ACTIVE);
  7292. #endif
  7293. #ifdef CONFIG_IPS
  7294. ips_mode = pwrctrlpriv->ips_mode;/* keep org value */
  7295. rtw_pm_set_ips(padapter, IPS_NONE);
  7296. #endif
  7297. pch = extra;
  7298. RTW_INFO("%s: in=%s\n", __FUNCTION__, extra);
  7299. i = 0;
  7300. /* mac 16 "00e04c871200" rmap,00,2 */
  7301. while ((token = strsep(&pch, ",")) != NULL) {
  7302. if (i > 2)
  7303. break;
  7304. tmp[i] = token;
  7305. i++;
  7306. }
  7307. #ifdef CONFIG_IOL
  7308. padapter->registrypriv.fw_iol = 0;/* 0:Disable, 1:enable, 2:by usb speed */
  7309. #endif
  7310. if (strcmp(tmp[0], "status") == 0) {
  7311. sprintf(extra, "Load File efuse=%s,Load File MAC=%s"
  7312. , pHalData->efuse_file_status == EFUSE_FILE_FAILED ? "FAIL" : "OK"
  7313. , pHalData->macaddr_file_status == MACADDR_FILE_FAILED ? "FAIL" : "OK"
  7314. );
  7315. goto exit;
  7316. } else if (strcmp(tmp[0], "drvmap") == 0) {
  7317. static u8 drvmaporder = 0;
  7318. u8 *efuse;
  7319. u32 shift, cnt;
  7320. u32 blksz = 0x200; /* The size of one time show, default 512 */
  7321. EFUSE_GetEfuseDefinition(padapter, EFUSE_WIFI, TYPE_EFUSE_MAP_LEN, (void *)&mapLen, _FALSE);
  7322. efuse = pHalData->efuse_eeprom_data;
  7323. shift = blksz * drvmaporder;
  7324. efuse += shift;
  7325. cnt = mapLen - shift;
  7326. if (cnt > blksz) {
  7327. cnt = blksz;
  7328. drvmaporder++;
  7329. } else
  7330. drvmaporder = 0;
  7331. sprintf(extra, "\n");
  7332. for (i = 0; i < cnt; i += 16) {
  7333. sprintf(extra, "%s0x%02x\t", extra, shift + i);
  7334. for (j = 0; j < 8; j++)
  7335. sprintf(extra, "%s%02X ", extra, efuse[i + j]);
  7336. sprintf(extra, "%s\t", extra);
  7337. for (; j < 16; j++)
  7338. sprintf(extra, "%s%02X ", extra, efuse[i + j]);
  7339. sprintf(extra, "%s\n", extra);
  7340. }
  7341. if ((shift + cnt) < mapLen)
  7342. sprintf(extra, "%s\t...more (left:%d/%d)\n", extra, mapLen-(shift + cnt), mapLen);
  7343. } else if (strcmp(tmp[0], "realmap") == 0) {
  7344. static u8 order = 0;
  7345. u8 *efuse;
  7346. u32 shift, cnt;
  7347. u32 blksz = 0x200; /* The size of one time show, default 512 */
  7348. EFUSE_GetEfuseDefinition(padapter, EFUSE_WIFI, TYPE_EFUSE_MAP_LEN , (void *)&mapLen, _FALSE);
  7349. efuse = pEfuseHal->fakeEfuseInitMap;
  7350. if (rtw_efuse_mask_map_read(padapter, 0, mapLen, efuse) == _FAIL) {
  7351. RTW_INFO("%s: read realmap Fail!!\n", __FUNCTION__);
  7352. err = -EFAULT;
  7353. goto exit;
  7354. }
  7355. #if 0
  7356. RTW_INFO("OFFSET\tVALUE(hex)\n");
  7357. for (i = 0; i < mapLen; i += 16) {
  7358. RTW_INFO("0x%02x\t", i);
  7359. for (j = 0; j < 8; j++)
  7360. RTW_INFO("%02X ", efuse[i + j]);
  7361. RTW_INFO("\t");
  7362. for (; j < 16; j++)
  7363. RTW_INFO("%02X ", efuse[i + j]);
  7364. RTW_INFO("\n");
  7365. }
  7366. RTW_INFO("\n");
  7367. #endif
  7368. shift = blksz * order;
  7369. efuse += shift;
  7370. cnt = mapLen - shift;
  7371. if (cnt > blksz) {
  7372. cnt = blksz;
  7373. order++;
  7374. } else
  7375. order = 0;
  7376. sprintf(extra, "\n");
  7377. for (i = 0; i < cnt; i += 16) {
  7378. sprintf(extra, "%s0x%02x\t", extra, shift + i);
  7379. for (j = 0; j < 8; j++)
  7380. sprintf(extra, "%s%02X ", extra, efuse[i + j]);
  7381. sprintf(extra, "%s\t", extra);
  7382. for (; j < 16; j++)
  7383. sprintf(extra, "%s%02X ", extra, efuse[i + j]);
  7384. sprintf(extra, "%s\n", extra);
  7385. }
  7386. if ((shift + cnt) < mapLen)
  7387. sprintf(extra, "%s\t...more (left:%d/%d)\n", extra, mapLen-(shift + cnt), mapLen);
  7388. } else if (strcmp(tmp[0], "rmap") == 0) {
  7389. if ((tmp[1] == NULL) || (tmp[2] == NULL)) {
  7390. RTW_INFO("%s: rmap Fail!! Parameters error!\n", __FUNCTION__);
  7391. err = -EINVAL;
  7392. goto exit;
  7393. }
  7394. /* rmap addr cnts */
  7395. addr = simple_strtoul(tmp[1], &ptmp, 16);
  7396. RTW_INFO("%s: addr=%x\n", __FUNCTION__, addr);
  7397. cnts = simple_strtoul(tmp[2], &ptmp, 10);
  7398. if (cnts == 0) {
  7399. RTW_INFO("%s: rmap Fail!! cnts error!\n", __FUNCTION__);
  7400. err = -EINVAL;
  7401. goto exit;
  7402. }
  7403. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  7404. EFUSE_GetEfuseDefinition(padapter, EFUSE_WIFI, TYPE_EFUSE_MAP_LEN , (PVOID)&max_available_len, _FALSE);
  7405. if ((addr + cnts) > max_available_len) {
  7406. RTW_INFO("%s: addr(0x%X)+cnts(%d) parameter error!\n", __FUNCTION__, addr, cnts);
  7407. err = -EINVAL;
  7408. goto exit;
  7409. }
  7410. if (rtw_efuse_mask_map_read(padapter, addr, cnts, data) == _FAIL) {
  7411. RTW_INFO("%s: rtw_efuse_mask_map_read error!\n", __func__);
  7412. err = -EFAULT;
  7413. goto exit;
  7414. }
  7415. /* RTW_INFO("%s: data={", __FUNCTION__); */
  7416. *extra = 0;
  7417. for (i = 0; i < cnts; i++) {
  7418. /* RTW_INFO("0x%02x ", data[i]); */
  7419. sprintf(extra, "%s0x%02X ", extra, data[i]);
  7420. }
  7421. /* RTW_INFO("}\n"); */
  7422. } else if (strcmp(tmp[0], "realraw") == 0) {
  7423. static u8 raw_order = 0;
  7424. u32 shift, cnt;
  7425. u32 blksz = 0x200; /* The size of one time show, default 512 */
  7426. addr = 0;
  7427. EFUSE_GetEfuseDefinition(padapter, EFUSE_WIFI, TYPE_EFUSE_REAL_CONTENT_LEN , (PVOID)&mapLen, _FALSE);
  7428. RTW_INFO("Real content len = %d\n",mapLen );
  7429. if (rtw_efuse_access(padapter, _FALSE, addr, mapLen, rawdata) == _FAIL) {
  7430. RTW_INFO("%s: rtw_efuse_access Fail!!\n", __func__);
  7431. err = -EFAULT;
  7432. goto exit;
  7433. }
  7434. _rtw_memset(extra, '\0', strlen(extra));
  7435. shift = blksz * raw_order;
  7436. rawdata += shift;
  7437. cnt = mapLen - shift;
  7438. if (cnt > blksz) {
  7439. cnt = blksz;
  7440. raw_order++;
  7441. } else
  7442. raw_order = 0;
  7443. sprintf(extra, "\n");
  7444. for (i = 0; i < cnt; i += 16) {
  7445. sprintf(extra, "%s0x%02x\t", extra, shift + i);
  7446. for (j = 0; j < 8; j++)
  7447. sprintf(extra, "%s%02X ", extra, rawdata[i + j]);
  7448. sprintf(extra, "%s\t", extra);
  7449. for (; j < 16; j++)
  7450. sprintf(extra, "%s%02X ", extra, rawdata[i + j]);
  7451. sprintf(extra, "%s\n", extra);
  7452. }
  7453. if ((shift + cnt) < mapLen)
  7454. sprintf(extra, "%s\t...more (left:%d/%d)\n", extra, mapLen-(shift + cnt), mapLen);
  7455. } else if (strcmp(tmp[0], "btrealraw") == 0) {
  7456. static u8 bt_raw_order = 0;
  7457. u32 shift, cnt;
  7458. u32 blksz = 0x200; /* The size of one time show, default 512 */
  7459. addr = 0;
  7460. EFUSE_GetEfuseDefinition(padapter, EFUSE_BT, TYPE_EFUSE_REAL_CONTENT_LEN, (PVOID)&mapLen, _FALSE);
  7461. RTW_INFO("Real content len = %d\n", mapLen);
  7462. #ifdef RTW_HALMAC
  7463. if (rtw_efuse_bt_access(padapter, _FALSE, 0, mapLen, rawdata) == _FAIL) {
  7464. RTW_INFO("%s: rtw_efuse_access Fail!!\n", __func__);
  7465. err = -EFAULT;
  7466. goto exit;
  7467. }
  7468. #else
  7469. rtw_write8(padapter, 0x35, 0x1);
  7470. if (rtw_efuse_access(padapter, _FALSE, addr, mapLen, rawdata) == _FAIL) {
  7471. RTW_INFO("%s: rtw_efuse_access Fail!!\n", __func__);
  7472. err = -EFAULT;
  7473. goto exit;
  7474. }
  7475. #endif
  7476. _rtw_memset(extra, '\0', strlen(extra));
  7477. shift = blksz * bt_raw_order;
  7478. rawdata += shift;
  7479. cnt = mapLen - shift;
  7480. if (cnt > blksz) {
  7481. cnt = blksz;
  7482. bt_raw_order++;
  7483. } else
  7484. bt_raw_order = 0;
  7485. sprintf(extra, "\n");
  7486. for (i = 0; i < cnt; i += 16) {
  7487. sprintf(extra, "%s0x%02x\t", extra, shift + i);
  7488. for (j = 0; j < 8; j++)
  7489. sprintf(extra, "%s%02X ", extra, rawdata[i + j]);
  7490. sprintf(extra, "%s\t", extra);
  7491. for (; j < 16; j++)
  7492. sprintf(extra, "%s%02X ", extra, rawdata[i + j]);
  7493. sprintf(extra, "%s\n", extra);
  7494. }
  7495. if ((shift + cnt) < mapLen)
  7496. sprintf(extra, "%s\t...more (left:%d/%d)\n", extra, mapLen-(shift + cnt), mapLen);
  7497. } else if (strcmp(tmp[0], "mac") == 0) {
  7498. if (hal_efuse_macaddr_offset(padapter) == -1) {
  7499. err = -EFAULT;
  7500. goto exit;
  7501. }
  7502. addr = hal_efuse_macaddr_offset(padapter);
  7503. cnts = 6;
  7504. EFUSE_GetEfuseDefinition(padapter, EFUSE_WIFI, TYPE_EFUSE_MAP_LEN, (PVOID)&max_available_len, _FALSE);
  7505. if ((addr + cnts) > max_available_len) {
  7506. RTW_INFO("%s: addr(0x%02x)+cnts(%d) parameter error!\n", __FUNCTION__, addr, cnts);
  7507. err = -EFAULT;
  7508. goto exit;
  7509. }
  7510. if (rtw_efuse_mask_map_read(padapter, addr, cnts, data) == _FAIL) {
  7511. RTW_INFO("%s: rtw_efuse_mask_map_read error!\n", __func__);
  7512. err = -EFAULT;
  7513. goto exit;
  7514. }
  7515. /* RTW_INFO("%s: MAC address={", __FUNCTION__); */
  7516. *extra = 0;
  7517. for (i = 0; i < cnts; i++) {
  7518. /* RTW_INFO("%02X", data[i]); */
  7519. sprintf(extra, "%s%02X", extra, data[i]);
  7520. if (i != (cnts - 1)) {
  7521. /* RTW_INFO(":"); */
  7522. sprintf(extra, "%s:", extra);
  7523. }
  7524. }
  7525. /* RTW_INFO("}\n"); */
  7526. } else if (strcmp(tmp[0], "vidpid") == 0) {
  7527. #ifdef CONFIG_RTL8188E
  7528. #ifdef CONFIG_USB_HCI
  7529. addr = EEPROM_VID_88EU;
  7530. #endif
  7531. #ifdef CONFIG_PCI_HCI
  7532. addr = EEPROM_VID_88EE;
  7533. #endif
  7534. #endif /* CONFIG_RTL8188E */
  7535. #ifdef CONFIG_RTL8192E
  7536. #ifdef CONFIG_USB_HCI
  7537. addr = EEPROM_VID_8192EU;
  7538. #endif
  7539. #ifdef CONFIG_PCI_HCI
  7540. addr = EEPROM_VID_8192EE;
  7541. #endif
  7542. #endif /* CONFIG_RTL8192E */
  7543. #ifdef CONFIG_RTL8723B
  7544. addr = EEPROM_VID_8723BU;
  7545. #endif /* CONFIG_RTL8192E */
  7546. #ifdef CONFIG_RTL8188F
  7547. addr = EEPROM_VID_8188FU;
  7548. #endif /* CONFIG_RTL8188F */
  7549. #ifdef CONFIG_RTL8703B
  7550. #ifdef CONFIG_USB_HCI
  7551. addr = EEPROM_VID_8703BU;
  7552. #endif
  7553. #endif /* CONFIG_RTL8703B */
  7554. #ifdef CONFIG_RTL8723D
  7555. #ifdef CONFIG_USB_HCI
  7556. addr = EEPROM_VID_8723DU;
  7557. #endif /* CONFIG_USB_HCI */
  7558. #endif /* CONFIG_RTL8723D */
  7559. cnts = 4;
  7560. EFUSE_GetEfuseDefinition(padapter, EFUSE_WIFI, TYPE_EFUSE_MAP_LEN, (PVOID)&max_available_len, _FALSE);
  7561. if ((addr + cnts) > max_available_len) {
  7562. RTW_INFO("%s: addr(0x%02x)+cnts(%d) parameter error!\n", __FUNCTION__, addr, cnts);
  7563. err = -EFAULT;
  7564. goto exit;
  7565. }
  7566. if (rtw_efuse_mask_map_read(padapter, addr, cnts, data) == _FAIL) {
  7567. RTW_INFO("%s: rtw_efuse_access error!!\n", __FUNCTION__);
  7568. err = -EFAULT;
  7569. goto exit;
  7570. }
  7571. /* RTW_INFO("%s: {VID,PID}={", __FUNCTION__); */
  7572. *extra = 0;
  7573. for (i = 0; i < cnts; i++) {
  7574. /* RTW_INFO("0x%02x", data[i]); */
  7575. sprintf(extra, "%s0x%02X", extra, data[i]);
  7576. if (i != (cnts - 1)) {
  7577. /* RTW_INFO(","); */
  7578. sprintf(extra, "%s,", extra);
  7579. }
  7580. }
  7581. /* RTW_INFO("}\n"); */
  7582. } else if (strcmp(tmp[0], "ableraw") == 0) {
  7583. #ifdef RTW_HALMAC
  7584. raw_maxsize = efuse_GetavailableSize(padapter);
  7585. #else
  7586. efuse_GetCurrentSize(padapter, &raw_cursize);
  7587. raw_maxsize = efuse_GetMaxSize(padapter);
  7588. #endif
  7589. sprintf(extra, "[available raw size]= %d bytes\n", raw_maxsize - raw_cursize);
  7590. } else if (strcmp(tmp[0], "btableraw") == 0) {
  7591. efuse_bt_GetCurrentSize(padapter, &raw_cursize);
  7592. raw_maxsize = efuse_bt_GetMaxSize(padapter);
  7593. sprintf(extra, "[available raw size]= %d bytes\n", raw_maxsize - raw_cursize);
  7594. } else if (strcmp(tmp[0], "btfmap") == 0) {
  7595. BTEfuse_PowerSwitch(padapter, 1, _TRUE);
  7596. mapLen = EFUSE_BT_MAX_MAP_LEN;
  7597. if (rtw_BT_efuse_map_read(padapter, 0, mapLen, pEfuseHal->BTEfuseInitMap) == _FAIL) {
  7598. RTW_INFO("%s: rtw_BT_efuse_map_read Fail!!\n", __FUNCTION__);
  7599. err = -EFAULT;
  7600. goto exit;
  7601. }
  7602. /* RTW_INFO("OFFSET\tVALUE(hex)\n"); */
  7603. sprintf(extra, "\n");
  7604. for (i = 0; i < 512; i += 16) { /* set 512 because the iwpriv's extra size have limit 0x7FF */
  7605. /* RTW_INFO("0x%03x\t", i); */
  7606. sprintf(extra, "%s0x%03x\t", extra, i);
  7607. for (j = 0; j < 8; j++) {
  7608. /* RTW_INFO("%02X ", pEfuseHal->BTEfuseInitMap[i+j]); */
  7609. sprintf(extra, "%s%02X ", extra, pEfuseHal->BTEfuseInitMap[i + j]);
  7610. }
  7611. /* RTW_INFO("\t"); */
  7612. sprintf(extra, "%s\t", extra);
  7613. for (; j < 16; j++) {
  7614. /* RTW_INFO("%02X ", pEfuseHal->BTEfuseInitMap[i+j]); */
  7615. sprintf(extra, "%s%02X ", extra, pEfuseHal->BTEfuseInitMap[i + j]);
  7616. }
  7617. /* RTW_INFO("\n"); */
  7618. sprintf(extra, "%s\n", extra);
  7619. }
  7620. /* RTW_INFO("\n"); */
  7621. } else if (strcmp(tmp[0], "btbmap") == 0) {
  7622. BTEfuse_PowerSwitch(padapter, 1, _TRUE);
  7623. mapLen = EFUSE_BT_MAX_MAP_LEN;
  7624. if (rtw_BT_efuse_map_read(padapter, 0, mapLen, pEfuseHal->BTEfuseInitMap) == _FAIL) {
  7625. RTW_INFO("%s: rtw_BT_efuse_map_read Fail!!\n", __FUNCTION__);
  7626. err = -EFAULT;
  7627. goto exit;
  7628. }
  7629. /* RTW_INFO("OFFSET\tVALUE(hex)\n"); */
  7630. sprintf(extra, "\n");
  7631. for (i = 512; i < 1024 ; i += 16) {
  7632. /* RTW_INFO("0x%03x\t", i); */
  7633. sprintf(extra, "%s0x%03x\t", extra, i);
  7634. for (j = 0; j < 8; j++) {
  7635. /* RTW_INFO("%02X ", data[i+j]); */
  7636. sprintf(extra, "%s%02X ", extra, pEfuseHal->BTEfuseInitMap[i + j]);
  7637. }
  7638. /* RTW_INFO("\t"); */
  7639. sprintf(extra, "%s\t", extra);
  7640. for (; j < 16; j++) {
  7641. /* RTW_INFO("%02X ", data[i+j]); */
  7642. sprintf(extra, "%s%02X ", extra, pEfuseHal->BTEfuseInitMap[i + j]);
  7643. }
  7644. /* RTW_INFO("\n"); */
  7645. sprintf(extra, "%s\n", extra);
  7646. }
  7647. /* RTW_INFO("\n"); */
  7648. } else if (strcmp(tmp[0], "btrmap") == 0) {
  7649. u8 BTStatus;
  7650. rtw_write8(padapter, 0xa3, 0x05); /* For 8723AB ,8821S ? */
  7651. BTStatus = rtw_read8(padapter, 0xa0);
  7652. RTW_INFO("%s: Check 0xa0 BT Status =0x%x\n", __FUNCTION__, BTStatus);
  7653. if (BTStatus != 0x04) {
  7654. sprintf(extra, "BT Status not Active ,can't to read BT eFuse\n");
  7655. goto exit;
  7656. }
  7657. if ((tmp[1] == NULL) || (tmp[2] == NULL)) {
  7658. err = -EINVAL;
  7659. goto exit;
  7660. }
  7661. BTEfuse_PowerSwitch(padapter, 1, _TRUE);
  7662. /* rmap addr cnts */
  7663. addr = simple_strtoul(tmp[1], &ptmp, 16);
  7664. RTW_INFO("%s: addr=0x%X\n", __FUNCTION__, addr);
  7665. cnts = simple_strtoul(tmp[2], &ptmp, 10);
  7666. if (cnts == 0) {
  7667. RTW_INFO("%s: btrmap Fail!! cnts error!\n", __FUNCTION__);
  7668. err = -EINVAL;
  7669. goto exit;
  7670. }
  7671. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  7672. #ifndef RTW_HALMAC
  7673. EFUSE_GetEfuseDefinition(padapter, EFUSE_BT, TYPE_EFUSE_MAP_LEN, (PVOID)&max_available_len, _FALSE);
  7674. if ((addr + cnts) > max_available_len) {
  7675. RTW_INFO("%s: addr(0x%X)+cnts(%d) parameter error!\n", __FUNCTION__, addr, cnts);
  7676. err = -EFAULT;
  7677. goto exit;
  7678. }
  7679. #endif
  7680. if (rtw_BT_efuse_map_read(padapter, addr, cnts, data) == _FAIL) {
  7681. RTW_INFO("%s: rtw_BT_efuse_map_read error!!\n", __FUNCTION__);
  7682. err = -EFAULT;
  7683. goto exit;
  7684. }
  7685. *extra = 0;
  7686. /* RTW_INFO("%s: bt efuse data={", __FUNCTION__); */
  7687. for (i = 0; i < cnts; i++) {
  7688. /* RTW_INFO("0x%02x ", data[i]); */
  7689. sprintf(extra, "%s 0x%02X ", extra, data[i]);
  7690. }
  7691. /* RTW_INFO("}\n"); */
  7692. RTW_INFO(FUNC_ADPT_FMT ": BT MAC=[%s]\n", FUNC_ADPT_ARG(padapter), extra);
  7693. } else if (strcmp(tmp[0], "btffake") == 0) {
  7694. /* RTW_INFO("OFFSET\tVALUE(hex)\n"); */
  7695. sprintf(extra, "\n");
  7696. for (i = 0; i < 512; i += 16) {
  7697. /* RTW_INFO("0x%03x\t", i); */
  7698. sprintf(extra, "%s0x%03x\t", extra, i);
  7699. for (j = 0; j < 8; j++) {
  7700. /* RTW_INFO("%02X ", pEfuseHal->fakeBTEfuseModifiedMap[i+j]); */
  7701. sprintf(extra, "%s%02X ", extra, pEfuseHal->fakeBTEfuseModifiedMap[i + j]);
  7702. }
  7703. /* RTW_INFO("\t"); */
  7704. sprintf(extra, "%s\t", extra);
  7705. for (; j < 16; j++) {
  7706. /* RTW_INFO("%02X ", pEfuseHal->fakeBTEfuseModifiedMap[i+j]); */
  7707. sprintf(extra, "%s%02X ", extra, pEfuseHal->fakeBTEfuseModifiedMap[i + j]);
  7708. }
  7709. /* RTW_INFO("\n"); */
  7710. sprintf(extra, "%s\n", extra);
  7711. }
  7712. /* RTW_INFO("\n"); */
  7713. } else if (strcmp(tmp[0], "btbfake") == 0) {
  7714. /* RTW_INFO("OFFSET\tVALUE(hex)\n"); */
  7715. sprintf(extra, "\n");
  7716. for (i = 512; i < 1024; i += 16) {
  7717. /* RTW_INFO("0x%03x\t", i); */
  7718. sprintf(extra, "%s0x%03x\t", extra, i);
  7719. for (j = 0; j < 8; j++) {
  7720. /* RTW_INFO("%02X ", pEfuseHal->fakeBTEfuseModifiedMap[i+j]); */
  7721. sprintf(extra, "%s%02X ", extra, pEfuseHal->fakeBTEfuseModifiedMap[i + j]);
  7722. }
  7723. /* RTW_INFO("\t"); */
  7724. sprintf(extra, "%s\t", extra);
  7725. for (; j < 16; j++) {
  7726. /* RTW_INFO("%02X ", pEfuseHal->fakeBTEfuseModifiedMap[i+j]); */
  7727. sprintf(extra, "%s%02X ", extra, pEfuseHal->fakeBTEfuseModifiedMap[i + j]);
  7728. }
  7729. /* RTW_INFO("\n"); */
  7730. sprintf(extra, "%s\n", extra);
  7731. }
  7732. /* RTW_INFO("\n"); */
  7733. } else if (strcmp(tmp[0], "wlrfkmap") == 0) {
  7734. static u8 fk_order = 0;
  7735. u8 *efuse;
  7736. u32 shift, cnt;
  7737. u32 blksz = 0x200; /* The size of one time show, default 512 */
  7738. EFUSE_GetEfuseDefinition(padapter, EFUSE_WIFI, TYPE_EFUSE_MAP_LEN , (void *)&mapLen, _FALSE);
  7739. efuse = pEfuseHal->fakeEfuseModifiedMap;
  7740. shift = blksz * fk_order;
  7741. efuse += shift;
  7742. cnt = mapLen - shift;
  7743. if (cnt > blksz) {
  7744. cnt = blksz;
  7745. fk_order++;
  7746. } else
  7747. fk_order = 0;
  7748. sprintf(extra, "\n");
  7749. for (i = 0; i < cnt; i += 16) {
  7750. sprintf(extra, "%s0x%02x\t", extra, shift + i);
  7751. for (j = 0; j < 8; j++)
  7752. sprintf(extra, "%s%02X ", extra, efuse[i + j]);
  7753. sprintf(extra, "%s\t", extra);
  7754. for (; j < 16; j++)
  7755. sprintf(extra, "%s%02X ", extra, efuse[i + j]);
  7756. sprintf(extra, "%s\n", extra);
  7757. }
  7758. if ((shift + cnt) < mapLen)
  7759. sprintf(extra, "%s\t...more\n", extra);
  7760. } else if (strcmp(tmp[0], "wlrfkrmap") == 0) {
  7761. if ((tmp[1] == NULL) || (tmp[2] == NULL)) {
  7762. RTW_INFO("%s: rmap Fail!! Parameters error!\n", __FUNCTION__);
  7763. err = -EINVAL;
  7764. goto exit;
  7765. }
  7766. /* rmap addr cnts */
  7767. addr = simple_strtoul(tmp[1], &ptmp, 16);
  7768. RTW_INFO("%s: addr=%x\n", __FUNCTION__, addr);
  7769. cnts = simple_strtoul(tmp[2], &ptmp, 10);
  7770. if (cnts == 0) {
  7771. RTW_INFO("%s: rmap Fail!! cnts error!\n", __FUNCTION__);
  7772. err = -EINVAL;
  7773. goto exit;
  7774. }
  7775. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  7776. /* RTW_INFO("%s: data={", __FUNCTION__); */
  7777. *extra = 0;
  7778. for (i = 0; i < cnts; i++) {
  7779. RTW_INFO("wlrfkrmap = 0x%02x\n", pEfuseHal->fakeEfuseModifiedMap[addr + i]);
  7780. sprintf(extra, "%s0x%02X ", extra, pEfuseHal->fakeEfuseModifiedMap[addr + i]);
  7781. }
  7782. } else if (strcmp(tmp[0], "btrfkrmap") == 0) {
  7783. if ((tmp[1] == NULL) || (tmp[2] == NULL)) {
  7784. RTW_INFO("%s: rmap Fail!! Parameters error!\n", __FUNCTION__);
  7785. err = -EINVAL;
  7786. goto exit;
  7787. }
  7788. /* rmap addr cnts */
  7789. addr = simple_strtoul(tmp[1], &ptmp, 16);
  7790. RTW_INFO("%s: addr=%x\n", __FUNCTION__, addr);
  7791. cnts = simple_strtoul(tmp[2], &ptmp, 10);
  7792. if (cnts == 0) {
  7793. RTW_INFO("%s: rmap Fail!! cnts error!\n", __FUNCTION__);
  7794. err = -EINVAL;
  7795. goto exit;
  7796. }
  7797. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  7798. /* RTW_INFO("%s: data={", __FUNCTION__); */
  7799. *extra = 0;
  7800. for (i = 0; i < cnts; i++) {
  7801. RTW_INFO("wlrfkrmap = 0x%02x\n", pEfuseHal->fakeBTEfuseModifiedMap[addr + i]);
  7802. sprintf(extra, "%s0x%02X ", extra, pEfuseHal->fakeBTEfuseModifiedMap[addr + i]);
  7803. }
  7804. } else if (strcmp(tmp[0], "mask") == 0) {
  7805. *extra = 0;
  7806. mask_len = sizeof(u8) * rtw_get_efuse_mask_arraylen(padapter);
  7807. rtw_efuse_mask_array(padapter, mask_buf);
  7808. if (padapter->registrypriv.bFileMaskEfuse == _TRUE)
  7809. _rtw_memcpy(mask_buf, maskfileBuffer, mask_len);
  7810. sprintf(extra, "\n");
  7811. for (i = 0; i < mask_len; i++)
  7812. sprintf(extra, "%s0x%02X\n", extra, mask_buf[i]);
  7813. } else
  7814. sprintf(extra, "Command not found!");
  7815. exit:
  7816. if (data)
  7817. rtw_mfree(data, EFUSE_BT_MAX_MAP_LEN);
  7818. if (rawdata)
  7819. rtw_mfree(rawdata, EFUSE_BT_MAX_MAP_LEN);
  7820. if (!err)
  7821. wrqu->length = strlen(extra);
  7822. if (padapter->registrypriv.mp_mode == 0) {
  7823. #ifdef CONFIG_IPS
  7824. rtw_pm_set_ips(padapter, ips_mode);
  7825. #endif /* CONFIG_IPS */
  7826. #ifdef CONFIG_LPS
  7827. rtw_pm_set_lps(padapter, lps_mode);
  7828. #endif /* CONFIG_LPS */
  7829. }
  7830. #ifdef CONFIG_IOL
  7831. padapter->registrypriv.fw_iol = org_fw_iol;/* 0:Disable, 1:enable, 2:by usb speed */
  7832. #endif
  7833. return err;
  7834. }
  7835. static int rtw_mp_efuse_set(struct net_device *dev,
  7836. struct iw_request_info *info,
  7837. union iwreq_data *wdata, char *extra)
  7838. {
  7839. struct iw_point *wrqu;
  7840. PADAPTER padapter;
  7841. struct pwrctrl_priv *pwrctrlpriv ;
  7842. PHAL_DATA_TYPE pHalData;
  7843. PEFUSE_HAL pEfuseHal;
  7844. struct hal_ops *pHalFunc;
  7845. struct mp_priv *pmp_priv;
  7846. u8 ips_mode = IPS_NUM; /* init invalid value */
  7847. u8 lps_mode = PS_MODE_NUM; /* init invalid value */
  7848. u32 i = 0, j = 0, jj, kk;
  7849. u8 *setdata = NULL;
  7850. u8 *ShadowMapBT = NULL;
  7851. u8 *ShadowMapWiFi = NULL;
  7852. u8 *setrawdata = NULL;
  7853. char *pch, *ptmp, *token, *tmp[3] = {0x00, 0x00, 0x00};
  7854. u16 addr = 0xFF, cnts = 0, BTStatus = 0 , max_available_len = 0;
  7855. u16 wifimaplen;
  7856. int err;
  7857. wrqu = (struct iw_point *)wdata;
  7858. padapter = rtw_netdev_priv(dev);
  7859. pwrctrlpriv = adapter_to_pwrctl(padapter);
  7860. pHalData = GET_HAL_DATA(padapter);
  7861. pEfuseHal = &pHalData->EfuseHal;
  7862. pHalFunc = &padapter->hal_func;
  7863. pmp_priv = &padapter->mppriv;
  7864. err = 0;
  7865. if (copy_from_user(extra, wrqu->pointer, wrqu->length))
  7866. return -EFAULT;
  7867. EFUSE_GetEfuseDefinition(padapter, EFUSE_WIFI, TYPE_EFUSE_MAP_LEN , (void *)&wifimaplen, _FALSE);
  7868. setdata = rtw_zmalloc(1024);
  7869. if (setdata == NULL) {
  7870. err = -ENOMEM;
  7871. goto exit;
  7872. }
  7873. ShadowMapBT = rtw_malloc(EFUSE_BT_MAX_MAP_LEN);
  7874. if (ShadowMapBT == NULL) {
  7875. err = -ENOMEM;
  7876. goto exit;
  7877. }
  7878. ShadowMapWiFi = rtw_malloc(wifimaplen);
  7879. if (ShadowMapWiFi == NULL) {
  7880. err = -ENOMEM;
  7881. goto exit;
  7882. }
  7883. setrawdata = rtw_malloc(EFUSE_MAX_SIZE);
  7884. if (setrawdata == NULL) {
  7885. err = -ENOMEM;
  7886. goto exit;
  7887. }
  7888. #ifdef CONFIG_LPS
  7889. lps_mode = pwrctrlpriv->power_mgnt;/* keep org value */
  7890. rtw_pm_set_lps(padapter, PS_MODE_ACTIVE);
  7891. #endif
  7892. #ifdef CONFIG_IPS
  7893. ips_mode = pwrctrlpriv->ips_mode;/* keep org value */
  7894. rtw_pm_set_ips(padapter, IPS_NONE);
  7895. #endif
  7896. pch = extra;
  7897. RTW_INFO("%s: in=%s\n", __FUNCTION__, extra);
  7898. i = 0;
  7899. while ((token = strsep(&pch, ",")) != NULL) {
  7900. if (i > 2)
  7901. break;
  7902. tmp[i] = token;
  7903. i++;
  7904. }
  7905. /* tmp[0],[1],[2] */
  7906. /* wmap,addr,00e04c871200 */
  7907. if (strcmp(tmp[0], "wmap") == 0) {
  7908. if ((tmp[1] == NULL) || (tmp[2] == NULL)) {
  7909. err = -EINVAL;
  7910. goto exit;
  7911. }
  7912. #ifndef RTW_HALMAC
  7913. /* unknown bug workaround, need to fix later */
  7914. addr = 0x1ff;
  7915. rtw_write8(padapter, EFUSE_CTRL + 1, (addr & 0xff));
  7916. rtw_msleep_os(10);
  7917. rtw_write8(padapter, EFUSE_CTRL + 2, ((addr >> 8) & 0x03));
  7918. rtw_msleep_os(10);
  7919. rtw_write8(padapter, EFUSE_CTRL + 3, 0x72);
  7920. rtw_msleep_os(10);
  7921. rtw_read8(padapter, EFUSE_CTRL);
  7922. #endif /* RTW_HALMAC */
  7923. addr = simple_strtoul(tmp[1], &ptmp, 16);
  7924. addr &= 0xFFF;
  7925. cnts = strlen(tmp[2]);
  7926. if (cnts % 2) {
  7927. err = -EINVAL;
  7928. goto exit;
  7929. }
  7930. cnts /= 2;
  7931. if (cnts == 0) {
  7932. err = -EINVAL;
  7933. goto exit;
  7934. }
  7935. RTW_INFO("%s: addr=0x%X\n", __FUNCTION__, addr);
  7936. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  7937. RTW_INFO("%s: map data=%s\n", __FUNCTION__, tmp[2]);
  7938. for (jj = 0, kk = 0; jj < cnts; jj++, kk += 2)
  7939. setdata[jj] = key_2char2num(tmp[2][kk], tmp[2][kk + 1]);
  7940. EFUSE_GetEfuseDefinition(padapter, EFUSE_WIFI, TYPE_EFUSE_MAP_LEN, (PVOID)&max_available_len, _FALSE);
  7941. if ((addr + cnts) > max_available_len) {
  7942. RTW_INFO("%s: addr(0x%X)+cnts(%d) parameter error!\n", __FUNCTION__, addr, cnts);
  7943. err = -EFAULT;
  7944. goto exit;
  7945. }
  7946. if (rtw_efuse_map_write(padapter, addr, cnts, setdata) == _FAIL) {
  7947. RTW_INFO("%s: rtw_efuse_map_write error!!\n", __FUNCTION__);
  7948. err = -EFAULT;
  7949. goto exit;
  7950. }
  7951. *extra = 0;
  7952. RTW_INFO("%s: after rtw_efuse_map_write to _rtw_memcmp\n", __func__);
  7953. if (rtw_efuse_mask_map_read(padapter, addr, cnts, ShadowMapWiFi) == _SUCCESS) {
  7954. if (_rtw_memcmp((void *)ShadowMapWiFi , (void *)setdata, cnts)) {
  7955. RTW_INFO("%s: WiFi write map afterf compare success\n", __FUNCTION__);
  7956. sprintf(extra, "WiFi write map compare OK\n");
  7957. err = 0;
  7958. goto exit;
  7959. } else {
  7960. sprintf(extra, "WiFi write map compare FAIL\n");
  7961. RTW_INFO("%s: WiFi write map compare Fail\n", __FUNCTION__);
  7962. err = 0;
  7963. goto exit;
  7964. }
  7965. }
  7966. } else if (strcmp(tmp[0], "wraw") == 0) {
  7967. if ((tmp[1] == NULL) || (tmp[2] == NULL)) {
  7968. err = -EINVAL;
  7969. goto exit;
  7970. }
  7971. addr = simple_strtoul(tmp[1], &ptmp, 16);
  7972. addr &= 0xFFF;
  7973. cnts = strlen(tmp[2]);
  7974. if (cnts % 2) {
  7975. err = -EINVAL;
  7976. goto exit;
  7977. }
  7978. cnts /= 2;
  7979. if (cnts == 0) {
  7980. err = -EINVAL;
  7981. goto exit;
  7982. }
  7983. RTW_INFO("%s: addr=0x%X\n", __FUNCTION__, addr);
  7984. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  7985. RTW_INFO("%s: raw data=%s\n", __FUNCTION__, tmp[2]);
  7986. for (jj = 0, kk = 0; jj < cnts; jj++, kk += 2)
  7987. setrawdata[jj] = key_2char2num(tmp[2][kk], tmp[2][kk + 1]);
  7988. if (rtw_efuse_access(padapter, _TRUE, addr, cnts, setrawdata) == _FAIL) {
  7989. RTW_INFO("%s: rtw_efuse_access error!!\n", __FUNCTION__);
  7990. err = -EFAULT;
  7991. goto exit;
  7992. }
  7993. } else if (strcmp(tmp[0], "btwraw") == 0) {
  7994. if ((tmp[1] == NULL) || (tmp[2] == NULL)) {
  7995. err = -EINVAL;
  7996. goto exit;
  7997. }
  7998. addr = simple_strtoul(tmp[1], &ptmp, 16);
  7999. addr &= 0xFFF;
  8000. cnts = strlen(tmp[2]);
  8001. if (cnts % 2) {
  8002. err = -EINVAL;
  8003. goto exit;
  8004. }
  8005. cnts /= 2;
  8006. if (cnts == 0) {
  8007. err = -EINVAL;
  8008. goto exit;
  8009. }
  8010. RTW_INFO("%s: addr=0x%X\n", __FUNCTION__, addr);
  8011. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  8012. RTW_INFO("%s: raw data=%s\n", __FUNCTION__, tmp[2]);
  8013. for (jj = 0, kk = 0; jj < cnts; jj++, kk += 2)
  8014. setrawdata[jj] = key_2char2num(tmp[2][kk], tmp[2][kk + 1]);
  8015. #ifdef RTW_HALMAC
  8016. if (rtw_efuse_bt_access(padapter, _TRUE, addr, cnts, setrawdata) == _FAIL) {
  8017. RTW_INFO("%s: rtw_efuse_access error!!\n", __FUNCTION__);
  8018. err = -EFAULT;
  8019. goto exit;
  8020. }
  8021. #else
  8022. rtw_write8(padapter, 0x35, 1); /* switch bank 1 (BT)*/
  8023. if (rtw_efuse_access(padapter, _TRUE, addr, cnts, setrawdata) == _FAIL) {
  8024. RTW_INFO("%s: rtw_efuse_access error!!\n", __FUNCTION__);
  8025. rtw_write8(padapter, 0x35, 0); /* switch bank 0 (WiFi)*/
  8026. err = -EFAULT;
  8027. goto exit;
  8028. }
  8029. rtw_write8(padapter, 0x35, 0); /* switch bank 0 (WiFi)*/
  8030. #endif
  8031. } else if (strcmp(tmp[0], "mac") == 0) {
  8032. if (tmp[1] == NULL) {
  8033. err = -EINVAL;
  8034. goto exit;
  8035. }
  8036. /* mac,00e04c871200 */
  8037. if (hal_efuse_macaddr_offset(padapter) == -1) {
  8038. err = -EFAULT;
  8039. goto exit;
  8040. }
  8041. addr = hal_efuse_macaddr_offset(padapter);
  8042. cnts = strlen(tmp[1]);
  8043. if (cnts % 2) {
  8044. err = -EINVAL;
  8045. goto exit;
  8046. }
  8047. cnts /= 2;
  8048. if (cnts == 0) {
  8049. err = -EINVAL;
  8050. goto exit;
  8051. }
  8052. if (cnts > 6) {
  8053. RTW_INFO("%s: error data for mac addr=\"%s\"\n", __FUNCTION__, tmp[1]);
  8054. err = -EFAULT;
  8055. goto exit;
  8056. }
  8057. RTW_INFO("%s: addr=0x%X\n", __FUNCTION__, addr);
  8058. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  8059. RTW_INFO("%s: MAC address=%s\n", __FUNCTION__, tmp[1]);
  8060. for (jj = 0, kk = 0; jj < cnts; jj++, kk += 2)
  8061. setdata[jj] = key_2char2num(tmp[1][kk], tmp[1][kk + 1]);
  8062. EFUSE_GetEfuseDefinition(padapter, EFUSE_WIFI, TYPE_EFUSE_MAP_LEN, (PVOID)&max_available_len, _FALSE);
  8063. if ((addr + cnts) > max_available_len) {
  8064. RTW_INFO("%s: addr(0x%X)+cnts(%d) parameter error!\n", __FUNCTION__, addr, cnts);
  8065. err = -EFAULT;
  8066. goto exit;
  8067. }
  8068. if (rtw_efuse_map_write(padapter, addr, cnts, setdata) == _FAIL) {
  8069. RTW_INFO("%s: rtw_efuse_map_write error!!\n", __FUNCTION__);
  8070. err = -EFAULT;
  8071. goto exit;
  8072. }
  8073. } else if (strcmp(tmp[0], "vidpid") == 0) {
  8074. if (tmp[1] == NULL) {
  8075. err = -EINVAL;
  8076. goto exit;
  8077. }
  8078. /* pidvid,da0b7881 */
  8079. #ifdef CONFIG_RTL8188E
  8080. #ifdef CONFIG_USB_HCI
  8081. addr = EEPROM_VID_88EU;
  8082. #endif
  8083. #ifdef CONFIG_PCI_HCI
  8084. addr = EEPROM_VID_88EE;
  8085. #endif
  8086. #endif /* CONFIG_RTL8188E */
  8087. #ifdef CONFIG_RTL8192E
  8088. #ifdef CONFIG_USB_HCI
  8089. addr = EEPROM_VID_8192EU;
  8090. #endif
  8091. #ifdef CONFIG_PCI_HCI
  8092. addr = EEPROM_VID_8192EE;
  8093. #endif
  8094. #endif /* CONFIG_RTL8188E */
  8095. #ifdef CONFIG_RTL8723B
  8096. addr = EEPROM_VID_8723BU;
  8097. #endif
  8098. #ifdef CONFIG_RTL8188F
  8099. addr = EEPROM_VID_8188FU;
  8100. #endif
  8101. #ifdef CONFIG_RTL8703B
  8102. #ifdef CONFIG_USB_HCI
  8103. addr = EEPROM_VID_8703BU;
  8104. #endif /* CONFIG_USB_HCI */
  8105. #endif /* CONFIG_RTL8703B */
  8106. #ifdef CONFIG_RTL8723D
  8107. #ifdef CONFIG_USB_HCI
  8108. addr = EEPROM_VID_8723DU;
  8109. #endif /* CONFIG_USB_HCI */
  8110. #endif /* CONFIG_RTL8723D */
  8111. cnts = strlen(tmp[1]);
  8112. if (cnts % 2) {
  8113. err = -EINVAL;
  8114. goto exit;
  8115. }
  8116. cnts /= 2;
  8117. if (cnts == 0) {
  8118. err = -EINVAL;
  8119. goto exit;
  8120. }
  8121. RTW_INFO("%s: addr=0x%X\n", __FUNCTION__, addr);
  8122. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  8123. RTW_INFO("%s: VID/PID=%s\n", __FUNCTION__, tmp[1]);
  8124. for (jj = 0, kk = 0; jj < cnts; jj++, kk += 2)
  8125. setdata[jj] = key_2char2num(tmp[1][kk], tmp[1][kk + 1]);
  8126. EFUSE_GetEfuseDefinition(padapter, EFUSE_WIFI, TYPE_EFUSE_MAP_LEN, (PVOID)&max_available_len, _FALSE);
  8127. if ((addr + cnts) > max_available_len) {
  8128. RTW_INFO("%s: addr(0x%X)+cnts(%d) parameter error!\n", __FUNCTION__, addr, cnts);
  8129. err = -EFAULT;
  8130. goto exit;
  8131. }
  8132. if (rtw_efuse_map_write(padapter, addr, cnts, setdata) == _FAIL) {
  8133. RTW_INFO("%s: rtw_efuse_map_write error!!\n", __FUNCTION__);
  8134. err = -EFAULT;
  8135. goto exit;
  8136. }
  8137. } else if (strcmp(tmp[0], "wldumpfake") == 0) {
  8138. if (wifimaplen > EFUSE_MAX_MAP_LEN)
  8139. cnts = EFUSE_MAX_MAP_LEN;
  8140. else
  8141. cnts = wifimaplen;
  8142. if (rtw_efuse_mask_map_read(padapter, 0, cnts, pEfuseHal->fakeEfuseModifiedMap) == _SUCCESS)
  8143. RTW_INFO("%s: WiFi hw efuse dump to Fake map success\n", __func__);
  8144. else {
  8145. RTW_INFO("%s: WiFi hw efuse dump to Fake map Fail\n", __func__);
  8146. err = -EFAULT;
  8147. }
  8148. } else if (strcmp(tmp[0], "btwmap") == 0) {
  8149. rtw_write8(padapter, 0xa3, 0x05); /* For 8723AB ,8821S ? */
  8150. BTStatus = rtw_read8(padapter, 0xa0);
  8151. RTW_INFO("%s: btwmap before read 0xa0 BT Status =0x%x\n", __FUNCTION__, BTStatus);
  8152. if (BTStatus != 0x04) {
  8153. sprintf(extra, "BT Status not Active ,can't do Write\n");
  8154. goto exit;
  8155. }
  8156. if ((tmp[1] == NULL) || (tmp[2] == NULL)) {
  8157. err = -EINVAL;
  8158. goto exit;
  8159. }
  8160. #ifndef RTW_HALMAC
  8161. BTEfuse_PowerSwitch(padapter, 1, _TRUE);
  8162. addr = 0x1ff;
  8163. rtw_write8(padapter, EFUSE_CTRL + 1, (addr & 0xff));
  8164. rtw_msleep_os(10);
  8165. rtw_write8(padapter, EFUSE_CTRL + 2, ((addr >> 8) & 0x03));
  8166. rtw_msleep_os(10);
  8167. rtw_write8(padapter, EFUSE_CTRL + 3, 0x72);
  8168. rtw_msleep_os(10);
  8169. rtw_read8(padapter, EFUSE_CTRL);
  8170. BTEfuse_PowerSwitch(padapter, 1, _FALSE);
  8171. #endif /* RTW_HALMAC */
  8172. addr = simple_strtoul(tmp[1], &ptmp, 16);
  8173. addr &= 0xFFF;
  8174. cnts = strlen(tmp[2]);
  8175. if (cnts % 2) {
  8176. err = -EINVAL;
  8177. goto exit;
  8178. }
  8179. cnts /= 2;
  8180. if (cnts == 0) {
  8181. err = -EINVAL;
  8182. goto exit;
  8183. }
  8184. RTW_INFO("%s: addr=0x%X\n", __FUNCTION__, addr);
  8185. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  8186. RTW_INFO("%s: BT data=%s\n", __FUNCTION__, tmp[2]);
  8187. for (jj = 0, kk = 0; jj < cnts; jj++, kk += 2)
  8188. setdata[jj] = key_2char2num(tmp[2][kk], tmp[2][kk + 1]);
  8189. #ifndef RTW_HALMAC
  8190. EFUSE_GetEfuseDefinition(padapter, EFUSE_BT, TYPE_EFUSE_MAP_LEN, (PVOID)&max_available_len, _FALSE);
  8191. if ((addr + cnts) > max_available_len) {
  8192. RTW_INFO("%s: addr(0x%X)+cnts(%d) parameter error!\n", __FUNCTION__, addr, cnts);
  8193. err = -EFAULT;
  8194. goto exit;
  8195. }
  8196. #endif
  8197. if (rtw_BT_efuse_map_write(padapter, addr, cnts, setdata) == _FAIL) {
  8198. RTW_INFO("%s: rtw_BT_efuse_map_write error!!\n", __FUNCTION__);
  8199. err = -EFAULT;
  8200. goto exit;
  8201. }
  8202. *extra = 0;
  8203. RTW_INFO("%s: after rtw_BT_efuse_map_write to _rtw_memcmp\n", __FUNCTION__);
  8204. if ((rtw_BT_efuse_map_read(padapter, addr, cnts, ShadowMapBT) == _SUCCESS)) {
  8205. if (_rtw_memcmp((void *)ShadowMapBT , (void *)setdata, cnts)) {
  8206. RTW_INFO("%s: BT write map compare OK BTStatus=0x%x\n", __FUNCTION__, BTStatus);
  8207. sprintf(extra, "BT write map compare OK");
  8208. err = 0;
  8209. goto exit;
  8210. } else {
  8211. sprintf(extra, "BT write map compare FAIL");
  8212. RTW_INFO("%s: BT write map compare FAIL BTStatus=0x%x\n", __FUNCTION__, BTStatus);
  8213. err = 0;
  8214. goto exit;
  8215. }
  8216. }
  8217. } else if (strcmp(tmp[0], "btwfake") == 0) {
  8218. if ((tmp[1] == NULL) || (tmp[2] == NULL)) {
  8219. err = -EINVAL;
  8220. goto exit;
  8221. }
  8222. addr = simple_strtoul(tmp[1], &ptmp, 16);
  8223. addr &= 0xFFF;
  8224. cnts = strlen(tmp[2]);
  8225. if (cnts % 2) {
  8226. err = -EINVAL;
  8227. goto exit;
  8228. }
  8229. cnts /= 2;
  8230. if (cnts == 0) {
  8231. err = -EINVAL;
  8232. goto exit;
  8233. }
  8234. RTW_INFO("%s: addr=0x%X\n", __FUNCTION__, addr);
  8235. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  8236. RTW_INFO("%s: BT tmp data=%s\n", __FUNCTION__, tmp[2]);
  8237. for (jj = 0, kk = 0; jj < cnts; jj++, kk += 2)
  8238. pEfuseHal->fakeBTEfuseModifiedMap[addr + jj] = key_2char2num(tmp[2][kk], tmp[2][kk + 1]);
  8239. } else if (strcmp(tmp[0], "btdumpfake") == 0) {
  8240. if (rtw_BT_efuse_map_read(padapter, 0, EFUSE_BT_MAX_MAP_LEN, pEfuseHal->fakeBTEfuseModifiedMap) == _SUCCESS)
  8241. RTW_INFO("%s: BT read all map success\n", __FUNCTION__);
  8242. else {
  8243. RTW_INFO("%s: BT read all map Fail!\n", __FUNCTION__);
  8244. err = -EFAULT;
  8245. }
  8246. } else if (strcmp(tmp[0], "btfk2map") == 0) {
  8247. rtw_write8(padapter, 0xa3, 0x05);
  8248. BTStatus = rtw_read8(padapter, 0xa0);
  8249. RTW_INFO("%s: btwmap before read 0xa0 BT Status =0x%x\n", __FUNCTION__, BTStatus);
  8250. if (BTStatus != 0x04) {
  8251. sprintf(extra, "BT Status not Active Write FAIL\n");
  8252. goto exit;
  8253. }
  8254. #ifndef RTW_HALMAC
  8255. BTEfuse_PowerSwitch(padapter, 1, _TRUE);
  8256. addr = 0x1ff;
  8257. rtw_write8(padapter, EFUSE_CTRL + 1, (addr & 0xff));
  8258. rtw_msleep_os(10);
  8259. rtw_write8(padapter, EFUSE_CTRL + 2, ((addr >> 8) & 0x03));
  8260. rtw_msleep_os(10);
  8261. rtw_write8(padapter, EFUSE_CTRL + 3, 0x72);
  8262. rtw_msleep_os(10);
  8263. rtw_read8(padapter, EFUSE_CTRL);
  8264. BTEfuse_PowerSwitch(padapter, 1, _FALSE);
  8265. #endif /* RTW_HALMAC */
  8266. _rtw_memcpy(pEfuseHal->BTEfuseModifiedMap, pEfuseHal->fakeBTEfuseModifiedMap, EFUSE_BT_MAX_MAP_LEN);
  8267. if (rtw_BT_efuse_map_write(padapter, 0x00, EFUSE_BT_MAX_MAP_LEN, pEfuseHal->fakeBTEfuseModifiedMap) == _FAIL) {
  8268. RTW_INFO("%s: rtw_BT_efuse_map_write error!\n", __FUNCTION__);
  8269. err = -EFAULT;
  8270. goto exit;
  8271. }
  8272. RTW_INFO("pEfuseHal->fakeBTEfuseModifiedMap OFFSET\tVALUE(hex)\n");
  8273. for (i = 0; i < EFUSE_BT_MAX_MAP_LEN; i += 16) {
  8274. printk("0x%02x\t", i);
  8275. for (j = 0; j < 8; j++)
  8276. printk("%02X ", pEfuseHal->fakeBTEfuseModifiedMap[i + j]);
  8277. printk("\t");
  8278. for (; j < 16; j++)
  8279. printk("%02X ", pEfuseHal->fakeBTEfuseModifiedMap[i + j]);
  8280. printk("\n");
  8281. }
  8282. printk("\n");
  8283. #if 1
  8284. err = -EFAULT;
  8285. RTW_INFO("%s: rtw_BT_efuse_map_read _rtw_memcmp\n", __FUNCTION__);
  8286. if ((rtw_BT_efuse_map_read(padapter, 0x00, EFUSE_BT_MAX_MAP_LEN, pEfuseHal->fakeBTEfuseInitMap) == _SUCCESS)) {
  8287. if (_rtw_memcmp((void *)pEfuseHal->fakeBTEfuseModifiedMap, (void *)pEfuseHal->fakeBTEfuseInitMap, EFUSE_BT_MAX_MAP_LEN)) {
  8288. sprintf(extra, "BT write map compare OK");
  8289. RTW_INFO("%s: BT write map afterf compare success BTStatus=0x%x\n", __FUNCTION__, BTStatus);
  8290. err = 0;
  8291. goto exit;
  8292. } else {
  8293. sprintf(extra, "BT write map compare FAIL");
  8294. if (rtw_BT_efuse_map_write(padapter, 0x00, EFUSE_BT_MAX_MAP_LEN, pEfuseHal->fakeBTEfuseModifiedMap) == _FAIL)
  8295. RTW_INFO("%s: rtw_BT_efuse_map_write compare error,retry = %d!\n", __FUNCTION__, i);
  8296. if (rtw_BT_efuse_map_read(padapter, EFUSE_BT, EFUSE_BT_MAX_MAP_LEN, pEfuseHal->fakeBTEfuseInitMap) == _SUCCESS) {
  8297. RTW_INFO("pEfuseHal->fakeBTEfuseInitMap OFFSET\tVALUE(hex)\n");
  8298. for (i = 0; i < EFUSE_BT_MAX_MAP_LEN; i += 16) {
  8299. printk("0x%02x\t", i);
  8300. for (j = 0; j < 8; j++)
  8301. printk("%02X ", pEfuseHal->fakeBTEfuseInitMap[i + j]);
  8302. printk("\t");
  8303. for (; j < 16; j++)
  8304. printk("%02X ", pEfuseHal->fakeBTEfuseInitMap[i + j]);
  8305. printk("\n");
  8306. }
  8307. printk("\n");
  8308. }
  8309. RTW_INFO("%s: BT write map afterf compare not match to write efuse try write Map again , BTStatus=0x%x\n", __FUNCTION__, BTStatus);
  8310. goto exit;
  8311. }
  8312. }
  8313. #endif
  8314. } else if (strcmp(tmp[0], "wlfk2map") == 0) {
  8315. *extra = 0;
  8316. if (padapter->registrypriv.bFileMaskEfuse != _TRUE && pmp_priv->bloadefusemap == _TRUE) {
  8317. RTW_INFO("%s: File eFuse mask file not to be loaded\n", __FUNCTION__);
  8318. sprintf(extra, "Not load eFuse mask file yet, Please use the efuse_mask CMD.\n");
  8319. err = 0;
  8320. goto exit;
  8321. }
  8322. if (wifimaplen > EFUSE_MAX_MAP_LEN)
  8323. cnts = EFUSE_MAX_MAP_LEN;
  8324. else
  8325. cnts = wifimaplen;
  8326. if (rtw_efuse_map_write(padapter, 0x00, cnts, pEfuseHal->fakeEfuseModifiedMap) == _FAIL) {
  8327. RTW_INFO("%s: rtw_efuse_map_write fakeEfuseModifiedMap error!\n", __FUNCTION__);
  8328. err = -EFAULT;
  8329. goto exit;
  8330. }
  8331. if (rtw_efuse_mask_map_read(padapter, 0x00, wifimaplen, ShadowMapWiFi) == _SUCCESS) {
  8332. if (_rtw_memcmp((void *)ShadowMapWiFi , (void *)pEfuseHal->fakeEfuseModifiedMap, cnts)) {
  8333. RTW_INFO("%s: WiFi write map afterf compare OK\n", __FUNCTION__);
  8334. sprintf(extra, "WiFi write map compare OK\n");
  8335. err = 0;
  8336. goto exit;
  8337. } else {
  8338. sprintf(extra, "WiFi write map compare FAIL\n");
  8339. RTW_INFO("%s: WiFi write map compare Fail\n", __FUNCTION__);
  8340. err = 0;
  8341. goto exit;
  8342. }
  8343. }
  8344. } else if (strcmp(tmp[0], "wlwfake") == 0) {
  8345. if ((tmp[1] == NULL) || (tmp[2] == NULL)) {
  8346. err = -EINVAL;
  8347. goto exit;
  8348. }
  8349. addr = simple_strtoul(tmp[1], &ptmp, 16);
  8350. addr &= 0xFFF;
  8351. cnts = strlen(tmp[2]);
  8352. if (cnts % 2) {
  8353. err = -EINVAL;
  8354. goto exit;
  8355. }
  8356. cnts /= 2;
  8357. if (cnts == 0) {
  8358. err = -EINVAL;
  8359. goto exit;
  8360. }
  8361. RTW_INFO("%s: addr=0x%X\n", __FUNCTION__, addr);
  8362. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  8363. RTW_INFO("%s: map tmp data=%s\n", __FUNCTION__, tmp[2]);
  8364. for (jj = 0, kk = 0; jj < cnts; jj++, kk += 2)
  8365. pEfuseHal->fakeEfuseModifiedMap[addr + jj] = key_2char2num(tmp[2][kk], tmp[2][kk + 1]);
  8366. _rtw_memset(extra, '\0', strlen(extra));
  8367. sprintf(extra, "wlwfake OK\n");
  8368. }
  8369. else if (strcmp(tmp[0], "wfakemac") == 0) {
  8370. if (tmp[1] == NULL) {
  8371. err = -EINVAL;
  8372. goto exit;
  8373. }
  8374. /* wfakemac,00e04c871200 */
  8375. if (hal_efuse_macaddr_offset(padapter) == -1) {
  8376. err = -EFAULT;
  8377. goto exit;
  8378. }
  8379. addr = hal_efuse_macaddr_offset(padapter);
  8380. cnts = strlen(tmp[1]);
  8381. if (cnts % 2) {
  8382. err = -EINVAL;
  8383. goto exit;
  8384. }
  8385. cnts /= 2;
  8386. if (cnts == 0) {
  8387. err = -EINVAL;
  8388. goto exit;
  8389. }
  8390. if (cnts > 6) {
  8391. RTW_INFO("%s: error data for mac addr=\"%s\"\n", __FUNCTION__, tmp[1]);
  8392. err = -EFAULT;
  8393. goto exit;
  8394. }
  8395. RTW_INFO("%s: addr=0x%X\n", __FUNCTION__, addr);
  8396. RTW_INFO("%s: cnts=%d\n", __FUNCTION__, cnts);
  8397. RTW_INFO("%s: MAC address=%s\n", __FUNCTION__, tmp[1]);
  8398. for (jj = 0, kk = 0; jj < cnts; jj++, kk += 2)
  8399. pEfuseHal->fakeEfuseModifiedMap[addr + jj] = key_2char2num(tmp[1][kk], tmp[1][kk + 1]);
  8400. _rtw_memset(extra, '\0', strlen(extra));
  8401. sprintf(extra, "write mac addr to fake map OK\n");
  8402. } else if(strcmp(tmp[0], "update") == 0) {
  8403. RTW_INFO("To Use new eFuse map\n");
  8404. /*step read efuse/eeprom data and get mac_addr*/
  8405. rtw_hal_read_chip_info(padapter);
  8406. /* set mac addr*/
  8407. rtw_macaddr_cfg(adapter_mac_addr(padapter), get_hal_mac_addr(padapter));
  8408. _rtw_memcpy(padapter->pnetdev->dev_addr, get_hal_mac_addr(padapter), ETH_ALEN); /* set mac addr to net_device */
  8409. #ifdef CONFIG_P2P
  8410. rtw_init_wifidirect_addrs(padapter, adapter_mac_addr(padapter), adapter_mac_addr(padapter));
  8411. #endif
  8412. #ifdef CONFIG_MI_WITH_MBSSID_CAM
  8413. rtw_hal_change_macaddr_mbid(padapter, adapter_mac_addr(padapter));
  8414. #else
  8415. rtw_hal_set_hwreg(padapter, HW_VAR_MAC_ADDR, adapter_mac_addr(padapter)); /* set mac addr to mac register */
  8416. #endif
  8417. /*pHalFunc->hal_deinit(padapter);*/
  8418. if (pHalFunc->hal_init(padapter) == _FAIL) {
  8419. err = -EINVAL;
  8420. goto exit;
  8421. }
  8422. _rtw_memset(extra, '\0', strlen(extra));
  8423. sprintf(extra, "eFuse Update OK\n");
  8424. }
  8425. exit:
  8426. if (setdata)
  8427. rtw_mfree(setdata, 1024);
  8428. if (ShadowMapBT)
  8429. rtw_mfree(ShadowMapBT, EFUSE_BT_MAX_MAP_LEN);
  8430. if (ShadowMapWiFi)
  8431. rtw_mfree(ShadowMapWiFi, wifimaplen);
  8432. if (setrawdata)
  8433. rtw_mfree(setrawdata, EFUSE_MAX_SIZE);
  8434. wrqu->length = strlen(extra);
  8435. if (padapter->registrypriv.mp_mode == 0) {
  8436. #ifdef CONFIG_IPS
  8437. rtw_pm_set_ips(padapter, ips_mode);
  8438. #endif /* CONFIG_IPS */
  8439. #ifdef CONFIG_LPS
  8440. rtw_pm_set_lps(padapter, lps_mode);
  8441. #endif /* CONFIG_LPS */
  8442. }
  8443. return err;
  8444. }
  8445. #ifdef CONFIG_MP_INCLUDED
  8446. #ifdef CONFIG_RTW_CUSTOMER_STR
  8447. static int rtw_mp_customer_str(
  8448. struct net_device *dev,
  8449. struct iw_request_info *info,
  8450. union iwreq_data *wrqu, char *extra)
  8451. {
  8452. _adapter *adapter = rtw_netdev_priv(dev);
  8453. u32 len;
  8454. u8 *pbuf = NULL, *pch;
  8455. char *ptmp;
  8456. u8 param[RTW_CUSTOMER_STR_LEN];
  8457. u8 count = 0;
  8458. u8 tmp;
  8459. u8 i;
  8460. u32 pos;
  8461. u8 ret;
  8462. u8 read = 0;
  8463. if (adapter->registrypriv.mp_mode != 1
  8464. || !adapter->registrypriv.mp_customer_str)
  8465. return -EFAULT;
  8466. len = wrqu->data.length;
  8467. pbuf = (u8 *)rtw_zmalloc(len);
  8468. if (pbuf == NULL) {
  8469. RTW_WARN("%s: no memory!\n", __func__);
  8470. return -ENOMEM;
  8471. }
  8472. if (copy_from_user(pbuf, wrqu->data.pointer, len)) {
  8473. rtw_mfree(pbuf, len);
  8474. RTW_WARN("%s: copy from user fail!\n", __func__);
  8475. return -EFAULT;
  8476. }
  8477. RTW_INFO("%s: string=\"%s\"\n", __func__, pbuf);
  8478. ptmp = (char *)pbuf;
  8479. pch = strsep(&ptmp, ",");
  8480. if ((pch == NULL) || (strlen(pch) == 0)) {
  8481. rtw_mfree(pbuf, len);
  8482. RTW_INFO("%s: parameter error(no cmd)!\n", __func__);
  8483. return -EFAULT;
  8484. }
  8485. _rtw_memset(param, 0xFF, RTW_CUSTOMER_STR_LEN);
  8486. if (strcmp(pch, "read") == 0) {
  8487. read = 1;
  8488. ret = rtw_hal_customer_str_read(adapter, param);
  8489. } else if (strcmp(pch, "write") == 0) {
  8490. do {
  8491. pch = strsep(&ptmp, ":");
  8492. if ((pch == NULL) || (strlen(pch) == 0))
  8493. break;
  8494. if (strlen(pch) != 2
  8495. || IsHexDigit(*pch) == _FALSE
  8496. || IsHexDigit(*(pch + 1)) == _FALSE
  8497. || sscanf(pch, "%hhx", &tmp) != 1
  8498. ) {
  8499. RTW_WARN("%s: invalid 8-bit hex!\n", __func__);
  8500. rtw_mfree(pbuf, len);
  8501. return -EFAULT;
  8502. }
  8503. param[count++] = tmp;
  8504. } while (count < RTW_CUSTOMER_STR_LEN);
  8505. if (count == 0) {
  8506. rtw_mfree(pbuf, len);
  8507. RTW_WARN("%s: no input!\n", __func__);
  8508. return -EFAULT;
  8509. }
  8510. ret = rtw_hal_customer_str_write(adapter, param);
  8511. } else {
  8512. rtw_mfree(pbuf, len);
  8513. RTW_INFO("%s: parameter error(unknown cmd)!\n", __func__);
  8514. return -EFAULT;
  8515. }
  8516. pos = sprintf(extra, "%s: ", read ? "read" : "write");
  8517. if (read == 0 || ret == _SUCCESS) {
  8518. for (i = 0; i < RTW_CUSTOMER_STR_LEN; i++)
  8519. pos += sprintf(extra + pos, "%02x:", param[i]);
  8520. extra[pos] = 0;
  8521. pos--;
  8522. }
  8523. pos += sprintf(extra + pos, " %s", ret == _SUCCESS ? "OK" : "FAIL");
  8524. wrqu->data.length = strlen(extra) + 1;
  8525. free_buf:
  8526. rtw_mfree(pbuf, len);
  8527. return 0;
  8528. }
  8529. #endif /* CONFIG_RTW_CUSTOMER_STR */
  8530. static int rtw_priv_mp_set(struct net_device *dev,
  8531. struct iw_request_info *info,
  8532. union iwreq_data *wdata, char *extra)
  8533. {
  8534. struct iw_point *wrqu = (struct iw_point *)wdata;
  8535. u32 subcmd = wrqu->flags;
  8536. switch (subcmd) {
  8537. case CTA_TEST:
  8538. RTW_INFO("set CTA_TEST\n");
  8539. rtw_cta_test_start(dev, info, wdata, extra);
  8540. break;
  8541. case MP_DISABLE_BT_COEXIST:
  8542. RTW_INFO("set case MP_DISABLE_BT_COEXIST\n");
  8543. rtw_mp_disable_bt_coexist(dev, info, wdata, extra);
  8544. break;
  8545. case MP_IQK:
  8546. RTW_INFO("set MP_IQK\n");
  8547. rtw_mp_iqk(dev, info, wrqu, extra);
  8548. break;
  8549. case MP_LCK:
  8550. RTW_INFO("set MP_LCK\n");
  8551. rtw_mp_lck(dev, info, wrqu, extra);
  8552. break;
  8553. default:
  8554. return -EIO;
  8555. }
  8556. return 0;
  8557. }
  8558. static int rtw_priv_mp_get(struct net_device *dev,
  8559. struct iw_request_info *info,
  8560. union iwreq_data *wdata, char *extra)
  8561. {
  8562. struct iw_point *wrqu = (struct iw_point *)wdata;
  8563. u32 subcmd = wrqu->flags;
  8564. switch (subcmd) {
  8565. case MP_START:
  8566. RTW_INFO("set case mp_start\n");
  8567. rtw_mp_start(dev, info, wrqu, extra);
  8568. break;
  8569. case MP_STOP:
  8570. RTW_INFO("set case mp_stop\n");
  8571. rtw_mp_stop(dev, info, wrqu, extra);
  8572. break;
  8573. case MP_BANDWIDTH:
  8574. RTW_INFO("set case mp_bandwidth\n");
  8575. rtw_mp_bandwidth(dev, info, wrqu, extra);
  8576. break;
  8577. case MP_RESET_STATS:
  8578. RTW_INFO("set case MP_RESET_STATS\n");
  8579. rtw_mp_reset_stats(dev, info, wrqu, extra);
  8580. break;
  8581. case MP_SetRFPathSwh:
  8582. RTW_INFO("set MP_SetRFPathSwitch\n");
  8583. rtw_mp_SetRFPath(dev, info, wrqu, extra);
  8584. break;
  8585. case WRITE_REG:
  8586. rtw_mp_write_reg(dev, info, wrqu, extra);
  8587. break;
  8588. case WRITE_RF:
  8589. rtw_mp_write_rf(dev, info, wrqu, extra);
  8590. break;
  8591. case MP_PHYPARA:
  8592. RTW_INFO("mp_get MP_PHYPARA\n");
  8593. rtw_mp_phypara(dev, info, wrqu, extra);
  8594. break;
  8595. case MP_CHANNEL:
  8596. RTW_INFO("set case mp_channel\n");
  8597. rtw_mp_channel(dev , info, wrqu, extra);
  8598. break;
  8599. case READ_REG:
  8600. RTW_INFO("mp_get READ_REG\n");
  8601. rtw_mp_read_reg(dev, info, wrqu, extra);
  8602. break;
  8603. case READ_RF:
  8604. RTW_INFO("mp_get READ_RF\n");
  8605. rtw_mp_read_rf(dev, info, wrqu, extra);
  8606. break;
  8607. case MP_RATE:
  8608. RTW_INFO("set case mp_rate\n");
  8609. rtw_mp_rate(dev, info, wrqu, extra);
  8610. break;
  8611. case MP_TXPOWER:
  8612. RTW_INFO("set case MP_TXPOWER\n");
  8613. rtw_mp_txpower(dev, info, wrqu, extra);
  8614. break;
  8615. case MP_ANT_TX:
  8616. RTW_INFO("set case MP_ANT_TX\n");
  8617. rtw_mp_ant_tx(dev, info, wrqu, extra);
  8618. break;
  8619. case MP_ANT_RX:
  8620. RTW_INFO("set case MP_ANT_RX\n");
  8621. rtw_mp_ant_rx(dev, info, wrqu, extra);
  8622. break;
  8623. case MP_QUERY:
  8624. rtw_mp_trx_query(dev, info, wrqu, extra);
  8625. break;
  8626. case MP_CTX:
  8627. RTW_INFO("set case MP_CTX\n");
  8628. rtw_mp_ctx(dev, info, wrqu, extra);
  8629. break;
  8630. case MP_ARX:
  8631. RTW_INFO("set case MP_ARX\n");
  8632. rtw_mp_arx(dev, info, wrqu, extra);
  8633. break;
  8634. case MP_DUMP:
  8635. RTW_INFO("set case MP_DUMP\n");
  8636. rtw_mp_dump(dev, info, wrqu, extra);
  8637. break;
  8638. case MP_PSD:
  8639. RTW_INFO("set case MP_PSD\n");
  8640. rtw_mp_psd(dev, info, wrqu, extra);
  8641. break;
  8642. case MP_THER:
  8643. RTW_INFO("set case MP_THER\n");
  8644. rtw_mp_thermal(dev, info, wrqu, extra);
  8645. break;
  8646. case MP_PwrCtlDM:
  8647. RTW_INFO("set MP_PwrCtlDM\n");
  8648. rtw_mp_PwrCtlDM(dev, info, wrqu, extra);
  8649. break;
  8650. case MP_QueryDrvStats:
  8651. RTW_INFO("mp_get MP_QueryDrvStats\n");
  8652. rtw_mp_QueryDrv(dev, info, wdata, extra);
  8653. break;
  8654. case MP_PWRTRK:
  8655. RTW_INFO("set case MP_PWRTRK\n");
  8656. rtw_mp_pwrtrk(dev, info, wrqu, extra);
  8657. break;
  8658. case EFUSE_SET:
  8659. RTW_INFO("set case efuse set\n");
  8660. rtw_mp_efuse_set(dev, info, wdata, extra);
  8661. break;
  8662. case EFUSE_GET:
  8663. RTW_INFO("efuse get EFUSE_GET\n");
  8664. rtw_mp_efuse_get(dev, info, wdata, extra);
  8665. break;
  8666. case MP_GET_TXPOWER_INX:
  8667. RTW_INFO("mp_get MP_GET_TXPOWER_INX\n");
  8668. rtw_mp_txpower_index(dev, info, wrqu, extra);
  8669. break;
  8670. case MP_GETVER:
  8671. RTW_INFO("mp_get MP_GETVER\n");
  8672. rtw_mp_getver(dev, info, wdata, extra);
  8673. break;
  8674. case MP_MON:
  8675. RTW_INFO("mp_get MP_MON\n");
  8676. rtw_mp_mon(dev, info, wdata, extra);
  8677. break;
  8678. case EFUSE_MASK:
  8679. RTW_INFO("mp_get EFUSE_MASK\n");
  8680. rtw_efuse_mask_file(dev, info, wdata, extra);
  8681. break;
  8682. case EFUSE_FILE:
  8683. RTW_INFO("mp_get EFUSE_FILE\n");
  8684. rtw_efuse_file_map(dev, info, wdata, extra);
  8685. break;
  8686. case MP_TX:
  8687. RTW_INFO("mp_get MP_TX\n");
  8688. rtw_mp_tx(dev, info, wdata, extra);
  8689. break;
  8690. case MP_RX:
  8691. RTW_INFO("mp_get MP_RX\n");
  8692. rtw_mp_rx(dev, info, wdata, extra);
  8693. break;
  8694. case MP_HW_TX_MODE:
  8695. RTW_INFO("mp_get MP_HW_TX_MODE\n");
  8696. rtw_mp_hwtx(dev, info, wdata, extra);
  8697. break;
  8698. #ifdef CONFIG_RTW_CUSTOMER_STR
  8699. case MP_CUSTOMER_STR:
  8700. RTW_INFO("customer str\n");
  8701. rtw_mp_customer_str(dev, info, wdata, extra);
  8702. break;
  8703. #endif
  8704. default:
  8705. return -EIO;
  8706. }
  8707. return 0;
  8708. }
  8709. #endif /*#if defined(CONFIG_MP_INCLUDED)*/
  8710. #ifdef CONFIG_SDIO_INDIRECT_ACCESS
  8711. #define DBG_MP_SDIO_INDIRECT_ACCESS 1
  8712. static int rtw_mp_sd_iread(struct net_device *dev
  8713. , struct iw_request_info *info
  8714. , struct iw_point *wrqu
  8715. , char *extra)
  8716. {
  8717. char input[16];
  8718. u8 width;
  8719. unsigned long addr;
  8720. u32 ret = 0;
  8721. PADAPTER padapter = rtw_netdev_priv(dev);
  8722. if (wrqu->length > 16) {
  8723. RTW_INFO(FUNC_ADPT_FMT" wrqu->length:%d\n", FUNC_ADPT_ARG(padapter), wrqu->length);
  8724. ret = -EINVAL;
  8725. goto exit;
  8726. }
  8727. if (copy_from_user(input, wrqu->pointer, wrqu->length)) {
  8728. RTW_INFO(FUNC_ADPT_FMT" copy_from_user fail\n", FUNC_ADPT_ARG(padapter));
  8729. ret = -EFAULT;
  8730. goto exit;
  8731. }
  8732. _rtw_memset(extra, 0, wrqu->length);
  8733. if (sscanf(input, "%hhu,%lx", &width, &addr) != 2) {
  8734. RTW_INFO(FUNC_ADPT_FMT" sscanf fail\n", FUNC_ADPT_ARG(padapter));
  8735. ret = -EINVAL;
  8736. goto exit;
  8737. }
  8738. if (addr > 0x3FFF) {
  8739. RTW_INFO(FUNC_ADPT_FMT" addr:0x%lx\n", FUNC_ADPT_ARG(padapter), addr);
  8740. ret = -EINVAL;
  8741. goto exit;
  8742. }
  8743. if (DBG_MP_SDIO_INDIRECT_ACCESS)
  8744. RTW_INFO(FUNC_ADPT_FMT" width:%u, addr:0x%lx\n", FUNC_ADPT_ARG(padapter), width, addr);
  8745. switch (width) {
  8746. case 1:
  8747. sprintf(extra, "0x%02x", rtw_sd_iread8(padapter, addr));
  8748. wrqu->length = strlen(extra);
  8749. break;
  8750. case 2:
  8751. sprintf(extra, "0x%04x", rtw_sd_iread16(padapter, addr));
  8752. wrqu->length = strlen(extra);
  8753. break;
  8754. case 4:
  8755. sprintf(extra, "0x%08x", rtw_sd_iread32(padapter, addr));
  8756. wrqu->length = strlen(extra);
  8757. break;
  8758. default:
  8759. wrqu->length = 0;
  8760. ret = -EINVAL;
  8761. break;
  8762. }
  8763. exit:
  8764. return ret;
  8765. }
  8766. static int rtw_mp_sd_iwrite(struct net_device *dev
  8767. , struct iw_request_info *info
  8768. , struct iw_point *wrqu
  8769. , char *extra)
  8770. {
  8771. char width;
  8772. unsigned long addr, data;
  8773. int ret = 0;
  8774. PADAPTER padapter = rtw_netdev_priv(dev);
  8775. char input[32];
  8776. if (wrqu->length > 32) {
  8777. RTW_INFO(FUNC_ADPT_FMT" wrqu->length:%d\n", FUNC_ADPT_ARG(padapter), wrqu->length);
  8778. ret = -EINVAL;
  8779. goto exit;
  8780. }
  8781. if (copy_from_user(input, wrqu->pointer, wrqu->length)) {
  8782. RTW_INFO(FUNC_ADPT_FMT" copy_from_user fail\n", FUNC_ADPT_ARG(padapter));
  8783. ret = -EFAULT;
  8784. goto exit;
  8785. }
  8786. _rtw_memset(extra, 0, wrqu->length);
  8787. if (sscanf(input, "%hhu,%lx,%lx", &width, &addr, &data) != 3) {
  8788. RTW_INFO(FUNC_ADPT_FMT" sscanf fail\n", FUNC_ADPT_ARG(padapter));
  8789. ret = -EINVAL;
  8790. goto exit;
  8791. }
  8792. if (addr > 0x3FFF) {
  8793. RTW_INFO(FUNC_ADPT_FMT" addr:0x%lx\n", FUNC_ADPT_ARG(padapter), addr);
  8794. ret = -EINVAL;
  8795. goto exit;
  8796. }
  8797. if (DBG_MP_SDIO_INDIRECT_ACCESS)
  8798. RTW_INFO(FUNC_ADPT_FMT" width:%u, addr:0x%lx, data:0x%lx\n", FUNC_ADPT_ARG(padapter), width, addr, data);
  8799. switch (width) {
  8800. case 1:
  8801. if (data > 0xFF) {
  8802. ret = -EINVAL;
  8803. break;
  8804. }
  8805. rtw_sd_iwrite8(padapter, addr, data);
  8806. break;
  8807. case 2:
  8808. if (data > 0xFFFF) {
  8809. ret = -EINVAL;
  8810. break;
  8811. }
  8812. rtw_sd_iwrite16(padapter, addr, data);
  8813. break;
  8814. case 4:
  8815. rtw_sd_iwrite32(padapter, addr, data);
  8816. break;
  8817. default:
  8818. wrqu->length = 0;
  8819. ret = -EINVAL;
  8820. break;
  8821. }
  8822. exit:
  8823. return ret;
  8824. }
  8825. #endif /* CONFIG_SDIO_INDIRECT_ACCESS */
  8826. static int rtw_priv_set(struct net_device *dev,
  8827. struct iw_request_info *info,
  8828. union iwreq_data *wdata, char *extra)
  8829. {
  8830. struct iw_point *wrqu = (struct iw_point *)wdata;
  8831. u32 subcmd = wrqu->flags;
  8832. PADAPTER padapter = rtw_netdev_priv(dev);
  8833. if (padapter == NULL)
  8834. return -ENETDOWN;
  8835. if (padapter->bup == _FALSE) {
  8836. RTW_INFO(" %s fail =>(padapter->bup == _FALSE )\n", __FUNCTION__);
  8837. return -ENETDOWN;
  8838. }
  8839. if (RTW_CANNOT_RUN(padapter)) {
  8840. RTW_INFO("%s fail =>(bSurpriseRemoved == _TRUE) || ( bDriverStopped == _TRUE)\n", __func__);
  8841. return -ENETDOWN;
  8842. }
  8843. if (extra == NULL) {
  8844. wrqu->length = 0;
  8845. return -EIO;
  8846. }
  8847. if (subcmd < MP_NULL) {
  8848. #ifdef CONFIG_MP_INCLUDED
  8849. rtw_priv_mp_set(dev, info, wdata, extra);
  8850. #endif
  8851. return 0;
  8852. }
  8853. switch (subcmd) {
  8854. #ifdef CONFIG_WOWLAN
  8855. case MP_WOW_ENABLE:
  8856. RTW_INFO("set case MP_WOW_ENABLE: %s\n", extra);
  8857. rtw_wowlan_ctrl(dev, info, wdata, extra);
  8858. break;
  8859. case MP_WOW_SET_PATTERN:
  8860. RTW_INFO("set case MP_WOW_SET_PATTERN: %s\n", extra);
  8861. rtw_wowlan_set_pattern(dev, info, wdata, extra);
  8862. break;
  8863. #endif
  8864. #ifdef CONFIG_AP_WOWLAN
  8865. case MP_AP_WOW_ENABLE:
  8866. RTW_INFO("set case MP_AP_WOW_ENABLE: %s\n", extra);
  8867. rtw_ap_wowlan_ctrl(dev, info, wdata, extra);
  8868. break;
  8869. #endif
  8870. #ifdef CONFIG_APPEND_VENDOR_IE_ENABLE
  8871. case VENDOR_IE_SET:
  8872. RTW_INFO("set case VENDOR_IE_SET\n");
  8873. rtw_vendor_ie_set(dev , info , wdata , extra);
  8874. break;
  8875. #endif
  8876. default:
  8877. return -EIO;
  8878. }
  8879. return 0;
  8880. }
  8881. static int rtw_priv_get(struct net_device *dev,
  8882. struct iw_request_info *info,
  8883. union iwreq_data *wdata, char *extra)
  8884. {
  8885. struct iw_point *wrqu = (struct iw_point *)wdata;
  8886. u32 subcmd = wrqu->flags;
  8887. PADAPTER padapter = rtw_netdev_priv(dev);
  8888. if (padapter == NULL)
  8889. return -ENETDOWN;
  8890. if (padapter->bup == _FALSE) {
  8891. RTW_INFO(" %s fail =>(padapter->bup == _FALSE )\n", __FUNCTION__);
  8892. return -ENETDOWN;
  8893. }
  8894. if (RTW_CANNOT_RUN(padapter)) {
  8895. RTW_INFO("%s fail =>(padapter->bSurpriseRemoved == _TRUE) || ( padapter->bDriverStopped == _TRUE)\n", __func__);
  8896. return -ENETDOWN;
  8897. }
  8898. if (extra == NULL) {
  8899. wrqu->length = 0;
  8900. return -EIO;
  8901. }
  8902. if (subcmd < MP_NULL) {
  8903. #ifdef CONFIG_MP_INCLUDED
  8904. rtw_priv_mp_get(dev, info, wdata, extra);
  8905. #endif
  8906. return 0;
  8907. }
  8908. switch (subcmd) {
  8909. #if defined(CONFIG_RTL8723B)
  8910. case MP_SetBT:
  8911. RTW_INFO("set MP_SetBT\n");
  8912. rtw_mp_SetBT(dev, info, wdata, extra);
  8913. break;
  8914. #endif
  8915. #ifdef CONFIG_SDIO_INDIRECT_ACCESS
  8916. case MP_SD_IREAD:
  8917. rtw_mp_sd_iread(dev, info, wrqu, extra);
  8918. break;
  8919. case MP_SD_IWRITE:
  8920. rtw_mp_sd_iwrite(dev, info, wrqu, extra);
  8921. break;
  8922. #endif
  8923. #ifdef CONFIG_APPEND_VENDOR_IE_ENABLE
  8924. case VENDOR_IE_GET:
  8925. RTW_INFO("get case VENDOR_IE_GET\n");
  8926. rtw_vendor_ie_get(dev , info , wdata , extra);
  8927. break;
  8928. #endif
  8929. default:
  8930. return -EIO;
  8931. }
  8932. rtw_msleep_os(10); /* delay 5ms for sending pkt before exit adb shell operation */
  8933. return 0;
  8934. }
  8935. static int rtw_wx_tdls_wfd_enable(struct net_device *dev,
  8936. struct iw_request_info *info,
  8937. union iwreq_data *wrqu, char *extra)
  8938. {
  8939. int ret = 0;
  8940. #ifdef CONFIG_TDLS
  8941. #ifdef CONFIG_WFD
  8942. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  8943. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  8944. if (extra[0] == '0')
  8945. rtw_tdls_wfd_enable(padapter, 0);
  8946. else
  8947. rtw_tdls_wfd_enable(padapter, 1);
  8948. #endif /* CONFIG_WFD */
  8949. #endif /* CONFIG_TDLS */
  8950. return ret;
  8951. }
  8952. static int rtw_tdls_weaksec(struct net_device *dev,
  8953. struct iw_request_info *info,
  8954. union iwreq_data *wrqu, char *extra)
  8955. {
  8956. int ret = 0;
  8957. #ifdef CONFIG_TDLS
  8958. u8 i, j;
  8959. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  8960. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  8961. if (extra[0] == '0')
  8962. padapter->wdinfo.wfd_tdls_weaksec = 0;
  8963. else
  8964. padapter->wdinfo.wfd_tdls_weaksec = 1;
  8965. #endif /* CONFIG_TDLS */
  8966. return ret;
  8967. }
  8968. static int rtw_tdls_enable(struct net_device *dev,
  8969. struct iw_request_info *info,
  8970. union iwreq_data *wrqu, char *extra)
  8971. {
  8972. int ret = 0;
  8973. #ifdef CONFIG_TDLS
  8974. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  8975. struct tdls_info *ptdlsinfo = &padapter->tdlsinfo;
  8976. _irqL irqL;
  8977. _list *plist, *phead;
  8978. s32 index;
  8979. struct sta_info *psta = NULL;
  8980. struct sta_priv *pstapriv = &padapter->stapriv;
  8981. u8 tdls_sta[NUM_STA][ETH_ALEN];
  8982. u8 empty_hwaddr[ETH_ALEN] = { 0x00 };
  8983. struct tdls_txmgmt txmgmt;
  8984. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  8985. _rtw_memset(tdls_sta, 0x00, sizeof(tdls_sta));
  8986. _rtw_memset(&txmgmt, 0x00, sizeof(struct tdls_txmgmt));
  8987. if (extra[0] == '0') {
  8988. ptdlsinfo->tdls_enable = 0;
  8989. if (pstapriv->asoc_sta_count == 1)
  8990. return ret;
  8991. _enter_critical_bh(&pstapriv->sta_hash_lock, &irqL);
  8992. for (index = 0; index < NUM_STA; index++) {
  8993. phead = &(pstapriv->sta_hash[index]);
  8994. plist = get_next(phead);
  8995. while (rtw_end_of_queue_search(phead, plist) == _FALSE) {
  8996. psta = LIST_CONTAINOR(plist, struct sta_info , hash_list);
  8997. plist = get_next(plist);
  8998. if (psta->tdls_sta_state != TDLS_STATE_NONE)
  8999. _rtw_memcpy(tdls_sta[index], psta->hwaddr, ETH_ALEN);
  9000. }
  9001. }
  9002. _exit_critical_bh(&pstapriv->sta_hash_lock, &irqL);
  9003. for (index = 0; index < NUM_STA; index++) {
  9004. if (!_rtw_memcmp(tdls_sta[index], empty_hwaddr, ETH_ALEN)) {
  9005. RTW_INFO("issue tear down to "MAC_FMT"\n", MAC_ARG(tdls_sta[index]));
  9006. txmgmt.status_code = _RSON_TDLS_TEAR_UN_RSN_;
  9007. _rtw_memcpy(txmgmt.peer, tdls_sta[index], ETH_ALEN);
  9008. issue_tdls_teardown(padapter, &txmgmt, _TRUE);
  9009. }
  9010. }
  9011. rtw_tdls_cmd(padapter, NULL, TDLS_RS_RCR);
  9012. rtw_reset_tdls_info(padapter);
  9013. } else if (extra[0] == '1')
  9014. ptdlsinfo->tdls_enable = 1;
  9015. #endif /* CONFIG_TDLS */
  9016. return ret;
  9017. }
  9018. static int rtw_tdls_setup(struct net_device *dev,
  9019. struct iw_request_info *info,
  9020. union iwreq_data *wrqu, char *extra)
  9021. {
  9022. int ret = 0;
  9023. #ifdef CONFIG_TDLS
  9024. u8 i, j;
  9025. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9026. struct tdls_txmgmt txmgmt;
  9027. #ifdef CONFIG_WFD
  9028. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  9029. #endif /* CONFIG_WFD */
  9030. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  9031. if (wrqu->data.length - 1 != 17) {
  9032. RTW_INFO("[%s] length:%d != 17\n", __FUNCTION__, (wrqu->data.length - 1));
  9033. return ret;
  9034. }
  9035. _rtw_memset(&txmgmt, 0x00, sizeof(struct tdls_txmgmt));
  9036. for (i = 0, j = 0 ; i < ETH_ALEN; i++, j += 3)
  9037. txmgmt.peer[i] = key_2char2num(*(extra + j), *(extra + j + 1));
  9038. #ifdef CONFIG_WFD
  9039. if (_AES_ != padapter->securitypriv.dot11PrivacyAlgrthm) {
  9040. /* Weak Security situation with AP. */
  9041. if (0 == pwdinfo->wfd_tdls_weaksec) {
  9042. /* Can't send the tdls setup request out!! */
  9043. RTW_INFO("[%s] Current link is not AES, "
  9044. "SKIP sending the tdls setup request!!\n", __FUNCTION__);
  9045. } else
  9046. issue_tdls_setup_req(padapter, &txmgmt, _TRUE);
  9047. } else
  9048. #endif /* CONFIG_WFD */
  9049. {
  9050. issue_tdls_setup_req(padapter, &txmgmt, _TRUE);
  9051. }
  9052. #endif /* CONFIG_TDLS */
  9053. return ret;
  9054. }
  9055. static int rtw_tdls_teardown(struct net_device *dev,
  9056. struct iw_request_info *info,
  9057. union iwreq_data *wrqu, char *extra)
  9058. {
  9059. int ret = 0;
  9060. #ifdef CONFIG_TDLS
  9061. u8 i, j;
  9062. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9063. struct sta_info *ptdls_sta = NULL;
  9064. struct tdls_txmgmt txmgmt;
  9065. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  9066. if (wrqu->data.length - 1 != 17 && wrqu->data.length - 1 != 19) {
  9067. RTW_INFO("[%s] length:%d != 17 or 19\n",
  9068. __FUNCTION__, (wrqu->data.length - 1));
  9069. return ret;
  9070. }
  9071. _rtw_memset(&txmgmt, 0x00, sizeof(struct tdls_txmgmt));
  9072. for (i = 0, j = 0; i < ETH_ALEN; i++, j += 3)
  9073. txmgmt.peer[i] = key_2char2num(*(extra + j), *(extra + j + 1));
  9074. ptdls_sta = rtw_get_stainfo(&(padapter->stapriv), txmgmt.peer);
  9075. if (ptdls_sta != NULL) {
  9076. txmgmt.status_code = _RSON_TDLS_TEAR_UN_RSN_;
  9077. if (wrqu->data.length - 1 == 19)
  9078. issue_tdls_teardown(padapter, &txmgmt, _FALSE);
  9079. else
  9080. issue_tdls_teardown(padapter, &txmgmt, _TRUE);
  9081. } else
  9082. RTW_INFO("TDLS peer not found\n");
  9083. #endif /* CONFIG_TDLS */
  9084. return ret;
  9085. }
  9086. static int rtw_tdls_discovery(struct net_device *dev,
  9087. struct iw_request_info *info,
  9088. union iwreq_data *wrqu, char *extra)
  9089. {
  9090. int ret = 0;
  9091. #ifdef CONFIG_TDLS
  9092. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9093. struct tdls_txmgmt txmgmt;
  9094. int i = 0, j = 0;
  9095. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  9096. _rtw_memset(&txmgmt, 0x00, sizeof(struct tdls_txmgmt));
  9097. for (i = 0, j = 0 ; i < ETH_ALEN; i++, j += 3)
  9098. txmgmt.peer[i] = key_2char2num(*(extra + j), *(extra + j + 1));
  9099. issue_tdls_dis_req(padapter, &txmgmt);
  9100. #endif /* CONFIG_TDLS */
  9101. return ret;
  9102. }
  9103. static int rtw_tdls_ch_switch(struct net_device *dev,
  9104. struct iw_request_info *info,
  9105. union iwreq_data *wrqu, char *extra)
  9106. {
  9107. int ret = 0;
  9108. #ifdef CONFIG_TDLS
  9109. #ifdef CONFIG_TDLS_CH_SW
  9110. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9111. struct tdls_ch_switch *pchsw_info = &padapter->tdlsinfo.chsw_info;
  9112. u8 i, j;
  9113. struct sta_info *ptdls_sta = NULL;
  9114. u8 take_care_iqk;
  9115. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  9116. if (rtw_tdls_is_chsw_allowed(padapter) == _FALSE) {
  9117. RTW_INFO("TDLS channel switch is not allowed\n");
  9118. return ret;
  9119. }
  9120. for (i = 0, j = 0 ; i < ETH_ALEN; i++, j += 3)
  9121. pchsw_info->addr[i] = key_2char2num(*(extra + j), *(extra + j + 1));
  9122. ptdls_sta = rtw_get_stainfo(&padapter->stapriv, pchsw_info->addr);
  9123. if (ptdls_sta == NULL)
  9124. return ret;
  9125. pchsw_info->ch_sw_state |= TDLS_CH_SW_INITIATOR_STATE;
  9126. if (ptdls_sta != NULL) {
  9127. if (pchsw_info->off_ch_num == 0)
  9128. pchsw_info->off_ch_num = 11;
  9129. } else
  9130. RTW_INFO("TDLS peer not found\n");
  9131. rtw_pm_set_lps(padapter, PS_MODE_ACTIVE);
  9132. rtw_hal_get_hwreg(padapter, HW_VAR_CH_SW_NEED_TO_TAKE_CARE_IQK_INFO, &take_care_iqk);
  9133. if (take_care_iqk == _TRUE) {
  9134. u8 central_chnl;
  9135. u8 bw_mode;
  9136. bw_mode = (pchsw_info->ch_offset) ? CHANNEL_WIDTH_40 : CHANNEL_WIDTH_20;
  9137. central_chnl = rtw_get_center_ch(pchsw_info->off_ch_num, bw_mode, pchsw_info->ch_offset);
  9138. if (rtw_hal_ch_sw_iqk_info_search(padapter, central_chnl, bw_mode) >= 0)
  9139. rtw_tdls_cmd(padapter, ptdls_sta->hwaddr, TDLS_CH_SW_START);
  9140. else
  9141. rtw_tdls_cmd(padapter, ptdls_sta->hwaddr, TDLS_CH_SW_PREPARE);
  9142. } else
  9143. rtw_tdls_cmd(padapter, ptdls_sta->hwaddr, TDLS_CH_SW_START);
  9144. /* issue_tdls_ch_switch_req(padapter, ptdls_sta); */
  9145. /* RTW_INFO("issue tdls ch switch req\n"); */
  9146. #endif /* CONFIG_TDLS_CH_SW */
  9147. #endif /* CONFIG_TDLS */
  9148. return ret;
  9149. }
  9150. static int rtw_tdls_ch_switch_off(struct net_device *dev,
  9151. struct iw_request_info *info,
  9152. union iwreq_data *wrqu, char *extra)
  9153. {
  9154. int ret = 0;
  9155. #ifdef CONFIG_TDLS
  9156. #ifdef CONFIG_TDLS_CH_SW
  9157. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9158. struct tdls_ch_switch *pchsw_info = &padapter->tdlsinfo.chsw_info;
  9159. u8 i, j, mac_addr[ETH_ALEN];
  9160. struct sta_info *ptdls_sta = NULL;
  9161. struct tdls_txmgmt txmgmt;
  9162. _rtw_memset(&txmgmt, 0x00, sizeof(struct tdls_txmgmt));
  9163. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  9164. if (rtw_tdls_is_chsw_allowed(padapter) == _FALSE) {
  9165. RTW_INFO("TDLS channel switch is not allowed\n");
  9166. return ret;
  9167. }
  9168. if (wrqu->data.length >= 17) {
  9169. for (i = 0, j = 0 ; i < ETH_ALEN; i++, j += 3)
  9170. mac_addr[i] = key_2char2num(*(extra + j), *(extra + j + 1));
  9171. ptdls_sta = rtw_get_stainfo(&padapter->stapriv, mac_addr);
  9172. }
  9173. if (ptdls_sta == NULL)
  9174. return ret;
  9175. rtw_tdls_cmd(padapter, ptdls_sta->hwaddr, TDLS_CH_SW_END_TO_BASE_CHNL);
  9176. pchsw_info->ch_sw_state &= ~(TDLS_CH_SW_INITIATOR_STATE |
  9177. TDLS_CH_SWITCH_ON_STATE |
  9178. TDLS_PEER_AT_OFF_STATE);
  9179. _rtw_memset(pchsw_info->addr, 0x00, ETH_ALEN);
  9180. ptdls_sta->ch_switch_time = 0;
  9181. ptdls_sta->ch_switch_timeout = 0;
  9182. _cancel_timer_ex(&ptdls_sta->ch_sw_timer);
  9183. _cancel_timer_ex(&ptdls_sta->delay_timer);
  9184. _cancel_timer_ex(&ptdls_sta->stay_on_base_chnl_timer);
  9185. _cancel_timer_ex(&ptdls_sta->ch_sw_monitor_timer);
  9186. rtw_pm_set_lps(padapter, PS_MODE_MAX);
  9187. #endif /* CONFIG_TDLS_CH_SW */
  9188. #endif /* CONFIG_TDLS */
  9189. return ret;
  9190. }
  9191. static int rtw_tdls_dump_ch(struct net_device *dev,
  9192. struct iw_request_info *info,
  9193. union iwreq_data *wrqu, char *extra)
  9194. {
  9195. int ret = 0;
  9196. #ifdef CONFIG_TDLS
  9197. #ifdef CONFIG_TDLS_CH_SW
  9198. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9199. struct tdls_info *ptdlsinfo = &padapter->tdlsinfo;
  9200. RTW_INFO("[%s] dump_stack:%s\n", __FUNCTION__, extra);
  9201. extra[wrqu->data.length] = 0x00;
  9202. ptdlsinfo->chsw_info.dump_stack = rtw_atoi(extra);
  9203. return ret;
  9204. #endif
  9205. #endif /* CONFIG_TDLS */
  9206. return ret;
  9207. }
  9208. static int rtw_tdls_off_ch_num(struct net_device *dev,
  9209. struct iw_request_info *info,
  9210. union iwreq_data *wrqu, char *extra)
  9211. {
  9212. int ret = 0;
  9213. #ifdef CONFIG_TDLS
  9214. #ifdef CONFIG_TDLS_CH_SW
  9215. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9216. struct tdls_info *ptdlsinfo = &padapter->tdlsinfo;
  9217. RTW_INFO("[%s] off_ch_num:%s\n", __FUNCTION__, extra);
  9218. extra[wrqu->data.length] = 0x00;
  9219. ptdlsinfo->chsw_info.off_ch_num = rtw_atoi(extra);
  9220. return ret;
  9221. #endif
  9222. #endif /* CONFIG_TDLS */
  9223. return ret;
  9224. }
  9225. static int rtw_tdls_ch_offset(struct net_device *dev,
  9226. struct iw_request_info *info,
  9227. union iwreq_data *wrqu, char *extra)
  9228. {
  9229. int ret = 0;
  9230. #ifdef CONFIG_TDLS
  9231. #ifdef CONFIG_TDLS_CH_SW
  9232. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9233. struct tdls_info *ptdlsinfo = &padapter->tdlsinfo;
  9234. RTW_INFO("[%s] ch_offset:%s\n", __FUNCTION__, extra);
  9235. extra[wrqu->data.length] = 0x00;
  9236. switch (rtw_atoi(extra)) {
  9237. case SCA:
  9238. ptdlsinfo->chsw_info.ch_offset = HAL_PRIME_CHNL_OFFSET_LOWER;
  9239. break;
  9240. case SCB:
  9241. ptdlsinfo->chsw_info.ch_offset = HAL_PRIME_CHNL_OFFSET_UPPER;
  9242. break;
  9243. default:
  9244. ptdlsinfo->chsw_info.ch_offset = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
  9245. break;
  9246. }
  9247. return ret;
  9248. #endif
  9249. #endif /* CONFIG_TDLS */
  9250. return ret;
  9251. }
  9252. static int rtw_tdls_pson(struct net_device *dev,
  9253. struct iw_request_info *info,
  9254. union iwreq_data *wrqu, char *extra)
  9255. {
  9256. int ret = 0;
  9257. #ifdef CONFIG_TDLS
  9258. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9259. u8 i, j, mac_addr[ETH_ALEN];
  9260. struct sta_info *ptdls_sta = NULL;
  9261. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  9262. for (i = 0, j = 0; i < ETH_ALEN; i++, j += 3)
  9263. mac_addr[i] = key_2char2num(*(extra + j), *(extra + j + 1));
  9264. ptdls_sta = rtw_get_stainfo(&padapter->stapriv, mac_addr);
  9265. issue_nulldata_to_TDLS_peer_STA(padapter, ptdls_sta->hwaddr, 1, 3, 500);
  9266. #endif /* CONFIG_TDLS */
  9267. return ret;
  9268. }
  9269. static int rtw_tdls_psoff(struct net_device *dev,
  9270. struct iw_request_info *info,
  9271. union iwreq_data *wrqu, char *extra)
  9272. {
  9273. int ret = 0;
  9274. #ifdef CONFIG_TDLS
  9275. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9276. u8 i, j, mac_addr[ETH_ALEN];
  9277. struct sta_info *ptdls_sta = NULL;
  9278. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  9279. for (i = 0, j = 0; i < ETH_ALEN; i++, j += 3)
  9280. mac_addr[i] = key_2char2num(*(extra + j), *(extra + j + 1));
  9281. ptdls_sta = rtw_get_stainfo(&padapter->stapriv, mac_addr);
  9282. if (ptdls_sta)
  9283. issue_nulldata_to_TDLS_peer_STA(padapter, ptdls_sta->hwaddr, 0, 3, 500);
  9284. #endif /* CONFIG_TDLS */
  9285. return ret;
  9286. }
  9287. static int rtw_tdls_setip(struct net_device *dev,
  9288. struct iw_request_info *info,
  9289. union iwreq_data *wrqu, char *extra)
  9290. {
  9291. int ret = 0;
  9292. #ifdef CONFIG_TDLS
  9293. #ifdef CONFIG_WFD
  9294. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9295. struct tdls_info *ptdlsinfo = &padapter->tdlsinfo;
  9296. struct wifi_display_info *pwfd_info = ptdlsinfo->wfd_info;
  9297. u8 i = 0, j = 0, k = 0, tag = 0;
  9298. RTW_INFO("[%s] %s %d\n", __FUNCTION__, extra, wrqu->data.length - 1);
  9299. while (i < 4) {
  9300. for (j = 0; j < 4; j++) {
  9301. if (*(extra + j + tag) == '.' || *(extra + j + tag) == '\0') {
  9302. if (j == 1)
  9303. pwfd_info->ip_address[i] = convert_ip_addr('0', '0', *(extra + (j - 1) + tag));
  9304. if (j == 2)
  9305. pwfd_info->ip_address[i] = convert_ip_addr('0', *(extra + (j - 2) + tag), *(extra + (j - 1) + tag));
  9306. if (j == 3)
  9307. pwfd_info->ip_address[i] = convert_ip_addr(*(extra + (j - 3) + tag), *(extra + (j - 2) + tag), *(extra + (j - 1) + tag));
  9308. tag += j + 1;
  9309. break;
  9310. }
  9311. }
  9312. i++;
  9313. }
  9314. RTW_INFO("[%s] Set IP = %u.%u.%u.%u\n", __FUNCTION__,
  9315. ptdlsinfo->wfd_info->ip_address[0],
  9316. ptdlsinfo->wfd_info->ip_address[1],
  9317. ptdlsinfo->wfd_info->ip_address[2],
  9318. ptdlsinfo->wfd_info->ip_address[3]);
  9319. #endif /* CONFIG_WFD */
  9320. #endif /* CONFIG_TDLS */
  9321. return ret;
  9322. }
  9323. static int rtw_tdls_getip(struct net_device *dev,
  9324. struct iw_request_info *info,
  9325. union iwreq_data *wrqu, char *extra)
  9326. {
  9327. int ret = 0;
  9328. #ifdef CONFIG_TDLS
  9329. #ifdef CONFIG_WFD
  9330. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9331. struct tdls_info *ptdlsinfo = &padapter->tdlsinfo;
  9332. struct wifi_display_info *pwfd_info = ptdlsinfo->wfd_info;
  9333. RTW_INFO("[%s]\n", __FUNCTION__);
  9334. sprintf(extra, "\n\n%u.%u.%u.%u\n",
  9335. pwfd_info->peer_ip_address[0], pwfd_info->peer_ip_address[1],
  9336. pwfd_info->peer_ip_address[2], pwfd_info->peer_ip_address[3]);
  9337. RTW_INFO("[%s] IP=%u.%u.%u.%u\n", __FUNCTION__,
  9338. pwfd_info->peer_ip_address[0], pwfd_info->peer_ip_address[1],
  9339. pwfd_info->peer_ip_address[2], pwfd_info->peer_ip_address[3]);
  9340. wrqu->data.length = strlen(extra);
  9341. #endif /* CONFIG_WFD */
  9342. #endif /* CONFIG_TDLS */
  9343. return ret;
  9344. }
  9345. static int rtw_tdls_getport(struct net_device *dev,
  9346. struct iw_request_info *info,
  9347. union iwreq_data *wrqu, char *extra)
  9348. {
  9349. int ret = 0;
  9350. #ifdef CONFIG_TDLS
  9351. #ifdef CONFIG_WFD
  9352. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9353. struct tdls_info *ptdlsinfo = &padapter->tdlsinfo;
  9354. struct wifi_display_info *pwfd_info = ptdlsinfo->wfd_info;
  9355. RTW_INFO("[%s]\n", __FUNCTION__);
  9356. sprintf(extra, "\n\n%d\n", pwfd_info->peer_rtsp_ctrlport);
  9357. RTW_INFO("[%s] remote port = %d\n",
  9358. __FUNCTION__, pwfd_info->peer_rtsp_ctrlport);
  9359. wrqu->data.length = strlen(extra);
  9360. #endif /* CONFIG_WFD */
  9361. #endif /* CONFIG_TDLS */
  9362. return ret;
  9363. }
  9364. /* WFDTDLS, for sigma test */
  9365. static int rtw_tdls_dis_result(struct net_device *dev,
  9366. struct iw_request_info *info,
  9367. union iwreq_data *wrqu, char *extra)
  9368. {
  9369. int ret = 0;
  9370. #ifdef CONFIG_TDLS
  9371. #ifdef CONFIG_WFD
  9372. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9373. struct tdls_info *ptdlsinfo = &padapter->tdlsinfo;
  9374. RTW_INFO("[%s]\n", __FUNCTION__);
  9375. if (ptdlsinfo->dev_discovered == _TRUE) {
  9376. sprintf(extra, "\n\nDis=1\n");
  9377. ptdlsinfo->dev_discovered = _FALSE;
  9378. }
  9379. wrqu->data.length = strlen(extra);
  9380. #endif /* CONFIG_WFD */
  9381. #endif /* CONFIG_TDLS */
  9382. return ret;
  9383. }
  9384. /* WFDTDLS, for sigma test */
  9385. static int rtw_wfd_tdls_status(struct net_device *dev,
  9386. struct iw_request_info *info,
  9387. union iwreq_data *wrqu, char *extra)
  9388. {
  9389. int ret = 0;
  9390. #ifdef CONFIG_TDLS
  9391. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9392. struct tdls_info *ptdlsinfo = &padapter->tdlsinfo;
  9393. RTW_INFO("[%s]\n", __FUNCTION__);
  9394. sprintf(extra, "\nlink_established:%d\n"
  9395. "sta_cnt:%d\n"
  9396. "sta_maximum:%d\n"
  9397. "cur_channel:%d\n"
  9398. "tdls_enable:%d"
  9399. #ifdef CONFIG_TDLS_CH_SW
  9400. "ch_sw_state:%08x\n"
  9401. "chsw_on:%d\n"
  9402. "off_ch_num:%d\n"
  9403. "cur_time:%d\n"
  9404. "ch_offset:%d\n"
  9405. "delay_swtich_back:%d"
  9406. #endif
  9407. ,
  9408. ptdlsinfo->link_established, ptdlsinfo->sta_cnt,
  9409. ptdlsinfo->sta_maximum, ptdlsinfo->cur_channel,
  9410. ptdlsinfo->tdls_enable
  9411. #ifdef CONFIG_TDLS_CH_SW
  9412. ,
  9413. ptdlsinfo->chsw_info.ch_sw_state,
  9414. ATOMIC_READ(&padapter->tdlsinfo.chsw_info.chsw_on),
  9415. ptdlsinfo->chsw_info.off_ch_num,
  9416. ptdlsinfo->chsw_info.cur_time,
  9417. ptdlsinfo->chsw_info.ch_offset,
  9418. ptdlsinfo->chsw_info.delay_switch_back
  9419. #endif
  9420. );
  9421. wrqu->data.length = strlen(extra);
  9422. #endif /* CONFIG_TDLS */
  9423. return ret;
  9424. }
  9425. static int rtw_tdls_getsta(struct net_device *dev,
  9426. struct iw_request_info *info,
  9427. union iwreq_data *wrqu, char *extra)
  9428. {
  9429. int ret = 0;
  9430. #ifdef CONFIG_TDLS
  9431. u8 i, j;
  9432. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9433. u8 addr[ETH_ALEN] = {0};
  9434. char charmac[17];
  9435. struct sta_info *ptdls_sta = NULL;
  9436. RTW_INFO("[%s] %s %d\n", __FUNCTION__,
  9437. (char *)wrqu->data.pointer, wrqu->data.length - 1);
  9438. if (copy_from_user(charmac, wrqu->data.pointer + 9, 17)) {
  9439. ret = -EFAULT;
  9440. goto exit;
  9441. }
  9442. RTW_INFO("[%s] %d, charmac:%s\n", __FUNCTION__, __LINE__, charmac);
  9443. for (i = 0, j = 0 ; i < ETH_ALEN; i++, j += 3)
  9444. addr[i] = key_2char2num(*(charmac + j), *(charmac + j + 1));
  9445. RTW_INFO("[%s] %d, charmac:%s, addr:"MAC_FMT"\n",
  9446. __FUNCTION__, __LINE__, charmac, MAC_ARG(addr));
  9447. ptdls_sta = rtw_get_stainfo(&padapter->stapriv, addr);
  9448. if (ptdls_sta) {
  9449. sprintf(extra, "\n\ntdls_sta_state=0x%08x\n", ptdls_sta->tdls_sta_state);
  9450. RTW_INFO("\n\ntdls_sta_state=%d\n", ptdls_sta->tdls_sta_state);
  9451. } else {
  9452. sprintf(extra, "\n\nNot found this sta\n");
  9453. RTW_INFO("\n\nNot found this sta\n");
  9454. }
  9455. wrqu->data.length = strlen(extra);
  9456. #endif /* CONFIG_TDLS */
  9457. exit:
  9458. return ret;
  9459. }
  9460. static int rtw_tdls_get_best_ch(struct net_device *dev,
  9461. struct iw_request_info *info,
  9462. union iwreq_data *wrqu, char *extra)
  9463. {
  9464. #ifdef CONFIG_FIND_BEST_CHANNEL
  9465. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9466. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  9467. u32 i, best_channel_24G = 1, best_channel_5G = 36, index_24G = 0, index_5G = 0;
  9468. for (i = 0; i < pmlmeext->max_chan_nums && pmlmeext->channel_set[i].ChannelNum != 0; i++) {
  9469. if (pmlmeext->channel_set[i].ChannelNum == 1)
  9470. index_24G = i;
  9471. if (pmlmeext->channel_set[i].ChannelNum == 36)
  9472. index_5G = i;
  9473. }
  9474. for (i = 0; i < pmlmeext->max_chan_nums && pmlmeext->channel_set[i].ChannelNum != 0; i++) {
  9475. /* 2.4G */
  9476. if (pmlmeext->channel_set[i].ChannelNum == 6 || pmlmeext->channel_set[i].ChannelNum == 11) {
  9477. if (pmlmeext->channel_set[i].rx_count < pmlmeext->channel_set[index_24G].rx_count) {
  9478. index_24G = i;
  9479. best_channel_24G = pmlmeext->channel_set[i].ChannelNum;
  9480. }
  9481. }
  9482. /* 5G */
  9483. if (pmlmeext->channel_set[i].ChannelNum >= 36
  9484. && pmlmeext->channel_set[i].ChannelNum < 140) {
  9485. /* Find primary channel */
  9486. if (((pmlmeext->channel_set[i].ChannelNum - 36) % 8 == 0)
  9487. && (pmlmeext->channel_set[i].rx_count < pmlmeext->channel_set[index_5G].rx_count)) {
  9488. index_5G = i;
  9489. best_channel_5G = pmlmeext->channel_set[i].ChannelNum;
  9490. }
  9491. }
  9492. if (pmlmeext->channel_set[i].ChannelNum >= 149
  9493. && pmlmeext->channel_set[i].ChannelNum < 165) {
  9494. /* Find primary channel */
  9495. if (((pmlmeext->channel_set[i].ChannelNum - 149) % 8 == 0)
  9496. && (pmlmeext->channel_set[i].rx_count < pmlmeext->channel_set[index_5G].rx_count)) {
  9497. index_5G = i;
  9498. best_channel_5G = pmlmeext->channel_set[i].ChannelNum;
  9499. }
  9500. }
  9501. #if 1 /* debug */
  9502. RTW_INFO("The rx cnt of channel %3d = %d\n",
  9503. pmlmeext->channel_set[i].ChannelNum,
  9504. pmlmeext->channel_set[i].rx_count);
  9505. #endif
  9506. }
  9507. sprintf(extra, "\nbest_channel_24G = %d\n", best_channel_24G);
  9508. RTW_INFO("best_channel_24G = %d\n", best_channel_24G);
  9509. if (index_5G != 0) {
  9510. sprintf(extra, "best_channel_5G = %d\n", best_channel_5G);
  9511. RTW_INFO("best_channel_5G = %d\n", best_channel_5G);
  9512. }
  9513. wrqu->data.length = strlen(extra);
  9514. #endif
  9515. return 0;
  9516. }
  9517. static int rtw_tdls(struct net_device *dev,
  9518. struct iw_request_info *info,
  9519. union iwreq_data *wrqu, char *extra)
  9520. {
  9521. int ret = 0;
  9522. #ifdef CONFIG_TDLS
  9523. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9524. RTW_INFO("[%s] extra = %s\n", __FUNCTION__, extra);
  9525. if (hal_chk_wl_func(padapter, WL_FUNC_TDLS) == _FALSE) {
  9526. RTW_INFO("Discard tdls oper since hal doesn't support tdls\n");
  9527. return 0;
  9528. }
  9529. if (padapter->tdlsinfo.tdls_enable == 0) {
  9530. RTW_INFO("tdls haven't enabled\n");
  9531. return 0;
  9532. }
  9533. /* WFD Sigma will use the tdls enable command to let the driver know we want to test the tdls now! */
  9534. if (hal_chk_wl_func(padapter, WL_FUNC_MIRACAST)) {
  9535. if (_rtw_memcmp(extra, "wfdenable=", 10)) {
  9536. wrqu->data.length -= 10;
  9537. rtw_wx_tdls_wfd_enable(dev, info, wrqu, &extra[10]);
  9538. return ret;
  9539. }
  9540. }
  9541. if (_rtw_memcmp(extra, "weaksec=", 8)) {
  9542. wrqu->data.length -= 8;
  9543. rtw_tdls_weaksec(dev, info, wrqu, &extra[8]);
  9544. return ret;
  9545. } else if (_rtw_memcmp(extra, "tdlsenable=", 11)) {
  9546. wrqu->data.length -= 11;
  9547. rtw_tdls_enable(dev, info, wrqu, &extra[11]);
  9548. return ret;
  9549. }
  9550. if (_rtw_memcmp(extra, "setup=", 6)) {
  9551. wrqu->data.length -= 6;
  9552. rtw_tdls_setup(dev, info, wrqu, &extra[6]);
  9553. } else if (_rtw_memcmp(extra, "tear=", 5)) {
  9554. wrqu->data.length -= 5;
  9555. rtw_tdls_teardown(dev, info, wrqu, &extra[5]);
  9556. } else if (_rtw_memcmp(extra, "dis=", 4)) {
  9557. wrqu->data.length -= 4;
  9558. rtw_tdls_discovery(dev, info, wrqu, &extra[4]);
  9559. } else if (_rtw_memcmp(extra, "swoff=", 6)) {
  9560. wrqu->data.length -= 6;
  9561. rtw_tdls_ch_switch_off(dev, info, wrqu, &extra[6]);
  9562. } else if (_rtw_memcmp(extra, "sw=", 3)) {
  9563. wrqu->data.length -= 3;
  9564. rtw_tdls_ch_switch(dev, info, wrqu, &extra[3]);
  9565. } else if (_rtw_memcmp(extra, "dumpstack=", 10)) {
  9566. wrqu->data.length -= 10;
  9567. rtw_tdls_dump_ch(dev, info, wrqu, &extra[10]);
  9568. } else if (_rtw_memcmp(extra, "offchnum=", 9)) {
  9569. wrqu->data.length -= 9;
  9570. rtw_tdls_off_ch_num(dev, info, wrqu, &extra[9]);
  9571. } else if (_rtw_memcmp(extra, "choffset=", 9)) {
  9572. wrqu->data.length -= 9;
  9573. rtw_tdls_ch_offset(dev, info, wrqu, &extra[9]);
  9574. } else if (_rtw_memcmp(extra, "pson=", 5)) {
  9575. wrqu->data.length -= 5;
  9576. rtw_tdls_pson(dev, info, wrqu, &extra[5]);
  9577. } else if (_rtw_memcmp(extra, "psoff=", 6)) {
  9578. wrqu->data.length -= 6;
  9579. rtw_tdls_psoff(dev, info, wrqu, &extra[6]);
  9580. }
  9581. #ifdef CONFIG_WFD
  9582. if (hal_chk_wl_func(padapter, WL_FUNC_MIRACAST)) {
  9583. if (_rtw_memcmp(extra, "setip=", 6)) {
  9584. wrqu->data.length -= 6;
  9585. rtw_tdls_setip(dev, info, wrqu, &extra[6]);
  9586. } else if (_rtw_memcmp(extra, "tprobe=", 6))
  9587. issue_tunneled_probe_req((_adapter *)rtw_netdev_priv(dev));
  9588. }
  9589. #endif /* CONFIG_WFD */
  9590. #endif /* CONFIG_TDLS */
  9591. return ret;
  9592. }
  9593. static int rtw_tdls_get(struct net_device *dev,
  9594. struct iw_request_info *info,
  9595. union iwreq_data *wrqu, char *extra)
  9596. {
  9597. int ret = 0;
  9598. #ifdef CONFIG_TDLS
  9599. RTW_INFO("[%s] extra = %s\n", __FUNCTION__, (char *) wrqu->data.pointer);
  9600. if (_rtw_memcmp(wrqu->data.pointer, "ip", 2))
  9601. rtw_tdls_getip(dev, info, wrqu, extra);
  9602. else if (_rtw_memcmp(wrqu->data.pointer, "port", 4))
  9603. rtw_tdls_getport(dev, info, wrqu, extra);
  9604. /* WFDTDLS, for sigma test */
  9605. else if (_rtw_memcmp(wrqu->data.pointer, "dis", 3))
  9606. rtw_tdls_dis_result(dev, info, wrqu, extra);
  9607. else if (_rtw_memcmp(wrqu->data.pointer, "status", 6))
  9608. rtw_wfd_tdls_status(dev, info, wrqu, extra);
  9609. else if (_rtw_memcmp(wrqu->data.pointer, "tdls_sta=", 9))
  9610. rtw_tdls_getsta(dev, info, wrqu, extra);
  9611. else if (_rtw_memcmp(wrqu->data.pointer, "best_ch", 7))
  9612. rtw_tdls_get_best_ch(dev, info, wrqu, extra);
  9613. #endif /* CONFIG_TDLS */
  9614. return ret;
  9615. }
  9616. #ifdef CONFIG_INTEL_WIDI
  9617. static int rtw_widi_set(struct net_device *dev,
  9618. struct iw_request_info *info,
  9619. union iwreq_data *wrqu, char *extra)
  9620. {
  9621. int ret = 0;
  9622. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9623. process_intel_widi_cmd(padapter, extra);
  9624. return ret;
  9625. }
  9626. static int rtw_widi_set_probe_request(struct net_device *dev,
  9627. struct iw_request_info *info,
  9628. union iwreq_data *wrqu, char *extra)
  9629. {
  9630. int ret = 0;
  9631. u8 *pbuf = NULL;
  9632. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  9633. pbuf = rtw_malloc(sizeof(l2_msg_t));
  9634. if (pbuf) {
  9635. if (copy_from_user(pbuf, wrqu->data.pointer, wrqu->data.length))
  9636. ret = -EFAULT;
  9637. /* _rtw_memcpy(pbuf, wrqu->data.pointer, wrqu->data.length); */
  9638. if (wrqu->data.flags == 0)
  9639. intel_widi_wk_cmd(padapter, INTEL_WIDI_ISSUE_PROB_WK, pbuf, sizeof(l2_msg_t));
  9640. else if (wrqu->data.flags == 1)
  9641. rtw_set_wfd_rds_sink_info(padapter, (l2_msg_t *)pbuf);
  9642. }
  9643. return ret;
  9644. }
  9645. #endif /* CONFIG_INTEL_WIDI */
  9646. #ifdef CONFIG_MAC_LOOPBACK_DRIVER
  9647. #if defined(CONFIG_RTL8188E)
  9648. #include <rtl8188e_hal.h>
  9649. extern void rtl8188e_cal_txdesc_chksum(struct tx_desc *ptxdesc);
  9650. #define cal_txdesc_chksum rtl8188e_cal_txdesc_chksum
  9651. #ifdef CONFIG_SDIO_HCI || defined(CONFIG_GSPI_HCI)
  9652. extern void rtl8188es_fill_default_txdesc(struct xmit_frame *pxmitframe, u8 *pbuf);
  9653. #define fill_default_txdesc rtl8188es_fill_default_txdesc
  9654. #endif /* CONFIG_SDIO_HCI */
  9655. #endif /* CONFIG_RTL8188E */
  9656. #if defined(CONFIG_RTL8723B)
  9657. extern void rtl8723b_cal_txdesc_chksum(struct tx_desc *ptxdesc);
  9658. #define cal_txdesc_chksum rtl8723b_cal_txdesc_chksum
  9659. extern void rtl8723b_fill_default_txdesc(struct xmit_frame *pxmitframe, u8 *pbuf);
  9660. #define fill_default_txdesc rtl8723b_fill_default_txdesc
  9661. #endif /* CONFIG_RTL8723B */
  9662. #if defined(CONFIG_RTL8703B)
  9663. /* extern void rtl8703b_cal_txdesc_chksum(struct tx_desc *ptxdesc); */
  9664. #define cal_txdesc_chksum rtl8703b_cal_txdesc_chksum
  9665. /* extern void rtl8703b_fill_default_txdesc(struct xmit_frame *pxmitframe, u8 *pbuf); */
  9666. #define fill_default_txdesc rtl8703b_fill_default_txdesc
  9667. #endif /* CONFIG_RTL8703B */
  9668. #if defined(CONFIG_RTL8723D)
  9669. /* extern void rtl8723d_cal_txdesc_chksum(struct tx_desc *ptxdesc); */
  9670. #define cal_txdesc_chksum rtl8723d_cal_txdesc_chksum
  9671. /* extern void rtl8723d_fill_default_txdesc(struct xmit_frame *pxmitframe, u8 *pbuf); */
  9672. #define fill_default_txdesc rtl8723d_fill_default_txdesc
  9673. #endif /* CONFIG_RTL8723D */
  9674. #if defined(CONFIG_RTL8192E)
  9675. extern void rtl8192e_cal_txdesc_chksum(struct tx_desc *ptxdesc);
  9676. #define cal_txdesc_chksum rtl8192e_cal_txdesc_chksum
  9677. #ifdef CONFIG_SDIO_HCI || defined(CONFIG_GSPI_HCI)
  9678. extern void rtl8192es_fill_default_txdesc(struct xmit_frame *pxmitframe, u8 *pbuf);
  9679. #define fill_default_txdesc rtl8192es_fill_default_txdesc
  9680. #endif /* CONFIG_SDIO_HCI */
  9681. #endif /* CONFIG_RTL8192E */
  9682. static s32 initLoopback(PADAPTER padapter)
  9683. {
  9684. PLOOPBACKDATA ploopback;
  9685. if (padapter->ploopback == NULL) {
  9686. ploopback = (PLOOPBACKDATA)rtw_zmalloc(sizeof(LOOPBACKDATA));
  9687. if (ploopback == NULL)
  9688. return -ENOMEM;
  9689. _rtw_init_sema(&ploopback->sema, 0);
  9690. ploopback->bstop = _TRUE;
  9691. ploopback->cnt = 0;
  9692. ploopback->size = 300;
  9693. _rtw_memset(ploopback->msg, 0, sizeof(ploopback->msg));
  9694. padapter->ploopback = ploopback;
  9695. }
  9696. return 0;
  9697. }
  9698. static void freeLoopback(PADAPTER padapter)
  9699. {
  9700. PLOOPBACKDATA ploopback;
  9701. ploopback = padapter->ploopback;
  9702. if (ploopback) {
  9703. rtw_mfree((u8 *)ploopback, sizeof(LOOPBACKDATA));
  9704. padapter->ploopback = NULL;
  9705. }
  9706. }
  9707. static s32 initpseudoadhoc(PADAPTER padapter)
  9708. {
  9709. NDIS_802_11_NETWORK_INFRASTRUCTURE networkType;
  9710. s32 err;
  9711. networkType = Ndis802_11IBSS;
  9712. err = rtw_set_802_11_infrastructure_mode(padapter, networkType);
  9713. if (err == _FALSE)
  9714. return _FAIL;
  9715. err = rtw_setopmode_cmd(padapter, networkType, _TRUE);
  9716. if (err == _FAIL)
  9717. return _FAIL;
  9718. return _SUCCESS;
  9719. }
  9720. static s32 createpseudoadhoc(PADAPTER padapter)
  9721. {
  9722. NDIS_802_11_AUTHENTICATION_MODE authmode;
  9723. struct mlme_priv *pmlmepriv;
  9724. NDIS_802_11_SSID *passoc_ssid;
  9725. WLAN_BSSID_EX *pdev_network;
  9726. u8 *pibss;
  9727. u8 ssid[] = "pseduo_ad-hoc";
  9728. s32 err;
  9729. _irqL irqL;
  9730. pmlmepriv = &padapter->mlmepriv;
  9731. authmode = Ndis802_11AuthModeOpen;
  9732. err = rtw_set_802_11_authentication_mode(padapter, authmode);
  9733. if (err == _FALSE)
  9734. return _FAIL;
  9735. passoc_ssid = &pmlmepriv->assoc_ssid;
  9736. _rtw_memset(passoc_ssid, 0, sizeof(NDIS_802_11_SSID));
  9737. passoc_ssid->SsidLength = sizeof(ssid) - 1;
  9738. _rtw_memcpy(passoc_ssid->Ssid, ssid, passoc_ssid->SsidLength);
  9739. pdev_network = &padapter->registrypriv.dev_network;
  9740. pibss = padapter->registrypriv.dev_network.MacAddress;
  9741. _rtw_memcpy(&pdev_network->Ssid, passoc_ssid, sizeof(NDIS_802_11_SSID));
  9742. rtw_update_registrypriv_dev_network(padapter);
  9743. rtw_generate_random_ibss(pibss);
  9744. _enter_critical_bh(&pmlmepriv->lock, &irqL);
  9745. /*pmlmepriv->fw_state = WIFI_ADHOC_MASTER_STATE;*/
  9746. init_fwstate(pmlmepriv, WIFI_ADHOC_MASTER_STATE);
  9747. _exit_critical_bh(&pmlmepriv->lock, &irqL);
  9748. #if 0
  9749. err = rtw_create_ibss_cmd(padapter, 0);
  9750. if (err == _FAIL)
  9751. return _FAIL;
  9752. #else
  9753. {
  9754. struct wlan_network *pcur_network;
  9755. struct sta_info *psta;
  9756. /* 3 create a new psta */
  9757. pcur_network = &pmlmepriv->cur_network;
  9758. /* clear psta in the cur_network, if any */
  9759. psta = rtw_get_stainfo(&padapter->stapriv, pcur_network->network.MacAddress);
  9760. if (psta)
  9761. rtw_free_stainfo(padapter, psta);
  9762. psta = rtw_alloc_stainfo(&padapter->stapriv, pibss);
  9763. if (psta == NULL)
  9764. return _FAIL;
  9765. /* 3 join psudo AdHoc */
  9766. pcur_network->join_res = 1;
  9767. pcur_network->aid = psta->aid = 1;
  9768. _rtw_memcpy(&pcur_network->network, pdev_network, get_WLAN_BSSID_EX_sz(pdev_network));
  9769. /* set msr to WIFI_FW_ADHOC_STATE */
  9770. padapter->hw_port = HW_PORT0;
  9771. Set_MSR(padapter, WIFI_FW_ADHOC_STATE);
  9772. }
  9773. #endif
  9774. return _SUCCESS;
  9775. }
  9776. static struct xmit_frame *createloopbackpkt(PADAPTER padapter, u32 size)
  9777. {
  9778. struct xmit_priv *pxmitpriv;
  9779. struct xmit_frame *pframe;
  9780. struct xmit_buf *pxmitbuf;
  9781. struct pkt_attrib *pattrib;
  9782. struct tx_desc *desc;
  9783. u8 *pkt_start, *pkt_end, *ptr;
  9784. struct rtw_ieee80211_hdr *hdr;
  9785. s32 bmcast;
  9786. _irqL irqL;
  9787. if ((TXDESC_SIZE + WLANHDR_OFFSET + size) > MAX_XMITBUF_SZ)
  9788. return NULL;
  9789. pxmitpriv = &padapter->xmitpriv;
  9790. pframe = NULL;
  9791. /* 2 1. allocate xmit frame */
  9792. pframe = rtw_alloc_xmitframe(pxmitpriv);
  9793. if (pframe == NULL)
  9794. return NULL;
  9795. pframe->padapter = padapter;
  9796. /* 2 2. allocate xmit buffer */
  9797. _enter_critical_bh(&pxmitpriv->lock, &irqL);
  9798. pxmitbuf = rtw_alloc_xmitbuf(pxmitpriv);
  9799. _exit_critical_bh(&pxmitpriv->lock, &irqL);
  9800. if (pxmitbuf == NULL) {
  9801. rtw_free_xmitframe(pxmitpriv, pframe);
  9802. return NULL;
  9803. }
  9804. pframe->pxmitbuf = pxmitbuf;
  9805. pframe->buf_addr = pxmitbuf->pbuf;
  9806. pxmitbuf->priv_data = pframe;
  9807. /* 2 3. update_attrib() */
  9808. pattrib = &pframe->attrib;
  9809. /* init xmitframe attribute */
  9810. _rtw_memset(pattrib, 0, sizeof(struct pkt_attrib));
  9811. pattrib->ether_type = 0x8723;
  9812. _rtw_memcpy(pattrib->src, adapter_mac_addr(padapter), ETH_ALEN);
  9813. _rtw_memcpy(pattrib->ta, pattrib->src, ETH_ALEN);
  9814. _rtw_memset(pattrib->dst, 0xFF, ETH_ALEN);
  9815. _rtw_memcpy(pattrib->ra, pattrib->dst, ETH_ALEN);
  9816. /* pattrib->dhcp_pkt = 0;
  9817. * pattrib->pktlen = 0; */
  9818. pattrib->ack_policy = 0;
  9819. /* pattrib->pkt_hdrlen = ETH_HLEN; */
  9820. pattrib->hdrlen = WLAN_HDR_A3_LEN;
  9821. pattrib->subtype = WIFI_DATA;
  9822. pattrib->priority = 0;
  9823. pattrib->qsel = pattrib->priority;
  9824. /* do_queue_select(padapter, pattrib); */
  9825. pattrib->nr_frags = 1;
  9826. pattrib->encrypt = 0;
  9827. pattrib->bswenc = _FALSE;
  9828. pattrib->qos_en = _FALSE;
  9829. bmcast = IS_MCAST(pattrib->ra);
  9830. if (bmcast) {
  9831. pattrib->mac_id = 1;
  9832. pattrib->psta = rtw_get_bcmc_stainfo(padapter);
  9833. } else {
  9834. pattrib->mac_id = 0;
  9835. pattrib->psta = rtw_get_stainfo(&padapter->stapriv, get_bssid(&padapter->mlmepriv));
  9836. }
  9837. pattrib->pktlen = size;
  9838. pattrib->last_txcmdsz = pattrib->hdrlen + pattrib->pktlen;
  9839. /* 2 4. fill TX descriptor */
  9840. desc = (struct tx_desc *)pframe->buf_addr;
  9841. _rtw_memset(desc, 0, TXDESC_SIZE);
  9842. fill_default_txdesc(pframe, (u8 *)desc);
  9843. /* Hw set sequence number */
  9844. ((PTXDESC)desc)->hwseq_en = 0; /* HWSEQ_EN, 0:disable, 1:enable
  9845. * ((PTXDESC)desc)->hwseq_sel = 0; */ /* HWSEQ_SEL */
  9846. ((PTXDESC)desc)->disdatafb = 1;
  9847. /* convert to little endian */
  9848. desc->txdw0 = cpu_to_le32(desc->txdw0);
  9849. desc->txdw1 = cpu_to_le32(desc->txdw1);
  9850. desc->txdw2 = cpu_to_le32(desc->txdw2);
  9851. desc->txdw3 = cpu_to_le32(desc->txdw3);
  9852. desc->txdw4 = cpu_to_le32(desc->txdw4);
  9853. desc->txdw5 = cpu_to_le32(desc->txdw5);
  9854. desc->txdw6 = cpu_to_le32(desc->txdw6);
  9855. desc->txdw7 = cpu_to_le32(desc->txdw7);
  9856. #ifdef CONFIG_PCI_HCI
  9857. desc->txdw8 = cpu_to_le32(desc->txdw8);
  9858. desc->txdw9 = cpu_to_le32(desc->txdw9);
  9859. desc->txdw10 = cpu_to_le32(desc->txdw10);
  9860. desc->txdw11 = cpu_to_le32(desc->txdw11);
  9861. desc->txdw12 = cpu_to_le32(desc->txdw12);
  9862. desc->txdw13 = cpu_to_le32(desc->txdw13);
  9863. desc->txdw14 = cpu_to_le32(desc->txdw14);
  9864. desc->txdw15 = cpu_to_le32(desc->txdw15);
  9865. #endif
  9866. cal_txdesc_chksum(desc);
  9867. /* 2 5. coalesce */
  9868. pkt_start = pframe->buf_addr + TXDESC_SIZE;
  9869. pkt_end = pkt_start + pattrib->last_txcmdsz;
  9870. /* 3 5.1. make wlan header, make_wlanhdr() */
  9871. hdr = (struct rtw_ieee80211_hdr *)pkt_start;
  9872. set_frame_sub_type(&hdr->frame_ctl, pattrib->subtype);
  9873. _rtw_memcpy(hdr->addr1, pattrib->dst, ETH_ALEN); /* DA */
  9874. _rtw_memcpy(hdr->addr2, pattrib->src, ETH_ALEN); /* SA */
  9875. _rtw_memcpy(hdr->addr3, get_bssid(&padapter->mlmepriv), ETH_ALEN); /* RA, BSSID */
  9876. /* 3 5.2. make payload */
  9877. ptr = pkt_start + pattrib->hdrlen;
  9878. get_random_bytes(ptr, pkt_end - ptr);
  9879. pxmitbuf->len = TXDESC_SIZE + pattrib->last_txcmdsz;
  9880. pxmitbuf->ptail += pxmitbuf->len;
  9881. return pframe;
  9882. }
  9883. static void freeloopbackpkt(PADAPTER padapter, struct xmit_frame *pframe)
  9884. {
  9885. struct xmit_priv *pxmitpriv;
  9886. struct xmit_buf *pxmitbuf;
  9887. pxmitpriv = &padapter->xmitpriv;
  9888. pxmitbuf = pframe->pxmitbuf;
  9889. rtw_free_xmitframe(pxmitpriv, pframe);
  9890. rtw_free_xmitbuf(pxmitpriv, pxmitbuf);
  9891. }
  9892. static void printdata(u8 *pbuf, u32 len)
  9893. {
  9894. u32 i, val;
  9895. for (i = 0; (i + 4) <= len; i += 4) {
  9896. printk("%08X", *(u32 *)(pbuf + i));
  9897. if ((i + 4) & 0x1F)
  9898. printk(" ");
  9899. else
  9900. printk("\n");
  9901. }
  9902. if (i < len) {
  9903. #ifdef CONFIG_BIG_ENDIAN
  9904. for (; i < len, i++)
  9905. printk("%02X", pbuf + i);
  9906. #else /* CONFIG_LITTLE_ENDIAN */
  9907. #if 0
  9908. val = 0;
  9909. _rtw_memcpy(&val, pbuf + i, len - i);
  9910. printk("%8X", val);
  9911. #else
  9912. u8 str[9];
  9913. u8 n;
  9914. val = 0;
  9915. n = len - i;
  9916. _rtw_memcpy(&val, pbuf + i, n);
  9917. sprintf(str, "%08X", val);
  9918. n = (4 - n) * 2;
  9919. printk("%8s", str + n);
  9920. #endif
  9921. #endif /* CONFIG_LITTLE_ENDIAN */
  9922. }
  9923. printk("\n");
  9924. }
  9925. static u8 pktcmp(PADAPTER padapter, u8 *txbuf, u32 txsz, u8 *rxbuf, u32 rxsz)
  9926. {
  9927. PHAL_DATA_TYPE phal;
  9928. struct recv_stat *prxstat;
  9929. struct recv_stat report;
  9930. PRXREPORT prxreport;
  9931. u32 drvinfosize;
  9932. u32 rxpktsize;
  9933. u8 fcssize;
  9934. u8 ret = _FALSE;
  9935. prxstat = (struct recv_stat *)rxbuf;
  9936. report.rxdw0 = le32_to_cpu(prxstat->rxdw0);
  9937. report.rxdw1 = le32_to_cpu(prxstat->rxdw1);
  9938. report.rxdw2 = le32_to_cpu(prxstat->rxdw2);
  9939. report.rxdw3 = le32_to_cpu(prxstat->rxdw3);
  9940. report.rxdw4 = le32_to_cpu(prxstat->rxdw4);
  9941. report.rxdw5 = le32_to_cpu(prxstat->rxdw5);
  9942. prxreport = (PRXREPORT)&report;
  9943. drvinfosize = prxreport->drvinfosize << 3;
  9944. rxpktsize = prxreport->pktlen;
  9945. phal = GET_HAL_DATA(padapter);
  9946. if (phal->ReceiveConfig & RCR_APPFCS)
  9947. fcssize = IEEE80211_FCS_LEN;
  9948. else
  9949. fcssize = 0;
  9950. if ((txsz - TXDESC_SIZE) != (rxpktsize - fcssize)) {
  9951. RTW_INFO("%s: ERROR! size not match tx/rx=%d/%d !\n",
  9952. __func__, txsz - TXDESC_SIZE, rxpktsize - fcssize);
  9953. ret = _FALSE;
  9954. } else {
  9955. ret = _rtw_memcmp(txbuf + TXDESC_SIZE, \
  9956. rxbuf + RXDESC_SIZE + drvinfosize, \
  9957. txsz - TXDESC_SIZE);
  9958. if (ret == _FALSE)
  9959. RTW_INFO("%s: ERROR! pkt content mismatch!\n", __func__);
  9960. }
  9961. if (ret == _FALSE) {
  9962. RTW_INFO("\n%s: TX PKT total=%d, desc=%d, content=%d\n",
  9963. __func__, txsz, TXDESC_SIZE, txsz - TXDESC_SIZE);
  9964. RTW_INFO("%s: TX DESC size=%d\n", __func__, TXDESC_SIZE);
  9965. printdata(txbuf, TXDESC_SIZE);
  9966. RTW_INFO("%s: TX content size=%d\n", __func__, txsz - TXDESC_SIZE);
  9967. printdata(txbuf + TXDESC_SIZE, txsz - TXDESC_SIZE);
  9968. RTW_INFO("\n%s: RX PKT read=%d offset=%d(%d,%d) content=%d\n",
  9969. __func__, rxsz, RXDESC_SIZE + drvinfosize, RXDESC_SIZE, drvinfosize, rxpktsize);
  9970. if (rxpktsize != 0) {
  9971. RTW_INFO("%s: RX DESC size=%d\n", __func__, RXDESC_SIZE);
  9972. printdata(rxbuf, RXDESC_SIZE);
  9973. RTW_INFO("%s: RX drvinfo size=%d\n", __func__, drvinfosize);
  9974. printdata(rxbuf + RXDESC_SIZE, drvinfosize);
  9975. RTW_INFO("%s: RX content size=%d\n", __func__, rxpktsize);
  9976. printdata(rxbuf + RXDESC_SIZE + drvinfosize, rxpktsize);
  9977. } else {
  9978. RTW_INFO("%s: RX data size=%d\n", __func__, rxsz);
  9979. printdata(rxbuf, rxsz);
  9980. }
  9981. }
  9982. return ret;
  9983. }
  9984. thread_return lbk_thread(thread_context context)
  9985. {
  9986. s32 err;
  9987. PADAPTER padapter;
  9988. PLOOPBACKDATA ploopback;
  9989. struct xmit_frame *pxmitframe;
  9990. u32 cnt, ok, fail, headerlen;
  9991. u32 pktsize;
  9992. u32 ff_hwaddr;
  9993. padapter = (PADAPTER)context;
  9994. ploopback = padapter->ploopback;
  9995. if (ploopback == NULL)
  9996. return -1;
  9997. cnt = 0;
  9998. ok = 0;
  9999. fail = 0;
  10000. daemonize("%s", "RTW_LBK_THREAD");
  10001. allow_signal(SIGTERM);
  10002. do {
  10003. if (ploopback->size == 0) {
  10004. get_random_bytes(&pktsize, 4);
  10005. pktsize = (pktsize % 1535) + 1; /* 1~1535 */
  10006. } else
  10007. pktsize = ploopback->size;
  10008. pxmitframe = createloopbackpkt(padapter, pktsize);
  10009. if (pxmitframe == NULL) {
  10010. sprintf(ploopback->msg, "loopback FAIL! 3. create Packet FAIL!");
  10011. break;
  10012. }
  10013. ploopback->txsize = TXDESC_SIZE + pxmitframe->attrib.last_txcmdsz;
  10014. _rtw_memcpy(ploopback->txbuf, pxmitframe->buf_addr, ploopback->txsize);
  10015. ff_hwaddr = rtw_get_ff_hwaddr(pxmitframe);
  10016. cnt++;
  10017. RTW_INFO("%s: wirte port cnt=%d size=%d\n", __func__, cnt, ploopback->txsize);
  10018. pxmitframe->pxmitbuf->pdata = ploopback->txbuf;
  10019. rtw_write_port(padapter, ff_hwaddr, ploopback->txsize, (u8 *)pxmitframe->pxmitbuf);
  10020. /* wait for rx pkt */
  10021. _rtw_down_sema(&ploopback->sema);
  10022. err = pktcmp(padapter, ploopback->txbuf, ploopback->txsize, ploopback->rxbuf, ploopback->rxsize);
  10023. if (err == _TRUE)
  10024. ok++;
  10025. else
  10026. fail++;
  10027. ploopback->txsize = 0;
  10028. _rtw_memset(ploopback->txbuf, 0, 0x8000);
  10029. ploopback->rxsize = 0;
  10030. _rtw_memset(ploopback->rxbuf, 0, 0x8000);
  10031. freeloopbackpkt(padapter, pxmitframe);
  10032. pxmitframe = NULL;
  10033. flush_signals_thread();
  10034. if ((ploopback->bstop == _TRUE) ||
  10035. ((ploopback->cnt != 0) && (ploopback->cnt == cnt))) {
  10036. u32 ok_rate, fail_rate, all;
  10037. all = cnt;
  10038. ok_rate = (ok * 100) / all;
  10039. fail_rate = (fail * 100) / all;
  10040. sprintf(ploopback->msg, \
  10041. "loopback result: ok=%d%%(%d/%d),error=%d%%(%d/%d)", \
  10042. ok_rate, ok, all, fail_rate, fail, all);
  10043. break;
  10044. }
  10045. } while (1);
  10046. ploopback->bstop = _TRUE;
  10047. thread_exit(NULL);
  10048. return 0;
  10049. }
  10050. static void loopbackTest(PADAPTER padapter, u32 cnt, u32 size, u8 *pmsg)
  10051. {
  10052. PLOOPBACKDATA ploopback;
  10053. u32 len;
  10054. s32 err;
  10055. ploopback = padapter->ploopback;
  10056. if (ploopback) {
  10057. if (ploopback->bstop == _FALSE) {
  10058. ploopback->bstop = _TRUE;
  10059. _rtw_up_sema(&ploopback->sema);
  10060. }
  10061. len = 0;
  10062. do {
  10063. len = strlen(ploopback->msg);
  10064. if (len)
  10065. break;
  10066. rtw_msleep_os(1);
  10067. } while (1);
  10068. _rtw_memcpy(pmsg, ploopback->msg, len + 1);
  10069. freeLoopback(padapter);
  10070. return;
  10071. }
  10072. /* disable dynamic algorithm */
  10073. rtw_phydm_ability_backup(padapter);
  10074. rtw_phydm_func_disable_all(padapter);
  10075. /* create pseudo ad-hoc connection */
  10076. err = initpseudoadhoc(padapter);
  10077. if (err == _FAIL) {
  10078. sprintf(pmsg, "loopback FAIL! 1.1 init ad-hoc FAIL!");
  10079. return;
  10080. }
  10081. err = createpseudoadhoc(padapter);
  10082. if (err == _FAIL) {
  10083. sprintf(pmsg, "loopback FAIL! 1.2 create ad-hoc master FAIL!");
  10084. return;
  10085. }
  10086. err = initLoopback(padapter);
  10087. if (err) {
  10088. sprintf(pmsg, "loopback FAIL! 2. init FAIL! error code=%d", err);
  10089. return;
  10090. }
  10091. ploopback = padapter->ploopback;
  10092. ploopback->bstop = _FALSE;
  10093. ploopback->cnt = cnt;
  10094. ploopback->size = size;
  10095. ploopback->lbkthread = kthread_run(lbk_thread, padapter, "RTW_LBK_THREAD");
  10096. if (IS_ERR(padapter->lbkthread)) {
  10097. freeLoopback(padapter);
  10098. sprintf(pmsg, "loopback start FAIL! cnt=%d", cnt);
  10099. return;
  10100. }
  10101. sprintf(pmsg, "loopback start! cnt=%d", cnt);
  10102. }
  10103. #endif /* CONFIG_MAC_LOOPBACK_DRIVER */
  10104. static int rtw_test(
  10105. struct net_device *dev,
  10106. struct iw_request_info *info,
  10107. union iwreq_data *wrqu, char *extra)
  10108. {
  10109. u32 len;
  10110. u8 *pbuf, *pch;
  10111. char *ptmp;
  10112. u8 *delim = ",";
  10113. PADAPTER padapter = rtw_netdev_priv(dev);
  10114. RTW_INFO("+%s\n", __func__);
  10115. len = wrqu->data.length;
  10116. pbuf = (u8 *)rtw_zmalloc(len);
  10117. if (pbuf == NULL) {
  10118. RTW_INFO("%s: no memory!\n", __func__);
  10119. return -ENOMEM;
  10120. }
  10121. if (copy_from_user(pbuf, wrqu->data.pointer, len)) {
  10122. rtw_mfree(pbuf, len);
  10123. RTW_INFO("%s: copy from user fail!\n", __func__);
  10124. return -EFAULT;
  10125. }
  10126. RTW_INFO("%s: string=\"%s\"\n", __func__, pbuf);
  10127. ptmp = (char *)pbuf;
  10128. pch = strsep(&ptmp, delim);
  10129. if ((pch == NULL) || (strlen(pch) == 0)) {
  10130. rtw_mfree(pbuf, len);
  10131. RTW_INFO("%s: parameter error(level 1)!\n", __func__);
  10132. return -EFAULT;
  10133. }
  10134. #ifdef CONFIG_MAC_LOOPBACK_DRIVER
  10135. if (strcmp(pch, "loopback") == 0) {
  10136. s32 cnt = 0;
  10137. u32 size = 64;
  10138. pch = strsep(&ptmp, delim);
  10139. if ((pch == NULL) || (strlen(pch) == 0)) {
  10140. rtw_mfree(pbuf, len);
  10141. RTW_INFO("%s: parameter error(level 2)!\n", __func__);
  10142. return -EFAULT;
  10143. }
  10144. sscanf(pch, "%d", &cnt);
  10145. RTW_INFO("%s: loopback cnt=%d\n", __func__, cnt);
  10146. pch = strsep(&ptmp, delim);
  10147. if ((pch == NULL) || (strlen(pch) == 0)) {
  10148. rtw_mfree(pbuf, len);
  10149. RTW_INFO("%s: parameter error(level 2)!\n", __func__);
  10150. return -EFAULT;
  10151. }
  10152. sscanf(pch, "%d", &size);
  10153. RTW_INFO("%s: loopback size=%d\n", __func__, size);
  10154. loopbackTest(padapter, cnt, size, extra);
  10155. wrqu->data.length = strlen(extra) + 1;
  10156. goto free_buf;
  10157. }
  10158. #endif
  10159. #ifdef CONFIG_BT_COEXIST
  10160. if (strcmp(pch, "bton") == 0) {
  10161. rtw_btcoex_SetManualControl(padapter, _FALSE);
  10162. goto free_buf;
  10163. } else if (strcmp(pch, "btoff") == 0) {
  10164. rtw_btcoex_SetManualControl(padapter, _TRUE);
  10165. goto free_buf;
  10166. }
  10167. #endif
  10168. if (strcmp(pch, "h2c") == 0) {
  10169. u8 param[8];
  10170. u8 count = 0;
  10171. u32 tmp;
  10172. u8 i;
  10173. u32 pos;
  10174. u8 ret;
  10175. do {
  10176. pch = strsep(&ptmp, delim);
  10177. if ((pch == NULL) || (strlen(pch) == 0))
  10178. break;
  10179. sscanf(pch, "%x", &tmp);
  10180. param[count++] = (u8)tmp;
  10181. } while (count < 8);
  10182. if (count == 0) {
  10183. rtw_mfree(pbuf, len);
  10184. RTW_INFO("%s: parameter error(level 2)!\n", __func__);
  10185. return -EFAULT;
  10186. }
  10187. ret = rtw_test_h2c_cmd(padapter, param, count);
  10188. pos = sprintf(extra, "H2C ID=0x%02x content=", param[0]);
  10189. for (i = 1; i < count; i++)
  10190. pos += sprintf(extra + pos, "%02x,", param[i]);
  10191. extra[pos] = 0;
  10192. pos--;
  10193. pos += sprintf(extra + pos, " %s", ret == _FAIL ? "FAIL" : "OK");
  10194. wrqu->data.length = strlen(extra) + 1;
  10195. goto free_buf;
  10196. }
  10197. free_buf:
  10198. rtw_mfree(pbuf, len);
  10199. return 0;
  10200. }
  10201. static iw_handler rtw_handlers[] = {
  10202. NULL, /* SIOCSIWCOMMIT */
  10203. rtw_wx_get_name, /* SIOCGIWNAME */
  10204. dummy, /* SIOCSIWNWID */
  10205. dummy, /* SIOCGIWNWID */
  10206. rtw_wx_set_freq, /* SIOCSIWFREQ */
  10207. rtw_wx_get_freq, /* SIOCGIWFREQ */
  10208. rtw_wx_set_mode, /* SIOCSIWMODE */
  10209. rtw_wx_get_mode, /* SIOCGIWMODE */
  10210. dummy, /* SIOCSIWSENS */
  10211. rtw_wx_get_sens, /* SIOCGIWSENS */
  10212. NULL, /* SIOCSIWRANGE */
  10213. rtw_wx_get_range, /* SIOCGIWRANGE */
  10214. rtw_wx_set_priv, /* SIOCSIWPRIV */
  10215. NULL, /* SIOCGIWPRIV */
  10216. NULL, /* SIOCSIWSTATS */
  10217. NULL, /* SIOCGIWSTATS */
  10218. dummy, /* SIOCSIWSPY */
  10219. dummy, /* SIOCGIWSPY */
  10220. NULL, /* SIOCGIWTHRSPY */
  10221. NULL, /* SIOCWIWTHRSPY */
  10222. rtw_wx_set_wap, /* SIOCSIWAP */
  10223. rtw_wx_get_wap, /* SIOCGIWAP */
  10224. rtw_wx_set_mlme, /* request MLME operation; uses struct iw_mlme */
  10225. dummy, /* SIOCGIWAPLIST -- depricated */
  10226. rtw_wx_set_scan, /* SIOCSIWSCAN */
  10227. rtw_wx_get_scan, /* SIOCGIWSCAN */
  10228. rtw_wx_set_essid, /* SIOCSIWESSID */
  10229. rtw_wx_get_essid, /* SIOCGIWESSID */
  10230. dummy, /* SIOCSIWNICKN */
  10231. rtw_wx_get_nick, /* SIOCGIWNICKN */
  10232. NULL, /* -- hole -- */
  10233. NULL, /* -- hole -- */
  10234. rtw_wx_set_rate, /* SIOCSIWRATE */
  10235. rtw_wx_get_rate, /* SIOCGIWRATE */
  10236. rtw_wx_set_rts, /* SIOCSIWRTS */
  10237. rtw_wx_get_rts, /* SIOCGIWRTS */
  10238. rtw_wx_set_frag, /* SIOCSIWFRAG */
  10239. rtw_wx_get_frag, /* SIOCGIWFRAG */
  10240. dummy, /* SIOCSIWTXPOW */
  10241. dummy, /* SIOCGIWTXPOW */
  10242. dummy, /* SIOCSIWRETRY */
  10243. rtw_wx_get_retry, /* SIOCGIWRETRY */
  10244. rtw_wx_set_enc, /* SIOCSIWENCODE */
  10245. rtw_wx_get_enc, /* SIOCGIWENCODE */
  10246. dummy, /* SIOCSIWPOWER */
  10247. rtw_wx_get_power, /* SIOCGIWPOWER */
  10248. NULL, /*---hole---*/
  10249. NULL, /*---hole---*/
  10250. rtw_wx_set_gen_ie, /* SIOCSIWGENIE */
  10251. NULL, /* SIOCGWGENIE */
  10252. rtw_wx_set_auth, /* SIOCSIWAUTH */
  10253. NULL, /* SIOCGIWAUTH */
  10254. rtw_wx_set_enc_ext, /* SIOCSIWENCODEEXT */
  10255. NULL, /* SIOCGIWENCODEEXT */
  10256. rtw_wx_set_pmkid, /* SIOCSIWPMKSA */
  10257. NULL, /*---hole---*/
  10258. };
  10259. static const struct iw_priv_args rtw_private_args[] = {
  10260. {
  10261. SIOCIWFIRSTPRIV + 0x0,
  10262. IW_PRIV_TYPE_CHAR | 0x7FF, 0, "write"
  10263. },
  10264. {
  10265. SIOCIWFIRSTPRIV + 0x1,
  10266. IW_PRIV_TYPE_CHAR | 0x7FF,
  10267. IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_FIXED | IFNAMSIZ, "read"
  10268. },
  10269. {
  10270. SIOCIWFIRSTPRIV + 0x2, 0, 0, "driver_ext"
  10271. },
  10272. {
  10273. SIOCIWFIRSTPRIV + 0x3, 0, 0, "mp_ioctl"
  10274. },
  10275. {
  10276. SIOCIWFIRSTPRIV + 0x4,
  10277. IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1, 0, "apinfo"
  10278. },
  10279. {
  10280. SIOCIWFIRSTPRIV + 0x5,
  10281. IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 2, 0, "setpid"
  10282. },
  10283. {
  10284. SIOCIWFIRSTPRIV + 0x6,
  10285. IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1, 0, "wps_start"
  10286. },
  10287. /* for PLATFORM_MT53XX */
  10288. {
  10289. SIOCIWFIRSTPRIV + 0x7,
  10290. IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1, 0, "get_sensitivity"
  10291. },
  10292. {
  10293. SIOCIWFIRSTPRIV + 0x8,
  10294. IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1, 0, "wps_prob_req_ie"
  10295. },
  10296. {
  10297. SIOCIWFIRSTPRIV + 0x9,
  10298. IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1, 0, "wps_assoc_req_ie"
  10299. },
  10300. /* for RTK_DMP_PLATFORM */
  10301. {
  10302. SIOCIWFIRSTPRIV + 0xA,
  10303. IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 1, 0, "channel_plan"
  10304. },
  10305. {
  10306. SIOCIWFIRSTPRIV + 0xB,
  10307. IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 2, 0, "dbg"
  10308. },
  10309. {
  10310. SIOCIWFIRSTPRIV + 0xC,
  10311. IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 3, 0, "rfw"
  10312. },
  10313. {
  10314. SIOCIWFIRSTPRIV + 0xD,
  10315. IW_PRIV_TYPE_INT | IW_PRIV_SIZE_FIXED | 2, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_FIXED | IFNAMSIZ, "rfr"
  10316. },
  10317. #if 0
  10318. {
  10319. SIOCIWFIRSTPRIV + 0xE, 0, 0, "wowlan_ctrl"
  10320. },
  10321. #endif
  10322. {
  10323. SIOCIWFIRSTPRIV + 0x10,
  10324. IW_PRIV_TYPE_CHAR | 1024, 0, "p2p_set"
  10325. },
  10326. {
  10327. SIOCIWFIRSTPRIV + 0x11,
  10328. IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK , "p2p_get"
  10329. },
  10330. {
  10331. SIOCIWFIRSTPRIV + 0x12, 0, 0, "NULL"
  10332. },
  10333. {
  10334. SIOCIWFIRSTPRIV + 0x13,
  10335. IW_PRIV_TYPE_CHAR | 64, IW_PRIV_TYPE_CHAR | 64 , "p2p_get2"
  10336. },
  10337. {
  10338. SIOCIWFIRSTPRIV + 0x14,
  10339. IW_PRIV_TYPE_CHAR | 64, 0, "tdls"
  10340. },
  10341. {
  10342. SIOCIWFIRSTPRIV + 0x15,
  10343. IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | 1024 , "tdls_get"
  10344. },
  10345. {
  10346. SIOCIWFIRSTPRIV + 0x16,
  10347. IW_PRIV_TYPE_CHAR | 64, 0, "pm_set"
  10348. },
  10349. {SIOCIWFIRSTPRIV + 0x18, IW_PRIV_TYPE_CHAR | IFNAMSIZ , 0 , "rereg_nd_name"},
  10350. #ifdef CONFIG_MP_INCLUDED
  10351. {SIOCIWFIRSTPRIV + 0x1A, IW_PRIV_TYPE_CHAR | 1024, 0, "NULL"},
  10352. {SIOCIWFIRSTPRIV + 0x1B, IW_PRIV_TYPE_CHAR | 128, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "NULL"},
  10353. #else
  10354. {SIOCIWFIRSTPRIV + 0x1A, IW_PRIV_TYPE_CHAR | 1024, 0, "efuse_set"},
  10355. {SIOCIWFIRSTPRIV + 0x1B, IW_PRIV_TYPE_CHAR | 128, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "efuse_get"},
  10356. #endif
  10357. {
  10358. SIOCIWFIRSTPRIV + 0x1D,
  10359. IW_PRIV_TYPE_CHAR | 40, IW_PRIV_TYPE_CHAR | 0x7FF, "test"
  10360. },
  10361. #ifdef CONFIG_INTEL_WIDI
  10362. {
  10363. SIOCIWFIRSTPRIV + 0x1E,
  10364. IW_PRIV_TYPE_CHAR | 1024, 0, "widi_set"
  10365. },
  10366. {
  10367. SIOCIWFIRSTPRIV + 0x1F,
  10368. IW_PRIV_TYPE_CHAR | 128, 0, "widi_prob_req"
  10369. },
  10370. #endif /* CONFIG_INTEL_WIDI */
  10371. { SIOCIWFIRSTPRIV + 0x0E, IW_PRIV_TYPE_CHAR | 1024, 0 , ""}, /* set */
  10372. { SIOCIWFIRSTPRIV + 0x0F, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK , ""},/* get
  10373. * --- sub-ioctls definitions --- */
  10374. #ifdef CONFIG_APPEND_VENDOR_IE_ENABLE
  10375. { VENDOR_IE_SET, IW_PRIV_TYPE_CHAR | 1024 , 0 , "vendor_ie_set" },
  10376. { VENDOR_IE_GET, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "vendor_ie_get" },
  10377. #endif
  10378. #if defined(CONFIG_RTL8723B)
  10379. { MP_SetBT, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_setbt" },
  10380. { MP_DISABLE_BT_COEXIST, IW_PRIV_TYPE_CHAR | 1024, 0, "mp_disa_btcoex"},
  10381. #endif
  10382. #ifdef CONFIG_WOWLAN
  10383. { MP_WOW_ENABLE , IW_PRIV_TYPE_CHAR | 1024, 0, "wow_mode" },
  10384. { MP_WOW_SET_PATTERN , IW_PRIV_TYPE_CHAR | 1024, 0, "wow_set_pattern" },
  10385. #endif
  10386. #ifdef CONFIG_AP_WOWLAN
  10387. { MP_AP_WOW_ENABLE , IW_PRIV_TYPE_CHAR | 1024, 0, "ap_wow_mode" }, /* set */
  10388. #endif
  10389. #ifdef CONFIG_SDIO_INDIRECT_ACCESS
  10390. { MP_SD_IREAD, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "sd_iread" },
  10391. { MP_SD_IWRITE, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "sd_iwrite" },
  10392. #endif
  10393. };
  10394. static const struct iw_priv_args rtw_mp_private_args[] = {
  10395. /* --- sub-ioctls definitions --- */
  10396. #ifdef CONFIG_MP_INCLUDED
  10397. { MP_START , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_start" },
  10398. { MP_PHYPARA, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_phypara" },
  10399. { MP_STOP , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_stop" },
  10400. { MP_CHANNEL , IW_PRIV_TYPE_CHAR | 1024 , IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_channel" },
  10401. { MP_BANDWIDTH , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_bandwidth"},
  10402. { MP_RATE , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_rate" },
  10403. { MP_RESET_STATS , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_reset_stats"},
  10404. { MP_QUERY , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK , "mp_query"},
  10405. { READ_REG , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "read_reg" },
  10406. { MP_RATE , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_rate" },
  10407. { READ_RF , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "read_rf" },
  10408. { MP_PSD , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_psd"},
  10409. { MP_DUMP, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_dump" },
  10410. { MP_TXPOWER , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_txpower"},
  10411. { MP_ANT_TX , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_ant_tx"},
  10412. { MP_ANT_RX , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_ant_rx"},
  10413. { WRITE_REG , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "write_reg" },
  10414. { WRITE_RF , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "write_rf" },
  10415. { MP_CTX , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_ctx"},
  10416. { MP_ARX , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_arx"},
  10417. { MP_THER , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_ther"},
  10418. { EFUSE_SET, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "efuse_set" },
  10419. { EFUSE_GET, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "efuse_get" },
  10420. { MP_PWRTRK , IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_pwrtrk"},
  10421. { MP_QueryDrvStats, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_drvquery" },
  10422. { MP_IOCTL, IW_PRIV_TYPE_CHAR | 1024, 0, "mp_ioctl"},
  10423. { MP_SetRFPathSwh, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_setrfpath" },
  10424. { MP_PwrCtlDM, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_pwrctldm" },
  10425. { MP_GET_TXPOWER_INX, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_get_txpower" },
  10426. { MP_GETVER, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_priv_ver" },
  10427. { MP_MON, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_mon" },
  10428. { EFUSE_MASK, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "efuse_mask" },
  10429. { EFUSE_FILE, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "efuse_file" },
  10430. { MP_TX, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_tx" },
  10431. { MP_RX, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_rx" },
  10432. { MP_HW_TX_MODE, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "mp_hxtx" },
  10433. { CTA_TEST, IW_PRIV_TYPE_CHAR | 1024, 0, "cta_test"},
  10434. { MP_IQK, IW_PRIV_TYPE_CHAR | 1024, 0, "mp_iqk"},
  10435. { MP_LCK, IW_PRIV_TYPE_CHAR | 1024, 0, "mp_lck"},
  10436. #ifdef CONFIG_RTW_CUSTOMER_STR
  10437. { MP_CUSTOMER_STR, IW_PRIV_TYPE_CHAR | 1024, IW_PRIV_TYPE_CHAR | IW_PRIV_SIZE_MASK, "customer_str" },
  10438. #endif
  10439. #endif /* CONFIG_MP_INCLUDED */
  10440. };
  10441. static iw_handler rtw_private_handler[] = {
  10442. rtw_wx_write32, /* 0x00 */
  10443. rtw_wx_read32, /* 0x01 */
  10444. rtw_drvext_hdl, /* 0x02 */
  10445. #ifdef MP_IOCTL_HDL
  10446. rtw_mp_ioctl_hdl, /* 0x03 */
  10447. #else
  10448. rtw_wx_priv_null,
  10449. #endif
  10450. /* for MM DTV platform */
  10451. rtw_get_ap_info, /* 0x04 */
  10452. rtw_set_pid, /* 0x05 */
  10453. rtw_wps_start, /* 0x06 */
  10454. /* for PLATFORM_MT53XX */
  10455. rtw_wx_get_sensitivity, /* 0x07 */
  10456. rtw_wx_set_mtk_wps_probe_ie, /* 0x08 */
  10457. rtw_wx_set_mtk_wps_ie, /* 0x09 */
  10458. /* for RTK_DMP_PLATFORM
  10459. * Set Channel depend on the country code */
  10460. rtw_wx_set_channel_plan, /* 0x0A */
  10461. rtw_dbg_port, /* 0x0B */
  10462. rtw_wx_write_rf, /* 0x0C */
  10463. rtw_wx_read_rf, /* 0x0D */
  10464. rtw_priv_set, /*0x0E*/
  10465. rtw_priv_get, /*0x0F*/
  10466. rtw_p2p_set, /* 0x10 */
  10467. rtw_p2p_get, /* 0x11 */
  10468. NULL, /* 0x12 */
  10469. rtw_p2p_get2, /* 0x13 */
  10470. rtw_tdls, /* 0x14 */
  10471. rtw_tdls_get, /* 0x15 */
  10472. rtw_pm_set, /* 0x16 */
  10473. rtw_wx_priv_null, /* 0x17 */
  10474. rtw_rereg_nd_name, /* 0x18 */
  10475. rtw_wx_priv_null, /* 0x19 */
  10476. #ifdef CONFIG_MP_INCLUDED
  10477. rtw_wx_priv_null, /* 0x1A */
  10478. rtw_wx_priv_null, /* 0x1B */
  10479. #else
  10480. rtw_mp_efuse_set, /* 0x1A */
  10481. rtw_mp_efuse_get, /* 0x1B */
  10482. #endif
  10483. NULL, /* 0x1C is reserved for hostapd */
  10484. rtw_test, /* 0x1D */
  10485. #ifdef CONFIG_INTEL_WIDI
  10486. rtw_widi_set, /* 0x1E */
  10487. rtw_widi_set_probe_request, /* 0x1F */
  10488. #endif /* CONFIG_INTEL_WIDI */
  10489. };
  10490. #if WIRELESS_EXT >= 17
  10491. static struct iw_statistics *rtw_get_wireless_stats(struct net_device *dev)
  10492. {
  10493. _adapter *padapter = (_adapter *)rtw_netdev_priv(dev);
  10494. struct iw_statistics *piwstats = &padapter->iwstats;
  10495. int tmp_level = 0;
  10496. int tmp_qual = 0;
  10497. int tmp_noise = 0;
  10498. if (check_fwstate(&padapter->mlmepriv, _FW_LINKED) != _TRUE) {
  10499. piwstats->qual.qual = 0;
  10500. piwstats->qual.level = 0;
  10501. piwstats->qual.noise = 0;
  10502. /* RTW_INFO("No link level:%d, qual:%d, noise:%d\n", tmp_level, tmp_qual, tmp_noise); */
  10503. } else {
  10504. #ifdef CONFIG_SIGNAL_DISPLAY_DBM
  10505. tmp_level = translate_percentage_to_dbm(padapter->recvpriv.signal_strength);
  10506. #else
  10507. #ifdef CONFIG_SIGNAL_SCALE_MAPPING
  10508. tmp_level = padapter->recvpriv.signal_strength;
  10509. #else
  10510. {
  10511. /* Do signal scale mapping when using percentage as the unit of signal strength, since the scale mapping is skipped in odm */
  10512. HAL_DATA_TYPE *pHal = GET_HAL_DATA(padapter);
  10513. tmp_level = (u8)odm_signal_scale_mapping(&pHal->odmpriv, padapter->recvpriv.signal_strength);
  10514. }
  10515. #endif
  10516. #endif
  10517. tmp_qual = padapter->recvpriv.signal_qual;
  10518. rtw_get_noise(padapter);
  10519. tmp_noise = padapter->recvpriv.noise;
  10520. /* RTW_INFO("level:%d, qual:%d, noise:%d, rssi (%d)\n", tmp_level, tmp_qual, tmp_noise,padapter->recvpriv.rssi); */
  10521. piwstats->qual.level = tmp_level;
  10522. piwstats->qual.qual = tmp_qual;
  10523. piwstats->qual.noise = tmp_noise;
  10524. }
  10525. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 14))
  10526. piwstats->qual.updated = IW_QUAL_ALL_UPDATED ;/* |IW_QUAL_DBM; */
  10527. #else
  10528. #ifdef RTK_DMP_PLATFORM
  10529. /* IW_QUAL_DBM= 0x8, if driver use this flag, wireless extension will show value of dbm. */
  10530. /* remove this flag for show percentage 0~100 */
  10531. piwstats->qual.updated = 0x07;
  10532. #else
  10533. piwstats->qual.updated = 0x0f;
  10534. #endif
  10535. #endif
  10536. #ifdef CONFIG_SIGNAL_DISPLAY_DBM
  10537. piwstats->qual.updated = piwstats->qual.updated | IW_QUAL_DBM;
  10538. #endif
  10539. return &padapter->iwstats;
  10540. }
  10541. #endif
  10542. #ifdef CONFIG_WIRELESS_EXT
  10543. struct iw_handler_def rtw_handlers_def = {
  10544. .standard = rtw_handlers,
  10545. .num_standard = sizeof(rtw_handlers) / sizeof(iw_handler),
  10546. #if (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 33)) || defined(CONFIG_WEXT_PRIV)
  10547. .private = rtw_private_handler,
  10548. .private_args = (struct iw_priv_args *)rtw_private_args,
  10549. .num_private = sizeof(rtw_private_handler) / sizeof(iw_handler),
  10550. .num_private_args = sizeof(rtw_private_args) / sizeof(struct iw_priv_args),
  10551. #endif
  10552. #if WIRELESS_EXT >= 17
  10553. .get_wireless_stats = rtw_get_wireless_stats,
  10554. #endif
  10555. };
  10556. #endif
  10557. /* copy from net/wireless/wext.c start
  10558. * ----------------------------------------------------------------
  10559. *
  10560. * Calculate size of private arguments
  10561. */
  10562. static const char iw_priv_type_size[] = {
  10563. 0, /* IW_PRIV_TYPE_NONE */
  10564. 1, /* IW_PRIV_TYPE_BYTE */
  10565. 1, /* IW_PRIV_TYPE_CHAR */
  10566. 0, /* Not defined */
  10567. sizeof(__u32), /* IW_PRIV_TYPE_INT */
  10568. sizeof(struct iw_freq), /* IW_PRIV_TYPE_FLOAT */
  10569. sizeof(struct sockaddr), /* IW_PRIV_TYPE_ADDR */
  10570. 0, /* Not defined */
  10571. };
  10572. static int get_priv_size(__u16 args)
  10573. {
  10574. int num = args & IW_PRIV_SIZE_MASK;
  10575. int type = (args & IW_PRIV_TYPE_MASK) >> 12;
  10576. return num * iw_priv_type_size[type];
  10577. }
  10578. /* copy from net/wireless/wext.c end */
  10579. static int _rtw_ioctl_wext_private(struct net_device *dev, union iwreq_data *wrq_data)
  10580. {
  10581. int err = 0;
  10582. u8 *input = NULL;
  10583. u32 input_len = 0;
  10584. const char delim[] = " ";
  10585. u8 *output = NULL;
  10586. u32 output_len = 0;
  10587. u32 count = 0;
  10588. u8 *buffer = NULL;
  10589. u32 buffer_len = 0;
  10590. char *ptr = NULL;
  10591. u8 cmdname[17] = {0}; /* IFNAMSIZ+1 */
  10592. u32 cmdlen;
  10593. s32 len;
  10594. u8 *extra = NULL;
  10595. u32 extra_size = 0;
  10596. s32 k;
  10597. const iw_handler *priv; /* Private ioctl */
  10598. const struct iw_priv_args *priv_args; /* Private ioctl description */
  10599. const struct iw_priv_args *mp_priv_args; /*MP Private ioctl description */
  10600. const struct iw_priv_args *sel_priv_args; /*Selected Private ioctl description */
  10601. u32 num_priv; /* Number of ioctl */
  10602. u32 num_priv_args; /* Number of descriptions */
  10603. u32 num_mp_priv_args; /*Number of MP descriptions */
  10604. u32 num_sel_priv_args; /*Number of Selected descriptions */
  10605. iw_handler handler;
  10606. int temp;
  10607. int subcmd = 0; /* sub-ioctl index */
  10608. int offset = 0; /* Space for sub-ioctl index */
  10609. union iwreq_data wdata;
  10610. _rtw_memcpy(&wdata, wrq_data, sizeof(wdata));
  10611. input_len = wdata.data.length;
  10612. if (!input_len)
  10613. return -EINVAL;
  10614. input = rtw_zmalloc(input_len);
  10615. if (NULL == input)
  10616. return -ENOMEM;
  10617. if (copy_from_user(input, wdata.data.pointer, input_len)) {
  10618. err = -EFAULT;
  10619. goto exit;
  10620. }
  10621. input[input_len - 1] = '\0';
  10622. ptr = input;
  10623. len = input_len;
  10624. if (ptr == NULL) {
  10625. err = -EOPNOTSUPP;
  10626. goto exit;
  10627. }
  10628. sscanf(ptr, "%16s", cmdname);
  10629. cmdlen = strlen(cmdname);
  10630. RTW_INFO("%s: cmd=%s\n", __func__, cmdname);
  10631. /* skip command string */
  10632. if (cmdlen > 0)
  10633. cmdlen += 1; /* skip one space */
  10634. ptr += cmdlen;
  10635. len -= cmdlen;
  10636. RTW_INFO("%s: parameters=%s\n", __func__, ptr);
  10637. priv = rtw_private_handler;
  10638. priv_args = rtw_private_args;
  10639. mp_priv_args = rtw_mp_private_args;
  10640. num_priv = sizeof(rtw_private_handler) / sizeof(iw_handler);
  10641. num_priv_args = sizeof(rtw_private_args) / sizeof(struct iw_priv_args);
  10642. num_mp_priv_args = sizeof(rtw_mp_private_args) / sizeof(struct iw_priv_args);
  10643. if (num_priv_args == 0) {
  10644. err = -EOPNOTSUPP;
  10645. goto exit;
  10646. }
  10647. /* Search the correct ioctl */
  10648. k = -1;
  10649. sel_priv_args = priv_args;
  10650. num_sel_priv_args = num_priv_args;
  10651. while
  10652. ((++k < num_sel_priv_args) && strcmp(sel_priv_args[k].name, cmdname))
  10653. ;
  10654. /* If not found... */
  10655. if (k == num_sel_priv_args) {
  10656. k = -1;
  10657. sel_priv_args = mp_priv_args;
  10658. num_sel_priv_args = num_mp_priv_args;
  10659. while
  10660. ((++k < num_sel_priv_args) && strcmp(sel_priv_args[k].name, cmdname))
  10661. ;
  10662. if (k == num_sel_priv_args) {
  10663. err = -EOPNOTSUPP;
  10664. goto exit;
  10665. }
  10666. }
  10667. /* Watch out for sub-ioctls ! */
  10668. if (sel_priv_args[k].cmd < SIOCDEVPRIVATE) {
  10669. int j = -1;
  10670. /* Find the matching *real* ioctl */
  10671. while ((++j < num_priv_args) && ((priv_args[j].name[0] != '\0') ||
  10672. (priv_args[j].set_args != sel_priv_args[k].set_args) ||
  10673. (priv_args[j].get_args != sel_priv_args[k].get_args)))
  10674. ;
  10675. /* If not found... */
  10676. if (j == num_priv_args) {
  10677. err = -EINVAL;
  10678. goto exit;
  10679. }
  10680. /* Save sub-ioctl number */
  10681. subcmd = sel_priv_args[k].cmd;
  10682. /* Reserve one int (simplify alignment issues) */
  10683. offset = sizeof(__u32);
  10684. /* Use real ioctl definition from now on */
  10685. k = j;
  10686. }
  10687. buffer = rtw_zmalloc(4096);
  10688. if (NULL == buffer) {
  10689. err = -ENOMEM;
  10690. goto exit;
  10691. }
  10692. /* If we have to set some data */
  10693. if ((priv_args[k].set_args & IW_PRIV_TYPE_MASK) &&
  10694. (priv_args[k].set_args & IW_PRIV_SIZE_MASK)) {
  10695. u8 *str;
  10696. switch (priv_args[k].set_args & IW_PRIV_TYPE_MASK) {
  10697. case IW_PRIV_TYPE_BYTE:
  10698. /* Fetch args */
  10699. count = 0;
  10700. do {
  10701. str = strsep(&ptr, delim);
  10702. if (NULL == str)
  10703. break;
  10704. sscanf(str, "%i", &temp);
  10705. buffer[count++] = (u8)temp;
  10706. } while (1);
  10707. buffer_len = count;
  10708. /* Number of args to fetch */
  10709. wdata.data.length = count;
  10710. if (wdata.data.length > (priv_args[k].set_args & IW_PRIV_SIZE_MASK))
  10711. wdata.data.length = priv_args[k].set_args & IW_PRIV_SIZE_MASK;
  10712. break;
  10713. case IW_PRIV_TYPE_INT:
  10714. /* Fetch args */
  10715. count = 0;
  10716. do {
  10717. str = strsep(&ptr, delim);
  10718. if (NULL == str)
  10719. break;
  10720. sscanf(str, "%i", &temp);
  10721. ((s32 *)buffer)[count++] = (s32)temp;
  10722. } while (1);
  10723. buffer_len = count * sizeof(s32);
  10724. /* Number of args to fetch */
  10725. wdata.data.length = count;
  10726. if (wdata.data.length > (priv_args[k].set_args & IW_PRIV_SIZE_MASK))
  10727. wdata.data.length = priv_args[k].set_args & IW_PRIV_SIZE_MASK;
  10728. break;
  10729. case IW_PRIV_TYPE_CHAR:
  10730. if (len > 0) {
  10731. /* Size of the string to fetch */
  10732. wdata.data.length = len;
  10733. if (wdata.data.length > (priv_args[k].set_args & IW_PRIV_SIZE_MASK))
  10734. wdata.data.length = priv_args[k].set_args & IW_PRIV_SIZE_MASK;
  10735. /* Fetch string */
  10736. _rtw_memcpy(buffer, ptr, wdata.data.length);
  10737. } else {
  10738. wdata.data.length = 1;
  10739. buffer[0] = '\0';
  10740. }
  10741. buffer_len = wdata.data.length;
  10742. break;
  10743. default:
  10744. RTW_INFO("%s: Not yet implemented...\n", __func__);
  10745. err = -1;
  10746. goto exit;
  10747. }
  10748. if ((priv_args[k].set_args & IW_PRIV_SIZE_FIXED) &&
  10749. (wdata.data.length != (priv_args[k].set_args & IW_PRIV_SIZE_MASK))) {
  10750. RTW_INFO("%s: The command %s needs exactly %d argument(s)...\n",
  10751. __func__, cmdname, priv_args[k].set_args & IW_PRIV_SIZE_MASK);
  10752. err = -EINVAL;
  10753. goto exit;
  10754. }
  10755. } /* if args to set */
  10756. else
  10757. wdata.data.length = 0L;
  10758. /* Those two tests are important. They define how the driver
  10759. * will have to handle the data */
  10760. if ((priv_args[k].set_args & IW_PRIV_SIZE_FIXED) &&
  10761. ((get_priv_size(priv_args[k].set_args) + offset) <= IFNAMSIZ)) {
  10762. /* First case : all SET args fit within wrq */
  10763. if (offset)
  10764. wdata.mode = subcmd;
  10765. _rtw_memcpy(wdata.name + offset, buffer, IFNAMSIZ - offset);
  10766. } else {
  10767. if ((priv_args[k].set_args == 0) &&
  10768. (priv_args[k].get_args & IW_PRIV_SIZE_FIXED) &&
  10769. (get_priv_size(priv_args[k].get_args) <= IFNAMSIZ)) {
  10770. /* Second case : no SET args, GET args fit within wrq */
  10771. if (offset)
  10772. wdata.mode = subcmd;
  10773. } else {
  10774. /* Third case : args won't fit in wrq, or variable number of args */
  10775. if (copy_to_user(wdata.data.pointer, buffer, buffer_len)) {
  10776. err = -EFAULT;
  10777. goto exit;
  10778. }
  10779. wdata.data.flags = subcmd;
  10780. }
  10781. }
  10782. rtw_mfree(input, input_len);
  10783. input = NULL;
  10784. extra_size = 0;
  10785. if (IW_IS_SET(priv_args[k].cmd)) {
  10786. /* Size of set arguments */
  10787. extra_size = get_priv_size(priv_args[k].set_args);
  10788. /* Does it fits in iwr ? */
  10789. if ((priv_args[k].set_args & IW_PRIV_SIZE_FIXED) &&
  10790. ((extra_size + offset) <= IFNAMSIZ))
  10791. extra_size = 0;
  10792. } else {
  10793. /* Size of get arguments */
  10794. extra_size = get_priv_size(priv_args[k].get_args);
  10795. /* Does it fits in iwr ? */
  10796. if ((priv_args[k].get_args & IW_PRIV_SIZE_FIXED) &&
  10797. (extra_size <= IFNAMSIZ))
  10798. extra_size = 0;
  10799. }
  10800. if (extra_size == 0) {
  10801. extra = (u8 *)&wdata;
  10802. rtw_mfree(buffer, 4096);
  10803. buffer = NULL;
  10804. } else
  10805. extra = buffer;
  10806. handler = priv[priv_args[k].cmd - SIOCIWFIRSTPRIV];
  10807. err = handler(dev, NULL, &wdata, extra);
  10808. /* If we have to get some data */
  10809. if ((priv_args[k].get_args & IW_PRIV_TYPE_MASK) &&
  10810. (priv_args[k].get_args & IW_PRIV_SIZE_MASK)) {
  10811. int j;
  10812. int n = 0; /* number of args */
  10813. u8 str[20] = {0};
  10814. /* Check where is the returned data */
  10815. if ((priv_args[k].get_args & IW_PRIV_SIZE_FIXED) &&
  10816. (get_priv_size(priv_args[k].get_args) <= IFNAMSIZ))
  10817. n = priv_args[k].get_args & IW_PRIV_SIZE_MASK;
  10818. else
  10819. n = wdata.data.length;
  10820. output = rtw_zmalloc(4096);
  10821. if (NULL == output) {
  10822. err = -ENOMEM;
  10823. goto exit;
  10824. }
  10825. switch (priv_args[k].get_args & IW_PRIV_TYPE_MASK) {
  10826. case IW_PRIV_TYPE_BYTE:
  10827. /* Display args */
  10828. for (j = 0; j < n; j++) {
  10829. sprintf(str, "%d ", extra[j]);
  10830. len = strlen(str);
  10831. output_len = strlen(output);
  10832. if ((output_len + len + 1) > 4096) {
  10833. err = -E2BIG;
  10834. goto exit;
  10835. }
  10836. _rtw_memcpy(output + output_len, str, len);
  10837. }
  10838. break;
  10839. case IW_PRIV_TYPE_INT:
  10840. /* Display args */
  10841. for (j = 0; j < n; j++) {
  10842. sprintf(str, "%d ", ((__s32 *)extra)[j]);
  10843. len = strlen(str);
  10844. output_len = strlen(output);
  10845. if ((output_len + len + 1) > 4096) {
  10846. err = -E2BIG;
  10847. goto exit;
  10848. }
  10849. _rtw_memcpy(output + output_len, str, len);
  10850. }
  10851. break;
  10852. case IW_PRIV_TYPE_CHAR:
  10853. /* Display args */
  10854. _rtw_memcpy(output, extra, n);
  10855. break;
  10856. default:
  10857. RTW_INFO("%s: Not yet implemented...\n", __func__);
  10858. err = -1;
  10859. goto exit;
  10860. }
  10861. output_len = strlen(output) + 1;
  10862. wrq_data->data.length = output_len;
  10863. if (copy_to_user(wrq_data->data.pointer, output, output_len)) {
  10864. err = -EFAULT;
  10865. goto exit;
  10866. }
  10867. } /* if args to set */
  10868. else
  10869. wrq_data->data.length = 0;
  10870. exit:
  10871. if (input)
  10872. rtw_mfree(input, input_len);
  10873. if (buffer)
  10874. rtw_mfree(buffer, 4096);
  10875. if (output)
  10876. rtw_mfree(output, 4096);
  10877. return err;
  10878. }
  10879. #ifdef CONFIG_COMPAT
  10880. static int rtw_ioctl_compat_wext_private(struct net_device *dev, struct ifreq *rq)
  10881. {
  10882. struct compat_iw_point iwp_compat;
  10883. union iwreq_data wrq_data;
  10884. int err = 0;
  10885. RTW_INFO("%s:...\n", __func__);
  10886. if (copy_from_user(&iwp_compat, rq->ifr_ifru.ifru_data, sizeof(struct compat_iw_point)))
  10887. return -EFAULT;
  10888. wrq_data.data.pointer = compat_ptr(iwp_compat.pointer);
  10889. wrq_data.data.length = iwp_compat.length;
  10890. wrq_data.data.flags = iwp_compat.flags;
  10891. err = _rtw_ioctl_wext_private(dev, &wrq_data);
  10892. iwp_compat.pointer = ptr_to_compat(wrq_data.data.pointer);
  10893. iwp_compat.length = wrq_data.data.length;
  10894. iwp_compat.flags = wrq_data.data.flags;
  10895. if (copy_to_user(rq->ifr_ifru.ifru_data, &iwp_compat, sizeof(struct compat_iw_point)))
  10896. return -EFAULT;
  10897. return err;
  10898. }
  10899. #endif /* CONFIG_COMPAT */
  10900. static int rtw_ioctl_standard_wext_private(struct net_device *dev, struct ifreq *rq)
  10901. {
  10902. struct iw_point *iwp;
  10903. struct ifreq ifrq;
  10904. union iwreq_data wrq_data;
  10905. int err = 0;
  10906. iwp = &wrq_data.data;
  10907. RTW_INFO("%s:...\n", __func__);
  10908. if (copy_from_user(iwp, rq->ifr_ifru.ifru_data, sizeof(struct iw_point)))
  10909. return -EFAULT;
  10910. err = _rtw_ioctl_wext_private(dev, &wrq_data);
  10911. if (copy_to_user(rq->ifr_ifru.ifru_data, iwp, sizeof(struct iw_point)))
  10912. return -EFAULT;
  10913. return err;
  10914. }
  10915. static int rtw_ioctl_wext_private(struct net_device *dev, struct ifreq *rq)
  10916. {
  10917. #ifdef CONFIG_COMPAT
  10918. #if (KERNEL_VERSION(4, 6, 0) > LINUX_VERSION_CODE)
  10919. if (is_compat_task())
  10920. #else
  10921. if (in_compat_syscall())
  10922. #endif
  10923. return rtw_ioctl_compat_wext_private(dev, rq);
  10924. else
  10925. #endif /* CONFIG_COMPAT */
  10926. return rtw_ioctl_standard_wext_private(dev, rq);
  10927. }
  10928. int rtw_ioctl(struct net_device *dev, struct ifreq *rq, int cmd)
  10929. {
  10930. struct iwreq *wrq = (struct iwreq *)rq;
  10931. int ret = 0;
  10932. switch (cmd) {
  10933. case RTL_IOCTL_WPA_SUPPLICANT:
  10934. ret = wpa_supplicant_ioctl(dev, &wrq->u.data);
  10935. break;
  10936. #ifdef CONFIG_AP_MODE
  10937. case RTL_IOCTL_HOSTAPD:
  10938. ret = rtw_hostapd_ioctl(dev, &wrq->u.data);
  10939. break;
  10940. #ifdef CONFIG_WIRELESS_EXT
  10941. case SIOCSIWMODE:
  10942. ret = rtw_wx_set_mode(dev, NULL, &wrq->u, NULL);
  10943. break;
  10944. #endif
  10945. #endif /* CONFIG_AP_MODE */
  10946. case SIOCDEVPRIVATE:
  10947. ret = rtw_ioctl_wext_private(dev, rq);
  10948. break;
  10949. case (SIOCDEVPRIVATE+1):
  10950. ret = rtw_android_priv_cmd(dev, rq, cmd);
  10951. break;
  10952. default:
  10953. ret = -EOPNOTSUPP;
  10954. break;
  10955. }
  10956. return ret;
  10957. }