rtw_wlan_util.c 128 KB

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  1. /******************************************************************************
  2. *
  3. * Copyright(c) 2007 - 2017 Realtek Corporation.
  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. *****************************************************************************/
  15. #define _RTW_WLAN_UTIL_C_
  16. #include <drv_types.h>
  17. #include <hal_data.h>
  18. #if defined(CONFIG_WOWLAN) || defined(CONFIG_AP_WOWLAN)
  19. #include <linux/inetdevice.h>
  20. #define ETH_TYPE_OFFSET 12
  21. #define PROTOCOL_OFFSET 23
  22. #define IP_OFFSET 30
  23. #define IPv6_OFFSET 38
  24. #define IPv6_PROTOCOL_OFFSET 20
  25. #endif
  26. #ifdef PLATFORM_LINUX
  27. #ifndef KERNEL_DS
  28. #define KERNEL_DS MAKE_MM_SEG(-1UL) // <----- 0xffffffffffffffff
  29. #endif
  30. #endif
  31. unsigned char ARTHEROS_OUI1[] = {0x00, 0x03, 0x7f};
  32. unsigned char ARTHEROS_OUI2[] = {0x00, 0x13, 0x74};
  33. unsigned char BROADCOM_OUI1[] = {0x00, 0x10, 0x18};
  34. unsigned char BROADCOM_OUI2[] = {0x00, 0x0a, 0xf7};
  35. unsigned char BROADCOM_OUI3[] = {0x00, 0x05, 0xb5};
  36. unsigned char CISCO_OUI[] = {0x00, 0x40, 0x96};
  37. unsigned char MARVELL_OUI[] = {0x00, 0x50, 0x43};
  38. unsigned char RALINK_OUI[] = {0x00, 0x0c, 0x43};
  39. unsigned char REALTEK_OUI[] = {0x00, 0xe0, 0x4c};
  40. unsigned char AIRGOCAP_OUI[] = {0x00, 0x0a, 0xf5};
  41. unsigned char REALTEK_96B_IE[] = {0x00, 0xe0, 0x4c, 0x02, 0x01, 0x20};
  42. extern unsigned char RTW_WPA_OUI[];
  43. extern unsigned char WPA_TKIP_CIPHER[4];
  44. extern unsigned char RSN_TKIP_CIPHER[4];
  45. #define R2T_PHY_DELAY (0)
  46. /* #define WAIT_FOR_BCN_TO_MIN (3000) */
  47. #define WAIT_FOR_BCN_TO_MIN (6000)
  48. #define WAIT_FOR_BCN_TO_MAX (20000)
  49. static u8 rtw_basic_rate_cck[4] = {
  50. IEEE80211_CCK_RATE_1MB | IEEE80211_BASIC_RATE_MASK, IEEE80211_CCK_RATE_2MB | IEEE80211_BASIC_RATE_MASK,
  51. IEEE80211_CCK_RATE_5MB | IEEE80211_BASIC_RATE_MASK, IEEE80211_CCK_RATE_11MB | IEEE80211_BASIC_RATE_MASK
  52. };
  53. static u8 rtw_basic_rate_ofdm[3] = {
  54. IEEE80211_OFDM_RATE_6MB | IEEE80211_BASIC_RATE_MASK, IEEE80211_OFDM_RATE_12MB | IEEE80211_BASIC_RATE_MASK,
  55. IEEE80211_OFDM_RATE_24MB | IEEE80211_BASIC_RATE_MASK
  56. };
  57. static u8 rtw_basic_rate_mix[7] = {
  58. IEEE80211_CCK_RATE_1MB | IEEE80211_BASIC_RATE_MASK, IEEE80211_CCK_RATE_2MB | IEEE80211_BASIC_RATE_MASK,
  59. IEEE80211_CCK_RATE_5MB | IEEE80211_BASIC_RATE_MASK, IEEE80211_CCK_RATE_11MB | IEEE80211_BASIC_RATE_MASK,
  60. IEEE80211_OFDM_RATE_6MB | IEEE80211_BASIC_RATE_MASK, IEEE80211_OFDM_RATE_12MB | IEEE80211_BASIC_RATE_MASK,
  61. IEEE80211_OFDM_RATE_24MB | IEEE80211_BASIC_RATE_MASK
  62. };
  63. /* test if rate is defined in rtw_basic_rate_cck */
  64. bool rtw_is_basic_rate_cck(u8 rate)
  65. {
  66. int i;
  67. for (i = 0; i < 4; i++)
  68. if ((rtw_basic_rate_cck[i] & 0x7F) == (rate & 0x7F))
  69. return 1;
  70. return 0;
  71. }
  72. /* test if rate is defined in rtw_basic_rate_ofdm */
  73. bool rtw_is_basic_rate_ofdm(u8 rate)
  74. {
  75. int i;
  76. for (i = 0; i < 3; i++)
  77. if ((rtw_basic_rate_ofdm[i] & 0x7F) == (rate & 0x7F))
  78. return 1;
  79. return 0;
  80. }
  81. /* test if rate is defined in rtw_basic_rate_mix */
  82. bool rtw_is_basic_rate_mix(u8 rate)
  83. {
  84. int i;
  85. for (i = 0; i < 7; i++)
  86. if ((rtw_basic_rate_mix[i] & 0x7F) == (rate & 0x7F))
  87. return 1;
  88. return 0;
  89. }
  90. #ifdef CONFIG_BCN_CNT_CONFIRM_HDL
  91. int new_bcn_max = 3;
  92. #endif
  93. int cckrates_included(unsigned char *rate, int ratelen)
  94. {
  95. int i;
  96. for (i = 0; i < ratelen; i++) {
  97. if ((((rate[i]) & 0x7f) == 2) || (((rate[i]) & 0x7f) == 4) ||
  98. (((rate[i]) & 0x7f) == 11) || (((rate[i]) & 0x7f) == 22))
  99. return _TRUE;
  100. }
  101. return _FALSE;
  102. }
  103. int cckratesonly_included(unsigned char *rate, int ratelen)
  104. {
  105. int i;
  106. for (i = 0; i < ratelen; i++) {
  107. if ((((rate[i]) & 0x7f) != 2) && (((rate[i]) & 0x7f) != 4) &&
  108. (((rate[i]) & 0x7f) != 11) && (((rate[i]) & 0x7f) != 22))
  109. return _FALSE;
  110. }
  111. return _TRUE;
  112. }
  113. s8 rtw_get_sta_rx_nss(_adapter *adapter, struct sta_info *psta)
  114. {
  115. struct hal_spec_t *hal_spec = GET_HAL_SPEC(adapter);
  116. u8 rf_type = RF_1T1R, custom_rf_type;
  117. s8 nss = 1;
  118. if (!psta)
  119. return nss;
  120. custom_rf_type = adapter->registrypriv.rf_config;
  121. rtw_hal_get_hwreg(adapter, HW_VAR_RF_TYPE, (u8 *)(&rf_type));
  122. if (RF_TYPE_VALID(custom_rf_type))
  123. rf_type = custom_rf_type;
  124. nss = rtw_min(rf_type_to_rf_rx_cnt(rf_type), hal_spec->rx_nss_num);
  125. #ifdef CONFIG_80211N_HT
  126. #ifdef CONFIG_80211AC_VHT
  127. if (psta->vhtpriv.vht_option)
  128. nss = rtw_min(nss, rtw_vht_mcsmap_to_nss(psta->vhtpriv.vht_mcs_map));
  129. else
  130. #endif /* CONFIG_80211AC_VHT */
  131. if (psta->htpriv.ht_option)
  132. nss = rtw_min(nss, rtw_ht_mcsset_to_nss(psta->htpriv.ht_cap.supp_mcs_set));
  133. #endif /*CONFIG_80211N_HT*/
  134. RTW_INFO("%s: %d SS\n", __func__, nss);
  135. return nss;
  136. }
  137. s8 rtw_get_sta_tx_nss(_adapter *adapter, struct sta_info *psta)
  138. {
  139. struct hal_spec_t *hal_spec = GET_HAL_SPEC(adapter);
  140. u8 rf_type = RF_1T1R, custom_rf_type;
  141. s8 nss = 1;
  142. if (!psta)
  143. return nss;
  144. custom_rf_type = adapter->registrypriv.rf_config;
  145. rtw_hal_get_hwreg(adapter, HW_VAR_RF_TYPE, (u8 *)(&rf_type));
  146. if (RF_TYPE_VALID(custom_rf_type))
  147. rf_type = custom_rf_type;
  148. nss = rtw_min(rf_type_to_rf_tx_cnt(rf_type), hal_spec->tx_nss_num);
  149. #ifdef CONFIG_80211N_HT
  150. #ifdef CONFIG_80211AC_VHT
  151. if (psta->vhtpriv.vht_option)
  152. nss = rtw_min(nss, rtw_vht_mcsmap_to_nss(psta->vhtpriv.vht_mcs_map));
  153. else
  154. #endif /* CONFIG_80211AC_VHT */
  155. if (psta->htpriv.ht_option)
  156. nss = rtw_min(nss, rtw_ht_mcsset_to_nss(psta->htpriv.ht_cap.supp_mcs_set));
  157. #endif /*CONFIG_80211N_HT*/
  158. RTW_INFO("%s: %d SS\n", __func__, nss);
  159. return nss;
  160. }
  161. u8 judge_network_type(_adapter *padapter, unsigned char *rate, int ratelen)
  162. {
  163. u8 network_type = 0;
  164. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  165. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  166. if (pmlmeext->cur_channel > 14) {
  167. if (pmlmeinfo->VHT_enable)
  168. network_type = WIRELESS_11AC;
  169. else if (pmlmeinfo->HT_enable)
  170. network_type = WIRELESS_11_5N;
  171. network_type |= WIRELESS_11A;
  172. } else {
  173. if (pmlmeinfo->HT_enable)
  174. network_type = WIRELESS_11_24N;
  175. if ((cckratesonly_included(rate, ratelen)) == _TRUE)
  176. network_type |= WIRELESS_11B;
  177. else if ((cckrates_included(rate, ratelen)) == _TRUE)
  178. network_type |= WIRELESS_11BG;
  179. else
  180. network_type |= WIRELESS_11G;
  181. }
  182. return network_type;
  183. }
  184. unsigned char ratetbl_val_2wifirate(unsigned char rate);
  185. unsigned char ratetbl_val_2wifirate(unsigned char rate)
  186. {
  187. unsigned char val = 0;
  188. switch (rate & 0x7f) {
  189. case 0:
  190. val = IEEE80211_CCK_RATE_1MB;
  191. break;
  192. case 1:
  193. val = IEEE80211_CCK_RATE_2MB;
  194. break;
  195. case 2:
  196. val = IEEE80211_CCK_RATE_5MB;
  197. break;
  198. case 3:
  199. val = IEEE80211_CCK_RATE_11MB;
  200. break;
  201. case 4:
  202. val = IEEE80211_OFDM_RATE_6MB;
  203. break;
  204. case 5:
  205. val = IEEE80211_OFDM_RATE_9MB;
  206. break;
  207. case 6:
  208. val = IEEE80211_OFDM_RATE_12MB;
  209. break;
  210. case 7:
  211. val = IEEE80211_OFDM_RATE_18MB;
  212. break;
  213. case 8:
  214. val = IEEE80211_OFDM_RATE_24MB;
  215. break;
  216. case 9:
  217. val = IEEE80211_OFDM_RATE_36MB;
  218. break;
  219. case 10:
  220. val = IEEE80211_OFDM_RATE_48MB;
  221. break;
  222. case 11:
  223. val = IEEE80211_OFDM_RATE_54MB;
  224. break;
  225. }
  226. return val;
  227. }
  228. int is_basicrate(_adapter *padapter, unsigned char rate);
  229. int is_basicrate(_adapter *padapter, unsigned char rate)
  230. {
  231. int i;
  232. unsigned char val;
  233. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  234. for (i = 0; i < NumRates; i++) {
  235. val = pmlmeext->basicrate[i];
  236. if ((val != 0xff) && (val != 0xfe)) {
  237. if (rate == ratetbl_val_2wifirate(val))
  238. return _TRUE;
  239. }
  240. }
  241. return _FALSE;
  242. }
  243. unsigned int ratetbl2rateset(_adapter *padapter, unsigned char *rateset);
  244. unsigned int ratetbl2rateset(_adapter *padapter, unsigned char *rateset)
  245. {
  246. int i;
  247. unsigned char rate;
  248. unsigned int len = 0;
  249. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  250. for (i = 0; i < NumRates; i++) {
  251. rate = pmlmeext->datarate[i];
  252. if (rtw_get_oper_ch(padapter) > 14 && rate < _6M_RATE_) /*5G no support CCK rate*/
  253. continue;
  254. switch (rate) {
  255. case 0xff:
  256. return len;
  257. case 0xfe:
  258. continue;
  259. default:
  260. rate = ratetbl_val_2wifirate(rate);
  261. if (is_basicrate(padapter, rate) == _TRUE)
  262. rate |= IEEE80211_BASIC_RATE_MASK;
  263. rateset[len] = rate;
  264. len++;
  265. break;
  266. }
  267. }
  268. return len;
  269. }
  270. void get_rate_set(_adapter *padapter, unsigned char *pbssrate, int *bssrate_len)
  271. {
  272. unsigned char supportedrates[NumRates];
  273. _rtw_memset(supportedrates, 0, NumRates);
  274. *bssrate_len = ratetbl2rateset(padapter, supportedrates);
  275. _rtw_memcpy(pbssrate, supportedrates, *bssrate_len);
  276. }
  277. void set_mcs_rate_by_mask(u8 *mcs_set, u32 mask)
  278. {
  279. u8 mcs_rate_1r = (u8)(mask & 0xff);
  280. u8 mcs_rate_2r = (u8)((mask >> 8) & 0xff);
  281. u8 mcs_rate_3r = (u8)((mask >> 16) & 0xff);
  282. u8 mcs_rate_4r = (u8)((mask >> 24) & 0xff);
  283. mcs_set[0] &= mcs_rate_1r;
  284. mcs_set[1] &= mcs_rate_2r;
  285. mcs_set[2] &= mcs_rate_3r;
  286. mcs_set[3] &= mcs_rate_4r;
  287. }
  288. void UpdateBrateTbl(
  289. IN PADAPTER Adapter,
  290. IN u8 *mBratesOS
  291. )
  292. {
  293. u8 i;
  294. u8 rate;
  295. /* 1M, 2M, 5.5M, 11M, 6M, 12M, 24M are mandatory. */
  296. for (i = 0; i < NDIS_802_11_LENGTH_RATES_EX; i++) {
  297. rate = mBratesOS[i] & 0x7f;
  298. switch (rate) {
  299. case IEEE80211_CCK_RATE_1MB:
  300. case IEEE80211_CCK_RATE_2MB:
  301. case IEEE80211_CCK_RATE_5MB:
  302. case IEEE80211_CCK_RATE_11MB:
  303. case IEEE80211_OFDM_RATE_6MB:
  304. case IEEE80211_OFDM_RATE_12MB:
  305. case IEEE80211_OFDM_RATE_24MB:
  306. mBratesOS[i] |= IEEE80211_BASIC_RATE_MASK;
  307. break;
  308. }
  309. }
  310. }
  311. void UpdateBrateTblForSoftAP(u8 *bssrateset, u32 bssratelen)
  312. {
  313. u8 i;
  314. u8 rate;
  315. for (i = 0; i < bssratelen; i++) {
  316. rate = bssrateset[i] & 0x7f;
  317. switch (rate) {
  318. case IEEE80211_CCK_RATE_1MB:
  319. case IEEE80211_CCK_RATE_2MB:
  320. case IEEE80211_CCK_RATE_5MB:
  321. case IEEE80211_CCK_RATE_11MB:
  322. bssrateset[i] |= IEEE80211_BASIC_RATE_MASK;
  323. break;
  324. }
  325. }
  326. }
  327. void Set_MSR(_adapter *padapter, u8 type)
  328. {
  329. rtw_hal_set_hwreg(padapter, HW_VAR_MEDIA_STATUS, (u8 *)(&type));
  330. }
  331. inline u8 rtw_get_oper_ch(_adapter *adapter)
  332. {
  333. return adapter_to_dvobj(adapter)->oper_channel;
  334. }
  335. inline void rtw_set_oper_ch(_adapter *adapter, u8 ch)
  336. {
  337. #ifdef DBG_CH_SWITCH
  338. const int len = 128;
  339. char msg[128] = {0};
  340. int cnt = 0;
  341. int i = 0;
  342. #endif /* DBG_CH_SWITCH */
  343. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  344. if (dvobj->oper_channel != ch) {
  345. dvobj->on_oper_ch_time = rtw_get_current_time();
  346. #ifdef DBG_CH_SWITCH
  347. cnt += snprintf(msg + cnt, len - cnt, "switch to ch %3u", ch);
  348. for (i = 0; i < dvobj->iface_nums; i++) {
  349. _adapter *iface = dvobj->padapters[i];
  350. cnt += snprintf(msg + cnt, len - cnt, " ["ADPT_FMT":", ADPT_ARG(iface));
  351. if (iface->mlmeextpriv.cur_channel == ch)
  352. cnt += snprintf(msg + cnt, len - cnt, "C");
  353. else
  354. cnt += snprintf(msg + cnt, len - cnt, "_");
  355. if (iface->wdinfo.listen_channel == ch && !rtw_p2p_chk_state(&iface->wdinfo, P2P_STATE_NONE))
  356. cnt += snprintf(msg + cnt, len - cnt, "L");
  357. else
  358. cnt += snprintf(msg + cnt, len - cnt, "_");
  359. cnt += snprintf(msg + cnt, len - cnt, "]");
  360. }
  361. RTW_INFO(FUNC_ADPT_FMT" %s\n", FUNC_ADPT_ARG(adapter), msg);
  362. #endif /* DBG_CH_SWITCH */
  363. }
  364. dvobj->oper_channel = ch;
  365. }
  366. inline u8 rtw_get_oper_bw(_adapter *adapter)
  367. {
  368. return adapter_to_dvobj(adapter)->oper_bwmode;
  369. }
  370. inline void rtw_set_oper_bw(_adapter *adapter, u8 bw)
  371. {
  372. adapter_to_dvobj(adapter)->oper_bwmode = bw;
  373. }
  374. inline u8 rtw_get_oper_choffset(_adapter *adapter)
  375. {
  376. return adapter_to_dvobj(adapter)->oper_ch_offset;
  377. }
  378. inline void rtw_set_oper_choffset(_adapter *adapter, u8 offset)
  379. {
  380. adapter_to_dvobj(adapter)->oper_ch_offset = offset;
  381. }
  382. u8 rtw_get_offset_by_chbw(u8 ch, u8 bw, u8 *r_offset)
  383. {
  384. u8 valid = 1;
  385. u8 offset = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
  386. if (bw == CHANNEL_WIDTH_20)
  387. goto exit;
  388. if (bw >= CHANNEL_WIDTH_80 && ch <= 14) {
  389. valid = 0;
  390. goto exit;
  391. }
  392. if (ch >= 1 && ch <= 4)
  393. offset = HAL_PRIME_CHNL_OFFSET_LOWER;
  394. else if (ch >= 5 && ch <= 9) {
  395. if (*r_offset == HAL_PRIME_CHNL_OFFSET_LOWER || *r_offset == HAL_PRIME_CHNL_OFFSET_UPPER)
  396. offset = *r_offset; /* both lower and upper is valid, obey input value */
  397. else
  398. offset = HAL_PRIME_CHNL_OFFSET_UPPER; /* default use upper */
  399. } else if (ch >= 10 && ch <= 13)
  400. offset = HAL_PRIME_CHNL_OFFSET_UPPER;
  401. else if (ch == 14) {
  402. valid = 0; /* ch14 doesn't support 40MHz bandwidth */
  403. goto exit;
  404. } else if (ch >= 36 && ch <= 177) {
  405. switch (ch) {
  406. case 36:
  407. case 44:
  408. case 52:
  409. case 60:
  410. case 100:
  411. case 108:
  412. case 116:
  413. case 124:
  414. case 132:
  415. case 140:
  416. case 149:
  417. case 157:
  418. case 165:
  419. case 173:
  420. offset = HAL_PRIME_CHNL_OFFSET_LOWER;
  421. break;
  422. case 40:
  423. case 48:
  424. case 56:
  425. case 64:
  426. case 104:
  427. case 112:
  428. case 120:
  429. case 128:
  430. case 136:
  431. case 144:
  432. case 153:
  433. case 161:
  434. case 169:
  435. case 177:
  436. offset = HAL_PRIME_CHNL_OFFSET_UPPER;
  437. break;
  438. default:
  439. valid = 0;
  440. break;
  441. }
  442. } else
  443. valid = 0;
  444. exit:
  445. if (valid && r_offset)
  446. *r_offset = offset;
  447. return valid;
  448. }
  449. u8 rtw_get_center_ch(u8 channel, u8 chnl_bw, u8 chnl_offset)
  450. {
  451. u8 center_ch = channel;
  452. if (chnl_bw == CHANNEL_WIDTH_80) {
  453. if (channel == 36 || channel == 40 || channel == 44 || channel == 48)
  454. center_ch = 42;
  455. else if (channel == 52 || channel == 56 || channel == 60 || channel == 64)
  456. center_ch = 58;
  457. else if (channel == 100 || channel == 104 || channel == 108 || channel == 112)
  458. center_ch = 106;
  459. else if (channel == 116 || channel == 120 || channel == 124 || channel == 128)
  460. center_ch = 122;
  461. else if (channel == 132 || channel == 136 || channel == 140 || channel == 144)
  462. center_ch = 138;
  463. else if (channel == 149 || channel == 153 || channel == 157 || channel == 161)
  464. center_ch = 155;
  465. else if (channel == 165 || channel == 169 || channel == 173 || channel == 177)
  466. center_ch = 171;
  467. else if (channel <= 14)
  468. center_ch = 7;
  469. } else if (chnl_bw == CHANNEL_WIDTH_40) {
  470. if (chnl_offset == HAL_PRIME_CHNL_OFFSET_LOWER)
  471. center_ch = channel + 2;
  472. else
  473. center_ch = channel - 2;
  474. } else if (chnl_bw == CHANNEL_WIDTH_20)
  475. center_ch = channel;
  476. else
  477. rtw_warn_on(1);
  478. return center_ch;
  479. }
  480. inline systime rtw_get_on_oper_ch_time(_adapter *adapter)
  481. {
  482. return adapter_to_dvobj(adapter)->on_oper_ch_time;
  483. }
  484. inline systime rtw_get_on_cur_ch_time(_adapter *adapter)
  485. {
  486. if (adapter->mlmeextpriv.cur_channel == adapter_to_dvobj(adapter)->oper_channel)
  487. return adapter_to_dvobj(adapter)->on_oper_ch_time;
  488. else
  489. return 0;
  490. }
  491. void set_channel_bwmode(_adapter *padapter, unsigned char channel, unsigned char channel_offset, unsigned short bwmode)
  492. {
  493. u8 center_ch, chnl_offset80 = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
  494. #if (defined(CONFIG_TDLS) && defined(CONFIG_TDLS_CH_SW)) || defined(CONFIG_MCC_MODE)
  495. u8 iqk_info_backup = _FALSE;
  496. #endif
  497. if (padapter->bNotifyChannelChange)
  498. RTW_INFO("[%s] ch = %d, offset = %d, bwmode = %d\n", __FUNCTION__, channel, channel_offset, bwmode);
  499. center_ch = rtw_get_center_ch(channel, bwmode, channel_offset);
  500. if (bwmode == CHANNEL_WIDTH_80) {
  501. if (center_ch > channel)
  502. chnl_offset80 = HAL_PRIME_CHNL_OFFSET_LOWER;
  503. else if (center_ch < channel)
  504. chnl_offset80 = HAL_PRIME_CHNL_OFFSET_UPPER;
  505. else
  506. chnl_offset80 = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
  507. }
  508. _enter_critical_mutex(&(adapter_to_dvobj(padapter)->setch_mutex), NULL);
  509. #ifdef CONFIG_MCC_MODE
  510. if (MCC_EN(padapter)) {
  511. /* driver doesn't set channel setting reg under MCC */
  512. if (rtw_hal_check_mcc_status(padapter, MCC_STATUS_DOING_MCC))
  513. RTW_INFO("Warning: Do not set channel setting reg MCC mode\n");
  514. }
  515. #endif
  516. #ifdef CONFIG_DFS_MASTER
  517. {
  518. struct rf_ctl_t *rfctl = adapter_to_rfctl(padapter);
  519. bool ori_overlap_radar_detect_ch = rtw_rfctl_overlap_radar_detect_ch(rfctl);
  520. bool new_overlap_radar_detect_ch = _rtw_rfctl_overlap_radar_detect_ch(rfctl, channel, bwmode, channel_offset);
  521. if (new_overlap_radar_detect_ch && IS_CH_WAITING(rfctl)) {
  522. u8 pause = 0xFF;
  523. rtw_hal_set_hwreg(padapter, HW_VAR_TXPAUSE, &pause);
  524. }
  525. #endif /* CONFIG_DFS_MASTER */
  526. /* set Channel */
  527. /* saved channel/bw info */
  528. rtw_set_oper_ch(padapter, channel);
  529. rtw_set_oper_bw(padapter, bwmode);
  530. rtw_set_oper_choffset(padapter, channel_offset);
  531. #if (defined(CONFIG_TDLS) && defined(CONFIG_TDLS_CH_SW)) || defined(CONFIG_MCC_MODE)
  532. /* To check if we need to backup iqk info after switch chnl & bw */
  533. {
  534. u8 take_care_iqk, do_iqk;
  535. rtw_hal_get_hwreg(padapter, HW_VAR_CH_SW_NEED_TO_TAKE_CARE_IQK_INFO, &take_care_iqk);
  536. rtw_hal_get_hwreg(padapter, HW_VAR_DO_IQK, &do_iqk);
  537. if ((take_care_iqk == _TRUE) && (do_iqk == _TRUE))
  538. iqk_info_backup = _TRUE;
  539. }
  540. #endif
  541. rtw_hal_set_chnl_bw(padapter, center_ch, bwmode, channel_offset, chnl_offset80); /* set center channel */
  542. #if (defined(CONFIG_TDLS) && defined(CONFIG_TDLS_CH_SW)) || defined(CONFIG_MCC_MODE)
  543. if (iqk_info_backup == _TRUE)
  544. rtw_hal_ch_sw_iqk_info_backup(padapter);
  545. #endif
  546. #ifdef CONFIG_DFS_MASTER
  547. if (new_overlap_radar_detect_ch)
  548. rtw_odm_radar_detect_enable(padapter);
  549. else if (ori_overlap_radar_detect_ch) {
  550. u8 pause = 0x00;
  551. rtw_odm_radar_detect_disable(padapter);
  552. rtw_hal_set_hwreg(padapter, HW_VAR_TXPAUSE, &pause);
  553. }
  554. }
  555. #endif /* CONFIG_DFS_MASTER */
  556. _exit_critical_mutex(&(adapter_to_dvobj(padapter)->setch_mutex), NULL);
  557. }
  558. __inline u8 *get_my_bssid(WLAN_BSSID_EX *pnetwork)
  559. {
  560. return pnetwork->MacAddress;
  561. }
  562. u16 get_beacon_interval(WLAN_BSSID_EX *bss)
  563. {
  564. unsigned short val;
  565. _rtw_memcpy((unsigned char *)&val, rtw_get_beacon_interval_from_ie(bss->IEs), 2);
  566. return le16_to_cpu(val);
  567. }
  568. int is_client_associated_to_ap(_adapter *padapter)
  569. {
  570. struct mlme_ext_priv *pmlmeext;
  571. struct mlme_ext_info *pmlmeinfo;
  572. if (!padapter)
  573. return _FAIL;
  574. pmlmeext = &padapter->mlmeextpriv;
  575. pmlmeinfo = &(pmlmeext->mlmext_info);
  576. if ((pmlmeinfo->state & WIFI_FW_ASSOC_SUCCESS) && ((pmlmeinfo->state & 0x03) == WIFI_FW_STATION_STATE))
  577. return _TRUE;
  578. else
  579. return _FAIL;
  580. }
  581. int is_client_associated_to_ibss(_adapter *padapter)
  582. {
  583. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  584. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  585. if ((pmlmeinfo->state & WIFI_FW_ASSOC_SUCCESS) && ((pmlmeinfo->state & 0x03) == WIFI_FW_ADHOC_STATE))
  586. return _TRUE;
  587. else
  588. return _FAIL;
  589. }
  590. int is_IBSS_empty(_adapter *padapter)
  591. {
  592. int i;
  593. struct macid_ctl_t *macid_ctl = &padapter->dvobj->macid_ctl;
  594. for (i = 0; i < macid_ctl->num; i++) {
  595. if (!rtw_macid_is_used(macid_ctl, i))
  596. continue;
  597. if (!rtw_macid_is_iface_specific(macid_ctl, i, padapter))
  598. continue;
  599. if (!GET_H2CCMD_MSRRPT_PARM_OPMODE(&macid_ctl->h2c_msr[i]))
  600. continue;
  601. if (GET_H2CCMD_MSRRPT_PARM_ROLE(&macid_ctl->h2c_msr[i]) == H2C_MSR_ROLE_ADHOC)
  602. return _FAIL;
  603. }
  604. return _TRUE;
  605. }
  606. unsigned int decide_wait_for_beacon_timeout(unsigned int bcn_interval)
  607. {
  608. if ((bcn_interval << 2) < WAIT_FOR_BCN_TO_MIN)
  609. return WAIT_FOR_BCN_TO_MIN;
  610. else if ((bcn_interval << 2) > WAIT_FOR_BCN_TO_MAX)
  611. return WAIT_FOR_BCN_TO_MAX;
  612. else
  613. return bcn_interval << 2;
  614. }
  615. void CAM_empty_entry(
  616. PADAPTER Adapter,
  617. u8 ucIndex
  618. )
  619. {
  620. rtw_hal_set_hwreg(Adapter, HW_VAR_CAM_EMPTY_ENTRY, (u8 *)(&ucIndex));
  621. }
  622. void invalidate_cam_all(_adapter *padapter)
  623. {
  624. struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
  625. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  626. _irqL irqL;
  627. u8 val8 = 0;
  628. rtw_hal_set_hwreg(padapter, HW_VAR_CAM_INVALID_ALL, &val8);
  629. _enter_critical_bh(&cam_ctl->lock, &irqL);
  630. rtw_sec_cam_map_clr_all(&cam_ctl->used);
  631. _rtw_memset(dvobj->cam_cache, 0, sizeof(struct sec_cam_ent) * SEC_CAM_ENT_NUM_SW_LIMIT);
  632. _exit_critical_bh(&cam_ctl->lock, &irqL);
  633. }
  634. void _clear_cam_entry(_adapter *padapter, u8 entry)
  635. {
  636. unsigned char null_sta[] = {0x00, 0x00, 0x00, 0x00, 0x00, 0x00};
  637. unsigned char null_key[] = {0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00};
  638. rtw_sec_write_cam_ent(padapter, entry, 0, null_sta, null_key);
  639. }
  640. inline void write_cam(_adapter *adapter, u8 id, u16 ctrl, u8 *mac, u8 *key)
  641. {
  642. #ifdef CONFIG_WRITE_CACHE_ONLY
  643. write_cam_cache(adapter, id , ctrl, mac, key);
  644. #else
  645. rtw_sec_write_cam_ent(adapter, id, ctrl, mac, key);
  646. write_cam_cache(adapter, id , ctrl, mac, key);
  647. #endif
  648. }
  649. inline void clear_cam_entry(_adapter *adapter, u8 id)
  650. {
  651. _clear_cam_entry(adapter, id);
  652. clear_cam_cache(adapter, id);
  653. }
  654. inline void write_cam_from_cache(_adapter *adapter, u8 id)
  655. {
  656. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  657. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  658. _irqL irqL;
  659. struct sec_cam_ent cache;
  660. _enter_critical_bh(&cam_ctl->lock, &irqL);
  661. _rtw_memcpy(&cache, &dvobj->cam_cache[id], sizeof(struct sec_cam_ent));
  662. _exit_critical_bh(&cam_ctl->lock, &irqL);
  663. rtw_sec_write_cam_ent(adapter, id, cache.ctrl, cache.mac, cache.key);
  664. }
  665. void write_cam_cache(_adapter *adapter, u8 id, u16 ctrl, u8 *mac, u8 *key)
  666. {
  667. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  668. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  669. _irqL irqL;
  670. _enter_critical_bh(&cam_ctl->lock, &irqL);
  671. dvobj->cam_cache[id].ctrl = ctrl;
  672. _rtw_memcpy(dvobj->cam_cache[id].mac, mac, ETH_ALEN);
  673. _rtw_memcpy(dvobj->cam_cache[id].key, key, 16);
  674. _exit_critical_bh(&cam_ctl->lock, &irqL);
  675. }
  676. void clear_cam_cache(_adapter *adapter, u8 id)
  677. {
  678. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  679. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  680. _irqL irqL;
  681. _enter_critical_bh(&cam_ctl->lock, &irqL);
  682. _rtw_memset(&(dvobj->cam_cache[id]), 0, sizeof(struct sec_cam_ent));
  683. _exit_critical_bh(&cam_ctl->lock, &irqL);
  684. }
  685. inline bool _rtw_camctl_chk_cap(_adapter *adapter, u8 cap)
  686. {
  687. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  688. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  689. if (cam_ctl->sec_cap & cap)
  690. return _TRUE;
  691. return _FALSE;
  692. }
  693. inline void _rtw_camctl_set_flags(_adapter *adapter, u32 flags)
  694. {
  695. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  696. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  697. cam_ctl->flags |= flags;
  698. }
  699. inline void rtw_camctl_set_flags(_adapter *adapter, u32 flags)
  700. {
  701. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  702. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  703. _irqL irqL;
  704. _enter_critical_bh(&cam_ctl->lock, &irqL);
  705. _rtw_camctl_set_flags(adapter, flags);
  706. _exit_critical_bh(&cam_ctl->lock, &irqL);
  707. }
  708. inline void _rtw_camctl_clr_flags(_adapter *adapter, u32 flags)
  709. {
  710. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  711. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  712. cam_ctl->flags &= ~flags;
  713. }
  714. inline void rtw_camctl_clr_flags(_adapter *adapter, u32 flags)
  715. {
  716. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  717. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  718. _irqL irqL;
  719. _enter_critical_bh(&cam_ctl->lock, &irqL);
  720. _rtw_camctl_clr_flags(adapter, flags);
  721. _exit_critical_bh(&cam_ctl->lock, &irqL);
  722. }
  723. inline bool _rtw_camctl_chk_flags(_adapter *adapter, u32 flags)
  724. {
  725. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  726. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  727. if (cam_ctl->flags & flags)
  728. return _TRUE;
  729. return _FALSE;
  730. }
  731. void dump_sec_cam_map(void *sel, struct sec_cam_bmp *map, u8 max_num)
  732. {
  733. RTW_PRINT_SEL(sel, "0x%08x\n", map->m0);
  734. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 32)
  735. if (max_num && max_num > 32)
  736. RTW_PRINT_SEL(sel, "0x%08x\n", map->m1);
  737. #endif
  738. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 64)
  739. if (max_num && max_num > 64)
  740. RTW_PRINT_SEL(sel, "0x%08x\n", map->m2);
  741. #endif
  742. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 96)
  743. if (max_num && max_num > 96)
  744. RTW_PRINT_SEL(sel, "0x%08x\n", map->m3);
  745. #endif
  746. }
  747. inline bool rtw_sec_camid_is_set(struct sec_cam_bmp *map, u8 id)
  748. {
  749. if (id < 32)
  750. return map->m0 & BIT(id);
  751. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 32)
  752. else if (id < 64)
  753. return map->m1 & BIT(id - 32);
  754. #endif
  755. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 64)
  756. else if (id < 96)
  757. return map->m2 & BIT(id - 64);
  758. #endif
  759. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 96)
  760. else if (id < 128)
  761. return map->m3 & BIT(id - 96);
  762. #endif
  763. else
  764. rtw_warn_on(1);
  765. return 0;
  766. }
  767. inline void rtw_sec_cam_map_set(struct sec_cam_bmp *map, u8 id)
  768. {
  769. if (id < 32)
  770. map->m0 |= BIT(id);
  771. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 32)
  772. else if (id < 64)
  773. map->m1 |= BIT(id - 32);
  774. #endif
  775. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 64)
  776. else if (id < 96)
  777. map->m2 |= BIT(id - 64);
  778. #endif
  779. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 96)
  780. else if (id < 128)
  781. map->m3 |= BIT(id - 96);
  782. #endif
  783. else
  784. rtw_warn_on(1);
  785. }
  786. inline void rtw_sec_cam_map_clr(struct sec_cam_bmp *map, u8 id)
  787. {
  788. if (id < 32)
  789. map->m0 &= ~BIT(id);
  790. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 32)
  791. else if (id < 64)
  792. map->m1 &= ~BIT(id - 32);
  793. #endif
  794. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 64)
  795. else if (id < 96)
  796. map->m2 &= ~BIT(id - 64);
  797. #endif
  798. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 96)
  799. else if (id < 128)
  800. map->m3 &= ~BIT(id - 96);
  801. #endif
  802. else
  803. rtw_warn_on(1);
  804. }
  805. inline void rtw_sec_cam_map_clr_all(struct sec_cam_bmp *map)
  806. {
  807. map->m0 = 0;
  808. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 32)
  809. map->m1 = 0;
  810. #endif
  811. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 64)
  812. map->m2 = 0;
  813. #endif
  814. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 96)
  815. map->m3 = 0;
  816. #endif
  817. }
  818. inline bool rtw_sec_camid_is_drv_forbid(struct cam_ctl_t *cam_ctl, u8 id)
  819. {
  820. struct sec_cam_bmp forbid_map;
  821. forbid_map.m0 = 0x00000ff0;
  822. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 32)
  823. forbid_map.m1 = 0x00000000;
  824. #endif
  825. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 64)
  826. forbid_map.m2 = 0x00000000;
  827. #endif
  828. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 96)
  829. forbid_map.m3 = 0x00000000;
  830. #endif
  831. if (id < 32)
  832. return forbid_map.m0 & BIT(id);
  833. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 32)
  834. else if (id < 64)
  835. return forbid_map.m1 & BIT(id - 32);
  836. #endif
  837. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 64)
  838. else if (id < 96)
  839. return forbid_map.m2 & BIT(id - 64);
  840. #endif
  841. #if (SEC_CAM_ENT_NUM_SW_LIMIT > 96)
  842. else if (id < 128)
  843. return forbid_map.m3 & BIT(id - 96);
  844. #endif
  845. else
  846. rtw_warn_on(1);
  847. return 1;
  848. }
  849. bool _rtw_sec_camid_is_used(struct cam_ctl_t *cam_ctl, u8 id)
  850. {
  851. bool ret = _FALSE;
  852. if (id >= cam_ctl->num) {
  853. rtw_warn_on(1);
  854. goto exit;
  855. }
  856. #if 0 /* for testing */
  857. if (rtw_sec_camid_is_drv_forbid(cam_ctl, id)) {
  858. ret = _TRUE;
  859. goto exit;
  860. }
  861. #endif
  862. ret = rtw_sec_camid_is_set(&cam_ctl->used, id);
  863. exit:
  864. return ret;
  865. }
  866. inline bool rtw_sec_camid_is_used(struct cam_ctl_t *cam_ctl, u8 id)
  867. {
  868. _irqL irqL;
  869. bool ret;
  870. _enter_critical_bh(&cam_ctl->lock, &irqL);
  871. ret = _rtw_sec_camid_is_used(cam_ctl, id);
  872. _exit_critical_bh(&cam_ctl->lock, &irqL);
  873. return ret;
  874. }
  875. u8 rtw_get_sec_camid(_adapter *adapter, u8 max_bk_key_num, u8 *sec_key_id)
  876. {
  877. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  878. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  879. int i;
  880. _irqL irqL;
  881. u8 sec_cam_num = 0;
  882. _enter_critical_bh(&cam_ctl->lock, &irqL);
  883. for (i = 0; i < cam_ctl->num; i++) {
  884. if (_rtw_sec_camid_is_used(cam_ctl, i)) {
  885. sec_key_id[sec_cam_num++] = i;
  886. if (sec_cam_num == max_bk_key_num)
  887. break;
  888. }
  889. }
  890. _exit_critical_bh(&cam_ctl->lock, &irqL);
  891. return sec_cam_num;
  892. }
  893. inline bool _rtw_camid_is_gk(_adapter *adapter, u8 cam_id)
  894. {
  895. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  896. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  897. bool ret = _FALSE;
  898. if (cam_id >= cam_ctl->num) {
  899. rtw_warn_on(1);
  900. goto exit;
  901. }
  902. if (_rtw_sec_camid_is_used(cam_ctl, cam_id) == _FALSE)
  903. goto exit;
  904. ret = (dvobj->cam_cache[cam_id].ctrl & BIT6) ? _TRUE : _FALSE;
  905. exit:
  906. return ret;
  907. }
  908. inline bool rtw_camid_is_gk(_adapter *adapter, u8 cam_id)
  909. {
  910. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  911. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  912. _irqL irqL;
  913. bool ret;
  914. _enter_critical_bh(&cam_ctl->lock, &irqL);
  915. ret = _rtw_camid_is_gk(adapter, cam_id);
  916. _exit_critical_bh(&cam_ctl->lock, &irqL);
  917. return ret;
  918. }
  919. bool cam_cache_chk(_adapter *adapter, u8 id, u8 *addr, s16 kid, s8 gk)
  920. {
  921. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  922. bool ret = _FALSE;
  923. if (addr && _rtw_memcmp(dvobj->cam_cache[id].mac, addr, ETH_ALEN) == _FALSE)
  924. goto exit;
  925. if (kid >= 0 && kid != (dvobj->cam_cache[id].ctrl & 0x03))
  926. goto exit;
  927. if (gk != -1 && (gk ? _TRUE : _FALSE) != _rtw_camid_is_gk(adapter, id))
  928. goto exit;
  929. ret = _TRUE;
  930. exit:
  931. return ret;
  932. }
  933. s16 _rtw_camid_search(_adapter *adapter, u8 *addr, s16 kid, s8 gk)
  934. {
  935. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  936. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  937. int i;
  938. s16 cam_id = -1;
  939. for (i = 0; i < cam_ctl->num; i++) {
  940. if (cam_cache_chk(adapter, i, addr, kid, gk)) {
  941. cam_id = i;
  942. break;
  943. }
  944. }
  945. if (0) {
  946. if (addr)
  947. RTW_INFO(FUNC_ADPT_FMT" addr:"MAC_FMT" kid:%d, gk:%d, return cam_id:%d\n"
  948. , FUNC_ADPT_ARG(adapter), MAC_ARG(addr), kid, gk, cam_id);
  949. else
  950. RTW_INFO(FUNC_ADPT_FMT" addr:%p kid:%d, gk:%d, return cam_id:%d\n"
  951. , FUNC_ADPT_ARG(adapter), addr, kid, gk, cam_id);
  952. }
  953. return cam_id;
  954. }
  955. s16 rtw_camid_search(_adapter *adapter, u8 *addr, s16 kid, s8 gk)
  956. {
  957. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  958. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  959. _irqL irqL;
  960. s16 cam_id = -1;
  961. _enter_critical_bh(&cam_ctl->lock, &irqL);
  962. cam_id = _rtw_camid_search(adapter, addr, kid, gk);
  963. _exit_critical_bh(&cam_ctl->lock, &irqL);
  964. return cam_id;
  965. }
  966. s16 rtw_get_camid(_adapter *adapter, u8 *addr, s16 kid, u8 gk)
  967. {
  968. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  969. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  970. int i;
  971. #if 0 /* for testing */
  972. static u8 start_id = 0;
  973. #else
  974. u8 start_id = 0;
  975. #endif
  976. s16 cam_id = -1;
  977. if (addr == NULL) {
  978. RTW_PRINT(FUNC_ADPT_FMT" mac_address is NULL\n"
  979. , FUNC_ADPT_ARG(adapter));
  980. rtw_warn_on(1);
  981. goto _exit;
  982. }
  983. /* find cam entry which has the same addr, kid (, gk bit) */
  984. if (_rtw_camctl_chk_cap(adapter, SEC_CAP_CHK_BMC) == _TRUE)
  985. i = _rtw_camid_search(adapter, addr, kid, gk);
  986. else
  987. i = _rtw_camid_search(adapter, addr, kid, -1);
  988. if (i >= 0) {
  989. cam_id = i;
  990. goto _exit;
  991. }
  992. for (i = 0; i < cam_ctl->num; i++) {
  993. /* bypass default key which is allocated statically */
  994. #ifndef CONFIG_CONCURRENT_MODE
  995. if (((i + start_id) % cam_ctl->num) < 4)
  996. continue;
  997. #endif
  998. if (_rtw_sec_camid_is_used(cam_ctl, ((i + start_id) % cam_ctl->num)) == _FALSE)
  999. break;
  1000. }
  1001. if (i == cam_ctl->num) {
  1002. RTW_PRINT(FUNC_ADPT_FMT" %s key with "MAC_FMT" id:%u no room\n"
  1003. , FUNC_ADPT_ARG(adapter), gk ? "group" : "pairwise", MAC_ARG(addr), kid);
  1004. rtw_warn_on(1);
  1005. goto _exit;
  1006. }
  1007. cam_id = ((i + start_id) % cam_ctl->num);
  1008. start_id = ((i + start_id + 1) % cam_ctl->num);
  1009. _exit:
  1010. return cam_id;
  1011. }
  1012. s16 rtw_camid_alloc(_adapter *adapter, struct sta_info *sta, u8 kid, u8 gk, bool *used)
  1013. {
  1014. struct mlme_ext_info *mlmeinfo = &adapter->mlmeextpriv.mlmext_info;
  1015. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  1016. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  1017. _irqL irqL;
  1018. s16 cam_id = -1;
  1019. *used = _FALSE;
  1020. _enter_critical_bh(&cam_ctl->lock, &irqL);
  1021. if ((((mlmeinfo->state & 0x03) == WIFI_FW_AP_STATE) || ((mlmeinfo->state & 0x03) == WIFI_FW_ADHOC_STATE))
  1022. && !sta) {
  1023. /*
  1024. * 1. non-STA mode WEP key
  1025. * 2. group TX key
  1026. */
  1027. #ifndef CONFIG_CONCURRENT_MODE
  1028. /* static alloction to default key by key ID when concurrent is not defined */
  1029. if (kid > 3) {
  1030. RTW_PRINT(FUNC_ADPT_FMT" group key with invalid key id:%u\n"
  1031. , FUNC_ADPT_ARG(adapter), kid);
  1032. rtw_warn_on(1);
  1033. goto bitmap_handle;
  1034. }
  1035. cam_id = kid;
  1036. #else
  1037. u8 *addr = adapter_mac_addr(adapter);
  1038. cam_id = rtw_get_camid(adapter, addr, kid, gk);
  1039. if (1)
  1040. RTW_PRINT(FUNC_ADPT_FMT" group key with "MAC_FMT" assigned cam_id:%u\n"
  1041. , FUNC_ADPT_ARG(adapter), MAC_ARG(addr), cam_id);
  1042. #endif
  1043. } else {
  1044. /*
  1045. * 1. STA mode WEP key
  1046. * 2. STA mode group RX key
  1047. * 3. sta key (pairwise, group RX)
  1048. */
  1049. u8 *addr = sta ? sta->cmn.mac_addr : NULL;
  1050. if (!sta) {
  1051. if (!(mlmeinfo->state & WIFI_FW_ASSOC_SUCCESS)) {
  1052. /* bypass STA mode group key setting before connected(ex:WEP) because bssid is not ready */
  1053. goto bitmap_handle;
  1054. }
  1055. addr = get_bssid(&adapter->mlmepriv);/*A2*/
  1056. }
  1057. cam_id = rtw_get_camid(adapter, addr, kid, gk);
  1058. }
  1059. bitmap_handle:
  1060. if (cam_id >= 0) {
  1061. *used = _rtw_sec_camid_is_used(cam_ctl, cam_id);
  1062. rtw_sec_cam_map_set(&cam_ctl->used, cam_id);
  1063. }
  1064. _exit_critical_bh(&cam_ctl->lock, &irqL);
  1065. return cam_id;
  1066. }
  1067. void rtw_camid_set(_adapter *adapter, u8 cam_id)
  1068. {
  1069. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  1070. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  1071. _irqL irqL;
  1072. _enter_critical_bh(&cam_ctl->lock, &irqL);
  1073. if (cam_id < cam_ctl->num)
  1074. rtw_sec_cam_map_set(&cam_ctl->used, cam_id);
  1075. _exit_critical_bh(&cam_ctl->lock, &irqL);
  1076. }
  1077. void rtw_camid_free(_adapter *adapter, u8 cam_id)
  1078. {
  1079. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  1080. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  1081. _irqL irqL;
  1082. _enter_critical_bh(&cam_ctl->lock, &irqL);
  1083. if (cam_id < cam_ctl->num)
  1084. rtw_sec_cam_map_clr(&cam_ctl->used, cam_id);
  1085. _exit_critical_bh(&cam_ctl->lock, &irqL);
  1086. }
  1087. /*Must pause TX/RX before use this API*/
  1088. inline void rtw_sec_cam_swap(_adapter *adapter, u8 cam_id_a, u8 cam_id_b)
  1089. {
  1090. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  1091. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  1092. struct sec_cam_ent cache_a, cache_b;
  1093. _irqL irqL;
  1094. bool cam_a_used, cam_b_used;
  1095. if (1)
  1096. RTW_INFO(ADPT_FMT" - sec_cam %d,%d swap\n", ADPT_ARG(adapter), cam_id_a, cam_id_b);
  1097. if (cam_id_a == cam_id_b)
  1098. return;
  1099. #ifdef CONFIG_CONCURRENT_MODE
  1100. rtw_mi_update_ap_bmc_camid(adapter, cam_id_a, cam_id_b);
  1101. #endif
  1102. /*setp-1. backup org cam_info*/
  1103. _enter_critical_bh(&cam_ctl->lock, &irqL);
  1104. cam_a_used = _rtw_sec_camid_is_used(cam_ctl, cam_id_a);
  1105. cam_b_used = _rtw_sec_camid_is_used(cam_ctl, cam_id_b);
  1106. if (cam_a_used)
  1107. _rtw_memcpy(&cache_a, &dvobj->cam_cache[cam_id_a], sizeof(struct sec_cam_ent));
  1108. if (cam_b_used)
  1109. _rtw_memcpy(&cache_b, &dvobj->cam_cache[cam_id_b], sizeof(struct sec_cam_ent));
  1110. _exit_critical_bh(&cam_ctl->lock, &irqL);
  1111. /*setp-2. clean cam_info*/
  1112. if (cam_a_used) {
  1113. rtw_camid_free(adapter, cam_id_a);
  1114. clear_cam_entry(adapter, cam_id_a);
  1115. }
  1116. if (cam_b_used) {
  1117. rtw_camid_free(adapter, cam_id_b);
  1118. clear_cam_entry(adapter, cam_id_b);
  1119. }
  1120. /*setp-3. set cam_info*/
  1121. if (cam_a_used) {
  1122. write_cam(adapter, cam_id_b, cache_a.ctrl, cache_a.mac, cache_a.key);
  1123. rtw_camid_set(adapter, cam_id_b);
  1124. }
  1125. if (cam_b_used) {
  1126. write_cam(adapter, cam_id_a, cache_b.ctrl, cache_b.mac, cache_b.key);
  1127. rtw_camid_set(adapter, cam_id_a);
  1128. }
  1129. }
  1130. s16 rtw_get_empty_cam_entry(_adapter *adapter, u8 start_camid)
  1131. {
  1132. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  1133. struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
  1134. _irqL irqL;
  1135. int i;
  1136. s16 cam_id = -1;
  1137. _enter_critical_bh(&cam_ctl->lock, &irqL);
  1138. for (i = start_camid; i < cam_ctl->num; i++) {
  1139. if (_FALSE == _rtw_sec_camid_is_used(cam_ctl, i)) {
  1140. cam_id = i;
  1141. break;
  1142. }
  1143. }
  1144. _exit_critical_bh(&cam_ctl->lock, &irqL);
  1145. return cam_id;
  1146. }
  1147. void rtw_clean_dk_section(_adapter *adapter)
  1148. {
  1149. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  1150. struct cam_ctl_t *cam_ctl = dvobj_to_sec_camctl(dvobj);
  1151. s16 ept_cam_id;
  1152. int i;
  1153. for (i = 0; i < 4; i++) {
  1154. if (rtw_sec_camid_is_used(cam_ctl, i)) {
  1155. ept_cam_id = rtw_get_empty_cam_entry(adapter, 4);
  1156. if (ept_cam_id > 0)
  1157. rtw_sec_cam_swap(adapter, i, ept_cam_id);
  1158. }
  1159. }
  1160. }
  1161. void rtw_clean_hw_dk_cam(_adapter *adapter)
  1162. {
  1163. int i;
  1164. for (i = 0; i < 4; i++)
  1165. rtw_sec_clr_cam_ent(adapter, i);
  1166. /*_clear_cam_entry(adapter, i);*/
  1167. }
  1168. void flush_all_cam_entry(_adapter *padapter)
  1169. {
  1170. #ifdef CONFIG_CONCURRENT_MODE
  1171. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1172. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1173. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1174. struct security_priv *psecpriv = &padapter->securitypriv;
  1175. if (check_fwstate(pmlmepriv, WIFI_STATION_STATE)) {
  1176. struct sta_priv *pstapriv = &padapter->stapriv;
  1177. struct sta_info *psta;
  1178. psta = rtw_get_stainfo(pstapriv, pmlmeinfo->network.MacAddress);
  1179. if (psta) {
  1180. if (psta->state & WIFI_AP_STATE) {
  1181. /*clear cam when ap free per sta_info*/
  1182. } else
  1183. rtw_clearstakey_cmd(padapter, psta, _FALSE);
  1184. }
  1185. } else if (MLME_IS_AP(padapter) || MLME_IS_MESH(padapter)) {
  1186. #if 1
  1187. int cam_id = -1;
  1188. u8 *addr = adapter_mac_addr(padapter);
  1189. while ((cam_id = rtw_camid_search(padapter, addr, -1, -1)) >= 0) {
  1190. RTW_PRINT("clear wep or group key for addr:"MAC_FMT", camid:%d\n", MAC_ARG(addr), cam_id);
  1191. clear_cam_entry(padapter, cam_id);
  1192. rtw_camid_free(padapter, cam_id);
  1193. }
  1194. #else
  1195. /* clear default key */
  1196. int i, cam_id;
  1197. u8 null_addr[ETH_ALEN] = {0, 0, 0, 0, 0, 0};
  1198. for (i = 0; i < 4; i++) {
  1199. cam_id = rtw_camid_search(padapter, null_addr, i, -1);
  1200. if (cam_id >= 0) {
  1201. clear_cam_entry(padapter, cam_id);
  1202. rtw_camid_free(padapter, cam_id);
  1203. }
  1204. }
  1205. /* clear default key related key search setting */
  1206. rtw_hal_set_hwreg(padapter, HW_VAR_SEC_DK_CFG, (u8 *)_FALSE);
  1207. #endif
  1208. }
  1209. #else /*NON CONFIG_CONCURRENT_MODE*/
  1210. invalidate_cam_all(padapter);
  1211. /* clear default key related key search setting */
  1212. rtw_hal_set_hwreg(padapter, HW_VAR_SEC_DK_CFG, (u8 *)_FALSE);
  1213. #endif
  1214. }
  1215. #if defined(CONFIG_P2P) && defined(CONFIG_WFD)
  1216. void rtw_process_wfd_ie(_adapter *adapter, u8 *wfd_ie, u8 wfd_ielen, const char *tag)
  1217. {
  1218. struct wifidirect_info *wdinfo = &adapter->wdinfo;
  1219. u8 *attr_content;
  1220. u32 attr_contentlen = 0;
  1221. if (!hal_chk_wl_func(adapter, WL_FUNC_MIRACAST))
  1222. return;
  1223. RTW_INFO("[%s] Found WFD IE\n", tag);
  1224. attr_content = rtw_get_wfd_attr_content(wfd_ie, wfd_ielen, WFD_ATTR_DEVICE_INFO, NULL, &attr_contentlen);
  1225. if (attr_content && attr_contentlen) {
  1226. wdinfo->wfd_info->peer_rtsp_ctrlport = RTW_GET_BE16(attr_content + 2);
  1227. RTW_INFO("[%s] Peer PORT NUM = %d\n", tag, wdinfo->wfd_info->peer_rtsp_ctrlport);
  1228. }
  1229. }
  1230. void rtw_process_wfd_ies(_adapter *adapter, u8 *ies, u8 ies_len, const char *tag)
  1231. {
  1232. u8 *wfd_ie;
  1233. u32 wfd_ielen;
  1234. if (!hal_chk_wl_func(adapter, WL_FUNC_MIRACAST))
  1235. return;
  1236. wfd_ie = rtw_get_wfd_ie(ies, ies_len, NULL, &wfd_ielen);
  1237. while (wfd_ie) {
  1238. rtw_process_wfd_ie(adapter, wfd_ie, wfd_ielen, tag);
  1239. wfd_ie = rtw_get_wfd_ie(wfd_ie + wfd_ielen, (ies + ies_len) - (wfd_ie + wfd_ielen), NULL, &wfd_ielen);
  1240. }
  1241. }
  1242. #endif /* defined(CONFIG_P2P) && defined(CONFIG_WFD) */
  1243. int WMM_param_handler(_adapter *padapter, PNDIS_802_11_VARIABLE_IEs pIE)
  1244. {
  1245. /* struct registry_priv *pregpriv = &padapter->registrypriv; */
  1246. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1247. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1248. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1249. if (pmlmepriv->qospriv.qos_option == 0) {
  1250. pmlmeinfo->WMM_enable = 0;
  1251. return _FALSE;
  1252. }
  1253. if (_rtw_memcmp(&(pmlmeinfo->WMM_param), (pIE->data + 6), sizeof(struct WMM_para_element)))
  1254. return _FALSE;
  1255. else
  1256. _rtw_memcpy(&(pmlmeinfo->WMM_param), (pIE->data + 6), sizeof(struct WMM_para_element));
  1257. pmlmeinfo->WMM_enable = 1;
  1258. return _TRUE;
  1259. #if 0
  1260. if (pregpriv->wifi_spec == 1) {
  1261. if (pmlmeinfo->WMM_enable == 1) {
  1262. /* todo: compare the parameter set count & decide wheher to update or not */
  1263. return _FAIL;
  1264. } else {
  1265. pmlmeinfo->WMM_enable = 1;
  1266. _rtw_rtw_memcpy(&(pmlmeinfo->WMM_param), (pIE->data + 6), sizeof(struct WMM_para_element));
  1267. return _TRUE;
  1268. }
  1269. } else {
  1270. pmlmeinfo->WMM_enable = 0;
  1271. return _FAIL;
  1272. }
  1273. #endif
  1274. }
  1275. void WMMOnAssocRsp(_adapter *padapter)
  1276. {
  1277. u8 ACI, ACM, AIFS, ECWMin, ECWMax, aSifsTime;
  1278. u8 acm_mask;
  1279. u16 TXOP;
  1280. u32 acParm, i;
  1281. u32 edca[4], inx[4];
  1282. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1283. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1284. struct xmit_priv *pxmitpriv = &padapter->xmitpriv;
  1285. struct registry_priv *pregpriv = &padapter->registrypriv;
  1286. #ifdef CONFIG_WMMPS_STA
  1287. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1288. struct qos_priv *pqospriv = &pmlmepriv->qospriv;
  1289. #endif /* CONFIG_WMMPS_STA */
  1290. acm_mask = 0;
  1291. if (is_supported_5g(pmlmeext->cur_wireless_mode) ||
  1292. (pmlmeext->cur_wireless_mode & WIRELESS_11_24N))
  1293. aSifsTime = 16;
  1294. else
  1295. aSifsTime = 10;
  1296. if (pmlmeinfo->WMM_enable == 0) {
  1297. padapter->mlmepriv.acm_mask = 0;
  1298. AIFS = aSifsTime + (2 * pmlmeinfo->slotTime);
  1299. if (pmlmeext->cur_wireless_mode & (WIRELESS_11G | WIRELESS_11A)) {
  1300. ECWMin = 4;
  1301. ECWMax = 10;
  1302. } else if (pmlmeext->cur_wireless_mode & WIRELESS_11B) {
  1303. ECWMin = 5;
  1304. ECWMax = 10;
  1305. } else {
  1306. ECWMin = 4;
  1307. ECWMax = 10;
  1308. }
  1309. TXOP = 0;
  1310. acParm = AIFS | (ECWMin << 8) | (ECWMax << 12) | (TXOP << 16);
  1311. rtw_hal_set_hwreg(padapter, HW_VAR_AC_PARAM_BE, (u8 *)(&acParm));
  1312. rtw_hal_set_hwreg(padapter, HW_VAR_AC_PARAM_BK, (u8 *)(&acParm));
  1313. rtw_hal_set_hwreg(padapter, HW_VAR_AC_PARAM_VI, (u8 *)(&acParm));
  1314. ECWMin = 2;
  1315. ECWMax = 3;
  1316. TXOP = 0x2f;
  1317. acParm = AIFS | (ECWMin << 8) | (ECWMax << 12) | (TXOP << 16);
  1318. rtw_hal_set_hwreg(padapter, HW_VAR_AC_PARAM_VO, (u8 *)(&acParm));
  1319. } else {
  1320. edca[0] = edca[1] = edca[2] = edca[3] = 0;
  1321. for (i = 0; i < 4; i++) {
  1322. ACI = (pmlmeinfo->WMM_param.ac_param[i].ACI_AIFSN >> 5) & 0x03;
  1323. ACM = (pmlmeinfo->WMM_param.ac_param[i].ACI_AIFSN >> 4) & 0x01;
  1324. /* AIFS = AIFSN * slot time + SIFS - r2t phy delay */
  1325. AIFS = (pmlmeinfo->WMM_param.ac_param[i].ACI_AIFSN & 0x0f) * pmlmeinfo->slotTime + aSifsTime;
  1326. ECWMin = (pmlmeinfo->WMM_param.ac_param[i].CW & 0x0f);
  1327. ECWMax = (pmlmeinfo->WMM_param.ac_param[i].CW & 0xf0) >> 4;
  1328. TXOP = le16_to_cpu(pmlmeinfo->WMM_param.ac_param[i].TXOP_limit);
  1329. acParm = AIFS | (ECWMin << 8) | (ECWMax << 12) | (TXOP << 16);
  1330. switch (ACI) {
  1331. case 0x0:
  1332. rtw_hal_set_hwreg(padapter, HW_VAR_AC_PARAM_BE, (u8 *)(&acParm));
  1333. acm_mask |= (ACM ? BIT(1) : 0);
  1334. edca[XMIT_BE_QUEUE] = acParm;
  1335. break;
  1336. case 0x1:
  1337. rtw_hal_set_hwreg(padapter, HW_VAR_AC_PARAM_BK, (u8 *)(&acParm));
  1338. /* acm_mask |= (ACM? BIT(0):0); */
  1339. edca[XMIT_BK_QUEUE] = acParm;
  1340. break;
  1341. case 0x2:
  1342. rtw_hal_set_hwreg(padapter, HW_VAR_AC_PARAM_VI, (u8 *)(&acParm));
  1343. acm_mask |= (ACM ? BIT(2) : 0);
  1344. edca[XMIT_VI_QUEUE] = acParm;
  1345. break;
  1346. case 0x3:
  1347. rtw_hal_set_hwreg(padapter, HW_VAR_AC_PARAM_VO, (u8 *)(&acParm));
  1348. acm_mask |= (ACM ? BIT(3) : 0);
  1349. edca[XMIT_VO_QUEUE] = acParm;
  1350. break;
  1351. }
  1352. RTW_INFO("WMM(%x): %x, %x\n", ACI, ACM, acParm);
  1353. }
  1354. if (padapter->registrypriv.acm_method == 1)
  1355. rtw_hal_set_hwreg(padapter, HW_VAR_ACM_CTRL, (u8 *)(&acm_mask));
  1356. else
  1357. padapter->mlmepriv.acm_mask = acm_mask;
  1358. inx[0] = 0;
  1359. inx[1] = 1;
  1360. inx[2] = 2;
  1361. inx[3] = 3;
  1362. if (pregpriv->wifi_spec == 1) {
  1363. u32 j, tmp, change_inx = _FALSE;
  1364. /* entry indx: 0->vo, 1->vi, 2->be, 3->bk. */
  1365. for (i = 0; i < 4; i++) {
  1366. for (j = i + 1; j < 4; j++) {
  1367. /* compare CW and AIFS */
  1368. if ((edca[j] & 0xFFFF) < (edca[i] & 0xFFFF))
  1369. change_inx = _TRUE;
  1370. else if ((edca[j] & 0xFFFF) == (edca[i] & 0xFFFF)) {
  1371. /* compare TXOP */
  1372. if ((edca[j] >> 16) > (edca[i] >> 16))
  1373. change_inx = _TRUE;
  1374. }
  1375. if (change_inx) {
  1376. tmp = edca[i];
  1377. edca[i] = edca[j];
  1378. edca[j] = tmp;
  1379. tmp = inx[i];
  1380. inx[i] = inx[j];
  1381. inx[j] = tmp;
  1382. change_inx = _FALSE;
  1383. }
  1384. }
  1385. }
  1386. }
  1387. for (i = 0; i < 4; i++) {
  1388. pxmitpriv->wmm_para_seq[i] = inx[i];
  1389. RTW_INFO("wmm_para_seq(%d): %d\n", i, pxmitpriv->wmm_para_seq[i]);
  1390. }
  1391. #ifdef CONFIG_WMMPS_STA
  1392. /* if AP supports UAPSD function, driver must set each uapsd TID to coresponding mac register 0x693 */
  1393. if (pmlmeinfo->WMM_param.QoS_info & AP_SUPPORTED_UAPSD) {
  1394. pqospriv->uapsd_ap_supported = 1;
  1395. rtw_hal_set_hwreg(padapter, HW_VAR_UAPSD_TID, NULL);
  1396. }
  1397. #endif /* CONFIG_WMMPS_STA */
  1398. }
  1399. }
  1400. static void bwmode_update_check(_adapter *padapter, PNDIS_802_11_VARIABLE_IEs pIE)
  1401. {
  1402. #ifdef CONFIG_80211N_HT
  1403. unsigned char new_bwmode;
  1404. unsigned char new_ch_offset;
  1405. struct HT_info_element *pHT_info;
  1406. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  1407. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1408. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1409. struct registry_priv *pregistrypriv = &padapter->registrypriv;
  1410. struct ht_priv *phtpriv = &pmlmepriv->htpriv;
  1411. u8 cbw40_enable = 0;
  1412. if (!pIE)
  1413. return;
  1414. if (phtpriv->ht_option == _FALSE)
  1415. return;
  1416. if (pmlmeext->cur_bwmode >= CHANNEL_WIDTH_80)
  1417. return;
  1418. if (pIE->Length > sizeof(struct HT_info_element))
  1419. return;
  1420. pHT_info = (struct HT_info_element *)pIE->data;
  1421. if (hal_chk_bw_cap(padapter, BW_CAP_40M)) {
  1422. if (pmlmeext->cur_channel > 14) {
  1423. if (REGSTY_IS_BW_5G_SUPPORT(pregistrypriv, CHANNEL_WIDTH_40))
  1424. cbw40_enable = 1;
  1425. } else {
  1426. if (REGSTY_IS_BW_2G_SUPPORT(pregistrypriv, CHANNEL_WIDTH_40))
  1427. cbw40_enable = 1;
  1428. }
  1429. }
  1430. if ((pHT_info->infos[0] & BIT(2)) && cbw40_enable) {
  1431. new_bwmode = CHANNEL_WIDTH_40;
  1432. switch (pHT_info->infos[0] & 0x3) {
  1433. case 1:
  1434. new_ch_offset = HAL_PRIME_CHNL_OFFSET_LOWER;
  1435. break;
  1436. case 3:
  1437. new_ch_offset = HAL_PRIME_CHNL_OFFSET_UPPER;
  1438. break;
  1439. default:
  1440. new_bwmode = CHANNEL_WIDTH_20;
  1441. new_ch_offset = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
  1442. break;
  1443. }
  1444. } else {
  1445. new_bwmode = CHANNEL_WIDTH_20;
  1446. new_ch_offset = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
  1447. }
  1448. if ((new_bwmode != pmlmeext->cur_bwmode || new_ch_offset != pmlmeext->cur_ch_offset)
  1449. && new_bwmode < pmlmeext->cur_bwmode
  1450. ) {
  1451. pmlmeinfo->bwmode_updated = _TRUE;
  1452. pmlmeext->cur_bwmode = new_bwmode;
  1453. pmlmeext->cur_ch_offset = new_ch_offset;
  1454. /* update HT info also */
  1455. HT_info_handler(padapter, pIE);
  1456. } else
  1457. pmlmeinfo->bwmode_updated = _FALSE;
  1458. if (_TRUE == pmlmeinfo->bwmode_updated) {
  1459. struct sta_info *psta;
  1460. WLAN_BSSID_EX *cur_network = &(pmlmeinfo->network);
  1461. struct sta_priv *pstapriv = &padapter->stapriv;
  1462. /* set_channel_bwmode(padapter, pmlmeext->cur_channel, pmlmeext->cur_ch_offset, pmlmeext->cur_bwmode); */
  1463. /* update ap's stainfo */
  1464. psta = rtw_get_stainfo(pstapriv, cur_network->MacAddress);
  1465. if (psta) {
  1466. struct ht_priv *phtpriv_sta = &psta->htpriv;
  1467. if (phtpriv_sta->ht_option) {
  1468. /* bwmode */
  1469. psta->cmn.bw_mode = pmlmeext->cur_bwmode;
  1470. phtpriv_sta->ch_offset = pmlmeext->cur_ch_offset;
  1471. } else {
  1472. psta->cmn.bw_mode = CHANNEL_WIDTH_20;
  1473. phtpriv_sta->ch_offset = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
  1474. }
  1475. rtw_dm_ra_mask_wk_cmd(padapter, (u8 *)psta);
  1476. }
  1477. /* pmlmeinfo->bwmode_updated = _FALSE; */ /* bwmode_updated done, reset it! */
  1478. }
  1479. #endif /* CONFIG_80211N_HT */
  1480. }
  1481. #ifdef ROKU_PRIVATE
  1482. void Supported_rate_infra_ap(_adapter *padapter, PNDIS_802_11_VARIABLE_IEs pIE)
  1483. {
  1484. unsigned int i;
  1485. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1486. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1487. if (pIE == NULL)
  1488. return;
  1489. for (i = 0 ; i < pIE->Length; i++)
  1490. pmlmeinfo->SupportedRates_infra_ap[i] = (pIE->data[i]);
  1491. }
  1492. void Extended_Supported_rate_infra_ap(_adapter *padapter, PNDIS_802_11_VARIABLE_IEs pIE)
  1493. {
  1494. unsigned int i, j;
  1495. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1496. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1497. if (pIE == NULL)
  1498. return;
  1499. if (pIE->Length > 0) {
  1500. for (i = 0; i < NDIS_802_11_LENGTH_RATES_EX; i++) {
  1501. if (pmlmeinfo->SupportedRates_infra_ap[i] == 0)
  1502. break;
  1503. }
  1504. for (j = 0; j < pIE->Length; j++)
  1505. pmlmeinfo->SupportedRates_infra_ap[i+j] = (pIE->data[j]);
  1506. }
  1507. }
  1508. void HT_get_ss_from_mcs_set(u8 *mcs_set, u8 *Rx_ss)
  1509. {
  1510. u8 i, j;
  1511. u8 r_ss = 0, t_ss = 0;
  1512. for (i = 0; i < 4; i++) {
  1513. if ((mcs_set[3-i] & 0xff) != 0x00) {
  1514. r_ss = 4-i;
  1515. break;
  1516. }
  1517. }
  1518. *Rx_ss = r_ss;
  1519. }
  1520. void HT_caps_handler_infra_ap(_adapter *padapter, PNDIS_802_11_VARIABLE_IEs pIE)
  1521. {
  1522. unsigned int i;
  1523. u8 cur_stbc_cap_infra_ap = 0;
  1524. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  1525. struct ht_priv_infra_ap *phtpriv = &pmlmepriv->htpriv_infra_ap;
  1526. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1527. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1528. if (pIE == NULL)
  1529. return;
  1530. pmlmeinfo->ht_vht_received |= BIT(0);
  1531. /*copy MCS_SET*/
  1532. for (i = 3; i < 19; i++)
  1533. phtpriv->MCS_set_infra_ap[i-3] = (pIE->data[i]);
  1534. /*get number of stream from mcs set*/
  1535. HT_get_ss_from_mcs_set(phtpriv->MCS_set_infra_ap, &phtpriv->Rx_ss_infra_ap);
  1536. phtpriv->rx_highest_data_rate_infra_ap = le16_to_cpu(GET_HT_CAP_ELE_RX_HIGHEST_DATA_RATE(pIE->data));
  1537. phtpriv->ldpc_cap_infra_ap = GET_HT_CAP_ELE_LDPC_CAP(pIE->data);
  1538. if (GET_HT_CAP_ELE_RX_STBC(pIE->data))
  1539. SET_FLAG(cur_stbc_cap_infra_ap, STBC_HT_ENABLE_RX);
  1540. if (GET_HT_CAP_ELE_TX_STBC(pIE->data))
  1541. SET_FLAG(cur_stbc_cap_infra_ap, STBC_HT_ENABLE_TX);
  1542. phtpriv->stbc_cap_infra_ap = cur_stbc_cap_infra_ap;
  1543. /*store ap info SGI 20m 40m*/
  1544. phtpriv->sgi_20m_infra_ap = GET_HT_CAP_ELE_SHORT_GI20M(pIE->data);
  1545. phtpriv->sgi_40m_infra_ap = GET_HT_CAP_ELE_SHORT_GI40M(pIE->data);
  1546. /*store ap info for supported channel bandwidth*/
  1547. phtpriv->channel_width_infra_ap = GET_HT_CAP_ELE_CHL_WIDTH(pIE->data);
  1548. }
  1549. #endif /* ROKU_PRIVATE */
  1550. void HT_caps_handler(_adapter *padapter, PNDIS_802_11_VARIABLE_IEs pIE)
  1551. {
  1552. #ifdef CONFIG_80211N_HT
  1553. unsigned int i;
  1554. u8 rf_type = RF_1T1R;
  1555. u8 max_AMPDU_len, min_MPDU_spacing;
  1556. u8 cur_ldpc_cap = 0, cur_stbc_cap = 0, cur_beamform_cap = 0, tx_nss = 0;
  1557. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1558. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1559. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  1560. struct ht_priv *phtpriv = &pmlmepriv->htpriv;
  1561. #ifdef CONFIG_DISABLE_MCS13TO15
  1562. struct registry_priv *pregistrypriv = &padapter->registrypriv;
  1563. #endif
  1564. struct hal_spec_t *hal_spec = GET_HAL_SPEC(padapter);
  1565. if (pIE == NULL)
  1566. return;
  1567. if (phtpriv->ht_option == _FALSE)
  1568. return;
  1569. pmlmeinfo->HT_caps_enable = 1;
  1570. for (i = 0; i < (pIE->Length); i++) {
  1571. if (i != 2) {
  1572. /* Commented by Albert 2010/07/12 */
  1573. /* Got the endian issue here. */
  1574. pmlmeinfo->HT_caps.u.HT_cap[i] &= (pIE->data[i]);
  1575. } else {
  1576. /* AMPDU Parameters field */
  1577. /* Get MIN of MAX AMPDU Length Exp */
  1578. if ((pmlmeinfo->HT_caps.u.HT_cap_element.AMPDU_para & 0x3) > (pIE->data[i] & 0x3))
  1579. max_AMPDU_len = (pIE->data[i] & 0x3);
  1580. else
  1581. max_AMPDU_len = (pmlmeinfo->HT_caps.u.HT_cap_element.AMPDU_para & 0x3);
  1582. /* Get MAX of MIN MPDU Start Spacing */
  1583. if ((pmlmeinfo->HT_caps.u.HT_cap_element.AMPDU_para & 0x1c) > (pIE->data[i] & 0x1c))
  1584. min_MPDU_spacing = (pmlmeinfo->HT_caps.u.HT_cap_element.AMPDU_para & 0x1c);
  1585. else
  1586. min_MPDU_spacing = (pIE->data[i] & 0x1c);
  1587. pmlmeinfo->HT_caps.u.HT_cap_element.AMPDU_para = max_AMPDU_len | min_MPDU_spacing;
  1588. }
  1589. }
  1590. /* Commented by Albert 2010/07/12 */
  1591. /* Have to handle the endian issue after copying. */
  1592. /* HT_ext_caps didn't be used yet. */
  1593. pmlmeinfo->HT_caps.u.HT_cap_element.HT_caps_info = le16_to_cpu(pmlmeinfo->HT_caps.u.HT_cap_element.HT_caps_info);
  1594. pmlmeinfo->HT_caps.u.HT_cap_element.HT_ext_caps = le16_to_cpu(pmlmeinfo->HT_caps.u.HT_cap_element.HT_ext_caps);
  1595. /* update the MCS set */
  1596. for (i = 0; i < 16; i++)
  1597. pmlmeinfo->HT_caps.u.HT_cap_element.MCS_rate[i] &= pmlmeext->default_supported_mcs_set[i];
  1598. rtw_hal_get_hwreg(padapter, HW_VAR_RF_TYPE, (u8 *)(&rf_type));
  1599. tx_nss = rtw_min(rf_type_to_rf_tx_cnt(rf_type), hal_spec->tx_nss_num);
  1600. switch (tx_nss) {
  1601. case 1:
  1602. set_mcs_rate_by_mask(pmlmeinfo->HT_caps.u.HT_cap_element.MCS_rate, MCS_RATE_1R);
  1603. break;
  1604. case 2:
  1605. #ifdef CONFIG_DISABLE_MCS13TO15
  1606. if (pmlmeext->cur_bwmode == CHANNEL_WIDTH_40 && pregistrypriv->wifi_spec != 1)
  1607. set_mcs_rate_by_mask(pmlmeinfo->HT_caps.u.HT_cap_element.MCS_rate, MCS_RATE_2R_13TO15_OFF);
  1608. else
  1609. #endif
  1610. set_mcs_rate_by_mask(pmlmeinfo->HT_caps.u.HT_cap_element.MCS_rate, MCS_RATE_2R);
  1611. break;
  1612. case 3:
  1613. set_mcs_rate_by_mask(pmlmeinfo->HT_caps.u.HT_cap_element.MCS_rate, MCS_RATE_3R);
  1614. break;
  1615. case 4:
  1616. set_mcs_rate_by_mask(pmlmeinfo->HT_caps.u.HT_cap_element.MCS_rate, MCS_RATE_4R);
  1617. break;
  1618. default:
  1619. RTW_WARN("rf_type:%d or tx_nss:%u is not expected\n", rf_type, hal_spec->tx_nss_num);
  1620. }
  1621. if (check_fwstate(pmlmepriv, WIFI_AP_STATE)) {
  1622. /* Config STBC setting */
  1623. if (TEST_FLAG(phtpriv->stbc_cap, STBC_HT_ENABLE_TX) && GET_HT_CAP_ELE_RX_STBC(pIE->data)) {
  1624. SET_FLAG(cur_stbc_cap, STBC_HT_ENABLE_TX);
  1625. RTW_INFO("Enable HT Tx STBC !\n");
  1626. }
  1627. phtpriv->stbc_cap = cur_stbc_cap;
  1628. #ifdef CONFIG_BEAMFORMING
  1629. /* Config Tx beamforming setting */
  1630. if (TEST_FLAG(phtpriv->beamform_cap, BEAMFORMING_HT_BEAMFORMER_ENABLE) &&
  1631. GET_HT_CAP_TXBF_EXPLICIT_COMP_STEERING_CAP(pIE->data)) {
  1632. SET_FLAG(cur_beamform_cap, BEAMFORMING_HT_BEAMFORMER_ENABLE);
  1633. /* Shift to BEAMFORMING_HT_BEAMFORMEE_CHNL_EST_CAP*/
  1634. SET_FLAG(cur_beamform_cap, GET_HT_CAP_TXBF_CHNL_ESTIMATION_NUM_ANTENNAS(pIE->data) << 6);
  1635. }
  1636. if (TEST_FLAG(phtpriv->beamform_cap, BEAMFORMING_HT_BEAMFORMEE_ENABLE) &&
  1637. GET_HT_CAP_TXBF_EXPLICIT_COMP_FEEDBACK_CAP(pIE->data)) {
  1638. SET_FLAG(cur_beamform_cap, BEAMFORMING_HT_BEAMFORMEE_ENABLE);
  1639. /* Shift to BEAMFORMING_HT_BEAMFORMER_STEER_NUM*/
  1640. SET_FLAG(cur_beamform_cap, GET_HT_CAP_TXBF_COMP_STEERING_NUM_ANTENNAS(pIE->data) << 4);
  1641. }
  1642. phtpriv->beamform_cap = cur_beamform_cap;
  1643. if (cur_beamform_cap)
  1644. RTW_INFO("AP HT Beamforming Cap = 0x%02X\n", cur_beamform_cap);
  1645. #endif /*CONFIG_BEAMFORMING*/
  1646. } else {
  1647. /*WIFI_STATION_STATEorI_ADHOC_STATE or WIFI_ADHOC_MASTER_STATE*/
  1648. /* Config LDPC Coding Capability */
  1649. if (TEST_FLAG(phtpriv->ldpc_cap, LDPC_HT_ENABLE_TX) && GET_HT_CAP_ELE_LDPC_CAP(pIE->data)) {
  1650. SET_FLAG(cur_ldpc_cap, (LDPC_HT_ENABLE_TX | LDPC_HT_CAP_TX));
  1651. RTW_INFO("Enable HT Tx LDPC!\n");
  1652. }
  1653. phtpriv->ldpc_cap = cur_ldpc_cap;
  1654. /* Config STBC setting */
  1655. if (TEST_FLAG(phtpriv->stbc_cap, STBC_HT_ENABLE_TX) && GET_HT_CAP_ELE_RX_STBC(pIE->data)) {
  1656. SET_FLAG(cur_stbc_cap, (STBC_HT_ENABLE_TX | STBC_HT_CAP_TX));
  1657. RTW_INFO("Enable HT Tx STBC!\n");
  1658. }
  1659. phtpriv->stbc_cap = cur_stbc_cap;
  1660. #ifdef CONFIG_BEAMFORMING
  1661. #ifdef RTW_BEAMFORMING_VERSION_2
  1662. /* Config beamforming setting */
  1663. if (TEST_FLAG(phtpriv->beamform_cap, BEAMFORMING_HT_BEAMFORMEE_ENABLE) &&
  1664. GET_HT_CAP_TXBF_EXPLICIT_COMP_STEERING_CAP(pIE->data)) {
  1665. SET_FLAG(cur_beamform_cap, BEAMFORMING_HT_BEAMFORMEE_ENABLE);
  1666. /* Shift to BEAMFORMING_HT_BEAMFORMEE_CHNL_EST_CAP*/
  1667. SET_FLAG(cur_beamform_cap, GET_HT_CAP_TXBF_CHNL_ESTIMATION_NUM_ANTENNAS(pIE->data) << 6);
  1668. }
  1669. if (TEST_FLAG(phtpriv->beamform_cap, BEAMFORMING_HT_BEAMFORMER_ENABLE) &&
  1670. GET_HT_CAP_TXBF_EXPLICIT_COMP_FEEDBACK_CAP(pIE->data)) {
  1671. SET_FLAG(cur_beamform_cap, BEAMFORMING_HT_BEAMFORMER_ENABLE);
  1672. /* Shift to BEAMFORMING_HT_BEAMFORMER_STEER_NUM*/
  1673. SET_FLAG(cur_beamform_cap, GET_HT_CAP_TXBF_COMP_STEERING_NUM_ANTENNAS(pIE->data) << 4);
  1674. }
  1675. #else /* !RTW_BEAMFORMING_VERSION_2 */
  1676. /* Config Tx beamforming setting */
  1677. if (TEST_FLAG(phtpriv->beamform_cap, BEAMFORMING_HT_BEAMFORMEE_ENABLE) &&
  1678. GET_HT_CAP_TXBF_EXPLICIT_COMP_STEERING_CAP(pIE->data)) {
  1679. SET_FLAG(cur_beamform_cap, BEAMFORMING_HT_BEAMFORMER_ENABLE);
  1680. /* Shift to BEAMFORMING_HT_BEAMFORMEE_CHNL_EST_CAP*/
  1681. SET_FLAG(cur_beamform_cap, GET_HT_CAP_TXBF_CHNL_ESTIMATION_NUM_ANTENNAS(pIE->data) << 6);
  1682. }
  1683. if (TEST_FLAG(phtpriv->beamform_cap, BEAMFORMING_HT_BEAMFORMER_ENABLE) &&
  1684. GET_HT_CAP_TXBF_EXPLICIT_COMP_FEEDBACK_CAP(pIE->data)) {
  1685. SET_FLAG(cur_beamform_cap, BEAMFORMING_HT_BEAMFORMEE_ENABLE);
  1686. /* Shift to BEAMFORMING_HT_BEAMFORMER_STEER_NUM*/
  1687. SET_FLAG(cur_beamform_cap, GET_HT_CAP_TXBF_COMP_STEERING_NUM_ANTENNAS(pIE->data) << 4);
  1688. }
  1689. #endif /* !RTW_BEAMFORMING_VERSION_2 */
  1690. phtpriv->beamform_cap = cur_beamform_cap;
  1691. if (cur_beamform_cap)
  1692. RTW_INFO("Client HT Beamforming Cap = 0x%02X\n", cur_beamform_cap);
  1693. #endif /*CONFIG_BEAMFORMING*/
  1694. }
  1695. #endif /* CONFIG_80211N_HT */
  1696. }
  1697. void HT_info_handler(_adapter *padapter, PNDIS_802_11_VARIABLE_IEs pIE)
  1698. {
  1699. #ifdef CONFIG_80211N_HT
  1700. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1701. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1702. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  1703. struct ht_priv *phtpriv = &pmlmepriv->htpriv;
  1704. if (pIE == NULL)
  1705. return;
  1706. if (phtpriv->ht_option == _FALSE)
  1707. return;
  1708. if (pIE->Length > sizeof(struct HT_info_element))
  1709. return;
  1710. pmlmeinfo->HT_info_enable = 1;
  1711. _rtw_memcpy(&(pmlmeinfo->HT_info), pIE->data, pIE->Length);
  1712. #endif /* CONFIG_80211N_HT */
  1713. return;
  1714. }
  1715. void HTOnAssocRsp(_adapter *padapter)
  1716. {
  1717. unsigned char max_AMPDU_len;
  1718. unsigned char min_MPDU_spacing;
  1719. /* struct registry_priv *pregpriv = &padapter->registrypriv; */
  1720. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1721. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1722. RTW_INFO("%s\n", __FUNCTION__);
  1723. if ((pmlmeinfo->HT_info_enable) && (pmlmeinfo->HT_caps_enable))
  1724. pmlmeinfo->HT_enable = 1;
  1725. else {
  1726. pmlmeinfo->HT_enable = 0;
  1727. /* set_channel_bwmode(padapter, pmlmeext->cur_channel, pmlmeext->cur_ch_offset, pmlmeext->cur_bwmode); */
  1728. return;
  1729. }
  1730. /* handle A-MPDU parameter field */
  1731. /*
  1732. AMPDU_para [1:0]:Max AMPDU Len => 0:8k , 1:16k, 2:32k, 3:64k
  1733. AMPDU_para [4:2]:Min MPDU Start Spacing
  1734. */
  1735. max_AMPDU_len = pmlmeinfo->HT_caps.u.HT_cap_element.AMPDU_para & 0x03;
  1736. min_MPDU_spacing = (pmlmeinfo->HT_caps.u.HT_cap_element.AMPDU_para & 0x1c) >> 2;
  1737. rtw_hal_set_hwreg(padapter, HW_VAR_AMPDU_MIN_SPACE, (u8 *)(&min_MPDU_spacing));
  1738. #ifdef CONFIG_80211N_HT
  1739. rtw_hal_set_hwreg(padapter, HW_VAR_AMPDU_FACTOR, (u8 *)(&max_AMPDU_len));
  1740. #endif /* CONFIG_80211N_HT */
  1741. #if 0 /* move to rtw_update_ht_cap() */
  1742. if ((pregpriv->bw_mode > 0) &&
  1743. (pmlmeinfo->HT_caps.u.HT_cap_element.HT_caps_info & BIT(1)) &&
  1744. (pmlmeinfo->HT_info.infos[0] & BIT(2))) {
  1745. /* switch to the 40M Hz mode accoring to the AP */
  1746. pmlmeext->cur_bwmode = CHANNEL_WIDTH_40;
  1747. switch ((pmlmeinfo->HT_info.infos[0] & 0x3)) {
  1748. case EXTCHNL_OFFSET_UPPER:
  1749. pmlmeext->cur_ch_offset = HAL_PRIME_CHNL_OFFSET_LOWER;
  1750. break;
  1751. case EXTCHNL_OFFSET_LOWER:
  1752. pmlmeext->cur_ch_offset = HAL_PRIME_CHNL_OFFSET_UPPER;
  1753. break;
  1754. default:
  1755. pmlmeext->cur_ch_offset = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
  1756. break;
  1757. }
  1758. }
  1759. #endif
  1760. /* set_channel_bwmode(padapter, pmlmeext->cur_channel, pmlmeext->cur_ch_offset, pmlmeext->cur_bwmode); */
  1761. #if 0 /* move to rtw_update_ht_cap() */
  1762. /* */
  1763. /* Config SM Power Save setting */
  1764. /* */
  1765. pmlmeinfo->SM_PS = (pmlmeinfo->HT_caps.u.HT_cap_element.HT_caps_info & 0x0C) >> 2;
  1766. if (pmlmeinfo->SM_PS == WLAN_HT_CAP_SM_PS_STATIC) {
  1767. #if 0
  1768. u8 i;
  1769. /* update the MCS rates */
  1770. for (i = 0; i < 16; i++)
  1771. pmlmeinfo->HT_caps.HT_cap_element.MCS_rate[i] &= MCS_rate_1R[i];
  1772. #endif
  1773. RTW_INFO("%s(): WLAN_HT_CAP_SM_PS_STATIC\n", __FUNCTION__);
  1774. }
  1775. /* */
  1776. /* Config current HT Protection mode. */
  1777. /* */
  1778. pmlmeinfo->HT_protection = pmlmeinfo->HT_info.infos[1] & 0x3;
  1779. #endif
  1780. }
  1781. void ERP_IE_handler(_adapter *padapter, PNDIS_802_11_VARIABLE_IEs pIE)
  1782. {
  1783. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1784. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1785. if (pIE->Length > 1)
  1786. return;
  1787. pmlmeinfo->ERP_enable = 1;
  1788. _rtw_memcpy(&(pmlmeinfo->ERP_IE), pIE->data, pIE->Length);
  1789. }
  1790. void VCS_update(_adapter *padapter, struct sta_info *psta)
  1791. {
  1792. struct registry_priv *pregpriv = &padapter->registrypriv;
  1793. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  1794. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  1795. switch (pregpriv->vrtl_carrier_sense) { /* 0:off 1:on 2:auto */
  1796. case 0: /* off */
  1797. psta->rtsen = 0;
  1798. psta->cts2self = 0;
  1799. break;
  1800. case 1: /* on */
  1801. if (pregpriv->vcs_type == 1) { /* 1:RTS/CTS 2:CTS to self */
  1802. psta->rtsen = 1;
  1803. psta->cts2self = 0;
  1804. } else {
  1805. psta->rtsen = 0;
  1806. psta->cts2self = 1;
  1807. }
  1808. break;
  1809. case 2: /* auto */
  1810. default:
  1811. if (((pmlmeinfo->ERP_enable) && (pmlmeinfo->ERP_IE & BIT(1)))
  1812. /*||(pmlmepriv->ht_op_mode & HT_INFO_OPERATION_MODE_NON_GF_DEVS_PRESENT)*/
  1813. ) {
  1814. if (pregpriv->vcs_type == 1) {
  1815. psta->rtsen = 1;
  1816. psta->cts2self = 0;
  1817. } else {
  1818. psta->rtsen = 0;
  1819. psta->cts2self = 1;
  1820. }
  1821. } else {
  1822. psta->rtsen = 0;
  1823. psta->cts2self = 0;
  1824. }
  1825. break;
  1826. }
  1827. }
  1828. void update_ldpc_stbc_cap(struct sta_info *psta)
  1829. {
  1830. #ifdef CONFIG_80211N_HT
  1831. #ifdef CONFIG_80211AC_VHT
  1832. if (psta->vhtpriv.vht_option) {
  1833. if (TEST_FLAG(psta->vhtpriv.ldpc_cap, LDPC_VHT_ENABLE_TX))
  1834. psta->cmn.ldpc_en = VHT_LDPC_EN;
  1835. else
  1836. psta->cmn.ldpc_en = 0;
  1837. if (TEST_FLAG(psta->vhtpriv.stbc_cap, STBC_VHT_ENABLE_TX))
  1838. psta->cmn.stbc_en = VHT_STBC_EN;
  1839. else
  1840. psta->cmn.stbc_en = 0;
  1841. } else
  1842. #endif /* CONFIG_80211AC_VHT */
  1843. if (psta->htpriv.ht_option) {
  1844. if (TEST_FLAG(psta->htpriv.ldpc_cap, LDPC_HT_ENABLE_TX))
  1845. psta->cmn.ldpc_en = HT_LDPC_EN;
  1846. else
  1847. psta->cmn.ldpc_en = 0;
  1848. if (TEST_FLAG(psta->htpriv.stbc_cap, STBC_HT_ENABLE_TX))
  1849. psta->cmn.stbc_en = HT_STBC_EN;
  1850. else
  1851. psta->cmn.stbc_en = 0;
  1852. } else {
  1853. psta->cmn.ldpc_en = 0;
  1854. psta->cmn.stbc_en = 0;
  1855. }
  1856. #endif /* CONFIG_80211N_HT */
  1857. }
  1858. int check_ielen(u8 *start, uint len)
  1859. {
  1860. int left = len;
  1861. u8 *pos = start;
  1862. u8 id, elen;
  1863. while (left >= 2) {
  1864. id = *pos++;
  1865. elen = *pos++;
  1866. left -= 2;
  1867. if (elen > left) {
  1868. RTW_INFO("IEEE 802.11 element parse failed (id=%d elen=%d left=%lu)\n",
  1869. id, elen, (unsigned long) left);
  1870. return _FALSE;
  1871. }
  1872. if ((id == WLAN_EID_VENDOR_SPECIFIC) && (elen < 3))
  1873. return _FALSE;
  1874. left -= elen;
  1875. pos += elen;
  1876. }
  1877. if (left)
  1878. return _FALSE;
  1879. return _TRUE;
  1880. }
  1881. int validate_beacon_len(u8 *pframe, u32 len)
  1882. {
  1883. u8 ie_offset = _BEACON_IE_OFFSET_ + sizeof(struct rtw_ieee80211_hdr_3addr);
  1884. if (len < ie_offset) {
  1885. RTW_INFO("%s: incorrect beacon length(%d)\n", __func__, len);
  1886. return _FALSE;
  1887. }
  1888. if (check_ielen(pframe + ie_offset, len - ie_offset) == _FALSE)
  1889. return _FALSE;
  1890. return _TRUE;
  1891. }
  1892. u8 support_rate_ranges[] = {
  1893. IEEE80211_CCK_RATE_1MB,
  1894. IEEE80211_CCK_RATE_2MB,
  1895. IEEE80211_CCK_RATE_5MB,
  1896. IEEE80211_CCK_RATE_11MB,
  1897. IEEE80211_OFDM_RATE_6MB,
  1898. IEEE80211_OFDM_RATE_9MB,
  1899. IEEE80211_OFDM_RATE_12MB,
  1900. IEEE80211_OFDM_RATE_18MB,
  1901. IEEE80211_OFDM_RATE_24MB,
  1902. IEEE80211_OFDM_RATE_36MB,
  1903. IEEE80211_OFDM_RATE_48MB,
  1904. IEEE80211_OFDM_RATE_54MB,
  1905. IEEE80211_PBCC_RATE_22MB,
  1906. IEEE80211_PBCC_RATE_33MB
  1907. };
  1908. inline bool match_ranges(u16 EID, u32 value)
  1909. {
  1910. int i;
  1911. int nr_range;
  1912. switch (EID) {
  1913. case _EXT_SUPPORTEDRATES_IE_:
  1914. case _SUPPORTEDRATES_IE_:
  1915. nr_range = sizeof(support_rate_ranges)/sizeof(u8);
  1916. for (i = 0; i < nr_range; i++) {
  1917. /* clear bit7 before searching. */
  1918. value &= ~BIT(7);
  1919. if (value == support_rate_ranges[i])
  1920. return _TRUE;
  1921. }
  1922. break;
  1923. default:
  1924. break;
  1925. };
  1926. return _FALSE;
  1927. }
  1928. /*
  1929. * rtw_validate_value: validate the IE contain.
  1930. *
  1931. * Input :
  1932. * EID : Element ID
  1933. * p : IE buffer (without EID & length)
  1934. * len : IE length
  1935. * return:
  1936. * _TRUE : All Values are validated.
  1937. * _FALSE : At least one value is NOT validated.
  1938. */
  1939. bool rtw_validate_value(u16 EID, u8 *p, u16 len)
  1940. {
  1941. u8 rate;
  1942. u32 i, nr_val;
  1943. switch (EID) {
  1944. case _EXT_SUPPORTEDRATES_IE_:
  1945. case _SUPPORTEDRATES_IE_:
  1946. nr_val = len;
  1947. for (i=0; i<nr_val; i++) {
  1948. rate = *(p+i);
  1949. if (match_ranges(EID, rate) == _FALSE)
  1950. return _FALSE;
  1951. }
  1952. break;
  1953. default:
  1954. break;
  1955. };
  1956. return _TRUE;
  1957. }
  1958. inline bool hidden_ssid_ap(WLAN_BSSID_EX *snetwork)
  1959. {
  1960. return ((snetwork->Ssid.SsidLength == 0) ||
  1961. is_all_null(snetwork->Ssid.Ssid, snetwork->Ssid.SsidLength) == _TRUE);
  1962. }
  1963. /*
  1964. Get SSID if this ilegal frame(probe resp) comes from a hidden SSID AP.
  1965. Update the SSID to the corresponding pnetwork in scan queue.
  1966. */
  1967. void rtw_absorb_ssid_ifneed(_adapter *padapter, WLAN_BSSID_EX *bssid, u8 *pframe)
  1968. {
  1969. struct wlan_network *scanned = NULL;
  1970. WLAN_BSSID_EX *snetwork;
  1971. u8 ie_offset, *p=NULL, *next_ie=NULL, *mac = get_addr2_ptr(pframe);
  1972. sint len, ssid_len_ori;
  1973. u32 remain_len = 0;
  1974. u8 backupIE[MAX_IE_SZ];
  1975. u16 subtype = get_frame_sub_type(pframe);
  1976. _irqL irqL;
  1977. if ((!bssid) || (!pframe))
  1978. return;
  1979. if (subtype == WIFI_BEACON) {
  1980. bssid->Reserved[0] = BSS_TYPE_BCN;
  1981. ie_offset = _BEACON_IE_OFFSET_;
  1982. } else {
  1983. /* FIXME : more type */
  1984. if (subtype == WIFI_PROBERSP) {
  1985. ie_offset = _PROBERSP_IE_OFFSET_;
  1986. bssid->Reserved[0] = BSS_TYPE_PROB_RSP;
  1987. } else if (subtype == WIFI_PROBEREQ) {
  1988. ie_offset = _PROBEREQ_IE_OFFSET_;
  1989. bssid->Reserved[0] = BSS_TYPE_PROB_REQ;
  1990. } else {
  1991. bssid->Reserved[0] = BSS_TYPE_UNDEF;
  1992. ie_offset = _FIXED_IE_LENGTH_;
  1993. }
  1994. }
  1995. _enter_critical_bh(&padapter->mlmepriv.scanned_queue.lock, &irqL);
  1996. scanned = _rtw_find_network(&padapter->mlmepriv.scanned_queue, mac);
  1997. if (!scanned) {
  1998. _exit_critical_bh(&padapter->mlmepriv.scanned_queue.lock, &irqL);
  1999. return;
  2000. }
  2001. snetwork = &(scanned->network);
  2002. /* scan queue records as Hidden SSID && Input frame is NOT Hidden SSID */
  2003. if (hidden_ssid_ap(snetwork) && !hidden_ssid_ap(bssid)) {
  2004. p = rtw_get_ie(snetwork->IEs+ie_offset, _SSID_IE_, &ssid_len_ori, snetwork->IELength-ie_offset);
  2005. if (!p) {
  2006. _exit_critical_bh(&padapter->mlmepriv.scanned_queue.lock, &irqL);
  2007. return;
  2008. }
  2009. next_ie = p + 2 + ssid_len_ori;
  2010. remain_len = snetwork->IELength - (next_ie - snetwork->IEs);
  2011. scanned->network.Ssid.SsidLength = bssid->Ssid.SsidLength;
  2012. _rtw_memcpy(scanned->network.Ssid.Ssid, bssid->Ssid.Ssid, bssid->Ssid.SsidLength);
  2013. //update pnetwork->ssid, pnetwork->ssidlen
  2014. _rtw_memcpy(backupIE, next_ie, remain_len);
  2015. *(p+1) = bssid->Ssid.SsidLength;
  2016. _rtw_memcpy(p+2, bssid->Ssid.Ssid, bssid->Ssid.SsidLength);
  2017. _rtw_memcpy(p+2+bssid->Ssid.SsidLength, backupIE, remain_len);
  2018. snetwork->IELength += bssid->Ssid.SsidLength;
  2019. }
  2020. _exit_critical_bh(&padapter->mlmepriv.scanned_queue.lock, &irqL);
  2021. }
  2022. #ifdef DBG_RX_BCN
  2023. void rtw_debug_rx_bcn(_adapter *adapter, u8 *pframe, u32 packet_len)
  2024. {
  2025. struct mlme_ext_priv *pmlmeext = &adapter->mlmeextpriv;
  2026. struct mlme_ext_info *mlmeinfo = &(pmlmeext->mlmext_info);
  2027. u16 sn = ((struct rtw_ieee80211_hdr_3addr *)pframe)->seq_ctl >> 4;
  2028. u64 tsf, tsf_offset;
  2029. u8 dtim_cnt, dtim_period, tim_bmap, tim_pvbit;
  2030. update_TSF(pmlmeext, pframe, packet_len);
  2031. tsf = pmlmeext->TSFValue;
  2032. tsf_offset = rtw_modular64(pmlmeext->TSFValue, (mlmeinfo->bcn_interval * 1024));
  2033. /*get TIM IE*/
  2034. /*DTIM Count*/
  2035. dtim_cnt = pmlmeext->tim[0];
  2036. /*DTIM Period*/
  2037. dtim_period = pmlmeext->tim[1];
  2038. /*Bitmap*/
  2039. tim_bmap = pmlmeext->tim[2];
  2040. /*Partial VBitmap AID 0 ~ 7*/
  2041. tim_pvbit = pmlmeext->tim[3];
  2042. RTW_INFO("[BCN] SN-%d, TSF-%lld(us), offset-%lld, bcn_interval-%d DTIM-%d[%d] bitmap-0x%02x-0x%02x\n",
  2043. sn, tsf, tsf_offset, mlmeinfo->bcn_interval, dtim_period, dtim_cnt, tim_bmap, tim_pvbit);
  2044. }
  2045. #endif
  2046. /*
  2047. * rtw_get_bcn_keys: get beacon keys from recv frame
  2048. *
  2049. * TODO:
  2050. * WLAN_EID_COUNTRY
  2051. * WLAN_EID_ERP_INFO
  2052. * WLAN_EID_CHANNEL_SWITCH
  2053. * WLAN_EID_PWR_CONSTRAINT
  2054. */
  2055. int rtw_get_bcn_keys(ADAPTER *Adapter, u8 *pframe, u32 packet_len,
  2056. struct beacon_keys *recv_beacon)
  2057. {
  2058. int left;
  2059. u16 capability;
  2060. unsigned char *pos;
  2061. struct rtw_ieee802_11_elems elems;
  2062. struct rtw_ieee80211_ht_cap *pht_cap = NULL;
  2063. struct HT_info_element *pht_info = NULL;
  2064. _rtw_memset(recv_beacon, 0, sizeof(*recv_beacon));
  2065. /* checking capabilities */
  2066. capability = le16_to_cpu(*(unsigned short *)(pframe + WLAN_HDR_A3_LEN + 10));
  2067. /* checking IEs */
  2068. left = packet_len - sizeof(struct rtw_ieee80211_hdr_3addr) - _BEACON_IE_OFFSET_;
  2069. pos = pframe + sizeof(struct rtw_ieee80211_hdr_3addr) + _BEACON_IE_OFFSET_;
  2070. if (rtw_ieee802_11_parse_elems(pos, left, &elems, 1) == ParseFailed)
  2071. return _FALSE;
  2072. /* check bw and channel offset */
  2073. if (elems.ht_capabilities) {
  2074. if (elems.ht_capabilities_len != sizeof(*pht_cap))
  2075. return _FALSE;
  2076. pht_cap = (struct rtw_ieee80211_ht_cap *) elems.ht_capabilities;
  2077. recv_beacon->ht_cap_info = pht_cap->cap_info;
  2078. }
  2079. if (elems.ht_operation) {
  2080. if (elems.ht_operation_len != sizeof(*pht_info))
  2081. return _FALSE;
  2082. pht_info = (struct HT_info_element *) elems.ht_operation;
  2083. recv_beacon->ht_info_infos_0_sco = pht_info->infos[0] & 0x03;
  2084. }
  2085. /* Checking for channel */
  2086. if (elems.ds_params && elems.ds_params_len == sizeof(recv_beacon->bcn_channel))
  2087. _rtw_memcpy(&recv_beacon->bcn_channel, elems.ds_params,
  2088. sizeof(recv_beacon->bcn_channel));
  2089. else if (pht_info)
  2090. /* In 5G, some ap do not have DSSET IE checking HT info for channel */
  2091. recv_beacon->bcn_channel = pht_info->primary_channel;
  2092. else {
  2093. /* we don't find channel IE, so don't check it */
  2094. /* RTW_INFO("Oops: %s we don't find channel IE, so don't check it\n", __func__); */
  2095. recv_beacon->bcn_channel = Adapter->mlmeextpriv.cur_channel;
  2096. }
  2097. /* checking SSID */
  2098. if (elems.ssid) {
  2099. if (elems.ssid_len > sizeof(recv_beacon->ssid))
  2100. return _FALSE;
  2101. _rtw_memcpy(recv_beacon->ssid, elems.ssid, elems.ssid_len);
  2102. recv_beacon->ssid_len = elems.ssid_len;
  2103. } else
  2104. ; /* means hidden ssid */
  2105. /* checking RSN first */
  2106. if (elems.rsn_ie && elems.rsn_ie_len) {
  2107. recv_beacon->encryp_protocol = ENCRYP_PROTOCOL_WPA2;
  2108. rtw_parse_wpa2_ie(elems.rsn_ie - 2, elems.rsn_ie_len + 2,
  2109. &recv_beacon->group_cipher, &recv_beacon->pairwise_cipher,
  2110. &recv_beacon->is_8021x, NULL);
  2111. }
  2112. /* checking WPA secon */
  2113. else if (elems.wpa_ie && elems.wpa_ie_len) {
  2114. recv_beacon->encryp_protocol = ENCRYP_PROTOCOL_WPA;
  2115. rtw_parse_wpa_ie(elems.wpa_ie - 2, elems.wpa_ie_len + 2,
  2116. &recv_beacon->group_cipher, &recv_beacon->pairwise_cipher,
  2117. &recv_beacon->is_8021x);
  2118. } else if (capability & BIT(4))
  2119. recv_beacon->encryp_protocol = ENCRYP_PROTOCOL_WEP;
  2120. if (elems.tim && elems.tim_len) {
  2121. struct mlme_ext_priv *pmlmeext = &Adapter->mlmeextpriv;
  2122. #ifdef DBG_RX_BCN
  2123. _rtw_memcpy(pmlmeext->tim, elems.tim, 4);
  2124. #endif
  2125. pmlmeext->dtim = elems.tim[1];
  2126. }
  2127. return _TRUE;
  2128. }
  2129. void rtw_dump_bcn_keys(struct beacon_keys *recv_beacon)
  2130. {
  2131. u8 ssid[IW_ESSID_MAX_SIZE + 1];
  2132. _rtw_memcpy(ssid, recv_beacon->ssid, recv_beacon->ssid_len);
  2133. ssid[recv_beacon->ssid_len] = '\0';
  2134. RTW_INFO("%s: ssid = %s\n", __func__, ssid);
  2135. RTW_INFO("%s: channel = %d\n", __func__, recv_beacon->bcn_channel);
  2136. RTW_INFO("%s: ht_cap = 0x%04x\n", __func__, recv_beacon->ht_cap_info);
  2137. RTW_INFO("%s: ht_info_infos_0_sco = 0x%02x\n", __func__, recv_beacon->ht_info_infos_0_sco);
  2138. RTW_INFO("%s: sec=%d, group = %x, pair = %x, 8021X = %x\n", __func__,
  2139. recv_beacon->encryp_protocol, recv_beacon->group_cipher,
  2140. recv_beacon->pairwise_cipher, recv_beacon->is_8021x);
  2141. }
  2142. #define DBG_BCN_CNT
  2143. int rtw_check_bcn_info(ADAPTER *Adapter, u8 *pframe, u32 packet_len)
  2144. {
  2145. unsigned int len;
  2146. u8 *pbssid = GetAddr3Ptr(pframe);
  2147. struct mlme_priv *pmlmepriv = &Adapter->mlmepriv;
  2148. struct wlan_network *cur_network = &(Adapter->mlmepriv.cur_network);
  2149. struct beacon_keys recv_beacon;
  2150. if (is_client_associated_to_ap(Adapter) == _FALSE)
  2151. return _TRUE;
  2152. len = packet_len - sizeof(struct rtw_ieee80211_hdr_3addr);
  2153. if (len > MAX_IE_SZ) {
  2154. RTW_WARN("%s IE too long for survey event\n", __func__);
  2155. return _FAIL;
  2156. }
  2157. if (_rtw_memcmp(cur_network->network.MacAddress, pbssid, 6) == _FALSE) {
  2158. RTW_WARN("Oops: rtw_check_network_encrypt linked but recv other bssid bcn\n" MAC_FMT MAC_FMT,
  2159. MAC_ARG(pbssid), MAC_ARG(cur_network->network.MacAddress));
  2160. return _TRUE;
  2161. }
  2162. if (rtw_get_bcn_keys(Adapter, pframe, packet_len, &recv_beacon) == _FALSE)
  2163. return _TRUE; /* parsing failed => broken IE */
  2164. #ifdef DBG_RX_BCN
  2165. rtw_debug_bcn(Adapter, pframe, packet_len);
  2166. #endif
  2167. /* don't care hidden ssid, use current beacon ssid directly */
  2168. if (recv_beacon.ssid_len == 0) {
  2169. _rtw_memcpy(recv_beacon.ssid, pmlmepriv->cur_beacon_keys.ssid,
  2170. pmlmepriv->cur_beacon_keys.ssid_len);
  2171. recv_beacon.ssid_len = pmlmepriv->cur_beacon_keys.ssid_len;
  2172. }
  2173. #ifdef CONFIG_BCN_CNT_CONFIRM_HDL
  2174. if (_rtw_memcmp(&recv_beacon, &pmlmepriv->cur_beacon_keys, sizeof(recv_beacon)) == _TRUE)
  2175. pmlmepriv->new_beacon_cnts = 0;
  2176. else if ((pmlmepriv->new_beacon_cnts == 0) ||
  2177. _rtw_memcmp(&recv_beacon, &pmlmepriv->new_beacon_keys, sizeof(recv_beacon)) == _FALSE) {
  2178. RTW_DBG("%s: start new beacon (seq=%d)\n", __func__, GetSequence(pframe));
  2179. if (pmlmepriv->new_beacon_cnts == 0) {
  2180. RTW_ERR("%s: cur beacon key\n", __func__);
  2181. RTW_DBG_EXPR(rtw_dump_bcn_keys(&pmlmepriv->cur_beacon_keys));
  2182. }
  2183. RTW_DBG("%s: new beacon key\n", __func__);
  2184. RTW_DBG_EXPR(rtw_dump_bcn_keys(&recv_beacon));
  2185. _rtw_memcpy(&pmlmepriv->new_beacon_keys, &recv_beacon, sizeof(recv_beacon));
  2186. pmlmepriv->new_beacon_cnts = 1;
  2187. } else {
  2188. RTW_DBG("%s: new beacon again (seq=%d)\n", __func__, GetSequence(pframe));
  2189. pmlmepriv->new_beacon_cnts++;
  2190. }
  2191. /* if counter >= max, it means beacon is changed really */
  2192. if (pmlmepriv->new_beacon_cnts >= new_bcn_max)
  2193. #else
  2194. if (_rtw_memcmp(&recv_beacon, &pmlmepriv->cur_beacon_keys, sizeof(recv_beacon)) == _FALSE)
  2195. #endif
  2196. {
  2197. /* check bw mode change only? */
  2198. pmlmepriv->cur_beacon_keys.ht_cap_info = recv_beacon.ht_cap_info;
  2199. pmlmepriv->cur_beacon_keys.ht_info_infos_0_sco = recv_beacon.ht_info_infos_0_sco;
  2200. if (_rtw_memcmp(&recv_beacon, &pmlmepriv->cur_beacon_keys,
  2201. sizeof(recv_beacon)) == _FALSE) {
  2202. /* beacon is changed, have to do disconnect/connect */
  2203. RTW_WARN("%s: new beacon occur!!\n", __func__);
  2204. #ifdef DBG_BCN_CNT
  2205. rtw_dump_bcn_keys(&recv_beacon);
  2206. #endif
  2207. return _FAIL;
  2208. }
  2209. #ifdef DBG_BCN_CNT
  2210. RTW_INFO("%s bw mode change\n", __func__);
  2211. RTW_INFO("%s bcn now: ht_cap_info:%x ht_info_infos_0:%x\n", __func__,
  2212. cur_network->BcnInfo.ht_cap_info,
  2213. cur_network->BcnInfo.ht_info_infos_0);
  2214. #endif
  2215. cur_network->BcnInfo.ht_cap_info = recv_beacon.ht_cap_info;
  2216. cur_network->BcnInfo.ht_info_infos_0 =
  2217. (cur_network->BcnInfo.ht_info_infos_0 & (~0x03)) |
  2218. recv_beacon.ht_info_infos_0_sco;
  2219. #ifdef DBG_BCN_CNT
  2220. RTW_INFO("%s bcn link: ht_cap_info:%x ht_info_infos_0:%x\n", __func__,
  2221. cur_network->BcnInfo.ht_cap_info,
  2222. cur_network->BcnInfo.ht_info_infos_0);
  2223. #endif
  2224. _rtw_memcpy(&pmlmepriv->cur_beacon_keys, &recv_beacon, sizeof(recv_beacon));
  2225. #ifdef CONFIG_BCN_CNT_CONFIRM_HDL
  2226. pmlmepriv->new_beacon_cnts = 0;
  2227. #endif
  2228. }
  2229. return _SUCCESS;
  2230. }
  2231. void update_beacon_info(_adapter *padapter, u8 *pframe, uint pkt_len, struct sta_info *psta)
  2232. {
  2233. unsigned int i;
  2234. unsigned int len;
  2235. PNDIS_802_11_VARIABLE_IEs pIE;
  2236. #ifdef CONFIG_TDLS
  2237. struct tdls_info *ptdlsinfo = &padapter->tdlsinfo;
  2238. u8 tdls_prohibited[] = { 0x00, 0x00, 0x00, 0x00, 0x10 }; /* bit(38): TDLS_prohibited */
  2239. #endif /* CONFIG_TDLS */
  2240. len = pkt_len - (_BEACON_IE_OFFSET_ + WLAN_HDR_A3_LEN);
  2241. for (i = 0; i < len;) {
  2242. pIE = (PNDIS_802_11_VARIABLE_IEs)(pframe + (_BEACON_IE_OFFSET_ + WLAN_HDR_A3_LEN) + i);
  2243. switch (pIE->ElementID) {
  2244. case _VENDOR_SPECIFIC_IE_:
  2245. /* to update WMM paramter set while receiving beacon */
  2246. if (_rtw_memcmp(pIE->data, WMM_PARA_OUI, 6) && pIE->Length == WLAN_WMM_LEN) /* WMM */
  2247. (WMM_param_handler(padapter, pIE)) ? report_wmm_edca_update(padapter) : 0;
  2248. break;
  2249. case _HT_EXTRA_INFO_IE_: /* HT info */
  2250. /* HT_info_handler(padapter, pIE); */
  2251. bwmode_update_check(padapter, pIE);
  2252. break;
  2253. #ifdef CONFIG_80211AC_VHT
  2254. case EID_OpModeNotification:
  2255. rtw_process_vht_op_mode_notify(padapter, pIE->data, psta);
  2256. break;
  2257. #endif /* CONFIG_80211AC_VHT */
  2258. case _ERPINFO_IE_:
  2259. ERP_IE_handler(padapter, pIE);
  2260. VCS_update(padapter, psta);
  2261. break;
  2262. #ifdef CONFIG_TDLS
  2263. case _EXT_CAP_IE_:
  2264. if (check_ap_tdls_prohibited(pIE->data, pIE->Length) == _TRUE)
  2265. ptdlsinfo->ap_prohibited = _TRUE;
  2266. if (check_ap_tdls_ch_switching_prohibited(pIE->data, pIE->Length) == _TRUE)
  2267. ptdlsinfo->ch_switch_prohibited = _TRUE;
  2268. break;
  2269. #endif /* CONFIG_TDLS */
  2270. default:
  2271. break;
  2272. }
  2273. i += (pIE->Length + 2);
  2274. }
  2275. }
  2276. #ifdef CONFIG_DFS
  2277. void process_csa_ie(_adapter *padapter, u8 *ies, uint ies_len)
  2278. {
  2279. struct rf_ctl_t *rfctl = adapter_to_rfctl(padapter);
  2280. unsigned int i;
  2281. PNDIS_802_11_VARIABLE_IEs pIE;
  2282. u8 ch = 0;
  2283. /* TODO: compare with scheduling CSA */
  2284. if (rfctl->csa_ch)
  2285. return;
  2286. for (i = 0; i + 1 < ies_len;) {
  2287. pIE = (PNDIS_802_11_VARIABLE_IEs)(ies + i);
  2288. switch (pIE->ElementID) {
  2289. case _CH_SWTICH_ANNOUNCE_:
  2290. ch = *(pIE->data + 1);
  2291. break;
  2292. default:
  2293. break;
  2294. }
  2295. i += (pIE->Length + 2);
  2296. }
  2297. if (ch != 0) {
  2298. rfctl->csa_ch = ch;
  2299. if (rtw_set_csa_cmd(padapter) != _SUCCESS)
  2300. rfctl->csa_ch = 0;
  2301. }
  2302. }
  2303. #endif /* CONFIG_DFS */
  2304. void parsing_eapol_packet(_adapter *padapter, u8 *key_payload, struct sta_info *psta, u8 trx_type)
  2305. {
  2306. struct security_priv *psecuritypriv = &(padapter->securitypriv);
  2307. struct mlme_priv *pmlmepriv = &(padapter->mlmepriv);
  2308. struct sta_priv *pstapriv = &(padapter->stapriv);
  2309. struct ieee802_1x_hdr *hdr;
  2310. struct wpa_eapol_key *key;
  2311. u16 key_info, key_data_length;
  2312. char *trx_msg = trx_type ? "send" : "recv";
  2313. hdr = (struct ieee802_1x_hdr *) key_payload;
  2314. /* WPS - eapol start packet */
  2315. if (hdr->type == 1 && hdr->length == 0) {
  2316. RTW_INFO("%s eapol start packet\n", trx_msg);
  2317. return;
  2318. }
  2319. if (hdr->type == 0) { /* WPS - eapol packet */
  2320. RTW_INFO("%s eapol packet\n", trx_msg);
  2321. return;
  2322. }
  2323. key = (struct wpa_eapol_key *) (hdr + 1);
  2324. key_info = be16_to_cpu(*((u16 *)(key->key_info)));
  2325. key_data_length = be16_to_cpu(*((u16 *)(key->key_data_length)));
  2326. if (!(key_info & WPA_KEY_INFO_KEY_TYPE)) { /* WPA group key handshake */
  2327. if (key_info & WPA_KEY_INFO_ACK) {
  2328. RTW_PRINT("%s eapol packet - WPA Group Key 1/2\n", trx_msg);
  2329. } else {
  2330. RTW_PRINT("%s eapol packet - WPA Group Key 2/2\n", trx_msg);
  2331. /* WPA key-handshake has completed */
  2332. if (psecuritypriv->ndisauthtype == Ndis802_11AuthModeWPAPSK)
  2333. psta->state &= (~WIFI_UNDER_KEY_HANDSHAKE);
  2334. }
  2335. } else if (key_info & WPA_KEY_INFO_MIC) {
  2336. if (key_data_length == 0)
  2337. RTW_PRINT("%s eapol packet 4/4\n", trx_msg);
  2338. else if (key_info & WPA_KEY_INFO_ACK)
  2339. RTW_PRINT("%s eapol packet 3/4\n", trx_msg);
  2340. else
  2341. RTW_PRINT("%s eapol packet 2/4\n", trx_msg);
  2342. } else {
  2343. RTW_PRINT("%s eapol packet 1/4\n", trx_msg);
  2344. }
  2345. }
  2346. unsigned int is_ap_in_tkip(_adapter *padapter)
  2347. {
  2348. u32 i;
  2349. PNDIS_802_11_VARIABLE_IEs pIE;
  2350. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  2351. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  2352. WLAN_BSSID_EX *cur_network = &(pmlmeinfo->network);
  2353. if (rtw_get_capability((WLAN_BSSID_EX *)cur_network) & WLAN_CAPABILITY_PRIVACY) {
  2354. for (i = sizeof(NDIS_802_11_FIXED_IEs); i < pmlmeinfo->network.IELength;) {
  2355. pIE = (PNDIS_802_11_VARIABLE_IEs)(pmlmeinfo->network.IEs + i);
  2356. switch (pIE->ElementID) {
  2357. case _VENDOR_SPECIFIC_IE_:
  2358. if ((_rtw_memcmp(pIE->data, RTW_WPA_OUI, 4)) && (_rtw_memcmp((pIE->data + 12), WPA_TKIP_CIPHER, 4)))
  2359. return _TRUE;
  2360. break;
  2361. case _RSN_IE_2_:
  2362. if (_rtw_memcmp((pIE->data + 8), RSN_TKIP_CIPHER, 4))
  2363. return _TRUE;
  2364. default:
  2365. break;
  2366. }
  2367. i += (pIE->Length + 2);
  2368. }
  2369. return _FALSE;
  2370. } else
  2371. return _FALSE;
  2372. }
  2373. unsigned int should_forbid_n_rate(_adapter *padapter)
  2374. {
  2375. u32 i;
  2376. PNDIS_802_11_VARIABLE_IEs pIE;
  2377. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  2378. WLAN_BSSID_EX *cur_network = &pmlmepriv->cur_network.network;
  2379. if (rtw_get_capability((WLAN_BSSID_EX *)cur_network) & WLAN_CAPABILITY_PRIVACY) {
  2380. for (i = sizeof(NDIS_802_11_FIXED_IEs); i < cur_network->IELength;) {
  2381. pIE = (PNDIS_802_11_VARIABLE_IEs)(cur_network->IEs + i);
  2382. switch (pIE->ElementID) {
  2383. case _VENDOR_SPECIFIC_IE_:
  2384. if (_rtw_memcmp(pIE->data, RTW_WPA_OUI, 4) &&
  2385. ((_rtw_memcmp((pIE->data + 12), WPA_CIPHER_SUITE_CCMP, 4)) ||
  2386. (_rtw_memcmp((pIE->data + 16), WPA_CIPHER_SUITE_CCMP, 4))))
  2387. return _FALSE;
  2388. break;
  2389. case _RSN_IE_2_:
  2390. if ((_rtw_memcmp((pIE->data + 8), RSN_CIPHER_SUITE_CCMP, 4)) ||
  2391. (_rtw_memcmp((pIE->data + 12), RSN_CIPHER_SUITE_CCMP, 4)))
  2392. return _FALSE;
  2393. default:
  2394. break;
  2395. }
  2396. i += (pIE->Length + 2);
  2397. }
  2398. return _TRUE;
  2399. } else
  2400. return _FALSE;
  2401. }
  2402. unsigned int is_ap_in_wep(_adapter *padapter)
  2403. {
  2404. u32 i;
  2405. PNDIS_802_11_VARIABLE_IEs pIE;
  2406. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  2407. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  2408. WLAN_BSSID_EX *cur_network = &(pmlmeinfo->network);
  2409. if (rtw_get_capability((WLAN_BSSID_EX *)cur_network) & WLAN_CAPABILITY_PRIVACY) {
  2410. for (i = sizeof(NDIS_802_11_FIXED_IEs); i < pmlmeinfo->network.IELength;) {
  2411. pIE = (PNDIS_802_11_VARIABLE_IEs)(pmlmeinfo->network.IEs + i);
  2412. switch (pIE->ElementID) {
  2413. case _VENDOR_SPECIFIC_IE_:
  2414. if (_rtw_memcmp(pIE->data, RTW_WPA_OUI, 4))
  2415. return _FALSE;
  2416. break;
  2417. case _RSN_IE_2_:
  2418. return _FALSE;
  2419. default:
  2420. break;
  2421. }
  2422. i += (pIE->Length + 2);
  2423. }
  2424. return _TRUE;
  2425. } else
  2426. return _FALSE;
  2427. }
  2428. int wifirate2_ratetbl_inx(unsigned char rate);
  2429. int wifirate2_ratetbl_inx(unsigned char rate)
  2430. {
  2431. int inx = 0;
  2432. rate = rate & 0x7f;
  2433. switch (rate) {
  2434. case 54*2:
  2435. inx = 11;
  2436. break;
  2437. case 48*2:
  2438. inx = 10;
  2439. break;
  2440. case 36*2:
  2441. inx = 9;
  2442. break;
  2443. case 24*2:
  2444. inx = 8;
  2445. break;
  2446. case 18*2:
  2447. inx = 7;
  2448. break;
  2449. case 12*2:
  2450. inx = 6;
  2451. break;
  2452. case 9*2:
  2453. inx = 5;
  2454. break;
  2455. case 6*2:
  2456. inx = 4;
  2457. break;
  2458. case 11*2:
  2459. inx = 3;
  2460. break;
  2461. case 11:
  2462. inx = 2;
  2463. break;
  2464. case 2*2:
  2465. inx = 1;
  2466. break;
  2467. case 1*2:
  2468. inx = 0;
  2469. break;
  2470. }
  2471. return inx;
  2472. }
  2473. unsigned int update_basic_rate(unsigned char *ptn, unsigned int ptn_sz)
  2474. {
  2475. unsigned int i, num_of_rate;
  2476. unsigned int mask = 0;
  2477. num_of_rate = (ptn_sz > NumRates) ? NumRates : ptn_sz;
  2478. for (i = 0; i < num_of_rate; i++) {
  2479. if ((*(ptn + i)) & 0x80)
  2480. mask |= 0x1 << wifirate2_ratetbl_inx(*(ptn + i));
  2481. }
  2482. return mask;
  2483. }
  2484. unsigned int update_supported_rate(unsigned char *ptn, unsigned int ptn_sz)
  2485. {
  2486. unsigned int i, num_of_rate;
  2487. unsigned int mask = 0;
  2488. num_of_rate = (ptn_sz > NumRates) ? NumRates : ptn_sz;
  2489. for (i = 0; i < num_of_rate; i++)
  2490. mask |= 0x1 << wifirate2_ratetbl_inx(*(ptn + i));
  2491. return mask;
  2492. }
  2493. int support_short_GI(_adapter *padapter, struct HT_caps_element *pHT_caps, u8 bwmode)
  2494. {
  2495. unsigned char bit_offset;
  2496. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  2497. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  2498. if (!(pmlmeinfo->HT_enable))
  2499. return _FAIL;
  2500. bit_offset = (bwmode & CHANNEL_WIDTH_40) ? 6 : 5;
  2501. if (pHT_caps->u.HT_cap_element.HT_caps_info & (0x1 << bit_offset))
  2502. return _SUCCESS;
  2503. else
  2504. return _FAIL;
  2505. }
  2506. unsigned char get_highest_rate_idx(u64 mask)
  2507. {
  2508. int i;
  2509. unsigned char rate_idx = 0;
  2510. for (i = 63; i >= 0; i--) {
  2511. if ((mask >> i) & 0x01) {
  2512. rate_idx = i;
  2513. break;
  2514. }
  2515. }
  2516. return rate_idx;
  2517. }
  2518. unsigned char get_lowest_rate_idx_ex(u64 mask, int start_bit)
  2519. {
  2520. int i;
  2521. unsigned char rate_idx = 0;
  2522. for (i = start_bit; i < 64; i++) {
  2523. if ((mask >> i) & 0x01) {
  2524. rate_idx = i;
  2525. break;
  2526. }
  2527. }
  2528. return rate_idx;
  2529. }
  2530. void Update_RA_Entry(_adapter *padapter, struct sta_info *psta)
  2531. {
  2532. rtw_hal_update_ra_mask(psta);
  2533. }
  2534. void set_sta_rate(_adapter *padapter, struct sta_info *psta)
  2535. {
  2536. /* rate adaptive */
  2537. rtw_hal_update_ra_mask(psta);
  2538. }
  2539. /* Update RRSR and Rate for USERATE */
  2540. void update_tx_basic_rate(_adapter *padapter, u8 wirelessmode)
  2541. {
  2542. NDIS_802_11_RATES_EX supported_rates;
  2543. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  2544. #ifdef CONFIG_P2P
  2545. struct wifidirect_info *pwdinfo = &padapter->wdinfo;
  2546. /* Added by Albert 2011/03/22 */
  2547. /* In the P2P mode, the driver should not support the b mode. */
  2548. /* So, the Tx packet shouldn't use the CCK rate */
  2549. if (!rtw_p2p_chk_state(pwdinfo, P2P_STATE_NONE))
  2550. return;
  2551. #endif /* CONFIG_P2P */
  2552. #ifdef CONFIG_INTEL_WIDI
  2553. if (padapter->mlmepriv.widi_state != INTEL_WIDI_STATE_NONE)
  2554. return;
  2555. #endif /* CONFIG_INTEL_WIDI */
  2556. _rtw_memset(supported_rates, 0, NDIS_802_11_LENGTH_RATES_EX);
  2557. /* clear B mod if current channel is in 5G band, avoid tx cck rate in 5G band. */
  2558. if (pmlmeext->cur_channel > 14)
  2559. wirelessmode &= ~(WIRELESS_11B);
  2560. if ((wirelessmode & WIRELESS_11B) && (wirelessmode == WIRELESS_11B))
  2561. _rtw_memcpy(supported_rates, rtw_basic_rate_cck, 4);
  2562. else if (wirelessmode & WIRELESS_11B)
  2563. _rtw_memcpy(supported_rates, rtw_basic_rate_mix, 7);
  2564. else
  2565. _rtw_memcpy(supported_rates, rtw_basic_rate_ofdm, 3);
  2566. if (wirelessmode & WIRELESS_11B)
  2567. update_mgnt_tx_rate(padapter, IEEE80211_CCK_RATE_1MB);
  2568. else
  2569. update_mgnt_tx_rate(padapter, IEEE80211_OFDM_RATE_6MB);
  2570. rtw_hal_set_hwreg(padapter, HW_VAR_BASIC_RATE, supported_rates);
  2571. }
  2572. unsigned char check_assoc_AP(u8 *pframe, uint len)
  2573. {
  2574. unsigned int i;
  2575. PNDIS_802_11_VARIABLE_IEs pIE;
  2576. for (i = sizeof(NDIS_802_11_FIXED_IEs); i < len;) {
  2577. pIE = (PNDIS_802_11_VARIABLE_IEs)(pframe + i);
  2578. switch (pIE->ElementID) {
  2579. case _VENDOR_SPECIFIC_IE_:
  2580. if ((_rtw_memcmp(pIE->data, ARTHEROS_OUI1, 3)) || (_rtw_memcmp(pIE->data, ARTHEROS_OUI2, 3))) {
  2581. RTW_INFO("link to Artheros AP\n");
  2582. return HT_IOT_PEER_ATHEROS;
  2583. } else if ((_rtw_memcmp(pIE->data, BROADCOM_OUI1, 3))
  2584. || (_rtw_memcmp(pIE->data, BROADCOM_OUI2, 3))
  2585. || (_rtw_memcmp(pIE->data, BROADCOM_OUI3, 3))) {
  2586. RTW_INFO("link to Broadcom AP\n");
  2587. return HT_IOT_PEER_BROADCOM;
  2588. } else if (_rtw_memcmp(pIE->data, MARVELL_OUI, 3)) {
  2589. RTW_INFO("link to Marvell AP\n");
  2590. return HT_IOT_PEER_MARVELL;
  2591. } else if (_rtw_memcmp(pIE->data, RALINK_OUI, 3)) {
  2592. RTW_INFO("link to Ralink AP\n");
  2593. return HT_IOT_PEER_RALINK;
  2594. } else if (_rtw_memcmp(pIE->data, CISCO_OUI, 3)) {
  2595. RTW_INFO("link to Cisco AP\n");
  2596. return HT_IOT_PEER_CISCO;
  2597. } else if (_rtw_memcmp(pIE->data, REALTEK_OUI, 3)) {
  2598. u32 Vender = HT_IOT_PEER_REALTEK;
  2599. if (pIE->Length >= 5) {
  2600. if (pIE->data[4] == 1) {
  2601. /* if(pIE->data[5] & RT_HT_CAP_USE_LONG_PREAMBLE) */
  2602. /* bssDesc->BssHT.RT2RT_HT_Mode |= RT_HT_CAP_USE_LONG_PREAMBLE; */
  2603. if (pIE->data[5] & RT_HT_CAP_USE_92SE) {
  2604. /* bssDesc->BssHT.RT2RT_HT_Mode |= RT_HT_CAP_USE_92SE; */
  2605. Vender = HT_IOT_PEER_REALTEK_92SE;
  2606. }
  2607. }
  2608. if (pIE->data[5] & RT_HT_CAP_USE_SOFTAP)
  2609. Vender = HT_IOT_PEER_REALTEK_SOFTAP;
  2610. if (pIE->data[4] == 2) {
  2611. if (pIE->data[6] & RT_HT_CAP_USE_JAGUAR_BCUT) {
  2612. Vender = HT_IOT_PEER_REALTEK_JAGUAR_BCUTAP;
  2613. RTW_INFO("link to Realtek JAGUAR_BCUTAP\n");
  2614. }
  2615. if (pIE->data[6] & RT_HT_CAP_USE_JAGUAR_CCUT) {
  2616. Vender = HT_IOT_PEER_REALTEK_JAGUAR_CCUTAP;
  2617. RTW_INFO("link to Realtek JAGUAR_CCUTAP\n");
  2618. }
  2619. }
  2620. }
  2621. RTW_INFO("link to Realtek AP\n");
  2622. return Vender;
  2623. } else if (_rtw_memcmp(pIE->data, AIRGOCAP_OUI, 3)) {
  2624. RTW_INFO("link to Airgo Cap\n");
  2625. return HT_IOT_PEER_AIRGO;
  2626. } else
  2627. break;
  2628. default:
  2629. break;
  2630. }
  2631. i += (pIE->Length + 2);
  2632. }
  2633. RTW_INFO("link to new AP\n");
  2634. return HT_IOT_PEER_UNKNOWN;
  2635. }
  2636. void get_assoc_AP_Vendor(char *vendor, u8 assoc_AP_vendor)
  2637. {
  2638. switch (assoc_AP_vendor) {
  2639. case HT_IOT_PEER_UNKNOWN:
  2640. sprintf(vendor, "%s", "unknown");
  2641. break;
  2642. case HT_IOT_PEER_REALTEK:
  2643. case HT_IOT_PEER_REALTEK_92SE:
  2644. case HT_IOT_PEER_REALTEK_SOFTAP:
  2645. case HT_IOT_PEER_REALTEK_JAGUAR_BCUTAP:
  2646. case HT_IOT_PEER_REALTEK_JAGUAR_CCUTAP:
  2647. sprintf(vendor, "%s", "Realtek");
  2648. break;
  2649. case HT_IOT_PEER_BROADCOM:
  2650. sprintf(vendor, "%s", "Broadcom");
  2651. break;
  2652. case HT_IOT_PEER_MARVELL:
  2653. sprintf(vendor, "%s", "Marvell");
  2654. break;
  2655. case HT_IOT_PEER_RALINK:
  2656. sprintf(vendor, "%s", "Ralink");
  2657. break;
  2658. case HT_IOT_PEER_CISCO:
  2659. sprintf(vendor, "%s", "Cisco");
  2660. break;
  2661. case HT_IOT_PEER_AIRGO:
  2662. sprintf(vendor, "%s", "Airgo");
  2663. break;
  2664. case HT_IOT_PEER_ATHEROS:
  2665. sprintf(vendor, "%s", "Atheros");
  2666. break;
  2667. default:
  2668. sprintf(vendor, "%s", "unkown");
  2669. break;
  2670. }
  2671. }
  2672. #ifdef CONFIG_80211AC_VHT
  2673. unsigned char get_vht_mu_bfer_cap(u8 *pframe, uint len)
  2674. {
  2675. unsigned int i;
  2676. unsigned int mu_bfer=0;
  2677. PNDIS_802_11_VARIABLE_IEs pIE;
  2678. for (i = sizeof(NDIS_802_11_FIXED_IEs); i < len;) {
  2679. pIE = (PNDIS_802_11_VARIABLE_IEs)(pframe + i);
  2680. switch (pIE->ElementID) {
  2681. case EID_VHTCapability:
  2682. mu_bfer = GET_VHT_CAPABILITY_ELE_MU_BFER(pIE->data);
  2683. break;
  2684. default:
  2685. break;
  2686. }
  2687. i += (pIE->Length + 2);
  2688. }
  2689. return mu_bfer;
  2690. }
  2691. #endif
  2692. void update_capinfo(PADAPTER Adapter, u16 updateCap)
  2693. {
  2694. struct mlme_ext_priv *pmlmeext = &Adapter->mlmeextpriv;
  2695. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  2696. BOOLEAN ShortPreamble;
  2697. /* Check preamble mode, 2005.01.06, by rcnjko. */
  2698. /* Mark to update preamble value forever, 2008.03.18 by lanhsin */
  2699. /* if( pMgntInfo->RegPreambleMode == PREAMBLE_AUTO ) */
  2700. {
  2701. if (updateCap & cShortPreamble) {
  2702. /* Short Preamble */
  2703. if (pmlmeinfo->preamble_mode != PREAMBLE_SHORT) { /* PREAMBLE_LONG or PREAMBLE_AUTO */
  2704. ShortPreamble = _TRUE;
  2705. pmlmeinfo->preamble_mode = PREAMBLE_SHORT;
  2706. rtw_hal_set_hwreg(Adapter, HW_VAR_ACK_PREAMBLE, (u8 *)&ShortPreamble);
  2707. }
  2708. } else {
  2709. /* Long Preamble */
  2710. if (pmlmeinfo->preamble_mode != PREAMBLE_LONG) { /* PREAMBLE_SHORT or PREAMBLE_AUTO */
  2711. ShortPreamble = _FALSE;
  2712. pmlmeinfo->preamble_mode = PREAMBLE_LONG;
  2713. rtw_hal_set_hwreg(Adapter, HW_VAR_ACK_PREAMBLE, (u8 *)&ShortPreamble);
  2714. }
  2715. }
  2716. }
  2717. if (updateCap & cIBSS) {
  2718. /* Filen: See 802.11-2007 p.91 */
  2719. pmlmeinfo->slotTime = NON_SHORT_SLOT_TIME;
  2720. } else {
  2721. /* Filen: See 802.11-2007 p.90 */
  2722. if (pmlmeext->cur_wireless_mode & (WIRELESS_11_24N | WIRELESS_11A | WIRELESS_11_5N | WIRELESS_11AC))
  2723. pmlmeinfo->slotTime = SHORT_SLOT_TIME;
  2724. else if (pmlmeext->cur_wireless_mode & (WIRELESS_11G)) {
  2725. if ((updateCap & cShortSlotTime) /* && (!(pMgntInfo->pHTInfo->RT2RT_HT_Mode & RT_HT_CAP_USE_LONG_PREAMBLE)) */) {
  2726. /* Short Slot Time */
  2727. pmlmeinfo->slotTime = SHORT_SLOT_TIME;
  2728. } else {
  2729. /* Long Slot Time */
  2730. pmlmeinfo->slotTime = NON_SHORT_SLOT_TIME;
  2731. }
  2732. } else {
  2733. /* B Mode */
  2734. pmlmeinfo->slotTime = NON_SHORT_SLOT_TIME;
  2735. }
  2736. }
  2737. rtw_hal_set_hwreg(Adapter, HW_VAR_SLOT_TIME, &pmlmeinfo->slotTime);
  2738. }
  2739. /*
  2740. * set adapter.mlmeextpriv.mlmext_info.HT_enable
  2741. * set adapter.mlmeextpriv.cur_wireless_mode
  2742. * set SIFS register
  2743. * set mgmt tx rate
  2744. */
  2745. void update_wireless_mode(_adapter *padapter)
  2746. {
  2747. int ratelen, network_type = 0;
  2748. u32 SIFS_Timer;
  2749. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  2750. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  2751. WLAN_BSSID_EX *cur_network = &(pmlmeinfo->network);
  2752. unsigned char *rate = cur_network->SupportedRates;
  2753. #ifdef CONFIG_P2P
  2754. struct wifidirect_info *pwdinfo = &(padapter->wdinfo);
  2755. #endif /* CONFIG_P2P */
  2756. ratelen = rtw_get_rateset_len(cur_network->SupportedRates);
  2757. if ((pmlmeinfo->HT_info_enable) && (pmlmeinfo->HT_caps_enable))
  2758. pmlmeinfo->HT_enable = 1;
  2759. if (pmlmeext->cur_channel > 14) {
  2760. if (pmlmeinfo->VHT_enable)
  2761. network_type = WIRELESS_11AC;
  2762. else if (pmlmeinfo->HT_enable)
  2763. network_type = WIRELESS_11_5N;
  2764. network_type |= WIRELESS_11A;
  2765. } else {
  2766. if (pmlmeinfo->VHT_enable)
  2767. network_type = WIRELESS_11AC;
  2768. else if (pmlmeinfo->HT_enable)
  2769. network_type = WIRELESS_11_24N;
  2770. if ((cckratesonly_included(rate, ratelen)) == _TRUE)
  2771. network_type |= WIRELESS_11B;
  2772. else if ((cckrates_included(rate, ratelen)) == _TRUE)
  2773. network_type |= WIRELESS_11BG;
  2774. else
  2775. network_type |= WIRELESS_11G;
  2776. }
  2777. pmlmeext->cur_wireless_mode = network_type & padapter->registrypriv.wireless_mode;
  2778. /* RTW_INFO("network_type=%02x, padapter->registrypriv.wireless_mode=%02x\n", network_type, padapter->registrypriv.wireless_mode); */
  2779. #if 0
  2780. if ((pmlmeext->cur_wireless_mode == WIRELESS_11G) ||
  2781. (pmlmeext->cur_wireless_mode == WIRELESS_11BG)) /* WIRELESS_MODE_G) */
  2782. SIFS_Timer = 0x0a0a;/* CCK */
  2783. else
  2784. SIFS_Timer = 0x0e0e;/* pHalData->SifsTime; //OFDM */
  2785. #endif
  2786. SIFS_Timer = 0x0a0a0808; /* 0x0808->for CCK, 0x0a0a->for OFDM
  2787. * change this value if having IOT issues. */
  2788. rtw_hal_set_hwreg(padapter, HW_VAR_RESP_SIFS, (u8 *)&SIFS_Timer);
  2789. rtw_hal_set_hwreg(padapter, HW_VAR_WIRELESS_MODE, (u8 *)&(pmlmeext->cur_wireless_mode));
  2790. if ((pmlmeext->cur_wireless_mode & WIRELESS_11B)
  2791. #ifdef CONFIG_P2P
  2792. && (rtw_p2p_chk_state(pwdinfo, P2P_STATE_NONE)
  2793. #ifdef CONFIG_IOCTL_CFG80211
  2794. || !rtw_cfg80211_iface_has_p2p_group_cap(padapter)
  2795. #endif
  2796. )
  2797. #endif
  2798. )
  2799. update_mgnt_tx_rate(padapter, IEEE80211_CCK_RATE_1MB);
  2800. else
  2801. update_mgnt_tx_rate(padapter, IEEE80211_OFDM_RATE_6MB);
  2802. }
  2803. void fire_write_MAC_cmd(_adapter *padapter, unsigned int addr, unsigned int value);
  2804. void fire_write_MAC_cmd(_adapter *padapter, unsigned int addr, unsigned int value)
  2805. {
  2806. #if 0
  2807. struct cmd_obj *ph2c;
  2808. struct reg_rw_parm *pwriteMacPara;
  2809. struct cmd_priv *pcmdpriv = &(padapter->cmdpriv);
  2810. ph2c = (struct cmd_obj *)rtw_zmalloc(sizeof(struct cmd_obj));
  2811. if (ph2c == NULL)
  2812. return;
  2813. pwriteMacPara = (struct reg_rw_parm *)rtw_malloc(sizeof(struct reg_rw_parm));
  2814. if (pwriteMacPara == NULL) {
  2815. rtw_mfree((unsigned char *)ph2c, sizeof(struct cmd_obj));
  2816. return;
  2817. }
  2818. pwriteMacPara->rw = 1;
  2819. pwriteMacPara->addr = addr;
  2820. pwriteMacPara->value = value;
  2821. init_h2fwcmd_w_parm_no_rsp(ph2c, pwriteMacPara, GEN_CMD_CODE(_Write_MACREG));
  2822. rtw_enqueue_cmd(pcmdpriv, ph2c);
  2823. #endif
  2824. }
  2825. void update_sta_basic_rate(struct sta_info *psta, u8 wireless_mode)
  2826. {
  2827. if (IsSupportedTxCCK(wireless_mode)) {
  2828. /* Only B, B/G, and B/G/N AP could use CCK rate */
  2829. _rtw_memcpy(psta->bssrateset, rtw_basic_rate_cck, 4);
  2830. psta->bssratelen = 4;
  2831. } else {
  2832. _rtw_memcpy(psta->bssrateset, rtw_basic_rate_ofdm, 3);
  2833. psta->bssratelen = 3;
  2834. }
  2835. }
  2836. int rtw_ies_get_supported_rate(u8 *ies, uint ies_len, u8 *rate_set, u8 *rate_num)
  2837. {
  2838. u8 *ie, *p;
  2839. unsigned int ie_len;
  2840. int i, j;
  2841. struct support_rate_handler support_rate_tbl[] = {
  2842. {IEEE80211_CCK_RATE_1MB, _FALSE, _FALSE},
  2843. {IEEE80211_CCK_RATE_2MB, _FALSE, _FALSE},
  2844. {IEEE80211_CCK_RATE_5MB, _FALSE, _FALSE},
  2845. {IEEE80211_CCK_RATE_11MB, _FALSE, _FALSE},
  2846. {IEEE80211_OFDM_RATE_6MB, _FALSE, _FALSE},
  2847. {IEEE80211_OFDM_RATE_9MB, _FALSE, _FALSE},
  2848. {IEEE80211_OFDM_RATE_12MB, _FALSE, _FALSE},
  2849. {IEEE80211_OFDM_RATE_18MB, _FALSE, _FALSE},
  2850. {IEEE80211_OFDM_RATE_24MB, _FALSE, _FALSE},
  2851. {IEEE80211_OFDM_RATE_36MB, _FALSE, _FALSE},
  2852. {IEEE80211_OFDM_RATE_48MB, _FALSE, _FALSE},
  2853. {IEEE80211_OFDM_RATE_54MB, _FALSE, _FALSE},
  2854. };
  2855. if (!rate_set || !rate_num)
  2856. return _FALSE;
  2857. *rate_num = 0;
  2858. ie = rtw_get_ie(ies, _SUPPORTEDRATES_IE_, &ie_len, ies_len);
  2859. if (ie == NULL)
  2860. goto ext_rate;
  2861. /* get valid supported rates */
  2862. for (i = 0; i < 12; i++) {
  2863. p = ie + 2;
  2864. for (j = 0; j < ie_len; j++) {
  2865. if ((*p & ~BIT(7)) == support_rate_tbl[i].rate){
  2866. support_rate_tbl[i].existence = _TRUE;
  2867. if ((*p) & BIT(7))
  2868. support_rate_tbl[i].basic = _TRUE;
  2869. }
  2870. p++;
  2871. }
  2872. }
  2873. ext_rate:
  2874. ie = rtw_get_ie(ies, _EXT_SUPPORTEDRATES_IE_, &ie_len, ies_len);
  2875. if (ie) {
  2876. /* get valid extended supported rates */
  2877. for (i = 0; i < 12; i++) {
  2878. p = ie + 2;
  2879. for (j = 0; j < ie_len; j++) {
  2880. if ((*p & ~BIT(7)) == support_rate_tbl[i].rate){
  2881. support_rate_tbl[i].existence = _TRUE;
  2882. if ((*p) & BIT(7))
  2883. support_rate_tbl[i].basic = _TRUE;
  2884. }
  2885. p++;
  2886. }
  2887. }
  2888. }
  2889. for (i = 0; i < 12; i++){
  2890. if (support_rate_tbl[i].existence){
  2891. if (support_rate_tbl[i].basic)
  2892. rate_set[*rate_num] = support_rate_tbl[i].rate | IEEE80211_BASIC_RATE_MASK;
  2893. else
  2894. rate_set[*rate_num] = support_rate_tbl[i].rate;
  2895. *rate_num += 1;
  2896. }
  2897. }
  2898. if (*rate_num == 0)
  2899. return _FAIL;
  2900. if (0) {
  2901. int i;
  2902. for (i = 0; i < *rate_num; i++)
  2903. RTW_INFO("rate:0x%02x\n", *(rate_set + i));
  2904. }
  2905. return _SUCCESS;
  2906. }
  2907. void process_addba_req(_adapter *padapter, u8 *paddba_req, u8 *addr)
  2908. {
  2909. struct sta_info *psta;
  2910. u16 tid, start_seq, param;
  2911. struct sta_priv *pstapriv = &padapter->stapriv;
  2912. struct ADDBA_request *preq = (struct ADDBA_request *)paddba_req;
  2913. u8 size, accept = _FALSE;
  2914. psta = rtw_get_stainfo(pstapriv, addr);
  2915. if (!psta)
  2916. goto exit;
  2917. start_seq = le16_to_cpu(preq->BA_starting_seqctrl) >> 4;
  2918. param = le16_to_cpu(preq->BA_para_set);
  2919. tid = (param >> 2) & 0x0f;
  2920. accept = rtw_rx_ampdu_is_accept(padapter);
  2921. if (padapter->fix_rx_ampdu_size != RX_AMPDU_SIZE_INVALID)
  2922. size = padapter->fix_rx_ampdu_size;
  2923. else {
  2924. size = rtw_rx_ampdu_size(padapter);
  2925. size = rtw_min(size, rx_ampdu_size_sta_limit(padapter, psta));
  2926. }
  2927. if (accept == _TRUE)
  2928. rtw_addbarsp_cmd(padapter, addr, tid, 0, size, start_seq);
  2929. else
  2930. rtw_addbarsp_cmd(padapter, addr, tid, 37, size, start_seq); /* reject ADDBA Req */
  2931. exit:
  2932. return;
  2933. }
  2934. void rtw_process_bar_frame(_adapter *padapter, union recv_frame *precv_frame)
  2935. {
  2936. struct sta_priv *pstapriv = &padapter->stapriv;
  2937. u8 *pframe = precv_frame->u.hdr.rx_data;
  2938. struct sta_info *psta = NULL;
  2939. struct recv_reorder_ctrl *preorder_ctrl = NULL;
  2940. u8 tid = 0;
  2941. u16 start_seq=0;
  2942. psta = rtw_get_stainfo(pstapriv, get_addr2_ptr(pframe));
  2943. if (psta == NULL)
  2944. goto exit;
  2945. tid = ((cpu_to_le16((*(u16 *)(pframe + 16))) & 0xf000) >> 12);
  2946. preorder_ctrl = &psta->recvreorder_ctrl[tid];
  2947. start_seq = ((cpu_to_le16(*(u16 *)(pframe + 18))) >> 4);
  2948. preorder_ctrl->indicate_seq = start_seq;
  2949. /* for Debug use */
  2950. if (0)
  2951. RTW_INFO(FUNC_ADPT_FMT" tid=%d, start_seq=%d\n", FUNC_ADPT_ARG(padapter), tid, start_seq);
  2952. exit:
  2953. return;
  2954. }
  2955. void update_TSF(struct mlme_ext_priv *pmlmeext, u8 *pframe, uint len)
  2956. {
  2957. u8 *pIE;
  2958. u32 *pbuf;
  2959. pIE = pframe + sizeof(struct rtw_ieee80211_hdr_3addr);
  2960. pbuf = (u32 *)pIE;
  2961. pmlmeext->TSFValue = le32_to_cpu(*(pbuf + 1));
  2962. pmlmeext->TSFValue = pmlmeext->TSFValue << 32;
  2963. pmlmeext->TSFValue |= le32_to_cpu(*pbuf);
  2964. }
  2965. void correct_TSF(_adapter *padapter, u8 mlme_state)
  2966. {
  2967. u8 m_state = mlme_state;
  2968. rtw_hal_set_hwreg(padapter, HW_VAR_CORRECT_TSF, (u8 *)&m_state);
  2969. }
  2970. #ifdef CONFIG_BCN_RECV_TIME
  2971. /* calculate beacon receiving time
  2972. 1.RxBCNTime(CCK_1M) = [192us(preamble)] + [length of beacon(byte)*8us] + [10us]
  2973. 2.RxBCNTime(OFDM_6M) = [8us(S) + 8us(L) + 4us(L-SIG)] + [(length of beacon(byte)/3 + 1] *4us] + [10us]
  2974. */
  2975. inline u16 _rx_bcn_time_calculate(uint bcn_len, u8 data_rate)
  2976. {
  2977. u16 rx_bcn_time = 0;/*us*/
  2978. if (data_rate == DESC_RATE1M)
  2979. rx_bcn_time = 192 + bcn_len * 8 + 10;
  2980. else if(data_rate == DESC_RATE6M)
  2981. rx_bcn_time = 8 + 8 + 4 + (bcn_len /3 + 1) * 4 + 10;
  2982. /*
  2983. else
  2984. RTW_ERR("%s invalid data rate(0x%02x)\n", __func__, data_rate);
  2985. */
  2986. return rx_bcn_time;
  2987. }
  2988. void rtw_rx_bcn_time_update(_adapter *adapter, uint bcn_len, u8 data_rate)
  2989. {
  2990. struct mlme_ext_priv *pmlmeext = &adapter->mlmeextpriv;
  2991. pmlmeext->bcn_rx_time = _rx_bcn_time_calculate(bcn_len, data_rate);
  2992. }
  2993. #endif
  2994. void beacon_timing_control(_adapter *padapter)
  2995. {
  2996. rtw_hal_bcn_related_reg_setting(padapter);
  2997. }
  2998. void dump_macid_map(void *sel, struct macid_bmp *map, u8 max_num)
  2999. {
  3000. RTW_PRINT_SEL(sel, "0x%08x\n", map->m0);
  3001. #if (MACID_NUM_SW_LIMIT > 32)
  3002. if (max_num && max_num > 32)
  3003. RTW_PRINT_SEL(sel, "0x%08x\n", map->m1);
  3004. #endif
  3005. #if (MACID_NUM_SW_LIMIT > 64)
  3006. if (max_num && max_num > 64)
  3007. RTW_PRINT_SEL(sel, "0x%08x\n", map->m2);
  3008. #endif
  3009. #if (MACID_NUM_SW_LIMIT > 96)
  3010. if (max_num && max_num > 96)
  3011. RTW_PRINT_SEL(sel, "0x%08x\n", map->m3);
  3012. #endif
  3013. }
  3014. inline bool rtw_macid_is_set(struct macid_bmp *map, u8 id)
  3015. {
  3016. if (id < 32)
  3017. return map->m0 & BIT(id);
  3018. #if (MACID_NUM_SW_LIMIT > 32)
  3019. else if (id < 64)
  3020. return map->m1 & BIT(id - 32);
  3021. #endif
  3022. #if (MACID_NUM_SW_LIMIT > 64)
  3023. else if (id < 96)
  3024. return map->m2 & BIT(id - 64);
  3025. #endif
  3026. #if (MACID_NUM_SW_LIMIT > 96)
  3027. else if (id < 128)
  3028. return map->m3 & BIT(id - 96);
  3029. #endif
  3030. else
  3031. rtw_warn_on(1);
  3032. return 0;
  3033. }
  3034. inline void rtw_macid_map_set(struct macid_bmp *map, u8 id)
  3035. {
  3036. if (id < 32)
  3037. map->m0 |= BIT(id);
  3038. #if (MACID_NUM_SW_LIMIT > 32)
  3039. else if (id < 64)
  3040. map->m1 |= BIT(id - 32);
  3041. #endif
  3042. #if (MACID_NUM_SW_LIMIT > 64)
  3043. else if (id < 96)
  3044. map->m2 |= BIT(id - 64);
  3045. #endif
  3046. #if (MACID_NUM_SW_LIMIT > 96)
  3047. else if (id < 128)
  3048. map->m3 |= BIT(id - 96);
  3049. #endif
  3050. else
  3051. rtw_warn_on(1);
  3052. }
  3053. inline void rtw_macid_map_clr(struct macid_bmp *map, u8 id)
  3054. {
  3055. if (id < 32)
  3056. map->m0 &= ~BIT(id);
  3057. #if (MACID_NUM_SW_LIMIT > 32)
  3058. else if (id < 64)
  3059. map->m1 &= ~BIT(id - 32);
  3060. #endif
  3061. #if (MACID_NUM_SW_LIMIT > 64)
  3062. else if (id < 96)
  3063. map->m2 &= ~BIT(id - 64);
  3064. #endif
  3065. #if (MACID_NUM_SW_LIMIT > 96)
  3066. else if (id < 128)
  3067. map->m3 &= ~BIT(id - 96);
  3068. #endif
  3069. else
  3070. rtw_warn_on(1);
  3071. }
  3072. inline bool rtw_macid_is_used(struct macid_ctl_t *macid_ctl, u8 id)
  3073. {
  3074. return rtw_macid_is_set(&macid_ctl->used, id);
  3075. }
  3076. inline bool rtw_macid_is_bmc(struct macid_ctl_t *macid_ctl, u8 id)
  3077. {
  3078. return rtw_macid_is_set(&macid_ctl->bmc, id);
  3079. }
  3080. inline u8 rtw_macid_get_iface_bmp(struct macid_ctl_t *macid_ctl, u8 id)
  3081. {
  3082. int i;
  3083. u8 iface_bmp = 0;
  3084. for (i = 0; i < CONFIG_IFACE_NUMBER; i++) {
  3085. if (rtw_macid_is_set(&macid_ctl->if_g[i], id))
  3086. iface_bmp |= BIT(i);
  3087. }
  3088. return iface_bmp;
  3089. }
  3090. inline bool rtw_macid_is_iface_shared(struct macid_ctl_t *macid_ctl, u8 id)
  3091. {
  3092. int i;
  3093. u8 iface_bmp = 0;
  3094. for (i = 0; i < CONFIG_IFACE_NUMBER; i++) {
  3095. if (rtw_macid_is_set(&macid_ctl->if_g[i], id)) {
  3096. if (iface_bmp)
  3097. return 1;
  3098. iface_bmp |= BIT(i);
  3099. }
  3100. }
  3101. return 0;
  3102. }
  3103. inline bool rtw_macid_is_iface_specific(struct macid_ctl_t *macid_ctl, u8 id, _adapter *adapter)
  3104. {
  3105. int i;
  3106. u8 iface_bmp = 0;
  3107. for (i = 0; i < CONFIG_IFACE_NUMBER; i++) {
  3108. if (rtw_macid_is_set(&macid_ctl->if_g[i], id)) {
  3109. if (iface_bmp || i != adapter->iface_id)
  3110. return 0;
  3111. iface_bmp |= BIT(i);
  3112. }
  3113. }
  3114. return iface_bmp ? 1 : 0;
  3115. }
  3116. inline s8 rtw_macid_get_ch_g(struct macid_ctl_t *macid_ctl, u8 id)
  3117. {
  3118. int i;
  3119. for (i = 0; i < 2; i++) {
  3120. if (rtw_macid_is_set(&macid_ctl->ch_g[i], id))
  3121. return i;
  3122. }
  3123. return -1;
  3124. }
  3125. /*Record bc's mac-id and sec-cam-id*/
  3126. inline void rtw_iface_bcmc_id_set(_adapter *padapter, u8 mac_id)
  3127. {
  3128. struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
  3129. struct macid_ctl_t *macid_ctl = dvobj_to_macidctl(dvobj);
  3130. macid_ctl->iface_bmc[padapter->iface_id] = mac_id;
  3131. }
  3132. inline u8 rtw_iface_bcmc_id_get(_adapter *padapter)
  3133. {
  3134. struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
  3135. struct macid_ctl_t *macid_ctl = dvobj_to_macidctl(dvobj);
  3136. return macid_ctl->iface_bmc[padapter->iface_id];
  3137. }
  3138. #if defined(DBG_CONFIG_ERROR_RESET) && defined(CONFIG_CONCURRENT_MODE)
  3139. void rtw_iface_bcmc_sec_cam_map_restore(_adapter *adapter)
  3140. {
  3141. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  3142. struct cam_ctl_t *cam_ctl = dvobj_to_sec_camctl(dvobj);
  3143. int cam_id = -1;
  3144. cam_id = rtw_iface_bcmc_id_get(adapter);
  3145. if (cam_id != INVALID_SEC_MAC_CAM_ID)
  3146. rtw_sec_cam_map_set(&cam_ctl->used, cam_id);
  3147. }
  3148. #endif
  3149. void rtw_alloc_macid(_adapter *padapter, struct sta_info *psta)
  3150. {
  3151. int i;
  3152. _irqL irqL;
  3153. u8 bc_addr[ETH_ALEN] = {0xff, 0xff, 0xff, 0xff, 0xff, 0xff};
  3154. struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
  3155. struct macid_ctl_t *macid_ctl = dvobj_to_macidctl(dvobj);
  3156. struct macid_bmp *used_map = &macid_ctl->used;
  3157. /* static u8 last_id = 0; for testing */
  3158. u8 last_id = 0;
  3159. u8 is_bc_sta = _FALSE;
  3160. if (_rtw_memcmp(psta->cmn.mac_addr, adapter_mac_addr(padapter), ETH_ALEN)) {
  3161. psta->cmn.mac_id = macid_ctl->num;
  3162. return;
  3163. }
  3164. if (_rtw_memcmp(psta->cmn.mac_addr, bc_addr, ETH_ALEN)) {
  3165. is_bc_sta = _TRUE;
  3166. rtw_iface_bcmc_id_set(padapter, INVALID_SEC_MAC_CAM_ID); /*init default value*/
  3167. }
  3168. if (is_bc_sta
  3169. #ifdef CONFIG_CONCURRENT_MODE
  3170. && (MLME_IS_STA(padapter) || MLME_IS_NULL(padapter))
  3171. #endif
  3172. ) {
  3173. /* STA mode have no BMC data TX, shared with this macid */
  3174. /* When non-concurrent, only one BMC data TX is used, shared with this macid */
  3175. /* TODO: When concurrent, non-security BMC data TX may use this, but will not control by specific macid sleep */
  3176. i = RTW_DEFAULT_MGMT_MACID;
  3177. goto assigned;
  3178. }
  3179. _enter_critical_bh(&macid_ctl->lock, &irqL);
  3180. for (i = last_id; i < macid_ctl->num; i++) {
  3181. #ifdef CONFIG_MCC_MODE
  3182. /* macid 0/1 reserve for mcc for mgnt queue macid */
  3183. if (MCC_EN(padapter)) {
  3184. if (i == MCC_ROLE_STA_GC_MGMT_QUEUE_MACID)
  3185. continue;
  3186. if (i == MCC_ROLE_SOFTAP_GO_MGMT_QUEUE_MACID)
  3187. continue;
  3188. }
  3189. #endif /* CONFIG_MCC_MODE */
  3190. if (is_bc_sta) {
  3191. struct cam_ctl_t *cam_ctl = dvobj_to_sec_camctl(dvobj);
  3192. if ((!rtw_macid_is_used(macid_ctl, i)) && (!rtw_sec_camid_is_used(cam_ctl, i)))
  3193. break;
  3194. } else {
  3195. if (!rtw_macid_is_used(macid_ctl, i))
  3196. break;
  3197. }
  3198. }
  3199. if (i < macid_ctl->num) {
  3200. rtw_macid_map_set(used_map, i);
  3201. if (is_bc_sta) {
  3202. struct cam_ctl_t *cam_ctl = dvobj_to_sec_camctl(dvobj);
  3203. rtw_macid_map_set(&macid_ctl->bmc, i);
  3204. rtw_iface_bcmc_id_set(padapter, i);
  3205. rtw_sec_cam_map_set(&cam_ctl->used, i);
  3206. }
  3207. rtw_macid_map_set(&macid_ctl->if_g[padapter->iface_id], i);
  3208. macid_ctl->sta[i] = psta;
  3209. /* TODO ch_g? */
  3210. last_id++;
  3211. last_id %= macid_ctl->num;
  3212. }
  3213. _exit_critical_bh(&macid_ctl->lock, &irqL);
  3214. if (i >= macid_ctl->num) {
  3215. psta->cmn.mac_id = macid_ctl->num;
  3216. RTW_ERR(FUNC_ADPT_FMT" if%u, mac_addr:"MAC_FMT" no available macid\n"
  3217. , FUNC_ADPT_ARG(padapter), padapter->iface_id + 1, MAC_ARG(psta->cmn.mac_addr));
  3218. rtw_warn_on(1);
  3219. goto exit;
  3220. } else
  3221. goto assigned;
  3222. assigned:
  3223. psta->cmn.mac_id = i;
  3224. RTW_INFO(FUNC_ADPT_FMT" if%u, mac_addr:"MAC_FMT" macid:%u\n"
  3225. , FUNC_ADPT_ARG(padapter), padapter->iface_id + 1, MAC_ARG(psta->cmn.mac_addr), psta->cmn.mac_id);
  3226. exit:
  3227. return;
  3228. }
  3229. void rtw_release_macid(_adapter *padapter, struct sta_info *psta)
  3230. {
  3231. _irqL irqL;
  3232. u8 bc_addr[ETH_ALEN] = {0xff, 0xff, 0xff, 0xff, 0xff, 0xff};
  3233. struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
  3234. struct macid_ctl_t *macid_ctl = dvobj_to_macidctl(dvobj);
  3235. u8 ifbmp;
  3236. int i;
  3237. if (_rtw_memcmp(psta->cmn.mac_addr, adapter_mac_addr(padapter), ETH_ALEN))
  3238. goto exit;
  3239. if (psta->cmn.mac_id >= macid_ctl->num) {
  3240. RTW_WARN(FUNC_ADPT_FMT" if%u, mac_addr:"MAC_FMT" macid:%u not valid\n"
  3241. , FUNC_ADPT_ARG(padapter), padapter->iface_id + 1
  3242. , MAC_ARG(psta->cmn.mac_addr), psta->cmn.mac_id);
  3243. rtw_warn_on(1);
  3244. goto exit;
  3245. }
  3246. if (psta->cmn.mac_id == RTW_DEFAULT_MGMT_MACID)
  3247. goto msg;
  3248. _enter_critical_bh(&macid_ctl->lock, &irqL);
  3249. if (!rtw_macid_is_used(macid_ctl, psta->cmn.mac_id)) {
  3250. RTW_WARN(FUNC_ADPT_FMT" if%u, mac_addr:"MAC_FMT" macid:%u not used\n"
  3251. , FUNC_ADPT_ARG(padapter), padapter->iface_id + 1
  3252. , MAC_ARG(psta->cmn.mac_addr), psta->cmn.mac_id);
  3253. _exit_critical_bh(&macid_ctl->lock, &irqL);
  3254. rtw_warn_on(1);
  3255. goto exit;
  3256. }
  3257. ifbmp = rtw_macid_get_iface_bmp(macid_ctl, psta->cmn.mac_id);
  3258. if (!(ifbmp & BIT(padapter->iface_id))) {
  3259. RTW_WARN(FUNC_ADPT_FMT" if%u, mac_addr:"MAC_FMT" macid:%u not used by self\n"
  3260. , FUNC_ADPT_ARG(padapter), padapter->iface_id + 1
  3261. , MAC_ARG(psta->cmn.mac_addr), psta->cmn.mac_id);
  3262. _exit_critical_bh(&macid_ctl->lock, &irqL);
  3263. rtw_warn_on(1);
  3264. goto exit;
  3265. }
  3266. if (_rtw_memcmp(psta->cmn.mac_addr, bc_addr, ETH_ALEN)) {
  3267. struct cam_ctl_t *cam_ctl = dvobj_to_sec_camctl(dvobj);
  3268. u8 id = rtw_iface_bcmc_id_get(padapter);
  3269. if ((id != INVALID_SEC_MAC_CAM_ID) && (id < cam_ctl->num))
  3270. rtw_sec_cam_map_clr(&cam_ctl->used, id);
  3271. rtw_iface_bcmc_id_set(padapter, INVALID_SEC_MAC_CAM_ID);
  3272. }
  3273. rtw_macid_map_clr(&macid_ctl->if_g[padapter->iface_id], psta->cmn.mac_id);
  3274. ifbmp &= ~BIT(padapter->iface_id);
  3275. if (!ifbmp) { /* only used by self */
  3276. rtw_macid_map_clr(&macid_ctl->used, psta->cmn.mac_id);
  3277. rtw_macid_map_clr(&macid_ctl->bmc, psta->cmn.mac_id);
  3278. for (i = 0; i < 2; i++)
  3279. rtw_macid_map_clr(&macid_ctl->ch_g[i], psta->cmn.mac_id);
  3280. macid_ctl->sta[psta->cmn.mac_id] = NULL;
  3281. }
  3282. _exit_critical_bh(&macid_ctl->lock, &irqL);
  3283. msg:
  3284. RTW_INFO(FUNC_ADPT_FMT" if%u, mac_addr:"MAC_FMT" macid:%u\n"
  3285. , FUNC_ADPT_ARG(padapter), padapter->iface_id + 1
  3286. , MAC_ARG(psta->cmn.mac_addr), psta->cmn.mac_id
  3287. );
  3288. exit:
  3289. psta->cmn.mac_id = macid_ctl->num;
  3290. }
  3291. /* For 8188E RA */
  3292. u8 rtw_search_max_mac_id(_adapter *padapter)
  3293. {
  3294. u8 max_mac_id = 0;
  3295. struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
  3296. struct macid_ctl_t *macid_ctl = dvobj_to_macidctl(dvobj);
  3297. int i;
  3298. _irqL irqL;
  3299. /* TODO: Only search for connected macid? */
  3300. _enter_critical_bh(&macid_ctl->lock, &irqL);
  3301. for (i = (macid_ctl->num - 1); i > 0 ; i--) {
  3302. if (rtw_macid_is_used(macid_ctl, i))
  3303. break;
  3304. }
  3305. _exit_critical_bh(&macid_ctl->lock, &irqL);
  3306. max_mac_id = i;
  3307. return max_mac_id;
  3308. }
  3309. inline void rtw_macid_ctl_set_h2c_msr(struct macid_ctl_t *macid_ctl, u8 id, u8 h2c_msr)
  3310. {
  3311. if (id >= macid_ctl->num) {
  3312. rtw_warn_on(1);
  3313. return;
  3314. }
  3315. macid_ctl->h2c_msr[id] = h2c_msr;
  3316. if (0)
  3317. RTW_INFO("macid:%u, h2c_msr:"H2C_MSR_FMT"\n", id, H2C_MSR_ARG(&macid_ctl->h2c_msr[id]));
  3318. }
  3319. inline void rtw_macid_ctl_set_bw(struct macid_ctl_t *macid_ctl, u8 id, u8 bw)
  3320. {
  3321. if (id >= macid_ctl->num) {
  3322. rtw_warn_on(1);
  3323. return;
  3324. }
  3325. macid_ctl->bw[id] = bw;
  3326. if (0)
  3327. RTW_INFO("macid:%u, bw:%s\n", id, ch_width_str(macid_ctl->bw[id]));
  3328. }
  3329. inline void rtw_macid_ctl_set_vht_en(struct macid_ctl_t *macid_ctl, u8 id, u8 en)
  3330. {
  3331. if (id >= macid_ctl->num) {
  3332. rtw_warn_on(1);
  3333. return;
  3334. }
  3335. macid_ctl->vht_en[id] = en;
  3336. if (0)
  3337. RTW_INFO("macid:%u, vht_en:%u\n", id, macid_ctl->vht_en[id]);
  3338. }
  3339. inline void rtw_macid_ctl_set_rate_bmp0(struct macid_ctl_t *macid_ctl, u8 id, u32 bmp)
  3340. {
  3341. if (id >= macid_ctl->num) {
  3342. rtw_warn_on(1);
  3343. return;
  3344. }
  3345. macid_ctl->rate_bmp0[id] = bmp;
  3346. if (0)
  3347. RTW_INFO("macid:%u, rate_bmp0:0x%08X\n", id, macid_ctl->rate_bmp0[id]);
  3348. }
  3349. inline void rtw_macid_ctl_set_rate_bmp1(struct macid_ctl_t *macid_ctl, u8 id, u32 bmp)
  3350. {
  3351. if (id >= macid_ctl->num) {
  3352. rtw_warn_on(1);
  3353. return;
  3354. }
  3355. macid_ctl->rate_bmp1[id] = bmp;
  3356. if (0)
  3357. RTW_INFO("macid:%u, rate_bmp1:0x%08X\n", id, macid_ctl->rate_bmp1[id]);
  3358. }
  3359. inline void rtw_macid_ctl_init_sleep_reg(struct macid_ctl_t *macid_ctl, u16 m0, u16 m1, u16 m2, u16 m3)
  3360. {
  3361. macid_ctl->reg_sleep_m0 = m0;
  3362. #if (MACID_NUM_SW_LIMIT > 32)
  3363. macid_ctl->reg_sleep_m1 = m1;
  3364. #endif
  3365. #if (MACID_NUM_SW_LIMIT > 64)
  3366. macid_ctl->reg_sleep_m2 = m2;
  3367. #endif
  3368. #if (MACID_NUM_SW_LIMIT > 96)
  3369. macid_ctl->reg_sleep_m3 = m3;
  3370. #endif
  3371. }
  3372. inline void rtw_macid_ctl_init(struct macid_ctl_t *macid_ctl)
  3373. {
  3374. int i;
  3375. u8 id = RTW_DEFAULT_MGMT_MACID;
  3376. rtw_macid_map_set(&macid_ctl->used, id);
  3377. rtw_macid_map_set(&macid_ctl->bmc, id);
  3378. for (i = 0; i < CONFIG_IFACE_NUMBER; i++)
  3379. rtw_macid_map_set(&macid_ctl->if_g[i], id);
  3380. macid_ctl->sta[id] = NULL;
  3381. _rtw_spinlock_init(&macid_ctl->lock);
  3382. }
  3383. inline void rtw_macid_ctl_deinit(struct macid_ctl_t *macid_ctl)
  3384. {
  3385. _rtw_spinlock_free(&macid_ctl->lock);
  3386. }
  3387. inline bool rtw_bmp_is_set(const u8 *bmp, u8 bmp_len, u8 id)
  3388. {
  3389. if (id / 8 >= bmp_len)
  3390. return 0;
  3391. return bmp[id / 8] & BIT(id % 8);
  3392. }
  3393. inline void rtw_bmp_set(u8 *bmp, u8 bmp_len, u8 id)
  3394. {
  3395. if (id / 8 < bmp_len)
  3396. bmp[id / 8] |= BIT(id % 8);
  3397. }
  3398. inline void rtw_bmp_clear(u8 *bmp, u8 bmp_len, u8 id)
  3399. {
  3400. if (id / 8 < bmp_len)
  3401. bmp[id / 8] &= ~BIT(id % 8);
  3402. }
  3403. inline bool rtw_bmp_not_empty(const u8 *bmp, u8 bmp_len)
  3404. {
  3405. int i;
  3406. for (i = 0; i < bmp_len; i++) {
  3407. if (bmp[i])
  3408. return 1;
  3409. }
  3410. return 0;
  3411. }
  3412. inline bool rtw_bmp_not_empty_exclude_bit0(const u8 *bmp, u8 bmp_len)
  3413. {
  3414. int i;
  3415. for (i = 0; i < bmp_len; i++) {
  3416. if (i == 0) {
  3417. if (bmp[i] & 0xFE)
  3418. return 1;
  3419. } else {
  3420. if (bmp[i])
  3421. return 1;
  3422. }
  3423. }
  3424. return 0;
  3425. }
  3426. #ifdef CONFIG_AP_MODE
  3427. /* Check the id be set or not in map , if yes , return a none zero value*/
  3428. bool rtw_tim_map_is_set(_adapter *padapter, const u8 *map, u8 id)
  3429. {
  3430. return rtw_bmp_is_set(map, padapter->stapriv.aid_bmp_len, id);
  3431. }
  3432. /* Set the id into map array*/
  3433. void rtw_tim_map_set(_adapter *padapter, u8 *map, u8 id)
  3434. {
  3435. rtw_bmp_set(map, padapter->stapriv.aid_bmp_len, id);
  3436. }
  3437. /* Clear the id from map array*/
  3438. void rtw_tim_map_clear(_adapter *padapter, u8 *map, u8 id)
  3439. {
  3440. rtw_bmp_clear(map, padapter->stapriv.aid_bmp_len, id);
  3441. }
  3442. /* Check have anyone bit be set , if yes return true*/
  3443. bool rtw_tim_map_anyone_be_set(_adapter *padapter, const u8 *map)
  3444. {
  3445. return rtw_bmp_not_empty(map, padapter->stapriv.aid_bmp_len);
  3446. }
  3447. /* Check have anyone bit be set exclude bit0 , if yes return true*/
  3448. bool rtw_tim_map_anyone_be_set_exclude_aid0(_adapter *padapter, const u8 *map)
  3449. {
  3450. return rtw_bmp_not_empty_exclude_bit0(map, padapter->stapriv.aid_bmp_len);
  3451. }
  3452. #endif /* CONFIG_AP_MODE */
  3453. #if 0
  3454. unsigned int setup_beacon_frame(_adapter *padapter, unsigned char *beacon_frame)
  3455. {
  3456. unsigned short ATIMWindow;
  3457. unsigned char *pframe;
  3458. struct tx_desc *ptxdesc;
  3459. struct rtw_ieee80211_hdr *pwlanhdr;
  3460. unsigned short *fctrl;
  3461. unsigned int rate_len, len = 0;
  3462. struct xmit_priv *pxmitpriv = &(padapter->xmitpriv);
  3463. struct mlme_ext_priv *pmlmeext = &(padapter->mlmeextpriv);
  3464. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  3465. WLAN_BSSID_EX *cur_network = &(pmlmeinfo->network);
  3466. u8 bc_addr[] = {0xff, 0xff, 0xff, 0xff, 0xff, 0xff};
  3467. _rtw_memset(beacon_frame, 0, 256);
  3468. pframe = beacon_frame + TXDESC_SIZE;
  3469. pwlanhdr = (struct rtw_ieee80211_hdr *)pframe;
  3470. fctrl = &(pwlanhdr->frame_ctl);
  3471. *(fctrl) = 0;
  3472. _rtw_memcpy(pwlanhdr->addr1, bc_addr, ETH_ALEN);
  3473. _rtw_memcpy(pwlanhdr->addr2, adapter_mac_addr(padapter), ETH_ALEN);
  3474. _rtw_memcpy(pwlanhdr->addr3, get_my_bssid(cur_network), ETH_ALEN);
  3475. set_frame_sub_type(pframe, WIFI_BEACON);
  3476. pframe += sizeof(struct rtw_ieee80211_hdr_3addr);
  3477. len = sizeof(struct rtw_ieee80211_hdr_3addr);
  3478. /* timestamp will be inserted by hardware */
  3479. pframe += 8;
  3480. len += 8;
  3481. /* beacon interval: 2 bytes */
  3482. _rtw_memcpy(pframe, (unsigned char *)(rtw_get_beacon_interval_from_ie(cur_network->IEs)), 2);
  3483. pframe += 2;
  3484. len += 2;
  3485. /* capability info: 2 bytes */
  3486. _rtw_memcpy(pframe, (unsigned char *)(rtw_get_capability_from_ie(cur_network->IEs)), 2);
  3487. pframe += 2;
  3488. len += 2;
  3489. /* SSID */
  3490. pframe = rtw_set_ie(pframe, _SSID_IE_, cur_network->Ssid.SsidLength, cur_network->Ssid.Ssid, &len);
  3491. /* supported rates... */
  3492. rate_len = rtw_get_rateset_len(cur_network->SupportedRates);
  3493. pframe = rtw_set_ie(pframe, _SUPPORTEDRATES_IE_, ((rate_len > 8) ? 8 : rate_len), cur_network->SupportedRates, &len);
  3494. /* DS parameter set */
  3495. pframe = rtw_set_ie(pframe, _DSSET_IE_, 1, (unsigned char *)&(cur_network->Configuration.DSConfig), &len);
  3496. /* IBSS Parameter Set... */
  3497. /* ATIMWindow = cur->Configuration.ATIMWindow; */
  3498. ATIMWindow = 0;
  3499. pframe = rtw_set_ie(pframe, _IBSS_PARA_IE_, 2, (unsigned char *)(&ATIMWindow), &len);
  3500. /* todo: ERP IE */
  3501. /* EXTERNDED SUPPORTED RATE */
  3502. if (rate_len > 8)
  3503. pframe = rtw_set_ie(pframe, _EXT_SUPPORTEDRATES_IE_, (rate_len - 8), (cur_network->SupportedRates + 8), &len);
  3504. if ((len + TXDESC_SIZE) > 256) {
  3505. /* RTW_INFO("marc: beacon frame too large\n"); */
  3506. return 0;
  3507. }
  3508. /* fill the tx descriptor */
  3509. ptxdesc = (struct tx_desc *)beacon_frame;
  3510. /* offset 0 */
  3511. ptxdesc->txdw0 |= cpu_to_le32(len & 0x0000ffff);
  3512. ptxdesc->txdw0 |= cpu_to_le32(((TXDESC_SIZE + OFFSET_SZ) << OFFSET_SHT) & 0x00ff0000); /* default = 32 bytes for TX Desc */
  3513. /* offset 4 */
  3514. ptxdesc->txdw1 |= cpu_to_le32((0x10 << QSEL_SHT) & 0x00001f00);
  3515. /* offset 8 */
  3516. ptxdesc->txdw2 |= cpu_to_le32(BMC);
  3517. ptxdesc->txdw2 |= cpu_to_le32(BK);
  3518. /* offset 16 */
  3519. ptxdesc->txdw4 = 0x80000000;
  3520. /* offset 20 */
  3521. ptxdesc->txdw5 = 0x00000000; /* 1M */
  3522. return len + TXDESC_SIZE;
  3523. }
  3524. #endif
  3525. _adapter *dvobj_get_port0_adapter(struct dvobj_priv *dvobj)
  3526. {
  3527. _adapter *port0_iface = NULL;
  3528. int i;
  3529. for (i = 0; i < dvobj->iface_nums; i++) {
  3530. if (get_hw_port(dvobj->padapters[i]) == HW_PORT0)
  3531. break;
  3532. }
  3533. if (i < 0 || i >= dvobj->iface_nums)
  3534. rtw_warn_on(1);
  3535. else
  3536. port0_iface = dvobj->padapters[i];
  3537. return port0_iface;
  3538. }
  3539. _adapter *dvobj_get_unregisterd_adapter(struct dvobj_priv *dvobj)
  3540. {
  3541. _adapter *adapter = NULL;
  3542. int i;
  3543. for (i = 0; i < dvobj->iface_nums; i++) {
  3544. if (dvobj->padapters[i]->registered == 0)
  3545. break;
  3546. }
  3547. if (i < dvobj->iface_nums)
  3548. adapter = dvobj->padapters[i];
  3549. return adapter;
  3550. }
  3551. _adapter *dvobj_get_adapter_by_addr(struct dvobj_priv *dvobj, u8 *addr)
  3552. {
  3553. _adapter *adapter = NULL;
  3554. int i;
  3555. for (i = 0; i < dvobj->iface_nums; i++) {
  3556. if (_rtw_memcmp(dvobj->padapters[i]->mac_addr, addr, ETH_ALEN) == _TRUE)
  3557. break;
  3558. }
  3559. if (i < dvobj->iface_nums)
  3560. adapter = dvobj->padapters[i];
  3561. return adapter;
  3562. }
  3563. #ifdef CONFIG_WOWLAN
  3564. bool rtw_wowlan_parser_pattern_cmd(u8 *input, char *pattern,
  3565. int *pattern_len, char *bit_mask)
  3566. {
  3567. char *cp = NULL, *end = NULL;
  3568. size_t len = 0;
  3569. int pos = 0, mask_pos = 0, res = 0;
  3570. u8 member[2] = {0};
  3571. cp = strchr(input, '=');
  3572. if (cp) {
  3573. *cp = 0;
  3574. cp++;
  3575. input = cp;
  3576. }
  3577. while (1) {
  3578. cp = strchr(input, ':');
  3579. if (cp) {
  3580. len = strlen(input) - strlen(cp);
  3581. *cp = 0;
  3582. cp++;
  3583. } else
  3584. len = 2;
  3585. if (bit_mask && (strcmp(input, "-") == 0 ||
  3586. strcmp(input, "xx") == 0 ||
  3587. strcmp(input, "--") == 0)) {
  3588. /* skip this byte and leave mask bit unset */
  3589. } else {
  3590. u8 hex;
  3591. strncpy(member, input, len);
  3592. if (!rtw_check_pattern_valid(member, sizeof(member))) {
  3593. RTW_INFO("%s:[ERROR] pattern is invalid!!\n",
  3594. __func__);
  3595. goto error;
  3596. }
  3597. res = sscanf(member, "%02hhx", &hex);
  3598. pattern[pos] = hex;
  3599. mask_pos = pos / 8;
  3600. if (bit_mask)
  3601. bit_mask[mask_pos] |= 1 << (pos % 8);
  3602. }
  3603. pos++;
  3604. if (!cp)
  3605. break;
  3606. input = cp;
  3607. }
  3608. (*pattern_len) = pos;
  3609. return _TRUE;
  3610. error:
  3611. return _FALSE;
  3612. }
  3613. bool rtw_check_pattern_valid(u8 *input, u8 len)
  3614. {
  3615. int i = 0;
  3616. bool res = _FALSE;
  3617. if (len != 2)
  3618. goto exit;
  3619. for (i = 0 ; i < len ; i++)
  3620. if (IsHexDigit(input[i]) == _FALSE)
  3621. goto exit;
  3622. res = _SUCCESS;
  3623. exit:
  3624. return res;
  3625. }
  3626. void rtw_wow_pattern_sw_reset(_adapter *adapter)
  3627. {
  3628. int i;
  3629. struct pwrctrl_priv *pwrctrlpriv = adapter_to_pwrctl(adapter);
  3630. if (pwrctrlpriv->default_patterns_en == _TRUE)
  3631. pwrctrlpriv->wowlan_pattern_idx = DEFAULT_PATTERN_NUM;
  3632. else
  3633. pwrctrlpriv->wowlan_pattern_idx = 0;
  3634. for (i = 0 ; i < MAX_WKFM_CAM_NUM; i++) {
  3635. _rtw_memset(pwrctrlpriv->patterns[i].content, '\0', sizeof(pwrctrlpriv->patterns[i].content));
  3636. _rtw_memset(pwrctrlpriv->patterns[i].mask, '\0', sizeof(pwrctrlpriv->patterns[i].mask));
  3637. pwrctrlpriv->patterns[i].len = 0;
  3638. }
  3639. }
  3640. u8 rtw_set_default_pattern(_adapter *adapter)
  3641. {
  3642. struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(adapter);
  3643. struct mlme_ext_priv *pmlmeext = &adapter->mlmeextpriv;
  3644. struct mlme_ext_info *pmlmeinfo = &pmlmeext->mlmext_info;
  3645. u8 index = 0;
  3646. u8 multicast_addr[3] = {0x01, 0x00, 0x5e};
  3647. u8 multicast_ip[4] = {0xe0, 0x28, 0x28, 0x2a};
  3648. u8 unicast_mask[5] = {0x3f, 0x70, 0x80, 0xc0, 0x03};
  3649. u8 icmpv6_mask[7] = {0x00, 0x70, 0x10, 0x00, 0xc0, 0xc0, 0x3f};
  3650. u8 multicast_mask[5] = {0x07, 0x70, 0x80, 0xc0, 0x03};
  3651. u8 ip_protocol[3] = {0x08, 0x00, 0x45};
  3652. u8 ipv6_protocol[3] = {0x86, 0xdd, 0x60};
  3653. u8 *target = NULL;
  3654. if (pwrpriv->default_patterns_en == _FALSE)
  3655. return 0;
  3656. for (index = 0 ; index < DEFAULT_PATTERN_NUM ; index++) {
  3657. _rtw_memset(pwrpriv->patterns[index].content, 0,
  3658. sizeof(pwrpriv->patterns[index].content));
  3659. _rtw_memset(pwrpriv->patterns[index].mask, 0,
  3660. sizeof(pwrpriv->patterns[index].mask));
  3661. pwrpriv->patterns[index].len = 0;
  3662. }
  3663. /*TCP/ICMP unicast*/
  3664. for (index = 0 ; index < DEFAULT_PATTERN_NUM ; index++) {
  3665. switch (index) {
  3666. case 0:
  3667. target = pwrpriv->patterns[index].content;
  3668. _rtw_memcpy(target, adapter_mac_addr(adapter),
  3669. ETH_ALEN);
  3670. target += ETH_TYPE_OFFSET;
  3671. _rtw_memcpy(target, &ip_protocol,
  3672. sizeof(ip_protocol));
  3673. /* TCP */
  3674. target += (PROTOCOL_OFFSET - ETH_TYPE_OFFSET);
  3675. _rtw_memset(target, 0x06, 1);
  3676. target += (IP_OFFSET - PROTOCOL_OFFSET);
  3677. _rtw_memcpy(target, pmlmeinfo->ip_addr,
  3678. RTW_IP_ADDR_LEN);
  3679. _rtw_memcpy(pwrpriv->patterns[index].mask,
  3680. &unicast_mask, sizeof(unicast_mask));
  3681. pwrpriv->patterns[index].len =
  3682. IP_OFFSET + RTW_IP_ADDR_LEN;
  3683. break;
  3684. case 1:
  3685. target = pwrpriv->patterns[index].content;
  3686. _rtw_memcpy(target, adapter_mac_addr(adapter),
  3687. ETH_ALEN);
  3688. target += ETH_TYPE_OFFSET;
  3689. _rtw_memcpy(target, &ip_protocol, sizeof(ip_protocol));
  3690. /* ICMP */
  3691. target += (PROTOCOL_OFFSET - ETH_TYPE_OFFSET);
  3692. _rtw_memset(target, 0x01, 1);
  3693. target += (IP_OFFSET - PROTOCOL_OFFSET);
  3694. _rtw_memcpy(target, pmlmeinfo->ip_addr,
  3695. RTW_IP_ADDR_LEN);
  3696. _rtw_memcpy(pwrpriv->patterns[index].mask,
  3697. &unicast_mask, sizeof(unicast_mask));
  3698. pwrpriv->patterns[index].len =
  3699. IP_OFFSET + RTW_IP_ADDR_LEN;
  3700. break;
  3701. #ifdef CONFIG_IPV6
  3702. case 2:
  3703. if (pwrpriv->wowlan_ns_offload_en == _TRUE) {
  3704. target = pwrpriv->patterns[index].content;
  3705. target += ETH_TYPE_OFFSET;
  3706. _rtw_memcpy(target, &ipv6_protocol,
  3707. sizeof(ipv6_protocol));
  3708. /* ICMPv6 */
  3709. target += (IPv6_PROTOCOL_OFFSET -
  3710. ETH_TYPE_OFFSET);
  3711. _rtw_memset(target, 0x3a, 1);
  3712. target += (IPv6_OFFSET - IPv6_PROTOCOL_OFFSET);
  3713. _rtw_memcpy(target, pmlmeinfo->ip6_addr,
  3714. RTW_IPv6_ADDR_LEN);
  3715. _rtw_memcpy(pwrpriv->patterns[index].mask,
  3716. &icmpv6_mask, sizeof(icmpv6_mask));
  3717. pwrpriv->patterns[index].len =
  3718. IPv6_OFFSET + RTW_IPv6_ADDR_LEN;
  3719. }
  3720. break;
  3721. #endif /*CONFIG_IPV6*/
  3722. case 3:
  3723. target = pwrpriv->patterns[index].content;
  3724. _rtw_memcpy(target, &multicast_addr,
  3725. sizeof(multicast_addr));
  3726. target += ETH_TYPE_OFFSET;
  3727. _rtw_memcpy(target, &ip_protocol, sizeof(ip_protocol));
  3728. /* UDP */
  3729. target += (PROTOCOL_OFFSET - ETH_TYPE_OFFSET);
  3730. _rtw_memset(target, 0x11, 1);
  3731. target += (IP_OFFSET - PROTOCOL_OFFSET);
  3732. _rtw_memcpy(target, &multicast_ip,
  3733. sizeof(multicast_ip));
  3734. _rtw_memcpy(pwrpriv->patterns[index].mask,
  3735. &multicast_mask, sizeof(multicast_mask));
  3736. pwrpriv->patterns[index].len =
  3737. IP_OFFSET + sizeof(multicast_ip);
  3738. break;
  3739. default:
  3740. break;
  3741. }
  3742. }
  3743. return index;
  3744. }
  3745. void rtw_dump_priv_pattern(_adapter *adapter, u8 idx)
  3746. {
  3747. struct pwrctrl_priv *pwrctl = adapter_to_pwrctl(adapter);
  3748. char str_1[128];
  3749. char *p_str;
  3750. u8 val8 = 0;
  3751. int i = 0, j = 0, len = 0, max_len = 0;
  3752. RTW_INFO("=========[%d]========\n", idx);
  3753. RTW_INFO(">>>priv_pattern_content:\n");
  3754. p_str = str_1;
  3755. max_len = sizeof(str_1);
  3756. for (i = 0 ; i < MAX_WKFM_PATTERN_SIZE / 8 ; i++) {
  3757. _rtw_memset(p_str, 0, max_len);
  3758. len = 0;
  3759. for (j = 0 ; j < 8 ; j++) {
  3760. val8 = pwrctl->patterns[idx].content[i * 8 + j];
  3761. len += snprintf(p_str + len, max_len - len,
  3762. "%02x ", val8);
  3763. }
  3764. RTW_INFO("%s\n", p_str);
  3765. }
  3766. RTW_INFO(">>>priv_pattern_mask:\n");
  3767. for (i = 0 ; i < MAX_WKFM_SIZE / 8 ; i++) {
  3768. _rtw_memset(p_str, 0, max_len);
  3769. len = 0;
  3770. for (j = 0 ; j < 8 ; j++) {
  3771. val8 = pwrctl->patterns[idx].mask[i * 8 + j];
  3772. len += snprintf(p_str + len, max_len - len,
  3773. "%02x ", val8);
  3774. }
  3775. RTW_INFO("%s\n", p_str);
  3776. }
  3777. RTW_INFO(">>>priv_pattern_len:\n");
  3778. RTW_INFO("%s: len: %d\n", __func__, pwrctl->patterns[idx].len);
  3779. }
  3780. void rtw_wow_pattern_sw_dump(_adapter *adapter)
  3781. {
  3782. int i;
  3783. RTW_INFO("********[RTK priv-patterns]*********\n");
  3784. for (i = 0 ; i < MAX_WKFM_CAM_NUM; i++)
  3785. rtw_dump_priv_pattern(adapter, i);
  3786. }
  3787. void rtw_get_sec_iv(PADAPTER padapter, u8 *pcur_dot11txpn, u8 *StaAddr)
  3788. {
  3789. struct sta_info *psta;
  3790. struct security_priv *psecpriv = &padapter->securitypriv;
  3791. _rtw_memset(pcur_dot11txpn, 0, 8);
  3792. if (NULL == StaAddr)
  3793. return;
  3794. psta = rtw_get_stainfo(&padapter->stapriv, StaAddr);
  3795. RTW_INFO("%s(): StaAddr: %02x %02x %02x %02x %02x %02x\n",
  3796. __func__, StaAddr[0], StaAddr[1], StaAddr[2],
  3797. StaAddr[3], StaAddr[4], StaAddr[5]);
  3798. if (psta) {
  3799. if (psecpriv->dot11PrivacyAlgrthm == _AES_)
  3800. AES_IV(pcur_dot11txpn, psta->dot11txpn, 0);
  3801. else if (psecpriv->dot11PrivacyAlgrthm == _TKIP_)
  3802. TKIP_IV(pcur_dot11txpn, psta->dot11txpn, 0);
  3803. RTW_INFO("%s(): CurrentIV: %02x %02x %02x %02x %02x %02x %02x %02x\n"
  3804. , __func__, pcur_dot11txpn[0], pcur_dot11txpn[1],
  3805. pcur_dot11txpn[2], pcur_dot11txpn[3], pcur_dot11txpn[4],
  3806. pcur_dot11txpn[5], pcur_dot11txpn[6], pcur_dot11txpn[7]);
  3807. }
  3808. }
  3809. #endif /* CONFIG_WOWLAN */
  3810. #ifdef CONFIG_PNO_SUPPORT
  3811. #define CSCAN_TLV_TYPE_SSID_IE 'S'
  3812. #define CIPHER_IE "key_mgmt="
  3813. #define CIPHER_NONE "NONE"
  3814. #define CIPHER_WPA_PSK "WPA-PSK"
  3815. #define CIPHER_WPA_EAP "WPA-EAP IEEE8021X"
  3816. /*
  3817. * SSIDs list parsing from cscan tlv list
  3818. */
  3819. int rtw_parse_ssid_list_tlv(char **list_str, pno_ssid_t *ssid,
  3820. int max, int *bytes_left)
  3821. {
  3822. char *str;
  3823. int idx = 0;
  3824. if ((list_str == NULL) || (*list_str == NULL) || (*bytes_left < 0)) {
  3825. RTW_INFO("%s error paramters\n", __func__);
  3826. return -1;
  3827. }
  3828. str = *list_str;
  3829. while (*bytes_left > 0) {
  3830. if (str[0] != CSCAN_TLV_TYPE_SSID_IE) {
  3831. *list_str = str;
  3832. RTW_INFO("nssid=%d left_parse=%d %d\n", idx, *bytes_left, str[0]);
  3833. return idx;
  3834. }
  3835. /* Get proper CSCAN_TLV_TYPE_SSID_IE */
  3836. *bytes_left -= 1;
  3837. str += 1;
  3838. if (str[0] == 0) {
  3839. /* Broadcast SSID */
  3840. ssid[idx].SSID_len = 0;
  3841. memset((char *)ssid[idx].SSID, 0x0, WLAN_SSID_MAXLEN);
  3842. *bytes_left -= 1;
  3843. str += 1;
  3844. RTW_INFO("BROADCAST SCAN left=%d\n", *bytes_left);
  3845. } else if (str[0] <= WLAN_SSID_MAXLEN) {
  3846. /* Get proper SSID size */
  3847. ssid[idx].SSID_len = str[0];
  3848. *bytes_left -= 1;
  3849. str += 1;
  3850. /* Get SSID */
  3851. if (ssid[idx].SSID_len > *bytes_left) {
  3852. RTW_INFO("%s out of memory range len=%d but left=%d\n",
  3853. __func__, ssid[idx].SSID_len, *bytes_left);
  3854. return -1;
  3855. }
  3856. memcpy((char *)ssid[idx].SSID, str, ssid[idx].SSID_len);
  3857. *bytes_left -= ssid[idx].SSID_len;
  3858. str += ssid[idx].SSID_len;
  3859. RTW_INFO("%s :size=%d left=%d\n",
  3860. (char *)ssid[idx].SSID, ssid[idx].SSID_len, *bytes_left);
  3861. } else {
  3862. RTW_INFO("### SSID size more that %d\n", str[0]);
  3863. return -1;
  3864. }
  3865. if (idx++ > max) {
  3866. RTW_INFO("%s number of SSIDs more that %d\n", __func__, idx);
  3867. return -1;
  3868. }
  3869. }
  3870. *list_str = str;
  3871. return idx;
  3872. }
  3873. int rtw_parse_cipher_list(struct pno_nlo_info *nlo_info, char *list_str)
  3874. {
  3875. char *pch, *pnext, *pend;
  3876. u8 key_len = 0, index = 0;
  3877. pch = list_str;
  3878. if (nlo_info == NULL || list_str == NULL) {
  3879. RTW_INFO("%s error paramters\n", __func__);
  3880. return -1;
  3881. }
  3882. while (strlen(pch) != 0) {
  3883. pnext = strstr(pch, "key_mgmt=");
  3884. if (pnext != NULL) {
  3885. pch = pnext + strlen(CIPHER_IE);
  3886. pend = strstr(pch, "}");
  3887. if (strncmp(pch, CIPHER_NONE,
  3888. strlen(CIPHER_NONE)) == 0)
  3889. nlo_info->ssid_cipher_info[index] = 0x00;
  3890. else if (strncmp(pch, CIPHER_WPA_PSK,
  3891. strlen(CIPHER_WPA_PSK)) == 0)
  3892. nlo_info->ssid_cipher_info[index] = 0x66;
  3893. else if (strncmp(pch, CIPHER_WPA_EAP,
  3894. strlen(CIPHER_WPA_EAP)) == 0)
  3895. nlo_info->ssid_cipher_info[index] = 0x01;
  3896. index++;
  3897. pch = pend + 1;
  3898. } else
  3899. break;
  3900. }
  3901. return 0;
  3902. }
  3903. int rtw_dev_nlo_info_set(struct pno_nlo_info *nlo_info, pno_ssid_t *ssid,
  3904. int num, int pno_time, int pno_repeat, int pno_freq_expo_max)
  3905. {
  3906. int i = 0;
  3907. struct file *fp;
  3908. mm_segment_t fs;
  3909. loff_t pos = 0;
  3910. u8 *source = NULL;
  3911. long len = 0;
  3912. RTW_INFO("+%s+\n", __func__);
  3913. nlo_info->fast_scan_period = pno_time;
  3914. nlo_info->ssid_num = num & BIT_LEN_MASK_32(8);
  3915. nlo_info->hidden_ssid_num = num & BIT_LEN_MASK_32(8);
  3916. nlo_info->slow_scan_period = (pno_time * 2);
  3917. nlo_info->fast_scan_iterations = 5;
  3918. if (nlo_info->hidden_ssid_num > 8)
  3919. nlo_info->hidden_ssid_num = 8;
  3920. /* TODO: channel list and probe index is all empty. */
  3921. for (i = 0 ; i < num ; i++) {
  3922. nlo_info->ssid_length[i]
  3923. = ssid[i].SSID_len;
  3924. }
  3925. /* cipher array */
  3926. fp = filp_open("/data/misc/wifi/wpa_supplicant.conf", O_RDONLY, 0644);
  3927. if (IS_ERR(fp)) {
  3928. RTW_INFO("Error, wpa_supplicant.conf doesn't exist.\n");
  3929. RTW_INFO("Error, cipher array using default value.\n");
  3930. return 0;
  3931. }
  3932. len = i_size_read(fp->f_path.dentry->d_inode);
  3933. if (len < 0 || len > 2048) {
  3934. RTW_INFO("Error, file size is bigger than 2048.\n");
  3935. RTW_INFO("Error, cipher array using default value.\n");
  3936. return 0;
  3937. }
  3938. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5, 10, 0))
  3939. fs = get_fs();
  3940. set_fs(KERNEL_DS);
  3941. #else
  3942. fs = force_uaccess_begin();
  3943. #endif
  3944. source = rtw_zmalloc(2048);
  3945. if (source != NULL) {
  3946. len = vfs_read(fp, source, len, &pos);
  3947. rtw_parse_cipher_list(nlo_info, source);
  3948. rtw_mfree(source, 2048);
  3949. }
  3950. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5, 10, 0))
  3951. set_fs(fs);
  3952. #else
  3953. force_uaccess_end(fs);
  3954. #endif
  3955. filp_close(fp, NULL);
  3956. RTW_INFO("-%s-\n", __func__);
  3957. return 0;
  3958. }
  3959. int rtw_dev_ssid_list_set(struct pno_ssid_list *pno_ssid_list,
  3960. pno_ssid_t *ssid, u8 num)
  3961. {
  3962. int i = 0;
  3963. if (num > MAX_PNO_LIST_COUNT)
  3964. num = MAX_PNO_LIST_COUNT;
  3965. for (i = 0 ; i < num ; i++) {
  3966. _rtw_memcpy(&pno_ssid_list->node[i].SSID,
  3967. ssid[i].SSID, ssid[i].SSID_len);
  3968. pno_ssid_list->node[i].SSID_len = ssid[i].SSID_len;
  3969. }
  3970. return 0;
  3971. }
  3972. int rtw_dev_scan_info_set(_adapter *padapter, pno_ssid_t *ssid,
  3973. unsigned char ch, unsigned char ch_offset, unsigned short bw_mode)
  3974. {
  3975. struct pwrctrl_priv *pwrctl = adapter_to_pwrctl(padapter);
  3976. struct pno_scan_info *scan_info = pwrctl->pscan_info;
  3977. int i;
  3978. scan_info->channel_num = MAX_SCAN_LIST_COUNT;
  3979. scan_info->orig_ch = ch;
  3980. scan_info->orig_bw = bw_mode;
  3981. scan_info->orig_40_offset = ch_offset;
  3982. for (i = 0 ; i < scan_info->channel_num ; i++) {
  3983. if (i < 11)
  3984. scan_info->ssid_channel_info[i].active = 1;
  3985. else
  3986. scan_info->ssid_channel_info[i].active = 0;
  3987. scan_info->ssid_channel_info[i].timeout = 100;
  3988. scan_info->ssid_channel_info[i].tx_power =
  3989. phy_get_tx_power_index(padapter, 0, 0x02, bw_mode, i + 1);
  3990. scan_info->ssid_channel_info[i].channel = i + 1;
  3991. }
  3992. RTW_INFO("%s, channel_num: %d, orig_ch: %d, orig_bw: %d orig_40_offset: %d\n",
  3993. __func__, scan_info->channel_num, scan_info->orig_ch,
  3994. scan_info->orig_bw, scan_info->orig_40_offset);
  3995. return 0;
  3996. }
  3997. int rtw_dev_pno_set(struct net_device *net, pno_ssid_t *ssid, int num,
  3998. int pno_time, int pno_repeat, int pno_freq_expo_max)
  3999. {
  4000. _adapter *padapter = (_adapter *)rtw_netdev_priv(net);
  4001. struct pwrctrl_priv *pwrctl = adapter_to_pwrctl(padapter);
  4002. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  4003. int ret = -1;
  4004. if (num == 0) {
  4005. RTW_INFO("%s, nssid is zero, no need to setup pno ssid list\n", __func__);
  4006. return 0;
  4007. }
  4008. if (pwrctl == NULL) {
  4009. RTW_INFO("%s, ERROR: pwrctl is NULL\n", __func__);
  4010. return -1;
  4011. } else {
  4012. pwrctl->pnlo_info =
  4013. (pno_nlo_info_t *)rtw_zmalloc(sizeof(pno_nlo_info_t));
  4014. pwrctl->pno_ssid_list =
  4015. (pno_ssid_list_t *)rtw_zmalloc(sizeof(pno_ssid_list_t));
  4016. pwrctl->pscan_info =
  4017. (pno_scan_info_t *)rtw_zmalloc(sizeof(pno_scan_info_t));
  4018. }
  4019. if (pwrctl->pnlo_info == NULL ||
  4020. pwrctl->pscan_info == NULL ||
  4021. pwrctl->pno_ssid_list == NULL) {
  4022. RTW_INFO("%s, ERROR: alloc nlo_info, ssid_list, scan_info fail\n", __func__);
  4023. goto failing;
  4024. }
  4025. pwrctl->wowlan_in_resume = _FALSE;
  4026. pwrctl->pno_inited = _TRUE;
  4027. /* NLO Info */
  4028. ret = rtw_dev_nlo_info_set(pwrctl->pnlo_info, ssid, num,
  4029. pno_time, pno_repeat, pno_freq_expo_max);
  4030. /* SSID Info */
  4031. ret = rtw_dev_ssid_list_set(pwrctl->pno_ssid_list, ssid, num);
  4032. /* SCAN Info */
  4033. ret = rtw_dev_scan_info_set(padapter, ssid, pmlmeext->cur_channel,
  4034. pmlmeext->cur_ch_offset, pmlmeext->cur_bwmode);
  4035. RTW_INFO("+%s num: %d, pno_time: %d, pno_repeat:%d, pno_freq_expo_max:%d+\n",
  4036. __func__, num, pno_time, pno_repeat, pno_freq_expo_max);
  4037. return 0;
  4038. failing:
  4039. if (pwrctl->pnlo_info) {
  4040. rtw_mfree((u8 *)pwrctl->pnlo_info, sizeof(pno_nlo_info_t));
  4041. pwrctl->pnlo_info = NULL;
  4042. }
  4043. if (pwrctl->pno_ssid_list) {
  4044. rtw_mfree((u8 *)pwrctl->pno_ssid_list, sizeof(pno_ssid_list_t));
  4045. pwrctl->pno_ssid_list = NULL;
  4046. }
  4047. if (pwrctl->pscan_info) {
  4048. rtw_mfree((u8 *)pwrctl->pscan_info, sizeof(pno_scan_info_t));
  4049. pwrctl->pscan_info = NULL;
  4050. }
  4051. return -1;
  4052. }
  4053. #ifdef CONFIG_PNO_SET_DEBUG
  4054. void rtw_dev_pno_debug(struct net_device *net)
  4055. {
  4056. _adapter *padapter = (_adapter *)rtw_netdev_priv(net);
  4057. struct pwrctrl_priv *pwrctl = adapter_to_pwrctl(padapter);
  4058. int i = 0, j = 0;
  4059. RTW_INFO("*******NLO_INFO********\n");
  4060. RTW_INFO("ssid_num: %d\n", pwrctl->pnlo_info->ssid_num);
  4061. RTW_INFO("fast_scan_iterations: %d\n",
  4062. pwrctl->pnlo_info->fast_scan_iterations);
  4063. RTW_INFO("fast_scan_period: %d\n", pwrctl->pnlo_info->fast_scan_period);
  4064. RTW_INFO("slow_scan_period: %d\n", pwrctl->pnlo_info->slow_scan_period);
  4065. for (i = 0 ; i < MAX_PNO_LIST_COUNT ; i++) {
  4066. RTW_INFO("%d SSID (%s) length (%d) cipher(%x) channel(%d)\n",
  4067. i, pwrctl->pno_ssid_list->node[i].SSID, pwrctl->pnlo_info->ssid_length[i],
  4068. pwrctl->pnlo_info->ssid_cipher_info[i], pwrctl->pnlo_info->ssid_channel_info[i]);
  4069. }
  4070. RTW_INFO("******SCAN_INFO******\n");
  4071. RTW_INFO("ch_num: %d\n", pwrctl->pscan_info->channel_num);
  4072. RTW_INFO("orig_ch: %d\n", pwrctl->pscan_info->orig_ch);
  4073. RTW_INFO("orig bw: %d\n", pwrctl->pscan_info->orig_bw);
  4074. RTW_INFO("orig 40 offset: %d\n", pwrctl->pscan_info->orig_40_offset);
  4075. for (i = 0 ; i < MAX_SCAN_LIST_COUNT ; i++) {
  4076. RTW_INFO("[%02d] avtive:%d, timeout:%d, tx_power:%d, ch:%02d\n",
  4077. i, pwrctl->pscan_info->ssid_channel_info[i].active,
  4078. pwrctl->pscan_info->ssid_channel_info[i].timeout,
  4079. pwrctl->pscan_info->ssid_channel_info[i].tx_power,
  4080. pwrctl->pscan_info->ssid_channel_info[i].channel);
  4081. }
  4082. RTW_INFO("*****************\n");
  4083. }
  4084. #endif /* CONFIG_PNO_SET_DEBUG */
  4085. #endif /* CONFIG_PNO_SUPPORT */
  4086. inline void rtw_collect_bcn_info(_adapter *adapter)
  4087. {
  4088. struct mlme_ext_priv *pmlmeext = &adapter->mlmeextpriv;
  4089. if (!is_client_associated_to_ap(adapter))
  4090. return;
  4091. pmlmeext->cur_bcn_cnt = pmlmeext->bcn_cnt - pmlmeext->last_bcn_cnt;
  4092. pmlmeext->last_bcn_cnt = pmlmeext->bcn_cnt;
  4093. /*TODO get offset of bcn's timestamp*/
  4094. /*pmlmeext->bcn_timestamp;*/
  4095. }