os_intfs.c 145 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 _OS_INTFS_C_
  16. #include <drv_types.h>
  17. #include <hal_data.h>
  18. #if defined(PLATFORM_LINUX) && defined (PLATFORM_WINDOWS)
  19. #error "Shall be Linux or Windows, but not both!\n"
  20. #endif
  21. MODULE_LICENSE("GPL");
  22. MODULE_DESCRIPTION("Realtek Wireless Lan Driver");
  23. MODULE_AUTHOR("Realtek Semiconductor Corp.");
  24. MODULE_VERSION(DRIVERVERSION);
  25. /* module param defaults */
  26. int rtw_chip_version = 0x00;
  27. int rtw_rfintfs = HWPI;
  28. int rtw_lbkmode = 0;/* RTL8712_AIR_TRX; */
  29. #ifdef DBG_LA_MODE
  30. int rtw_la_mode_en=1;
  31. module_param(rtw_la_mode_en, int, 0644);
  32. #endif
  33. int rtw_network_mode = Ndis802_11IBSS;/* Ndis802_11Infrastructure; */ /* infra, ad-hoc, auto */
  34. /* NDIS_802_11_SSID ssid; */
  35. int rtw_channel = 1;/* ad-hoc support requirement */
  36. int rtw_wireless_mode = WIRELESS_MODE_MAX;
  37. module_param(rtw_wireless_mode, int, 0644);
  38. int rtw_vrtl_carrier_sense = AUTO_VCS;
  39. int rtw_vcs_type = RTS_CTS;
  40. int rtw_rts_thresh = 2347;
  41. int rtw_frag_thresh = 2346;
  42. int rtw_preamble = PREAMBLE_LONG;/* long, short, auto */
  43. int rtw_scan_mode = 1;/* active, passive */
  44. /* int smart_ps = 1; */
  45. #ifdef CONFIG_POWER_SAVING
  46. int rtw_power_mgnt = PS_MODE_MAX;
  47. #ifdef CONFIG_IPS_LEVEL_2
  48. int rtw_ips_mode = IPS_LEVEL_2;
  49. #else
  50. int rtw_ips_mode = IPS_NORMAL;
  51. #endif /*CONFIG_IPS_LEVEL_2*/
  52. #ifdef CONFIG_USB_HCI
  53. int rtw_lps_level = LPS_NORMAL; /*USB default LPS level*/
  54. #else /*SDIO,PCIE*/
  55. #if defined(CONFIG_LPS_PG)
  56. /*int rtw_lps_level = LPS_PG;*//*FW not support yet*/
  57. int rtw_lps_level = LPS_LCLK;
  58. #elif defined(CONFIG_LPS_PG_DDMA)
  59. int rtw_lps_level = LPS_PG;
  60. #elif defined(CONFIG_LPS_LCLK)
  61. int rtw_lps_level = LPS_LCLK;
  62. #else
  63. int rtw_lps_level = LPS_NORMAL;
  64. #endif
  65. #endif/*CONFIG_USB_HCI*/
  66. int rtw_lps_chk_by_tp = 1;
  67. #else /* !CONFIG_POWER_SAVING */
  68. int rtw_power_mgnt = PS_MODE_ACTIVE;
  69. int rtw_ips_mode = IPS_NONE;
  70. int rtw_lps_level = LPS_NORMAL;
  71. int rtw_lps_chk_by_tp = 0;
  72. #endif /* CONFIG_POWER_SAVING */
  73. module_param(rtw_ips_mode, int, 0644);
  74. MODULE_PARM_DESC(rtw_ips_mode, "The default IPS mode");
  75. module_param(rtw_lps_level, int, 0644);
  76. MODULE_PARM_DESC(rtw_lps_level, "The default LPS level");
  77. module_param(rtw_lps_chk_by_tp, int, 0644);
  78. /* LPS:
  79. * rtw_smart_ps = 0 => TX: pwr bit = 1, RX: PS_Poll
  80. * rtw_smart_ps = 1 => TX: pwr bit = 0, RX: PS_Poll
  81. * rtw_smart_ps = 2 => TX: pwr bit = 0, RX: NullData with pwr bit = 0
  82. */
  83. int rtw_smart_ps = 2;
  84. int rtw_max_bss_cnt = 0;
  85. module_param(rtw_max_bss_cnt, int, 0644);
  86. #ifdef CONFIG_WMMPS_STA
  87. /* WMMPS:
  88. * rtw_smart_ps = 0 => Only for fw test
  89. * rtw_smart_ps = 1 => Refer to Beacon's TIM Bitmap
  90. * rtw_smart_ps = 2 => Don't refer to Beacon's TIM Bitmap
  91. */
  92. int rtw_wmm_smart_ps = 2;
  93. #endif /* CONFIG_WMMPS_STA */
  94. int rtw_check_fw_ps = 1;
  95. #ifdef CONFIG_TX_EARLY_MODE
  96. int rtw_early_mode = 1;
  97. #endif
  98. int rtw_usb_rxagg_mode = 2;/* RX_AGG_DMA=1, RX_AGG_USB=2 */
  99. module_param(rtw_usb_rxagg_mode, int, 0644);
  100. int rtw_dynamic_agg_enable = 1;
  101. module_param(rtw_dynamic_agg_enable, int, 0644);
  102. /* set log level when inserting driver module, default log level is _DRV_INFO_ = 4,
  103. * please refer to "How_to_set_driver_debug_log_level.doc" to set the available level.
  104. */
  105. #ifdef CONFIG_RTW_DEBUG
  106. #ifdef RTW_LOG_LEVEL
  107. uint rtw_drv_log_level = (uint)RTW_LOG_LEVEL; /* from Makefile */
  108. #else
  109. uint rtw_drv_log_level = _DRV_INFO_;
  110. #endif
  111. module_param(rtw_drv_log_level, uint, 0644);
  112. MODULE_PARM_DESC(rtw_drv_log_level, "set log level when insert driver module, default log level is _DRV_INFO_ = 4");
  113. #endif
  114. int rtw_radio_enable = 1;
  115. int rtw_long_retry_lmt = 7;
  116. int rtw_short_retry_lmt = 7;
  117. int rtw_busy_thresh = 40;
  118. /* int qos_enable = 0; */ /* * */
  119. int rtw_ack_policy = NORMAL_ACK;
  120. int rtw_mp_mode = 0;
  121. #if defined(CONFIG_MP_INCLUDED) && defined(CONFIG_RTW_CUSTOMER_STR)
  122. uint rtw_mp_customer_str = 0;
  123. module_param(rtw_mp_customer_str, uint, 0644);
  124. MODULE_PARM_DESC(rtw_mp_customer_str, "Whether or not to enable customer str support on MP mode");
  125. #endif
  126. int rtw_software_encrypt = 0;
  127. int rtw_software_decrypt = 0;
  128. int rtw_acm_method = 0;/* 0:By SW 1:By HW. */
  129. int rtw_wmm_enable = 1;/* default is set to enable the wmm. */
  130. #ifdef CONFIG_WMMPS_STA
  131. /* uapsd (unscheduled automatic power-save delivery) = a kind of wmmps */
  132. /* 0: NO_LIMIT, 1: TWO_MSDU, 2: FOUR_MSDU, 3: SIX_MSDU */
  133. int rtw_uapsd_max_sp = NO_LIMIT;
  134. /* BIT0: AC_VO UAPSD, BIT1: AC_VI UAPSD, BIT2: AC_BK UAPSD, BIT3: AC_BE UAPSD */
  135. int rtw_uapsd_ac_enable = 0x0;
  136. #endif /* CONFIG_WMMPS_STA */
  137. #if defined(CONFIG_RTL8814A)
  138. int rtw_pwrtrim_enable = 2; /* disable kfree , rename to power trim disable */
  139. #elif defined(CONFIG_RTL8821C) || defined(CONFIG_RTL8822B)
  140. /*PHYDM API, must enable by default*/
  141. int rtw_pwrtrim_enable = 1;
  142. #else
  143. int rtw_pwrtrim_enable = 0; /* Default Enalbe power trim by efuse config */
  144. #endif
  145. uint rtw_tx_bw_mode = 0x21;
  146. module_param(rtw_tx_bw_mode, uint, 0644);
  147. MODULE_PARM_DESC(rtw_tx_bw_mode, "The max tx bw for 2.4G and 5G. format is the same as rtw_bw_mode");
  148. #ifdef CONFIG_FW_HANDLE_TXBCN
  149. uint rtw_tbtt_rpt = 0; /*ROOT AP - BIT0, VAP1 - BIT1, VAP2 - BIT2, VAP3 - VAP3, FW report TBTT INT by C2H*/
  150. module_param(rtw_tbtt_rpt, uint, 0644);
  151. #endif
  152. #ifdef CONFIG_80211N_HT
  153. int rtw_ht_enable = 1;
  154. /* 0: 20 MHz, 1: 40 MHz, 2: 80 MHz, 3: 160MHz, 4: 80+80MHz
  155. * 2.4G use bit 0 ~ 3, 5G use bit 4 ~ 7
  156. * 0x21 means enable 2.4G 40MHz & 5G 80MHz */
  157. #ifdef CONFIG_RTW_CUSTOMIZE_BWMODE
  158. int rtw_bw_mode = CONFIG_RTW_CUSTOMIZE_BWMODE;
  159. #else
  160. int rtw_bw_mode = 0x21;
  161. #endif
  162. int rtw_ampdu_enable = 1;/* for enable tx_ampdu , */ /* 0: disable, 0x1:enable */
  163. int rtw_rx_stbc = 1;/* 0: disable, bit(0):enable 2.4g, bit(1):enable 5g, default is set to enable 2.4GHZ for IOT issue with bufflao's AP at 5GHZ */
  164. #if (defined(CONFIG_RTL8814A) || defined(CONFIG_RTL8822B)) && defined(CONFIG_PCI_HCI)
  165. int rtw_rx_ampdu_amsdu = 2;/* 0: disabled, 1:enabled, 2:auto . There is an IOT issu with DLINK DIR-629 when the flag turn on */
  166. #else
  167. int rtw_rx_ampdu_amsdu;/* 0: disabled, 1:enabled, 2:auto . There is an IOT issu with DLINK DIR-629 when the flag turn on */
  168. #endif
  169. /*
  170. * 2: Follow the AMSDU filed in ADDBA Resp. (Deault)
  171. * 0: Force the AMSDU filed in ADDBA Resp. to be disabled.
  172. * 1: Force the AMSDU filed in ADDBA Resp. to be enabled.
  173. */
  174. int rtw_tx_ampdu_amsdu = 2;
  175. static uint rtw_rx_ampdu_sz_limit_1ss[4] = CONFIG_RTW_RX_AMPDU_SZ_LIMIT_1SS;
  176. static uint rtw_rx_ampdu_sz_limit_1ss_num = 0;
  177. module_param_array(rtw_rx_ampdu_sz_limit_1ss, uint, &rtw_rx_ampdu_sz_limit_1ss_num, 0644);
  178. MODULE_PARM_DESC(rtw_rx_ampdu_sz_limit_1ss, "RX AMPDU size limit for 1SS link of each BW, 0xFF: no limitation");
  179. static uint rtw_rx_ampdu_sz_limit_2ss[4] = CONFIG_RTW_RX_AMPDU_SZ_LIMIT_2SS;
  180. static uint rtw_rx_ampdu_sz_limit_2ss_num = 0;
  181. module_param_array(rtw_rx_ampdu_sz_limit_2ss, uint, &rtw_rx_ampdu_sz_limit_2ss_num, 0644);
  182. MODULE_PARM_DESC(rtw_rx_ampdu_sz_limit_2ss, "RX AMPDU size limit for 2SS link of each BW, 0xFF: no limitation");
  183. static uint rtw_rx_ampdu_sz_limit_3ss[4] = CONFIG_RTW_RX_AMPDU_SZ_LIMIT_3SS;
  184. static uint rtw_rx_ampdu_sz_limit_3ss_num = 0;
  185. module_param_array(rtw_rx_ampdu_sz_limit_3ss, uint, &rtw_rx_ampdu_sz_limit_3ss_num, 0644);
  186. MODULE_PARM_DESC(rtw_rx_ampdu_sz_limit_3ss, "RX AMPDU size limit for 3SS link of each BW, 0xFF: no limitation");
  187. static uint rtw_rx_ampdu_sz_limit_4ss[4] = CONFIG_RTW_RX_AMPDU_SZ_LIMIT_4SS;
  188. static uint rtw_rx_ampdu_sz_limit_4ss_num = 0;
  189. module_param_array(rtw_rx_ampdu_sz_limit_4ss, uint, &rtw_rx_ampdu_sz_limit_4ss_num, 0644);
  190. MODULE_PARM_DESC(rtw_rx_ampdu_sz_limit_4ss, "RX AMPDU size limit for 4SS link of each BW, 0xFF: no limitation");
  191. /* Short GI support Bit Map
  192. * BIT0 - 20MHz, 0: non-support, 1: support
  193. * BIT1 - 40MHz, 0: non-support, 1: support
  194. * BIT2 - 80MHz, 0: non-support, 1: support
  195. * BIT3 - 160MHz, 0: non-support, 1: support */
  196. int rtw_short_gi = 0xf;
  197. /* BIT0: Enable VHT LDPC Rx, BIT1: Enable VHT LDPC Tx, BIT4: Enable HT LDPC Rx, BIT5: Enable HT LDPC Tx */
  198. int rtw_ldpc_cap = 0x33;
  199. /* BIT0: Enable VHT STBC Rx, BIT1: Enable VHT STBC Tx, BIT4: Enable HT STBC Rx, BIT5: Enable HT STBC Tx */
  200. int rtw_stbc_cap = 0x13;
  201. /*
  202. * BIT0: Enable VHT SU Beamformer
  203. * BIT1: Enable VHT SU Beamformee
  204. * BIT2: Enable VHT MU Beamformer, depend on VHT SU Beamformer
  205. * BIT3: Enable VHT MU Beamformee, depend on VHT SU Beamformee
  206. * BIT4: Enable HT Beamformer
  207. * BIT5: Enable HT Beamformee
  208. */
  209. int rtw_beamform_cap = BIT(1) | BIT(3);
  210. int rtw_bfer_rf_number = 0; /*BeamformerCapRfNum Rf path number, 0 for auto, others for manual*/
  211. int rtw_bfee_rf_number = 0; /*BeamformeeCapRfNum Rf path number, 0 for auto, others for manual*/
  212. #endif /* CONFIG_80211N_HT */
  213. #ifdef CONFIG_80211AC_VHT
  214. int rtw_vht_enable = 1; /* 0:disable, 1:enable, 2:force auto enable */
  215. module_param(rtw_vht_enable, int, 0644);
  216. int rtw_ampdu_factor = 7;
  217. uint rtw_vht_rx_mcs_map = 0xaaaa;
  218. module_param(rtw_vht_rx_mcs_map, uint, 0644);
  219. MODULE_PARM_DESC(rtw_vht_rx_mcs_map, "VHT RX MCS map");
  220. #endif /* CONFIG_80211AC_VHT */
  221. int rtw_lowrate_two_xmit = 1;/* Use 2 path Tx to transmit MCS0~7 and legacy mode */
  222. int rtw_rf_config = RF_TYPE_MAX;
  223. module_param(rtw_rf_config, int, 0644);
  224. /* 0: not check in watch dog, 1: check in watch dog */
  225. int rtw_check_hw_status = 0;
  226. int rtw_low_power = 0;
  227. #ifdef CONFIG_WIFI_TEST
  228. int rtw_wifi_spec = 1;/* for wifi test */
  229. #else
  230. int rtw_wifi_spec = 0;
  231. #endif
  232. int rtw_special_rf_path = 0; /* 0: 2T2R ,1: only turn on path A 1T1R */
  233. char rtw_country_unspecified[] = {0xFF, 0xFF, 0x00};
  234. char *rtw_country_code = rtw_country_unspecified;
  235. module_param(rtw_country_code, charp, 0644);
  236. MODULE_PARM_DESC(rtw_country_code, "The default country code (in alpha2)");
  237. int rtw_channel_plan = CONFIG_RTW_CHPLAN;
  238. module_param(rtw_channel_plan, int, 0644);
  239. MODULE_PARM_DESC(rtw_channel_plan, "The default chplan ID when rtw_alpha2 is not specified or valid");
  240. static uint rtw_excl_chs[MAX_CHANNEL_NUM] = CONFIG_RTW_EXCL_CHS;
  241. static int rtw_excl_chs_num = 0;
  242. module_param_array(rtw_excl_chs, uint, &rtw_excl_chs_num, 0644);
  243. MODULE_PARM_DESC(rtw_excl_chs, "exclusive channel array");
  244. /*if concurrent softap + p2p(GO) is needed, this param lets p2p response full channel list.
  245. But Softap must be SHUT DOWN once P2P decide to set up connection and become a GO.*/
  246. #ifdef CONFIG_FULL_CH_IN_P2P_HANDSHAKE
  247. int rtw_full_ch_in_p2p_handshake = 1; /* reply full channel list*/
  248. #else
  249. int rtw_full_ch_in_p2p_handshake = 0; /* reply only softap channel*/
  250. #endif
  251. #ifdef CONFIG_BT_COEXIST
  252. int rtw_btcoex_enable = 2;
  253. module_param(rtw_btcoex_enable, int, 0644);
  254. MODULE_PARM_DESC(rtw_btcoex_enable, "BT co-existence on/off, 0:off, 1:on, 2:by efuse");
  255. int rtw_ant_num = 0;
  256. module_param(rtw_ant_num, int, 0644);
  257. MODULE_PARM_DESC(rtw_ant_num, "Antenna number setting, 0:by efuse");
  258. int rtw_bt_iso = 2;/* 0:Low, 1:High, 2:From Efuse */
  259. int rtw_bt_sco = 3;/* 0:Idle, 1:None-SCO, 2:SCO, 3:From Counter, 4.Busy, 5.OtherBusy */
  260. int rtw_bt_ampdu = 1 ; /* 0:Disable BT control A-MPDU, 1:Enable BT control A-MPDU. */
  261. #endif /* CONFIG_BT_COEXIST */
  262. int rtw_AcceptAddbaReq = _TRUE;/* 0:Reject AP's Add BA req, 1:Accept AP's Add BA req. */
  263. int rtw_antdiv_cfg = 2; /* 0:OFF , 1:ON, 2:decide by Efuse config */
  264. int rtw_antdiv_type = 0
  265. ; /* 0:decide by efuse 1: for 88EE, 1Tx and 1RxCG are diversity.(2 Ant with SPDT), 2: for 88EE, 1Tx and 2Rx are diversity.( 2 Ant, Tx and RxCG are both on aux port, RxCS is on main port ), 3: for 88EE, 1Tx and 1RxCG are fixed.(1Ant, Tx and RxCG are both on aux port) */
  266. int rtw_drv_ant_band_switch = 1; /* 0:OFF , 1:ON, Driver control antenna band switch*/
  267. int rtw_single_ant_path; /*0:main ant , 1:aux ant , Fixed single antenna path, default main ant*/
  268. /* 0: doesn't switch, 1: switch from usb2.0 to usb 3.0 2: switch from usb3.0 to usb 2.0 */
  269. int rtw_switch_usb_mode = 0;
  270. #ifdef CONFIG_USB_AUTOSUSPEND
  271. int rtw_enusbss = 1;/* 0:disable,1:enable */
  272. #else
  273. int rtw_enusbss = 0;/* 0:disable,1:enable */
  274. #endif
  275. int rtw_hwpdn_mode = 2; /* 0:disable,1:enable,2: by EFUSE config */
  276. #ifdef CONFIG_HW_PWRP_DETECTION
  277. int rtw_hwpwrp_detect = 1;
  278. #else
  279. int rtw_hwpwrp_detect = 0; /* HW power ping detect 0:disable , 1:enable */
  280. #endif
  281. #ifdef CONFIG_USB_HCI
  282. int rtw_hw_wps_pbc = 1;
  283. #else
  284. int rtw_hw_wps_pbc = 0;
  285. #endif
  286. #ifdef CONFIG_TX_MCAST2UNI
  287. int rtw_mc2u_disable = 0;
  288. #endif /* CONFIG_TX_MCAST2UNI */
  289. #ifdef CONFIG_80211D
  290. int rtw_80211d = 0;
  291. #endif
  292. #ifdef CONFIG_PCI_ASPM
  293. /* CLK_REQ:BIT0 L0s:BIT1 ASPM_L1:BIT2 L1Off:BIT3*/
  294. int rtw_pci_aspm_enable = 0x5;
  295. #else
  296. int rtw_pci_aspm_enable;
  297. #endif
  298. #ifdef CONFIG_QOS_OPTIMIZATION
  299. int rtw_qos_opt_enable = 1; /* 0: disable,1:enable */
  300. #else
  301. int rtw_qos_opt_enable = 0; /* 0: disable,1:enable */
  302. #endif
  303. module_param(rtw_qos_opt_enable, int, 0644);
  304. #ifdef CONFIG_RTW_ACS
  305. int rtw_acs_auto_scan = 0; /*0:disable, 1:enable*/
  306. module_param(rtw_acs_auto_scan, int, 0644);
  307. int rtw_acs = 1;
  308. module_param(rtw_acs, int, 0644);
  309. #endif
  310. #ifdef CONFIG_BACKGROUND_NOISE_MONITOR
  311. int rtw_nm = 1;/*noise monitor*/
  312. module_param(rtw_nm, int, 0644);
  313. #endif
  314. char *ifname = "wlan%d";
  315. module_param(ifname, charp, 0644);
  316. MODULE_PARM_DESC(ifname, "The default name to allocate for first interface");
  317. #ifdef CONFIG_PLATFORM_ANDROID
  318. char *if2name = "p2p%d";
  319. #else /* CONFIG_PLATFORM_ANDROID */
  320. char *if2name = "wlan%d";
  321. #endif /* CONFIG_PLATFORM_ANDROID */
  322. module_param(if2name, charp, 0644);
  323. MODULE_PARM_DESC(if2name, "The default name to allocate for second interface");
  324. char *rtw_initmac = 0; /* temp mac address if users want to use instead of the mac address in Efuse */
  325. #ifdef CONFIG_CONCURRENT_MODE
  326. #if (CONFIG_IFACE_NUMBER > 2)
  327. int rtw_virtual_iface_num = CONFIG_IFACE_NUMBER - 1;
  328. module_param(rtw_virtual_iface_num, int, 0644);
  329. #else
  330. int rtw_virtual_iface_num = 1;
  331. #endif
  332. #endif
  333. #ifdef CONFIG_AP_MODE
  334. u8 rtw_bmc_tx_rate = MGN_UNKNOWN;
  335. #endif
  336. module_param(rtw_pwrtrim_enable, int, 0644);
  337. module_param(rtw_initmac, charp, 0644);
  338. module_param(rtw_special_rf_path, int, 0644);
  339. module_param(rtw_chip_version, int, 0644);
  340. module_param(rtw_rfintfs, int, 0644);
  341. module_param(rtw_lbkmode, int, 0644);
  342. module_param(rtw_network_mode, int, 0644);
  343. module_param(rtw_channel, int, 0644);
  344. module_param(rtw_mp_mode, int, 0644);
  345. module_param(rtw_wmm_enable, int, 0644);
  346. #ifdef CONFIG_WMMPS_STA
  347. module_param(rtw_uapsd_max_sp, int, 0644);
  348. module_param(rtw_uapsd_ac_enable, int, 0644);
  349. module_param(rtw_wmm_smart_ps, int, 0644);
  350. #endif /* CONFIG_WMMPS_STA */
  351. module_param(rtw_vrtl_carrier_sense, int, 0644);
  352. module_param(rtw_vcs_type, int, 0644);
  353. module_param(rtw_busy_thresh, int, 0644);
  354. #ifdef CONFIG_80211N_HT
  355. module_param(rtw_ht_enable, int, 0644);
  356. module_param(rtw_bw_mode, int, 0644);
  357. module_param(rtw_ampdu_enable, int, 0644);
  358. module_param(rtw_rx_stbc, int, 0644);
  359. module_param(rtw_rx_ampdu_amsdu, int, 0644);
  360. module_param(rtw_tx_ampdu_amsdu, int, 0644);
  361. #endif /* CONFIG_80211N_HT */
  362. #ifdef CONFIG_BEAMFORMING
  363. module_param(rtw_beamform_cap, int, 0644);
  364. #endif
  365. module_param(rtw_lowrate_two_xmit, int, 0644);
  366. module_param(rtw_power_mgnt, int, 0644);
  367. module_param(rtw_smart_ps, int, 0644);
  368. module_param(rtw_low_power, int, 0644);
  369. module_param(rtw_wifi_spec, int, 0644);
  370. module_param(rtw_full_ch_in_p2p_handshake, int, 0644);
  371. module_param(rtw_antdiv_cfg, int, 0644);
  372. module_param(rtw_antdiv_type, int, 0644);
  373. module_param(rtw_drv_ant_band_switch, int, 0644);
  374. module_param(rtw_single_ant_path, int, 0644);
  375. module_param(rtw_switch_usb_mode, int, 0644);
  376. module_param(rtw_enusbss, int, 0644);
  377. module_param(rtw_hwpdn_mode, int, 0644);
  378. module_param(rtw_hwpwrp_detect, int, 0644);
  379. module_param(rtw_hw_wps_pbc, int, 0644);
  380. module_param(rtw_check_hw_status, int, 0644);
  381. #ifdef CONFIG_PCI_HCI
  382. module_param(rtw_pci_aspm_enable, int, 0644);
  383. #endif
  384. #ifdef CONFIG_TX_EARLY_MODE
  385. module_param(rtw_early_mode, int, 0644);
  386. #endif
  387. #ifdef CONFIG_ADAPTOR_INFO_CACHING_FILE
  388. char *rtw_adaptor_info_caching_file_path = "/data/misc/wifi/rtw_cache";
  389. module_param(rtw_adaptor_info_caching_file_path, charp, 0644);
  390. MODULE_PARM_DESC(rtw_adaptor_info_caching_file_path, "The path of adapter info cache file");
  391. #endif /* CONFIG_ADAPTOR_INFO_CACHING_FILE */
  392. #ifdef CONFIG_LAYER2_ROAMING
  393. uint rtw_max_roaming_times = 2;
  394. module_param(rtw_max_roaming_times, uint, 0644);
  395. MODULE_PARM_DESC(rtw_max_roaming_times, "The max roaming times to try");
  396. #endif /* CONFIG_LAYER2_ROAMING */
  397. #ifdef CONFIG_IOL
  398. int rtw_fw_iol = 1;
  399. module_param(rtw_fw_iol, int, 0644);
  400. MODULE_PARM_DESC(rtw_fw_iol, "FW IOL. 0:Disable, 1:enable, 2:by usb speed");
  401. #endif /* CONFIG_IOL */
  402. #ifdef CONFIG_FILE_FWIMG
  403. char *rtw_fw_file_path = "/system/etc/firmware/rtlwifi/FW_NIC.BIN";
  404. module_param(rtw_fw_file_path, charp, 0644);
  405. MODULE_PARM_DESC(rtw_fw_file_path, "The path of fw image");
  406. char *rtw_fw_wow_file_path = "/system/etc/firmware/rtlwifi/FW_WoWLAN.BIN";
  407. module_param(rtw_fw_wow_file_path, charp, 0644);
  408. MODULE_PARM_DESC(rtw_fw_wow_file_path, "The path of fw for Wake on Wireless image");
  409. #ifdef CONFIG_MP_INCLUDED
  410. char *rtw_fw_mp_bt_file_path = "";
  411. module_param(rtw_fw_mp_bt_file_path, charp, 0644);
  412. MODULE_PARM_DESC(rtw_fw_mp_bt_file_path, "The path of fw for MP-BT image");
  413. #endif /* CONFIG_MP_INCLUDED */
  414. #endif /* CONFIG_FILE_FWIMG */
  415. #ifdef CONFIG_TX_MCAST2UNI
  416. module_param(rtw_mc2u_disable, int, 0644);
  417. #endif /* CONFIG_TX_MCAST2UNI */
  418. #ifdef CONFIG_80211D
  419. module_param(rtw_80211d, int, 0644);
  420. MODULE_PARM_DESC(rtw_80211d, "Enable 802.11d mechanism");
  421. #endif
  422. #ifdef CONFIG_ADVANCE_OTA
  423. /* BIT(0): OTA continuous rotated test within low RSSI,1R CCA in path B
  424. BIT(1) & BIT(2): OTA continuous rotated test with low high RSSI */
  425. /* Experimental environment: shielding room with half of absorber and 2~3 rotation per minute */
  426. int rtw_advnace_ota;
  427. module_param(rtw_advnace_ota, int, 0644);
  428. #endif
  429. uint rtw_notch_filter = RTW_NOTCH_FILTER;
  430. module_param(rtw_notch_filter, uint, 0644);
  431. MODULE_PARM_DESC(rtw_notch_filter, "0:Disable, 1:Enable, 2:Enable only for P2P");
  432. uint rtw_hiq_filter = CONFIG_RTW_HIQ_FILTER;
  433. module_param(rtw_hiq_filter, uint, 0644);
  434. MODULE_PARM_DESC(rtw_hiq_filter, "0:allow all, 1:allow special, 2:deny all");
  435. uint rtw_adaptivity_en = CONFIG_RTW_ADAPTIVITY_EN;
  436. module_param(rtw_adaptivity_en, uint, 0644);
  437. MODULE_PARM_DESC(rtw_adaptivity_en, "0:disable, 1:enable");
  438. uint rtw_adaptivity_mode = CONFIG_RTW_ADAPTIVITY_MODE;
  439. module_param(rtw_adaptivity_mode, uint, 0644);
  440. MODULE_PARM_DESC(rtw_adaptivity_mode, "0:normal, 1:carrier sense");
  441. int rtw_adaptivity_th_l2h_ini = CONFIG_RTW_ADAPTIVITY_TH_L2H_INI;
  442. module_param(rtw_adaptivity_th_l2h_ini, int, 0644);
  443. MODULE_PARM_DESC(rtw_adaptivity_th_l2h_ini, "th_l2h_ini for Adaptivity");
  444. int rtw_adaptivity_th_edcca_hl_diff = CONFIG_RTW_ADAPTIVITY_TH_EDCCA_HL_DIFF;
  445. module_param(rtw_adaptivity_th_edcca_hl_diff, int, 0644);
  446. MODULE_PARM_DESC(rtw_adaptivity_th_edcca_hl_diff, "th_edcca_hl_diff for Adaptivity");
  447. #ifdef CONFIG_DFS_MASTER
  448. uint rtw_dfs_region_domain = CONFIG_RTW_DFS_REGION_DOMAIN;
  449. module_param(rtw_dfs_region_domain, uint, 0644);
  450. MODULE_PARM_DESC(rtw_dfs_region_domain, "0:UNKNOWN, 1:FCC, 2:MKK, 3:ETSI");
  451. #endif
  452. uint rtw_amplifier_type_2g = CONFIG_RTW_AMPLIFIER_TYPE_2G;
  453. module_param(rtw_amplifier_type_2g, uint, 0644);
  454. MODULE_PARM_DESC(rtw_amplifier_type_2g, "BIT3:2G ext-PA, BIT4:2G ext-LNA");
  455. uint rtw_amplifier_type_5g = CONFIG_RTW_AMPLIFIER_TYPE_5G;
  456. module_param(rtw_amplifier_type_5g, uint, 0644);
  457. MODULE_PARM_DESC(rtw_amplifier_type_5g, "BIT6:5G ext-PA, BIT7:5G ext-LNA");
  458. uint rtw_RFE_type = CONFIG_RTW_RFE_TYPE;
  459. module_param(rtw_RFE_type, uint, 0644);
  460. MODULE_PARM_DESC(rtw_RFE_type, "default init value:64");
  461. uint rtw_powertracking_type = 64;
  462. module_param(rtw_powertracking_type, uint, 0644);
  463. MODULE_PARM_DESC(rtw_powertracking_type, "default init value:64");
  464. uint rtw_GLNA_type = CONFIG_RTW_GLNA_TYPE;
  465. module_param(rtw_GLNA_type, uint, 0644);
  466. MODULE_PARM_DESC(rtw_GLNA_type, "default init value:0");
  467. uint rtw_TxBBSwing_2G = 0xFF;
  468. module_param(rtw_TxBBSwing_2G, uint, 0644);
  469. MODULE_PARM_DESC(rtw_TxBBSwing_2G, "default init value:0xFF");
  470. uint rtw_TxBBSwing_5G = 0xFF;
  471. module_param(rtw_TxBBSwing_5G, uint, 0644);
  472. MODULE_PARM_DESC(rtw_TxBBSwing_5G, "default init value:0xFF");
  473. uint rtw_OffEfuseMask = 0;
  474. module_param(rtw_OffEfuseMask, uint, 0644);
  475. MODULE_PARM_DESC(rtw_OffEfuseMask, "default open Efuse Mask value:0");
  476. uint rtw_FileMaskEfuse = 0;
  477. module_param(rtw_FileMaskEfuse, uint, 0644);
  478. MODULE_PARM_DESC(rtw_FileMaskEfuse, "default drv Mask Efuse value:0");
  479. uint rtw_rxgain_offset_2g = 0;
  480. module_param(rtw_rxgain_offset_2g, uint, 0644);
  481. MODULE_PARM_DESC(rtw_rxgain_offset_2g, "default RF Gain 2G Offset value:0");
  482. uint rtw_rxgain_offset_5gl = 0;
  483. module_param(rtw_rxgain_offset_5gl, uint, 0644);
  484. MODULE_PARM_DESC(rtw_rxgain_offset_5gl, "default RF Gain 5GL Offset value:0");
  485. uint rtw_rxgain_offset_5gm = 0;
  486. module_param(rtw_rxgain_offset_5gm, uint, 0644);
  487. MODULE_PARM_DESC(rtw_rxgain_offset_5gm, "default RF Gain 5GM Offset value:0");
  488. uint rtw_rxgain_offset_5gh = 0;
  489. module_param(rtw_rxgain_offset_5gh, uint, 0644);
  490. MODULE_PARM_DESC(rtw_rxgain_offset_5gm, "default RF Gain 5GL Offset value:0");
  491. uint rtw_pll_ref_clk_sel = CONFIG_RTW_PLL_REF_CLK_SEL;
  492. module_param(rtw_pll_ref_clk_sel, uint, 0644);
  493. MODULE_PARM_DESC(rtw_pll_ref_clk_sel, "force pll_ref_clk_sel, 0xF:use autoload value");
  494. int rtw_tx_pwr_by_rate = CONFIG_TXPWR_BY_RATE_EN;
  495. module_param(rtw_tx_pwr_by_rate, int, 0644);
  496. MODULE_PARM_DESC(rtw_tx_pwr_by_rate, "0:Disable, 1:Enable, 2: Depend on efuse");
  497. #ifdef CONFIG_TXPWR_LIMIT
  498. int rtw_tx_pwr_lmt_enable = CONFIG_TXPWR_LIMIT_EN;
  499. module_param(rtw_tx_pwr_lmt_enable, int, 0644);
  500. MODULE_PARM_DESC(rtw_tx_pwr_lmt_enable, "0:Disable, 1:Enable, 2: Depend on efuse");
  501. #endif
  502. static int rtw_target_tx_pwr_2g_a[RATE_SECTION_NUM] = CONFIG_RTW_TARGET_TX_PWR_2G_A;
  503. static int rtw_target_tx_pwr_2g_a_num = 0;
  504. module_param_array(rtw_target_tx_pwr_2g_a, int, &rtw_target_tx_pwr_2g_a_num, 0644);
  505. MODULE_PARM_DESC(rtw_target_tx_pwr_2g_a, "2.4G target tx power (unit:dBm) of RF path A for each rate section, should match the real calibrate power, -1: undefined");
  506. static int rtw_target_tx_pwr_2g_b[RATE_SECTION_NUM] = CONFIG_RTW_TARGET_TX_PWR_2G_B;
  507. static int rtw_target_tx_pwr_2g_b_num = 0;
  508. module_param_array(rtw_target_tx_pwr_2g_b, int, &rtw_target_tx_pwr_2g_b_num, 0644);
  509. MODULE_PARM_DESC(rtw_target_tx_pwr_2g_b, "2.4G target tx power (unit:dBm) of RF path B for each rate section, should match the real calibrate power, -1: undefined");
  510. static int rtw_target_tx_pwr_2g_c[RATE_SECTION_NUM] = CONFIG_RTW_TARGET_TX_PWR_2G_C;
  511. static int rtw_target_tx_pwr_2g_c_num = 0;
  512. module_param_array(rtw_target_tx_pwr_2g_c, int, &rtw_target_tx_pwr_2g_c_num, 0644);
  513. MODULE_PARM_DESC(rtw_target_tx_pwr_2g_c, "2.4G target tx power (unit:dBm) of RF path C for each rate section, should match the real calibrate power, -1: undefined");
  514. static int rtw_target_tx_pwr_2g_d[RATE_SECTION_NUM] = CONFIG_RTW_TARGET_TX_PWR_2G_D;
  515. static int rtw_target_tx_pwr_2g_d_num = 0;
  516. module_param_array(rtw_target_tx_pwr_2g_d, int, &rtw_target_tx_pwr_2g_d_num, 0644);
  517. MODULE_PARM_DESC(rtw_target_tx_pwr_2g_d, "2.4G target tx power (unit:dBm) of RF path D for each rate section, should match the real calibrate power, -1: undefined");
  518. #ifdef CONFIG_IEEE80211_BAND_5GHZ
  519. static int rtw_target_tx_pwr_5g_a[RATE_SECTION_NUM - 1] = CONFIG_RTW_TARGET_TX_PWR_5G_A;
  520. static int rtw_target_tx_pwr_5g_a_num = 0;
  521. module_param_array(rtw_target_tx_pwr_5g_a, int, &rtw_target_tx_pwr_5g_a_num, 0644);
  522. MODULE_PARM_DESC(rtw_target_tx_pwr_5g_a, "5G target tx power (unit:dBm) of RF path A for each rate section, should match the real calibrate power, -1: undefined");
  523. static int rtw_target_tx_pwr_5g_b[RATE_SECTION_NUM - 1] = CONFIG_RTW_TARGET_TX_PWR_5G_B;
  524. static int rtw_target_tx_pwr_5g_b_num = 0;
  525. module_param_array(rtw_target_tx_pwr_5g_b, int, &rtw_target_tx_pwr_5g_b_num, 0644);
  526. MODULE_PARM_DESC(rtw_target_tx_pwr_5g_b, "5G target tx power (unit:dBm) of RF path B for each rate section, should match the real calibrate power, -1: undefined");
  527. static int rtw_target_tx_pwr_5g_c[RATE_SECTION_NUM - 1] = CONFIG_RTW_TARGET_TX_PWR_5G_C;
  528. static int rtw_target_tx_pwr_5g_c_num = 0;
  529. module_param_array(rtw_target_tx_pwr_5g_c, int, &rtw_target_tx_pwr_5g_c_num, 0644);
  530. MODULE_PARM_DESC(rtw_target_tx_pwr_5g_c, "5G target tx power (unit:dBm) of RF path C for each rate section, should match the real calibrate power, -1: undefined");
  531. static int rtw_target_tx_pwr_5g_d[RATE_SECTION_NUM - 1] = CONFIG_RTW_TARGET_TX_PWR_5G_D;
  532. static int rtw_target_tx_pwr_5g_d_num = 0;
  533. module_param_array(rtw_target_tx_pwr_5g_d, int, &rtw_target_tx_pwr_5g_d_num, 0644);
  534. MODULE_PARM_DESC(rtw_target_tx_pwr_5g_d, "5G target tx power (unit:dBm) of RF path D for each rate section, should match the real calibrate power, -1: undefined");
  535. #endif /* CONFIG_IEEE80211_BAND_5GHZ */
  536. int rtw_tsf_update_pause_factor = CONFIG_TSF_UPDATE_PAUSE_FACTOR;
  537. module_param(rtw_tsf_update_pause_factor, int, 0644);
  538. MODULE_PARM_DESC(rtw_tsf_update_pause_factor, "num of bcn intervals to stay TSF update pause status");
  539. int rtw_tsf_update_restore_factor = CONFIG_TSF_UPDATE_RESTORE_FACTOR;
  540. module_param(rtw_tsf_update_restore_factor, int, 0644);
  541. MODULE_PARM_DESC(rtw_tsf_update_restore_factor, "num of bcn intervals to stay TSF update restore status");
  542. #ifdef CONFIG_LOAD_PHY_PARA_FROM_FILE
  543. char *rtw_phy_file_path = REALTEK_CONFIG_PATH;
  544. module_param(rtw_phy_file_path, charp, 0644);
  545. MODULE_PARM_DESC(rtw_phy_file_path, "The path of phy parameter");
  546. /* PHY FILE Bit Map
  547. * BIT0 - MAC, 0: non-support, 1: support
  548. * BIT1 - BB, 0: non-support, 1: support
  549. * BIT2 - BB_PG, 0: non-support, 1: support
  550. * BIT3 - BB_MP, 0: non-support, 1: support
  551. * BIT4 - RF, 0: non-support, 1: support
  552. * BIT5 - RF_TXPWR_TRACK, 0: non-support, 1: support
  553. * BIT6 - RF_TXPWR_LMT, 0: non-support, 1: support */
  554. int rtw_load_phy_file = (BIT2 | BIT6);
  555. module_param(rtw_load_phy_file, int, 0644);
  556. MODULE_PARM_DESC(rtw_load_phy_file, "PHY File Bit Map");
  557. int rtw_decrypt_phy_file = 0;
  558. module_param(rtw_decrypt_phy_file, int, 0644);
  559. MODULE_PARM_DESC(rtw_decrypt_phy_file, "Enable Decrypt PHY File");
  560. #endif
  561. #ifdef CONFIG_SUPPORT_TRX_SHARED
  562. #ifdef DFT_TRX_SHARE_MODE
  563. int rtw_trx_share_mode = DFT_TRX_SHARE_MODE;
  564. #else
  565. int rtw_trx_share_mode = 0;
  566. #endif
  567. module_param(rtw_trx_share_mode, int, 0644);
  568. MODULE_PARM_DESC(rtw_trx_share_mode, "TRx FIFO Shared");
  569. #endif
  570. #ifdef CONFIG_DYNAMIC_SOML
  571. uint rtw_dynamic_soml_en = 1;
  572. module_param(rtw_dynamic_soml_en, int, 0644);
  573. MODULE_PARM_DESC(rtw_dynamic_soml_en, "0: disable, 1: enable with default param, 2: enable with specified param.");
  574. uint rtw_dynamic_soml_train_num = 0;
  575. module_param(rtw_dynamic_soml_train_num, int, 0644);
  576. MODULE_PARM_DESC(rtw_dynamic_soml_train_num, "SOML training number");
  577. uint rtw_dynamic_soml_interval = 0;
  578. module_param(rtw_dynamic_soml_interval, int, 0644);
  579. MODULE_PARM_DESC(rtw_dynamic_soml_interval, "SOML training interval");
  580. uint rtw_dynamic_soml_period = 0;
  581. module_param(rtw_dynamic_soml_period, int, 0644);
  582. MODULE_PARM_DESC(rtw_dynamic_soml_period, "SOML training period");
  583. uint rtw_dynamic_soml_delay = 0;
  584. module_param(rtw_dynamic_soml_delay, int, 0644);
  585. MODULE_PARM_DESC(rtw_dynamic_soml_delay, "SOML training delay");
  586. #endif
  587. int _netdev_open(struct net_device *pnetdev);
  588. int netdev_open(struct net_device *pnetdev);
  589. static int netdev_close(struct net_device *pnetdev);
  590. #ifdef CONFIG_PLATFORM_INTEL_BYT
  591. extern int rtw_sdio_set_power(int on);
  592. #endif /* CONFIG_PLATFORM_INTEL_BYT */
  593. #ifdef CONFIG_MCC_MODE
  594. /* enable MCC mode or not */
  595. int rtw_en_mcc = 1;
  596. /* can referece following value before insmod driver */
  597. int rtw_mcc_ap_bw20_target_tx_tp = MCC_AP_BW20_TARGET_TX_TP;
  598. int rtw_mcc_ap_bw40_target_tx_tp = MCC_AP_BW40_TARGET_TX_TP;
  599. int rtw_mcc_ap_bw80_target_tx_tp = MCC_AP_BW80_TARGET_TX_TP;
  600. int rtw_mcc_sta_bw20_target_tx_tp = MCC_STA_BW20_TARGET_TX_TP;
  601. int rtw_mcc_sta_bw40_target_tx_tp = MCC_STA_BW40_TARGET_TX_TP;
  602. int rtw_mcc_sta_bw80_target_tx_tp = MCC_STA_BW80_TARGET_TX_TP;
  603. int rtw_mcc_single_tx_cri = MCC_SINGLE_TX_CRITERIA;
  604. int rtw_mcc_policy_table_idx = 0;
  605. int rtw_mcc_duration = 0;
  606. int rtw_mcc_enable_runtime_duration = 1;
  607. module_param(rtw_en_mcc, int, 0644);
  608. module_param(rtw_mcc_single_tx_cri, int, 0644);
  609. module_param(rtw_mcc_ap_bw20_target_tx_tp, int, 0644);
  610. module_param(rtw_mcc_ap_bw40_target_tx_tp, int, 0644);
  611. module_param(rtw_mcc_ap_bw80_target_tx_tp, int, 0644);
  612. module_param(rtw_mcc_sta_bw20_target_tx_tp, int, 0644);
  613. module_param(rtw_mcc_sta_bw40_target_tx_tp, int, 0644);
  614. module_param(rtw_mcc_sta_bw80_target_tx_tp, int, 0644);
  615. module_param(rtw_mcc_policy_table_idx, int, 0644);
  616. module_param(rtw_mcc_duration, int, 0644);
  617. #endif /*CONFIG_MCC_MODE */
  618. #ifdef CONFIG_RTW_NAPI
  619. /*following setting should define NAPI in Makefile
  620. enable napi only = 1, disable napi = 0*/
  621. int rtw_en_napi = 1;
  622. module_param(rtw_en_napi, int, 0644);
  623. #ifdef CONFIG_RTW_NAPI_DYNAMIC
  624. int rtw_napi_threshold = 100; /* unit: Mbps */
  625. module_param(rtw_napi_threshold, int, 0644);
  626. #endif /* CONFIG_RTW_NAPI_DYNAMIC */
  627. #ifdef CONFIG_RTW_GRO
  628. /*following setting should define GRO in Makefile
  629. enable gro = 1, disable gro = 0*/
  630. int rtw_en_gro = 1;
  631. module_param(rtw_en_gro, int, 0644);
  632. #endif /* CONFIG_RTW_GRO */
  633. #endif /* CONFIG_RTW_NAPI */
  634. #ifdef RTW_IQK_FW_OFFLOAD
  635. int rtw_iqk_fw_offload = 1;
  636. #else
  637. int rtw_iqk_fw_offload;
  638. #endif /* RTW_IQK_FW_OFFLOAD */
  639. module_param(rtw_iqk_fw_offload, int, 0644);
  640. #ifdef RTW_CHANNEL_SWITCH_OFFLOAD
  641. int rtw_ch_switch_offload = 0;
  642. #else
  643. int rtw_ch_switch_offload;
  644. #endif /* RTW_CHANNEL_SWITCH_OFFLOAD */
  645. module_param(rtw_ch_switch_offload, int, 0644);
  646. #ifdef CONFIG_TDLS
  647. int rtw_en_tdls = 1;
  648. module_param(rtw_en_tdls, int, 0644);
  649. #endif
  650. #ifdef CONFIG_FW_OFFLOAD_PARAM_INIT
  651. int rtw_fw_param_init = 1;
  652. module_param(rtw_fw_param_init, int, 0644);
  653. #endif
  654. #ifdef CONFIG_WOWLAN
  655. /*
  656. * bit[0]: magic packet wake up
  657. * bit[1]: unucast packet(HW/FW unuicast)
  658. * bit[2]: deauth wake up
  659. */
  660. uint rtw_wakeup_event = RTW_WAKEUP_EVENT;
  661. module_param(rtw_wakeup_event, uint, 0644);
  662. #endif
  663. void rtw_regsty_load_target_tx_power(struct registry_priv *regsty)
  664. {
  665. int path, rs;
  666. int *target_tx_pwr;
  667. for (path = RF_PATH_A; path < RF_PATH_MAX; path++) {
  668. if (path == RF_PATH_A)
  669. target_tx_pwr = rtw_target_tx_pwr_2g_a;
  670. else if (path == RF_PATH_B)
  671. target_tx_pwr = rtw_target_tx_pwr_2g_b;
  672. else if (path == RF_PATH_C)
  673. target_tx_pwr = rtw_target_tx_pwr_2g_c;
  674. else if (path == RF_PATH_D)
  675. target_tx_pwr = rtw_target_tx_pwr_2g_d;
  676. for (rs = CCK; rs < RATE_SECTION_NUM; rs++)
  677. regsty->target_tx_pwr_2g[path][rs] = target_tx_pwr[rs];
  678. }
  679. #ifdef CONFIG_IEEE80211_BAND_5GHZ
  680. for (path = RF_PATH_A; path < RF_PATH_MAX; path++) {
  681. if (path == RF_PATH_A)
  682. target_tx_pwr = rtw_target_tx_pwr_5g_a;
  683. else if (path == RF_PATH_B)
  684. target_tx_pwr = rtw_target_tx_pwr_5g_b;
  685. else if (path == RF_PATH_C)
  686. target_tx_pwr = rtw_target_tx_pwr_5g_c;
  687. else if (path == RF_PATH_D)
  688. target_tx_pwr = rtw_target_tx_pwr_5g_d;
  689. for (rs = OFDM; rs < RATE_SECTION_NUM; rs++)
  690. regsty->target_tx_pwr_5g[path][rs - 1] = target_tx_pwr[rs - 1];
  691. }
  692. #endif /* CONFIG_IEEE80211_BAND_5GHZ */
  693. }
  694. inline void rtw_regsty_load_excl_chs(struct registry_priv *regsty)
  695. {
  696. int i;
  697. int ch_num = 0;
  698. for (i = 0; i < MAX_CHANNEL_NUM; i++)
  699. if (((u8)rtw_excl_chs[i]) != 0)
  700. regsty->excl_chs[ch_num++] = (u8)rtw_excl_chs[i];
  701. if (ch_num < MAX_CHANNEL_NUM)
  702. regsty->excl_chs[ch_num] = 0;
  703. }
  704. #ifdef CONFIG_80211N_HT
  705. inline void rtw_regsty_init_rx_ampdu_sz_limit(struct registry_priv *regsty)
  706. {
  707. int i, j;
  708. uint *sz_limit;
  709. for (i = 0; i < 4; i++) {
  710. if (i == 0)
  711. sz_limit = rtw_rx_ampdu_sz_limit_1ss;
  712. else if (i == 1)
  713. sz_limit = rtw_rx_ampdu_sz_limit_2ss;
  714. else if (i == 2)
  715. sz_limit = rtw_rx_ampdu_sz_limit_3ss;
  716. else if (i == 3)
  717. sz_limit = rtw_rx_ampdu_sz_limit_4ss;
  718. for (j = 0; j < 4; j++)
  719. regsty->rx_ampdu_sz_limit_by_nss_bw[i][j] = sz_limit[j];
  720. }
  721. }
  722. #endif /* CONFIG_80211N_HT */
  723. uint loadparam(_adapter *padapter)
  724. {
  725. uint status = _SUCCESS;
  726. struct registry_priv *registry_par = &padapter->registrypriv;
  727. #ifdef CONFIG_RTW_DEBUG
  728. if (rtw_drv_log_level >= _DRV_MAX_)
  729. rtw_drv_log_level = _DRV_DEBUG_;
  730. #endif
  731. registry_par->chip_version = (u8)rtw_chip_version;
  732. registry_par->rfintfs = (u8)rtw_rfintfs;
  733. registry_par->lbkmode = (u8)rtw_lbkmode;
  734. /* registry_par->hci = (u8)hci; */
  735. registry_par->network_mode = (u8)rtw_network_mode;
  736. _rtw_memcpy(registry_par->ssid.Ssid, "ANY", 3);
  737. registry_par->ssid.SsidLength = 3;
  738. registry_par->channel = (u8)rtw_channel;
  739. registry_par->wireless_mode = (u8)rtw_wireless_mode;
  740. if (IsSupported24G(registry_par->wireless_mode) && (!is_supported_5g(registry_par->wireless_mode))
  741. && (registry_par->channel > 14))
  742. registry_par->channel = 1;
  743. else if (is_supported_5g(registry_par->wireless_mode) && (!IsSupported24G(registry_par->wireless_mode))
  744. && (registry_par->channel <= 14))
  745. registry_par->channel = 36;
  746. registry_par->vrtl_carrier_sense = (u8)rtw_vrtl_carrier_sense ;
  747. registry_par->vcs_type = (u8)rtw_vcs_type;
  748. registry_par->rts_thresh = (u16)rtw_rts_thresh;
  749. registry_par->frag_thresh = (u16)rtw_frag_thresh;
  750. registry_par->preamble = (u8)rtw_preamble;
  751. registry_par->scan_mode = (u8)rtw_scan_mode;
  752. registry_par->smart_ps = (u8)rtw_smart_ps;
  753. registry_par->check_fw_ps = (u8)rtw_check_fw_ps;
  754. registry_par->power_mgnt = (u8)rtw_power_mgnt;
  755. registry_par->ips_mode = (u8)rtw_ips_mode;
  756. registry_par->lps_level = (u8)rtw_lps_level;
  757. registry_par->lps_chk_by_tp = (u8)rtw_lps_chk_by_tp;
  758. registry_par->radio_enable = (u8)rtw_radio_enable;
  759. registry_par->long_retry_lmt = (u8)rtw_long_retry_lmt;
  760. registry_par->short_retry_lmt = (u8)rtw_short_retry_lmt;
  761. registry_par->busy_thresh = (u16)rtw_busy_thresh;
  762. registry_par->max_bss_cnt = (u16)rtw_max_bss_cnt;
  763. /* registry_par->qos_enable = (u8)rtw_qos_enable; */
  764. registry_par->ack_policy = (u8)rtw_ack_policy;
  765. registry_par->mp_mode = (u8)rtw_mp_mode;
  766. #if defined(CONFIG_MP_INCLUDED) && defined(CONFIG_RTW_CUSTOMER_STR)
  767. registry_par->mp_customer_str = (u8)rtw_mp_customer_str;
  768. #endif
  769. registry_par->software_encrypt = (u8)rtw_software_encrypt;
  770. registry_par->software_decrypt = (u8)rtw_software_decrypt;
  771. registry_par->acm_method = (u8)rtw_acm_method;
  772. registry_par->usb_rxagg_mode = (u8)rtw_usb_rxagg_mode;
  773. registry_par->dynamic_agg_enable = (u8)rtw_dynamic_agg_enable;
  774. /* WMM */
  775. registry_par->wmm_enable = (u8)rtw_wmm_enable;
  776. #ifdef CONFIG_WMMPS_STA
  777. /* UAPSD */
  778. registry_par->uapsd_max_sp_len= (u8)rtw_uapsd_max_sp;
  779. registry_par->uapsd_ac_enable = (u8)rtw_uapsd_ac_enable;
  780. registry_par->wmm_smart_ps = (u8)rtw_wmm_smart_ps;
  781. #endif /* CONFIG_WMMPS_STA */
  782. registry_par->RegPwrTrimEnable = (u8)rtw_pwrtrim_enable;
  783. registry_par->tx_bw_mode = (u8)rtw_tx_bw_mode;
  784. #ifdef CONFIG_80211N_HT
  785. registry_par->ht_enable = (u8)rtw_ht_enable;
  786. if (registry_par->ht_enable && is_supported_ht(registry_par->wireless_mode)) {
  787. registry_par->bw_mode = (u8)rtw_bw_mode;
  788. registry_par->ampdu_enable = (u8)rtw_ampdu_enable;
  789. registry_par->rx_stbc = (u8)rtw_rx_stbc;
  790. registry_par->rx_ampdu_amsdu = (u8)rtw_rx_ampdu_amsdu;
  791. registry_par->tx_ampdu_amsdu = (u8)rtw_tx_ampdu_amsdu;
  792. registry_par->short_gi = (u8)rtw_short_gi;
  793. registry_par->ldpc_cap = (u8)rtw_ldpc_cap;
  794. #if defined(CONFIG_CUSTOMER01_SMART_ANTENNA)
  795. rtw_stbc_cap = 0x0;
  796. #elif defined(CONFIG_RTW_TX_2PATH_EN)
  797. rtw_stbc_cap &= ~(BIT1|BIT5);
  798. #endif
  799. registry_par->stbc_cap = (u8)rtw_stbc_cap;
  800. #if defined(CONFIG_RTW_TX_2PATH_EN)
  801. rtw_beamform_cap &= ~(BIT0|BIT2|BIT4);
  802. #endif
  803. registry_par->beamform_cap = (u8)rtw_beamform_cap;
  804. registry_par->beamformer_rf_num = (u8)rtw_bfer_rf_number;
  805. registry_par->beamformee_rf_num = (u8)rtw_bfee_rf_number;
  806. rtw_regsty_init_rx_ampdu_sz_limit(registry_par);
  807. }
  808. #endif
  809. #ifdef DBG_LA_MODE
  810. registry_par->la_mode_en = (u8)rtw_la_mode_en;
  811. #endif
  812. #ifdef CONFIG_80211AC_VHT
  813. registry_par->vht_enable = (u8)rtw_vht_enable;
  814. registry_par->ampdu_factor = (u8)rtw_ampdu_factor;
  815. registry_par->vht_rx_mcs_map[0] = (u8)(rtw_vht_rx_mcs_map & 0xFF);
  816. registry_par->vht_rx_mcs_map[1] = (u8)((rtw_vht_rx_mcs_map & 0xFF00) >> 8);
  817. #endif
  818. #ifdef CONFIG_TX_EARLY_MODE
  819. registry_par->early_mode = (u8)rtw_early_mode;
  820. #endif
  821. registry_par->lowrate_two_xmit = (u8)rtw_lowrate_two_xmit;
  822. registry_par->rf_config = (u8)rtw_rf_config;
  823. registry_par->low_power = (u8)rtw_low_power;
  824. registry_par->check_hw_status = (u8)rtw_check_hw_status;
  825. registry_par->wifi_spec = (u8)rtw_wifi_spec;
  826. if (strlen(rtw_country_code) != 2
  827. || is_alpha(rtw_country_code[0]) == _FALSE
  828. || is_alpha(rtw_country_code[1]) == _FALSE
  829. ) {
  830. if (rtw_country_code != rtw_country_unspecified)
  831. RTW_ERR("%s discard rtw_country_code not in alpha2\n", __func__);
  832. _rtw_memset(registry_par->alpha2, 0xFF, 2);
  833. } else
  834. _rtw_memcpy(registry_par->alpha2, rtw_country_code, 2);
  835. registry_par->channel_plan = (u8)rtw_channel_plan;
  836. rtw_regsty_load_excl_chs(registry_par);
  837. registry_par->special_rf_path = (u8)rtw_special_rf_path;
  838. registry_par->full_ch_in_p2p_handshake = (u8)rtw_full_ch_in_p2p_handshake;
  839. #ifdef CONFIG_BT_COEXIST
  840. registry_par->btcoex = (u8)rtw_btcoex_enable;
  841. registry_par->bt_iso = (u8)rtw_bt_iso;
  842. registry_par->bt_sco = (u8)rtw_bt_sco;
  843. registry_par->bt_ampdu = (u8)rtw_bt_ampdu;
  844. registry_par->ant_num = (u8)rtw_ant_num;
  845. registry_par->single_ant_path = (u8) rtw_single_ant_path;
  846. #endif
  847. registry_par->bAcceptAddbaReq = (u8)rtw_AcceptAddbaReq;
  848. registry_par->antdiv_cfg = (u8)rtw_antdiv_cfg;
  849. registry_par->antdiv_type = (u8)rtw_antdiv_type;
  850. registry_par->drv_ant_band_switch = (u8) rtw_drv_ant_band_switch;
  851. registry_par->switch_usb_mode = (u8)rtw_switch_usb_mode;
  852. #ifdef CONFIG_AUTOSUSPEND
  853. registry_par->usbss_enable = (u8)rtw_enusbss;/* 0:disable,1:enable */
  854. #endif
  855. #ifdef SUPPORT_HW_RFOFF_DETECTED
  856. registry_par->hwpdn_mode = (u8)rtw_hwpdn_mode;/* 0:disable,1:enable,2:by EFUSE config */
  857. registry_par->hwpwrp_detect = (u8)rtw_hwpwrp_detect;/* 0:disable,1:enable */
  858. #endif
  859. registry_par->hw_wps_pbc = (u8)rtw_hw_wps_pbc;
  860. #ifdef CONFIG_ADAPTOR_INFO_CACHING_FILE
  861. snprintf(registry_par->adaptor_info_caching_file_path, PATH_LENGTH_MAX, "%s", rtw_adaptor_info_caching_file_path);
  862. registry_par->adaptor_info_caching_file_path[PATH_LENGTH_MAX - 1] = 0;
  863. #endif
  864. #ifdef CONFIG_LAYER2_ROAMING
  865. registry_par->max_roaming_times = (u8)rtw_max_roaming_times;
  866. #ifdef CONFIG_INTEL_WIDI
  867. registry_par->max_roaming_times = (u8)rtw_max_roaming_times + 2;
  868. #endif /* CONFIG_INTEL_WIDI */
  869. #endif
  870. #ifdef CONFIG_IOL
  871. registry_par->fw_iol = rtw_fw_iol;
  872. #endif
  873. #ifdef CONFIG_80211D
  874. registry_par->enable80211d = (u8)rtw_80211d;
  875. #endif
  876. snprintf(registry_par->ifname, 16, "%s", ifname);
  877. snprintf(registry_par->if2name, 16, "%s", if2name);
  878. registry_par->notch_filter = (u8)rtw_notch_filter;
  879. #ifdef CONFIG_CONCURRENT_MODE
  880. registry_par->virtual_iface_num = (u8)rtw_virtual_iface_num;
  881. #endif
  882. registry_par->pll_ref_clk_sel = (u8)rtw_pll_ref_clk_sel;
  883. #ifdef CONFIG_TXPWR_LIMIT
  884. registry_par->RegEnableTxPowerLimit = (u8)rtw_tx_pwr_lmt_enable;
  885. #endif
  886. registry_par->RegEnableTxPowerByRate = (u8)rtw_tx_pwr_by_rate;
  887. rtw_regsty_load_target_tx_power(registry_par);
  888. registry_par->tsf_update_pause_factor = (u8)rtw_tsf_update_pause_factor;
  889. registry_par->tsf_update_restore_factor = (u8)rtw_tsf_update_restore_factor;
  890. registry_par->TxBBSwing_2G = (s8)rtw_TxBBSwing_2G;
  891. registry_par->TxBBSwing_5G = (s8)rtw_TxBBSwing_5G;
  892. registry_par->bEn_RFE = 1;
  893. registry_par->RFE_Type = (u8)rtw_RFE_type;
  894. registry_par->PowerTracking_Type = (u8)rtw_powertracking_type;
  895. registry_par->AmplifierType_2G = (u8)rtw_amplifier_type_2g;
  896. registry_par->AmplifierType_5G = (u8)rtw_amplifier_type_5g;
  897. registry_par->GLNA_Type = (u8)rtw_GLNA_type;
  898. #ifdef CONFIG_LOAD_PHY_PARA_FROM_FILE
  899. registry_par->load_phy_file = (u8)rtw_load_phy_file;
  900. registry_par->RegDecryptCustomFile = (u8)rtw_decrypt_phy_file;
  901. #endif
  902. registry_par->qos_opt_enable = (u8)rtw_qos_opt_enable;
  903. registry_par->hiq_filter = (u8)rtw_hiq_filter;
  904. registry_par->adaptivity_en = (u8)rtw_adaptivity_en;
  905. registry_par->adaptivity_mode = (u8)rtw_adaptivity_mode;
  906. registry_par->adaptivity_th_l2h_ini = (s8)rtw_adaptivity_th_l2h_ini;
  907. registry_par->adaptivity_th_edcca_hl_diff = (s8)rtw_adaptivity_th_edcca_hl_diff;
  908. #ifdef CONFIG_DYNAMIC_SOML
  909. registry_par->dyn_soml_en = (u8)rtw_dynamic_soml_en;
  910. registry_par->dyn_soml_train_num = (u8)rtw_dynamic_soml_train_num;
  911. registry_par->dyn_soml_interval = (u8)rtw_dynamic_soml_interval;
  912. registry_par->dyn_soml_period = (u8)rtw_dynamic_soml_period;
  913. registry_par->dyn_soml_delay = (u8)rtw_dynamic_soml_delay;
  914. #endif
  915. registry_par->boffefusemask = (u8)rtw_OffEfuseMask;
  916. registry_par->bFileMaskEfuse = (u8)rtw_FileMaskEfuse;
  917. #ifdef CONFIG_RTW_ACS
  918. registry_par->acs_mode = (u8)rtw_acs;
  919. registry_par->acs_auto_scan = (u8)rtw_acs_auto_scan;
  920. #endif
  921. #ifdef CONFIG_BACKGROUND_NOISE_MONITOR
  922. registry_par->nm_mode = (u8)rtw_nm;
  923. #endif
  924. registry_par->reg_rxgain_offset_2g = (u32) rtw_rxgain_offset_2g;
  925. registry_par->reg_rxgain_offset_5gl = (u32) rtw_rxgain_offset_5gl;
  926. registry_par->reg_rxgain_offset_5gm = (u32) rtw_rxgain_offset_5gm;
  927. registry_par->reg_rxgain_offset_5gh = (u32) rtw_rxgain_offset_5gh;
  928. #ifdef CONFIG_DFS_MASTER
  929. registry_par->dfs_region_domain = (u8)rtw_dfs_region_domain;
  930. #endif
  931. #ifdef CONFIG_MCC_MODE
  932. registry_par->en_mcc = (u8)rtw_en_mcc;
  933. registry_par->rtw_mcc_ap_bw20_target_tx_tp = (u32)rtw_mcc_ap_bw20_target_tx_tp;
  934. registry_par->rtw_mcc_ap_bw40_target_tx_tp = (u32)rtw_mcc_ap_bw40_target_tx_tp;
  935. registry_par->rtw_mcc_ap_bw80_target_tx_tp = (u32)rtw_mcc_ap_bw80_target_tx_tp;
  936. registry_par->rtw_mcc_sta_bw20_target_tx_tp = (u32)rtw_mcc_sta_bw20_target_tx_tp;
  937. registry_par->rtw_mcc_sta_bw40_target_tx_tp = (u32)rtw_mcc_sta_bw40_target_tx_tp;
  938. registry_par->rtw_mcc_sta_bw80_target_tx_tp = (u32)rtw_mcc_sta_bw80_target_tx_tp;
  939. registry_par->rtw_mcc_single_tx_cri = (u32)rtw_mcc_single_tx_cri;
  940. registry_par->rtw_mcc_policy_table_idx = rtw_mcc_policy_table_idx;
  941. registry_par->rtw_mcc_duration = (u8)rtw_mcc_duration;
  942. registry_par->rtw_mcc_enable_runtime_duration = rtw_mcc_enable_runtime_duration;
  943. #endif /*CONFIG_MCC_MODE */
  944. #ifdef CONFIG_WOWLAN
  945. registry_par->wakeup_event = rtw_wakeup_event;
  946. #endif
  947. #ifdef CONFIG_SUPPORT_TRX_SHARED
  948. registry_par->trx_share_mode = rtw_trx_share_mode;
  949. #endif
  950. #ifdef CONFIG_PCI_HCI
  951. registry_par->pci_aspm_config = rtw_pci_aspm_enable;
  952. #endif
  953. #ifdef CONFIG_RTW_NAPI
  954. registry_par->en_napi = (u8)rtw_en_napi;
  955. #ifdef CONFIG_RTW_NAPI_DYNAMIC
  956. registry_par->napi_threshold = (u32)rtw_napi_threshold;
  957. #endif /* CONFIG_RTW_NAPI_DYNAMIC */
  958. #ifdef CONFIG_RTW_GRO
  959. registry_par->en_gro = (u8)rtw_en_gro;
  960. if (!registry_par->en_napi && registry_par->en_gro) {
  961. registry_par->en_gro = 0;
  962. RTW_WARN("Disable GRO because NAPI is not enabled\n");
  963. }
  964. #endif /* CONFIG_RTW_GRO */
  965. #endif /* CONFIG_RTW_NAPI */
  966. registry_par->iqk_fw_offload = (u8)rtw_iqk_fw_offload;
  967. registry_par->ch_switch_offload = (u8)rtw_ch_switch_offload;
  968. #ifdef CONFIG_TDLS
  969. registry_par->en_tdls = rtw_en_tdls;
  970. #endif
  971. #ifdef CONFIG_ADVANCE_OTA
  972. registry_par->adv_ota = rtw_advnace_ota;
  973. #endif
  974. #ifdef CONFIG_FW_OFFLOAD_PARAM_INIT
  975. registry_par->fw_param_init = rtw_fw_param_init;
  976. #endif
  977. #ifdef CONFIG_AP_MODE
  978. registry_par->bmc_tx_rate = rtw_bmc_tx_rate;
  979. #endif
  980. #ifdef CONFIG_FW_HANDLE_TXBCN
  981. registry_par->fw_tbtt_rpt = rtw_tbtt_rpt;
  982. #endif
  983. return status;
  984. }
  985. /**
  986. * rtw_net_set_mac_address
  987. * This callback function is used for the Media Access Control address
  988. * of each net_device needs to be changed.
  989. *
  990. * Arguments:
  991. * @pnetdev: net_device pointer.
  992. * @addr: new MAC address.
  993. *
  994. * Return:
  995. * ret = 0: Permit to change net_device's MAC address.
  996. * ret = -1 (Default): Operation not permitted.
  997. *
  998. * Auther: Arvin Liu
  999. * Date: 2015/05/29
  1000. */
  1001. static int rtw_net_set_mac_address(struct net_device *pnetdev, void *addr)
  1002. {
  1003. _adapter *padapter = (_adapter *)rtw_netdev_priv(pnetdev);
  1004. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  1005. struct sockaddr *sa = (struct sockaddr *)addr;
  1006. int ret = -1;
  1007. /* only the net_device is in down state to permit modifying mac addr */
  1008. if ((pnetdev->flags & IFF_UP) == _TRUE) {
  1009. RTW_INFO(FUNC_ADPT_FMT": The net_device's is not in down state\n"
  1010. , FUNC_ADPT_ARG(padapter));
  1011. return ret;
  1012. }
  1013. /* if the net_device is linked, it's not permit to modify mac addr */
  1014. if (check_fwstate(pmlmepriv, _FW_UNDER_LINKING) ||
  1015. check_fwstate(pmlmepriv, _FW_LINKED) ||
  1016. check_fwstate(pmlmepriv, _FW_UNDER_SURVEY)) {
  1017. RTW_INFO(FUNC_ADPT_FMT": The net_device's is not idle currently\n"
  1018. , FUNC_ADPT_ARG(padapter));
  1019. return ret;
  1020. }
  1021. /* check whether the input mac address is valid to permit modifying mac addr */
  1022. if (rtw_check_invalid_mac_address(sa->sa_data, _FALSE) == _TRUE) {
  1023. RTW_INFO(FUNC_ADPT_FMT": Invalid Mac Addr for "MAC_FMT"\n"
  1024. , FUNC_ADPT_ARG(padapter), MAC_ARG(sa->sa_data));
  1025. return ret;
  1026. }
  1027. _rtw_memcpy(adapter_mac_addr(padapter), sa->sa_data, ETH_ALEN); /* set mac addr to adapter */
  1028. _rtw_memcpy(pnetdev->dev_addr, sa->sa_data, ETH_ALEN); /* set mac addr to net_device */
  1029. #if 0
  1030. if (rtw_is_hw_init_completed(padapter)) {
  1031. rtw_ps_deny(padapter, PS_DENY_IOCTL);
  1032. LeaveAllPowerSaveModeDirect(padapter); /* leave PS mode for guaranteeing to access hw register successfully */
  1033. #ifdef CONFIG_MI_WITH_MBSSID_CAM
  1034. rtw_hal_change_macaddr_mbid(padapter, sa->sa_data);
  1035. #else
  1036. rtw_hal_set_hwreg(padapter, HW_VAR_MAC_ADDR, sa->sa_data); /* set mac addr to mac register */
  1037. #endif
  1038. rtw_ps_deny_cancel(padapter, PS_DENY_IOCTL);
  1039. }
  1040. #else
  1041. rtw_ps_deny(padapter, PS_DENY_IOCTL);
  1042. LeaveAllPowerSaveModeDirect(padapter); /* leave PS mode for guaranteeing to access hw register successfully */
  1043. #ifdef CONFIG_MI_WITH_MBSSID_CAM
  1044. rtw_hal_change_macaddr_mbid(padapter, sa->sa_data);
  1045. #else
  1046. rtw_hal_set_hwreg(padapter, HW_VAR_MAC_ADDR, sa->sa_data); /* set mac addr to mac register */
  1047. #endif
  1048. rtw_ps_deny_cancel(padapter, PS_DENY_IOCTL);
  1049. #endif
  1050. RTW_INFO(FUNC_ADPT_FMT": Set Mac Addr to "MAC_FMT" Successfully\n"
  1051. , FUNC_ADPT_ARG(padapter), MAC_ARG(sa->sa_data));
  1052. ret = 0;
  1053. return ret;
  1054. }
  1055. static struct net_device_stats *rtw_net_get_stats(struct net_device *pnetdev)
  1056. {
  1057. _adapter *padapter = (_adapter *)rtw_netdev_priv(pnetdev);
  1058. struct xmit_priv *pxmitpriv = &(padapter->xmitpriv);
  1059. struct recv_priv *precvpriv = &(padapter->recvpriv);
  1060. padapter->stats.tx_packets = pxmitpriv->tx_pkts;/* pxmitpriv->tx_pkts++; */
  1061. padapter->stats.rx_packets = precvpriv->rx_pkts;/* precvpriv->rx_pkts++; */
  1062. padapter->stats.tx_dropped = pxmitpriv->tx_drop;
  1063. padapter->stats.rx_dropped = precvpriv->rx_drop;
  1064. padapter->stats.tx_bytes = pxmitpriv->tx_bytes;
  1065. padapter->stats.rx_bytes = precvpriv->rx_bytes;
  1066. return &padapter->stats;
  1067. }
  1068. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 35))
  1069. /*
  1070. * AC to queue mapping
  1071. *
  1072. * AC_VO -> queue 0
  1073. * AC_VI -> queue 1
  1074. * AC_BE -> queue 2
  1075. * AC_BK -> queue 3
  1076. */
  1077. static const u16 rtw_1d_to_queue[8] = { 2, 3, 3, 2, 1, 1, 0, 0 };
  1078. /* Given a data frame determine the 802.1p/1d tag to use. */
  1079. unsigned int rtw_classify8021d(struct sk_buff *skb)
  1080. {
  1081. unsigned int dscp;
  1082. /* skb->priority values from 256->263 are magic values to
  1083. * directly indicate a specific 802.1d priority. This is used
  1084. * to allow 802.1d priority to be passed directly in from VLAN
  1085. * tags, etc.
  1086. */
  1087. if (skb->priority >= 256 && skb->priority <= 263)
  1088. return skb->priority - 256;
  1089. switch (skb->protocol) {
  1090. case htons(ETH_P_IP):
  1091. dscp = ip_hdr(skb)->tos & 0xfc;
  1092. break;
  1093. default:
  1094. return 0;
  1095. }
  1096. return dscp >> 5;
  1097. }
  1098. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(4,19,0))
  1099. static u16 rtw_select_queue(struct net_device *dev, struct sk_buff *skb
  1100. , struct net_device *sb_dev
  1101. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5,2,0))
  1102. , select_queue_fallback_t fallback
  1103. #endif
  1104. )
  1105. #else
  1106. static u16 rtw_select_queue(struct net_device *dev, struct sk_buff *skb
  1107. #if LINUX_VERSION_CODE >= KERNEL_VERSION(3, 13, 0)
  1108. , void *accel_priv
  1109. #if LINUX_VERSION_CODE >= KERNEL_VERSION(3, 14, 0)
  1110. , select_queue_fallback_t fallback
  1111. #endif
  1112. #endif
  1113. )
  1114. #endif
  1115. {
  1116. _adapter *padapter = rtw_netdev_priv(dev);
  1117. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  1118. skb->priority = rtw_classify8021d(skb);
  1119. if (pmlmepriv->acm_mask != 0)
  1120. skb->priority = qos_acm(pmlmepriv->acm_mask, skb->priority);
  1121. return rtw_1d_to_queue[skb->priority];
  1122. }
  1123. u16 rtw_recv_select_queue(struct sk_buff *skb)
  1124. {
  1125. struct iphdr *piphdr;
  1126. unsigned int dscp;
  1127. u16 eth_type;
  1128. u32 priority;
  1129. u8 *pdata = skb->data;
  1130. _rtw_memcpy(&eth_type, pdata + (ETH_ALEN << 1), 2);
  1131. switch (eth_type) {
  1132. case htons(ETH_P_IP):
  1133. piphdr = (struct iphdr *)(pdata + ETH_HLEN);
  1134. dscp = piphdr->tos & 0xfc;
  1135. priority = dscp >> 5;
  1136. break;
  1137. default:
  1138. priority = 0;
  1139. }
  1140. return rtw_1d_to_queue[priority];
  1141. }
  1142. #endif
  1143. static u8 is_rtw_ndev(struct net_device *ndev)
  1144. {
  1145. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 29))
  1146. return ndev->netdev_ops
  1147. && ndev->netdev_ops->ndo_do_ioctl
  1148. && ndev->netdev_ops->ndo_do_ioctl == rtw_ioctl;
  1149. #else
  1150. return ndev->do_ioctl
  1151. && ndev->do_ioctl == rtw_ioctl;
  1152. #endif
  1153. }
  1154. static int rtw_ndev_notifier_call(struct notifier_block *nb, unsigned long state, void *ptr)
  1155. {
  1156. struct net_device *ndev;
  1157. if (ptr == NULL)
  1158. return NOTIFY_DONE;
  1159. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(3, 11, 0))
  1160. ndev = netdev_notifier_info_to_dev(ptr);
  1161. #else
  1162. ndev = ptr;
  1163. #endif
  1164. if (ndev == NULL)
  1165. return NOTIFY_DONE;
  1166. if (!is_rtw_ndev(ndev))
  1167. return NOTIFY_DONE;
  1168. RTW_INFO(FUNC_NDEV_FMT" state:%lu\n", FUNC_NDEV_ARG(ndev), state);
  1169. switch (state) {
  1170. case NETDEV_CHANGENAME:
  1171. rtw_adapter_proc_replace(ndev);
  1172. break;
  1173. #ifdef CONFIG_NEW_NETDEV_HDL
  1174. case NETDEV_PRE_UP :
  1175. {
  1176. _adapter *adapter = rtw_netdev_priv(ndev);
  1177. rtw_pwr_wakeup(adapter);
  1178. }
  1179. break;
  1180. #endif
  1181. }
  1182. return NOTIFY_DONE;
  1183. }
  1184. static struct notifier_block rtw_ndev_notifier = {
  1185. .notifier_call = rtw_ndev_notifier_call,
  1186. };
  1187. int rtw_ndev_notifier_register(void)
  1188. {
  1189. return register_netdevice_notifier(&rtw_ndev_notifier);
  1190. }
  1191. void rtw_ndev_notifier_unregister(void)
  1192. {
  1193. unregister_netdevice_notifier(&rtw_ndev_notifier);
  1194. }
  1195. int rtw_ndev_init(struct net_device *dev)
  1196. {
  1197. _adapter *adapter = rtw_netdev_priv(dev);
  1198. RTW_PRINT(FUNC_ADPT_FMT" if%d mac_addr="MAC_FMT"\n"
  1199. , FUNC_ADPT_ARG(adapter), (adapter->iface_id + 1), MAC_ARG(dev->dev_addr));
  1200. strncpy(adapter->old_ifname, dev->name, IFNAMSIZ);
  1201. adapter->old_ifname[IFNAMSIZ - 1] = '\0';
  1202. rtw_adapter_proc_init(dev);
  1203. return 0;
  1204. }
  1205. void rtw_ndev_uninit(struct net_device *dev)
  1206. {
  1207. _adapter *adapter = rtw_netdev_priv(dev);
  1208. RTW_PRINT(FUNC_ADPT_FMT" if%d\n"
  1209. , FUNC_ADPT_ARG(adapter), (adapter->iface_id + 1));
  1210. rtw_adapter_proc_deinit(dev);
  1211. }
  1212. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 29))
  1213. static const struct net_device_ops rtw_netdev_ops = {
  1214. .ndo_init = rtw_ndev_init,
  1215. .ndo_uninit = rtw_ndev_uninit,
  1216. .ndo_open = netdev_open,
  1217. .ndo_stop = netdev_close,
  1218. .ndo_start_xmit = rtw_xmit_entry,
  1219. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 35))
  1220. .ndo_select_queue = rtw_select_queue,
  1221. #endif
  1222. .ndo_set_mac_address = rtw_net_set_mac_address,
  1223. .ndo_get_stats = rtw_net_get_stats,
  1224. .ndo_do_ioctl = rtw_ioctl,
  1225. };
  1226. #endif
  1227. int rtw_init_netdev_name(struct net_device *pnetdev, const char *ifname)
  1228. {
  1229. #ifdef CONFIG_EASY_REPLACEMENT
  1230. _adapter *padapter = rtw_netdev_priv(pnetdev);
  1231. struct net_device *TargetNetdev = NULL;
  1232. _adapter *TargetAdapter = NULL;
  1233. struct net *devnet = NULL;
  1234. if (padapter->bDongle == 1) {
  1235. #if (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 24))
  1236. TargetNetdev = dev_get_by_name("wlan0");
  1237. #else
  1238. #if (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 26))
  1239. devnet = pnetdev->nd_net;
  1240. #else
  1241. devnet = dev_net(pnetdev);
  1242. #endif
  1243. TargetNetdev = dev_get_by_name(devnet, "wlan0");
  1244. #endif
  1245. if (TargetNetdev) {
  1246. RTW_INFO("Force onboard module driver disappear !!!\n");
  1247. TargetAdapter = rtw_netdev_priv(TargetNetdev);
  1248. TargetAdapter->DriverState = DRIVER_DISAPPEAR;
  1249. padapter->pid[0] = TargetAdapter->pid[0];
  1250. padapter->pid[1] = TargetAdapter->pid[1];
  1251. padapter->pid[2] = TargetAdapter->pid[2];
  1252. dev_put(TargetNetdev);
  1253. unregister_netdev(TargetNetdev);
  1254. padapter->DriverState = DRIVER_REPLACE_DONGLE;
  1255. }
  1256. }
  1257. #endif /* CONFIG_EASY_REPLACEMENT */
  1258. if (dev_alloc_name(pnetdev, ifname) < 0)
  1259. RTW_ERR("dev_alloc_name, fail!\n");
  1260. rtw_netif_carrier_off(pnetdev);
  1261. /* rtw_netif_stop_queue(pnetdev); */
  1262. return 0;
  1263. }
  1264. void rtw_hook_if_ops(struct net_device *ndev)
  1265. {
  1266. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 29))
  1267. ndev->netdev_ops = &rtw_netdev_ops;
  1268. #else
  1269. ndev->init = rtw_ndev_init;
  1270. ndev->uninit = rtw_ndev_uninit;
  1271. ndev->open = netdev_open;
  1272. ndev->stop = netdev_close;
  1273. ndev->hard_start_xmit = rtw_xmit_entry;
  1274. ndev->set_mac_address = rtw_net_set_mac_address;
  1275. ndev->get_stats = rtw_net_get_stats;
  1276. ndev->do_ioctl = rtw_ioctl;
  1277. #endif
  1278. }
  1279. #ifdef CONFIG_CONCURRENT_MODE
  1280. static void rtw_hook_vir_if_ops(struct net_device *ndev);
  1281. #endif
  1282. struct net_device *rtw_init_netdev(_adapter *old_padapter)
  1283. {
  1284. _adapter *padapter;
  1285. struct net_device *pnetdev;
  1286. if (old_padapter != NULL) {
  1287. rtw_os_ndev_free(old_padapter);
  1288. pnetdev = rtw_alloc_etherdev_with_old_priv(sizeof(_adapter), (void *)old_padapter);
  1289. } else
  1290. pnetdev = rtw_alloc_etherdev(sizeof(_adapter));
  1291. if (!pnetdev)
  1292. return NULL;
  1293. padapter = rtw_netdev_priv(pnetdev);
  1294. padapter->pnetdev = pnetdev;
  1295. #if LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 24)
  1296. SET_MODULE_OWNER(pnetdev);
  1297. #endif
  1298. rtw_hook_if_ops(pnetdev);
  1299. #ifdef CONFIG_CONCURRENT_MODE
  1300. if (!is_primary_adapter(padapter))
  1301. rtw_hook_vir_if_ops(pnetdev);
  1302. #endif /* CONFIG_CONCURRENT_MODE */
  1303. #ifdef CONFIG_TX_CSUM_OFFLOAD
  1304. pnetdev->features |= (NETIF_F_IP_CSUM | NETIF_F_IPV6_CSUM);
  1305. #if LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 39)
  1306. pnetdev->hw_features |= (NETIF_F_IP_CSUM | NETIF_F_IPV6_CSUM);
  1307. #endif
  1308. #endif
  1309. #ifdef CONFIG_RTW_NETIF_SG
  1310. pnetdev->features |= NETIF_F_SG;
  1311. #if LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 39)
  1312. pnetdev->hw_features |= NETIF_F_SG;
  1313. #endif
  1314. #endif
  1315. if ((pnetdev->features & NETIF_F_SG) && (pnetdev->features & NETIF_F_IP_CSUM)) {
  1316. pnetdev->features |= (NETIF_F_TSO | NETIF_F_GSO);
  1317. #if LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 39)
  1318. pnetdev->hw_features |= (NETIF_F_TSO | NETIF_F_GSO);
  1319. #endif
  1320. }
  1321. /* pnetdev->tx_timeout = NULL; */
  1322. pnetdev->watchdog_timeo = HZ * 3; /* 3 second timeout */
  1323. #ifdef CONFIG_WIRELESS_EXT
  1324. pnetdev->wireless_handlers = (struct iw_handler_def *)&rtw_handlers_def;
  1325. #endif
  1326. #ifdef WIRELESS_SPY
  1327. /* priv->wireless_data.spy_data = &priv->spy_data; */
  1328. /* pnetdev->wireless_data = &priv->wireless_data; */
  1329. #endif
  1330. return pnetdev;
  1331. }
  1332. int rtw_os_ndev_alloc(_adapter *adapter)
  1333. {
  1334. int ret = _FAIL;
  1335. struct net_device *ndev = NULL;
  1336. ndev = rtw_init_netdev(adapter);
  1337. if (ndev == NULL) {
  1338. rtw_warn_on(1);
  1339. goto exit;
  1340. }
  1341. #if LINUX_VERSION_CODE > KERNEL_VERSION(2, 5, 0)
  1342. SET_NETDEV_DEV(ndev, dvobj_to_dev(adapter_to_dvobj(adapter)));
  1343. #endif
  1344. #ifdef CONFIG_PCI_HCI
  1345. if (adapter_to_dvobj(adapter)->bdma64)
  1346. ndev->features |= NETIF_F_HIGHDMA;
  1347. ndev->irq = adapter_to_dvobj(adapter)->irq;
  1348. #endif
  1349. #if defined(CONFIG_IOCTL_CFG80211)
  1350. if (rtw_cfg80211_ndev_res_alloc(adapter) != _SUCCESS) {
  1351. rtw_warn_on(1);
  1352. goto free_ndev;
  1353. }
  1354. #endif
  1355. ret = _SUCCESS;
  1356. free_ndev:
  1357. if (ret != _SUCCESS && ndev)
  1358. rtw_free_netdev(ndev);
  1359. exit:
  1360. return ret;
  1361. }
  1362. void rtw_os_ndev_free(_adapter *adapter)
  1363. {
  1364. #if defined(CONFIG_IOCTL_CFG80211)
  1365. rtw_cfg80211_ndev_res_free(adapter);
  1366. #endif
  1367. /* free the old_pnetdev */
  1368. if (adapter->rereg_nd_name_priv.old_pnetdev) {
  1369. rtw_free_netdev(adapter->rereg_nd_name_priv.old_pnetdev);
  1370. adapter->rereg_nd_name_priv.old_pnetdev = NULL;
  1371. }
  1372. if (adapter->pnetdev) {
  1373. rtw_free_netdev(adapter->pnetdev);
  1374. adapter->pnetdev = NULL;
  1375. }
  1376. }
  1377. int rtw_os_ndev_register(_adapter *adapter, const char *name)
  1378. {
  1379. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  1380. int ret = _SUCCESS;
  1381. struct net_device *ndev = adapter->pnetdev;
  1382. u8 rtnl_lock_needed = rtw_rtnl_lock_needed(dvobj);
  1383. #ifdef CONFIG_RTW_NAPI
  1384. netif_napi_add(ndev, &adapter->napi, rtw_recv_napi_poll, RTL_NAPI_WEIGHT);
  1385. #endif /* CONFIG_RTW_NAPI */
  1386. #if defined(CONFIG_IOCTL_CFG80211)
  1387. if (rtw_cfg80211_ndev_res_register(adapter) != _SUCCESS) {
  1388. rtw_warn_on(1);
  1389. ret = _FAIL;
  1390. goto exit;
  1391. }
  1392. #endif
  1393. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(3, 19, 0)) && defined(CONFIG_PCI_HCI)
  1394. ndev->gro_flush_timeout = 100000;
  1395. #endif
  1396. /* alloc netdev name */
  1397. rtw_init_netdev_name(ndev, name);
  1398. _rtw_memcpy(ndev->dev_addr, adapter_mac_addr(adapter), ETH_ALEN);
  1399. /* Tell the network stack we exist */
  1400. if (rtnl_lock_needed)
  1401. ret = (register_netdev(ndev) == 0) ? _SUCCESS : _FAIL;
  1402. else
  1403. ret = (register_netdevice(ndev) == 0) ? _SUCCESS : _FAIL;
  1404. if (ret == _SUCCESS)
  1405. adapter->registered = 1;
  1406. else
  1407. RTW_INFO(FUNC_NDEV_FMT" if%d Failed!\n", FUNC_NDEV_ARG(ndev), (adapter->iface_id + 1));
  1408. #if defined(CONFIG_IOCTL_CFG80211)
  1409. if (ret != _SUCCESS) {
  1410. rtw_cfg80211_ndev_res_unregister(adapter);
  1411. #if !defined(RTW_SINGLE_WIPHY)
  1412. rtw_wiphy_unregister(adapter_to_wiphy(adapter));
  1413. #endif
  1414. }
  1415. #endif
  1416. exit:
  1417. #ifdef CONFIG_RTW_NAPI
  1418. if (ret != _SUCCESS)
  1419. netif_napi_del(&adapter->napi);
  1420. #endif /* CONFIG_RTW_NAPI */
  1421. return ret;
  1422. }
  1423. void rtw_os_ndev_unregister(_adapter *adapter)
  1424. {
  1425. struct net_device *netdev = NULL;
  1426. if (adapter == NULL || adapter->registered == 0)
  1427. return;
  1428. adapter->ndev_unregistering = 1;
  1429. netdev = adapter->pnetdev;
  1430. #if defined(CONFIG_IOCTL_CFG80211)
  1431. rtw_cfg80211_ndev_res_unregister(adapter);
  1432. #endif
  1433. if ((adapter->DriverState != DRIVER_DISAPPEAR) && netdev) {
  1434. struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
  1435. u8 rtnl_lock_needed = rtw_rtnl_lock_needed(dvobj);
  1436. if (rtnl_lock_needed)
  1437. unregister_netdev(netdev);
  1438. else
  1439. unregister_netdevice(netdev);
  1440. }
  1441. #if defined(CONFIG_IOCTL_CFG80211) && !defined(RTW_SINGLE_WIPHY)
  1442. #ifdef CONFIG_RFKILL_POLL
  1443. rtw_cfg80211_deinit_rfkill(adapter_to_wiphy(adapter));
  1444. #endif
  1445. rtw_wiphy_unregister(adapter_to_wiphy(adapter));
  1446. #endif
  1447. #ifdef CONFIG_RTW_NAPI
  1448. if (adapter->napi_state == NAPI_ENABLE) {
  1449. napi_disable(&adapter->napi);
  1450. adapter->napi_state = NAPI_DISABLE;
  1451. }
  1452. netif_napi_del(&adapter->napi);
  1453. #endif /* CONFIG_RTW_NAPI */
  1454. adapter->registered = 0;
  1455. adapter->ndev_unregistering = 0;
  1456. }
  1457. /**
  1458. * rtw_os_ndev_init - Allocate and register OS layer net device and relating structures for @adapter
  1459. * @adapter: the adapter on which this function applies
  1460. * @name: the requesting net device name
  1461. *
  1462. * Returns:
  1463. * _SUCCESS or _FAIL
  1464. */
  1465. int rtw_os_ndev_init(_adapter *adapter, const char *name)
  1466. {
  1467. int ret = _FAIL;
  1468. if (rtw_os_ndev_alloc(adapter) != _SUCCESS)
  1469. goto exit;
  1470. if (rtw_os_ndev_register(adapter, name) != _SUCCESS)
  1471. goto os_ndev_free;
  1472. ret = _SUCCESS;
  1473. os_ndev_free:
  1474. if (ret != _SUCCESS)
  1475. rtw_os_ndev_free(adapter);
  1476. exit:
  1477. return ret;
  1478. }
  1479. /**
  1480. * rtw_os_ndev_deinit - Unregister and free OS layer net device and relating structures for @adapter
  1481. * @adapter: the adapter on which this function applies
  1482. */
  1483. void rtw_os_ndev_deinit(_adapter *adapter)
  1484. {
  1485. rtw_os_ndev_unregister(adapter);
  1486. rtw_os_ndev_free(adapter);
  1487. }
  1488. int rtw_os_ndevs_alloc(struct dvobj_priv *dvobj)
  1489. {
  1490. int i, status = _SUCCESS;
  1491. _adapter *adapter;
  1492. #if defined(CONFIG_IOCTL_CFG80211)
  1493. if (rtw_cfg80211_dev_res_alloc(dvobj) != _SUCCESS) {
  1494. rtw_warn_on(1);
  1495. status = _FAIL;
  1496. goto exit;
  1497. }
  1498. #endif
  1499. for (i = 0; i < dvobj->iface_nums; i++) {
  1500. if (i >= CONFIG_IFACE_NUMBER) {
  1501. RTW_ERR("%s %d >= CONFIG_IFACE_NUMBER(%d)\n", __func__, i, CONFIG_IFACE_NUMBER);
  1502. rtw_warn_on(1);
  1503. continue;
  1504. }
  1505. adapter = dvobj->padapters[i];
  1506. if (adapter && !adapter->pnetdev) {
  1507. #ifdef CONFIG_RTW_DYNAMIC_NDEV
  1508. if (!is_primary_adapter(adapter))
  1509. continue;
  1510. #endif
  1511. status = rtw_os_ndev_alloc(adapter);
  1512. if (status != _SUCCESS) {
  1513. rtw_warn_on(1);
  1514. break;
  1515. }
  1516. }
  1517. }
  1518. if (status != _SUCCESS) {
  1519. for (; i >= 0; i--) {
  1520. adapter = dvobj->padapters[i];
  1521. if (adapter && adapter->pnetdev)
  1522. rtw_os_ndev_free(adapter);
  1523. }
  1524. }
  1525. #if defined(CONFIG_IOCTL_CFG80211)
  1526. if (status != _SUCCESS)
  1527. rtw_cfg80211_dev_res_free(dvobj);
  1528. #endif
  1529. exit:
  1530. return status;
  1531. }
  1532. void rtw_os_ndevs_free(struct dvobj_priv *dvobj)
  1533. {
  1534. int i;
  1535. _adapter *adapter = NULL;
  1536. for (i = 0; i < dvobj->iface_nums; i++) {
  1537. if (i >= CONFIG_IFACE_NUMBER) {
  1538. RTW_ERR("%s %d >= CONFIG_IFACE_NUMBER(%d)\n", __func__, i, CONFIG_IFACE_NUMBER);
  1539. rtw_warn_on(1);
  1540. continue;
  1541. }
  1542. adapter = dvobj->padapters[i];
  1543. if (adapter == NULL)
  1544. continue;
  1545. rtw_os_ndev_free(adapter);
  1546. }
  1547. #if defined(CONFIG_IOCTL_CFG80211)
  1548. rtw_cfg80211_dev_res_free(dvobj);
  1549. #endif
  1550. }
  1551. u32 rtw_start_drv_threads(_adapter *padapter)
  1552. {
  1553. u32 _status = _SUCCESS;
  1554. RTW_INFO(FUNC_ADPT_FMT" enter\n", FUNC_ADPT_ARG(padapter));
  1555. #ifdef CONFIG_XMIT_THREAD_MODE
  1556. #if defined(CONFIG_SDIO_HCI)
  1557. if (is_primary_adapter(padapter))
  1558. #endif
  1559. {
  1560. if (padapter->xmitThread == NULL) {
  1561. RTW_INFO(FUNC_ADPT_FMT " start RTW_XMIT_THREAD\n", FUNC_ADPT_ARG(padapter));
  1562. padapter->xmitThread = kthread_run(rtw_xmit_thread, padapter, "RTW_XMIT_THREAD");
  1563. if (IS_ERR(padapter->xmitThread)) {
  1564. padapter->xmitThread = NULL;
  1565. _status = _FAIL;
  1566. }
  1567. }
  1568. }
  1569. #endif /* #ifdef CONFIG_XMIT_THREAD_MODE */
  1570. #ifdef CONFIG_RECV_THREAD_MODE
  1571. if (is_primary_adapter(padapter)) {
  1572. if (padapter->recvThread == NULL) {
  1573. RTW_INFO(FUNC_ADPT_FMT " start RTW_RECV_THREAD\n", FUNC_ADPT_ARG(padapter));
  1574. padapter->recvThread = kthread_run(rtw_recv_thread, padapter, "RTW_RECV_THREAD");
  1575. if (IS_ERR(padapter->recvThread)) {
  1576. padapter->recvThread = NULL;
  1577. _status = _FAIL;
  1578. }
  1579. }
  1580. }
  1581. #endif
  1582. if (is_primary_adapter(padapter)) {
  1583. if (padapter->cmdThread == NULL) {
  1584. RTW_INFO(FUNC_ADPT_FMT " start RTW_CMD_THREAD\n", FUNC_ADPT_ARG(padapter));
  1585. padapter->cmdThread = kthread_run(rtw_cmd_thread, padapter, "RTW_CMD_THREAD");
  1586. if (IS_ERR(padapter->cmdThread)) {
  1587. padapter->cmdThread = NULL;
  1588. _status = _FAIL;
  1589. }
  1590. else
  1591. _rtw_down_sema(&padapter->cmdpriv.start_cmdthread_sema); /* wait for cmd_thread to run */
  1592. }
  1593. }
  1594. #ifdef CONFIG_EVENT_THREAD_MODE
  1595. if (padapter->evtThread == NULL) {
  1596. RTW_INFO(FUNC_ADPT_FMT " start RTW_EVENT_THREAD\n", FUNC_ADPT_ARG(padapter));
  1597. padapter->evtThread = kthread_run(event_thread, padapter, "RTW_EVENT_THREAD");
  1598. if (IS_ERR(padapter->evtThread)) {
  1599. padapter->evtThread = NULL;
  1600. _status = _FAIL;
  1601. }
  1602. }
  1603. #endif
  1604. rtw_hal_start_thread(padapter);
  1605. return _status;
  1606. }
  1607. void rtw_stop_drv_threads(_adapter *padapter)
  1608. {
  1609. RTW_INFO(FUNC_ADPT_FMT" enter\n", FUNC_ADPT_ARG(padapter));
  1610. if (is_primary_adapter(padapter))
  1611. rtw_stop_cmd_thread(padapter);
  1612. #ifdef CONFIG_EVENT_THREAD_MODE
  1613. if (padapter->evtThread) {
  1614. _rtw_up_sema(&padapter->evtpriv.evt_notify);
  1615. rtw_thread_stop(padapter->evtThread);
  1616. padapter->evtThread = NULL;
  1617. }
  1618. #endif
  1619. #ifdef CONFIG_XMIT_THREAD_MODE
  1620. /* Below is to termindate tx_thread... */
  1621. #if defined(CONFIG_SDIO_HCI)
  1622. /* Only wake-up primary adapter */
  1623. if (is_primary_adapter(padapter))
  1624. #endif /*SDIO_HCI */
  1625. {
  1626. if (padapter->xmitThread) {
  1627. _rtw_up_sema(&padapter->xmitpriv.xmit_sema);
  1628. rtw_thread_stop(padapter->xmitThread);
  1629. padapter->xmitThread = NULL;
  1630. }
  1631. }
  1632. #endif
  1633. #ifdef CONFIG_RECV_THREAD_MODE
  1634. if (is_primary_adapter(padapter) && padapter->recvThread) {
  1635. /* Below is to termindate rx_thread... */
  1636. _rtw_up_sema(&padapter->recvpriv.recv_sema);
  1637. rtw_thread_stop(padapter->recvThread);
  1638. padapter->recvThread = NULL;
  1639. }
  1640. #endif
  1641. rtw_hal_stop_thread(padapter);
  1642. }
  1643. u8 rtw_init_default_value(_adapter *padapter)
  1644. {
  1645. u8 ret = _SUCCESS;
  1646. struct registry_priv *pregistrypriv = &padapter->registrypriv;
  1647. struct xmit_priv *pxmitpriv = &padapter->xmitpriv;
  1648. struct security_priv *psecuritypriv = &padapter->securitypriv;
  1649. /* xmit_priv */
  1650. pxmitpriv->vcs_setting = pregistrypriv->vrtl_carrier_sense;
  1651. pxmitpriv->vcs = pregistrypriv->vcs_type;
  1652. pxmitpriv->vcs_type = pregistrypriv->vcs_type;
  1653. /* pxmitpriv->rts_thresh = pregistrypriv->rts_thresh; */
  1654. pxmitpriv->frag_len = pregistrypriv->frag_thresh;
  1655. /* security_priv */
  1656. /* rtw_get_encrypt_decrypt_from_registrypriv(padapter); */
  1657. psecuritypriv->binstallGrpkey = _FAIL;
  1658. #ifdef CONFIG_GTK_OL
  1659. psecuritypriv->binstallKCK_KEK = _FAIL;
  1660. #endif /* CONFIG_GTK_OL */
  1661. psecuritypriv->sw_encrypt = pregistrypriv->software_encrypt;
  1662. psecuritypriv->sw_decrypt = pregistrypriv->software_decrypt;
  1663. psecuritypriv->dot11AuthAlgrthm = dot11AuthAlgrthm_Open; /* open system */
  1664. psecuritypriv->dot11PrivacyAlgrthm = _NO_PRIVACY_;
  1665. psecuritypriv->dot11PrivacyKeyIndex = 0;
  1666. psecuritypriv->dot118021XGrpPrivacy = _NO_PRIVACY_;
  1667. psecuritypriv->dot118021XGrpKeyid = 1;
  1668. psecuritypriv->ndisauthtype = Ndis802_11AuthModeOpen;
  1669. psecuritypriv->ndisencryptstatus = Ndis802_11WEPDisabled;
  1670. #ifdef CONFIG_CONCURRENT_MODE
  1671. psecuritypriv->dot118021x_bmc_cam_id = INVALID_SEC_MAC_CAM_ID;
  1672. #endif
  1673. /* pwrctrl_priv */
  1674. /* registry_priv */
  1675. rtw_init_registrypriv_dev_network(padapter);
  1676. rtw_update_registrypriv_dev_network(padapter);
  1677. /* hal_priv */
  1678. rtw_hal_def_value_init(padapter);
  1679. #ifdef CONFIG_MCC_MODE
  1680. /* MCC parameter */
  1681. rtw_hal_mcc_parameter_init(padapter);
  1682. #endif /* CONFIG_MCC_MODE */
  1683. /* misc. */
  1684. RTW_ENABLE_FUNC(padapter, DF_RX_BIT);
  1685. RTW_ENABLE_FUNC(padapter, DF_TX_BIT);
  1686. padapter->bLinkInfoDump = 0;
  1687. padapter->bNotifyChannelChange = _FALSE;
  1688. #ifdef CONFIG_P2P
  1689. padapter->bShowGetP2PState = 1;
  1690. #endif
  1691. /* for debug purpose */
  1692. padapter->fix_rate = 0xFF;
  1693. padapter->data_fb = 0;
  1694. padapter->fix_bw = 0xFF;
  1695. padapter->power_offset = 0;
  1696. padapter->rsvd_page_offset = 0;
  1697. padapter->rsvd_page_num = 0;
  1698. #ifdef CONFIG_AP_MODE
  1699. padapter->bmc_tx_rate = pregistrypriv->bmc_tx_rate;
  1700. #endif
  1701. padapter->driver_tx_bw_mode = pregistrypriv->tx_bw_mode;
  1702. padapter->driver_ampdu_spacing = 0xFF;
  1703. padapter->driver_rx_ampdu_factor = 0xFF;
  1704. padapter->driver_rx_ampdu_spacing = 0xFF;
  1705. padapter->fix_rx_ampdu_accept = RX_AMPDU_ACCEPT_INVALID;
  1706. padapter->fix_rx_ampdu_size = RX_AMPDU_SIZE_INVALID;
  1707. #ifdef CONFIG_TX_AMSDU
  1708. padapter->tx_amsdu = 2;
  1709. padapter->tx_amsdu_rate = 400;
  1710. #endif
  1711. padapter->driver_tx_max_agg_num = 0xFF;
  1712. #ifdef DBG_RX_COUNTER_DUMP
  1713. padapter->dump_rx_cnt_mode = 0;
  1714. padapter->drv_rx_cnt_ok = 0;
  1715. padapter->drv_rx_cnt_crcerror = 0;
  1716. padapter->drv_rx_cnt_drop = 0;
  1717. #endif
  1718. #ifdef CONFIG_RTW_NAPI
  1719. padapter->napi_state = NAPI_DISABLE;
  1720. #endif
  1721. #ifdef CONFIG_RTW_ACS
  1722. if (pregistrypriv->acs_mode)
  1723. rtw_acs_start(padapter);
  1724. else
  1725. rtw_acs_stop(padapter);
  1726. #endif
  1727. #ifdef CONFIG_BACKGROUND_NOISE_MONITOR
  1728. if (pregistrypriv->nm_mode)
  1729. rtw_nm_enable(padapter);
  1730. else
  1731. rtw_nm_disable(padapter);
  1732. #endif
  1733. return ret;
  1734. }
  1735. #ifdef CONFIG_CLIENT_PORT_CFG
  1736. extern void rtw_clt_port_init(struct clt_port_t *cltp);
  1737. extern void rtw_clt_port_deinit(struct clt_port_t *cltp);
  1738. #endif
  1739. struct dvobj_priv *devobj_init(void)
  1740. {
  1741. struct dvobj_priv *pdvobj = NULL;
  1742. pdvobj = (struct dvobj_priv *)rtw_zmalloc(sizeof(*pdvobj));
  1743. if (pdvobj == NULL)
  1744. return NULL;
  1745. _rtw_mutex_init(&pdvobj->hw_init_mutex);
  1746. _rtw_mutex_init(&pdvobj->h2c_fwcmd_mutex);
  1747. _rtw_mutex_init(&pdvobj->setch_mutex);
  1748. _rtw_mutex_init(&pdvobj->setbw_mutex);
  1749. _rtw_mutex_init(&pdvobj->rf_read_reg_mutex);
  1750. #ifdef CONFIG_SDIO_INDIRECT_ACCESS
  1751. _rtw_mutex_init(&pdvobj->sd_indirect_access_mutex);
  1752. #endif
  1753. #ifdef CONFIG_SYSON_INDIRECT_ACCESS
  1754. _rtw_mutex_init(&pdvobj->syson_indirect_access_mutex);
  1755. #endif
  1756. #ifdef CONFIG_RTW_CUSTOMER_STR
  1757. _rtw_mutex_init(&pdvobj->customer_str_mutex);
  1758. _rtw_memset(pdvobj->customer_str, 0xFF, RTW_CUSTOMER_STR_LEN);
  1759. #endif
  1760. pdvobj->processing_dev_remove = _FALSE;
  1761. ATOMIC_SET(&pdvobj->disable_func, 0);
  1762. rtw_macid_ctl_init(&pdvobj->macid_ctl);
  1763. #ifdef CONFIG_CLIENT_PORT_CFG
  1764. rtw_clt_port_init(&pdvobj->clt_port);
  1765. #endif
  1766. _rtw_spinlock_init(&pdvobj->cam_ctl.lock);
  1767. _rtw_mutex_init(&pdvobj->cam_ctl.sec_cam_access_mutex);
  1768. #if defined(RTK_129X_PLATFORM) && defined(CONFIG_PCI_HCI)
  1769. _rtw_spinlock_init(&pdvobj->io_reg_lock);
  1770. #endif
  1771. #ifdef CONFIG_MBSSID_CAM
  1772. rtw_mbid_cam_init(pdvobj);
  1773. #endif
  1774. #ifdef CONFIG_AP_MODE
  1775. #ifdef CONFIG_SUPPORT_MULTI_BCN
  1776. pdvobj->nr_ap_if = 0;
  1777. pdvobj->inter_bcn_space = DEFAULT_BCN_INTERVAL; /* default value is equal to the default beacon_interval (100ms) */
  1778. _rtw_init_queue(&pdvobj->ap_if_q);
  1779. pdvobj->vap_map = 0;
  1780. #endif /*CONFIG_SUPPORT_MULTI_BCN*/
  1781. #ifdef CONFIG_SWTIMER_BASED_TXBCN
  1782. rtw_init_timer(&(pdvobj->txbcn_timer), NULL, tx_beacon_timer_handlder, pdvobj);
  1783. #endif
  1784. #endif
  1785. rtw_init_timer(&(pdvobj->dynamic_chk_timer), NULL, rtw_dynamic_check_timer_handlder, pdvobj);
  1786. rtw_init_timer(&(pdvobj->periodic_tsf_update_end_timer), NULL, rtw_hal_periodic_tsf_update_end_timer_hdl, pdvobj);
  1787. #ifdef CONFIG_MCC_MODE
  1788. _rtw_mutex_init(&(pdvobj->mcc_objpriv.mcc_mutex));
  1789. _rtw_mutex_init(&(pdvobj->mcc_objpriv.mcc_tsf_req_mutex));
  1790. _rtw_spinlock_init(&pdvobj->mcc_objpriv.mcc_lock);
  1791. #endif /* CONFIG_MCC_MODE */
  1792. #ifdef CONFIG_RTW_NAPI_DYNAMIC
  1793. pdvobj->en_napi_dynamic = 0;
  1794. #endif /* CONFIG_RTW_NAPI_DYNAMIC */
  1795. return pdvobj;
  1796. }
  1797. void devobj_deinit(struct dvobj_priv *pdvobj)
  1798. {
  1799. if (!pdvobj)
  1800. return;
  1801. /* TODO: use rtw_os_ndevs_deinit instead at the first stage of driver's dev deinit function */
  1802. #if defined(CONFIG_IOCTL_CFG80211)
  1803. rtw_cfg80211_dev_res_free(pdvobj);
  1804. #endif
  1805. #ifdef CONFIG_MCC_MODE
  1806. _rtw_mutex_free(&(pdvobj->mcc_objpriv.mcc_mutex));
  1807. _rtw_mutex_free(&(pdvobj->mcc_objpriv.mcc_tsf_req_mutex));
  1808. _rtw_spinlock_free(&pdvobj->mcc_objpriv.mcc_lock);
  1809. #endif /* CONFIG_MCC_MODE */
  1810. _rtw_mutex_free(&pdvobj->hw_init_mutex);
  1811. _rtw_mutex_free(&pdvobj->h2c_fwcmd_mutex);
  1812. #ifdef CONFIG_RTW_CUSTOMER_STR
  1813. _rtw_mutex_free(&pdvobj->customer_str_mutex);
  1814. #endif
  1815. _rtw_mutex_free(&pdvobj->setch_mutex);
  1816. _rtw_mutex_free(&pdvobj->setbw_mutex);
  1817. _rtw_mutex_free(&pdvobj->rf_read_reg_mutex);
  1818. #ifdef CONFIG_SDIO_INDIRECT_ACCESS
  1819. _rtw_mutex_free(&pdvobj->sd_indirect_access_mutex);
  1820. #endif
  1821. #ifdef CONFIG_SYSON_INDIRECT_ACCESS
  1822. _rtw_mutex_free(&pdvobj->syson_indirect_access_mutex);
  1823. #endif
  1824. rtw_macid_ctl_deinit(&pdvobj->macid_ctl);
  1825. #ifdef CONFIG_CLIENT_PORT_CFG
  1826. rtw_clt_port_deinit(&pdvobj->clt_port);
  1827. #endif
  1828. _rtw_spinlock_free(&pdvobj->cam_ctl.lock);
  1829. _rtw_mutex_free(&pdvobj->cam_ctl.sec_cam_access_mutex);
  1830. #if defined(RTK_129X_PLATFORM) && defined(CONFIG_PCI_HCI)
  1831. _rtw_spinlock_free(&pdvobj->io_reg_lock);
  1832. #endif
  1833. #ifdef CONFIG_MBSSID_CAM
  1834. rtw_mbid_cam_deinit(pdvobj);
  1835. #endif
  1836. #ifdef CONFIG_SUPPORT_MULTI_BCN
  1837. _rtw_spinlock_free(&(pdvobj->ap_if_q.lock));
  1838. #endif
  1839. rtw_mfree((u8 *)pdvobj, sizeof(*pdvobj));
  1840. }
  1841. inline u8 rtw_rtnl_lock_needed(struct dvobj_priv *dvobj)
  1842. {
  1843. if (dvobj->rtnl_lock_holder && dvobj->rtnl_lock_holder == current)
  1844. return 0;
  1845. return 1;
  1846. }
  1847. #if (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 26))
  1848. static inline int rtnl_is_locked(void)
  1849. {
  1850. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 17))
  1851. if (unlikely(rtnl_trylock())) {
  1852. rtnl_unlock();
  1853. #else
  1854. if (unlikely(down_trylock(&rtnl_sem) == 0)) {
  1855. up(&rtnl_sem);
  1856. #endif
  1857. return 0;
  1858. }
  1859. return 1;
  1860. }
  1861. #endif
  1862. inline void rtw_set_rtnl_lock_holder(struct dvobj_priv *dvobj, _thread_hdl_ thd_hdl)
  1863. {
  1864. rtw_warn_on(!rtnl_is_locked());
  1865. if (!thd_hdl || rtnl_is_locked())
  1866. dvobj->rtnl_lock_holder = thd_hdl;
  1867. if (dvobj->rtnl_lock_holder && 0)
  1868. RTW_INFO("rtnl_lock_holder: %s:%d\n", current->comm, current->pid);
  1869. }
  1870. u8 rtw_reset_drv_sw(_adapter *padapter)
  1871. {
  1872. u8 ret8 = _SUCCESS;
  1873. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  1874. struct pwrctrl_priv *pwrctrlpriv = adapter_to_pwrctl(padapter);
  1875. /* hal_priv */
  1876. rtw_hal_def_value_init(padapter);
  1877. RTW_ENABLE_FUNC(padapter, DF_RX_BIT);
  1878. RTW_ENABLE_FUNC(padapter, DF_TX_BIT);
  1879. padapter->bLinkInfoDump = 0;
  1880. padapter->xmitpriv.tx_pkts = 0;
  1881. padapter->recvpriv.rx_pkts = 0;
  1882. pmlmepriv->LinkDetectInfo.bBusyTraffic = _FALSE;
  1883. /* pmlmepriv->LinkDetectInfo.TrafficBusyState = _FALSE; */
  1884. pmlmepriv->LinkDetectInfo.TrafficTransitionCount = 0;
  1885. pmlmepriv->LinkDetectInfo.LowPowerTransitionCount = 0;
  1886. _clr_fwstate_(pmlmepriv, _FW_UNDER_SURVEY | _FW_UNDER_LINKING);
  1887. #ifdef CONFIG_AUTOSUSPEND
  1888. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 22) && LINUX_VERSION_CODE <= KERNEL_VERSION(2, 6, 34))
  1889. adapter_to_dvobj(padapter)->pusbdev->autosuspend_disabled = 1;/* autosuspend disabled by the user */
  1890. #endif
  1891. #endif
  1892. #ifdef DBG_CONFIG_ERROR_DETECT
  1893. if (is_primary_adapter(padapter))
  1894. rtw_hal_sreset_reset_value(padapter);
  1895. #endif
  1896. pwrctrlpriv->pwr_state_check_cnts = 0;
  1897. /* mlmeextpriv */
  1898. mlmeext_set_scan_state(&padapter->mlmeextpriv, SCAN_DISABLE);
  1899. #ifdef CONFIG_NEW_SIGNAL_STAT_PROCESS
  1900. rtw_set_signal_stat_timer(&padapter->recvpriv);
  1901. #endif
  1902. return ret8;
  1903. }
  1904. u8 rtw_init_drv_sw(_adapter *padapter)
  1905. {
  1906. u8 ret8 = _SUCCESS;
  1907. #ifdef CONFIG_RTW_CFGVENDOR_RANDOM_MAC_OUI
  1908. struct rtw_wdev_priv *pwdev_priv = adapter_wdev_data(padapter);
  1909. #endif
  1910. #if defined(CONFIG_AP_MODE) && defined(CONFIG_SUPPORT_MULTI_BCN)
  1911. _rtw_init_listhead(&padapter->list);
  1912. #ifdef CONFIG_FW_HANDLE_TXBCN
  1913. padapter->vap_id = CONFIG_LIMITED_AP_NUM;
  1914. if (is_primary_adapter(padapter))
  1915. adapter_to_dvobj(padapter)->vap_tbtt_rpt_map = adapter_to_regsty(padapter)->fw_tbtt_rpt;
  1916. #endif
  1917. #endif
  1918. #ifdef CONFIG_CLIENT_PORT_CFG
  1919. padapter->client_id = MAX_CLIENT_PORT_NUM;
  1920. padapter->client_port = CLT_PORT_INVALID;
  1921. #endif
  1922. ret8 = rtw_init_default_value(padapter);
  1923. if ((rtw_init_cmd_priv(&padapter->cmdpriv)) == _FAIL) {
  1924. ret8 = _FAIL;
  1925. goto exit;
  1926. }
  1927. padapter->cmdpriv.padapter = padapter;
  1928. if ((rtw_init_evt_priv(&padapter->evtpriv)) == _FAIL) {
  1929. ret8 = _FAIL;
  1930. goto exit;
  1931. }
  1932. if (is_primary_adapter(padapter))
  1933. rtw_rfctl_init(padapter);
  1934. if (rtw_init_mlme_priv(padapter) == _FAIL) {
  1935. ret8 = _FAIL;
  1936. goto exit;
  1937. }
  1938. #ifdef CONFIG_P2P
  1939. rtw_init_wifidirect_timers(padapter);
  1940. init_wifidirect_info(padapter, P2P_ROLE_DISABLE);
  1941. reset_global_wifidirect_info(padapter);
  1942. #ifdef CONFIG_IOCTL_CFG80211
  1943. rtw_init_cfg80211_wifidirect_info(padapter);
  1944. #endif
  1945. #ifdef CONFIG_WFD
  1946. if (rtw_init_wifi_display_info(padapter) == _FAIL)
  1947. RTW_ERR("Can't init init_wifi_display_info\n");
  1948. #endif
  1949. #endif /* CONFIG_P2P */
  1950. if (init_mlme_ext_priv(padapter) == _FAIL) {
  1951. ret8 = _FAIL;
  1952. goto exit;
  1953. }
  1954. #ifdef CONFIG_TDLS
  1955. if (rtw_init_tdls_info(padapter) == _FAIL) {
  1956. RTW_INFO("Can't rtw_init_tdls_info\n");
  1957. ret8 = _FAIL;
  1958. goto exit;
  1959. }
  1960. #endif /* CONFIG_TDLS */
  1961. #ifdef CONFIG_RTW_MESH
  1962. rtw_mesh_cfg_init(padapter);
  1963. #endif
  1964. if (_rtw_init_xmit_priv(&padapter->xmitpriv, padapter) == _FAIL) {
  1965. RTW_INFO("Can't _rtw_init_xmit_priv\n");
  1966. ret8 = _FAIL;
  1967. goto exit;
  1968. }
  1969. if (_rtw_init_recv_priv(&padapter->recvpriv, padapter) == _FAIL) {
  1970. RTW_INFO("Can't _rtw_init_recv_priv\n");
  1971. ret8 = _FAIL;
  1972. goto exit;
  1973. }
  1974. /* add for CONFIG_IEEE80211W, none 11w also can use */
  1975. _rtw_spinlock_init(&padapter->security_key_mutex);
  1976. /* We don't need to memset padapter->XXX to zero, because adapter is allocated by rtw_zvmalloc(). */
  1977. /* _rtw_memset((unsigned char *)&padapter->securitypriv, 0, sizeof (struct security_priv)); */
  1978. if (_rtw_init_sta_priv(&padapter->stapriv) == _FAIL) {
  1979. RTW_INFO("Can't _rtw_init_sta_priv\n");
  1980. ret8 = _FAIL;
  1981. goto exit;
  1982. }
  1983. padapter->setband = WIFI_FREQUENCY_BAND_AUTO;
  1984. padapter->fix_rate = 0xFF;
  1985. padapter->power_offset = 0;
  1986. padapter->rsvd_page_offset = 0;
  1987. padapter->rsvd_page_num = 0;
  1988. padapter->data_fb = 0;
  1989. padapter->fix_rx_ampdu_accept = RX_AMPDU_ACCEPT_INVALID;
  1990. padapter->fix_rx_ampdu_size = RX_AMPDU_SIZE_INVALID;
  1991. #ifdef DBG_RX_COUNTER_DUMP
  1992. padapter->dump_rx_cnt_mode = 0;
  1993. padapter->drv_rx_cnt_ok = 0;
  1994. padapter->drv_rx_cnt_crcerror = 0;
  1995. padapter->drv_rx_cnt_drop = 0;
  1996. #endif
  1997. rtw_init_bcmc_stainfo(padapter);
  1998. rtw_init_pwrctrl_priv(padapter);
  1999. /* _rtw_memset((u8 *)&padapter->qospriv, 0, sizeof (struct qos_priv)); */ /* move to mlme_priv */
  2000. #ifdef CONFIG_MP_INCLUDED
  2001. if (init_mp_priv(padapter) == _FAIL)
  2002. RTW_INFO("%s: initialize MP private data Fail!\n", __func__);
  2003. #endif
  2004. rtw_hal_dm_init(padapter);
  2005. #ifdef CONFIG_RTW_SW_LED
  2006. rtw_hal_sw_led_init(padapter);
  2007. #endif
  2008. #ifdef DBG_CONFIG_ERROR_DETECT
  2009. rtw_hal_sreset_init(padapter);
  2010. #endif
  2011. #ifdef CONFIG_INTEL_WIDI
  2012. if (rtw_init_intel_widi(padapter) == _FAIL) {
  2013. RTW_INFO("Can't rtw_init_intel_widi\n");
  2014. ret8 = _FAIL;
  2015. goto exit;
  2016. }
  2017. #endif /* CONFIG_INTEL_WIDI */
  2018. #ifdef CONFIG_WAPI_SUPPORT
  2019. padapter->WapiSupport = true; /* set true temp, will revise according to Efuse or Registry value later. */
  2020. rtw_wapi_init(padapter);
  2021. #endif
  2022. #ifdef CONFIG_BR_EXT
  2023. _rtw_spinlock_init(&padapter->br_ext_lock);
  2024. #endif /* CONFIG_BR_EXT */
  2025. #ifdef CONFIG_BEAMFORMING
  2026. #ifdef RTW_BEAMFORMING_VERSION_2
  2027. rtw_bf_init(padapter);
  2028. #endif /* RTW_BEAMFORMING_VERSION_2 */
  2029. #endif /* CONFIG_BEAMFORMING */
  2030. #ifdef CONFIG_RTW_REPEATER_SON
  2031. init_rtw_rson_data(adapter_to_dvobj(padapter));
  2032. #endif
  2033. #ifdef CONFIG_RTW_80211K
  2034. rtw_init_rm(padapter);
  2035. #endif
  2036. #ifdef CONFIG_RTW_CFGVENDOR_RANDOM_MAC_OUI
  2037. memset(pwdev_priv->pno_mac_addr, 0xFF, ETH_ALEN);
  2038. #endif
  2039. exit:
  2040. return ret8;
  2041. }
  2042. #ifdef CONFIG_WOWLAN
  2043. void rtw_cancel_dynamic_chk_timer(_adapter *padapter)
  2044. {
  2045. _cancel_timer_ex(&adapter_to_dvobj(padapter)->dynamic_chk_timer);
  2046. }
  2047. #endif
  2048. void rtw_cancel_all_timer(_adapter *padapter)
  2049. {
  2050. _cancel_timer_ex(&padapter->mlmepriv.assoc_timer);
  2051. _cancel_timer_ex(&padapter->mlmepriv.scan_to_timer);
  2052. #ifdef CONFIG_DFS_MASTER
  2053. _cancel_timer_ex(&adapter_to_rfctl(padapter)->radar_detect_timer);
  2054. #endif
  2055. _cancel_timer_ex(&adapter_to_dvobj(padapter)->dynamic_chk_timer);
  2056. _cancel_timer_ex(&adapter_to_dvobj(padapter)->periodic_tsf_update_end_timer);
  2057. #ifdef CONFIG_RTW_SW_LED
  2058. /* cancel sw led timer */
  2059. rtw_hal_sw_led_deinit(padapter);
  2060. #endif
  2061. _cancel_timer_ex(&(adapter_to_pwrctl(padapter)->pwr_state_check_timer));
  2062. #ifdef CONFIG_TX_AMSDU
  2063. _cancel_timer_ex(&padapter->xmitpriv.amsdu_bk_timer);
  2064. _cancel_timer_ex(&padapter->xmitpriv.amsdu_be_timer);
  2065. _cancel_timer_ex(&padapter->xmitpriv.amsdu_vo_timer);
  2066. _cancel_timer_ex(&padapter->xmitpriv.amsdu_vi_timer);
  2067. #endif
  2068. #ifdef CONFIG_IOCTL_CFG80211
  2069. #ifdef CONFIG_P2P
  2070. _cancel_timer_ex(&padapter->cfg80211_wdinfo.remain_on_ch_timer);
  2071. #endif /* CONFIG_P2P */
  2072. #endif /* CONFIG_IOCTL_CFG80211 */
  2073. #ifdef CONFIG_SET_SCAN_DENY_TIMER
  2074. _cancel_timer_ex(&padapter->mlmepriv.set_scan_deny_timer);
  2075. rtw_clear_scan_deny(padapter);
  2076. #endif
  2077. #ifdef CONFIG_NEW_SIGNAL_STAT_PROCESS
  2078. _cancel_timer_ex(&padapter->recvpriv.signal_stat_timer);
  2079. #endif
  2080. #ifdef CONFIG_LPS_RPWM_TIMER
  2081. _cancel_timer_ex(&(adapter_to_pwrctl(padapter)->pwr_rpwm_timer));
  2082. #endif /* CONFIG_LPS_RPWM_TIMER */
  2083. /* cancel dm timer */
  2084. rtw_hal_dm_deinit(padapter);
  2085. #ifdef CONFIG_PLATFORM_FS_MX61
  2086. msleep(50);
  2087. #endif
  2088. }
  2089. u8 rtw_free_drv_sw(_adapter *padapter)
  2090. {
  2091. #ifdef CONFIG_WAPI_SUPPORT
  2092. rtw_wapi_free(padapter);
  2093. #endif
  2094. /* we can call rtw_p2p_enable here, but: */
  2095. /* 1. rtw_p2p_enable may have IO operation */
  2096. /* 2. rtw_p2p_enable is bundled with wext interface */
  2097. #ifdef CONFIG_P2P
  2098. {
  2099. struct wifidirect_info *pwdinfo = &padapter->wdinfo;
  2100. if (!rtw_p2p_chk_state(pwdinfo, P2P_STATE_NONE)) {
  2101. _cancel_timer_ex(&pwdinfo->find_phase_timer);
  2102. _cancel_timer_ex(&pwdinfo->restore_p2p_state_timer);
  2103. _cancel_timer_ex(&pwdinfo->pre_tx_scan_timer);
  2104. #ifdef CONFIG_CONCURRENT_MODE
  2105. _cancel_timer_ex(&pwdinfo->ap_p2p_switch_timer);
  2106. #endif /* CONFIG_CONCURRENT_MODE */
  2107. rtw_p2p_set_state(pwdinfo, P2P_STATE_NONE);
  2108. }
  2109. }
  2110. #endif
  2111. /* add for CONFIG_IEEE80211W, none 11w also can use */
  2112. _rtw_spinlock_free(&padapter->security_key_mutex);
  2113. #ifdef CONFIG_BR_EXT
  2114. _rtw_spinlock_free(&padapter->br_ext_lock);
  2115. #endif /* CONFIG_BR_EXT */
  2116. #ifdef CONFIG_INTEL_WIDI
  2117. rtw_free_intel_widi(padapter);
  2118. #endif /* CONFIG_INTEL_WIDI */
  2119. free_mlme_ext_priv(&padapter->mlmeextpriv);
  2120. #ifdef CONFIG_TDLS
  2121. /* rtw_free_tdls_info(&padapter->tdlsinfo); */
  2122. #endif /* CONFIG_TDLS */
  2123. #ifdef CONFIG_RTW_80211K
  2124. rtw_free_rm_priv(padapter);
  2125. #endif
  2126. rtw_free_cmd_priv(&padapter->cmdpriv);
  2127. rtw_free_evt_priv(&padapter->evtpriv);
  2128. rtw_free_mlme_priv(&padapter->mlmepriv);
  2129. if (is_primary_adapter(padapter))
  2130. rtw_rfctl_deinit(padapter);
  2131. /* free_io_queue(padapter); */
  2132. _rtw_free_xmit_priv(&padapter->xmitpriv);
  2133. _rtw_free_sta_priv(&padapter->stapriv); /* will free bcmc_stainfo here */
  2134. _rtw_free_recv_priv(&padapter->recvpriv);
  2135. rtw_free_pwrctrl_priv(padapter);
  2136. /* rtw_mfree((void *)padapter, sizeof (padapter)); */
  2137. rtw_hal_free_data(padapter);
  2138. return _SUCCESS;
  2139. }
  2140. void rtw_intf_start(_adapter *adapter)
  2141. {
  2142. if (adapter->intf_start)
  2143. adapter->intf_start(adapter);
  2144. }
  2145. void rtw_intf_stop(_adapter *adapter)
  2146. {
  2147. if (adapter->intf_stop)
  2148. adapter->intf_stop(adapter);
  2149. }
  2150. #ifdef CONFIG_CONCURRENT_MODE
  2151. #ifndef CONFIG_NEW_NETDEV_HDL
  2152. int _netdev_vir_if_open(struct net_device *pnetdev)
  2153. {
  2154. _adapter *padapter = (_adapter *)rtw_netdev_priv(pnetdev);
  2155. _adapter *primary_padapter = GET_PRIMARY_ADAPTER(padapter);
  2156. RTW_INFO(FUNC_NDEV_FMT" , bup=%d\n", FUNC_NDEV_ARG(pnetdev), padapter->bup);
  2157. if (!primary_padapter)
  2158. goto _netdev_virtual_iface_open_error;
  2159. #ifdef CONFIG_PLATFORM_INTEL_BYT
  2160. if (padapter->bup == _FALSE) {
  2161. u8 mac[ETH_ALEN];
  2162. /* get mac address from primary_padapter */
  2163. if (primary_padapter->bup == _FALSE)
  2164. rtw_macaddr_cfg(adapter_mac_addr(primary_padapter), get_hal_mac_addr(primary_padapter));
  2165. _rtw_memcpy(mac, adapter_mac_addr(primary_padapter), ETH_ALEN);
  2166. /*
  2167. * If the BIT1 is 0, the address is universally administered.
  2168. * If it is 1, the address is locally administered
  2169. */
  2170. mac[0] |= BIT(1);
  2171. _rtw_memcpy(adapter_mac_addr(padapter), mac, ETH_ALEN);
  2172. #ifdef CONFIG_MI_WITH_MBSSID_CAM
  2173. rtw_mbid_camid_alloc(padapter, adapter_mac_addr(padapter));
  2174. #endif
  2175. rtw_init_wifidirect_addrs(padapter, adapter_mac_addr(padapter), adapter_mac_addr(padapter));
  2176. _rtw_memcpy(pnetdev->dev_addr, adapter_mac_addr(padapter), ETH_ALEN);
  2177. }
  2178. #endif /*CONFIG_PLATFORM_INTEL_BYT*/
  2179. if (primary_padapter->bup == _FALSE || !rtw_is_hw_init_completed(primary_padapter))
  2180. _netdev_open(primary_padapter->pnetdev);
  2181. if (padapter->bup == _FALSE && primary_padapter->bup == _TRUE &&
  2182. rtw_is_hw_init_completed(primary_padapter)) {
  2183. #if 0 /*#ifdef CONFIG_MI_WITH_MBSSID_CAM*/
  2184. rtw_hal_set_hwreg(padapter, HW_VAR_MAC_ADDR, adapter_mac_addr(padapter)); /* set mac addr to mac register */
  2185. #endif
  2186. }
  2187. if (padapter->bup == _FALSE) {
  2188. if (rtw_start_drv_threads(padapter) == _FAIL)
  2189. goto _netdev_virtual_iface_open_error;
  2190. }
  2191. #ifdef CONFIG_RTW_NAPI
  2192. if (padapter->napi_state == NAPI_DISABLE) {
  2193. napi_enable(&padapter->napi);
  2194. padapter->napi_state = NAPI_ENABLE;
  2195. }
  2196. #endif
  2197. #ifdef CONFIG_IOCTL_CFG80211
  2198. rtw_cfg80211_init_wiphy(padapter);
  2199. rtw_cfg80211_init_wdev_data(padapter);
  2200. #endif
  2201. padapter->bup = _TRUE;
  2202. padapter->net_closed = _FALSE;
  2203. rtw_netif_wake_queue(pnetdev);
  2204. RTW_INFO(FUNC_NDEV_FMT" (bup=%d) exit\n", FUNC_NDEV_ARG(pnetdev), padapter->bup);
  2205. return 0;
  2206. _netdev_virtual_iface_open_error:
  2207. padapter->bup = _FALSE;
  2208. #ifdef CONFIG_RTW_NAPI
  2209. if(padapter->napi_state == NAPI_ENABLE) {
  2210. napi_disable(&padapter->napi);
  2211. padapter->napi_state = NAPI_DISABLE;
  2212. }
  2213. #endif
  2214. rtw_netif_carrier_off(pnetdev);
  2215. rtw_netif_stop_queue(pnetdev);
  2216. return -1;
  2217. }
  2218. int netdev_vir_if_open(struct net_device *pnetdev)
  2219. {
  2220. int ret;
  2221. _adapter *padapter = (_adapter *)rtw_netdev_priv(pnetdev);
  2222. _enter_critical_mutex(&(adapter_to_dvobj(padapter)->hw_init_mutex), NULL);
  2223. ret = _netdev_vir_if_open(pnetdev);
  2224. _exit_critical_mutex(&(adapter_to_dvobj(padapter)->hw_init_mutex), NULL);
  2225. #ifdef CONFIG_AUTO_AP_MODE
  2226. /* if(padapter->iface_id == 2) */
  2227. /* rtw_start_auto_ap(padapter); */
  2228. #endif
  2229. return ret;
  2230. }
  2231. static int netdev_vir_if_close(struct net_device *pnetdev)
  2232. {
  2233. _adapter *padapter = (_adapter *)rtw_netdev_priv(pnetdev);
  2234. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  2235. RTW_INFO(FUNC_NDEV_FMT" , bup=%d\n", FUNC_NDEV_ARG(pnetdev), padapter->bup);
  2236. padapter->net_closed = _TRUE;
  2237. pmlmepriv->LinkDetectInfo.bBusyTraffic = _FALSE;
  2238. if (pnetdev)
  2239. rtw_netif_stop_queue(pnetdev);
  2240. #ifdef CONFIG_P2P
  2241. if (!rtw_p2p_chk_role(&padapter->wdinfo, P2P_ROLE_DISABLE))
  2242. rtw_p2p_enable(padapter, P2P_ROLE_DISABLE);
  2243. #endif
  2244. #ifdef CONFIG_IOCTL_CFG80211
  2245. rtw_scan_abort(padapter);
  2246. rtw_cfg80211_wait_scan_req_empty(padapter, 200);
  2247. adapter_wdev_data(padapter)->bandroid_scan = _FALSE;
  2248. #endif
  2249. return 0;
  2250. }
  2251. #endif /*#ifndef CONFIG_NEW_NETDEV_HDL*/
  2252. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 29))
  2253. static const struct net_device_ops rtw_netdev_vir_if_ops = {
  2254. .ndo_init = rtw_ndev_init,
  2255. .ndo_uninit = rtw_ndev_uninit,
  2256. #ifdef CONFIG_NEW_NETDEV_HDL
  2257. .ndo_open = netdev_open,
  2258. .ndo_stop = netdev_close,
  2259. #else
  2260. .ndo_open = netdev_vir_if_open,
  2261. .ndo_stop = netdev_vir_if_close,
  2262. #endif
  2263. .ndo_start_xmit = rtw_xmit_entry,
  2264. .ndo_set_mac_address = rtw_net_set_mac_address,
  2265. .ndo_get_stats = rtw_net_get_stats,
  2266. .ndo_do_ioctl = rtw_ioctl,
  2267. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 35))
  2268. .ndo_select_queue = rtw_select_queue,
  2269. #endif
  2270. };
  2271. #endif
  2272. static void rtw_hook_vir_if_ops(struct net_device *ndev)
  2273. {
  2274. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 29))
  2275. ndev->netdev_ops = &rtw_netdev_vir_if_ops;
  2276. #else
  2277. ndev->init = rtw_ndev_init;
  2278. ndev->uninit = rtw_ndev_uninit;
  2279. #ifdef CONFIG_NEW_NETDEV_HDL
  2280. ndev->open = netdev_open;
  2281. ndev->stop = netdev_close;
  2282. #else
  2283. ndev->open = netdev_vir_if_open;
  2284. ndev->stop = netdev_vir_if_close;
  2285. #endif
  2286. ndev->set_mac_address = rtw_net_set_mac_address;
  2287. #endif
  2288. }
  2289. _adapter *rtw_drv_add_vir_if(_adapter *primary_padapter,
  2290. void (*set_intf_ops)(_adapter *primary_padapter, struct _io_ops *pops))
  2291. {
  2292. int res = _FAIL;
  2293. _adapter *padapter = NULL;
  2294. struct dvobj_priv *pdvobjpriv;
  2295. u8 mac[ETH_ALEN];
  2296. /****** init adapter ******/
  2297. padapter = (_adapter *)rtw_zvmalloc(sizeof(*padapter));
  2298. if (padapter == NULL)
  2299. goto exit;
  2300. if (loadparam(padapter) != _SUCCESS)
  2301. goto free_adapter;
  2302. _rtw_memcpy(padapter, primary_padapter, sizeof(_adapter));
  2303. /* */
  2304. padapter->bup = _FALSE;
  2305. padapter->net_closed = _TRUE;
  2306. padapter->dir_dev = NULL;
  2307. padapter->dir_odm = NULL;
  2308. /*set adapter_type/iface type*/
  2309. padapter->isprimary = _FALSE;
  2310. padapter->adapter_type = VIRTUAL_ADAPTER;
  2311. #ifdef CONFIG_MI_WITH_MBSSID_CAM
  2312. padapter->hw_port = HW_PORT0;
  2313. #else
  2314. padapter->hw_port = HW_PORT1;
  2315. #endif
  2316. /****** hook vir if into dvobj ******/
  2317. pdvobjpriv = adapter_to_dvobj(padapter);
  2318. padapter->iface_id = pdvobjpriv->iface_nums;
  2319. pdvobjpriv->padapters[pdvobjpriv->iface_nums++] = padapter;
  2320. padapter->intf_start = primary_padapter->intf_start;
  2321. padapter->intf_stop = primary_padapter->intf_stop;
  2322. /* step init_io_priv */
  2323. if ((rtw_init_io_priv(padapter, set_intf_ops)) == _FAIL) {
  2324. goto free_adapter;
  2325. }
  2326. /*init drv data*/
  2327. if (rtw_init_drv_sw(padapter) != _SUCCESS)
  2328. goto free_drv_sw;
  2329. /*get mac address from primary_padapter*/
  2330. _rtw_memcpy(mac, adapter_mac_addr(primary_padapter), ETH_ALEN);
  2331. /*
  2332. * If the BIT1 is 0, the address is universally administered.
  2333. * If it is 1, the address is locally administered
  2334. */
  2335. mac[0] |= BIT(1);
  2336. if (padapter->iface_id > IFACE_ID1)
  2337. mac[4] ^= BIT(padapter->iface_id);
  2338. _rtw_memcpy(adapter_mac_addr(padapter), mac, ETH_ALEN);
  2339. /* update mac-address to mbsid-cam cache*/
  2340. #ifdef CONFIG_MI_WITH_MBSSID_CAM
  2341. rtw_mbid_camid_alloc(padapter, adapter_mac_addr(padapter));
  2342. #endif
  2343. RTW_INFO("%s if%d mac_addr : "MAC_FMT"\n", __func__, padapter->iface_id + 1, MAC_ARG(adapter_mac_addr(padapter)));
  2344. #ifdef CONFIG_P2P
  2345. rtw_init_wifidirect_addrs(padapter, adapter_mac_addr(padapter), adapter_mac_addr(padapter));
  2346. #endif
  2347. rtw_led_set_ctl_en_mask_virtual(padapter);
  2348. rtw_led_set_iface_en(padapter, 1);
  2349. res = _SUCCESS;
  2350. free_drv_sw:
  2351. if (res != _SUCCESS && padapter)
  2352. rtw_free_drv_sw(padapter);
  2353. free_adapter:
  2354. if (res != _SUCCESS && padapter) {
  2355. rtw_vmfree((u8 *)padapter, sizeof(*padapter));
  2356. padapter = NULL;
  2357. }
  2358. exit:
  2359. return padapter;
  2360. }
  2361. void rtw_drv_stop_vir_if(_adapter *padapter)
  2362. {
  2363. struct net_device *pnetdev = NULL;
  2364. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  2365. if (padapter == NULL)
  2366. return;
  2367. RTW_INFO(FUNC_ADPT_FMT" enter\n", FUNC_ADPT_ARG(padapter));
  2368. pnetdev = padapter->pnetdev;
  2369. if (check_fwstate(pmlmepriv, _FW_LINKED))
  2370. rtw_disassoc_cmd(padapter, 0, RTW_CMDF_DIRECTLY);
  2371. #ifdef CONFIG_AP_MODE
  2372. if (MLME_IS_AP(padapter) || MLME_IS_MESH(padapter)) {
  2373. free_mlme_ap_info(padapter);
  2374. #ifdef CONFIG_HOSTAPD_MLME
  2375. hostapd_mode_unload(padapter);
  2376. #endif
  2377. }
  2378. #endif
  2379. if (padapter->bup == _TRUE) {
  2380. #ifdef CONFIG_XMIT_ACK
  2381. if (padapter->xmitpriv.ack_tx)
  2382. rtw_ack_tx_done(&padapter->xmitpriv, RTW_SCTX_DONE_DRV_STOP);
  2383. #endif
  2384. rtw_intf_stop(padapter);
  2385. #ifndef CONFIG_NEW_NETDEV_HDL
  2386. rtw_stop_drv_threads(padapter);
  2387. #endif
  2388. padapter->bup = _FALSE;
  2389. }
  2390. #ifdef CONFIG_NEW_NETDEV_HDL
  2391. rtw_stop_drv_threads(padapter);
  2392. #endif
  2393. /* cancel timer after thread stop */
  2394. rtw_cancel_all_timer(padapter);
  2395. }
  2396. void rtw_drv_free_vir_if(_adapter *padapter)
  2397. {
  2398. if (padapter == NULL)
  2399. return;
  2400. RTW_INFO(FUNC_ADPT_FMT"\n", FUNC_ADPT_ARG(padapter));
  2401. rtw_free_drv_sw(padapter);
  2402. /* TODO: use rtw_os_ndevs_deinit instead at the first stage of driver's dev deinit function */
  2403. rtw_os_ndev_free(padapter);
  2404. rtw_vmfree((u8 *)padapter, sizeof(_adapter));
  2405. }
  2406. void rtw_drv_stop_vir_ifaces(struct dvobj_priv *dvobj)
  2407. {
  2408. int i;
  2409. for (i = VIF_START_ID; i < dvobj->iface_nums; i++)
  2410. rtw_drv_stop_vir_if(dvobj->padapters[i]);
  2411. }
  2412. void rtw_drv_free_vir_ifaces(struct dvobj_priv *dvobj)
  2413. {
  2414. int i;
  2415. for (i = VIF_START_ID; i < dvobj->iface_nums; i++)
  2416. rtw_drv_free_vir_if(dvobj->padapters[i]);
  2417. }
  2418. #endif /*end of CONFIG_CONCURRENT_MODE*/
  2419. /* IPv4, IPv6 IP addr notifier */
  2420. static int rtw_inetaddr_notifier_call(struct notifier_block *nb,
  2421. unsigned long action, void *data)
  2422. {
  2423. struct in_ifaddr *ifa = (struct in_ifaddr *)data;
  2424. struct net_device *ndev;
  2425. struct mlme_ext_priv *pmlmeext = NULL;
  2426. struct mlme_ext_info *pmlmeinfo = NULL;
  2427. _adapter *adapter = NULL;
  2428. if (!ifa || !ifa->ifa_dev || !ifa->ifa_dev->dev)
  2429. return NOTIFY_DONE;
  2430. ndev = ifa->ifa_dev->dev;
  2431. if (!is_rtw_ndev(ndev))
  2432. return NOTIFY_DONE;
  2433. adapter = (_adapter *)rtw_netdev_priv(ifa->ifa_dev->dev);
  2434. if (adapter == NULL)
  2435. return NOTIFY_DONE;
  2436. pmlmeext = &adapter->mlmeextpriv;
  2437. pmlmeinfo = &pmlmeext->mlmext_info;
  2438. switch (action) {
  2439. case NETDEV_UP:
  2440. _rtw_memcpy(pmlmeinfo->ip_addr, &ifa->ifa_address,
  2441. RTW_IP_ADDR_LEN);
  2442. RTW_DBG("%s[%s]: up IP: %pI4\n", __func__,
  2443. ifa->ifa_label, pmlmeinfo->ip_addr);
  2444. break;
  2445. case NETDEV_DOWN:
  2446. _rtw_memset(pmlmeinfo->ip_addr, 0, RTW_IP_ADDR_LEN);
  2447. RTW_DBG("%s[%s]: down IP: %pI4\n", __func__,
  2448. ifa->ifa_label, pmlmeinfo->ip_addr);
  2449. break;
  2450. default:
  2451. RTW_DBG("%s: default action\n", __func__);
  2452. break;
  2453. }
  2454. return NOTIFY_DONE;
  2455. }
  2456. #ifdef CONFIG_IPV6
  2457. static int rtw_inet6addr_notifier_call(struct notifier_block *nb,
  2458. unsigned long action, void *data)
  2459. {
  2460. struct inet6_ifaddr *inet6_ifa = data;
  2461. struct net_device *ndev;
  2462. struct pwrctrl_priv *pwrctl = NULL;
  2463. struct mlme_ext_priv *pmlmeext = NULL;
  2464. struct mlme_ext_info *pmlmeinfo = NULL;
  2465. _adapter *adapter = NULL;
  2466. if (!inet6_ifa || !inet6_ifa->idev || !inet6_ifa->idev->dev)
  2467. return NOTIFY_DONE;
  2468. ndev = inet6_ifa->idev->dev;
  2469. if (!is_rtw_ndev(ndev))
  2470. return NOTIFY_DONE;
  2471. adapter = (_adapter *)rtw_netdev_priv(inet6_ifa->idev->dev);
  2472. if (adapter == NULL)
  2473. return NOTIFY_DONE;
  2474. pmlmeext = &adapter->mlmeextpriv;
  2475. pmlmeinfo = &pmlmeext->mlmext_info;
  2476. pwrctl = adapter_to_pwrctl(adapter);
  2477. pmlmeext = &adapter->mlmeextpriv;
  2478. pmlmeinfo = &pmlmeext->mlmext_info;
  2479. switch (action) {
  2480. case NETDEV_UP:
  2481. #ifdef CONFIG_WOWLAN
  2482. pwrctl->wowlan_ns_offload_en = _TRUE;
  2483. #endif
  2484. _rtw_memcpy(pmlmeinfo->ip6_addr, &inet6_ifa->addr,
  2485. RTW_IPv6_ADDR_LEN);
  2486. RTW_DBG("%s: up IPv6 addrs: %pI6\n", __func__,
  2487. pmlmeinfo->ip6_addr);
  2488. break;
  2489. case NETDEV_DOWN:
  2490. #ifdef CONFIG_WOWLAN
  2491. pwrctl->wowlan_ns_offload_en = _FALSE;
  2492. #endif
  2493. _rtw_memset(pmlmeinfo->ip6_addr, 0, RTW_IPv6_ADDR_LEN);
  2494. RTW_DBG("%s: down IPv6 addrs: %pI6\n", __func__,
  2495. pmlmeinfo->ip6_addr);
  2496. break;
  2497. default:
  2498. RTW_DBG("%s: default action\n", __func__);
  2499. break;
  2500. }
  2501. return NOTIFY_DONE;
  2502. }
  2503. #endif
  2504. static struct notifier_block rtw_inetaddr_notifier = {
  2505. .notifier_call = rtw_inetaddr_notifier_call
  2506. };
  2507. #ifdef CONFIG_IPV6
  2508. static struct notifier_block rtw_inet6addr_notifier = {
  2509. .notifier_call = rtw_inet6addr_notifier_call
  2510. };
  2511. #endif
  2512. void rtw_inetaddr_notifier_register(void)
  2513. {
  2514. RTW_INFO("%s\n", __func__);
  2515. register_inetaddr_notifier(&rtw_inetaddr_notifier);
  2516. #ifdef CONFIG_IPV6
  2517. register_inet6addr_notifier(&rtw_inet6addr_notifier);
  2518. #endif
  2519. }
  2520. void rtw_inetaddr_notifier_unregister(void)
  2521. {
  2522. RTW_INFO("%s\n", __func__);
  2523. unregister_inetaddr_notifier(&rtw_inetaddr_notifier);
  2524. #ifdef CONFIG_IPV6
  2525. unregister_inet6addr_notifier(&rtw_inet6addr_notifier);
  2526. #endif
  2527. }
  2528. int rtw_os_ndevs_register(struct dvobj_priv *dvobj)
  2529. {
  2530. int i, status = _SUCCESS;
  2531. struct registry_priv *regsty = dvobj_to_regsty(dvobj);
  2532. _adapter *adapter;
  2533. #if defined(CONFIG_IOCTL_CFG80211)
  2534. if (rtw_cfg80211_dev_res_register(dvobj) != _SUCCESS) {
  2535. rtw_warn_on(1);
  2536. status = _FAIL;
  2537. goto exit;
  2538. }
  2539. #endif
  2540. for (i = 0; i < dvobj->iface_nums; i++) {
  2541. if (i >= CONFIG_IFACE_NUMBER) {
  2542. RTW_ERR("%s %d >= CONFIG_IFACE_NUMBER(%d)\n", __func__, i, CONFIG_IFACE_NUMBER);
  2543. rtw_warn_on(1);
  2544. continue;
  2545. }
  2546. adapter = dvobj->padapters[i];
  2547. if (adapter) {
  2548. char *name;
  2549. #ifdef CONFIG_RTW_DYNAMIC_NDEV
  2550. if (!is_primary_adapter(adapter))
  2551. continue;
  2552. #endif
  2553. if (adapter->iface_id == IFACE_ID0)
  2554. name = regsty->ifname;
  2555. else if (adapter->iface_id == IFACE_ID1)
  2556. name = regsty->if2name;
  2557. else
  2558. name = "wlan%d";
  2559. status = rtw_os_ndev_register(adapter, name);
  2560. if (status != _SUCCESS) {
  2561. rtw_warn_on(1);
  2562. break;
  2563. }
  2564. }
  2565. }
  2566. if (status != _SUCCESS) {
  2567. for (; i >= 0; i--) {
  2568. adapter = dvobj->padapters[i];
  2569. if (adapter)
  2570. rtw_os_ndev_unregister(adapter);
  2571. }
  2572. }
  2573. #if defined(CONFIG_IOCTL_CFG80211)
  2574. if (status != _SUCCESS)
  2575. rtw_cfg80211_dev_res_unregister(dvobj);
  2576. #endif
  2577. exit:
  2578. return status;
  2579. }
  2580. void rtw_os_ndevs_unregister(struct dvobj_priv *dvobj)
  2581. {
  2582. int i;
  2583. _adapter *adapter = NULL;
  2584. for (i = 0; i < dvobj->iface_nums; i++) {
  2585. adapter = dvobj->padapters[i];
  2586. if (adapter == NULL)
  2587. continue;
  2588. rtw_os_ndev_unregister(adapter);
  2589. }
  2590. #if defined(CONFIG_IOCTL_CFG80211)
  2591. rtw_cfg80211_dev_res_unregister(dvobj);
  2592. #endif
  2593. }
  2594. /**
  2595. * rtw_os_ndevs_init - Allocate and register OS layer net devices and relating structures for @dvobj
  2596. * @dvobj: the dvobj on which this function applies
  2597. *
  2598. * Returns:
  2599. * _SUCCESS or _FAIL
  2600. */
  2601. int rtw_os_ndevs_init(struct dvobj_priv *dvobj)
  2602. {
  2603. int ret = _FAIL;
  2604. if (rtw_os_ndevs_alloc(dvobj) != _SUCCESS)
  2605. goto exit;
  2606. if (rtw_os_ndevs_register(dvobj) != _SUCCESS)
  2607. goto os_ndevs_free;
  2608. ret = _SUCCESS;
  2609. os_ndevs_free:
  2610. if (ret != _SUCCESS)
  2611. rtw_os_ndevs_free(dvobj);
  2612. exit:
  2613. return ret;
  2614. }
  2615. /**
  2616. * rtw_os_ndevs_deinit - Unregister and free OS layer net devices and relating structures for @dvobj
  2617. * @dvobj: the dvobj on which this function applies
  2618. */
  2619. void rtw_os_ndevs_deinit(struct dvobj_priv *dvobj)
  2620. {
  2621. rtw_os_ndevs_unregister(dvobj);
  2622. rtw_os_ndevs_free(dvobj);
  2623. }
  2624. #ifdef CONFIG_BR_EXT
  2625. void netdev_br_init(struct net_device *netdev)
  2626. {
  2627. _adapter *adapter = (_adapter *)rtw_netdev_priv(netdev);
  2628. #if (LINUX_VERSION_CODE > KERNEL_VERSION(2, 6, 35))
  2629. rcu_read_lock();
  2630. #endif /* (LINUX_VERSION_CODE > KERNEL_VERSION(2, 6, 35)) */
  2631. /* if(check_fwstate(pmlmepriv, WIFI_STATION_STATE|WIFI_ADHOC_STATE) == _TRUE) */
  2632. {
  2633. /* struct net_bridge *br = netdev->br_port->br; */ /* ->dev->dev_addr; */
  2634. #if (LINUX_VERSION_CODE <= KERNEL_VERSION(2, 6, 35))
  2635. if (netdev->br_port)
  2636. #else /* (LINUX_VERSION_CODE <= KERNEL_VERSION(2, 6, 35)) */
  2637. if (rcu_dereference(adapter->pnetdev->rx_handler_data))
  2638. #endif /* (LINUX_VERSION_CODE <= KERNEL_VERSION(2, 6, 35)) */
  2639. {
  2640. struct net_device *br_netdev;
  2641. #if (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 24))
  2642. br_netdev = dev_get_by_name(CONFIG_BR_EXT_BRNAME);
  2643. #else /* (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 24)) */
  2644. struct net *devnet = NULL;
  2645. #if (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 26))
  2646. devnet = netdev->nd_net;
  2647. #else /* (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 26)) */
  2648. devnet = dev_net(netdev);
  2649. #endif /* (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 26)) */
  2650. br_netdev = dev_get_by_name(devnet, CONFIG_BR_EXT_BRNAME);
  2651. #endif /* (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 24)) */
  2652. if (br_netdev) {
  2653. memcpy(adapter->br_mac, br_netdev->dev_addr, ETH_ALEN);
  2654. dev_put(br_netdev);
  2655. } else
  2656. printk("%s()-%d: dev_get_by_name(%s) failed!", __FUNCTION__, __LINE__, CONFIG_BR_EXT_BRNAME);
  2657. }
  2658. adapter->ethBrExtInfo.addPPPoETag = 1;
  2659. }
  2660. #if (LINUX_VERSION_CODE > KERNEL_VERSION(2, 6, 35))
  2661. rcu_read_unlock();
  2662. #endif /* (LINUX_VERSION_CODE > KERNEL_VERSION(2, 6, 35)) */
  2663. }
  2664. #endif /* CONFIG_BR_EXT */
  2665. #ifdef CONFIG_NEW_NETDEV_HDL
  2666. int _netdev_open(struct net_device *pnetdev)
  2667. {
  2668. uint status;
  2669. _adapter *padapter = (_adapter *)rtw_netdev_priv(pnetdev);
  2670. struct pwrctrl_priv *pwrctrlpriv = adapter_to_pwrctl(padapter);
  2671. RTW_INFO(FUNC_NDEV_FMT" start\n", FUNC_NDEV_ARG(pnetdev));
  2672. #ifdef CONFIG_AUTOSUSPEND
  2673. if (pwrctrlpriv->ps_flag == _TRUE) {
  2674. padapter->net_closed = _FALSE;
  2675. goto netdev_open_normal_process;
  2676. }
  2677. #endif /*CONFIG_AUTOSUSPEND*/
  2678. if (!rtw_is_hw_init_completed(padapter)) { // ips
  2679. rtw_clr_surprise_removed(padapter);
  2680. rtw_clr_drv_stopped(padapter);
  2681. RTW_ENABLE_FUNC(padapter, DF_RX_BIT);
  2682. RTW_ENABLE_FUNC(padapter, DF_TX_BIT);
  2683. status = rtw_hal_init(padapter);
  2684. if (status == _FAIL)
  2685. goto netdev_open_error;
  2686. rtw_led_control(padapter, LED_CTL_NO_LINK);
  2687. #ifndef RTW_HALMAC
  2688. status = rtw_mi_start_drv_threads(padapter);
  2689. if (status == _FAIL) {
  2690. RTW_ERR(FUNC_NDEV_FMT "Initialize driver thread failed!\n", FUNC_NDEV_ARG(pnetdev));
  2691. goto netdev_open_error;
  2692. }
  2693. rtw_intf_start(GET_PRIMARY_ADAPTER(padapter));
  2694. #endif /* !RTW_HALMAC */
  2695. {
  2696. #ifdef CONFIG_BT_COEXIST_SOCKET_TRX
  2697. _adapter *prim_adpt = GET_PRIMARY_ADAPTER(padapter);
  2698. if (prim_adpt && (_TRUE == prim_adpt->EEPROMBluetoothCoexist)) {
  2699. rtw_btcoex_init_socket(prim_adpt);
  2700. prim_adpt->coex_info.BtMgnt.ExtConfig.HCIExtensionVer = 0x04;
  2701. rtw_btcoex_SetHciVersion(prim_adpt, 0x04);
  2702. }
  2703. #endif /* CONFIG_BT_COEXIST_SOCKET_TRX */
  2704. _set_timer(&adapter_to_dvobj(padapter)->dynamic_chk_timer, 2000);
  2705. #ifndef CONFIG_IPS_CHECK_IN_WD
  2706. rtw_set_pwr_state_check_timer(pwrctrlpriv);
  2707. #endif /*CONFIG_IPS_CHECK_IN_WD*/
  2708. }
  2709. }
  2710. /*if (padapter->bup == _FALSE) */
  2711. {
  2712. rtw_hal_iface_init(padapter);
  2713. #ifdef CONFIG_RTW_NAPI
  2714. if(padapter->napi_state == NAPI_DISABLE) {
  2715. napi_enable(&padapter->napi);
  2716. padapter->napi_state = NAPI_ENABLE;
  2717. }
  2718. #endif
  2719. #ifdef CONFIG_IOCTL_CFG80211
  2720. rtw_cfg80211_init_wiphy(padapter);
  2721. rtw_cfg80211_init_wdev_data(padapter);
  2722. #endif
  2723. /* rtw_netif_carrier_on(pnetdev); */ /* call this func when rtw_joinbss_event_callback return success */
  2724. rtw_netif_wake_queue(pnetdev);
  2725. #ifdef CONFIG_BR_EXT
  2726. if (is_primary_adapter(padapter))
  2727. netdev_br_init(pnetdev);
  2728. #endif /* CONFIG_BR_EXT */
  2729. padapter->bup = _TRUE;
  2730. padapter->net_closed = _FALSE;
  2731. padapter->netif_up = _TRUE;
  2732. pwrctrlpriv->bips_processing = _FALSE;
  2733. }
  2734. netdev_open_normal_process:
  2735. RTW_INFO(FUNC_NDEV_FMT" Success (bup=%d)\n", FUNC_NDEV_ARG(pnetdev), padapter->bup);
  2736. return 0;
  2737. netdev_open_error:
  2738. padapter->bup = _FALSE;
  2739. #ifdef CONFIG_RTW_NAPI
  2740. if(padapter->napi_state == NAPI_ENABLE) {
  2741. napi_disable(&padapter->napi);
  2742. padapter->napi_state = NAPI_DISABLE;
  2743. }
  2744. #endif
  2745. rtw_netif_carrier_off(pnetdev);
  2746. rtw_netif_stop_queue(pnetdev);
  2747. RTW_ERR(FUNC_NDEV_FMT" Failed!! (bup=%d)\n", FUNC_NDEV_ARG(pnetdev), padapter->bup);
  2748. return -1;
  2749. }
  2750. #else
  2751. int _netdev_open(struct net_device *pnetdev)
  2752. {
  2753. uint status;
  2754. _adapter *padapter = (_adapter *)rtw_netdev_priv(pnetdev);
  2755. struct pwrctrl_priv *pwrctrlpriv = adapter_to_pwrctl(padapter);
  2756. #ifdef CONFIG_BT_COEXIST_SOCKET_TRX
  2757. HAL_DATA_TYPE *pHalData = GET_HAL_DATA(padapter);
  2758. #endif /* CONFIG_BT_COEXIST_SOCKET_TRX */
  2759. RTW_INFO(FUNC_NDEV_FMT" , bup=%d\n", FUNC_NDEV_ARG(pnetdev), padapter->bup);
  2760. padapter->netif_up = _TRUE;
  2761. #ifdef CONFIG_PLATFORM_INTEL_BYT
  2762. rtw_sdio_set_power(1);
  2763. #endif /* CONFIG_PLATFORM_INTEL_BYT */
  2764. #ifdef CONFIG_AUTOSUSPEND
  2765. if (pwrctrlpriv->ps_flag == _TRUE) {
  2766. padapter->net_closed = _FALSE;
  2767. goto netdev_open_normal_process;
  2768. }
  2769. #endif
  2770. if (padapter->bup == _FALSE) {
  2771. #ifdef CONFIG_PLATFORM_INTEL_BYT
  2772. rtw_macaddr_cfg(adapter_mac_addr(padapter), get_hal_mac_addr(padapter));
  2773. #ifdef CONFIG_MI_WITH_MBSSID_CAM
  2774. rtw_mbid_camid_alloc(padapter, adapter_mac_addr(padapter));
  2775. #endif
  2776. rtw_init_wifidirect_addrs(padapter, adapter_mac_addr(padapter), adapter_mac_addr(padapter));
  2777. _rtw_memcpy(pnetdev->dev_addr, adapter_mac_addr(padapter), ETH_ALEN);
  2778. #endif /* CONFIG_PLATFORM_INTEL_BYT */
  2779. rtw_clr_surprise_removed(padapter);
  2780. rtw_clr_drv_stopped(padapter);
  2781. status = rtw_hal_init(padapter);
  2782. if (status == _FAIL) {
  2783. goto netdev_open_error;
  2784. }
  2785. #if 0/*#ifdef CONFIG_MI_WITH_MBSSID_CAM*/
  2786. rtw_hal_set_hwreg(padapter, HW_VAR_MAC_ADDR, adapter_mac_addr(padapter)); /* set mac addr to mac register */
  2787. #endif
  2788. RTW_INFO("MAC Address = "MAC_FMT"\n", MAC_ARG(pnetdev->dev_addr));
  2789. #ifndef RTW_HALMAC
  2790. status = rtw_start_drv_threads(padapter);
  2791. if (status == _FAIL) {
  2792. RTW_INFO("Initialize driver software resource Failed!\n");
  2793. goto netdev_open_error;
  2794. }
  2795. #endif /* !RTW_HALMAC */
  2796. #ifdef CONFIG_RTW_NAPI
  2797. if(padapter->napi_state == NAPI_DISABLE) {
  2798. napi_enable(&padapter->napi);
  2799. padapter->napi_state = NAPI_ENABLE;
  2800. }
  2801. #endif
  2802. #ifndef RTW_HALMAC
  2803. rtw_intf_start(padapter);
  2804. #endif /* !RTW_HALMAC */
  2805. #ifdef CONFIG_IOCTL_CFG80211
  2806. rtw_cfg80211_init_wiphy(padapter);
  2807. rtw_cfg80211_init_wdev_data(padapter);
  2808. #endif
  2809. rtw_led_control(padapter, LED_CTL_NO_LINK);
  2810. padapter->bup = _TRUE;
  2811. pwrctrlpriv->bips_processing = _FALSE;
  2812. #ifdef CONFIG_PLATFORM_INTEL_BYT
  2813. #ifdef CONFIG_BT_COEXIST
  2814. rtw_btcoex_IpsNotify(padapter, IPS_NONE);
  2815. #endif /* CONFIG_BT_COEXIST */
  2816. #endif /* CONFIG_PLATFORM_INTEL_BYT */
  2817. }
  2818. padapter->net_closed = _FALSE;
  2819. _set_timer(&adapter_to_dvobj(padapter)->dynamic_chk_timer, 2000);
  2820. #ifndef CONFIG_IPS_CHECK_IN_WD
  2821. rtw_set_pwr_state_check_timer(pwrctrlpriv);
  2822. #endif
  2823. /* rtw_netif_carrier_on(pnetdev); */ /* call this func when rtw_joinbss_event_callback return success */
  2824. rtw_netif_wake_queue(pnetdev);
  2825. #ifdef CONFIG_BR_EXT
  2826. netdev_br_init(pnetdev);
  2827. #endif /* CONFIG_BR_EXT */
  2828. #ifdef CONFIG_BT_COEXIST_SOCKET_TRX
  2829. if (is_primary_adapter(padapter) && (_TRUE == pHalData->EEPROMBluetoothCoexist)) {
  2830. rtw_btcoex_init_socket(padapter);
  2831. padapter->coex_info.BtMgnt.ExtConfig.HCIExtensionVer = 0x04;
  2832. rtw_btcoex_SetHciVersion(padapter, 0x04);
  2833. } else
  2834. RTW_INFO("CONFIG_BT_COEXIST: VIRTUAL_ADAPTER\n");
  2835. #endif /* CONFIG_BT_COEXIST_SOCKET_TRX */
  2836. netdev_open_normal_process:
  2837. #ifdef CONFIG_CONCURRENT_MODE
  2838. {
  2839. _adapter *sec_adapter = adapter_to_dvobj(padapter)->padapters[IFACE_ID1];
  2840. #ifndef CONFIG_RTW_DYNAMIC_NDEV
  2841. if (sec_adapter && (sec_adapter->bup == _FALSE))
  2842. _netdev_vir_if_open(sec_adapter->pnetdev);
  2843. #endif
  2844. }
  2845. #endif
  2846. #ifdef CONFIG_RTW_CFGVEDNOR_LLSTATS
  2847. pwrctrlpriv->radio_on_start_time = rtw_get_current_time();
  2848. pwrctrlpriv->pwr_saving_start_time = rtw_get_current_time();
  2849. pwrctrlpriv->pwr_saving_time = 0;
  2850. pwrctrlpriv->on_time = 0;
  2851. pwrctrlpriv->tx_time = 0;
  2852. pwrctrlpriv->rx_time = 0;
  2853. #endif /* CONFIG_RTW_CFGVEDNOR_LLSTATS */
  2854. RTW_INFO("-871x_drv - drv_open, bup=%d\n", padapter->bup);
  2855. return 0;
  2856. netdev_open_error:
  2857. padapter->bup = _FALSE;
  2858. #ifdef CONFIG_RTW_NAPI
  2859. if(padapter->napi_state == NAPI_ENABLE) {
  2860. napi_disable(&padapter->napi);
  2861. padapter->napi_state = NAPI_DISABLE;
  2862. }
  2863. #endif
  2864. rtw_netif_carrier_off(pnetdev);
  2865. rtw_netif_stop_queue(pnetdev);
  2866. RTW_INFO("-871x_drv - drv_open fail, bup=%d\n", padapter->bup);
  2867. return -1;
  2868. }
  2869. #endif
  2870. int netdev_open(struct net_device *pnetdev)
  2871. {
  2872. int ret = _FALSE;
  2873. _adapter *padapter = (_adapter *)rtw_netdev_priv(pnetdev);
  2874. struct pwrctrl_priv *pwrctrlpriv = adapter_to_pwrctl(padapter);
  2875. if (pwrctrlpriv->bInSuspend == _TRUE) {
  2876. RTW_INFO(" [WARN] "ADPT_FMT" %s failed, bInSuspend=%d\n", ADPT_ARG(padapter), __func__, pwrctrlpriv->bInSuspend);
  2877. return 0;
  2878. }
  2879. _enter_critical_mutex(&(adapter_to_dvobj(padapter)->hw_init_mutex), NULL);
  2880. #ifdef CONFIG_NEW_NETDEV_HDL
  2881. ret = _netdev_open(pnetdev);
  2882. #else
  2883. if (is_primary_adapter(padapter))
  2884. ret = _netdev_open(pnetdev);
  2885. #ifdef CONFIG_CONCURRENT_MODE
  2886. else
  2887. ret = _netdev_vir_if_open(pnetdev);
  2888. #endif
  2889. #endif
  2890. _exit_critical_mutex(&(adapter_to_dvobj(padapter)->hw_init_mutex), NULL);
  2891. #ifdef CONFIG_AUTO_AP_MODE
  2892. if (padapter->iface_id == IFACE_ID2)
  2893. rtw_start_auto_ap(padapter);
  2894. #endif
  2895. return ret;
  2896. }
  2897. #ifdef CONFIG_IPS
  2898. int ips_netdrv_open(_adapter *padapter)
  2899. {
  2900. int status = _SUCCESS;
  2901. /* struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(padapter); */
  2902. padapter->net_closed = _FALSE;
  2903. RTW_INFO("===> %s.........\n", __FUNCTION__);
  2904. rtw_clr_drv_stopped(padapter);
  2905. /* padapter->bup = _TRUE; */
  2906. #ifdef CONFIG_NEW_NETDEV_HDL
  2907. if (!rtw_is_hw_init_completed(padapter)) {
  2908. status = rtw_hal_init(padapter);
  2909. if (status == _FAIL) {
  2910. goto netdev_open_error;
  2911. }
  2912. rtw_mi_hal_iface_init(padapter);
  2913. }
  2914. #else
  2915. status = rtw_hal_init(padapter);
  2916. if (status == _FAIL) {
  2917. goto netdev_open_error;
  2918. }
  2919. #endif
  2920. #if 0
  2921. rtw_mi_set_mac_addr(padapter);
  2922. #endif
  2923. #ifndef RTW_HALMAC
  2924. rtw_intf_start(padapter);
  2925. #endif /* !RTW_HALMAC */
  2926. #ifndef CONFIG_IPS_CHECK_IN_WD
  2927. rtw_set_pwr_state_check_timer(adapter_to_pwrctl(padapter));
  2928. #endif
  2929. _set_timer(&adapter_to_dvobj(padapter)->dynamic_chk_timer, 2000);
  2930. return _SUCCESS;
  2931. netdev_open_error:
  2932. /* padapter->bup = _FALSE; */
  2933. RTW_INFO("-ips_netdrv_open - drv_open failure, bup=%d\n", padapter->bup);
  2934. return _FAIL;
  2935. }
  2936. int rtw_ips_pwr_up(_adapter *padapter)
  2937. {
  2938. int result;
  2939. #if defined(CONFIG_SWLPS_IN_IPS) || defined(CONFIG_FWLPS_IN_IPS)
  2940. #ifdef DBG_CONFIG_ERROR_DETECT
  2941. PHAL_DATA_TYPE pHalData = GET_HAL_DATA(padapter);
  2942. struct sreset_priv *psrtpriv = &pHalData->srestpriv;
  2943. #endif/* #ifdef DBG_CONFIG_ERROR_DETECT */
  2944. #endif /* defined(CONFIG_SWLPS_IN_IPS) || defined(CONFIG_FWLPS_IN_IPS) */
  2945. systime start_time = rtw_get_current_time();
  2946. RTW_INFO("===> rtw_ips_pwr_up..............\n");
  2947. #if defined(CONFIG_SWLPS_IN_IPS) || defined(CONFIG_FWLPS_IN_IPS)
  2948. #ifdef DBG_CONFIG_ERROR_DETECT
  2949. if (psrtpriv->silent_reset_inprogress == _TRUE)
  2950. #endif/* #ifdef DBG_CONFIG_ERROR_DETECT */
  2951. #endif /* defined(CONFIG_SWLPS_IN_IPS) || defined(CONFIG_FWLPS_IN_IPS) */
  2952. rtw_reset_drv_sw(padapter);
  2953. result = ips_netdrv_open(padapter);
  2954. rtw_led_control(padapter, LED_CTL_NO_LINK);
  2955. RTW_INFO("<=== rtw_ips_pwr_up.............. in %dms\n", rtw_get_passing_time_ms(start_time));
  2956. return result;
  2957. }
  2958. void rtw_ips_pwr_down(_adapter *padapter)
  2959. {
  2960. systime start_time = rtw_get_current_time();
  2961. RTW_INFO("===> rtw_ips_pwr_down...................\n");
  2962. padapter->net_closed = _TRUE;
  2963. rtw_ips_dev_unload(padapter);
  2964. RTW_INFO("<=== rtw_ips_pwr_down..................... in %dms\n", rtw_get_passing_time_ms(start_time));
  2965. }
  2966. #endif
  2967. void rtw_ips_dev_unload(_adapter *padapter)
  2968. {
  2969. #if defined(CONFIG_SWLPS_IN_IPS) || defined(CONFIG_FWLPS_IN_IPS)
  2970. #ifdef DBG_CONFIG_ERROR_DETECT
  2971. PHAL_DATA_TYPE pHalData = GET_HAL_DATA(padapter);
  2972. struct sreset_priv *psrtpriv = &pHalData->srestpriv;
  2973. #endif/* #ifdef DBG_CONFIG_ERROR_DETECT */
  2974. #endif /* defined(CONFIG_SWLPS_IN_IPS) || defined(CONFIG_FWLPS_IN_IPS) */
  2975. RTW_INFO("====> %s...\n", __FUNCTION__);
  2976. #if defined(CONFIG_SWLPS_IN_IPS) || defined(CONFIG_FWLPS_IN_IPS)
  2977. #ifdef DBG_CONFIG_ERROR_DETECT
  2978. if (psrtpriv->silent_reset_inprogress == _TRUE)
  2979. #endif /* #ifdef DBG_CONFIG_ERROR_DETECT */
  2980. #endif /* defined(CONFIG_SWLPS_IN_IPS) || defined(CONFIG_FWLPS_IN_IPS) */
  2981. {
  2982. rtw_hal_set_hwreg(padapter, HW_VAR_FIFO_CLEARN_UP, 0);
  2983. rtw_intf_stop(padapter);
  2984. }
  2985. if (!rtw_is_surprise_removed(padapter))
  2986. rtw_hal_deinit(padapter);
  2987. }
  2988. #ifdef CONFIG_NEW_NETDEV_HDL
  2989. int _pm_netdev_open(_adapter *padapter)
  2990. {
  2991. uint status;
  2992. struct pwrctrl_priv *pwrctrlpriv = adapter_to_pwrctl(padapter);
  2993. struct net_device *pnetdev = padapter->pnetdev;
  2994. RTW_INFO(FUNC_NDEV_FMT" start\n", FUNC_NDEV_ARG(pnetdev));
  2995. #ifdef CONFIG_AUTOSUSPEND
  2996. if (pwrctrlpriv->ps_flag == _TRUE) {
  2997. padapter->net_closed = _FALSE;
  2998. goto netdev_open_normal_process;
  2999. }
  3000. #endif /*CONFIG_AUTOSUSPEND*/
  3001. if (!rtw_is_hw_init_completed(padapter)) { // ips
  3002. rtw_clr_surprise_removed(padapter);
  3003. rtw_clr_drv_stopped(padapter);
  3004. status = rtw_hal_init(padapter);
  3005. if (status == _FAIL)
  3006. goto netdev_open_error;
  3007. rtw_led_control(padapter, LED_CTL_NO_LINK);
  3008. #ifndef RTW_HALMAC
  3009. status = rtw_mi_start_drv_threads(padapter);
  3010. if (status == _FAIL) {
  3011. RTW_ERR(FUNC_NDEV_FMT "Initialize driver thread failed!\n", FUNC_NDEV_ARG(pnetdev));
  3012. goto netdev_open_error;
  3013. }
  3014. rtw_intf_start(GET_PRIMARY_ADAPTER(padapter));
  3015. #endif /* !RTW_HALMAC */
  3016. {
  3017. _set_timer(&adapter_to_dvobj(padapter)->dynamic_chk_timer, 2000);
  3018. #ifndef CONFIG_IPS_CHECK_IN_WD
  3019. rtw_set_pwr_state_check_timer(pwrctrlpriv);
  3020. #endif /*CONFIG_IPS_CHECK_IN_WD*/
  3021. }
  3022. }
  3023. /*if (padapter->bup == _FALSE) */
  3024. {
  3025. rtw_hal_iface_init(padapter);
  3026. padapter->bup = _TRUE;
  3027. padapter->net_closed = _FALSE;
  3028. padapter->netif_up = _TRUE;
  3029. pwrctrlpriv->bips_processing = _FALSE;
  3030. }
  3031. netdev_open_normal_process:
  3032. RTW_INFO(FUNC_NDEV_FMT" Success (bup=%d)\n", FUNC_NDEV_ARG(pnetdev), padapter->bup);
  3033. return 0;
  3034. netdev_open_error:
  3035. padapter->bup = _FALSE;
  3036. rtw_netif_carrier_off(pnetdev);
  3037. rtw_netif_stop_queue(pnetdev);
  3038. RTW_ERR(FUNC_NDEV_FMT" Failed!! (bup=%d)\n", FUNC_NDEV_ARG(pnetdev), padapter->bup);
  3039. return -1;
  3040. }
  3041. int _mi_pm_netdev_open(struct net_device *pnetdev)
  3042. {
  3043. int i;
  3044. int status = 0;
  3045. _adapter *padapter = (_adapter *)rtw_netdev_priv(pnetdev);
  3046. _adapter *iface;
  3047. struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
  3048. for (i = 0; i < dvobj->iface_nums; i++) {
  3049. iface = dvobj->padapters[i];
  3050. if (iface->netif_up) {
  3051. status = _pm_netdev_open(iface);
  3052. if (status == -1) {
  3053. RTW_ERR("%s failled\n", __func__);
  3054. break;
  3055. }
  3056. }
  3057. }
  3058. return status;
  3059. }
  3060. #endif /*CONFIG_NEW_NETDEV_HDL*/
  3061. int pm_netdev_open(struct net_device *pnetdev, u8 bnormal)
  3062. {
  3063. int status = 0;
  3064. _adapter *padapter = (_adapter *)rtw_netdev_priv(pnetdev);
  3065. if (_TRUE == bnormal) {
  3066. _enter_critical_mutex(&(adapter_to_dvobj(padapter)->hw_init_mutex), NULL);
  3067. #ifdef CONFIG_NEW_NETDEV_HDL
  3068. status = _mi_pm_netdev_open(pnetdev);
  3069. #else
  3070. status = _netdev_open(pnetdev);
  3071. #endif
  3072. _exit_critical_mutex(&(adapter_to_dvobj(padapter)->hw_init_mutex), NULL);
  3073. }
  3074. #ifdef CONFIG_IPS
  3075. else
  3076. status = (_SUCCESS == ips_netdrv_open(padapter)) ? (0) : (-1);
  3077. #endif
  3078. return status;
  3079. }
  3080. #ifdef CONFIG_CLIENT_PORT_CFG
  3081. extern void rtw_hw_client_port_release(_adapter *adapter);
  3082. #endif
  3083. static int netdev_close(struct net_device *pnetdev)
  3084. {
  3085. _adapter *padapter = (_adapter *)rtw_netdev_priv(pnetdev);
  3086. struct pwrctrl_priv *pwrctl = adapter_to_pwrctl(padapter);
  3087. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3088. #ifdef CONFIG_BT_COEXIST_SOCKET_TRX
  3089. HAL_DATA_TYPE *pHalData = GET_HAL_DATA(padapter);
  3090. #endif /* CONFIG_BT_COEXIST_SOCKET_TRX */
  3091. RTW_INFO(FUNC_NDEV_FMT" , bup=%d\n", FUNC_NDEV_ARG(pnetdev), padapter->bup);
  3092. #ifndef CONFIG_PLATFORM_INTEL_BYT
  3093. #ifdef CONFIG_AUTOSUSPEND
  3094. if (pwrctl->bInternalAutoSuspend == _TRUE) {
  3095. /* rtw_pwr_wakeup(padapter); */
  3096. if (pwrctl->rf_pwrstate == rf_off)
  3097. pwrctl->ps_flag = _TRUE;
  3098. }
  3099. #endif
  3100. padapter->net_closed = _TRUE;
  3101. padapter->netif_up = _FALSE;
  3102. pmlmepriv->LinkDetectInfo.bBusyTraffic = _FALSE;
  3103. #ifdef CONFIG_CLIENT_PORT_CFG
  3104. if (MLME_IS_STA(padapter))
  3105. rtw_hw_client_port_release(padapter);
  3106. #endif
  3107. /* if (!rtw_is_hw_init_completed(padapter)) {
  3108. RTW_INFO("(1)871x_drv - drv_close, bup=%d, hw_init_completed=%s\n", padapter->bup, rtw_is_hw_init_completed(padapter)?"_TRUE":"_FALSE");
  3109. rtw_set_drv_stopped(padapter);
  3110. rtw_dev_unload(padapter);
  3111. }
  3112. else*/
  3113. if (pwrctl->rf_pwrstate == rf_on) {
  3114. RTW_INFO("(2)871x_drv - drv_close, bup=%d, hw_init_completed=%s\n", padapter->bup, rtw_is_hw_init_completed(padapter) ? "_TRUE" : "_FALSE");
  3115. /* s1. */
  3116. if (pnetdev)
  3117. rtw_netif_stop_queue(pnetdev);
  3118. #ifndef CONFIG_ANDROID
  3119. /* s2. */
  3120. LeaveAllPowerSaveMode(padapter);
  3121. rtw_disassoc_cmd(padapter, 500, RTW_CMDF_WAIT_ACK);
  3122. /* s2-2. indicate disconnect to os */
  3123. rtw_indicate_disconnect(padapter, 0, _FALSE);
  3124. /* s2-3. */
  3125. rtw_free_assoc_resources_cmd(padapter, _TRUE, RTW_CMDF_WAIT_ACK);
  3126. /* s2-4. */
  3127. rtw_free_network_queue(padapter, _TRUE);
  3128. #endif
  3129. }
  3130. #ifdef CONFIG_BR_EXT
  3131. /* if (OPMODE & (WIFI_STATION_STATE | WIFI_ADHOC_STATE)) */
  3132. {
  3133. /* void nat25_db_cleanup(_adapter *priv); */
  3134. nat25_db_cleanup(padapter);
  3135. }
  3136. #endif /* CONFIG_BR_EXT */
  3137. #ifdef CONFIG_P2P
  3138. if (!rtw_p2p_chk_role(&padapter->wdinfo, P2P_ROLE_DISABLE))
  3139. rtw_p2p_enable(padapter, P2P_ROLE_DISABLE);
  3140. #endif /* CONFIG_P2P */
  3141. rtw_scan_abort(padapter); /* stop scanning process before wifi is going to down */
  3142. #ifdef CONFIG_IOCTL_CFG80211
  3143. rtw_cfg80211_wait_scan_req_empty(padapter, 200);
  3144. adapter_wdev_data(padapter)->bandroid_scan = _FALSE;
  3145. /* padapter->rtw_wdev->iftype = NL80211_IFTYPE_MONITOR; */ /* set this at the end */
  3146. #endif /* CONFIG_IOCTL_CFG80211 */
  3147. #ifdef CONFIG_WAPI_SUPPORT
  3148. rtw_wapi_disable_tx(padapter);
  3149. #endif
  3150. #ifdef CONFIG_BT_COEXIST_SOCKET_TRX
  3151. if (is_primary_adapter(padapter) && (_TRUE == pHalData->EEPROMBluetoothCoexist))
  3152. rtw_btcoex_close_socket(padapter);
  3153. else
  3154. RTW_INFO("CONFIG_BT_COEXIST: VIRTUAL_ADAPTER\n");
  3155. #endif /* CONFIG_BT_COEXIST_SOCKET_TRX */
  3156. #else /* !CONFIG_PLATFORM_INTEL_BYT */
  3157. if (pwrctl->bInSuspend == _TRUE) {
  3158. RTW_INFO("+871x_drv - drv_close, bInSuspend=%d\n", pwrctl->bInSuspend);
  3159. return 0;
  3160. }
  3161. rtw_scan_abort(padapter); /* stop scanning process before wifi is going to down */
  3162. #ifdef CONFIG_IOCTL_CFG80211
  3163. rtw_cfg80211_wait_scan_req_empty(padapter, 200);
  3164. #endif
  3165. RTW_INFO("netdev_close, bips_processing=%d\n", pwrctl->bips_processing);
  3166. while (pwrctl->bips_processing == _TRUE) /* waiting for ips_processing done before call rtw_dev_unload() */
  3167. rtw_msleep_os(1);
  3168. rtw_dev_unload(padapter);
  3169. rtw_sdio_set_power(0);
  3170. #endif /* !CONFIG_PLATFORM_INTEL_BYT */
  3171. RTW_INFO("-871x_drv - drv_close, bup=%d\n", padapter->bup);
  3172. return 0;
  3173. }
  3174. int pm_netdev_close(struct net_device *pnetdev, u8 bnormal)
  3175. {
  3176. int status = 0;
  3177. status = netdev_close(pnetdev);
  3178. return status;
  3179. }
  3180. void rtw_ndev_destructor(struct net_device *ndev)
  3181. {
  3182. RTW_INFO(FUNC_NDEV_FMT"\n", FUNC_NDEV_ARG(ndev));
  3183. #ifdef CONFIG_IOCTL_CFG80211
  3184. if (ndev->ieee80211_ptr)
  3185. rtw_mfree((u8 *)ndev->ieee80211_ptr, sizeof(struct wireless_dev));
  3186. #endif
  3187. free_netdev(ndev);
  3188. }
  3189. #ifdef CONFIG_ARP_KEEP_ALIVE
  3190. struct route_info {
  3191. struct in_addr dst_addr;
  3192. struct in_addr src_addr;
  3193. struct in_addr gateway;
  3194. unsigned int dev_index;
  3195. };
  3196. static void parse_routes(struct nlmsghdr *nl_hdr, struct route_info *rt_info)
  3197. {
  3198. struct rtmsg *rt_msg;
  3199. struct rtattr *rt_attr;
  3200. int rt_len;
  3201. rt_msg = (struct rtmsg *) NLMSG_DATA(nl_hdr);
  3202. if ((rt_msg->rtm_family != AF_INET) || (rt_msg->rtm_table != RT_TABLE_MAIN))
  3203. return;
  3204. rt_attr = (struct rtattr *) RTM_RTA(rt_msg);
  3205. rt_len = RTM_PAYLOAD(nl_hdr);
  3206. for (; RTA_OK(rt_attr, rt_len); rt_attr = RTA_NEXT(rt_attr, rt_len)) {
  3207. switch (rt_attr->rta_type) {
  3208. case RTA_OIF:
  3209. rt_info->dev_index = *(int *) RTA_DATA(rt_attr);
  3210. break;
  3211. case RTA_GATEWAY:
  3212. rt_info->gateway.s_addr = *(u_int *) RTA_DATA(rt_attr);
  3213. break;
  3214. case RTA_PREFSRC:
  3215. rt_info->src_addr.s_addr = *(u_int *) RTA_DATA(rt_attr);
  3216. break;
  3217. case RTA_DST:
  3218. rt_info->dst_addr.s_addr = *(u_int *) RTA_DATA(rt_attr);
  3219. break;
  3220. }
  3221. }
  3222. }
  3223. static int route_dump(u32 *gw_addr , int *gw_index)
  3224. {
  3225. int err = 0;
  3226. struct socket *sock;
  3227. struct {
  3228. struct nlmsghdr nlh;
  3229. struct rtgenmsg g;
  3230. } req;
  3231. struct msghdr msg;
  3232. struct iovec iov;
  3233. struct sockaddr_nl nladdr;
  3234. mm_segment_t oldfs;
  3235. char *pg;
  3236. int size = 0;
  3237. err = sock_create(AF_NETLINK, SOCK_DGRAM, NETLINK_ROUTE, &sock);
  3238. if (err) {
  3239. printk(": Could not create a datagram socket, error = %d\n", -ENXIO);
  3240. return err;
  3241. }
  3242. memset(&nladdr, 0, sizeof(nladdr));
  3243. nladdr.nl_family = AF_NETLINK;
  3244. req.nlh.nlmsg_len = sizeof(req);
  3245. req.nlh.nlmsg_type = RTM_GETROUTE;
  3246. req.nlh.nlmsg_flags = NLM_F_ROOT | NLM_F_MATCH | NLM_F_REQUEST;
  3247. req.nlh.nlmsg_pid = 0;
  3248. req.g.rtgen_family = AF_INET;
  3249. iov.iov_base = &req;
  3250. iov.iov_len = sizeof(req);
  3251. msg.msg_name = &nladdr;
  3252. msg.msg_namelen = sizeof(nladdr);
  3253. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(3, 19, 0))
  3254. /* referece:sock_xmit in kernel code
  3255. * WRITE for sock_sendmsg, READ for sock_recvmsg
  3256. * third parameter for msg_iovlen
  3257. * last parameter for iov_len
  3258. */
  3259. iov_iter_init(&msg.msg_iter, WRITE, &iov, 1, sizeof(req));
  3260. #else
  3261. msg.msg_iov = &iov;
  3262. msg.msg_iovlen = 1;
  3263. #endif
  3264. msg.msg_control = NULL;
  3265. msg.msg_controllen = 0;
  3266. msg.msg_flags = MSG_DONTWAIT;
  3267. oldfs = get_fs();
  3268. set_fs(KERNEL_DS);
  3269. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(4, 1, 0))
  3270. err = sock_sendmsg(sock, &msg);
  3271. #else
  3272. err = sock_sendmsg(sock, &msg, sizeof(req));
  3273. #endif
  3274. set_fs(oldfs);
  3275. if (err < 0)
  3276. goto out_sock;
  3277. pg = (char *) __get_free_page(GFP_KERNEL);
  3278. if (pg == NULL) {
  3279. err = -ENOMEM;
  3280. goto out_sock;
  3281. }
  3282. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  3283. restart:
  3284. #endif
  3285. for (;;) {
  3286. struct nlmsghdr *h;
  3287. iov.iov_base = pg;
  3288. iov.iov_len = PAGE_SIZE;
  3289. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(3, 19, 0))
  3290. iov_iter_init(&msg.msg_iter, READ, &iov, 1, PAGE_SIZE);
  3291. #endif
  3292. oldfs = get_fs();
  3293. set_fs(KERNEL_DS);
  3294. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(4, 7, 0))
  3295. err = sock_recvmsg(sock, &msg, MSG_DONTWAIT);
  3296. #else
  3297. err = sock_recvmsg(sock, &msg, PAGE_SIZE, MSG_DONTWAIT);
  3298. #endif
  3299. set_fs(oldfs);
  3300. if (err < 0)
  3301. goto out_sock_pg;
  3302. if (msg.msg_flags & MSG_TRUNC) {
  3303. err = -ENOBUFS;
  3304. goto out_sock_pg;
  3305. }
  3306. h = (struct nlmsghdr *) pg;
  3307. while (NLMSG_OK(h, err)) {
  3308. struct route_info rt_info;
  3309. if (h->nlmsg_type == NLMSG_DONE) {
  3310. err = 0;
  3311. goto done;
  3312. }
  3313. if (h->nlmsg_type == NLMSG_ERROR) {
  3314. struct nlmsgerr *errm = (struct nlmsgerr *) NLMSG_DATA(h);
  3315. err = errm->error;
  3316. printk("NLMSG error: %d\n", errm->error);
  3317. goto done;
  3318. }
  3319. if (h->nlmsg_type == RTM_GETROUTE)
  3320. printk("RTM_GETROUTE: NLMSG: %d\n", h->nlmsg_type);
  3321. if (h->nlmsg_type != RTM_NEWROUTE) {
  3322. printk("NLMSG: %d\n", h->nlmsg_type);
  3323. err = -EINVAL;
  3324. goto done;
  3325. }
  3326. memset(&rt_info, 0, sizeof(struct route_info));
  3327. parse_routes(h, &rt_info);
  3328. if (!rt_info.dst_addr.s_addr && rt_info.gateway.s_addr && rt_info.dev_index) {
  3329. *gw_addr = rt_info.gateway.s_addr;
  3330. *gw_index = rt_info.dev_index;
  3331. }
  3332. h = NLMSG_NEXT(h, err);
  3333. }
  3334. if (err) {
  3335. printk("!!!Remnant of size %d %d %d\n", err, h->nlmsg_len, h->nlmsg_type);
  3336. err = -EINVAL;
  3337. break;
  3338. }
  3339. }
  3340. done:
  3341. #if defined(CONFIG_IPV6) || defined(CONFIG_IPV6_MODULE)
  3342. if (!err && req.g.rtgen_family == AF_INET) {
  3343. req.g.rtgen_family = AF_INET6;
  3344. iov.iov_base = &req;
  3345. iov.iov_len = sizeof(req);
  3346. msg.msg_name = &nladdr;
  3347. msg.msg_namelen = sizeof(nladdr);
  3348. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(3, 19, 0))
  3349. iov_iter_init(&msg.msg_iter, WRITE, &iov, 1, sizeof(req));
  3350. #else
  3351. msg.msg_iov = &iov;
  3352. msg.msg_iovlen = 1;
  3353. #endif
  3354. msg.msg_control = NULL;
  3355. msg.msg_controllen = 0;
  3356. msg.msg_flags = MSG_DONTWAIT;
  3357. oldfs = get_fs();
  3358. set_fs(KERNEL_DS);
  3359. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(4, 1, 0))
  3360. err = sock_sendmsg(sock, &msg);
  3361. #else
  3362. err = sock_sendmsg(sock, &msg, sizeof(req));
  3363. #endif
  3364. set_fs(oldfs);
  3365. if (err > 0)
  3366. goto restart;
  3367. }
  3368. #endif
  3369. out_sock_pg:
  3370. free_page((unsigned long) pg);
  3371. out_sock:
  3372. sock_release(sock);
  3373. return err;
  3374. }
  3375. static int arp_query(unsigned char *haddr, u32 paddr,
  3376. struct net_device *dev)
  3377. {
  3378. struct neighbour *neighbor_entry;
  3379. int ret = 0;
  3380. neighbor_entry = neigh_lookup(&arp_tbl, &paddr, dev);
  3381. if (neighbor_entry != NULL) {
  3382. neighbor_entry->used = jiffies;
  3383. if (neighbor_entry->nud_state & NUD_VALID) {
  3384. _rtw_memcpy(haddr, neighbor_entry->ha, dev->addr_len);
  3385. ret = 1;
  3386. }
  3387. neigh_release(neighbor_entry);
  3388. }
  3389. return ret;
  3390. }
  3391. static int get_defaultgw(u32 *ip_addr , char mac[])
  3392. {
  3393. int gw_index = 0; /* oif device index */
  3394. struct net_device *gw_dev = NULL; /* oif device */
  3395. route_dump(ip_addr, &gw_index);
  3396. if (!(*ip_addr) || !gw_index) {
  3397. /* RTW_INFO("No default GW\n"); */
  3398. return -1;
  3399. }
  3400. gw_dev = dev_get_by_index(&init_net, gw_index);
  3401. if (gw_dev == NULL) {
  3402. /* RTW_INFO("get Oif Device Fail\n"); */
  3403. return -1;
  3404. }
  3405. if (!arp_query(mac, *ip_addr, gw_dev)) {
  3406. /* RTW_INFO( "arp query failed\n"); */
  3407. dev_put(gw_dev);
  3408. return -1;
  3409. }
  3410. dev_put(gw_dev);
  3411. return 0;
  3412. }
  3413. int rtw_gw_addr_query(_adapter *padapter)
  3414. {
  3415. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3416. struct pwrctrl_priv *pwrctl = adapter_to_pwrctl(padapter);
  3417. u32 gw_addr = 0; /* default gw address */
  3418. unsigned char gw_mac[32] = {0}; /* default gw mac */
  3419. int i;
  3420. int res;
  3421. res = get_defaultgw(&gw_addr, gw_mac);
  3422. if (!res) {
  3423. pmlmepriv->gw_ip[0] = gw_addr & 0xff;
  3424. pmlmepriv->gw_ip[1] = (gw_addr & 0xff00) >> 8;
  3425. pmlmepriv->gw_ip[2] = (gw_addr & 0xff0000) >> 16;
  3426. pmlmepriv->gw_ip[3] = (gw_addr & 0xff000000) >> 24;
  3427. _rtw_memcpy(pmlmepriv->gw_mac_addr, gw_mac, ETH_ALEN);
  3428. RTW_INFO("%s Gateway Mac:\t" MAC_FMT "\n", __FUNCTION__, MAC_ARG(pmlmepriv->gw_mac_addr));
  3429. RTW_INFO("%s Gateway IP:\t" IP_FMT "\n", __FUNCTION__, IP_ARG(pmlmepriv->gw_ip));
  3430. } else
  3431. RTW_INFO("Get Gateway IP/MAC fail!\n");
  3432. return res;
  3433. }
  3434. #endif
  3435. void rtw_dev_unload(PADAPTER padapter)
  3436. {
  3437. struct pwrctrl_priv *pwrctl = adapter_to_pwrctl(padapter);
  3438. struct dvobj_priv *pobjpriv = padapter->dvobj;
  3439. struct debug_priv *pdbgpriv = &pobjpriv->drv_dbg;
  3440. struct cmd_priv *pcmdpriv = &padapter->cmdpriv;
  3441. if (padapter->bup == _TRUE) {
  3442. RTW_INFO("==> "FUNC_ADPT_FMT"\n", FUNC_ADPT_ARG(padapter));
  3443. #ifdef CONFIG_WOWLAN
  3444. #ifdef CONFIG_GPIO_WAKEUP
  3445. /*default wake up pin change to BT*/
  3446. RTW_INFO("%s:default wake up pin change to BT\n", __FUNCTION__);
  3447. rtw_hal_switch_gpio_wl_ctrl(padapter, WAKEUP_GPIO_IDX, _FALSE);
  3448. #endif /* CONFIG_GPIO_WAKEUP */
  3449. #endif /* CONFIG_WOWLAN */
  3450. rtw_set_drv_stopped(padapter);
  3451. #ifdef CONFIG_XMIT_ACK
  3452. if (padapter->xmitpriv.ack_tx)
  3453. rtw_ack_tx_done(&padapter->xmitpriv, RTW_SCTX_DONE_DRV_STOP);
  3454. #endif
  3455. rtw_intf_stop(padapter);
  3456. #ifdef CONFIG_AUTOSUSPEND
  3457. if (!pwrctl->bInternalAutoSuspend)
  3458. #endif
  3459. {
  3460. rtw_stop_drv_threads(padapter);
  3461. if (ATOMIC_READ(&(pcmdpriv->cmdthd_running)) == _TRUE) {
  3462. RTW_ERR("cmd_thread not stop !!\n");
  3463. rtw_warn_on(1);
  3464. }
  3465. }
  3466. /* check the status of IPS */
  3467. if (rtw_hal_check_ips_status(padapter) == _TRUE || pwrctl->rf_pwrstate == rf_off) { /* check HW status and SW state */
  3468. RTW_PRINT("%s: driver in IPS-FWLPS\n", __func__);
  3469. pdbgpriv->dbg_dev_unload_inIPS_cnt++;
  3470. } else
  3471. RTW_PRINT("%s: driver not in IPS\n", __func__);
  3472. if (!rtw_is_surprise_removed(padapter)) {
  3473. #ifdef CONFIG_BT_COEXIST
  3474. rtw_btcoex_IpsNotify(padapter, pwrctl->ips_mode_req);
  3475. #endif
  3476. #ifdef CONFIG_WOWLAN
  3477. if (pwrctl->bSupportRemoteWakeup == _TRUE &&
  3478. pwrctl->wowlan_mode == _TRUE)
  3479. RTW_PRINT("%s bSupportRemoteWakeup==_TRUE do not run rtw_hal_deinit()\n", __FUNCTION__);
  3480. else
  3481. #endif
  3482. {
  3483. /* amy modify 20120221 for power seq is different between driver open and ips */
  3484. rtw_hal_deinit(padapter);
  3485. }
  3486. rtw_set_surprise_removed(padapter);
  3487. }
  3488. padapter->bup = _FALSE;
  3489. RTW_INFO("<== "FUNC_ADPT_FMT"\n", FUNC_ADPT_ARG(padapter));
  3490. } else {
  3491. RTW_INFO("%s: bup==_FALSE\n", __FUNCTION__);
  3492. }
  3493. rtw_cancel_all_timer(padapter);
  3494. }
  3495. int rtw_suspend_free_assoc_resource(_adapter *padapter)
  3496. {
  3497. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3498. #ifdef CONFIG_P2P
  3499. struct wifidirect_info *pwdinfo = &padapter->wdinfo;
  3500. #endif /* CONFIG_P2P */
  3501. RTW_INFO("==> "FUNC_ADPT_FMT" entry....\n", FUNC_ADPT_ARG(padapter));
  3502. if (rtw_chk_roam_flags(padapter, RTW_ROAM_ON_RESUME)) {
  3503. if (check_fwstate(pmlmepriv, WIFI_STATION_STATE)
  3504. && check_fwstate(pmlmepriv, _FW_LINKED)
  3505. #ifdef CONFIG_P2P
  3506. && (rtw_p2p_chk_state(pwdinfo, P2P_STATE_NONE)
  3507. #if defined(CONFIG_IOCTL_CFG80211) && RTW_P2P_GROUP_INTERFACE
  3508. || rtw_p2p_chk_role(pwdinfo, P2P_ROLE_DEVICE)
  3509. #endif
  3510. )
  3511. #endif /* CONFIG_P2P */
  3512. ) {
  3513. RTW_INFO("%s %s(" MAC_FMT "), length:%d assoc_ssid.length:%d\n", __FUNCTION__,
  3514. pmlmepriv->cur_network.network.Ssid.Ssid,
  3515. MAC_ARG(pmlmepriv->cur_network.network.MacAddress),
  3516. pmlmepriv->cur_network.network.Ssid.SsidLength,
  3517. pmlmepriv->assoc_ssid.SsidLength);
  3518. rtw_set_to_roam(padapter, 1);
  3519. }
  3520. }
  3521. if (check_fwstate(pmlmepriv, WIFI_STATION_STATE) && check_fwstate(pmlmepriv, _FW_LINKED)) {
  3522. rtw_disassoc_cmd(padapter, 0, RTW_CMDF_DIRECTLY);
  3523. /* s2-2. indicate disconnect to os */
  3524. rtw_indicate_disconnect(padapter, 0, _FALSE);
  3525. }
  3526. #ifdef CONFIG_AP_MODE
  3527. else if (MLME_IS_AP(padapter) || MLME_IS_MESH(padapter))
  3528. rtw_sta_flush(padapter, _TRUE);
  3529. #endif
  3530. /* s2-3. */
  3531. rtw_free_assoc_resources(padapter, _TRUE);
  3532. /* s2-4. */
  3533. #ifdef CONFIG_AUTOSUSPEND
  3534. if (is_primary_adapter(padapter) && (!adapter_to_pwrctl(padapter)->bInternalAutoSuspend))
  3535. #endif
  3536. rtw_free_network_queue(padapter, _TRUE);
  3537. if (check_fwstate(pmlmepriv, _FW_UNDER_SURVEY)) {
  3538. RTW_PRINT("%s: fw_under_survey\n", __func__);
  3539. rtw_indicate_scan_done(padapter, 1);
  3540. clr_fwstate(pmlmepriv, _FW_UNDER_SURVEY);
  3541. }
  3542. if (check_fwstate(pmlmepriv, _FW_UNDER_LINKING) == _TRUE) {
  3543. RTW_PRINT("%s: fw_under_linking\n", __FUNCTION__);
  3544. rtw_indicate_disconnect(padapter, 0, _FALSE);
  3545. }
  3546. RTW_INFO("<== "FUNC_ADPT_FMT" exit....\n", FUNC_ADPT_ARG(padapter));
  3547. return _SUCCESS;
  3548. }
  3549. #ifdef CONFIG_WOWLAN
  3550. int rtw_suspend_wow(_adapter *padapter)
  3551. {
  3552. u8 ch, bw, offset;
  3553. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3554. struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(padapter);
  3555. struct wowlan_ioctl_param poidparam;
  3556. u8 ps_mode;
  3557. int ret = _SUCCESS;
  3558. RTW_INFO("==> "FUNC_ADPT_FMT" entry....\n", FUNC_ADPT_ARG(padapter));
  3559. RTW_INFO("wowlan_mode: %d\n", pwrpriv->wowlan_mode);
  3560. RTW_INFO("wowlan_pno_enable: %d\n", pwrpriv->wowlan_pno_enable);
  3561. #ifdef CONFIG_P2P_WOWLAN
  3562. RTW_INFO("wowlan_p2p_enable: %d\n", pwrpriv->wowlan_p2p_enable);
  3563. #endif
  3564. if (pwrpriv->wowlan_mode == _TRUE) {
  3565. rtw_mi_netif_stop_queue(padapter);
  3566. #ifdef CONFIG_CONCURRENT_MODE
  3567. rtw_mi_buddy_netif_carrier_off(padapter);
  3568. #endif
  3569. /* 0. Power off LED */
  3570. rtw_led_control(padapter, LED_CTL_POWER_OFF);
  3571. #if defined(CONFIG_SDIO_HCI) || defined(CONFIG_GSPI_HCI)
  3572. /* 2.only for SDIO disable interrupt */
  3573. rtw_intf_stop(padapter);
  3574. /* 2.1 clean interrupt */
  3575. rtw_hal_clear_interrupt(padapter);
  3576. #endif /* CONFIG_SDIO_HCI */
  3577. /* 1. stop thread */
  3578. rtw_set_drv_stopped(padapter); /*for stop thread*/
  3579. rtw_mi_stop_drv_threads(padapter);
  3580. rtw_clr_drv_stopped(padapter); /*for 32k command*/
  3581. /* #ifdef CONFIG_LPS */
  3582. /* rtw_set_ps_mode(padapter, PS_MODE_ACTIVE, 0, 0, "WOWLAN"); */
  3583. /* #endif */
  3584. #ifdef CONFIG_SDIO_HCI
  3585. /* 2.2 free irq */
  3586. #if !(CONFIG_RTW_SDIO_KEEP_IRQ)
  3587. sdio_free_irq(adapter_to_dvobj(padapter));
  3588. #endif
  3589. #endif/*CONFIG_SDIO_HCI*/
  3590. #ifdef CONFIG_RUNTIME_PORT_SWITCH
  3591. if (rtw_port_switch_chk(padapter)) {
  3592. RTW_INFO(" ### PORT SWITCH ###\n");
  3593. rtw_hal_set_hwreg(padapter, HW_VAR_PORT_SWITCH, NULL);
  3594. }
  3595. #endif
  3596. poidparam.subcode = WOWLAN_ENABLE;
  3597. rtw_hal_set_hwreg(padapter, HW_VAR_WOWLAN, (u8 *)&poidparam);
  3598. if (rtw_chk_roam_flags(padapter, RTW_ROAM_ON_RESUME)) {
  3599. if (check_fwstate(pmlmepriv, WIFI_STATION_STATE)
  3600. && check_fwstate(pmlmepriv, _FW_LINKED)) {
  3601. RTW_INFO("%s %s(" MAC_FMT "), length:%d assoc_ssid.length:%d\n", __FUNCTION__,
  3602. pmlmepriv->cur_network.network.Ssid.Ssid,
  3603. MAC_ARG(pmlmepriv->cur_network.network.MacAddress),
  3604. pmlmepriv->cur_network.network.Ssid.SsidLength,
  3605. pmlmepriv->assoc_ssid.SsidLength);
  3606. rtw_set_to_roam(padapter, 0);
  3607. }
  3608. }
  3609. RTW_PRINT("%s: wowmode suspending\n", __func__);
  3610. if (check_fwstate(pmlmepriv, _FW_UNDER_SURVEY) == _TRUE) {
  3611. RTW_PRINT("%s: fw_under_survey\n", __func__);
  3612. rtw_indicate_scan_done(padapter, 1);
  3613. clr_fwstate(pmlmepriv, _FW_UNDER_SURVEY);
  3614. }
  3615. #if 1
  3616. if (rtw_mi_check_status(padapter, MI_LINKED)) {
  3617. ch = rtw_mi_get_union_chan(padapter);
  3618. bw = rtw_mi_get_union_bw(padapter);
  3619. offset = rtw_mi_get_union_offset(padapter);
  3620. RTW_INFO(FUNC_ADPT_FMT" back to linked/linking union - ch:%u, bw:%u, offset:%u\n",
  3621. FUNC_ADPT_ARG(padapter), ch, bw, offset);
  3622. set_channel_bwmode(padapter, ch, offset, bw);
  3623. }
  3624. #else
  3625. if (rtw_mi_get_ch_setting_union(padapter, &ch, &bw, &offset) != 0) {
  3626. RTW_INFO(FUNC_ADPT_FMT" back to linked/linking union - ch:%u, bw:%u, offset:%u\n",
  3627. FUNC_ADPT_ARG(padapter), ch, bw, offset);
  3628. set_channel_bwmode(padapter, ch, offset, bw);
  3629. rtw_mi_update_union_chan_inf(padapter, ch, offset, bw);
  3630. }
  3631. #endif
  3632. #ifdef CONFIG_CONCURRENT_MODE
  3633. rtw_mi_buddy_suspend_free_assoc_resource(padapter);
  3634. #endif
  3635. #ifdef CONFIG_BT_COEXIST
  3636. rtw_btcoex_SuspendNotify(padapter, BTCOEX_SUSPEND_STATE_SUSPEND_KEEP_ANT);
  3637. #endif
  3638. if (pwrpriv->wowlan_pno_enable) {
  3639. RTW_PRINT("%s: pno: %d\n", __func__,
  3640. pwrpriv->wowlan_pno_enable);
  3641. #ifdef CONFIG_FWLPS_IN_IPS
  3642. rtw_set_fw_in_ips_mode(padapter, _TRUE);
  3643. #endif
  3644. }
  3645. #ifdef CONFIG_LPS
  3646. else {
  3647. if (!(pwrpriv->wowlan_dis_lps)) {
  3648. rtw_wow_lps_level_decide(padapter, _TRUE);
  3649. rtw_set_ps_mode(padapter, PS_MODE_MAX, 0, 0, "WOWLAN");
  3650. }
  3651. }
  3652. #endif /* #ifdef CONFIG_LPS */
  3653. } else
  3654. RTW_PRINT("%s: ### ERROR ### wowlan_mode=%d\n", __FUNCTION__, pwrpriv->wowlan_mode);
  3655. RTW_INFO("<== "FUNC_ADPT_FMT" exit....\n", FUNC_ADPT_ARG(padapter));
  3656. return ret;
  3657. }
  3658. #endif /* #ifdef CONFIG_WOWLAN */
  3659. #ifdef CONFIG_AP_WOWLAN
  3660. int rtw_suspend_ap_wow(_adapter *padapter)
  3661. {
  3662. u8 ch, bw, offset;
  3663. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3664. struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(padapter);
  3665. struct wowlan_ioctl_param poidparam;
  3666. u8 ps_mode;
  3667. int ret = _SUCCESS;
  3668. RTW_INFO("==> "FUNC_ADPT_FMT" entry....\n", FUNC_ADPT_ARG(padapter));
  3669. pwrpriv->wowlan_ap_mode = _TRUE;
  3670. RTW_INFO("wowlan_ap_mode: %d\n", pwrpriv->wowlan_ap_mode);
  3671. rtw_mi_netif_stop_queue(padapter);
  3672. /* 0. Power off LED */
  3673. rtw_led_control(padapter, LED_CTL_POWER_OFF);
  3674. #ifdef CONFIG_SDIO_HCI
  3675. /* 2.only for SDIO disable interrupt*/
  3676. rtw_intf_stop(padapter);
  3677. /* 2.1 clean interrupt */
  3678. rtw_hal_clear_interrupt(padapter);
  3679. #endif /* CONFIG_SDIO_HCI */
  3680. /* 1. stop thread */
  3681. rtw_set_drv_stopped(padapter); /*for stop thread*/
  3682. rtw_mi_stop_drv_threads(padapter);
  3683. rtw_clr_drv_stopped(padapter); /*for 32k command*/
  3684. #ifdef CONFIG_SDIO_HCI
  3685. /* 2.2 free irq */
  3686. #if !(CONFIG_RTW_SDIO_KEEP_IRQ)
  3687. sdio_free_irq(adapter_to_dvobj(padapter));
  3688. #endif
  3689. #endif/*CONFIG_SDIO_HCI*/
  3690. #ifdef CONFIG_RUNTIME_PORT_SWITCH
  3691. if (rtw_port_switch_chk(padapter)) {
  3692. RTW_INFO(" ### PORT SWITCH ###\n");
  3693. rtw_hal_set_hwreg(padapter, HW_VAR_PORT_SWITCH, NULL);
  3694. }
  3695. #endif
  3696. poidparam.subcode = WOWLAN_AP_ENABLE;
  3697. rtw_hal_set_hwreg(padapter, HW_VAR_WOWLAN, (u8 *)&poidparam);
  3698. RTW_PRINT("%s: wowmode suspending\n", __func__);
  3699. #if 1
  3700. if (rtw_mi_check_status(padapter, MI_LINKED)) {
  3701. ch = rtw_mi_get_union_chan(padapter);
  3702. bw = rtw_mi_get_union_bw(padapter);
  3703. offset = rtw_mi_get_union_offset(padapter);
  3704. RTW_INFO("back to linked/linking union - ch:%u, bw:%u, offset:%u\n", ch, bw, offset);
  3705. set_channel_bwmode(padapter, ch, offset, bw);
  3706. }
  3707. #else
  3708. if (rtw_mi_get_ch_setting_union(padapter, &ch, &bw, &offset) != 0) {
  3709. RTW_INFO("back to linked/linking union - ch:%u, bw:%u, offset:%u\n", ch, bw, offset);
  3710. set_channel_bwmode(padapter, ch, offset, bw);
  3711. rtw_mi_update_union_chan_inf(padapter, ch, offset, bw);
  3712. }
  3713. #endif
  3714. /*FOR ONE AP - TODO :Multi-AP*/
  3715. {
  3716. int i;
  3717. _adapter *iface;
  3718. struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
  3719. for (i = 0; i < dvobj->iface_nums; i++) {
  3720. iface = dvobj->padapters[i];
  3721. if ((iface) && rtw_is_adapter_up(iface)) {
  3722. if (check_fwstate(&iface->mlmepriv, WIFI_AP_STATE | WIFI_MESH_STATE) == _FALSE)
  3723. rtw_suspend_free_assoc_resource(iface);
  3724. }
  3725. }
  3726. }
  3727. #ifdef CONFIG_BT_COEXIST
  3728. rtw_btcoex_SuspendNotify(padapter, BTCOEX_SUSPEND_STATE_SUSPEND_KEEP_ANT);
  3729. #endif
  3730. #ifdef CONFIG_LPS
  3731. if (!(pwrpriv->wowlan_dis_lps)) {
  3732. rtw_wow_lps_level_decide(padapter, _TRUE);
  3733. rtw_set_ps_mode(padapter, PS_MODE_MIN, 0, 0, "AP-WOWLAN");
  3734. }
  3735. #endif
  3736. RTW_INFO("<== "FUNC_ADPT_FMT" exit....\n", FUNC_ADPT_ARG(padapter));
  3737. return ret;
  3738. }
  3739. #endif /* #ifdef CONFIG_AP_WOWLAN */
  3740. int rtw_suspend_normal(_adapter *padapter)
  3741. {
  3742. int ret = _SUCCESS;
  3743. RTW_INFO("==> "FUNC_ADPT_FMT" entry....\n", FUNC_ADPT_ARG(padapter));
  3744. #ifdef CONFIG_BT_COEXIST
  3745. rtw_btcoex_SuspendNotify(padapter, BTCOEX_SUSPEND_STATE_SUSPEND);
  3746. #endif
  3747. rtw_mi_netif_caroff_qstop(padapter);
  3748. rtw_mi_suspend_free_assoc_resource(padapter);
  3749. rtw_led_control(padapter, LED_CTL_POWER_OFF);
  3750. if ((rtw_hal_check_ips_status(padapter) == _TRUE)
  3751. || (adapter_to_pwrctl(padapter)->rf_pwrstate == rf_off))
  3752. RTW_PRINT("%s: ### ERROR #### driver in IPS ####ERROR###!!!\n", __FUNCTION__);
  3753. #ifdef CONFIG_CONCURRENT_MODE
  3754. rtw_set_drv_stopped(padapter); /*for stop thread*/
  3755. rtw_stop_cmd_thread(padapter);
  3756. rtw_drv_stop_vir_ifaces(adapter_to_dvobj(padapter));
  3757. #endif
  3758. rtw_dev_unload(padapter);
  3759. #ifdef CONFIG_SDIO_HCI
  3760. sdio_deinit(adapter_to_dvobj(padapter));
  3761. #if !(CONFIG_RTW_SDIO_KEEP_IRQ)
  3762. sdio_free_irq(adapter_to_dvobj(padapter));
  3763. #endif
  3764. #endif /*CONFIG_SDIO_HCI*/
  3765. RTW_INFO("<== "FUNC_ADPT_FMT" exit....\n", FUNC_ADPT_ARG(padapter));
  3766. return ret;
  3767. }
  3768. int rtw_suspend_common(_adapter *padapter)
  3769. {
  3770. struct dvobj_priv *dvobj = padapter->dvobj;
  3771. struct debug_priv *pdbgpriv = &dvobj->drv_dbg;
  3772. struct pwrctrl_priv *pwrpriv = dvobj_to_pwrctl(dvobj);
  3773. #ifdef CONFIG_WOWLAN
  3774. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3775. #endif
  3776. int ret = 0;
  3777. systime start_time = rtw_get_current_time();
  3778. RTW_PRINT(" suspend start\n");
  3779. RTW_INFO("==> %s (%s:%d)\n", __FUNCTION__, current->comm, current->pid);
  3780. pdbgpriv->dbg_suspend_cnt++;
  3781. pwrpriv->bInSuspend = _TRUE;
  3782. while (pwrpriv->bips_processing == _TRUE)
  3783. rtw_msleep_os(1);
  3784. #ifdef CONFIG_IOL_READ_EFUSE_MAP
  3785. if (!padapter->bup) {
  3786. u8 bMacPwrCtrlOn = _FALSE;
  3787. rtw_hal_get_hwreg(padapter, HW_VAR_APFM_ON_MAC, &bMacPwrCtrlOn);
  3788. if (bMacPwrCtrlOn)
  3789. rtw_hal_power_off(padapter);
  3790. }
  3791. #endif
  3792. if ((!padapter->bup) || RTW_CANNOT_RUN(padapter)) {
  3793. RTW_INFO("%s bup=%d bDriverStopped=%s bSurpriseRemoved = %s\n", __func__
  3794. , padapter->bup
  3795. , rtw_is_drv_stopped(padapter) ? "True" : "False"
  3796. , rtw_is_surprise_removed(padapter) ? "True" : "False");
  3797. pdbgpriv->dbg_suspend_error_cnt++;
  3798. goto exit;
  3799. }
  3800. rtw_ps_deny(padapter, PS_DENY_SUSPEND);
  3801. rtw_mi_cancel_all_timer(padapter);
  3802. LeaveAllPowerSaveModeDirect(padapter);
  3803. rtw_ps_deny_cancel(padapter, PS_DENY_SUSPEND);
  3804. if (rtw_mi_check_status(padapter, MI_AP_MODE) == _FALSE) {
  3805. #ifdef CONFIG_WOWLAN
  3806. if (check_fwstate(pmlmepriv, _FW_LINKED))
  3807. pwrpriv->wowlan_mode = _TRUE;
  3808. else if (pwrpriv->wowlan_pno_enable == _TRUE)
  3809. pwrpriv->wowlan_mode |= pwrpriv->wowlan_pno_enable;
  3810. #ifdef CONFIG_P2P_WOWLAN
  3811. if (!rtw_p2p_chk_state(&padapter->wdinfo, P2P_STATE_NONE) || P2P_ROLE_DISABLE != padapter->wdinfo.role)
  3812. pwrpriv->wowlan_p2p_mode = _TRUE;
  3813. if (_TRUE == pwrpriv->wowlan_p2p_mode)
  3814. pwrpriv->wowlan_mode |= pwrpriv->wowlan_p2p_mode;
  3815. #endif /* CONFIG_P2P_WOWLAN */
  3816. if (pwrpriv->wowlan_mode == _TRUE)
  3817. rtw_suspend_wow(padapter);
  3818. else
  3819. #endif /* CONFIG_WOWLAN */
  3820. rtw_suspend_normal(padapter);
  3821. } else if (rtw_mi_check_status(padapter, MI_AP_MODE)) {
  3822. #ifdef CONFIG_AP_WOWLAN
  3823. rtw_suspend_ap_wow(padapter);
  3824. #else
  3825. rtw_suspend_normal(padapter);
  3826. #endif /*CONFIG_AP_WOWLAN*/
  3827. }
  3828. RTW_PRINT("rtw suspend success in %d ms\n",
  3829. rtw_get_passing_time_ms(start_time));
  3830. exit:
  3831. RTW_INFO("<=== %s return %d.............. in %dms\n", __FUNCTION__
  3832. , ret, rtw_get_passing_time_ms(start_time));
  3833. return ret;
  3834. }
  3835. #ifdef CONFIG_WOWLAN
  3836. int rtw_resume_process_wow(_adapter *padapter)
  3837. {
  3838. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3839. struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
  3840. struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
  3841. struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(padapter);
  3842. struct dvobj_priv *psdpriv = padapter->dvobj;
  3843. struct debug_priv *pdbgpriv = &psdpriv->drv_dbg;
  3844. struct wowlan_ioctl_param poidparam;
  3845. struct sta_info *psta = NULL;
  3846. int ret = _SUCCESS;
  3847. RTW_INFO("==> "FUNC_ADPT_FMT" entry....\n", FUNC_ADPT_ARG(padapter));
  3848. if (padapter) {
  3849. pwrpriv = adapter_to_pwrctl(padapter);
  3850. } else {
  3851. pdbgpriv->dbg_resume_error_cnt++;
  3852. ret = -1;
  3853. goto exit;
  3854. }
  3855. if (RTW_CANNOT_RUN(padapter)) {
  3856. RTW_INFO("%s pdapter %p bDriverStopped %s bSurpriseRemoved %s\n"
  3857. , __func__, padapter
  3858. , rtw_is_drv_stopped(padapter) ? "True" : "False"
  3859. , rtw_is_surprise_removed(padapter) ? "True" : "False");
  3860. goto exit;
  3861. }
  3862. pwrpriv->wowlan_in_resume = _TRUE;
  3863. #ifdef CONFIG_PNO_SUPPORT
  3864. #ifdef CONFIG_FWLPS_IN_IPS
  3865. if (pwrpriv->wowlan_pno_enable)
  3866. rtw_set_fw_in_ips_mode(padapter, _FALSE);
  3867. #endif /* CONFIG_FWLPS_IN_IPS */
  3868. #endif/* CONFIG_PNO_SUPPORT */
  3869. if (pwrpriv->wowlan_mode == _TRUE) {
  3870. #ifdef CONFIG_LPS
  3871. if (!(pwrpriv->wowlan_dis_lps)) {
  3872. rtw_set_ps_mode(padapter, PS_MODE_ACTIVE, 0, 0, "WOWLAN");
  3873. rtw_wow_lps_level_decide(padapter, _FALSE);
  3874. }
  3875. #endif /* CONFIG_LPS */
  3876. pwrpriv->bFwCurrentInPSMode = _FALSE;
  3877. #if defined(CONFIG_SDIO_HCI) || defined(CONFIG_PCI_HCI)
  3878. rtw_mi_intf_stop(padapter);
  3879. rtw_hal_clear_interrupt(padapter);
  3880. #endif
  3881. #ifdef CONFIG_SDIO_HCI
  3882. #if !(CONFIG_RTW_SDIO_KEEP_IRQ)
  3883. if (sdio_alloc_irq(adapter_to_dvobj(padapter)) != _SUCCESS) {
  3884. ret = -1;
  3885. goto exit;
  3886. }
  3887. #endif
  3888. #endif/*CONFIG_SDIO_HCI*/
  3889. /* Disable WOW, set H2C command */
  3890. poidparam.subcode = WOWLAN_DISABLE;
  3891. rtw_hal_set_hwreg(padapter, HW_VAR_WOWLAN, (u8 *)&poidparam);
  3892. #ifdef CONFIG_CONCURRENT_MODE
  3893. rtw_mi_buddy_reset_drv_sw(padapter);
  3894. #endif
  3895. psta = rtw_get_stainfo(&padapter->stapriv, get_bssid(&padapter->mlmepriv));
  3896. if (psta)
  3897. set_sta_rate(padapter, psta);
  3898. rtw_clr_drv_stopped(padapter);
  3899. RTW_INFO("%s: wowmode resuming, DriverStopped:%s\n", __func__, rtw_is_drv_stopped(padapter) ? "True" : "False");
  3900. rtw_mi_start_drv_threads(padapter);
  3901. rtw_mi_intf_start(padapter);
  3902. #ifdef CONFIG_CONCURRENT_MODE
  3903. rtw_mi_buddy_netif_carrier_on(padapter);
  3904. #endif
  3905. /* start netif queue */
  3906. rtw_mi_netif_wake_queue(padapter);
  3907. } else
  3908. RTW_PRINT("%s: ### ERROR ### wowlan_mode=%d\n", __FUNCTION__, pwrpriv->wowlan_mode);
  3909. if (padapter->pid[1] != 0) {
  3910. RTW_INFO("pid[1]:%d\n", padapter->pid[1]);
  3911. rtw_signal_process(padapter->pid[1], SIGUSR2);
  3912. }
  3913. if (rtw_chk_roam_flags(padapter, RTW_ROAM_ON_RESUME)) {
  3914. if (pwrpriv->wowlan_wake_reason == FW_DECISION_DISCONNECT ||
  3915. pwrpriv->wowlan_wake_reason == RX_DISASSOC||
  3916. pwrpriv->wowlan_wake_reason == RX_DEAUTH) {
  3917. RTW_INFO("%s: disconnect reason: %02x\n", __func__,
  3918. pwrpriv->wowlan_wake_reason);
  3919. rtw_indicate_disconnect(padapter, 0, _FALSE);
  3920. rtw_sta_media_status_rpt(padapter,
  3921. rtw_get_stainfo(&padapter->stapriv,
  3922. get_bssid(&padapter->mlmepriv)), 0);
  3923. rtw_free_assoc_resources(padapter, _TRUE);
  3924. pmlmeinfo->state = WIFI_FW_NULL_STATE;
  3925. } else {
  3926. RTW_INFO("%s: do roaming\n", __func__);
  3927. rtw_roaming(padapter, NULL);
  3928. }
  3929. }
  3930. if (pwrpriv->wowlan_mode == _TRUE) {
  3931. pwrpriv->bips_processing = _FALSE;
  3932. _set_timer(&adapter_to_dvobj(padapter)->dynamic_chk_timer, 2000);
  3933. #ifndef CONFIG_IPS_CHECK_IN_WD
  3934. rtw_set_pwr_state_check_timer(pwrpriv);
  3935. #endif
  3936. } else
  3937. RTW_PRINT("do not reset timer\n");
  3938. pwrpriv->wowlan_mode = _FALSE;
  3939. /* Power On LED */
  3940. #ifdef CONFIG_RTW_SW_LED
  3941. if (pwrpriv->wowlan_wake_reason == RX_DISASSOC||
  3942. pwrpriv->wowlan_wake_reason == RX_DEAUTH||
  3943. pwrpriv->wowlan_wake_reason == FW_DECISION_DISCONNECT)
  3944. rtw_led_control(padapter, LED_CTL_NO_LINK);
  3945. else
  3946. rtw_led_control(padapter, LED_CTL_LINK);
  3947. #endif
  3948. /* clean driver side wake up reason. */
  3949. pwrpriv->wowlan_last_wake_reason = pwrpriv->wowlan_wake_reason;
  3950. pwrpriv->wowlan_wake_reason = 0;
  3951. #ifdef CONFIG_BT_COEXIST
  3952. rtw_btcoex_SuspendNotify(padapter, BTCOEX_SUSPEND_STATE_RESUME);
  3953. #endif /* CONFIG_BT_COEXIST */
  3954. exit:
  3955. RTW_INFO("<== "FUNC_ADPT_FMT" exit....\n", FUNC_ADPT_ARG(padapter));
  3956. return ret;
  3957. }
  3958. #endif /* #ifdef CONFIG_WOWLAN */
  3959. #ifdef CONFIG_AP_WOWLAN
  3960. int rtw_resume_process_ap_wow(_adapter *padapter)
  3961. {
  3962. struct mlme_priv *pmlmepriv = &padapter->mlmepriv;
  3963. struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(padapter);
  3964. struct dvobj_priv *psdpriv = padapter->dvobj;
  3965. struct debug_priv *pdbgpriv = &psdpriv->drv_dbg;
  3966. struct wowlan_ioctl_param poidparam;
  3967. struct sta_info *psta = NULL;
  3968. int ret = _SUCCESS;
  3969. u8 ch, bw, offset;
  3970. RTW_INFO("==> "FUNC_ADPT_FMT" entry....\n", FUNC_ADPT_ARG(padapter));
  3971. if (padapter) {
  3972. pwrpriv = adapter_to_pwrctl(padapter);
  3973. } else {
  3974. pdbgpriv->dbg_resume_error_cnt++;
  3975. ret = -1;
  3976. goto exit;
  3977. }
  3978. #ifdef CONFIG_LPS
  3979. if (!(pwrpriv->wowlan_dis_lps)) {
  3980. rtw_set_ps_mode(padapter, PS_MODE_ACTIVE, 0, 0, "AP-WOWLAN");
  3981. rtw_wow_lps_level_decide(padapter, _FALSE);
  3982. }
  3983. #endif /* CONFIG_LPS */
  3984. pwrpriv->bFwCurrentInPSMode = _FALSE;
  3985. rtw_hal_disable_interrupt(padapter);
  3986. rtw_hal_clear_interrupt(padapter);
  3987. #ifdef CONFIG_SDIO_HCI
  3988. #if !(CONFIG_RTW_SDIO_KEEP_IRQ)
  3989. if (sdio_alloc_irq(adapter_to_dvobj(padapter)) != _SUCCESS) {
  3990. ret = -1;
  3991. goto exit;
  3992. }
  3993. #endif
  3994. #endif/*CONFIG_SDIO_HCI*/
  3995. /* Disable WOW, set H2C command */
  3996. poidparam.subcode = WOWLAN_AP_DISABLE;
  3997. rtw_hal_set_hwreg(padapter, HW_VAR_WOWLAN, (u8 *)&poidparam);
  3998. pwrpriv->wowlan_ap_mode = _FALSE;
  3999. rtw_clr_drv_stopped(padapter);
  4000. RTW_INFO("%s: wowmode resuming, DriverStopped:%s\n", __func__, rtw_is_drv_stopped(padapter) ? "True" : "False");
  4001. rtw_mi_start_drv_threads(padapter);
  4002. #if 1
  4003. if (rtw_mi_check_status(padapter, MI_LINKED)) {
  4004. ch = rtw_mi_get_union_chan(padapter);
  4005. bw = rtw_mi_get_union_bw(padapter);
  4006. offset = rtw_mi_get_union_offset(padapter);
  4007. RTW_INFO(FUNC_ADPT_FMT" back to linked/linking union - ch:%u, bw:%u, offset:%u\n", FUNC_ADPT_ARG(padapter), ch, bw, offset);
  4008. set_channel_bwmode(padapter, ch, offset, bw);
  4009. }
  4010. #else
  4011. if (rtw_mi_get_ch_setting_union(padapter, &ch, &bw, &offset) != 0) {
  4012. RTW_INFO(FUNC_ADPT_FMT" back to linked/linking union - ch:%u, bw:%u, offset:%u\n", FUNC_ADPT_ARG(padapter), ch, bw, offset);
  4013. set_channel_bwmode(padapter, ch, offset, bw);
  4014. rtw_mi_update_union_chan_inf(padapter, ch, offset, bw);
  4015. }
  4016. #endif
  4017. /*FOR ONE AP - TODO :Multi-AP*/
  4018. {
  4019. int i;
  4020. _adapter *iface;
  4021. struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
  4022. for (i = 0; i < dvobj->iface_nums; i++) {
  4023. iface = dvobj->padapters[i];
  4024. if ((iface) && rtw_is_adapter_up(iface)) {
  4025. if (check_fwstate(&iface->mlmepriv, WIFI_AP_STATE | WIFI_MESH_STATE | _FW_LINKED))
  4026. rtw_reset_drv_sw(iface);
  4027. }
  4028. }
  4029. }
  4030. rtw_mi_intf_start(padapter);
  4031. /* start netif queue */
  4032. rtw_mi_netif_wake_queue(padapter);
  4033. if (padapter->pid[1] != 0) {
  4034. RTW_INFO("pid[1]:%d\n", padapter->pid[1]);
  4035. rtw_signal_process(padapter->pid[1], SIGUSR2);
  4036. }
  4037. #ifdef CONFIG_RESUME_IN_WORKQUEUE
  4038. /* rtw_unlock_suspend(); */
  4039. #endif /* CONFIG_RESUME_IN_WORKQUEUE */
  4040. pwrpriv->bips_processing = _FALSE;
  4041. _set_timer(&adapter_to_dvobj(padapter)->dynamic_chk_timer, 2000);
  4042. #ifndef CONFIG_IPS_CHECK_IN_WD
  4043. rtw_set_pwr_state_check_timer(pwrpriv);
  4044. #endif
  4045. /* clean driver side wake up reason. */
  4046. pwrpriv->wowlan_wake_reason = 0;
  4047. #ifdef CONFIG_BT_COEXIST
  4048. rtw_btcoex_SuspendNotify(padapter, BTCOEX_SUSPEND_STATE_RESUME);
  4049. #endif /* CONFIG_BT_COEXIST */
  4050. /* Power On LED */
  4051. #ifdef CONFIG_RTW_SW_LED
  4052. rtw_led_control(padapter, LED_CTL_LINK);
  4053. #endif
  4054. exit:
  4055. RTW_INFO("<== "FUNC_ADPT_FMT" exit....\n", FUNC_ADPT_ARG(padapter));
  4056. return ret;
  4057. }
  4058. #endif /* #ifdef CONFIG_APWOWLAN */
  4059. void rtw_mi_resume_process_normal(_adapter *padapter)
  4060. {
  4061. int i;
  4062. _adapter *iface;
  4063. struct mlme_priv *pmlmepriv;
  4064. struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
  4065. for (i = 0; i < dvobj->iface_nums; i++) {
  4066. iface = dvobj->padapters[i];
  4067. if ((iface) && rtw_is_adapter_up(iface)) {
  4068. pmlmepriv = &iface->mlmepriv;
  4069. if (check_fwstate(pmlmepriv, WIFI_STATION_STATE)) {
  4070. RTW_INFO(FUNC_ADPT_FMT" fwstate:0x%08x - WIFI_STATION_STATE\n", FUNC_ADPT_ARG(iface), get_fwstate(pmlmepriv));
  4071. if (rtw_chk_roam_flags(iface, RTW_ROAM_ON_RESUME))
  4072. rtw_roaming(iface, NULL);
  4073. } else if (MLME_IS_AP(iface) || MLME_IS_MESH(iface)) {
  4074. RTW_INFO(FUNC_ADPT_FMT" %s\n", FUNC_ADPT_ARG(iface), MLME_IS_AP(iface) ? "AP" : "MESH");
  4075. rtw_ap_restore_network(iface);
  4076. } else if (check_fwstate(pmlmepriv, WIFI_ADHOC_STATE))
  4077. RTW_INFO(FUNC_ADPT_FMT" fwstate:0x%08x - WIFI_ADHOC_STATE\n", FUNC_ADPT_ARG(iface), get_fwstate(pmlmepriv));
  4078. else
  4079. RTW_INFO(FUNC_ADPT_FMT" fwstate:0x%08x - ???\n", FUNC_ADPT_ARG(iface), get_fwstate(pmlmepriv));
  4080. }
  4081. }
  4082. }
  4083. int rtw_resume_process_normal(_adapter *padapter)
  4084. {
  4085. struct net_device *pnetdev;
  4086. struct pwrctrl_priv *pwrpriv;
  4087. struct dvobj_priv *psdpriv;
  4088. struct debug_priv *pdbgpriv;
  4089. int ret = _SUCCESS;
  4090. if (!padapter) {
  4091. ret = -1;
  4092. goto exit;
  4093. }
  4094. pnetdev = padapter->pnetdev;
  4095. pwrpriv = adapter_to_pwrctl(padapter);
  4096. psdpriv = padapter->dvobj;
  4097. pdbgpriv = &psdpriv->drv_dbg;
  4098. RTW_INFO("==> "FUNC_ADPT_FMT" entry....\n", FUNC_ADPT_ARG(padapter));
  4099. #ifdef CONFIG_SDIO_HCI
  4100. /* interface init */
  4101. if (sdio_init(adapter_to_dvobj(padapter)) != _SUCCESS) {
  4102. ret = -1;
  4103. goto exit;
  4104. }
  4105. #endif/*CONFIG_SDIO_HCI*/
  4106. rtw_clr_surprise_removed(padapter);
  4107. rtw_hal_disable_interrupt(padapter);
  4108. #ifdef CONFIG_SDIO_HCI
  4109. #if !(CONFIG_RTW_SDIO_KEEP_IRQ)
  4110. if (sdio_alloc_irq(adapter_to_dvobj(padapter)) != _SUCCESS) {
  4111. ret = -1;
  4112. goto exit;
  4113. }
  4114. #endif
  4115. #endif/*CONFIG_SDIO_HCI*/
  4116. rtw_mi_reset_drv_sw(padapter);
  4117. pwrpriv->bkeepfwalive = _FALSE;
  4118. RTW_INFO("bkeepfwalive(%x)\n", pwrpriv->bkeepfwalive);
  4119. if (pm_netdev_open(pnetdev, _TRUE) != 0) {
  4120. ret = -1;
  4121. pdbgpriv->dbg_resume_error_cnt++;
  4122. goto exit;
  4123. }
  4124. rtw_mi_netif_caron_qstart(padapter);
  4125. if (padapter->pid[1] != 0) {
  4126. RTW_INFO("pid[1]:%d\n", padapter->pid[1]);
  4127. rtw_signal_process(padapter->pid[1], SIGUSR2);
  4128. }
  4129. #ifdef CONFIG_BT_COEXIST
  4130. rtw_btcoex_SuspendNotify(padapter, BTCOEX_SUSPEND_STATE_RESUME);
  4131. #endif /* CONFIG_BT_COEXIST */
  4132. rtw_mi_resume_process_normal(padapter);
  4133. #ifdef CONFIG_RESUME_IN_WORKQUEUE
  4134. /* rtw_unlock_suspend(); */
  4135. #endif /* CONFIG_RESUME_IN_WORKQUEUE */
  4136. RTW_INFO("<== "FUNC_ADPT_FMT" exit....\n", FUNC_ADPT_ARG(padapter));
  4137. exit:
  4138. return ret;
  4139. }
  4140. int rtw_resume_common(_adapter *padapter)
  4141. {
  4142. int ret = 0;
  4143. systime start_time = rtw_get_current_time();
  4144. struct pwrctrl_priv *pwrpriv = adapter_to_pwrctl(padapter);
  4145. if (pwrpriv->bInSuspend == _FALSE)
  4146. return 0;
  4147. RTW_PRINT("resume start\n");
  4148. RTW_INFO("==> %s (%s:%d)\n", __FUNCTION__, current->comm, current->pid);
  4149. if (rtw_mi_check_status(padapter, WIFI_AP_STATE) == _FALSE) {
  4150. #ifdef CONFIG_WOWLAN
  4151. if (pwrpriv->wowlan_mode == _TRUE)
  4152. rtw_resume_process_wow(padapter);
  4153. else
  4154. #endif
  4155. rtw_resume_process_normal(padapter);
  4156. } else if (rtw_mi_check_status(padapter, WIFI_AP_STATE)) {
  4157. #ifdef CONFIG_AP_WOWLAN
  4158. rtw_resume_process_ap_wow(padapter);
  4159. #else
  4160. rtw_resume_process_normal(padapter);
  4161. #endif /* CONFIG_AP_WOWLAN */
  4162. }
  4163. if (pwrpriv) {
  4164. pwrpriv->bInSuspend = _FALSE;
  4165. pwrpriv->wowlan_in_resume = _FALSE;
  4166. }
  4167. RTW_PRINT("%s:%d in %d ms\n", __FUNCTION__ , ret,
  4168. rtw_get_passing_time_ms(start_time));
  4169. return ret;
  4170. }
  4171. #ifdef CONFIG_GPIO_API
  4172. u8 rtw_get_gpio(struct net_device *netdev, u8 gpio_num)
  4173. {
  4174. _adapter *adapter = (_adapter *)rtw_netdev_priv(netdev);
  4175. return rtw_hal_get_gpio(adapter, gpio_num);
  4176. }
  4177. EXPORT_SYMBOL(rtw_get_gpio);
  4178. int rtw_set_gpio_output_value(struct net_device *netdev, u8 gpio_num, bool isHigh)
  4179. {
  4180. u8 direction = 0;
  4181. u8 res = -1;
  4182. _adapter *adapter = (_adapter *)rtw_netdev_priv(netdev);
  4183. return rtw_hal_set_gpio_output_value(adapter, gpio_num, isHigh);
  4184. }
  4185. EXPORT_SYMBOL(rtw_set_gpio_output_value);
  4186. int rtw_config_gpio(struct net_device *netdev, u8 gpio_num, bool isOutput)
  4187. {
  4188. _adapter *adapter = (_adapter *)rtw_netdev_priv(netdev);
  4189. return rtw_hal_config_gpio(adapter, gpio_num, isOutput);
  4190. }
  4191. EXPORT_SYMBOL(rtw_config_gpio);
  4192. int rtw_register_gpio_interrupt(struct net_device *netdev, int gpio_num, void(*callback)(u8 level))
  4193. {
  4194. _adapter *adapter = (_adapter *)rtw_netdev_priv(netdev);
  4195. return rtw_hal_register_gpio_interrupt(adapter, gpio_num, callback);
  4196. }
  4197. EXPORT_SYMBOL(rtw_register_gpio_interrupt);
  4198. int rtw_disable_gpio_interrupt(struct net_device *netdev, int gpio_num)
  4199. {
  4200. _adapter *adapter = (_adapter *)rtw_netdev_priv(netdev);
  4201. return rtw_hal_disable_gpio_interrupt(adapter, gpio_num);
  4202. }
  4203. EXPORT_SYMBOL(rtw_disable_gpio_interrupt);
  4204. #endif /* #ifdef CONFIG_GPIO_API */
  4205. #ifdef CONFIG_APPEND_VENDOR_IE_ENABLE
  4206. int rtw_vendor_ie_get_api(struct net_device *dev, int ie_num, char *extra,
  4207. u16 extra_len)
  4208. {
  4209. int ret = 0;
  4210. ret = rtw_vendor_ie_get_raw_data(dev, ie_num, extra, extra_len);
  4211. return ret;
  4212. }
  4213. EXPORT_SYMBOL(rtw_vendor_ie_get_api);
  4214. int rtw_vendor_ie_set_api(struct net_device *dev, char *extra)
  4215. {
  4216. return rtw_vendor_ie_set(dev, NULL, NULL, extra);
  4217. }
  4218. EXPORT_SYMBOL(rtw_vendor_ie_set_api);
  4219. #endif