xref: /linux/drivers/net/wireless/realtek/rtlwifi/rtl8192cu/hw.c (revision fcc8487d477a3452a1d0ccbdd4c5e0e1e3cb8bed)
1 /******************************************************************************
2  *
3  * Copyright(c) 2009-2012  Realtek Corporation. All rights reserved.
4  *
5  * This program is free software; you can redistribute it and/or modify it
6  * under the terms of version 2 of the GNU General Public License as
7  * published by the Free Software Foundation.
8  *
9  * This program is distributed in the hope that it will be useful, but WITHOUT
10  * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
11  * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License for
12  * more details.
13  *
14  * The full GNU General Public License is included in this distribution in the
15  * file called LICENSE.
16  *
17  * Contact Information:
18  * wlanfae <wlanfae@realtek.com>
19  * Realtek Corporation, No. 2, Innovation Road II, Hsinchu Science Park,
20  * Hsinchu 300, Taiwan.
21  *
22  * Larry Finger <Larry.Finger@lwfinger.net>
23  *
24  *****************************************************************************/
25 
26 #include "../wifi.h"
27 #include "../efuse.h"
28 #include "../base.h"
29 #include "../cam.h"
30 #include "../ps.h"
31 #include "../usb.h"
32 #include "reg.h"
33 #include "def.h"
34 #include "phy.h"
35 #include "../rtl8192c/phy_common.h"
36 #include "mac.h"
37 #include "dm.h"
38 #include "../rtl8192c/dm_common.h"
39 #include "../rtl8192c/fw_common.h"
40 #include "hw.h"
41 #include "../rtl8192ce/hw.h"
42 #include "trx.h"
43 #include "led.h"
44 #include "table.h"
45 
46 static void _rtl92cu_phy_param_tab_init(struct ieee80211_hw *hw)
47 {
48 	struct rtl_priv *rtlpriv = rtl_priv(hw);
49 	struct rtl_phy *rtlphy = &(rtlpriv->phy);
50 	struct rtl_efuse *rtlefuse = rtl_efuse(rtlpriv);
51 
52 	rtlphy->hwparam_tables[MAC_REG].length = RTL8192CUMAC_2T_ARRAYLENGTH;
53 	rtlphy->hwparam_tables[MAC_REG].pdata = RTL8192CUMAC_2T_ARRAY;
54 	if (IS_HIGHT_PA(rtlefuse->board_type)) {
55 		rtlphy->hwparam_tables[PHY_REG_PG].length =
56 			RTL8192CUPHY_REG_Array_PG_HPLength;
57 		rtlphy->hwparam_tables[PHY_REG_PG].pdata =
58 			RTL8192CUPHY_REG_Array_PG_HP;
59 	} else {
60 		rtlphy->hwparam_tables[PHY_REG_PG].length =
61 			RTL8192CUPHY_REG_ARRAY_PGLENGTH;
62 		rtlphy->hwparam_tables[PHY_REG_PG].pdata =
63 			RTL8192CUPHY_REG_ARRAY_PG;
64 	}
65 	/* 2T */
66 	rtlphy->hwparam_tables[PHY_REG_2T].length =
67 			RTL8192CUPHY_REG_2TARRAY_LENGTH;
68 	rtlphy->hwparam_tables[PHY_REG_2T].pdata =
69 			RTL8192CUPHY_REG_2TARRAY;
70 	rtlphy->hwparam_tables[RADIOA_2T].length =
71 			RTL8192CURADIOA_2TARRAYLENGTH;
72 	rtlphy->hwparam_tables[RADIOA_2T].pdata =
73 			RTL8192CURADIOA_2TARRAY;
74 	rtlphy->hwparam_tables[RADIOB_2T].length =
75 			RTL8192CURADIOB_2TARRAYLENGTH;
76 	rtlphy->hwparam_tables[RADIOB_2T].pdata =
77 			RTL8192CU_RADIOB_2TARRAY;
78 	rtlphy->hwparam_tables[AGCTAB_2T].length =
79 			RTL8192CUAGCTAB_2TARRAYLENGTH;
80 	rtlphy->hwparam_tables[AGCTAB_2T].pdata =
81 			RTL8192CUAGCTAB_2TARRAY;
82 	/* 1T */
83 	if (IS_HIGHT_PA(rtlefuse->board_type)) {
84 		rtlphy->hwparam_tables[PHY_REG_1T].length =
85 			RTL8192CUPHY_REG_1T_HPArrayLength;
86 		rtlphy->hwparam_tables[PHY_REG_1T].pdata =
87 			RTL8192CUPHY_REG_1T_HPArray;
88 		rtlphy->hwparam_tables[RADIOA_1T].length =
89 			RTL8192CURadioA_1T_HPArrayLength;
90 		rtlphy->hwparam_tables[RADIOA_1T].pdata =
91 			RTL8192CURadioA_1T_HPArray;
92 		rtlphy->hwparam_tables[RADIOB_1T].length =
93 			RTL8192CURADIOB_1TARRAYLENGTH;
94 		rtlphy->hwparam_tables[RADIOB_1T].pdata =
95 			RTL8192CU_RADIOB_1TARRAY;
96 		rtlphy->hwparam_tables[AGCTAB_1T].length =
97 			RTL8192CUAGCTAB_1T_HPArrayLength;
98 		rtlphy->hwparam_tables[AGCTAB_1T].pdata =
99 			Rtl8192CUAGCTAB_1T_HPArray;
100 	} else {
101 		rtlphy->hwparam_tables[PHY_REG_1T].length =
102 			 RTL8192CUPHY_REG_1TARRAY_LENGTH;
103 		rtlphy->hwparam_tables[PHY_REG_1T].pdata =
104 			RTL8192CUPHY_REG_1TARRAY;
105 		rtlphy->hwparam_tables[RADIOA_1T].length =
106 			RTL8192CURADIOA_1TARRAYLENGTH;
107 		rtlphy->hwparam_tables[RADIOA_1T].pdata =
108 			RTL8192CU_RADIOA_1TARRAY;
109 		rtlphy->hwparam_tables[RADIOB_1T].length =
110 			RTL8192CURADIOB_1TARRAYLENGTH;
111 		rtlphy->hwparam_tables[RADIOB_1T].pdata =
112 			RTL8192CU_RADIOB_1TARRAY;
113 		rtlphy->hwparam_tables[AGCTAB_1T].length =
114 			RTL8192CUAGCTAB_1TARRAYLENGTH;
115 		rtlphy->hwparam_tables[AGCTAB_1T].pdata =
116 			RTL8192CUAGCTAB_1TARRAY;
117 	}
118 }
119 
120 static void _rtl92cu_read_txpower_info_from_hwpg(struct ieee80211_hw *hw,
121 						 bool autoload_fail,
122 						 u8 *hwinfo)
123 {
124 	struct rtl_priv *rtlpriv = rtl_priv(hw);
125 	struct rtl_efuse *rtlefuse = rtl_efuse(rtl_priv(hw));
126 	u8 rf_path, index, tempval;
127 	u16 i;
128 
129 	for (rf_path = 0; rf_path < 2; rf_path++) {
130 		for (i = 0; i < 3; i++) {
131 			if (!autoload_fail) {
132 				rtlefuse->
133 				    eeprom_chnlarea_txpwr_cck[rf_path][i] =
134 				    hwinfo[EEPROM_TXPOWERCCK + rf_path * 3 + i];
135 				rtlefuse->
136 				    eeprom_chnlarea_txpwr_ht40_1s[rf_path][i] =
137 				    hwinfo[EEPROM_TXPOWERHT40_1S + rf_path * 3 +
138 					   i];
139 			} else {
140 				rtlefuse->
141 				    eeprom_chnlarea_txpwr_cck[rf_path][i] =
142 				    EEPROM_DEFAULT_TXPOWERLEVEL;
143 				rtlefuse->
144 				    eeprom_chnlarea_txpwr_ht40_1s[rf_path][i] =
145 				    EEPROM_DEFAULT_TXPOWERLEVEL;
146 			}
147 		}
148 	}
149 	for (i = 0; i < 3; i++) {
150 		if (!autoload_fail)
151 			tempval = hwinfo[EEPROM_TXPOWERHT40_2SDIFF + i];
152 		else
153 			tempval = EEPROM_DEFAULT_HT40_2SDIFF;
154 		rtlefuse->eprom_chnl_txpwr_ht40_2sdf[RF90_PATH_A][i] =
155 		    (tempval & 0xf);
156 		rtlefuse->eprom_chnl_txpwr_ht40_2sdf[RF90_PATH_B][i] =
157 		    ((tempval & 0xf0) >> 4);
158 	}
159 	for (rf_path = 0; rf_path < 2; rf_path++)
160 		for (i = 0; i < 3; i++)
161 			RTPRINT(rtlpriv, FINIT, INIT_EEPROM,
162 				"RF(%d) EEPROM CCK Area(%d) = 0x%x\n",
163 				rf_path, i,
164 				rtlefuse->
165 				eeprom_chnlarea_txpwr_cck[rf_path][i]);
166 	for (rf_path = 0; rf_path < 2; rf_path++)
167 		for (i = 0; i < 3; i++)
168 			RTPRINT(rtlpriv, FINIT, INIT_EEPROM,
169 				"RF(%d) EEPROM HT40 1S Area(%d) = 0x%x\n",
170 				rf_path, i,
171 				rtlefuse->
172 				eeprom_chnlarea_txpwr_ht40_1s[rf_path][i]);
173 	for (rf_path = 0; rf_path < 2; rf_path++)
174 		for (i = 0; i < 3; i++)
175 			RTPRINT(rtlpriv, FINIT, INIT_EEPROM,
176 				"RF(%d) EEPROM HT40 2S Diff Area(%d) = 0x%x\n",
177 				rf_path, i,
178 				rtlefuse->
179 				eprom_chnl_txpwr_ht40_2sdf[rf_path][i]);
180 	for (rf_path = 0; rf_path < 2; rf_path++) {
181 		for (i = 0; i < 14; i++) {
182 			index = rtl92c_get_chnl_group((u8)i);
183 			rtlefuse->txpwrlevel_cck[rf_path][i] =
184 			    rtlefuse->eeprom_chnlarea_txpwr_cck[rf_path][index];
185 			rtlefuse->txpwrlevel_ht40_1s[rf_path][i] =
186 			    rtlefuse->
187 			    eeprom_chnlarea_txpwr_ht40_1s[rf_path][index];
188 			if ((rtlefuse->
189 			     eeprom_chnlarea_txpwr_ht40_1s[rf_path][index] -
190 			     rtlefuse->
191 			     eprom_chnl_txpwr_ht40_2sdf[rf_path][index])
192 			    > 0) {
193 				rtlefuse->txpwrlevel_ht40_2s[rf_path][i] =
194 				    rtlefuse->
195 				    eeprom_chnlarea_txpwr_ht40_1s[rf_path]
196 				    [index] - rtlefuse->
197 				    eprom_chnl_txpwr_ht40_2sdf[rf_path]
198 				    [index];
199 			} else {
200 				rtlefuse->txpwrlevel_ht40_2s[rf_path][i] = 0;
201 			}
202 		}
203 		for (i = 0; i < 14; i++) {
204 			RTPRINT(rtlpriv, FINIT, INIT_TXPOWER,
205 				"RF(%d)-Ch(%d) [CCK / HT40_1S / HT40_2S] = [0x%x / 0x%x / 0x%x]\n", rf_path, i,
206 				rtlefuse->txpwrlevel_cck[rf_path][i],
207 				rtlefuse->txpwrlevel_ht40_1s[rf_path][i],
208 				rtlefuse->txpwrlevel_ht40_2s[rf_path][i]);
209 		}
210 	}
211 	for (i = 0; i < 3; i++) {
212 		if (!autoload_fail) {
213 			rtlefuse->eeprom_pwrlimit_ht40[i] =
214 			    hwinfo[EEPROM_TXPWR_GROUP + i];
215 			rtlefuse->eeprom_pwrlimit_ht20[i] =
216 			    hwinfo[EEPROM_TXPWR_GROUP + 3 + i];
217 		} else {
218 			rtlefuse->eeprom_pwrlimit_ht40[i] = 0;
219 			rtlefuse->eeprom_pwrlimit_ht20[i] = 0;
220 		}
221 	}
222 	for (rf_path = 0; rf_path < 2; rf_path++) {
223 		for (i = 0; i < 14; i++) {
224 			index = rtl92c_get_chnl_group((u8)i);
225 			if (rf_path == RF90_PATH_A) {
226 				rtlefuse->pwrgroup_ht20[rf_path][i] =
227 				    (rtlefuse->eeprom_pwrlimit_ht20[index]
228 				     & 0xf);
229 				rtlefuse->pwrgroup_ht40[rf_path][i] =
230 				    (rtlefuse->eeprom_pwrlimit_ht40[index]
231 				     & 0xf);
232 			} else if (rf_path == RF90_PATH_B) {
233 				rtlefuse->pwrgroup_ht20[rf_path][i] =
234 				    ((rtlefuse->eeprom_pwrlimit_ht20[index]
235 				      & 0xf0) >> 4);
236 				rtlefuse->pwrgroup_ht40[rf_path][i] =
237 				    ((rtlefuse->eeprom_pwrlimit_ht40[index]
238 				      & 0xf0) >> 4);
239 			}
240 			RTPRINT(rtlpriv, FINIT, INIT_TXPOWER,
241 				"RF-%d pwrgroup_ht20[%d] = 0x%x\n",
242 				rf_path, i,
243 				rtlefuse->pwrgroup_ht20[rf_path][i]);
244 			RTPRINT(rtlpriv, FINIT, INIT_TXPOWER,
245 				"RF-%d pwrgroup_ht40[%d] = 0x%x\n",
246 				rf_path, i,
247 				rtlefuse->pwrgroup_ht40[rf_path][i]);
248 		}
249 	}
250 	for (i = 0; i < 14; i++) {
251 		index = rtl92c_get_chnl_group((u8)i);
252 		if (!autoload_fail)
253 			tempval = hwinfo[EEPROM_TXPOWERHT20DIFF + index];
254 		else
255 			tempval = EEPROM_DEFAULT_HT20_DIFF;
256 		rtlefuse->txpwr_ht20diff[RF90_PATH_A][i] = (tempval & 0xF);
257 		rtlefuse->txpwr_ht20diff[RF90_PATH_B][i] =
258 		    ((tempval >> 4) & 0xF);
259 		if (rtlefuse->txpwr_ht20diff[RF90_PATH_A][i] & BIT(3))
260 			rtlefuse->txpwr_ht20diff[RF90_PATH_A][i] |= 0xF0;
261 		if (rtlefuse->txpwr_ht20diff[RF90_PATH_B][i] & BIT(3))
262 			rtlefuse->txpwr_ht20diff[RF90_PATH_B][i] |= 0xF0;
263 		index = rtl92c_get_chnl_group((u8)i);
264 		if (!autoload_fail)
265 			tempval = hwinfo[EEPROM_TXPOWER_OFDMDIFF + index];
266 		else
267 			tempval = EEPROM_DEFAULT_LEGACYHTTXPOWERDIFF;
268 		rtlefuse->txpwr_legacyhtdiff[RF90_PATH_A][i] = (tempval & 0xF);
269 		rtlefuse->txpwr_legacyhtdiff[RF90_PATH_B][i] =
270 		    ((tempval >> 4) & 0xF);
271 	}
272 	rtlefuse->legacy_ht_txpowerdiff =
273 	    rtlefuse->txpwr_legacyhtdiff[RF90_PATH_A][7];
274 	for (i = 0; i < 14; i++)
275 		RTPRINT(rtlpriv, FINIT, INIT_TXPOWER,
276 			"RF-A Ht20 to HT40 Diff[%d] = 0x%x\n",
277 			i, rtlefuse->txpwr_ht20diff[RF90_PATH_A][i]);
278 	for (i = 0; i < 14; i++)
279 		RTPRINT(rtlpriv, FINIT, INIT_TXPOWER,
280 			"RF-A Legacy to Ht40 Diff[%d] = 0x%x\n",
281 			i, rtlefuse->txpwr_legacyhtdiff[RF90_PATH_A][i]);
282 	for (i = 0; i < 14; i++)
283 		RTPRINT(rtlpriv, FINIT, INIT_TXPOWER,
284 			"RF-B Ht20 to HT40 Diff[%d] = 0x%x\n",
285 			i, rtlefuse->txpwr_ht20diff[RF90_PATH_B][i]);
286 	for (i = 0; i < 14; i++)
287 		RTPRINT(rtlpriv, FINIT, INIT_TXPOWER,
288 			"RF-B Legacy to HT40 Diff[%d] = 0x%x\n",
289 			i, rtlefuse->txpwr_legacyhtdiff[RF90_PATH_B][i]);
290 	if (!autoload_fail)
291 		rtlefuse->eeprom_regulatory = (hwinfo[RF_OPTION1] & 0x7);
292 	else
293 		rtlefuse->eeprom_regulatory = 0;
294 	RTPRINT(rtlpriv, FINIT, INIT_TXPOWER,
295 		"eeprom_regulatory = 0x%x\n", rtlefuse->eeprom_regulatory);
296 	if (!autoload_fail) {
297 		rtlefuse->eeprom_tssi[RF90_PATH_A] = hwinfo[EEPROM_TSSI_A];
298 		rtlefuse->eeprom_tssi[RF90_PATH_B] = hwinfo[EEPROM_TSSI_B];
299 	} else {
300 		rtlefuse->eeprom_tssi[RF90_PATH_A] = EEPROM_DEFAULT_TSSI;
301 		rtlefuse->eeprom_tssi[RF90_PATH_B] = EEPROM_DEFAULT_TSSI;
302 	}
303 	RTPRINT(rtlpriv, FINIT, INIT_TXPOWER,
304 		"TSSI_A = 0x%x, TSSI_B = 0x%x\n",
305 		rtlefuse->eeprom_tssi[RF90_PATH_A],
306 		rtlefuse->eeprom_tssi[RF90_PATH_B]);
307 	if (!autoload_fail)
308 		tempval = hwinfo[EEPROM_THERMAL_METER];
309 	else
310 		tempval = EEPROM_DEFAULT_THERMALMETER;
311 	rtlefuse->eeprom_thermalmeter = (tempval & 0x1f);
312 	if (rtlefuse->eeprom_thermalmeter < 0x06 ||
313 	    rtlefuse->eeprom_thermalmeter > 0x1c)
314 		rtlefuse->eeprom_thermalmeter = 0x12;
315 	if (rtlefuse->eeprom_thermalmeter == 0x1f || autoload_fail)
316 		rtlefuse->apk_thermalmeterignore = true;
317 	rtlefuse->thermalmeter[0] = rtlefuse->eeprom_thermalmeter;
318 	RTPRINT(rtlpriv, FINIT, INIT_TXPOWER,
319 		"thermalmeter = 0x%x\n", rtlefuse->eeprom_thermalmeter);
320 }
321 
322 static void _rtl92cu_read_board_type(struct ieee80211_hw *hw, u8 *contents)
323 {
324 	struct rtl_efuse *rtlefuse = rtl_efuse(rtl_priv(hw));
325 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
326 	u8 boardType;
327 
328 	if (IS_NORMAL_CHIP(rtlhal->version)) {
329 		boardType = ((contents[EEPROM_RF_OPT1]) &
330 			    BOARD_TYPE_NORMAL_MASK) >> 5; /*bit[7:5]*/
331 	} else {
332 		boardType = contents[EEPROM_RF_OPT4];
333 		boardType &= BOARD_TYPE_TEST_MASK;
334 	}
335 	rtlefuse->board_type = boardType;
336 	if (IS_HIGHT_PA(rtlefuse->board_type))
337 		rtlefuse->external_pa = 1;
338 	pr_info("Board Type %x\n", rtlefuse->board_type);
339 }
340 
341 static void _rtl92cu_read_adapter_info(struct ieee80211_hw *hw)
342 {
343 	struct rtl_priv *rtlpriv = rtl_priv(hw);
344 	struct rtl_efuse *rtlefuse = rtl_efuse(rtl_priv(hw));
345 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
346 	int params[] = {RTL8190_EEPROM_ID, EEPROM_VID, EEPROM_DID,
347 			EEPROM_SVID, EEPROM_SMID, EEPROM_MAC_ADDR,
348 			EEPROM_CHANNELPLAN, EEPROM_VERSION, EEPROM_CUSTOMER_ID,
349 			0};
350 	u8 *hwinfo;
351 
352 	hwinfo = kzalloc(HWSET_MAX_SIZE, GFP_KERNEL);
353 	if (!hwinfo)
354 		return;
355 
356 	if (rtl_get_hwinfo(hw, rtlpriv, HWSET_MAX_SIZE, hwinfo, params))
357 		goto exit;
358 
359 	_rtl92cu_read_txpower_info_from_hwpg(hw,
360 					   rtlefuse->autoload_failflag, hwinfo);
361 	_rtl92cu_read_board_type(hw, hwinfo);
362 
363 	rtlefuse->txpwr_fromeprom = true;
364 	if (rtlhal->oem_id == RT_CID_DEFAULT) {
365 		switch (rtlefuse->eeprom_oemid) {
366 		case EEPROM_CID_DEFAULT:
367 			if (rtlefuse->eeprom_did == 0x8176) {
368 				if ((rtlefuse->eeprom_svid == 0x103C &&
369 				     rtlefuse->eeprom_smid == 0x1629))
370 					rtlhal->oem_id = RT_CID_819X_HP;
371 				else
372 					rtlhal->oem_id = RT_CID_DEFAULT;
373 			} else {
374 				rtlhal->oem_id = RT_CID_DEFAULT;
375 			}
376 			break;
377 		case EEPROM_CID_TOSHIBA:
378 			rtlhal->oem_id = RT_CID_TOSHIBA;
379 			break;
380 		case EEPROM_CID_QMI:
381 			rtlhal->oem_id = RT_CID_819X_QMI;
382 			break;
383 		case EEPROM_CID_WHQL:
384 		default:
385 			rtlhal->oem_id = RT_CID_DEFAULT;
386 			break;
387 		}
388 	}
389 exit:
390 	kfree(hwinfo);
391 }
392 
393 static void _rtl92cu_hal_customized_behavior(struct ieee80211_hw *hw)
394 {
395 	struct rtl_priv *rtlpriv = rtl_priv(hw);
396 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
397 
398 	switch (rtlhal->oem_id) {
399 	case RT_CID_819X_HP:
400 		rtlpriv->ledctl.led_opendrain = true;
401 		break;
402 	case RT_CID_819X_LENOVO:
403 	case RT_CID_DEFAULT:
404 	case RT_CID_TOSHIBA:
405 	case RT_CID_CCX:
406 	case RT_CID_819X_ACER:
407 	case RT_CID_WHQL:
408 	default:
409 		break;
410 	}
411 	RT_TRACE(rtlpriv, COMP_INIT, DBG_DMESG, "RT Customized ID: 0x%02X\n",
412 		 rtlhal->oem_id);
413 }
414 
415 void rtl92cu_read_eeprom_info(struct ieee80211_hw *hw)
416 {
417 
418 	struct rtl_priv *rtlpriv = rtl_priv(hw);
419 	struct rtl_efuse *rtlefuse = rtl_efuse(rtl_priv(hw));
420 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
421 	u8 tmp_u1b;
422 
423 	if (!IS_NORMAL_CHIP(rtlhal->version))
424 		return;
425 	tmp_u1b = rtl_read_byte(rtlpriv, REG_9346CR);
426 	rtlefuse->epromtype = (tmp_u1b & BOOT_FROM_EEPROM) ?
427 			       EEPROM_93C46 : EEPROM_BOOT_EFUSE;
428 	RT_TRACE(rtlpriv, COMP_INIT, DBG_DMESG, "Boot from %s\n",
429 		 tmp_u1b & BOOT_FROM_EEPROM ? "EERROM" : "EFUSE");
430 	rtlefuse->autoload_failflag = (tmp_u1b & EEPROM_EN) ? false : true;
431 	RT_TRACE(rtlpriv, COMP_INIT, DBG_LOUD, "Autoload %s\n",
432 		 tmp_u1b & EEPROM_EN ? "OK!!" : "ERR!!");
433 	_rtl92cu_read_adapter_info(hw);
434 	_rtl92cu_hal_customized_behavior(hw);
435 	return;
436 }
437 
438 static int _rtl92cu_init_power_on(struct ieee80211_hw *hw)
439 {
440 	struct rtl_priv *rtlpriv = rtl_priv(hw);
441 	int		status = 0;
442 	u16		value16;
443 	u8		value8;
444 	/*  polling autoload done. */
445 	u32	pollingCount = 0;
446 
447 	do {
448 		if (rtl_read_byte(rtlpriv, REG_APS_FSMCO) & PFM_ALDN) {
449 			RT_TRACE(rtlpriv, COMP_INIT, DBG_DMESG,
450 				 "Autoload Done!\n");
451 			break;
452 		}
453 		if (pollingCount++ > 100) {
454 			pr_err("Failed to polling REG_APS_FSMCO[PFM_ALDN] done!\n");
455 			return -ENODEV;
456 		}
457 	} while (true);
458 	/* 0. RSV_CTRL 0x1C[7:0] = 0 unlock ISO/CLK/Power control register */
459 	rtl_write_byte(rtlpriv, REG_RSV_CTRL, 0x0);
460 	/* Power on when re-enter from IPS/Radio off/card disable */
461 	/* enable SPS into PWM mode */
462 	rtl_write_byte(rtlpriv, REG_SPS0_CTRL, 0x2b);
463 	udelay(100);
464 	value8 = rtl_read_byte(rtlpriv, REG_LDOV12D_CTRL);
465 	if (0 == (value8 & LDV12_EN)) {
466 		value8 |= LDV12_EN;
467 		rtl_write_byte(rtlpriv, REG_LDOV12D_CTRL, value8);
468 		RT_TRACE(rtlpriv, COMP_INIT, DBG_DMESG,
469 			 " power-on :REG_LDOV12D_CTRL Reg0x21:0x%02x\n",
470 			 value8);
471 		udelay(100);
472 		value8 = rtl_read_byte(rtlpriv, REG_SYS_ISO_CTRL);
473 		value8 &= ~ISO_MD2PP;
474 		rtl_write_byte(rtlpriv, REG_SYS_ISO_CTRL, value8);
475 	}
476 	/*  auto enable WLAN */
477 	pollingCount = 0;
478 	value16 = rtl_read_word(rtlpriv, REG_APS_FSMCO);
479 	value16 |= APFM_ONMAC;
480 	rtl_write_word(rtlpriv, REG_APS_FSMCO, value16);
481 	do {
482 		if (!(rtl_read_word(rtlpriv, REG_APS_FSMCO) & APFM_ONMAC)) {
483 			pr_info("MAC auto ON okay!\n");
484 			break;
485 		}
486 		if (pollingCount++ > 1000) {
487 			pr_err("Failed to polling REG_APS_FSMCO[APFM_ONMAC] done!\n");
488 			return -ENODEV;
489 		}
490 	} while (true);
491 	/* Enable Radio ,GPIO ,and LED function */
492 	rtl_write_word(rtlpriv, REG_APS_FSMCO, 0x0812);
493 	/* release RF digital isolation */
494 	value16 = rtl_read_word(rtlpriv, REG_SYS_ISO_CTRL);
495 	value16 &= ~ISO_DIOR;
496 	rtl_write_word(rtlpriv, REG_SYS_ISO_CTRL, value16);
497 	/* Reconsider when to do this operation after asking HWSD. */
498 	pollingCount = 0;
499 	rtl_write_byte(rtlpriv, REG_APSD_CTRL, (rtl_read_byte(rtlpriv,
500 						REG_APSD_CTRL) & ~BIT(6)));
501 	do {
502 		pollingCount++;
503 	} while ((pollingCount < 200) &&
504 		 (rtl_read_byte(rtlpriv, REG_APSD_CTRL) & BIT(7)));
505 	/* Enable MAC DMA/WMAC/SCHEDULE/SEC block */
506 	value16 = rtl_read_word(rtlpriv,  REG_CR);
507 	value16 |= (HCI_TXDMA_EN | HCI_RXDMA_EN | TXDMA_EN | RXDMA_EN |
508 		    PROTOCOL_EN | SCHEDULE_EN | MACTXEN | MACRXEN | ENSEC);
509 	rtl_write_word(rtlpriv, REG_CR, value16);
510 	return status;
511 }
512 
513 static void _rtl92cu_init_queue_reserved_page(struct ieee80211_hw *hw,
514 					      bool wmm_enable,
515 					      u8 out_ep_num,
516 					      u8 queue_sel)
517 {
518 	struct rtl_priv *rtlpriv = rtl_priv(hw);
519 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
520 	bool isChipN = IS_NORMAL_CHIP(rtlhal->version);
521 	u32 outEPNum = (u32)out_ep_num;
522 	u32 numHQ = 0;
523 	u32 numLQ = 0;
524 	u32 numNQ = 0;
525 	u32 numPubQ;
526 	u32 value32;
527 	u8 value8;
528 	u32 txQPageNum, txQPageUnit, txQRemainPage;
529 
530 	if (!wmm_enable) {
531 		numPubQ = (isChipN) ? CHIP_B_PAGE_NUM_PUBQ :
532 			  CHIP_A_PAGE_NUM_PUBQ;
533 		txQPageNum = TX_TOTAL_PAGE_NUMBER - numPubQ;
534 
535 		txQPageUnit = txQPageNum/outEPNum;
536 		txQRemainPage = txQPageNum % outEPNum;
537 		if (queue_sel & TX_SELE_HQ)
538 			numHQ = txQPageUnit;
539 		if (queue_sel & TX_SELE_LQ)
540 			numLQ = txQPageUnit;
541 		/* HIGH priority queue always present in the configuration of
542 		 * 2 out-ep. Remainder pages have assigned to High queue */
543 		if ((outEPNum > 1) && (txQRemainPage))
544 			numHQ += txQRemainPage;
545 		/* NOTE: This step done before writting REG_RQPN. */
546 		if (isChipN) {
547 			if (queue_sel & TX_SELE_NQ)
548 				numNQ = txQPageUnit;
549 			value8 = (u8)_NPQ(numNQ);
550 			rtl_write_byte(rtlpriv,  REG_RQPN_NPQ, value8);
551 		}
552 	} else {
553 		/* for WMM ,number of out-ep must more than or equal to 2! */
554 		numPubQ = isChipN ? WMM_CHIP_B_PAGE_NUM_PUBQ :
555 			  WMM_CHIP_A_PAGE_NUM_PUBQ;
556 		if (queue_sel & TX_SELE_HQ) {
557 			numHQ = isChipN ? WMM_CHIP_B_PAGE_NUM_HPQ :
558 				WMM_CHIP_A_PAGE_NUM_HPQ;
559 		}
560 		if (queue_sel & TX_SELE_LQ) {
561 			numLQ = isChipN ? WMM_CHIP_B_PAGE_NUM_LPQ :
562 				WMM_CHIP_A_PAGE_NUM_LPQ;
563 		}
564 		/* NOTE: This step done before writting REG_RQPN. */
565 		if (isChipN) {
566 			if (queue_sel & TX_SELE_NQ)
567 				numNQ = WMM_CHIP_B_PAGE_NUM_NPQ;
568 			value8 = (u8)_NPQ(numNQ);
569 			rtl_write_byte(rtlpriv, REG_RQPN_NPQ, value8);
570 		}
571 	}
572 	/* TX DMA */
573 	value32 = _HPQ(numHQ) | _LPQ(numLQ) | _PUBQ(numPubQ) | LD_RQPN;
574 	rtl_write_dword(rtlpriv, REG_RQPN, value32);
575 }
576 
577 static void _rtl92c_init_trx_buffer(struct ieee80211_hw *hw, bool wmm_enable)
578 {
579 	struct rtl_priv *rtlpriv = rtl_priv(hw);
580 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
581 	u8	txpktbuf_bndy;
582 	u8	value8;
583 
584 	if (!wmm_enable)
585 		txpktbuf_bndy = TX_PAGE_BOUNDARY;
586 	else /* for WMM */
587 		txpktbuf_bndy = (IS_NORMAL_CHIP(rtlhal->version))
588 						? WMM_CHIP_B_TX_PAGE_BOUNDARY
589 						: WMM_CHIP_A_TX_PAGE_BOUNDARY;
590 	rtl_write_byte(rtlpriv, REG_TXPKTBUF_BCNQ_BDNY, txpktbuf_bndy);
591 	rtl_write_byte(rtlpriv, REG_TXPKTBUF_MGQ_BDNY, txpktbuf_bndy);
592 	rtl_write_byte(rtlpriv, REG_TXPKTBUF_WMAC_LBK_BF_HD, txpktbuf_bndy);
593 	rtl_write_byte(rtlpriv, REG_TRXFF_BNDY, txpktbuf_bndy);
594 	rtl_write_byte(rtlpriv, REG_TDECTRL+1, txpktbuf_bndy);
595 	rtl_write_word(rtlpriv,  (REG_TRXFF_BNDY + 2), 0x27FF);
596 	value8 = _PSRX(RX_PAGE_SIZE_REG_VALUE) | _PSTX(PBP_128);
597 	rtl_write_byte(rtlpriv, REG_PBP, value8);
598 }
599 
600 static void _rtl92c_init_chipN_reg_priority(struct ieee80211_hw *hw, u16 beQ,
601 					    u16 bkQ, u16 viQ, u16 voQ,
602 					    u16 mgtQ, u16 hiQ)
603 {
604 	struct rtl_priv *rtlpriv = rtl_priv(hw);
605 	u16 value16 = (rtl_read_word(rtlpriv, REG_TRXDMA_CTRL) & 0x7);
606 
607 	value16 |= _TXDMA_BEQ_MAP(beQ) | _TXDMA_BKQ_MAP(bkQ) |
608 		   _TXDMA_VIQ_MAP(viQ) | _TXDMA_VOQ_MAP(voQ) |
609 		   _TXDMA_MGQ_MAP(mgtQ) | _TXDMA_HIQ_MAP(hiQ);
610 	rtl_write_word(rtlpriv,  REG_TRXDMA_CTRL, value16);
611 }
612 
613 static void _rtl92cu_init_chipN_one_out_ep_priority(struct ieee80211_hw *hw,
614 						    bool wmm_enable,
615 						    u8 queue_sel)
616 {
617 	u16 uninitialized_var(value);
618 
619 	switch (queue_sel) {
620 	case TX_SELE_HQ:
621 		value = QUEUE_HIGH;
622 		break;
623 	case TX_SELE_LQ:
624 		value = QUEUE_LOW;
625 		break;
626 	case TX_SELE_NQ:
627 		value = QUEUE_NORMAL;
628 		break;
629 	default:
630 		WARN_ON(1); /* Shall not reach here! */
631 		break;
632 	}
633 	_rtl92c_init_chipN_reg_priority(hw, value, value, value, value,
634 					value, value);
635 	pr_info("Tx queue select: 0x%02x\n", queue_sel);
636 }
637 
638 static void _rtl92cu_init_chipN_two_out_ep_priority(struct ieee80211_hw *hw,
639 								bool wmm_enable,
640 								u8 queue_sel)
641 {
642 	u16 beQ, bkQ, viQ, voQ, mgtQ, hiQ;
643 	u16 uninitialized_var(valueHi);
644 	u16 uninitialized_var(valueLow);
645 
646 	switch (queue_sel) {
647 	case (TX_SELE_HQ | TX_SELE_LQ):
648 		valueHi = QUEUE_HIGH;
649 		valueLow = QUEUE_LOW;
650 		break;
651 	case (TX_SELE_NQ | TX_SELE_LQ):
652 		valueHi = QUEUE_NORMAL;
653 		valueLow = QUEUE_LOW;
654 		break;
655 	case (TX_SELE_HQ | TX_SELE_NQ):
656 		valueHi = QUEUE_HIGH;
657 		valueLow = QUEUE_NORMAL;
658 		break;
659 	default:
660 		WARN_ON(1);
661 		break;
662 	}
663 	if (!wmm_enable) {
664 		beQ = valueLow;
665 		bkQ = valueLow;
666 		viQ = valueHi;
667 		voQ = valueHi;
668 		mgtQ = valueHi;
669 		hiQ = valueHi;
670 	} else {/* for WMM ,CONFIG_OUT_EP_WIFI_MODE */
671 		beQ = valueHi;
672 		bkQ = valueLow;
673 		viQ = valueLow;
674 		voQ = valueHi;
675 		mgtQ = valueHi;
676 		hiQ = valueHi;
677 	}
678 	_rtl92c_init_chipN_reg_priority(hw, beQ, bkQ, viQ, voQ, mgtQ, hiQ);
679 	pr_info("Tx queue select: 0x%02x\n", queue_sel);
680 }
681 
682 static void _rtl92cu_init_chipN_three_out_ep_priority(struct ieee80211_hw *hw,
683 						      bool wmm_enable,
684 						      u8 queue_sel)
685 {
686 	u16 beQ, bkQ, viQ, voQ, mgtQ, hiQ;
687 
688 	if (!wmm_enable) { /* typical setting */
689 		beQ	= QUEUE_LOW;
690 		bkQ	= QUEUE_LOW;
691 		viQ	= QUEUE_NORMAL;
692 		voQ	= QUEUE_HIGH;
693 		mgtQ	= QUEUE_HIGH;
694 		hiQ	= QUEUE_HIGH;
695 	} else { /* for WMM */
696 		beQ	= QUEUE_LOW;
697 		bkQ	= QUEUE_NORMAL;
698 		viQ	= QUEUE_NORMAL;
699 		voQ	= QUEUE_HIGH;
700 		mgtQ	= QUEUE_HIGH;
701 		hiQ	= QUEUE_HIGH;
702 	}
703 	_rtl92c_init_chipN_reg_priority(hw, beQ, bkQ, viQ, voQ, mgtQ, hiQ);
704 	pr_info("Tx queue select :0x%02x..\n", queue_sel);
705 }
706 
707 static void _rtl92cu_init_chipN_queue_priority(struct ieee80211_hw *hw,
708 					       bool wmm_enable,
709 					       u8 out_ep_num,
710 					       u8 queue_sel)
711 {
712 	switch (out_ep_num) {
713 	case 1:
714 		_rtl92cu_init_chipN_one_out_ep_priority(hw, wmm_enable,
715 							queue_sel);
716 		break;
717 	case 2:
718 		_rtl92cu_init_chipN_two_out_ep_priority(hw, wmm_enable,
719 							queue_sel);
720 		break;
721 	case 3:
722 		_rtl92cu_init_chipN_three_out_ep_priority(hw, wmm_enable,
723 							  queue_sel);
724 		break;
725 	default:
726 		WARN_ON(1); /* Shall not reach here! */
727 		break;
728 	}
729 }
730 
731 static void _rtl92cu_init_chipT_queue_priority(struct ieee80211_hw *hw,
732 					       bool wmm_enable,
733 					       u8 out_ep_num,
734 					       u8 queue_sel)
735 {
736 	u8 hq_sele = 0;
737 	struct rtl_priv *rtlpriv = rtl_priv(hw);
738 
739 	switch (out_ep_num) {
740 	case 2:	/* (TX_SELE_HQ|TX_SELE_LQ) */
741 		if (!wmm_enable) /* typical setting */
742 			hq_sele =  HQSEL_VOQ | HQSEL_VIQ | HQSEL_MGTQ |
743 				   HQSEL_HIQ;
744 		else	/* for WMM */
745 			hq_sele = HQSEL_VOQ | HQSEL_BEQ | HQSEL_MGTQ |
746 				  HQSEL_HIQ;
747 		break;
748 	case 1:
749 		if (TX_SELE_LQ == queue_sel) {
750 			/* map all endpoint to Low queue */
751 			hq_sele = 0;
752 		} else if (TX_SELE_HQ == queue_sel) {
753 			/* map all endpoint to High queue */
754 			hq_sele =  HQSEL_VOQ | HQSEL_VIQ | HQSEL_BEQ |
755 				   HQSEL_BKQ | HQSEL_MGTQ | HQSEL_HIQ;
756 		}
757 		break;
758 	default:
759 		WARN_ON(1); /* Shall not reach here! */
760 		break;
761 	}
762 	rtl_write_byte(rtlpriv, (REG_TRXDMA_CTRL+1), hq_sele);
763 	pr_info("Tx queue select :0x%02x..\n", hq_sele);
764 }
765 
766 static void _rtl92cu_init_queue_priority(struct ieee80211_hw *hw,
767 						bool wmm_enable,
768 						u8 out_ep_num,
769 						u8 queue_sel)
770 {
771 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
772 	if (IS_NORMAL_CHIP(rtlhal->version))
773 		_rtl92cu_init_chipN_queue_priority(hw, wmm_enable, out_ep_num,
774 						   queue_sel);
775 	else
776 		_rtl92cu_init_chipT_queue_priority(hw, wmm_enable, out_ep_num,
777 						   queue_sel);
778 }
779 
780 static void _rtl92cu_init_usb_aggregation(struct ieee80211_hw *hw)
781 {
782 }
783 
784 static void _rtl92cu_init_wmac_setting(struct ieee80211_hw *hw)
785 {
786 	u16 value16;
787 	u32 value32;
788 	struct rtl_priv *rtlpriv = rtl_priv(hw);
789 
790 	value32 = (RCR_APM | RCR_AM | RCR_ADF | RCR_AB | RCR_APPFCS |
791 		   RCR_APP_ICV | RCR_AMF | RCR_HTC_LOC_CTRL |
792 		   RCR_APP_MIC | RCR_APP_PHYSTS | RCR_ACRC32);
793 	rtlpriv->cfg->ops->set_hw_reg(hw, HW_VAR_RCR, (u8 *)(&value32));
794 	/* Accept all multicast address */
795 	rtl_write_dword(rtlpriv,  REG_MAR, 0xFFFFFFFF);
796 	rtl_write_dword(rtlpriv,  REG_MAR + 4, 0xFFFFFFFF);
797 	/* Accept all management frames */
798 	value16 = 0xFFFF;
799 	rtlpriv->cfg->ops->set_hw_reg(hw, HW_VAR_MGT_FILTER,
800 				      (u8 *)(&value16));
801 	/* Reject all control frame - default value is 0 */
802 	value16 = 0x0;
803 	rtlpriv->cfg->ops->set_hw_reg(hw, HW_VAR_CTRL_FILTER,
804 				      (u8 *)(&value16));
805 	/* Accept all data frames */
806 	value16 = 0xFFFF;
807 	rtlpriv->cfg->ops->set_hw_reg(hw, HW_VAR_DATA_FILTER,
808 				      (u8 *)(&value16));
809 }
810 
811 static void _rtl92cu_init_beacon_parameters(struct ieee80211_hw *hw)
812 {
813 	struct rtl_priv *rtlpriv = rtl_priv(hw);
814 	struct rtl_hal *rtlhal = rtl_hal(rtlpriv);
815 
816 	rtl_write_word(rtlpriv, REG_BCN_CTRL, 0x1010);
817 
818 	/* TODO: Remove these magic number */
819 	rtl_write_word(rtlpriv, REG_TBTT_PROHIBIT, 0x6404);
820 	rtl_write_byte(rtlpriv, REG_DRVERLYINT, DRIVER_EARLY_INT_TIME);
821 	rtl_write_byte(rtlpriv, REG_BCNDMATIM, BCN_DMA_ATIME_INT_TIME);
822 	/* Change beacon AIFS to the largest number
823 	 * beacause test chip does not contension before sending beacon.
824 	 */
825 	if (IS_NORMAL_CHIP(rtlhal->version))
826 		rtl_write_word(rtlpriv, REG_BCNTCFG, 0x660F);
827 	else
828 		rtl_write_word(rtlpriv, REG_BCNTCFG, 0x66FF);
829 }
830 
831 static int _rtl92cu_init_mac(struct ieee80211_hw *hw)
832 {
833 	struct rtl_priv *rtlpriv = rtl_priv(hw);
834 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
835 	struct rtl_usb_priv *usb_priv = rtl_usbpriv(hw);
836 	struct rtl_usb *rtlusb = rtl_usbdev(usb_priv);
837 	int err = 0;
838 	u32	boundary = 0;
839 	u8 wmm_enable = false; /* TODO */
840 	u8 out_ep_nums = rtlusb->out_ep_nums;
841 	u8 queue_sel = rtlusb->out_queue_sel;
842 	err = _rtl92cu_init_power_on(hw);
843 
844 	if (err) {
845 		pr_err("Failed to init power on!\n");
846 		return err;
847 	}
848 	if (!wmm_enable) {
849 		boundary = TX_PAGE_BOUNDARY;
850 	} else { /* for WMM */
851 		boundary = (IS_NORMAL_CHIP(rtlhal->version))
852 					? WMM_CHIP_B_TX_PAGE_BOUNDARY
853 					: WMM_CHIP_A_TX_PAGE_BOUNDARY;
854 	}
855 	if (false == rtl92c_init_llt_table(hw, boundary)) {
856 		pr_err("Failed to init LLT Table!\n");
857 		return -EINVAL;
858 	}
859 	_rtl92cu_init_queue_reserved_page(hw, wmm_enable, out_ep_nums,
860 					  queue_sel);
861 	_rtl92c_init_trx_buffer(hw, wmm_enable);
862 	_rtl92cu_init_queue_priority(hw, wmm_enable, out_ep_nums,
863 				     queue_sel);
864 	/* Get Rx PHY status in order to report RSSI and others. */
865 	rtl92c_init_driver_info_size(hw, RTL92C_DRIVER_INFO_SIZE);
866 	rtl92c_init_interrupt(hw);
867 	rtl92c_init_network_type(hw);
868 	_rtl92cu_init_wmac_setting(hw);
869 	rtl92c_init_adaptive_ctrl(hw);
870 	rtl92c_init_edca(hw);
871 	rtl92c_init_rate_fallback(hw);
872 	rtl92c_init_retry_function(hw);
873 	_rtl92cu_init_usb_aggregation(hw);
874 	rtlpriv->cfg->ops->set_bw_mode(hw, NL80211_CHAN_HT20);
875 	rtl92c_set_min_space(hw, IS_92C_SERIAL(rtlhal->version));
876 	_rtl92cu_init_beacon_parameters(hw);
877 	rtl92c_init_ampdu_aggregation(hw);
878 	rtl92c_init_beacon_max_error(hw);
879 	return err;
880 }
881 
882 void rtl92cu_enable_hw_security_config(struct ieee80211_hw *hw)
883 {
884 	struct rtl_priv *rtlpriv = rtl_priv(hw);
885 	u8 sec_reg_value = 0x0;
886 	struct rtl_hal *rtlhal = rtl_hal(rtlpriv);
887 
888 	RT_TRACE(rtlpriv, COMP_INIT, DBG_LOUD,
889 		 "PairwiseEncAlgorithm = %d GroupEncAlgorithm = %d\n",
890 		 rtlpriv->sec.pairwise_enc_algorithm,
891 		 rtlpriv->sec.group_enc_algorithm);
892 	if (rtlpriv->cfg->mod_params->sw_crypto || rtlpriv->sec.use_sw_sec) {
893 		RT_TRACE(rtlpriv, COMP_SEC, DBG_DMESG,
894 			 "not open sw encryption\n");
895 		return;
896 	}
897 	sec_reg_value = SCR_TxEncEnable | SCR_RxDecEnable;
898 	if (rtlpriv->sec.use_defaultkey) {
899 		sec_reg_value |= SCR_TxUseDK;
900 		sec_reg_value |= SCR_RxUseDK;
901 	}
902 	if (IS_NORMAL_CHIP(rtlhal->version))
903 		sec_reg_value |= (SCR_RXBCUSEDK | SCR_TXBCUSEDK);
904 	rtl_write_byte(rtlpriv, REG_CR + 1, 0x02);
905 	RT_TRACE(rtlpriv, COMP_SEC, DBG_LOUD, "The SECR-value %x\n",
906 		 sec_reg_value);
907 	rtlpriv->cfg->ops->set_hw_reg(hw, HW_VAR_WPA_CONFIG, &sec_reg_value);
908 }
909 
910 static void _rtl92cu_hw_configure(struct ieee80211_hw *hw)
911 {
912 	struct rtl_priv *rtlpriv = rtl_priv(hw);
913 	struct rtl_usb *rtlusb = rtl_usbdev(rtl_usbpriv(hw));
914 
915 	/* To Fix MAC loopback mode fail. */
916 	rtl_write_byte(rtlpriv, REG_LDOHCI12_CTRL, 0x0f);
917 	rtl_write_byte(rtlpriv, 0x15, 0xe9);
918 	/* HW SEQ CTRL */
919 	/* set 0x0 to 0xFF by tynli. Default enable HW SEQ NUM. */
920 	rtl_write_byte(rtlpriv, REG_HWSEQ_CTRL, 0xFF);
921 	/* fixed USB interface interference issue */
922 	rtl_write_byte(rtlpriv, 0xfe40, 0xe0);
923 	rtl_write_byte(rtlpriv, 0xfe41, 0x8d);
924 	rtl_write_byte(rtlpriv, 0xfe42, 0x80);
925 	rtlusb->reg_bcn_ctrl_val = 0x18;
926 	rtl_write_byte(rtlpriv, REG_BCN_CTRL, (u8)rtlusb->reg_bcn_ctrl_val);
927 }
928 
929 static void _InitPABias(struct ieee80211_hw *hw)
930 {
931 	struct rtl_priv *rtlpriv = rtl_priv(hw);
932 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
933 	u8 pa_setting;
934 
935 	/* FIXED PA current issue */
936 	pa_setting = efuse_read_1byte(hw, 0x1FA);
937 	if (!(pa_setting & BIT(0))) {
938 		rtl_set_rfreg(hw, RF90_PATH_A, 0x15, 0x0FFFFF, 0x0F406);
939 		rtl_set_rfreg(hw, RF90_PATH_A, 0x15, 0x0FFFFF, 0x4F406);
940 		rtl_set_rfreg(hw, RF90_PATH_A, 0x15, 0x0FFFFF, 0x8F406);
941 		rtl_set_rfreg(hw, RF90_PATH_A, 0x15, 0x0FFFFF, 0xCF406);
942 	}
943 	if (!(pa_setting & BIT(1)) && IS_NORMAL_CHIP(rtlhal->version) &&
944 	    IS_92C_SERIAL(rtlhal->version)) {
945 		rtl_set_rfreg(hw, RF90_PATH_B, 0x15, 0x0FFFFF, 0x0F406);
946 		rtl_set_rfreg(hw, RF90_PATH_B, 0x15, 0x0FFFFF, 0x4F406);
947 		rtl_set_rfreg(hw, RF90_PATH_B, 0x15, 0x0FFFFF, 0x8F406);
948 		rtl_set_rfreg(hw, RF90_PATH_B, 0x15, 0x0FFFFF, 0xCF406);
949 	}
950 	if (!(pa_setting & BIT(4))) {
951 		pa_setting = rtl_read_byte(rtlpriv, 0x16);
952 		pa_setting &= 0x0F;
953 		rtl_write_byte(rtlpriv, 0x16, pa_setting | 0x90);
954 	}
955 }
956 
957 int rtl92cu_hw_init(struct ieee80211_hw *hw)
958 {
959 	struct rtl_priv *rtlpriv = rtl_priv(hw);
960 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
961 	struct rtl_mac *mac = rtl_mac(rtl_priv(hw));
962 	struct rtl_phy *rtlphy = &(rtlpriv->phy);
963 	struct rtl_ps_ctl *ppsc = rtl_psc(rtl_priv(hw));
964 	int err = 0;
965 	unsigned long flags;
966 
967 	/* As this function can take a very long time (up to 350 ms)
968 	 * and can be called with irqs disabled, reenable the irqs
969 	 * to let the other devices continue being serviced.
970 	 *
971 	 * It is safe doing so since our own interrupts will only be enabled
972 	 * in a subsequent step.
973 	 */
974 	local_save_flags(flags);
975 	local_irq_enable();
976 
977 	rtlhal->fw_ready = false;
978 	rtlhal->hw_type = HARDWARE_TYPE_RTL8192CU;
979 	err = _rtl92cu_init_mac(hw);
980 	if (err) {
981 		pr_err("init mac failed!\n");
982 		goto exit;
983 	}
984 	err = rtl92c_download_fw(hw);
985 	if (err) {
986 		RT_TRACE(rtlpriv, COMP_ERR, DBG_WARNING,
987 			 "Failed to download FW. Init HW without FW now..\n");
988 		err = 1;
989 		goto exit;
990 	}
991 
992 	rtlhal->fw_ready = true;
993 	rtlhal->last_hmeboxnum = 0; /* h2c */
994 	_rtl92cu_phy_param_tab_init(hw);
995 	rtl92cu_phy_mac_config(hw);
996 	rtl92cu_phy_bb_config(hw);
997 	rtlphy->rf_mode = RF_OP_BY_SW_3WIRE;
998 	rtl92c_phy_rf_config(hw);
999 	if (IS_VENDOR_UMC_A_CUT(rtlhal->version) &&
1000 	    !IS_92C_SERIAL(rtlhal->version)) {
1001 		rtl_set_rfreg(hw, RF90_PATH_A, RF_RX_G1, MASKDWORD, 0x30255);
1002 		rtl_set_rfreg(hw, RF90_PATH_A, RF_RX_G2, MASKDWORD, 0x50a00);
1003 	}
1004 	rtlphy->rfreg_chnlval[0] = rtl_get_rfreg(hw, (enum radio_path)0,
1005 						 RF_CHNLBW, RFREG_OFFSET_MASK);
1006 	rtlphy->rfreg_chnlval[1] = rtl_get_rfreg(hw, (enum radio_path)1,
1007 						 RF_CHNLBW, RFREG_OFFSET_MASK);
1008 	rtl92cu_bb_block_on(hw);
1009 	rtl_cam_reset_all_entry(hw);
1010 	rtl92cu_enable_hw_security_config(hw);
1011 	ppsc->rfpwr_state = ERFON;
1012 	rtlpriv->cfg->ops->set_hw_reg(hw, HW_VAR_ETHER_ADDR, mac->mac_addr);
1013 	if (ppsc->rfpwr_state == ERFON) {
1014 		rtl92c_phy_set_rfpath_switch(hw, 1);
1015 		if (rtlphy->iqk_initialized) {
1016 			rtl92c_phy_iq_calibrate(hw, true);
1017 		} else {
1018 			rtl92c_phy_iq_calibrate(hw, false);
1019 			rtlphy->iqk_initialized = true;
1020 		}
1021 		rtl92c_dm_check_txpower_tracking(hw);
1022 		rtl92c_phy_lc_calibrate(hw);
1023 	}
1024 	_rtl92cu_hw_configure(hw);
1025 	_InitPABias(hw);
1026 	rtl92c_dm_init(hw);
1027 exit:
1028 	local_irq_restore(flags);
1029 	return err;
1030 }
1031 
1032 static void _DisableRFAFEAndResetBB(struct ieee80211_hw *hw)
1033 {
1034 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1035 /**************************************
1036 a.	TXPAUSE 0x522[7:0] = 0xFF	Pause MAC TX queue
1037 b.	RF path 0 offset 0x00 = 0x00	disable RF
1038 c.	APSD_CTRL 0x600[7:0] = 0x40
1039 d.	SYS_FUNC_EN 0x02[7:0] = 0x16	reset BB state machine
1040 e.	SYS_FUNC_EN 0x02[7:0] = 0x14	reset BB state machine
1041 ***************************************/
1042 	u8 eRFPath = 0, value8 = 0;
1043 	rtl_write_byte(rtlpriv, REG_TXPAUSE, 0xFF);
1044 	rtl_set_rfreg(hw, (enum radio_path)eRFPath, 0x0, MASKBYTE0, 0x0);
1045 
1046 	value8 |= APSDOFF;
1047 	rtl_write_byte(rtlpriv, REG_APSD_CTRL, value8); /*0x40*/
1048 	value8 = 0;
1049 	value8 |= (FEN_USBD | FEN_USBA | FEN_BB_GLB_RSTn);
1050 	rtl_write_byte(rtlpriv, REG_SYS_FUNC_EN, value8);/*0x16*/
1051 	value8 &= (~FEN_BB_GLB_RSTn);
1052 	rtl_write_byte(rtlpriv, REG_SYS_FUNC_EN, value8); /*0x14*/
1053 }
1054 
1055 static void  _ResetDigitalProcedure1(struct ieee80211_hw *hw, bool bWithoutHWSM)
1056 {
1057 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1058 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
1059 
1060 	if (rtlhal->fw_version <=  0x20) {
1061 		/*****************************
1062 		f. MCUFWDL 0x80[7:0]=0		reset MCU ready status
1063 		g. SYS_FUNC_EN 0x02[10]= 0	reset MCU reg, (8051 reset)
1064 		h. SYS_FUNC_EN 0x02[15-12]= 5	reset MAC reg, DCORE
1065 		i. SYS_FUNC_EN 0x02[10]= 1	enable MCU reg, (8051 enable)
1066 		******************************/
1067 		u16 valu16 = 0;
1068 
1069 		rtl_write_byte(rtlpriv, REG_MCUFWDL, 0);
1070 		valu16 = rtl_read_word(rtlpriv, REG_SYS_FUNC_EN);
1071 		rtl_write_word(rtlpriv, REG_SYS_FUNC_EN, (valu16 &
1072 			       (~FEN_CPUEN))); /* reset MCU ,8051 */
1073 		valu16 = rtl_read_word(rtlpriv, REG_SYS_FUNC_EN)&0x0FFF;
1074 		rtl_write_word(rtlpriv, REG_SYS_FUNC_EN, (valu16 |
1075 			      (FEN_HWPDN|FEN_ELDR))); /* reset MAC */
1076 		valu16 = rtl_read_word(rtlpriv, REG_SYS_FUNC_EN);
1077 		rtl_write_word(rtlpriv, REG_SYS_FUNC_EN, (valu16 |
1078 			       FEN_CPUEN)); /* enable MCU ,8051 */
1079 	} else {
1080 		u8 retry_cnts = 0;
1081 
1082 		/* IF fw in RAM code, do reset */
1083 		if (rtl_read_byte(rtlpriv, REG_MCUFWDL) & BIT(1)) {
1084 			/* reset MCU ready status */
1085 			rtl_write_byte(rtlpriv, REG_MCUFWDL, 0);
1086 			/* 8051 reset by self */
1087 			rtl_write_byte(rtlpriv, REG_HMETFR+3, 0x20);
1088 			while ((retry_cnts++ < 100) &&
1089 			       (FEN_CPUEN & rtl_read_word(rtlpriv,
1090 			       REG_SYS_FUNC_EN))) {
1091 				udelay(50);
1092 			}
1093 			if (retry_cnts >= 100) {
1094 				pr_err("8051 reset failed!.........................\n");
1095 				/* if 8051 reset fail, reset MAC. */
1096 				rtl_write_byte(rtlpriv,
1097 					       REG_SYS_FUNC_EN + 1,
1098 					       0x50);
1099 				udelay(100);
1100 			}
1101 		}
1102 		/* Reset MAC and Enable 8051 */
1103 		rtl_write_byte(rtlpriv, REG_SYS_FUNC_EN + 1, 0x54);
1104 		rtl_write_byte(rtlpriv, REG_MCUFWDL, 0);
1105 	}
1106 	if (bWithoutHWSM) {
1107 		/*****************************
1108 		  Without HW auto state machine
1109 		g.SYS_CLKR 0x08[15:0] = 0x30A3		disable MAC clock
1110 		h.AFE_PLL_CTRL 0x28[7:0] = 0x80		disable AFE PLL
1111 		i.AFE_XTAL_CTRL 0x24[15:0] = 0x880F	gated AFE DIG_CLOCK
1112 		j.SYS_ISu_CTRL 0x00[7:0] = 0xF9		isolated digital to PON
1113 		******************************/
1114 		rtl_write_word(rtlpriv, REG_SYS_CLKR, 0x70A3);
1115 		rtl_write_byte(rtlpriv, REG_AFE_PLL_CTRL, 0x80);
1116 		rtl_write_word(rtlpriv, REG_AFE_XTAL_CTRL, 0x880F);
1117 		rtl_write_byte(rtlpriv, REG_SYS_ISO_CTRL, 0xF9);
1118 	}
1119 }
1120 
1121 static void _ResetDigitalProcedure2(struct ieee80211_hw *hw)
1122 {
1123 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1124 /*****************************
1125 k. SYS_FUNC_EN 0x03[7:0] = 0x44		disable ELDR runction
1126 l. SYS_CLKR 0x08[15:0] = 0x3083		disable ELDR clock
1127 m. SYS_ISO_CTRL 0x01[7:0] = 0x83	isolated ELDR to PON
1128 ******************************/
1129 	rtl_write_word(rtlpriv, REG_SYS_CLKR, 0x70A3);
1130 	rtl_write_byte(rtlpriv, REG_SYS_ISO_CTRL+1, 0x82);
1131 }
1132 
1133 static void _DisableGPIO(struct ieee80211_hw *hw)
1134 {
1135 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1136 /***************************************
1137 j. GPIO_PIN_CTRL 0x44[31:0]=0x000
1138 k. Value = GPIO_PIN_CTRL[7:0]
1139 l.  GPIO_PIN_CTRL 0x44[31:0] = 0x00FF0000 | (value <<8); write ext PIN level
1140 m. GPIO_MUXCFG 0x42 [15:0] = 0x0780
1141 n. LEDCFG 0x4C[15:0] = 0x8080
1142 ***************************************/
1143 	u8	value8;
1144 	u16	value16;
1145 	u32	value32;
1146 
1147 	/* 1. Disable GPIO[7:0] */
1148 	rtl_write_word(rtlpriv, REG_GPIO_PIN_CTRL+2, 0x0000);
1149 	value32 = rtl_read_dword(rtlpriv, REG_GPIO_PIN_CTRL) & 0xFFFF00FF;
1150 	value8 = (u8)(value32&0x000000FF);
1151 	value32 |= ((value8<<8) | 0x00FF0000);
1152 	rtl_write_dword(rtlpriv, REG_GPIO_PIN_CTRL, value32);
1153 	/* 2. Disable GPIO[10:8] */
1154 	rtl_write_byte(rtlpriv, REG_GPIO_MUXCFG+3, 0x00);
1155 	value16 = rtl_read_word(rtlpriv, REG_GPIO_MUXCFG+2) & 0xFF0F;
1156 	value8 = (u8)(value16&0x000F);
1157 	value16 |= ((value8<<4) | 0x0780);
1158 	rtl_write_word(rtlpriv, REG_GPIO_PIN_CTRL+2, value16);
1159 	/* 3. Disable LED0 & 1 */
1160 	rtl_write_word(rtlpriv, REG_LEDCFG0, 0x8080);
1161 }
1162 
1163 static void _DisableAnalog(struct ieee80211_hw *hw, bool bWithoutHWSM)
1164 {
1165 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1166 	u16 value16 = 0;
1167 	u8 value8 = 0;
1168 
1169 	if (bWithoutHWSM) {
1170 		/*****************************
1171 		n. LDOA15_CTRL 0x20[7:0] = 0x04	 disable A15 power
1172 		o. LDOV12D_CTRL 0x21[7:0] = 0x54 disable digital core power
1173 		r. When driver call disable, the ASIC will turn off remaining
1174 		   clock automatically
1175 		******************************/
1176 		rtl_write_byte(rtlpriv, REG_LDOA15_CTRL, 0x04);
1177 		value8 = rtl_read_byte(rtlpriv, REG_LDOV12D_CTRL);
1178 		value8 &= (~LDV12_EN);
1179 		rtl_write_byte(rtlpriv, REG_LDOV12D_CTRL, value8);
1180 	}
1181 
1182 /*****************************
1183 h. SPS0_CTRL 0x11[7:0] = 0x23		enter PFM mode
1184 i. APS_FSMCO 0x04[15:0] = 0x4802	set USB suspend
1185 ******************************/
1186 	rtl_write_byte(rtlpriv, REG_SPS0_CTRL, 0x23);
1187 	value16 |= (APDM_HOST | AFSM_HSUS | PFM_ALDN);
1188 	rtl_write_word(rtlpriv, REG_APS_FSMCO, (u16)value16);
1189 	rtl_write_byte(rtlpriv, REG_RSV_CTRL, 0x0E);
1190 }
1191 
1192 static void _CardDisableHWSM(struct ieee80211_hw *hw)
1193 {
1194 	/* ==== RF Off Sequence ==== */
1195 	_DisableRFAFEAndResetBB(hw);
1196 	/* ==== Reset digital sequence   ====== */
1197 	_ResetDigitalProcedure1(hw, false);
1198 	/*  ==== Pull GPIO PIN to balance level and LED control ====== */
1199 	_DisableGPIO(hw);
1200 	/* ==== Disable analog sequence === */
1201 	_DisableAnalog(hw, false);
1202 }
1203 
1204 static void _CardDisableWithoutHWSM(struct ieee80211_hw *hw)
1205 {
1206 	/*==== RF Off Sequence ==== */
1207 	_DisableRFAFEAndResetBB(hw);
1208 	/*  ==== Reset digital sequence   ====== */
1209 	_ResetDigitalProcedure1(hw, true);
1210 	/*  ==== Pull GPIO PIN to balance level and LED control ====== */
1211 	_DisableGPIO(hw);
1212 	/*  ==== Reset digital sequence   ====== */
1213 	_ResetDigitalProcedure2(hw);
1214 	/*  ==== Disable analog sequence === */
1215 	_DisableAnalog(hw, true);
1216 }
1217 
1218 static void _rtl92cu_set_bcn_ctrl_reg(struct ieee80211_hw *hw,
1219 				      u8 set_bits, u8 clear_bits)
1220 {
1221 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1222 	struct rtl_usb *rtlusb = rtl_usbdev(rtl_usbpriv(hw));
1223 
1224 	rtlusb->reg_bcn_ctrl_val |= set_bits;
1225 	rtlusb->reg_bcn_ctrl_val &= ~clear_bits;
1226 	rtl_write_byte(rtlpriv, REG_BCN_CTRL, (u8)rtlusb->reg_bcn_ctrl_val);
1227 }
1228 
1229 static void _rtl92cu_stop_tx_beacon(struct ieee80211_hw *hw)
1230 {
1231 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1232 	struct rtl_hal *rtlhal = rtl_hal(rtlpriv);
1233 	u8 tmp1byte = 0;
1234 	if (IS_NORMAL_CHIP(rtlhal->version)) {
1235 		tmp1byte = rtl_read_byte(rtlpriv, REG_FWHW_TXQ_CTRL + 2);
1236 		rtl_write_byte(rtlpriv, REG_FWHW_TXQ_CTRL + 2,
1237 			       tmp1byte & (~BIT(6)));
1238 		rtl_write_byte(rtlpriv, REG_TBTT_PROHIBIT + 1, 0x64);
1239 		tmp1byte = rtl_read_byte(rtlpriv, REG_TBTT_PROHIBIT + 2);
1240 		tmp1byte &= ~(BIT(0));
1241 		rtl_write_byte(rtlpriv, REG_TBTT_PROHIBIT + 2, tmp1byte);
1242 	} else {
1243 		rtl_write_byte(rtlpriv, REG_TXPAUSE,
1244 			       rtl_read_byte(rtlpriv, REG_TXPAUSE) | BIT(6));
1245 	}
1246 }
1247 
1248 static void _rtl92cu_resume_tx_beacon(struct ieee80211_hw *hw)
1249 {
1250 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1251 	struct rtl_hal *rtlhal = rtl_hal(rtlpriv);
1252 	u8 tmp1byte = 0;
1253 
1254 	if (IS_NORMAL_CHIP(rtlhal->version)) {
1255 		tmp1byte = rtl_read_byte(rtlpriv, REG_FWHW_TXQ_CTRL + 2);
1256 		rtl_write_byte(rtlpriv, REG_FWHW_TXQ_CTRL + 2,
1257 			       tmp1byte | BIT(6));
1258 		rtl_write_byte(rtlpriv, REG_TBTT_PROHIBIT + 1, 0xff);
1259 		tmp1byte = rtl_read_byte(rtlpriv, REG_TBTT_PROHIBIT + 2);
1260 		tmp1byte |= BIT(0);
1261 		rtl_write_byte(rtlpriv, REG_TBTT_PROHIBIT + 2, tmp1byte);
1262 	} else {
1263 		rtl_write_byte(rtlpriv, REG_TXPAUSE,
1264 			       rtl_read_byte(rtlpriv, REG_TXPAUSE) & (~BIT(6)));
1265 	}
1266 }
1267 
1268 static void _rtl92cu_enable_bcn_sub_func(struct ieee80211_hw *hw)
1269 {
1270 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1271 	struct rtl_hal *rtlhal = rtl_hal(rtlpriv);
1272 
1273 	if (IS_NORMAL_CHIP(rtlhal->version))
1274 		_rtl92cu_set_bcn_ctrl_reg(hw, 0, BIT(1));
1275 	else
1276 		_rtl92cu_set_bcn_ctrl_reg(hw, 0, BIT(4));
1277 }
1278 
1279 static void _rtl92cu_disable_bcn_sub_func(struct ieee80211_hw *hw)
1280 {
1281 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1282 	struct rtl_hal *rtlhal = rtl_hal(rtlpriv);
1283 
1284 	if (IS_NORMAL_CHIP(rtlhal->version))
1285 		_rtl92cu_set_bcn_ctrl_reg(hw, BIT(1), 0);
1286 	else
1287 		_rtl92cu_set_bcn_ctrl_reg(hw, BIT(4), 0);
1288 }
1289 
1290 static int _rtl92cu_set_media_status(struct ieee80211_hw *hw,
1291 				     enum nl80211_iftype type)
1292 {
1293 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1294 	u8 bt_msr = rtl_read_byte(rtlpriv, MSR);
1295 	enum led_ctl_mode ledaction = LED_CTL_NO_LINK;
1296 
1297 	bt_msr &= 0xfc;
1298 	if (type == NL80211_IFTYPE_UNSPECIFIED || type ==
1299 	    NL80211_IFTYPE_STATION) {
1300 		_rtl92cu_stop_tx_beacon(hw);
1301 		_rtl92cu_enable_bcn_sub_func(hw);
1302 	} else if (type == NL80211_IFTYPE_ADHOC || type == NL80211_IFTYPE_AP) {
1303 		_rtl92cu_resume_tx_beacon(hw);
1304 		_rtl92cu_disable_bcn_sub_func(hw);
1305 	} else {
1306 		RT_TRACE(rtlpriv, COMP_ERR, DBG_WARNING,
1307 			 "Set HW_VAR_MEDIA_STATUS:No such media status(%x)\n",
1308 			 type);
1309 	}
1310 	switch (type) {
1311 	case NL80211_IFTYPE_UNSPECIFIED:
1312 		bt_msr |= MSR_NOLINK;
1313 		ledaction = LED_CTL_LINK;
1314 		RT_TRACE(rtlpriv, COMP_INIT, DBG_TRACE,
1315 			 "Set Network type to NO LINK!\n");
1316 		break;
1317 	case NL80211_IFTYPE_ADHOC:
1318 		bt_msr |= MSR_ADHOC;
1319 		RT_TRACE(rtlpriv, COMP_INIT, DBG_TRACE,
1320 			 "Set Network type to Ad Hoc!\n");
1321 		break;
1322 	case NL80211_IFTYPE_STATION:
1323 		bt_msr |= MSR_INFRA;
1324 		ledaction = LED_CTL_LINK;
1325 		RT_TRACE(rtlpriv, COMP_INIT, DBG_TRACE,
1326 			 "Set Network type to STA!\n");
1327 		break;
1328 	case NL80211_IFTYPE_AP:
1329 		bt_msr |= MSR_AP;
1330 		RT_TRACE(rtlpriv, COMP_INIT, DBG_TRACE,
1331 			 "Set Network type to AP!\n");
1332 		break;
1333 	default:
1334 		pr_err("Network type %d not supported!\n", type);
1335 		goto error_out;
1336 	}
1337 	rtl_write_byte(rtlpriv, MSR, bt_msr);
1338 	rtlpriv->cfg->ops->led_control(hw, ledaction);
1339 	if ((bt_msr & MSR_MASK) == MSR_AP)
1340 		rtl_write_byte(rtlpriv, REG_BCNTCFG + 1, 0x00);
1341 	else
1342 		rtl_write_byte(rtlpriv, REG_BCNTCFG + 1, 0x66);
1343 	return 0;
1344 error_out:
1345 	return 1;
1346 }
1347 
1348 void rtl92cu_card_disable(struct ieee80211_hw *hw)
1349 {
1350 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1351 	struct rtl_ps_ctl *ppsc = rtl_psc(rtl_priv(hw));
1352 	struct rtl_usb *rtlusb = rtl_usbdev(rtl_usbpriv(hw));
1353 	struct rtl_mac *mac = rtl_mac(rtl_priv(hw));
1354 	enum nl80211_iftype opmode;
1355 
1356 	mac->link_state = MAC80211_NOLINK;
1357 	opmode = NL80211_IFTYPE_UNSPECIFIED;
1358 	_rtl92cu_set_media_status(hw, opmode);
1359 	rtlpriv->cfg->ops->led_control(hw, LED_CTL_POWER_OFF);
1360 	RT_SET_PS_LEVEL(ppsc, RT_RF_OFF_LEVL_HALT_NIC);
1361 	if (rtlusb->disableHWSM)
1362 		_CardDisableHWSM(hw);
1363 	else
1364 		_CardDisableWithoutHWSM(hw);
1365 
1366 	/* after power off we should do iqk again */
1367 	rtlpriv->phy.iqk_initialized = false;
1368 }
1369 
1370 void rtl92cu_set_check_bssid(struct ieee80211_hw *hw, bool check_bssid)
1371 {
1372 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1373 	struct rtl_hal *rtlhal = rtl_hal(rtlpriv);
1374 	u32 reg_rcr;
1375 
1376 	if (rtlpriv->psc.rfpwr_state != ERFON)
1377 		return;
1378 
1379 	rtlpriv->cfg->ops->get_hw_reg(hw, HW_VAR_RCR, (u8 *)(&reg_rcr));
1380 
1381 	if (check_bssid) {
1382 		u8 tmp;
1383 		if (IS_NORMAL_CHIP(rtlhal->version)) {
1384 			reg_rcr |= (RCR_CBSSID_DATA | RCR_CBSSID_BCN);
1385 			tmp = BIT(4);
1386 		} else {
1387 			reg_rcr |= RCR_CBSSID;
1388 			tmp = BIT(4) | BIT(5);
1389 		}
1390 		rtlpriv->cfg->ops->set_hw_reg(hw, HW_VAR_RCR,
1391 					      (u8 *) (&reg_rcr));
1392 		_rtl92cu_set_bcn_ctrl_reg(hw, 0, tmp);
1393 	} else {
1394 		u8 tmp;
1395 		if (IS_NORMAL_CHIP(rtlhal->version)) {
1396 			reg_rcr &= ~(RCR_CBSSID_DATA | RCR_CBSSID_BCN);
1397 			tmp = BIT(4);
1398 		} else {
1399 			reg_rcr &= ~RCR_CBSSID;
1400 			tmp = BIT(4) | BIT(5);
1401 		}
1402 		reg_rcr &= (~(RCR_CBSSID_DATA | RCR_CBSSID_BCN));
1403 		rtlpriv->cfg->ops->set_hw_reg(hw,
1404 					      HW_VAR_RCR, (u8 *) (&reg_rcr));
1405 		_rtl92cu_set_bcn_ctrl_reg(hw, tmp, 0);
1406 	}
1407 }
1408 
1409 /*========================================================================== */
1410 
1411 int rtl92cu_set_network_type(struct ieee80211_hw *hw, enum nl80211_iftype type)
1412 {
1413 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1414 
1415 	if (_rtl92cu_set_media_status(hw, type))
1416 		return -EOPNOTSUPP;
1417 
1418 	if (rtlpriv->mac80211.link_state == MAC80211_LINKED) {
1419 		if (type != NL80211_IFTYPE_AP)
1420 			rtl92cu_set_check_bssid(hw, true);
1421 	} else {
1422 		rtl92cu_set_check_bssid(hw, false);
1423 	}
1424 
1425 	return 0;
1426 }
1427 
1428 static void _beacon_function_enable(struct ieee80211_hw *hw)
1429 {
1430 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1431 
1432 	_rtl92cu_set_bcn_ctrl_reg(hw, (BIT(4) | BIT(3) | BIT(1)), 0x00);
1433 	rtl_write_byte(rtlpriv, REG_RD_CTRL+1, 0x6F);
1434 }
1435 
1436 void rtl92cu_set_beacon_related_registers(struct ieee80211_hw *hw)
1437 {
1438 
1439 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1440 	struct rtl_mac *mac = rtl_mac(rtl_priv(hw));
1441 	u16 bcn_interval, atim_window;
1442 	u32 value32;
1443 
1444 	bcn_interval = mac->beacon_interval;
1445 	atim_window = 2;	/*FIX MERGE */
1446 	rtl_write_word(rtlpriv, REG_ATIMWND, atim_window);
1447 	rtl_write_word(rtlpriv, REG_BCN_INTERVAL, bcn_interval);
1448 	_rtl92cu_init_beacon_parameters(hw);
1449 	rtl_write_byte(rtlpriv, REG_SLOT, 0x09);
1450 	/*
1451 	 * Force beacon frame transmission even after receiving beacon frame
1452 	 * from other ad hoc STA
1453 	 *
1454 	 *
1455 	 * Reset TSF Timer to zero, added by Roger. 2008.06.24
1456 	 */
1457 	value32 = rtl_read_dword(rtlpriv, REG_TCR);
1458 	value32 &= ~TSFRST;
1459 	rtl_write_dword(rtlpriv, REG_TCR, value32);
1460 	value32 |= TSFRST;
1461 	rtl_write_dword(rtlpriv, REG_TCR, value32);
1462 	RT_TRACE(rtlpriv, COMP_INIT|COMP_BEACON, DBG_LOUD,
1463 		 "SetBeaconRelatedRegisters8192CUsb(): Set TCR(%x)\n",
1464 		 value32);
1465 	/* TODO: Modify later (Find the right parameters)
1466 	 * NOTE: Fix test chip's bug (about contention windows's randomness) */
1467 	if ((mac->opmode == NL80211_IFTYPE_ADHOC) ||
1468 	    (mac->opmode == NL80211_IFTYPE_MESH_POINT) ||
1469 	    (mac->opmode == NL80211_IFTYPE_AP)) {
1470 		rtl_write_byte(rtlpriv, REG_RXTSF_OFFSET_CCK, 0x50);
1471 		rtl_write_byte(rtlpriv, REG_RXTSF_OFFSET_OFDM, 0x50);
1472 	}
1473 	_beacon_function_enable(hw);
1474 }
1475 
1476 void rtl92cu_set_beacon_interval(struct ieee80211_hw *hw)
1477 {
1478 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1479 	struct rtl_mac *mac = rtl_mac(rtl_priv(hw));
1480 	u16 bcn_interval = mac->beacon_interval;
1481 
1482 	RT_TRACE(rtlpriv, COMP_BEACON, DBG_DMESG, "beacon_interval:%d\n",
1483 		 bcn_interval);
1484 	rtl_write_word(rtlpriv, REG_BCN_INTERVAL, bcn_interval);
1485 }
1486 
1487 void rtl92cu_update_interrupt_mask(struct ieee80211_hw *hw,
1488 				   u32 add_msr, u32 rm_msr)
1489 {
1490 }
1491 
1492 void rtl92cu_get_hw_reg(struct ieee80211_hw *hw, u8 variable, u8 *val)
1493 {
1494 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1495 	struct rtl_ps_ctl *ppsc = rtl_psc(rtl_priv(hw));
1496 	struct rtl_mac *mac = rtl_mac(rtl_priv(hw));
1497 
1498 	switch (variable) {
1499 	case HW_VAR_RCR:
1500 		*((u32 *)(val)) = mac->rx_conf;
1501 		break;
1502 	case HW_VAR_RF_STATE:
1503 		*((enum rf_pwrstate *)(val)) = ppsc->rfpwr_state;
1504 		break;
1505 	case HW_VAR_FWLPS_RF_ON:{
1506 			enum rf_pwrstate rfState;
1507 			u32 val_rcr;
1508 
1509 			rtlpriv->cfg->ops->get_hw_reg(hw, HW_VAR_RF_STATE,
1510 						      (u8 *)(&rfState));
1511 			if (rfState == ERFOFF) {
1512 				*((bool *) (val)) = true;
1513 			} else {
1514 				val_rcr = rtl_read_dword(rtlpriv, REG_RCR);
1515 				val_rcr &= 0x00070000;
1516 				if (val_rcr)
1517 					*((bool *) (val)) = false;
1518 				else
1519 					*((bool *) (val)) = true;
1520 			}
1521 			break;
1522 		}
1523 	case HW_VAR_FW_PSMODE_STATUS:
1524 		*((bool *) (val)) = ppsc->fw_current_inpsmode;
1525 		break;
1526 	case HW_VAR_CORRECT_TSF:{
1527 			u64 tsf;
1528 			u32 *ptsf_low = (u32 *)&tsf;
1529 			u32 *ptsf_high = ((u32 *)&tsf) + 1;
1530 
1531 			*ptsf_high = rtl_read_dword(rtlpriv, (REG_TSFTR + 4));
1532 			*ptsf_low = rtl_read_dword(rtlpriv, REG_TSFTR);
1533 			*((u64 *)(val)) = tsf;
1534 			break;
1535 		}
1536 	case HW_VAR_MGT_FILTER:
1537 		*((u16 *) (val)) = rtl_read_word(rtlpriv, REG_RXFLTMAP0);
1538 		break;
1539 	case HW_VAR_CTRL_FILTER:
1540 		*((u16 *) (val)) = rtl_read_word(rtlpriv, REG_RXFLTMAP1);
1541 		break;
1542 	case HW_VAR_DATA_FILTER:
1543 		*((u16 *) (val)) = rtl_read_word(rtlpriv, REG_RXFLTMAP2);
1544 		break;
1545 	case HAL_DEF_WOWLAN:
1546 		break;
1547 	default:
1548 		pr_err("switch case %#x not processed\n", variable);
1549 		break;
1550 	}
1551 }
1552 
1553 static bool usb_cmd_send_packet(struct ieee80211_hw *hw, struct sk_buff *skb)
1554 {
1555   /* Currently nothing happens here.
1556    * Traffic stops after some seconds in WPA2 802.11n mode.
1557    * Maybe because rtl8192cu chip should be set from here?
1558    * If I understand correctly, the realtek vendor driver sends some urbs
1559    * if its "here".
1560    *
1561    * This is maybe necessary:
1562    * rtlpriv->cfg->ops->fill_tx_cmddesc(hw, buffer, 1, 1, skb);
1563    */
1564 	return true;
1565 }
1566 
1567 void rtl92cu_set_hw_reg(struct ieee80211_hw *hw, u8 variable, u8 *val)
1568 {
1569 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1570 	struct rtl_mac *mac = rtl_mac(rtl_priv(hw));
1571 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
1572 	struct rtl_efuse *rtlefuse = rtl_efuse(rtl_priv(hw));
1573 	struct rtl_ps_ctl *ppsc = rtl_psc(rtl_priv(hw));
1574 	enum wireless_mode wirelessmode = mac->mode;
1575 	u8 idx = 0;
1576 
1577 	switch (variable) {
1578 	case HW_VAR_ETHER_ADDR:{
1579 			for (idx = 0; idx < ETH_ALEN; idx++) {
1580 				rtl_write_byte(rtlpriv, (REG_MACID + idx),
1581 					       val[idx]);
1582 			}
1583 			break;
1584 		}
1585 	case HW_VAR_BASIC_RATE:{
1586 			u16 rate_cfg = ((u16 *) val)[0];
1587 			u8 rate_index = 0;
1588 
1589 			rate_cfg &= 0x15f;
1590 			/* TODO */
1591 			/* if (mac->current_network.vender == HT_IOT_PEER_CISCO
1592 			 *     && ((rate_cfg & 0x150) == 0)) {
1593 			 *	  rate_cfg |= 0x010;
1594 			 * } */
1595 			rate_cfg |= 0x01;
1596 			rtl_write_byte(rtlpriv, REG_RRSR, rate_cfg & 0xff);
1597 			rtl_write_byte(rtlpriv, REG_RRSR + 1,
1598 				       (rate_cfg >> 8) & 0xff);
1599 			while (rate_cfg > 0x1) {
1600 				rate_cfg >>= 1;
1601 				rate_index++;
1602 			}
1603 			rtl_write_byte(rtlpriv, REG_INIRTS_RATE_SEL,
1604 				       rate_index);
1605 			break;
1606 		}
1607 	case HW_VAR_BSSID:{
1608 			for (idx = 0; idx < ETH_ALEN; idx++) {
1609 				rtl_write_byte(rtlpriv, (REG_BSSID + idx),
1610 					       val[idx]);
1611 			}
1612 			break;
1613 		}
1614 	case HW_VAR_SIFS:{
1615 			rtl_write_byte(rtlpriv, REG_SIFS_CCK + 1, val[0]);
1616 			rtl_write_byte(rtlpriv, REG_SIFS_OFDM + 1, val[1]);
1617 			rtl_write_byte(rtlpriv, REG_SPEC_SIFS + 1, val[0]);
1618 			rtl_write_byte(rtlpriv, REG_MAC_SPEC_SIFS + 1, val[0]);
1619 			rtl_write_byte(rtlpriv, REG_R2T_SIFS+1, val[0]);
1620 			rtl_write_byte(rtlpriv, REG_T2T_SIFS+1, val[0]);
1621 			RT_TRACE(rtlpriv, COMP_MLME, DBG_LOUD, "HW_VAR_SIFS\n");
1622 			break;
1623 		}
1624 	case HW_VAR_SLOT_TIME:{
1625 			u8 e_aci;
1626 			u8 QOS_MODE = 1;
1627 
1628 			rtl_write_byte(rtlpriv, REG_SLOT, val[0]);
1629 			RT_TRACE(rtlpriv, COMP_MLME, DBG_LOUD,
1630 				 "HW_VAR_SLOT_TIME %x\n", val[0]);
1631 			if (QOS_MODE) {
1632 				for (e_aci = 0; e_aci < AC_MAX; e_aci++)
1633 					rtlpriv->cfg->ops->set_hw_reg(hw,
1634 								HW_VAR_AC_PARAM,
1635 								&e_aci);
1636 			} else {
1637 				u8 sifstime = 0;
1638 				u8	u1bAIFS;
1639 
1640 				if (IS_WIRELESS_MODE_A(wirelessmode) ||
1641 				    IS_WIRELESS_MODE_N_24G(wirelessmode) ||
1642 				    IS_WIRELESS_MODE_N_5G(wirelessmode))
1643 					sifstime = 16;
1644 				else
1645 					sifstime = 10;
1646 				u1bAIFS = sifstime + (2 *  val[0]);
1647 				rtl_write_byte(rtlpriv, REG_EDCA_VO_PARAM,
1648 					       u1bAIFS);
1649 				rtl_write_byte(rtlpriv, REG_EDCA_VI_PARAM,
1650 					       u1bAIFS);
1651 				rtl_write_byte(rtlpriv, REG_EDCA_BE_PARAM,
1652 					       u1bAIFS);
1653 				rtl_write_byte(rtlpriv, REG_EDCA_BK_PARAM,
1654 					       u1bAIFS);
1655 			}
1656 			break;
1657 		}
1658 	case HW_VAR_ACK_PREAMBLE:{
1659 			u8 reg_tmp;
1660 			u8 short_preamble = (bool)*val;
1661 			reg_tmp = 0;
1662 			if (short_preamble)
1663 				reg_tmp |= 0x80;
1664 			rtl_write_byte(rtlpriv, REG_RRSR + 2, reg_tmp);
1665 			break;
1666 		}
1667 	case HW_VAR_AMPDU_MIN_SPACE:{
1668 			u8 min_spacing_to_set;
1669 			u8 sec_min_space;
1670 
1671 			min_spacing_to_set = *val;
1672 			if (min_spacing_to_set <= 7) {
1673 				switch (rtlpriv->sec.pairwise_enc_algorithm) {
1674 				case NO_ENCRYPTION:
1675 				case AESCCMP_ENCRYPTION:
1676 					sec_min_space = 0;
1677 					break;
1678 				case WEP40_ENCRYPTION:
1679 				case WEP104_ENCRYPTION:
1680 				case TKIP_ENCRYPTION:
1681 					sec_min_space = 6;
1682 					break;
1683 				default:
1684 					sec_min_space = 7;
1685 					break;
1686 				}
1687 				if (min_spacing_to_set < sec_min_space)
1688 					min_spacing_to_set = sec_min_space;
1689 				mac->min_space_cfg = ((mac->min_space_cfg &
1690 						     0xf8) |
1691 						     min_spacing_to_set);
1692 				*val = min_spacing_to_set;
1693 				RT_TRACE(rtlpriv, COMP_MLME, DBG_LOUD,
1694 					 "Set HW_VAR_AMPDU_MIN_SPACE: %#x\n",
1695 					 mac->min_space_cfg);
1696 				rtl_write_byte(rtlpriv, REG_AMPDU_MIN_SPACE,
1697 					       mac->min_space_cfg);
1698 			}
1699 			break;
1700 		}
1701 	case HW_VAR_SHORTGI_DENSITY:{
1702 			u8 density_to_set;
1703 
1704 			density_to_set = *val;
1705 			density_to_set &= 0x1f;
1706 			mac->min_space_cfg &= 0x07;
1707 			mac->min_space_cfg |= (density_to_set << 3);
1708 			RT_TRACE(rtlpriv, COMP_MLME, DBG_LOUD,
1709 				 "Set HW_VAR_SHORTGI_DENSITY: %#x\n",
1710 				 mac->min_space_cfg);
1711 			rtl_write_byte(rtlpriv, REG_AMPDU_MIN_SPACE,
1712 				       mac->min_space_cfg);
1713 			break;
1714 		}
1715 	case HW_VAR_AMPDU_FACTOR:{
1716 			u8 regtoset_normal[4] = {0x41, 0xa8, 0x72, 0xb9};
1717 			u8 factor_toset;
1718 			u8 *p_regtoset = NULL;
1719 			u8 index = 0;
1720 
1721 			p_regtoset = regtoset_normal;
1722 			factor_toset = *val;
1723 			if (factor_toset <= 3) {
1724 				factor_toset = (1 << (factor_toset + 2));
1725 				if (factor_toset > 0xf)
1726 					factor_toset = 0xf;
1727 				for (index = 0; index < 4; index++) {
1728 					if ((p_regtoset[index] & 0xf0) >
1729 					    (factor_toset << 4))
1730 						p_regtoset[index] =
1731 						     (p_regtoset[index] & 0x0f)
1732 						     | (factor_toset << 4);
1733 					if ((p_regtoset[index] & 0x0f) >
1734 					     factor_toset)
1735 						p_regtoset[index] =
1736 						     (p_regtoset[index] & 0xf0)
1737 						     | (factor_toset);
1738 					rtl_write_byte(rtlpriv,
1739 						       (REG_AGGLEN_LMT + index),
1740 						       p_regtoset[index]);
1741 				}
1742 				RT_TRACE(rtlpriv, COMP_MLME, DBG_LOUD,
1743 					 "Set HW_VAR_AMPDU_FACTOR: %#x\n",
1744 					 factor_toset);
1745 			}
1746 			break;
1747 		}
1748 	case HW_VAR_AC_PARAM:{
1749 			u8 e_aci = *val;
1750 			u32 u4b_ac_param;
1751 			u16 cw_min = le16_to_cpu(mac->ac[e_aci].cw_min);
1752 			u16 cw_max = le16_to_cpu(mac->ac[e_aci].cw_max);
1753 			u16 tx_op = le16_to_cpu(mac->ac[e_aci].tx_op);
1754 
1755 			u4b_ac_param = (u32) mac->ac[e_aci].aifs;
1756 			u4b_ac_param |= (u32) ((cw_min & 0xF) <<
1757 					 AC_PARAM_ECW_MIN_OFFSET);
1758 			u4b_ac_param |= (u32) ((cw_max & 0xF) <<
1759 					 AC_PARAM_ECW_MAX_OFFSET);
1760 			u4b_ac_param |= (u32) tx_op << AC_PARAM_TXOP_OFFSET;
1761 			RT_TRACE(rtlpriv, COMP_MLME, DBG_LOUD,
1762 				 "queue:%x, ac_param:%x\n",
1763 				 e_aci, u4b_ac_param);
1764 			switch (e_aci) {
1765 			case AC1_BK:
1766 				rtl_write_dword(rtlpriv, REG_EDCA_BK_PARAM,
1767 						u4b_ac_param);
1768 				break;
1769 			case AC0_BE:
1770 				rtl_write_dword(rtlpriv, REG_EDCA_BE_PARAM,
1771 						u4b_ac_param);
1772 				break;
1773 			case AC2_VI:
1774 				rtl_write_dword(rtlpriv, REG_EDCA_VI_PARAM,
1775 						u4b_ac_param);
1776 				break;
1777 			case AC3_VO:
1778 				rtl_write_dword(rtlpriv, REG_EDCA_VO_PARAM,
1779 						u4b_ac_param);
1780 				break;
1781 			default:
1782 				WARN_ONCE(true, "rtl8192cu: invalid aci: %d !\n",
1783 					  e_aci);
1784 				break;
1785 			}
1786 			break;
1787 		}
1788 	case HW_VAR_RCR:{
1789 			rtl_write_dword(rtlpriv, REG_RCR, ((u32 *) (val))[0]);
1790 			mac->rx_conf = ((u32 *) (val))[0];
1791 			RT_TRACE(rtlpriv, COMP_RECV, DBG_DMESG,
1792 				 "### Set RCR(0x%08x) ###\n", mac->rx_conf);
1793 			break;
1794 		}
1795 	case HW_VAR_RETRY_LIMIT:{
1796 			u8 retry_limit = val[0];
1797 
1798 			rtl_write_word(rtlpriv, REG_RL,
1799 				       retry_limit << RETRY_LIMIT_SHORT_SHIFT |
1800 				       retry_limit << RETRY_LIMIT_LONG_SHIFT);
1801 			RT_TRACE(rtlpriv, COMP_MLME, DBG_DMESG,
1802 				 "Set HW_VAR_RETRY_LIMIT(0x%08x)\n",
1803 				 retry_limit);
1804 			break;
1805 		}
1806 	case HW_VAR_DUAL_TSF_RST:
1807 		rtl_write_byte(rtlpriv, REG_DUAL_TSF_RST, (BIT(0) | BIT(1)));
1808 		break;
1809 	case HW_VAR_EFUSE_BYTES:
1810 		rtlefuse->efuse_usedbytes = *((u16 *) val);
1811 		break;
1812 	case HW_VAR_EFUSE_USAGE:
1813 		rtlefuse->efuse_usedpercentage = *val;
1814 		break;
1815 	case HW_VAR_IO_CMD:
1816 		rtl92c_phy_set_io_cmd(hw, (*(enum io_type *)val));
1817 		break;
1818 	case HW_VAR_WPA_CONFIG:
1819 		rtl_write_byte(rtlpriv, REG_SECCFG, *val);
1820 		break;
1821 	case HW_VAR_SET_RPWM:{
1822 			u8 rpwm_val = rtl_read_byte(rtlpriv, REG_USB_HRPWM);
1823 
1824 			if (rpwm_val & BIT(7))
1825 				rtl_write_byte(rtlpriv, REG_USB_HRPWM, *val);
1826 			else
1827 				rtl_write_byte(rtlpriv, REG_USB_HRPWM,
1828 					       *val | BIT(7));
1829 			break;
1830 		}
1831 	case HW_VAR_H2C_FW_PWRMODE:{
1832 			u8 psmode = *val;
1833 
1834 			if ((psmode != FW_PS_ACTIVE_MODE) &&
1835 			   (!IS_92C_SERIAL(rtlhal->version)))
1836 				rtl92c_dm_rf_saving(hw, true);
1837 			rtl92c_set_fw_pwrmode_cmd(hw, (*val));
1838 			break;
1839 		}
1840 	case HW_VAR_FW_PSMODE_STATUS:
1841 		ppsc->fw_current_inpsmode = *((bool *) val);
1842 		break;
1843 	case HW_VAR_H2C_FW_JOINBSSRPT:{
1844 			u8 mstatus = *val;
1845 			u8 tmp_reg422;
1846 			bool recover = false;
1847 
1848 			if (mstatus == RT_MEDIA_CONNECT) {
1849 				rtlpriv->cfg->ops->set_hw_reg(hw,
1850 							 HW_VAR_AID, NULL);
1851 				rtl_write_byte(rtlpriv, REG_CR + 1, 0x03);
1852 				_rtl92cu_set_bcn_ctrl_reg(hw, 0, BIT(3));
1853 				_rtl92cu_set_bcn_ctrl_reg(hw, BIT(4), 0);
1854 				tmp_reg422 = rtl_read_byte(rtlpriv,
1855 							REG_FWHW_TXQ_CTRL + 2);
1856 				if (tmp_reg422 & BIT(6))
1857 					recover = true;
1858 				rtl_write_byte(rtlpriv, REG_FWHW_TXQ_CTRL + 2,
1859 					       tmp_reg422 & (~BIT(6)));
1860 				rtl92c_set_fw_rsvdpagepkt(hw,
1861 							  &usb_cmd_send_packet);
1862 				_rtl92cu_set_bcn_ctrl_reg(hw, BIT(3), 0);
1863 				_rtl92cu_set_bcn_ctrl_reg(hw, 0, BIT(4));
1864 				if (recover)
1865 					rtl_write_byte(rtlpriv,
1866 						 REG_FWHW_TXQ_CTRL + 2,
1867 						tmp_reg422 | BIT(6));
1868 				rtl_write_byte(rtlpriv, REG_CR + 1, 0x02);
1869 			}
1870 			rtl92c_set_fw_joinbss_report_cmd(hw, (*val));
1871 			break;
1872 		}
1873 	case HW_VAR_AID:{
1874 			u16 u2btmp;
1875 
1876 			u2btmp = rtl_read_word(rtlpriv, REG_BCN_PSR_RPT);
1877 			u2btmp &= 0xC000;
1878 			rtl_write_word(rtlpriv, REG_BCN_PSR_RPT,
1879 				       (u2btmp | mac->assoc_id));
1880 			break;
1881 		}
1882 	case HW_VAR_CORRECT_TSF:{
1883 			u8 btype_ibss = val[0];
1884 
1885 			if (btype_ibss)
1886 				_rtl92cu_stop_tx_beacon(hw);
1887 			_rtl92cu_set_bcn_ctrl_reg(hw, 0, BIT(3));
1888 			rtl_write_dword(rtlpriv, REG_TSFTR, (u32)(mac->tsf &
1889 					0xffffffff));
1890 			rtl_write_dword(rtlpriv, REG_TSFTR + 4,
1891 					(u32)((mac->tsf >> 32) & 0xffffffff));
1892 			_rtl92cu_set_bcn_ctrl_reg(hw, BIT(3), 0);
1893 			if (btype_ibss)
1894 				_rtl92cu_resume_tx_beacon(hw);
1895 			break;
1896 		}
1897 	case HW_VAR_MGT_FILTER:
1898 		rtl_write_word(rtlpriv, REG_RXFLTMAP0, *(u16 *)val);
1899 		mac->rx_mgt_filter = *(u16 *)val;
1900 		break;
1901 	case HW_VAR_CTRL_FILTER:
1902 		rtl_write_word(rtlpriv, REG_RXFLTMAP1, *(u16 *)val);
1903 		mac->rx_ctrl_filter = *(u16 *)val;
1904 		break;
1905 	case HW_VAR_DATA_FILTER:
1906 		rtl_write_word(rtlpriv, REG_RXFLTMAP2, *(u16 *)val);
1907 		mac->rx_data_filter = *(u16 *)val;
1908 		break;
1909 	case HW_VAR_KEEP_ALIVE:{
1910 			u8 array[2];
1911 			array[0] = 0xff;
1912 			array[1] = *((u8 *)val);
1913 			rtl92c_fill_h2c_cmd(hw, H2C_92C_KEEP_ALIVE_CTRL, 2,
1914 					    array);
1915 			break;
1916 		}
1917 	default:
1918 		pr_err("switch case %#x not processed\n", variable);
1919 		break;
1920 	}
1921 }
1922 
1923 static void rtl92cu_update_hal_rate_table(struct ieee80211_hw *hw,
1924 					  struct ieee80211_sta *sta)
1925 {
1926 	struct rtl_priv *rtlpriv = rtl_priv(hw);
1927 	struct rtl_phy *rtlphy = &(rtlpriv->phy);
1928 	struct rtl_mac *mac = rtl_mac(rtl_priv(hw));
1929 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
1930 	u32 ratr_value;
1931 	u8 ratr_index = 0;
1932 	u8 nmode = mac->ht_enable;
1933 	u8 mimo_ps = IEEE80211_SMPS_OFF;
1934 	u16 shortgi_rate;
1935 	u32 tmp_ratr_value;
1936 	u8 curtxbw_40mhz = mac->bw_40;
1937 	u8 curshortgi_40mhz = (sta->ht_cap.cap & IEEE80211_HT_CAP_SGI_40) ?
1938 			       1 : 0;
1939 	u8 curshortgi_20mhz = (sta->ht_cap.cap & IEEE80211_HT_CAP_SGI_20) ?
1940 			       1 : 0;
1941 	enum wireless_mode wirelessmode = mac->mode;
1942 
1943 	if (rtlhal->current_bandtype == BAND_ON_5G)
1944 		ratr_value = sta->supp_rates[1] << 4;
1945 	else
1946 		ratr_value = sta->supp_rates[0];
1947 	if (mac->opmode == NL80211_IFTYPE_ADHOC)
1948 		ratr_value = 0xfff;
1949 
1950 	ratr_value |= (sta->ht_cap.mcs.rx_mask[1] << 20 |
1951 			sta->ht_cap.mcs.rx_mask[0] << 12);
1952 	switch (wirelessmode) {
1953 	case WIRELESS_MODE_B:
1954 		if (ratr_value & 0x0000000c)
1955 			ratr_value &= 0x0000000d;
1956 		else
1957 			ratr_value &= 0x0000000f;
1958 		break;
1959 	case WIRELESS_MODE_G:
1960 		ratr_value &= 0x00000FF5;
1961 		break;
1962 	case WIRELESS_MODE_N_24G:
1963 	case WIRELESS_MODE_N_5G:
1964 		nmode = 1;
1965 		if (mimo_ps == IEEE80211_SMPS_STATIC) {
1966 			ratr_value &= 0x0007F005;
1967 		} else {
1968 			u32 ratr_mask;
1969 
1970 			if (get_rf_type(rtlphy) == RF_1T2R ||
1971 			    get_rf_type(rtlphy) == RF_1T1R)
1972 				ratr_mask = 0x000ff005;
1973 			else
1974 				ratr_mask = 0x0f0ff005;
1975 
1976 			ratr_value &= ratr_mask;
1977 		}
1978 		break;
1979 	default:
1980 		if (rtlphy->rf_type == RF_1T2R)
1981 			ratr_value &= 0x000ff0ff;
1982 		else
1983 			ratr_value &= 0x0f0ff0ff;
1984 
1985 		break;
1986 	}
1987 
1988 	ratr_value &= 0x0FFFFFFF;
1989 
1990 	if (nmode && ((curtxbw_40mhz &&
1991 			 curshortgi_40mhz) || (!curtxbw_40mhz &&
1992 					       curshortgi_20mhz))) {
1993 
1994 		ratr_value |= 0x10000000;
1995 		tmp_ratr_value = (ratr_value >> 12);
1996 
1997 		for (shortgi_rate = 15; shortgi_rate > 0; shortgi_rate--) {
1998 			if ((1 << shortgi_rate) & tmp_ratr_value)
1999 				break;
2000 		}
2001 
2002 		shortgi_rate = (shortgi_rate << 12) | (shortgi_rate << 8) |
2003 		    (shortgi_rate << 4) | (shortgi_rate);
2004 	}
2005 
2006 	rtl_write_dword(rtlpriv, REG_ARFR0 + ratr_index * 4, ratr_value);
2007 
2008 	RT_TRACE(rtlpriv, COMP_RATR, DBG_DMESG, "%x\n",
2009 		 rtl_read_dword(rtlpriv, REG_ARFR0));
2010 }
2011 
2012 static void rtl92cu_update_hal_rate_mask(struct ieee80211_hw *hw,
2013 					 struct ieee80211_sta *sta,
2014 					 u8 rssi_level)
2015 {
2016 	struct rtl_priv *rtlpriv = rtl_priv(hw);
2017 	struct rtl_phy *rtlphy = &(rtlpriv->phy);
2018 	struct rtl_mac *mac = rtl_mac(rtl_priv(hw));
2019 	struct rtl_hal *rtlhal = rtl_hal(rtl_priv(hw));
2020 	struct rtl_sta_info *sta_entry = NULL;
2021 	u32 ratr_bitmap;
2022 	u8 ratr_index;
2023 	u8 curtxbw_40mhz = (sta->bandwidth >= IEEE80211_STA_RX_BW_40) ? 1 : 0;
2024 	u8 curshortgi_40mhz = curtxbw_40mhz &&
2025 			      (sta->ht_cap.cap & IEEE80211_HT_CAP_SGI_40) ?
2026 				1 : 0;
2027 	u8 curshortgi_20mhz = (sta->ht_cap.cap & IEEE80211_HT_CAP_SGI_20) ?
2028 				1 : 0;
2029 	enum wireless_mode wirelessmode = 0;
2030 	bool shortgi = false;
2031 	u8 rate_mask[5];
2032 	u8 macid = 0;
2033 	u8 mimo_ps = IEEE80211_SMPS_OFF;
2034 
2035 	sta_entry = (struct rtl_sta_info *) sta->drv_priv;
2036 	wirelessmode = sta_entry->wireless_mode;
2037 	if (mac->opmode == NL80211_IFTYPE_STATION ||
2038 	    mac->opmode == NL80211_IFTYPE_MESH_POINT)
2039 		curtxbw_40mhz = mac->bw_40;
2040 	else if (mac->opmode == NL80211_IFTYPE_AP ||
2041 		mac->opmode == NL80211_IFTYPE_ADHOC)
2042 		macid = sta->aid + 1;
2043 
2044 	if (rtlhal->current_bandtype == BAND_ON_5G)
2045 		ratr_bitmap = sta->supp_rates[1] << 4;
2046 	else
2047 		ratr_bitmap = sta->supp_rates[0];
2048 	if (mac->opmode == NL80211_IFTYPE_ADHOC)
2049 		ratr_bitmap = 0xfff;
2050 	ratr_bitmap |= (sta->ht_cap.mcs.rx_mask[1] << 20 |
2051 			sta->ht_cap.mcs.rx_mask[0] << 12);
2052 	switch (wirelessmode) {
2053 	case WIRELESS_MODE_B:
2054 		ratr_index = RATR_INX_WIRELESS_B;
2055 		if (ratr_bitmap & 0x0000000c)
2056 			ratr_bitmap &= 0x0000000d;
2057 		else
2058 			ratr_bitmap &= 0x0000000f;
2059 		break;
2060 	case WIRELESS_MODE_G:
2061 		ratr_index = RATR_INX_WIRELESS_GB;
2062 
2063 		if (rssi_level == 1)
2064 			ratr_bitmap &= 0x00000f00;
2065 		else if (rssi_level == 2)
2066 			ratr_bitmap &= 0x00000ff0;
2067 		else
2068 			ratr_bitmap &= 0x00000ff5;
2069 		break;
2070 	case WIRELESS_MODE_A:
2071 		ratr_index = RATR_INX_WIRELESS_A;
2072 		ratr_bitmap &= 0x00000ff0;
2073 		break;
2074 	case WIRELESS_MODE_N_24G:
2075 	case WIRELESS_MODE_N_5G:
2076 		ratr_index = RATR_INX_WIRELESS_NGB;
2077 
2078 		if (mimo_ps == IEEE80211_SMPS_STATIC) {
2079 			if (rssi_level == 1)
2080 				ratr_bitmap &= 0x00070000;
2081 			else if (rssi_level == 2)
2082 				ratr_bitmap &= 0x0007f000;
2083 			else
2084 				ratr_bitmap &= 0x0007f005;
2085 		} else {
2086 			if (rtlphy->rf_type == RF_1T2R ||
2087 			    rtlphy->rf_type == RF_1T1R) {
2088 				if (curtxbw_40mhz) {
2089 					if (rssi_level == 1)
2090 						ratr_bitmap &= 0x000f0000;
2091 					else if (rssi_level == 2)
2092 						ratr_bitmap &= 0x000ff000;
2093 					else
2094 						ratr_bitmap &= 0x000ff015;
2095 				} else {
2096 					if (rssi_level == 1)
2097 						ratr_bitmap &= 0x000f0000;
2098 					else if (rssi_level == 2)
2099 						ratr_bitmap &= 0x000ff000;
2100 					else
2101 						ratr_bitmap &= 0x000ff005;
2102 				}
2103 			} else {
2104 				if (curtxbw_40mhz) {
2105 					if (rssi_level == 1)
2106 						ratr_bitmap &= 0x0f0f0000;
2107 					else if (rssi_level == 2)
2108 						ratr_bitmap &= 0x0f0ff000;
2109 					else
2110 						ratr_bitmap &= 0x0f0ff015;
2111 				} else {
2112 					if (rssi_level == 1)
2113 						ratr_bitmap &= 0x0f0f0000;
2114 					else if (rssi_level == 2)
2115 						ratr_bitmap &= 0x0f0ff000;
2116 					else
2117 						ratr_bitmap &= 0x0f0ff005;
2118 				}
2119 			}
2120 		}
2121 
2122 		if ((curtxbw_40mhz && curshortgi_40mhz) ||
2123 		    (!curtxbw_40mhz && curshortgi_20mhz)) {
2124 
2125 			if (macid == 0)
2126 				shortgi = true;
2127 			else if (macid == 1)
2128 				shortgi = false;
2129 		}
2130 		break;
2131 	default:
2132 		ratr_index = RATR_INX_WIRELESS_NGB;
2133 
2134 		if (rtlphy->rf_type == RF_1T2R)
2135 			ratr_bitmap &= 0x000ff0ff;
2136 		else
2137 			ratr_bitmap &= 0x0f0ff0ff;
2138 		break;
2139 	}
2140 	sta_entry->ratr_index = ratr_index;
2141 
2142 	RT_TRACE(rtlpriv, COMP_RATR, DBG_DMESG,
2143 		 "ratr_bitmap :%x\n", ratr_bitmap);
2144 	*(u32 *)&rate_mask = (ratr_bitmap & 0x0fffffff) |
2145 				     (ratr_index << 28);
2146 	rate_mask[4] = macid | (shortgi ? 0x20 : 0x00) | 0x80;
2147 	RT_TRACE(rtlpriv, COMP_RATR, DBG_DMESG,
2148 		 "Rate_index:%x, ratr_val:%x, %5phC\n",
2149 		 ratr_index, ratr_bitmap, rate_mask);
2150 	memcpy(rtlpriv->rate_mask, rate_mask, 5);
2151 	/* rtl92c_fill_h2c_cmd() does USB I/O and will result in a
2152 	 * "scheduled while atomic" if called directly */
2153 	schedule_work(&rtlpriv->works.fill_h2c_cmd);
2154 
2155 	if (macid != 0)
2156 		sta_entry->ratr_index = ratr_index;
2157 }
2158 
2159 void rtl92cu_update_hal_rate_tbl(struct ieee80211_hw *hw,
2160 				 struct ieee80211_sta *sta,
2161 				 u8 rssi_level)
2162 {
2163 	struct rtl_priv *rtlpriv = rtl_priv(hw);
2164 
2165 	if (rtlpriv->dm.useramask)
2166 		rtl92cu_update_hal_rate_mask(hw, sta, rssi_level);
2167 	else
2168 		rtl92cu_update_hal_rate_table(hw, sta);
2169 }
2170 
2171 void rtl92cu_update_channel_access_setting(struct ieee80211_hw *hw)
2172 {
2173 	struct rtl_priv *rtlpriv = rtl_priv(hw);
2174 	struct rtl_mac *mac = rtl_mac(rtl_priv(hw));
2175 	u16 sifs_timer;
2176 
2177 	rtlpriv->cfg->ops->set_hw_reg(hw, HW_VAR_SLOT_TIME,
2178 				      &mac->slot_time);
2179 	if (!mac->ht_enable)
2180 		sifs_timer = 0x0a0a;
2181 	else
2182 		sifs_timer = 0x0e0e;
2183 	rtlpriv->cfg->ops->set_hw_reg(hw, HW_VAR_SIFS, (u8 *)&sifs_timer);
2184 }
2185 
2186 bool rtl92cu_gpio_radio_on_off_checking(struct ieee80211_hw *hw, u8 * valid)
2187 {
2188 	struct rtl_priv *rtlpriv = rtl_priv(hw);
2189 	struct rtl_ps_ctl *ppsc = rtl_psc(rtl_priv(hw));
2190 	enum rf_pwrstate e_rfpowerstate_toset, cur_rfstate;
2191 	u8 u1tmp = 0;
2192 	bool actuallyset = false;
2193 	unsigned long flag = 0;
2194 	/* to do - usb autosuspend */
2195 	u8 usb_autosuspend = 0;
2196 
2197 	if (ppsc->swrf_processing)
2198 		return false;
2199 	spin_lock_irqsave(&rtlpriv->locks.rf_ps_lock, flag);
2200 	if (ppsc->rfchange_inprogress) {
2201 		spin_unlock_irqrestore(&rtlpriv->locks.rf_ps_lock, flag);
2202 		return false;
2203 	} else {
2204 		ppsc->rfchange_inprogress = true;
2205 		spin_unlock_irqrestore(&rtlpriv->locks.rf_ps_lock, flag);
2206 	}
2207 	cur_rfstate = ppsc->rfpwr_state;
2208 	if (usb_autosuspend) {
2209 		/* to do................... */
2210 	} else {
2211 		if (ppsc->pwrdown_mode) {
2212 			u1tmp = rtl_read_byte(rtlpriv, REG_HSISR);
2213 			e_rfpowerstate_toset = (u1tmp & BIT(7)) ?
2214 					       ERFOFF : ERFON;
2215 			RT_TRACE(rtlpriv, COMP_POWER, DBG_DMESG,
2216 				 "pwrdown, 0x5c(BIT7)=%02x\n", u1tmp);
2217 		} else {
2218 			rtl_write_byte(rtlpriv, REG_MAC_PINMUX_CFG,
2219 				       rtl_read_byte(rtlpriv,
2220 				       REG_MAC_PINMUX_CFG) & ~(BIT(3)));
2221 			u1tmp = rtl_read_byte(rtlpriv, REG_GPIO_IO_SEL);
2222 			e_rfpowerstate_toset  = (u1tmp & BIT(3)) ?
2223 						 ERFON : ERFOFF;
2224 			RT_TRACE(rtlpriv, COMP_POWER, DBG_DMESG,
2225 				 "GPIO_IN=%02x\n", u1tmp);
2226 		}
2227 		RT_TRACE(rtlpriv, COMP_POWER, DBG_LOUD, "N-SS RF =%x\n",
2228 			 e_rfpowerstate_toset);
2229 	}
2230 	if ((ppsc->hwradiooff) && (e_rfpowerstate_toset == ERFON)) {
2231 		RT_TRACE(rtlpriv, COMP_POWER, DBG_LOUD,
2232 			 "GPIOChangeRF  - HW Radio ON, RF ON\n");
2233 		ppsc->hwradiooff = false;
2234 		actuallyset = true;
2235 	} else if ((!ppsc->hwradiooff) && (e_rfpowerstate_toset  ==
2236 		    ERFOFF)) {
2237 		RT_TRACE(rtlpriv, COMP_POWER, DBG_LOUD,
2238 			 "GPIOChangeRF  - HW Radio OFF\n");
2239 		ppsc->hwradiooff = true;
2240 		actuallyset = true;
2241 	} else {
2242 		RT_TRACE(rtlpriv, COMP_POWER, DBG_LOUD,
2243 			 "pHalData->bHwRadioOff and eRfPowerStateToSet do not match: pHalData->bHwRadioOff %x, eRfPowerStateToSet %x\n",
2244 			 ppsc->hwradiooff, e_rfpowerstate_toset);
2245 	}
2246 	if (actuallyset) {
2247 		ppsc->hwradiooff = true;
2248 		if (e_rfpowerstate_toset == ERFON) {
2249 			if ((ppsc->reg_rfps_level  & RT_RF_OFF_LEVL_ASPM) &&
2250 			     RT_IN_PS_LEVEL(ppsc, RT_RF_OFF_LEVL_ASPM))
2251 				RT_CLEAR_PS_LEVEL(ppsc, RT_RF_OFF_LEVL_ASPM);
2252 			else if ((ppsc->reg_rfps_level  & RT_RF_OFF_LEVL_PCI_D3)
2253 				 && RT_IN_PS_LEVEL(ppsc, RT_RF_OFF_LEVL_PCI_D3))
2254 				RT_CLEAR_PS_LEVEL(ppsc, RT_RF_OFF_LEVL_PCI_D3);
2255 		}
2256 		spin_lock_irqsave(&rtlpriv->locks.rf_ps_lock, flag);
2257 		ppsc->rfchange_inprogress = false;
2258 		spin_unlock_irqrestore(&rtlpriv->locks.rf_ps_lock, flag);
2259 		/* For power down module, we need to enable register block
2260 		 * contrl reg at 0x1c. Then enable power down control bit
2261 		 * of register 0x04 BIT4 and BIT15 as 1.
2262 		 */
2263 		if (ppsc->pwrdown_mode && e_rfpowerstate_toset == ERFOFF) {
2264 			/* Enable register area 0x0-0xc. */
2265 			rtl_write_byte(rtlpriv, REG_RSV_CTRL, 0x0);
2266 			rtl_write_word(rtlpriv, REG_APS_FSMCO, 0x8812);
2267 		}
2268 		if (e_rfpowerstate_toset == ERFOFF) {
2269 			if (ppsc->reg_rfps_level  & RT_RF_OFF_LEVL_ASPM)
2270 				RT_SET_PS_LEVEL(ppsc, RT_RF_OFF_LEVL_ASPM);
2271 			else if (ppsc->reg_rfps_level & RT_RF_OFF_LEVL_PCI_D3)
2272 				RT_SET_PS_LEVEL(ppsc, RT_RF_OFF_LEVL_PCI_D3);
2273 		}
2274 	} else if (e_rfpowerstate_toset == ERFOFF || cur_rfstate == ERFOFF) {
2275 		/* Enter D3 or ASPM after GPIO had been done. */
2276 		if (ppsc->reg_rfps_level  & RT_RF_OFF_LEVL_ASPM)
2277 			RT_SET_PS_LEVEL(ppsc, RT_RF_OFF_LEVL_ASPM);
2278 		else if (ppsc->reg_rfps_level  & RT_RF_OFF_LEVL_PCI_D3)
2279 			RT_SET_PS_LEVEL(ppsc, RT_RF_OFF_LEVL_PCI_D3);
2280 		spin_lock_irqsave(&rtlpriv->locks.rf_ps_lock, flag);
2281 		ppsc->rfchange_inprogress = false;
2282 		spin_unlock_irqrestore(&rtlpriv->locks.rf_ps_lock, flag);
2283 	} else {
2284 		spin_lock_irqsave(&rtlpriv->locks.rf_ps_lock, flag);
2285 		ppsc->rfchange_inprogress = false;
2286 		spin_unlock_irqrestore(&rtlpriv->locks.rf_ps_lock, flag);
2287 	}
2288 	*valid = 1;
2289 	return !ppsc->hwradiooff;
2290 }
2291