halphyrf_ce.c 30 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. * 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. #include "mp_precomp.h"
  26. #include "phydm_precomp.h"
  27. #define CALCULATE_SWINGTALBE_OFFSET(_offset, _direction, _size, _delta_thermal)\
  28. do { \
  29. u32 __offset = (u32)_offset; \
  30. u32 __size = (u32)_size; \
  31. for (__offset = 0; __offset < __size; __offset++) { \
  32. if (_delta_thermal < \
  33. thermal_threshold[_direction][__offset]) { \
  34. if (__offset != 0) \
  35. __offset--; \
  36. break; \
  37. } \
  38. } \
  39. if (__offset >= __size) \
  40. __offset = __size - 1; \
  41. } while (0)
  42. void configure_txpower_track(void *dm_void, struct txpwrtrack_cfg *config)
  43. {
  44. struct dm_struct *dm = (struct dm_struct *)dm_void;
  45. #if RTL8192E_SUPPORT
  46. if (dm->support_ic_type == ODM_RTL8192E)
  47. configure_txpower_track_8192e(config);
  48. #endif
  49. #if RTL8821A_SUPPORT
  50. if (dm->support_ic_type == ODM_RTL8821)
  51. configure_txpower_track_8821a(config);
  52. #endif
  53. #if RTL8812A_SUPPORT
  54. if (dm->support_ic_type == ODM_RTL8812)
  55. configure_txpower_track_8812a(config);
  56. #endif
  57. #if RTL8188E_SUPPORT
  58. if (dm->support_ic_type == ODM_RTL8188E)
  59. configure_txpower_track_8188e(config);
  60. #endif
  61. #if RTL8723B_SUPPORT
  62. if (dm->support_ic_type == ODM_RTL8723B)
  63. configure_txpower_track_8723b(config);
  64. #endif
  65. #if RTL8814A_SUPPORT
  66. if (dm->support_ic_type == ODM_RTL8814A)
  67. configure_txpower_track_8814a(config);
  68. #endif
  69. #if RTL8703B_SUPPORT
  70. if (dm->support_ic_type == ODM_RTL8703B)
  71. configure_txpower_track_8703b(config);
  72. #endif
  73. #if RTL8188F_SUPPORT
  74. if (dm->support_ic_type == ODM_RTL8188F)
  75. configure_txpower_track_8188f(config);
  76. #endif
  77. #if RTL8723D_SUPPORT
  78. if (dm->support_ic_type == ODM_RTL8723D)
  79. configure_txpower_track_8723d(config);
  80. #endif
  81. /* JJ ADD 20161014 */
  82. #if RTL8710B_SUPPORT
  83. if (dm->support_ic_type == ODM_RTL8710B)
  84. configure_txpower_track_8710b(config);
  85. #endif
  86. #if RTL8822B_SUPPORT
  87. if (dm->support_ic_type == ODM_RTL8822B)
  88. configure_txpower_track_8822b(config);
  89. #endif
  90. #if RTL8821C_SUPPORT
  91. if (dm->support_ic_type == ODM_RTL8821C)
  92. configure_txpower_track_8821c(config);
  93. #endif
  94. #if RTL8192F_SUPPORT
  95. if (dm->support_ic_type == ODM_RTL8192F)
  96. configure_txpower_track_8192f(config);
  97. #endif
  98. }
  99. /* **********************************************************************
  100. * <20121113, Kordan> This function should be called when tx_agc changed.
  101. * Otherwise the previous compensation is gone, because we record the
  102. * delta of temperature between two TxPowerTracking watch dogs.
  103. *
  104. * NOTE: If Tx BB swing or Tx scaling is varified during run-time, still
  105. * need to call this function.
  106. * **********************************************************************
  107. */
  108. void odm_clear_txpowertracking_state(void *dm_void)
  109. {
  110. struct dm_struct *dm = (struct dm_struct *)dm_void;
  111. struct _hal_rf_ *rf = &dm->rf_table;
  112. u8 p = 0;
  113. struct dm_rf_calibration_struct *cali_info = &dm->rf_calibrate_info;
  114. cali_info->bb_swing_idx_cck_base = cali_info->default_cck_index;
  115. cali_info->bb_swing_idx_cck = cali_info->default_cck_index;
  116. dm->rf_calibrate_info.CCK_index = 0;
  117. for (p = RF_PATH_A; p < MAX_RF_PATH; ++p) {
  118. cali_info->bb_swing_idx_ofdm_base[p]
  119. = cali_info->default_ofdm_index;
  120. cali_info->bb_swing_idx_ofdm[p] = cali_info->default_ofdm_index;
  121. cali_info->OFDM_index[p] = cali_info->default_ofdm_index;
  122. cali_info->power_index_offset[p] = 0;
  123. cali_info->delta_power_index[p] = 0;
  124. cali_info->delta_power_index_last[p] = 0;
  125. /* Initial Mix mode power tracking*/
  126. cali_info->absolute_ofdm_swing_idx[p] = 0;
  127. cali_info->remnant_ofdm_swing_idx[p] = 0;
  128. cali_info->kfree_offset[p] = 0;
  129. }
  130. /* Initial Mix mode power tracking*/
  131. cali_info->modify_tx_agc_flag_path_a = false;
  132. cali_info->modify_tx_agc_flag_path_b = false;
  133. cali_info->modify_tx_agc_flag_path_c = false;
  134. cali_info->modify_tx_agc_flag_path_d = false;
  135. cali_info->remnant_cck_swing_idx = 0;
  136. cali_info->thermal_value = rf->eeprom_thermal;
  137. cali_info->modify_tx_agc_value_cck = 0;
  138. cali_info->modify_tx_agc_value_ofdm = 0;
  139. }
  140. void odm_get_tracking_table(void *dm_void, u8 thermal_value, u8 delta)
  141. {
  142. struct dm_struct *dm = (struct dm_struct *)dm_void;
  143. struct dm_rf_calibration_struct *cali_info = &dm->rf_calibrate_info;
  144. struct _hal_rf_ *rf = &dm->rf_table;
  145. struct txpwrtrack_cfg c = {0};
  146. u8 p;
  147. /* 4 1. TWO tables decide the final index of OFDM/CCK swing table. */
  148. u8 *pwrtrk_tab_up_a = NULL;
  149. u8 *pwrtrk_tab_down_a = NULL;
  150. u8 *pwrtrk_tab_up_b = NULL;
  151. u8 *pwrtrk_tab_down_b = NULL;
  152. /*for 8814 add by Yu Chen*/
  153. u8 *pwrtrk_tab_up_c = NULL;
  154. u8 *pwrtrk_tab_down_c = NULL;
  155. u8 *pwrtrk_tab_up_d = NULL;
  156. u8 *pwrtrk_tab_down_d = NULL;
  157. /*for Xtal Offset by James.Tung*/
  158. s8 *xtal_tab_up = NULL;
  159. s8 *xtal_tab_down = NULL;
  160. configure_txpower_track(dm, &c);
  161. (*c.get_delta_swing_table)(dm,
  162. (u8 **)&pwrtrk_tab_up_a,
  163. (u8 **)&pwrtrk_tab_down_a,
  164. (u8 **)&pwrtrk_tab_up_b,
  165. (u8 **)&pwrtrk_tab_down_b);
  166. if (dm->support_ic_type & ODM_RTL8814A) /*for 8814 path C & D*/
  167. (*c.get_delta_swing_table8814only)(dm,
  168. (u8 **)&pwrtrk_tab_up_c,
  169. (u8 **)&pwrtrk_tab_down_c,
  170. (u8 **)&pwrtrk_tab_up_d,
  171. (u8 **)&pwrtrk_tab_down_d);
  172. /*for Xtal Offset*/
  173. if (dm->support_ic_type &
  174. (ODM_RTL8703B | ODM_RTL8723D | ODM_RTL8710B | ODM_RTL8192F))
  175. (*c.get_delta_swing_xtal_table)(dm,
  176. (s8 **)&xtal_tab_up,
  177. (s8 **)&xtal_tab_down);
  178. if (thermal_value > rf->eeprom_thermal) {
  179. for (p = RF_PATH_A; p < c.rf_path_count; p++) {
  180. /*recording power index offset*/
  181. cali_info->delta_power_index_last[p] =
  182. cali_info->delta_power_index[p];
  183. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  184. "******Temp is higher******\n");
  185. switch (p) {
  186. case RF_PATH_B:
  187. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  188. "pwrtrk_tab_up_b[%d] = %d\n", delta,
  189. pwrtrk_tab_up_b[delta]);
  190. cali_info->delta_power_index[p] =
  191. pwrtrk_tab_up_b[delta];
  192. cali_info->absolute_ofdm_swing_idx[p] =
  193. pwrtrk_tab_up_b[delta];
  194. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  195. "absolute_ofdm_swing_idx[PATH_B] = %d\n",
  196. cali_info->absolute_ofdm_swing_idx[p]);
  197. break;
  198. case RF_PATH_C:
  199. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  200. "pwrtrk_tab_up_c[%d] = %d\n", delta,
  201. pwrtrk_tab_up_c[delta]);
  202. cali_info->delta_power_index[p] =
  203. pwrtrk_tab_up_c[delta];
  204. cali_info->absolute_ofdm_swing_idx[p] =
  205. pwrtrk_tab_up_c[delta];
  206. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  207. "absolute_ofdm_swing_idx[PATH_C] = %d\n",
  208. cali_info->absolute_ofdm_swing_idx[p]);
  209. break;
  210. case RF_PATH_D:
  211. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  212. "pwrtrk_tab_up_d[%d] = %d\n", delta,
  213. pwrtrk_tab_up_d[delta]);
  214. cali_info->delta_power_index[p] =
  215. pwrtrk_tab_up_d[delta];
  216. cali_info->absolute_ofdm_swing_idx[p] =
  217. pwrtrk_tab_up_d[delta];
  218. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  219. "absolute_ofdm_swing_idx[PATH_D] = %d\n",
  220. cali_info->absolute_ofdm_swing_idx[p]);
  221. break;
  222. default:
  223. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  224. "pwrtrk_tab_up_a[%d] = %d\n", delta,
  225. pwrtrk_tab_up_a[delta]);
  226. cali_info->delta_power_index[p] =
  227. pwrtrk_tab_up_a[delta];
  228. cali_info->absolute_ofdm_swing_idx[p] =
  229. pwrtrk_tab_up_a[delta];
  230. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  231. "absolute_ofdm_swing_idx[PATH_A] = %d\n",
  232. cali_info->absolute_ofdm_swing_idx[p]);
  233. break;
  234. }
  235. }
  236. /* JJ ADD 20161014 */
  237. /*Save xtal_offset from Xtal table*/
  238. if (dm->support_ic_type &
  239. (ODM_RTL8703B | ODM_RTL8723D | ODM_RTL8710B |
  240. ODM_RTL8192F)) {
  241. /*recording last Xtal offset*/
  242. cali_info->xtal_offset_last = cali_info->xtal_offset;
  243. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  244. "[Xtal] xtal_tab_up[%d] = %d\n",
  245. delta, xtal_tab_up[delta]);
  246. cali_info->xtal_offset = xtal_tab_up[delta];
  247. if (cali_info->xtal_offset_last != xtal_tab_up[delta])
  248. cali_info->xtal_offset_eanble = 1;
  249. }
  250. } else {
  251. for (p = RF_PATH_A; p < c.rf_path_count; p++) {
  252. /*recording power index offset*/
  253. cali_info->delta_power_index_last[p] =
  254. cali_info->delta_power_index[p];
  255. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  256. "******Temp is lower******\n");
  257. switch (p) {
  258. case RF_PATH_B:
  259. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  260. "pwrtrk_tab_down_b[%d] = %d\n", delta,
  261. pwrtrk_tab_down_b[delta]);
  262. cali_info->delta_power_index[p] =
  263. -1 * pwrtrk_tab_down_b[delta];
  264. cali_info->absolute_ofdm_swing_idx[p] =
  265. -1 * pwrtrk_tab_down_b[delta];
  266. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  267. "absolute_ofdm_swing_idx[PATH_B] = %d\n",
  268. cali_info->absolute_ofdm_swing_idx[p]);
  269. break;
  270. case RF_PATH_C:
  271. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  272. "pwrtrk_tab_down_c[%d] = %d\n", delta,
  273. pwrtrk_tab_down_c[delta]);
  274. cali_info->delta_power_index[p] =
  275. -1 * pwrtrk_tab_down_c[delta];
  276. cali_info->absolute_ofdm_swing_idx[p] =
  277. -1 * pwrtrk_tab_down_c[delta];
  278. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  279. "absolute_ofdm_swing_idx[PATH_C] = %d\n",
  280. cali_info->absolute_ofdm_swing_idx[p]);
  281. break;
  282. case RF_PATH_D:
  283. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  284. "pwrtrk_tab_down_d[%d] = %d\n", delta,
  285. pwrtrk_tab_down_d[delta]);
  286. cali_info->delta_power_index[p] =
  287. -1 * pwrtrk_tab_down_d[delta];
  288. cali_info->absolute_ofdm_swing_idx[p] =
  289. -1 * pwrtrk_tab_down_d[delta];
  290. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  291. "absolute_ofdm_swing_idx[PATH_D] = %d\n",
  292. cali_info->absolute_ofdm_swing_idx[p]);
  293. break;
  294. default:
  295. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  296. "pwrtrk_tab_down_a[%d] = %d\n", delta,
  297. pwrtrk_tab_down_a[delta]);
  298. cali_info->delta_power_index[p] =
  299. -1 * pwrtrk_tab_down_a[delta];
  300. cali_info->absolute_ofdm_swing_idx[p] =
  301. -1 * pwrtrk_tab_down_a[delta];
  302. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  303. "absolute_ofdm_swing_idx[PATH_A] = %d\n",
  304. cali_info->absolute_ofdm_swing_idx[p]);
  305. break;
  306. }
  307. }
  308. /* JJ ADD 20161014 */
  309. if (dm->support_ic_type &
  310. (ODM_RTL8703B | ODM_RTL8723D | ODM_RTL8710B |
  311. ODM_RTL8192F)) {
  312. /*recording last Xtal offset*/
  313. cali_info->xtal_offset_last = cali_info->xtal_offset;
  314. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  315. "[Xtal] xtal_tab_down[%d] = %d\n", delta,
  316. xtal_tab_down[delta]);
  317. /*Save xtal_offset from Xtal table*/
  318. cali_info->xtal_offset = xtal_tab_down[delta];
  319. if (cali_info->xtal_offset_last != xtal_tab_down[delta])
  320. cali_info->xtal_offset_eanble = 1;
  321. }
  322. }
  323. }
  324. void odm_pwrtrk_method(void *dm_void)
  325. {
  326. struct dm_struct *dm = (struct dm_struct *)dm_void;
  327. u8 p, idxforchnl = 0;
  328. struct txpwrtrack_cfg c = {0};
  329. configure_txpower_track(dm, &c);
  330. if (dm->support_ic_type &
  331. (ODM_RTL8188E | ODM_RTL8192E | ODM_RTL8821 | ODM_RTL8812 |
  332. ODM_RTL8723B | ODM_RTL8814A | ODM_RTL8703B | ODM_RTL8188F |
  333. ODM_RTL8822B | ODM_RTL8723D | ODM_RTL8821C | ODM_RTL8710B |
  334. ODM_RTL8192F)) {
  335. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  336. "***Enter PwrTrk MIX_MODE***\n");
  337. for (p = RF_PATH_A; p < c.rf_path_count; p++)
  338. (*c.odm_tx_pwr_track_set_pwr)(dm, MIX_MODE, p, 0);
  339. } else {
  340. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  341. "***Enter PwrTrk BBSWING_MODE***\n");
  342. for (p = RF_PATH_A; p < c.rf_path_count; p++)
  343. (*c.odm_tx_pwr_track_set_pwr)
  344. (dm, BBSWING, p, idxforchnl);
  345. }
  346. }
  347. #if (DM_ODM_SUPPORT_TYPE & ODM_AP)
  348. void odm_txpowertracking_callback_thermal_meter(struct dm_struct *dm)
  349. #elif (DM_ODM_SUPPORT_TYPE == ODM_CE)
  350. void odm_txpowertracking_callback_thermal_meter(void *dm_void)
  351. #else
  352. void odm_txpowertracking_callback_thermal_meter(void *adapter)
  353. #endif
  354. {
  355. #if (DM_ODM_SUPPORT_TYPE == ODM_WIN)
  356. HAL_DATA_TYPE *hal_data = GET_HAL_DATA(((PADAPTER)adapter));
  357. struct dm_struct *dm = &hal_data->DM_OutSrc;
  358. #elif (DM_ODM_SUPPORT_TYPE == ODM_CE)
  359. struct dm_struct *dm = (struct dm_struct *)dm_void;
  360. #endif
  361. struct _hal_rf_ *rf = &dm->rf_table;
  362. struct dm_rf_calibration_struct *cali_info = &dm->rf_calibrate_info;
  363. struct dm_iqk_info *iqk_info = &dm->IQK_info;
  364. u8 thermal_value = 0, delta, delta_lck, delta_iqk, p = 0, i = 0;
  365. u8 thermal_value_avg_count = 0;
  366. u32 thermal_value_avg = 0, regc80, regcd0, regcd4, regab4;
  367. /* OFDM BB Swing should be less than +3.0dB, required by Arthur */
  368. #if 0
  369. u8 OFDM_min_index = 0;
  370. #endif
  371. /* get_right_chnl_place_for_iqk(hal_data->current_channel) */
  372. u8 power_tracking_type = rf->pwt_type;
  373. s8 thermal_value_temp = 0;
  374. struct txpwrtrack_cfg c = {0};
  375. /* 4 2. Initialization ( 7 steps in total ) */
  376. configure_txpower_track(dm, &c);
  377. cali_info->txpowertracking_callback_cnt++;
  378. cali_info->is_txpowertracking_init = true;
  379. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  380. "\n\n\n===>%s bbsw_idx_cck_base=%d\n",
  381. __func__, cali_info->bb_swing_idx_cck_base);
  382. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  383. "bbsw_idx_ofdm_base[A]=%d default_ofdm_idx=%d\n",
  384. cali_info->bb_swing_idx_ofdm_base[RF_PATH_A],
  385. cali_info->default_ofdm_index);
  386. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  387. "cali_info->txpowertrack_control=%d, rf->eeprom_thermal %d\n",
  388. cali_info->txpowertrack_control, rf->eeprom_thermal);
  389. /* 0x42: RF Reg[15:10] 88E */
  390. thermal_value =
  391. (u8)odm_get_rf_reg(dm, RF_PATH_A, c.thermal_reg_addr, 0xfc00);
  392. thermal_value_temp = thermal_value + phydm_get_thermal_offset(dm);
  393. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  394. "thermal_value_temp(%d) = ther_value(%d) + pwr_trim_ther(%d)\n",
  395. thermal_value_temp, thermal_value,
  396. phydm_get_thermal_offset(dm));
  397. if (thermal_value_temp > 63)
  398. thermal_value = 63;
  399. else if (thermal_value_temp < 0)
  400. thermal_value = 0;
  401. else
  402. thermal_value = thermal_value_temp;
  403. /*add log by zhao he, check c80/c94/c14/ca0 value*/
  404. if (dm->support_ic_type &
  405. (ODM_RTL8723D | ODM_RTL8710B)) {
  406. regc80 = odm_get_bb_reg(dm, R_0xc80, MASKDWORD);
  407. regcd0 = odm_get_bb_reg(dm, R_0xcd0, MASKDWORD);
  408. regcd4 = odm_get_bb_reg(dm, R_0xcd4, MASKDWORD);
  409. regab4 = odm_get_bb_reg(dm, R_0xab4, 0x000007FF);
  410. RF_DBG(dm, DBG_RF_IQK,
  411. "0xc80 = 0x%x 0xcd0 = 0x%x 0xcd4 = 0x%x 0xab4 = 0x%x\n",
  412. regc80, regcd0, regcd4, regab4);
  413. }
  414. if (!cali_info->txpowertrack_control)
  415. return;
  416. if (rf->eeprom_thermal == 0xff) {
  417. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  418. "no pg, hal_data->eeprom_thermal_meter = 0x%x\n",
  419. rf->eeprom_thermal);
  420. return;
  421. }
  422. /*4 3. Initialize ThermalValues of rf_calibrate_info*/
  423. if (cali_info->is_reloadtxpowerindex)
  424. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  425. "reload ofdm index for band switch\n");
  426. /*4 4. Calculate average thermal meter*/
  427. cali_info->thermal_value_avg[cali_info->thermal_value_avg_index]
  428. = thermal_value;
  429. cali_info->thermal_value_avg_index++;
  430. /*Average times = c.average_thermal_num*/
  431. if (cali_info->thermal_value_avg_index == c.average_thermal_num)
  432. cali_info->thermal_value_avg_index = 0;
  433. for (i = 0; i < c.average_thermal_num; i++) {
  434. if (cali_info->thermal_value_avg[i]) {
  435. thermal_value_avg += cali_info->thermal_value_avg[i];
  436. thermal_value_avg_count++;
  437. }
  438. }
  439. /* Calculate Average thermal_value after average enough times */
  440. if (thermal_value_avg_count) {
  441. thermal_value =
  442. (u8)(thermal_value_avg / thermal_value_avg_count);
  443. cali_info->thermal_value_delta
  444. = thermal_value - rf->eeprom_thermal;
  445. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  446. "AVG Thermal Meter = 0x%X, EFUSE Thermal base = 0x%X\n",
  447. thermal_value, rf->eeprom_thermal);
  448. }
  449. /* 4 5. Calculate delta, delta_lck, delta_iqk. */
  450. /* "delta" here is used to determine thermal value changes or not. */
  451. if (thermal_value > cali_info->thermal_value)
  452. delta = thermal_value - cali_info->thermal_value;
  453. else
  454. delta = cali_info->thermal_value - thermal_value;
  455. if (thermal_value > cali_info->thermal_value_lck)
  456. delta_lck = thermal_value - cali_info->thermal_value_lck;
  457. else
  458. delta_lck = cali_info->thermal_value_lck - thermal_value;
  459. if (thermal_value > cali_info->thermal_value_iqk)
  460. delta_iqk = thermal_value - cali_info->thermal_value_iqk;
  461. else
  462. delta_iqk = cali_info->thermal_value_iqk - thermal_value;
  463. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  464. "(delta, delta_lck, delta_iqk) = (%d, %d, %d)\n", delta,
  465. delta_lck, delta_iqk);
  466. /*4 6. If necessary, do LCK.*/
  467. /* Wait sacn to do LCK by RF Jenyu*/
  468. if (!(*dm->is_scan_in_process) && !iqk_info->rfk_forbidden) {
  469. /* Delta temperature is equal to or larger than 20 centigrade.*/
  470. if (delta_lck >= c.threshold_iqk) {
  471. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  472. "delta_lck(%d) >= threshold_iqk(%d)\n",
  473. delta_lck, c.threshold_iqk);
  474. cali_info->thermal_value_lck = thermal_value;
  475. /*Use RTLCK, close power tracking driver LCK*/
  476. /*8821 don't do LCK*/
  477. if (!(dm->support_ic_type &
  478. (ODM_RTL8821 | ODM_RTL8814A | ODM_RTL8822B)) &&
  479. c.phy_lc_calibrate) {
  480. (*c.phy_lc_calibrate)(dm);
  481. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  482. "do pwrtrk lck\n");
  483. }
  484. }
  485. }
  486. /*3 7. If necessary, move the index of swing table to adjust Tx power.*/
  487. /* "delta" here is used to record the absolute value of difference. */
  488. if (delta > 0 && cali_info->txpowertrack_control) {
  489. if (thermal_value > rf->eeprom_thermal)
  490. delta = thermal_value - rf->eeprom_thermal;
  491. else
  492. delta = rf->eeprom_thermal - thermal_value;
  493. if (delta >= TXPWR_TRACK_TABLE_SIZE)
  494. delta = TXPWR_TRACK_TABLE_SIZE - 1;
  495. odm_get_tracking_table(dm, thermal_value, delta);
  496. for (p = RF_PATH_A; p < c.rf_path_count; p++) {
  497. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  498. "\n[path-%d] Calculate pwr_idx_offset\n", p);
  499. /*If Thermal value changes but table value is the same*/
  500. if (cali_info->delta_power_index[p] ==
  501. cali_info->delta_power_index_last[p])
  502. cali_info->power_index_offset[p] = 0;
  503. else
  504. cali_info->power_index_offset[p] =
  505. cali_info->delta_power_index[p] -
  506. cali_info->delta_power_index_last[p];
  507. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  508. "path-%d pwridx_diff%d=pwr_idx%d - last_idx%d\n",
  509. p, cali_info->power_index_offset[p],
  510. cali_info->delta_power_index[p],
  511. cali_info->delta_power_index_last[p]);
  512. #if 0
  513. cali_info->OFDM_index[p] = cali_info->bb_swing_idx_ofdm_base[p] + cali_info->power_index_offset[p];
  514. cali_info->CCK_index = cali_info->bb_swing_idx_cck_base + cali_info->power_index_offset[p];
  515. cali_info->bb_swing_idx_cck = cali_info->CCK_index;
  516. cali_info->bb_swing_idx_ofdm[p] = cali_info->OFDM_index[p];
  517. /*************Print BB Swing base and index Offset*************/
  518. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  519. "The 'CCK' final index(%d) = BaseIndex(%d) + power_index_offset(%d)\n",
  520. cali_info->bb_swing_idx_cck,
  521. cali_info->bb_swing_idx_cck_base,
  522. cali_info->power_index_offset[p]);
  523. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  524. "The 'OFDM' final index(%d) = BaseIndex[%d](%d) + power_index_offset(%d)\n",
  525. cali_info->bb_swing_idx_ofdm[p], p,
  526. cali_info->bb_swing_idx_ofdm_base[p],
  527. cali_info->power_index_offset[p]);
  528. /*4 7.1 Handle boundary conditions of index.*/
  529. if (cali_info->OFDM_index[p] > c.swing_table_size_ofdm - 1)
  530. cali_info->OFDM_index[p] = c.swing_table_size_ofdm - 1;
  531. else if (cali_info->OFDM_index[p] <= OFDM_min_index)
  532. cali_info->OFDM_index[p] = OFDM_min_index;
  533. #endif
  534. }
  535. #if 0
  536. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  537. "\n\n========================================================================================================\n");
  538. if (cali_info->CCK_index > c.swing_table_size_cck - 1)
  539. cali_info->CCK_index = c.swing_table_size_cck - 1;
  540. else if (cali_info->CCK_index <= 0)
  541. cali_info->CCK_index = 0;
  542. #endif
  543. } else {
  544. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  545. "Thermal is unchanged thermal=%d last_thermal=%d\n",
  546. thermal_value,
  547. cali_info->thermal_value);
  548. for (p = RF_PATH_A; p < c.rf_path_count; p++)
  549. cali_info->power_index_offset[p] = 0;
  550. }
  551. #if 0
  552. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  553. "TxPowerTracking: [CCK] Swing Current index: %d, Swing base index: %d\n",
  554. cali_info->CCK_index,
  555. cali_info->bb_swing_idx_cck_base); /*Print Swing base & current*/
  556. for (p = RF_PATH_A; p < c.rf_path_count; p++) {
  557. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  558. "TxPowerTracking: [OFDM] Swing Current index: %d, Swing base index[%d]: %d\n",
  559. cali_info->OFDM_index[p], p,
  560. cali_info->bb_swing_idx_ofdm_base[p]);
  561. }
  562. #endif
  563. if ((dm->support_ic_type & ODM_RTL8814A)) {
  564. RF_DBG(dm, DBG_RF_TX_PWR_TRACK, "power_tracking_type=%d\n",
  565. power_tracking_type);
  566. if (power_tracking_type == 0) {
  567. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  568. "***Enter PwrTrk MIX_MODE***\n");
  569. for (p = RF_PATH_A; p < c.rf_path_count; p++)
  570. (*c.odm_tx_pwr_track_set_pwr)
  571. (dm, MIX_MODE, p, 0);
  572. } else if (power_tracking_type == 1) {
  573. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  574. "***Enter PwrTrk MIX(2G) TSSI(5G) MODE***\n");
  575. for (p = RF_PATH_A; p < c.rf_path_count; p++)
  576. (*c.odm_tx_pwr_track_set_pwr)
  577. (dm, MIX_2G_TSSI_5G_MODE, p, 0);
  578. } else if (power_tracking_type == 2) {
  579. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  580. "***Enter PwrTrk MIX(5G) TSSI(2G)MODE***\n");
  581. for (p = RF_PATH_A; p < c.rf_path_count; p++)
  582. (*c.odm_tx_pwr_track_set_pwr)
  583. (dm, MIX_5G_TSSI_2G_MODE, p, 0);
  584. } else if (power_tracking_type == 3) {
  585. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  586. "***Enter PwrTrk TSSI MODE***\n");
  587. for (p = RF_PATH_A; p < c.rf_path_count; p++)
  588. (*c.odm_tx_pwr_track_set_pwr)
  589. (dm, TSSI_MODE, p, 0);
  590. }
  591. } else if ((cali_info->power_index_offset[RF_PATH_A] != 0 ||
  592. cali_info->power_index_offset[RF_PATH_B] != 0 ||
  593. cali_info->power_index_offset[RF_PATH_C] != 0 ||
  594. cali_info->power_index_offset[RF_PATH_D] != 0)) {
  595. #if 0
  596. /* 4 7.2 Configure the Swing Table to adjust Tx Power. */
  597. /*Always true after Tx Power is adjusted by power tracking.*/
  598. cali_info->is_tx_power_changed = true;
  599. /* 2012/04/23 MH According to Luke's suggestion, we can not write BB digital
  600. * to increase TX power. Otherwise, EVM will be bad.
  601. *
  602. * 2012/04/25 MH Add for tx power tracking to set tx power in tx agc for 88E.
  603. */
  604. if (thermal_value > cali_info->thermal_value) {
  605. for (p = RF_PATH_A; p < c.rf_path_count; p++) {
  606. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  607. "Temperature Increasing(%d): delta_pi: %d, delta_t: %d, Now_t: %d, EFUSE_t: %d, Last_t: %d\n",
  608. p, cali_info->power_index_offset[p],
  609. delta, thermal_value, rf->eeprom_thermal,
  610. cali_info->thermal_value);
  611. }
  612. } else if (thermal_value < cali_info->thermal_value) { /*Low temperature*/
  613. for (p = RF_PATH_A; p < c.rf_path_count; p++) {
  614. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  615. "Temperature Decreasing(%d): delta_pi: %d, delta_t: %d, Now_t: %d, EFUSE_t: %d, Last_t: %d\n",
  616. p, cali_info->power_index_offset[p],
  617. delta, thermal_value, rf->eeprom_thermal,
  618. cali_info->thermal_value);
  619. }
  620. }
  621. #endif
  622. #if !(DM_ODM_SUPPORT_TYPE & ODM_AP)
  623. if (thermal_value > rf->eeprom_thermal) {
  624. #else
  625. if (thermal_value > dm->priv->pmib->dot11RFEntry.ther) {
  626. #endif
  627. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  628. "Temperature(%d) higher than PG value(%d)\n",
  629. thermal_value, rf->eeprom_thermal);
  630. odm_pwrtrk_method(dm);
  631. } else {
  632. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  633. "Temperature(%d) lower than PG value(%d)\n",
  634. thermal_value, rf->eeprom_thermal);
  635. odm_pwrtrk_method(dm);
  636. }
  637. #if 0
  638. /*Record last time Power Tracking result as base.*/
  639. cali_info->bb_swing_idx_cck_base = cali_info->bb_swing_idx_cck;
  640. for (p = RF_PATH_A; p < c.rf_path_count; p++)
  641. cali_info->bb_swing_idx_ofdm_base[p] = cali_info->bb_swing_idx_ofdm[p];
  642. #endif
  643. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  644. "cali_info->thermal_value = %d thermal_value= %d\n",
  645. cali_info->thermal_value, thermal_value);
  646. }
  647. /*Record last Power Tracking Thermal value*/
  648. cali_info->thermal_value = thermal_value;
  649. if (dm->support_ic_type &
  650. (ODM_RTL8703B | ODM_RTL8723D | ODM_RTL8192F | ODM_RTL8710B)) {
  651. if (cali_info->xtal_offset_eanble != 0 &&
  652. cali_info->txpowertrack_control &&
  653. rf->eeprom_thermal != 0xff) {
  654. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  655. "**********Enter Xtal Tracking**********\n");
  656. #if !(DM_ODM_SUPPORT_TYPE & ODM_AP)
  657. if (thermal_value > rf->eeprom_thermal) {
  658. #else
  659. if (thermal_value > dm->priv->pmib->dot11RFEntry.ther) {
  660. #endif
  661. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  662. "Temperature(%d) higher than PG (%d)\n",
  663. thermal_value, rf->eeprom_thermal);
  664. (*c.odm_txxtaltrack_set_xtal)(dm);
  665. } else {
  666. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  667. "Temperature(%d) lower than PG (%d)\n",
  668. thermal_value, rf->eeprom_thermal);
  669. (*c.odm_txxtaltrack_set_xtal)(dm);
  670. }
  671. }
  672. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  673. "**********End Xtal Tracking**********\n");
  674. }
  675. #if !(DM_ODM_SUPPORT_TYPE & ODM_AP)
  676. /* Wait sacn to do IQK by RF Jenyu*/
  677. if (!(*dm->is_scan_in_process) && !iqk_info->rfk_forbidden &&
  678. !cali_info->is_iqk_in_progress) {
  679. if (!(dm->support_ic_type & ODM_RTL8723B)) {
  680. /*Delta temperature is equal or larger than 20 Celsius*/
  681. /*When threshold is 8*/
  682. if (delta_iqk >= c.threshold_iqk) {
  683. cali_info->thermal_value_iqk = thermal_value;
  684. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  685. "delta_iqk(%d) >= threshold_iqk(%d)\n",
  686. delta_iqk, c.threshold_iqk);
  687. (*c.do_iqk)(dm, delta_iqk, thermal_value, 8);
  688. RF_DBG(dm, DBG_RF_TX_PWR_TRACK,
  689. "do pwrtrk iqk\n");
  690. }
  691. }
  692. }
  693. #if 0
  694. if (cali_info->dpk_thermal[RF_PATH_A] != 0) {
  695. if (diff_DPK[RF_PATH_A] >= c.threshold_dpk) {
  696. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x1);
  697. odm_set_bb_reg(dm, R_0xcc4, BIT(14) | BIT(13) | BIT(12) | BIT(11) | BIT(10), (diff_DPK[RF_PATH_A] / c.threshold_dpk));
  698. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x0);
  699. } else if ((diff_DPK[RF_PATH_A] <= -1 * c.threshold_dpk)) {
  700. s32 value = 0x20 + (diff_DPK[RF_PATH_A] / c.threshold_dpk);
  701. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x1);
  702. odm_set_bb_reg(dm, R_0xcc4, BIT(14) | BIT(13) | BIT(12) | BIT(11) | BIT(10), value);
  703. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x0);
  704. } else {
  705. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x1);
  706. odm_set_bb_reg(dm, R_0xcc4, BIT(14) | BIT(13) | BIT(12) | BIT(11) | BIT(10), 0);
  707. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x0);
  708. }
  709. }
  710. if (cali_info->dpk_thermal[RF_PATH_B] != 0) {
  711. if (diff_DPK[RF_PATH_B] >= c.threshold_dpk) {
  712. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x1);
  713. odm_set_bb_reg(dm, R_0xec4, BIT(14) | BIT(13) | BIT(12) | BIT(11) | BIT(10), (diff_DPK[RF_PATH_B] / c.threshold_dpk));
  714. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x0);
  715. } else if ((diff_DPK[RF_PATH_B] <= -1 * c.threshold_dpk)) {
  716. s32 value = 0x20 + (diff_DPK[RF_PATH_B] / c.threshold_dpk);
  717. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x1);
  718. odm_set_bb_reg(dm, R_0xec4, BIT(14) | BIT(13) | BIT(12) | BIT(11) | BIT(10), value);
  719. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x0);
  720. } else {
  721. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x1);
  722. odm_set_bb_reg(dm, R_0xec4, BIT(14) | BIT(13) | BIT(12) | BIT(11) | BIT(10), 0);
  723. odm_set_bb_reg(dm, R_0x82c, BIT(31), 0x0);
  724. }
  725. }
  726. #endif
  727. #endif
  728. RF_DBG(dm, DBG_RF_TX_PWR_TRACK, "<===%s\n", __func__);
  729. cali_info->tx_powercount = 0;
  730. }
  731. /* 3============================================================
  732. * 3 IQ Calibration
  733. * 3============================================================
  734. */
  735. void odm_reset_iqk_result(void *dm_void)
  736. {
  737. }
  738. #if !(DM_ODM_SUPPORT_TYPE & ODM_AP)
  739. u8 odm_get_right_chnl_place_for_iqk(u8 chnl)
  740. {
  741. u8 channel_all[ODM_TARGET_CHNL_NUM_2G_5G] = {
  742. 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14,
  743. 36, 38, 40, 42, 44, 46, 48, 50, 52, 54, 56, 58, 60, 62, 64,
  744. 100, 102, 104, 106, 108, 110, 112, 114, 116, 118, 120, 122,
  745. 124, 126, 128, 130, 132, 134, 136, 138, 140,
  746. 149, 151, 153, 155, 157, 159, 161, 163, 165};
  747. u8 place = chnl;
  748. if (chnl > 14) {
  749. for (place = 14; place < sizeof(channel_all); place++) {
  750. if (channel_all[place] == chnl)
  751. return place - 13;
  752. }
  753. }
  754. return 0;
  755. }
  756. #endif
  757. void odm_iq_calibrate(struct dm_struct *dm)
  758. {
  759. void *adapter = dm->adapter;
  760. struct dm_iqk_info *iqk_info = &dm->IQK_info;
  761. #if (DM_ODM_SUPPORT_TYPE == ODM_WIN)
  762. if (*dm->is_fcs_mode_enable)
  763. return;
  764. #endif
  765. #if (DM_ODM_SUPPORT_TYPE & (ODM_CE))
  766. if (IS_HARDWARE_TYPE_8812AU(adapter))
  767. return;
  768. #endif
  769. if (dm->is_linked && !iqk_info->rfk_forbidden) {
  770. if ((*dm->channel != dm->pre_channel) &&
  771. (!*dm->is_scan_in_process)) {
  772. dm->pre_channel = *dm->channel;
  773. dm->linked_interval = 0;
  774. }
  775. if (dm->linked_interval < 3)
  776. dm->linked_interval++;
  777. if (dm->linked_interval == 2)
  778. halrf_iqk_trigger(dm, false);
  779. } else {
  780. dm->linked_interval = 0;
  781. }
  782. }
  783. void phydm_rf_init(void *dm_void)
  784. {
  785. struct dm_struct *dm = (struct dm_struct *)dm_void;
  786. odm_txpowertracking_init(dm);
  787. #if (DM_ODM_SUPPORT_TYPE & (ODM_WIN | ODM_CE))
  788. odm_clear_txpowertracking_state(dm);
  789. #endif
  790. #if (DM_ODM_SUPPORT_TYPE & (ODM_AP))
  791. #if (RTL8814A_SUPPORT == 1)
  792. if (dm->support_ic_type & ODM_RTL8814A)
  793. phy_iq_calibrate_8814a_init(dm);
  794. #endif
  795. #endif
  796. }
  797. void phydm_rf_watchdog(void *dm_void)
  798. {
  799. struct dm_struct *dm = (struct dm_struct *)dm_void;
  800. #if (DM_ODM_SUPPORT_TYPE & (ODM_WIN | ODM_CE))
  801. odm_txpowertracking_check(dm);
  802. #if 0
  803. /*if (dm->support_ic_type & ODM_IC_11AC_SERIES)*/
  804. /*odm_iq_calibrate(dm);*/
  805. #endif
  806. #endif
  807. }