mt_pmic.c 19 KB

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  1. /* Copyright Statement:
  2. *
  3. * This software/firmware and related documentation ("MediaTek Software") are
  4. * protected under relevant copyright laws. The information contained herein
  5. * is confidential and proprietary to MediaTek Inc. and/or its licensors.
  6. * Without the prior written permission of MediaTek inc. and/or its licensors,
  7. * any reproduction, modification, use or disclosure of MediaTek Software,
  8. * and information contained herein, in whole or in part, shall be strictly prohibited.
  9. */
  10. /* MediaTek Inc. (C) 2015. All rights reserved.
  11. *
  12. * BY OPENING THIS FILE, RECEIVER HEREBY UNEQUIVOCALLY ACKNOWLEDGES AND AGREES
  13. * THAT THE SOFTWARE/FIRMWARE AND ITS DOCUMENTATIONS ("MEDIATEK SOFTWARE")
  14. * RECEIVED FROM MEDIATEK AND/OR ITS REPRESENTATIVES ARE PROVIDED TO RECEIVER ON
  15. * AN "AS-IS" BASIS ONLY. MEDIATEK EXPRESSLY DISCLAIMS ANY AND ALL WARRANTIES,
  16. * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE IMPLIED WARRANTIES OF
  17. * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE OR NONINFRINGEMENT.
  18. * NEITHER DOES MEDIATEK PROVIDE ANY WARRANTY WHATSOEVER WITH RESPECT TO THE
  19. * SOFTWARE OF ANY THIRD PARTY WHICH MAY BE USED BY, INCORPORATED IN, OR
  20. * SUPPLIED WITH THE MEDIATEK SOFTWARE, AND RECEIVER AGREES TO LOOK ONLY TO SUCH
  21. * THIRD PARTY FOR ANY WARRANTY CLAIM RELATING THERETO. RECEIVER EXPRESSLY ACKNOWLEDGES
  22. * THAT IT IS RECEIVER'S SOLE RESPONSIBILITY TO OBTAIN FROM ANY THIRD PARTY ALL PROPER LICENSES
  23. * CONTAINED IN MEDIATEK SOFTWARE. MEDIATEK SHALL ALSO NOT BE RESPONSIBLE FOR ANY MEDIATEK
  24. * SOFTWARE RELEASES MADE TO RECEIVER'S SPECIFICATION OR TO CONFORM TO A PARTICULAR
  25. * STANDARD OR OPEN FORUM. RECEIVER'S SOLE AND EXCLUSIVE REMEDY AND MEDIATEK'S ENTIRE AND
  26. * CUMULATIVE LIABILITY WITH RESPECT TO THE MEDIATEK SOFTWARE RELEASED HEREUNDER WILL BE,
  27. * AT MEDIATEK'S OPTION, TO REVISE OR REPLACE THE MEDIATEK SOFTWARE AT ISSUE,
  28. * OR REFUND ANY SOFTWARE LICENSE FEES OR SERVICE CHARGE PAID BY RECEIVER TO
  29. * MEDIATEK FOR SUCH MEDIATEK SOFTWARE AT ISSUE.
  30. */
  31. #include <platform/mt_typedefs.h>
  32. #include <platform/mt_reg_base.h>
  33. #include <platform/mt_pmic.h>
  34. #include <platform/mt_rtc.h>
  35. #include <platform/mt_gpt.h>
  36. #include <platform/mt_pmic_wrap_init.h>
  37. #include <platform/primary_display.h>
  38. #include <printf.h>
  39. #include <platform/upmu_hw.h>
  40. #include <platform/upmu_common.h>
  41. #ifdef MTK_CHARGER_NEW_ARCH
  42. #include <mtk_charger.h>
  43. #endif
  44. #include "log_store_lk.h"
  45. //==============================================================================
  46. // Global variable
  47. //==============================================================================
  48. int Enable_PMIC_LOG = 1;
  49. CHARGER_TYPE g_ret = CHARGER_UNKNOWN;
  50. int g_charger_in_flag = 0;
  51. int g_first_check = 0;
  52. unsigned int g_is_smart_rst;
  53. unsigned int g_has_bat_removed;
  54. extern int g_R_BAT_SENSE;
  55. extern int g_R_I_SENSE;
  56. extern int g_R_CHARGER_1;
  57. extern int g_R_CHARGER_2;
  58. static unsigned int g_DEGC;
  59. static unsigned int g_O_VTS;
  60. static unsigned int g_O_SLOPE_SIGN;
  61. static unsigned int g_O_SLOPE;
  62. static unsigned int g_CALI_FROM_EFUSE_EN;
  63. static unsigned int g_GAIN_AUX;
  64. static unsigned int g_SIGN_AUX;
  65. static unsigned int g_GAIN_BGRL;
  66. static unsigned int g_SIGN_BGRL;
  67. static unsigned int g_TEMP_L_CALI;
  68. static unsigned int g_GAIN_BGRH;
  69. static unsigned int g_SIGN_BGRH;
  70. static unsigned int g_TEMP_H_CALI;
  71. static unsigned int g_AUXCALI_EN;
  72. static unsigned int g_BGRCALI_EN;
  73. //==============================================================================
  74. // PMIC-AUXADC related define
  75. //==============================================================================
  76. #define VOLTAGE_FULL_RANGE 1800
  77. #define ADC_PRECISE 32768 // 15 bits
  78. //==============================================================================
  79. // PMIC-AUXADC global variable
  80. //==============================================================================
  81. kal_int32 count_time_out = 100;
  82. void pmic_auxadc_debug(int index);
  83. //==============================================================================
  84. // PMIC access API
  85. //==============================================================================
  86. U32 pmic_read_interface(U32 RegNum, U32 *val, U32 MASK, U32 SHIFT)
  87. {
  88. U32 return_value = 0;
  89. U32 pmic_reg = 0;
  90. return_value = pwrap_read(RegNum, &pmic_reg);
  91. if (return_value != 0) {
  92. dprintf(CRITICAL, "[pmic_read_interface] Reg[0x%x]= pmic_wrap read data fail\n", RegNum);
  93. return return_value;
  94. }
  95. //dprintf(INFO, "[pmic_read_interface] Reg[%x]=0x%x\n", RegNum, pmic_reg);
  96. pmic_reg &= (MASK << SHIFT);
  97. *val = (pmic_reg >> SHIFT);
  98. //dprintf(INFO, "[pmic_read_interface] val=0x%x\n", *val);
  99. return return_value;
  100. }
  101. U32 pmic_config_interface(U32 RegNum, U32 val, U32 MASK, U32 SHIFT)
  102. {
  103. U32 return_value = 0;
  104. U32 pmic_reg = 0;
  105. return_value = pwrap_read(RegNum, &pmic_reg);
  106. if (return_value != 0) {
  107. dprintf(CRITICAL, "[pmic_config_interface] Reg[0x%x]= pmic_wrap read data fail\n", RegNum);
  108. return return_value;
  109. }
  110. //dprintf(INFO, "[pmic_config_interface] Reg[%x]=0x%x\n", RegNum, pmic_reg);
  111. pmic_reg &= ~(MASK << SHIFT);
  112. pmic_reg |= (val << SHIFT);
  113. return_value = pwrap_write(RegNum, pmic_reg);
  114. if (return_value != 0) {
  115. dprintf(CRITICAL, "[pmic_config_interface] Reg[0x%x]= pmic_wrap write data fail\n", RegNum);
  116. return return_value;
  117. }
  118. //dprintf(INFO, "[pmic_config_interface] write Reg[%x]=0x%x\n", RegNum, pmic_reg);
  119. return return_value;
  120. }
  121. U32 upmu_get_reg_value(U32 reg)
  122. {
  123. U32 ret = 0;
  124. U32 temp_val = 0;
  125. ret = pmic_read_interface(reg, &temp_val, 0xFFFF, 0x0);
  126. if (Enable_PMIC_LOG > 1)
  127. dprintf(INFO, "%d", ret);
  128. return temp_val;
  129. }
  130. U32 upmu_set_reg_value(U32 reg, U32 reg_val)
  131. {
  132. U32 ret = 0;
  133. ret = pmic_config_interface(reg, reg_val, 0xFFFF, 0x0);
  134. return ret;
  135. }
  136. //==============================================================================
  137. // PMIC Exported APIs
  138. //==============================================================================
  139. void pmic_cold_reset(void)
  140. {
  141. pmic_set_register_value(PMIC_RG_CRST, 1);
  142. }
  143. unsigned int pmic_power_hold(unsigned int hold)
  144. {
  145. if (hold > 1) {
  146. dprintf(CRITICAL, "[PMIC]POWER_HOLD hold = %d only 0 or 1\n", hold);
  147. return 1;
  148. }
  149. if (hold)
  150. dprintf(INFO, "[PMIC]POWER_HOLD ON\n");
  151. else
  152. dprintf(INFO, "[PMIC]POWER_HOLD OFF\n");
  153. pmic_config_interface(PMIC_RG_PWRHOLD_ADDR, hold,
  154. PMIC_RG_PWRHOLD_MASK, PMIC_RG_PWRHOLD_SHIFT);
  155. dprintf(INFO, "[PMIC] PowerHold = 0x%x\n", pmic_get_register_value(PMIC_RG_PWRHOLD));
  156. return 0;
  157. }
  158. const char *smart_reset_check(void)
  159. {
  160. if (g_is_smart_rst)
  161. return "SMART RESET: TRUE";
  162. return "SMART RESET: FALSE";
  163. }
  164. void mt_power_off(void)
  165. {
  166. #ifndef NO_POWER_OFF
  167. dprintf(CRITICAL, "mt_power_off new\n");
  168. primary_display_suspend();
  169. /*save pl lk log to analyze exception power off case */
  170. save_pllk_log();
  171. #ifdef MTK_CHARGER_NEW_ARCH
  172. charger_enable_wdt(false);
  173. #endif
  174. rtc_bbpu_power_down();
  175. #endif
  176. }
  177. //==============================================================================
  178. // PMIC Usage APIs
  179. //==============================================================================
  180. bool get_powerkey_pressed_status(void)
  181. {
  182. unsigned short val;
  183. val = pmic_get_register_value(PMIC_RG_INT_STATUS_PWRKEY);
  184. if (val)
  185. return true;
  186. return false;
  187. }
  188. void clear_powerkey_pressed_status(void)
  189. {
  190. pmic_set_register_value(PMIC_RG_INT_STATUS_PWRKEY, 1);
  191. }
  192. U32 get_pmic_chip_version(void)
  193. {
  194. U32 val = 0;
  195. val = pmic_get_register_value(PMIC_SWCID);
  196. return val;
  197. }
  198. U32 pmic_upmu_get_rgs_chrdet(void)
  199. {
  200. U32 ret = 0;
  201. U32 val = 0;
  202. ret = pmic_read_interface((U32)(PMIC_RGS_CHRDET_ADDR), (&val),
  203. (U32)(PMIC_RGS_CHRDET_MASK),
  204. (U32)(PMIC_RGS_CHRDET_SHIFT));
  205. if (ret != 0)
  206. dprintf(CRITICAL, "[%s] error return value: %d\n", __func__, ret);
  207. return val;
  208. }
  209. kal_bool upmu_is_chr_det(void)
  210. {
  211. U32 tmp32=0;
  212. #if 0
  213. tmp32 = 1; // for bring up
  214. #else
  215. tmp32 = pmic_upmu_get_rgs_chrdet();
  216. #endif
  217. dprintf(CRITICAL, "[upmu_is_chr_det] %d\n", tmp32);
  218. if (tmp32 == 0) {
  219. return KAL_FALSE;
  220. } else {
  221. return KAL_TRUE;
  222. }
  223. }
  224. kal_bool pmic_chrdet_status(void)
  225. {
  226. return upmu_is_chr_det();
  227. }
  228. int pmic_detect_powerkey(void)
  229. {
  230. U32 ret = 0;
  231. U32 val = 0;
  232. ret = pmic_read_interface((U32)(PMIC_PWRKEY_DEB_ADDR), (&val),
  233. (U32)(PMIC_PWRKEY_DEB_MASK),
  234. (U32)(PMIC_PWRKEY_DEB_SHIFT));
  235. if (Enable_PMIC_LOG > 1)
  236. dprintf(INFO, "%d", ret);
  237. if (val == 1) {
  238. #ifndef USER_BUILD
  239. dprintf(INFO, "LK pmic powerkey Release\n");
  240. #endif
  241. return 0;
  242. } else {
  243. #ifndef USER_BUILD
  244. dprintf(INFO, "LK pmic powerkey Press\n");
  245. #endif
  246. return 1;
  247. }
  248. }
  249. int pmic_detect_homekey(void)
  250. {
  251. U32 ret = 0;
  252. U32 val = 0;
  253. ret = pmic_read_interface((U32)(PMIC_HOMEKEY_DEB_ADDR), (&val),
  254. (U32)(PMIC_HOMEKEY_DEB_MASK),
  255. (U32)(PMIC_HOMEKEY_DEB_SHIFT));
  256. if (Enable_PMIC_LOG > 1)
  257. dprintf(INFO, "%d", ret);
  258. if (val==1) {
  259. #ifndef USER_BUILD
  260. dprintf(INFO, "LK pmic HOMEKEY Release\n");
  261. #endif
  262. return 0;
  263. } else {
  264. #ifndef USER_BUILD
  265. dprintf(INFO, "LK pmic HOMEKEY Press\n");
  266. #endif
  267. return 1;
  268. }
  269. }
  270. unsigned int pmic_read_efuse_nolock(int i)
  271. {
  272. unsigned int efuse_data = 0;
  273. /* 1. enable efuse ctrl engine clock */
  274. pmic_set_register_value(PMIC_TOP_CKHWEN_CON0_CLR, 1 << PMIC_RG_EFUSE_CK_PDN_HWEN_SHIFT);
  275. pmic_set_register_value(PMIC_TOP_CKPDN_CON0_CLR, 1 << PMIC_RG_EFUSE_CK_PDN_SHIFT);
  276. /* 2. */
  277. pmic_set_register_value(PMIC_RG_OTP_RD_SW, 1);
  278. /* 3. Set row to read */
  279. pmic_set_register_value(PMIC_RG_OTP_PA, i * 2);
  280. /* 4. Toggle RG_OTP_RD_TRIG */
  281. if (pmic_get_register_value(PMIC_RG_OTP_RD_TRIG) == 0)
  282. pmic_set_register_value(PMIC_RG_OTP_RD_TRIG, 1);
  283. else
  284. pmic_set_register_value(PMIC_RG_OTP_RD_TRIG, 0);
  285. /* 5. Polling RG_OTP_RD_BUSY = 0 */
  286. udelay(300);
  287. while (pmic_get_register_value(PMIC_RG_OTP_RD_BUSY) == 1)
  288. ;
  289. /* 6. Read RG_OTP_DOUT_SW */
  290. udelay(100);
  291. efuse_data = pmic_get_register_value(PMIC_RG_OTP_DOUT_SW);
  292. /* 7. disable efuse ctrl engine clock */
  293. pmic_set_register_value(PMIC_TOP_CKHWEN_CON0_SET, 1 << PMIC_RG_EFUSE_CK_PDN_HWEN_SHIFT);
  294. pmic_set_register_value(PMIC_TOP_CKPDN_CON0_SET, 1 << PMIC_RG_EFUSE_CK_PDN_SHIFT);
  295. return efuse_data;
  296. }
  297. static int wk_aux_cali(int T_curr, int vbat_out)
  298. {
  299. signed long long coeff_gain_aux = 0;
  300. coeff_gain_aux = (317220 + 11960 * (signed long long)g_GAIN_AUX);
  301. if (g_SIGN_AUX == 0)
  302. vbat_out += vbat_out * (T_curr - 250) * coeff_gain_aux / 255 / 1000000000;
  303. else
  304. vbat_out -= vbat_out * (T_curr - 250) * coeff_gain_aux / 255 / 1000000000;
  305. return vbat_out;
  306. }
  307. static int wk_bgr_cali(int T_curr, int vbat_out)
  308. {
  309. signed long long coeff_gain_bgr = 0;
  310. signed int T_L = -100 + g_TEMP_L_CALI * 25;
  311. signed int T_H = 600 + g_TEMP_H_CALI * 25;
  312. if (T_curr < T_L) {
  313. coeff_gain_bgr = (127 + 8 * (signed long long)g_GAIN_BGRL);
  314. if (g_SIGN_BGRL == 0)
  315. vbat_out += vbat_out * (T_curr - T_L) * coeff_gain_bgr / 1000000 / 127;
  316. else
  317. vbat_out -= vbat_out * (T_curr - T_L) * coeff_gain_bgr / 1000000 / 127;
  318. } else if (T_curr > T_H) {
  319. coeff_gain_bgr = (127 + 8 * (signed long long)g_GAIN_BGRH);
  320. if (g_SIGN_BGRH == 0)
  321. vbat_out -= vbat_out * (T_curr - T_H) * coeff_gain_bgr / 1000000 / 127;
  322. else
  323. vbat_out += vbat_out * (T_curr - T_H) * coeff_gain_bgr / 1000000 / 127;
  324. }
  325. return vbat_out;
  326. }
  327. /* vbat_out unit is 0.1mV, vthr unit is mV */
  328. int wk_vbat_cali(int vbat_out, int vthr)
  329. {
  330. int mV_diff = 0;
  331. int T_curr = 0; /* unit: 0.1 degrees C*/
  332. int vbat_out_old = vbat_out;
  333. int vbat_out_auxcali = 0;
  334. mV_diff = vthr - g_O_VTS * 1800 / 4096;
  335. if (g_O_SLOPE_SIGN == 0)
  336. T_curr = mV_diff * 10000 / (signed int)(1681 + g_O_SLOPE * 10);
  337. else
  338. T_curr = mV_diff * 10000 / (signed int)(1681 - g_O_SLOPE * 10);
  339. T_curr = (g_DEGC * 10 / 2) - T_curr;
  340. if (g_AUXCALI_EN == 1) {
  341. vbat_out = wk_aux_cali(T_curr, vbat_out);
  342. vbat_out_auxcali = vbat_out;
  343. }
  344. if (g_BGRCALI_EN == 1)
  345. vbat_out = wk_bgr_cali(T_curr, vbat_out);
  346. dprintf(INFO, "T_curr = %d, vbat_old = %d, vbat_auxcali = %d, vbat_bgrcali = %d\n",
  347. T_curr, vbat_out_old, vbat_out_auxcali, vbat_out);
  348. return vbat_out;
  349. }
  350. //==============================================================================
  351. // PMIC Init Code
  352. //==============================================================================
  353. void adc_cali_init(void)
  354. {
  355. unsigned int efuse = 0;
  356. if (pmic_get_register_value(PMIC_AUXADC_EFUSE_ADC_CALI_EN) == 1) {
  357. g_DEGC = pmic_get_register_value(PMIC_AUXADC_EFUSE_DEGC_CALI);
  358. if (g_DEGC < 38 || g_DEGC > 60)
  359. g_DEGC = 53;
  360. g_O_VTS = pmic_get_register_value(PMIC_AUXADC_EFUSE_O_VTS);
  361. g_O_SLOPE_SIGN = pmic_get_register_value(PMIC_AUXADC_EFUSE_O_SLOPE_SIGN);
  362. g_O_SLOPE = pmic_get_register_value(PMIC_AUXADC_EFUSE_O_SLOPE);
  363. } else {
  364. g_DEGC = 50;
  365. g_O_VTS = 1600;
  366. }
  367. efuse = pmic_read_efuse_nolock(39);
  368. g_CALI_FROM_EFUSE_EN = (efuse >> 2) & 0x1;
  369. if (g_CALI_FROM_EFUSE_EN == 1) {
  370. g_SIGN_AUX = (efuse >> 3) & 0x1;
  371. g_AUXCALI_EN = (efuse >> 6) & 0x1;
  372. g_GAIN_AUX = (efuse >> 8) & 0xFF;
  373. } else {
  374. g_SIGN_AUX = 0;
  375. g_AUXCALI_EN = 1;
  376. g_GAIN_AUX = 106;
  377. }
  378. g_SIGN_BGRL = (efuse >> 4) & 0x1;
  379. g_SIGN_BGRH = (efuse >> 5) & 0x1;
  380. g_BGRCALI_EN = (efuse >> 7) & 0x1;
  381. efuse = pmic_read_efuse_nolock(40);
  382. g_GAIN_BGRL = (efuse >> 9) & 0x7F;
  383. efuse = pmic_read_efuse_nolock(41);
  384. g_GAIN_BGRH = (efuse >> 9) & 0x7F;
  385. efuse = pmic_read_efuse_nolock(42);
  386. g_TEMP_L_CALI = (efuse >> 10) & 0x7;
  387. g_TEMP_H_CALI = (efuse >> 13) & 0x7;
  388. dprintf(INFO, "%d %d %d %d %d %d %d %d %d %d %d %d %d %d %d\n",
  389. g_DEGC, g_O_VTS, g_O_SLOPE_SIGN, g_O_SLOPE,
  390. g_CALI_FROM_EFUSE_EN, g_SIGN_AUX, g_SIGN_BGRL, g_SIGN_BGRH,
  391. g_AUXCALI_EN, g_BGRCALI_EN,
  392. g_GAIN_AUX, g_GAIN_BGRL, g_GAIN_BGRH,
  393. g_TEMP_L_CALI, g_TEMP_H_CALI);
  394. }
  395. U32 pmic_init (void)
  396. {
  397. U32 ret_code = PMIC_TEST_PASS;
  398. if ((upmu_get_reg_value(MT6358_TOP_RST_STATUS) & 0x7) != 0x7)
  399. g_has_bat_removed = 1;
  400. upmu_set_reg_value(MT6358_TOP_RST_STATUS, 0x4F);
  401. if (g_has_bat_removed)
  402. cmdline_append("has_battery_removed=1");
  403. else
  404. cmdline_append("has_battery_removed=0");
  405. g_is_smart_rst = pmic_get_register_value(PMIC_JUST_SMART_RST);
  406. pmic_set_register_value(PMIC_RG_CLR_JUST_SMART_RST, 1);
  407. udelay(62);
  408. pmic_set_register_value(PMIC_RG_CLR_JUST_SMART_RST, 0);
  409. dprintf(INFO, "[pmic_init] LK Start..................\n");
  410. dprintf(INFO, "[pmic_init] PMIC CHIP Code = 0x%x\n", get_pmic_chip_version());
  411. /*pmic_auxadc_debug(2);*/
  412. dprintf(INFO, "[pmic_init] Done\n");
  413. /*pmic_auxadc_debug(3);*/
  414. adc_cali_init();
  415. return ret_code;
  416. }
  417. //==============================================================================
  418. // PMIC API for LK : AUXADC
  419. //==============================================================================
  420. #define PMIC_AUXADC_DEBUG(_reg) \
  421. { \
  422. value = pmic_get_register_value(_reg); \
  423. dprintf(INFO, "[%s] %s = 0x%x\n", __func__, #_reg, value); \
  424. }
  425. void pmic_auxadc_debug(int index)
  426. {
  427. int value;
  428. PMIC_AUXADC_DEBUG(PMIC_RG_STRUP_AUXADC_RSTB_SEL);
  429. PMIC_AUXADC_DEBUG(PMIC_RG_STRUP_AUXADC_RSTB_SW);
  430. PMIC_AUXADC_DEBUG(PMIC_RG_STRUP_AUXADC_START_SEL);
  431. PMIC_AUXADC_DEBUG(PMIC_AUXADC_MDRT_DET_EN);
  432. PMIC_AUXADC_DEBUG(PMIC_AUXADC_MDRT_DET_PRD);
  433. PMIC_AUXADC_DEBUG(PMIC_AUXADC_MDRT_DET_WKUP_EN);
  434. PMIC_AUXADC_DEBUG(PMIC_AUXADC_MDRT_DET_SRCLKEN_IND);
  435. PMIC_AUXADC_DEBUG(PMIC_AUXADC_CK_AON);
  436. PMIC_AUXADC_DEBUG(PMIC_AUXADC_DATA_REUSE_SEL);
  437. PMIC_AUXADC_DEBUG(PMIC_AUXADC_DATA_REUSE_EN);
  438. }
  439. struct pmic_auxadc_channel_new pmic_auxadc_channel[] = {
  440. /* BATADC */
  441. PMIC_AUXADC_GEN(15, 3, 0, PMIC_AUXADC_RQST_CH0,
  442. PMIC_AUXADC_ADC_RDY_CH0_BY_AP, PMIC_AUXADC_ADC_OUT_CH0_BY_AP),
  443. /* VCDT */
  444. PMIC_AUXADC_GEN(12, 1, 2, PMIC_AUXADC_RQST_CH2,
  445. PMIC_AUXADC_ADC_RDY_CH2, PMIC_AUXADC_ADC_OUT_CH2),
  446. /* BAT TEMP */
  447. PMIC_AUXADC_GEN(12, 2, 3, PMIC_AUXADC_RQST_CH3,
  448. PMIC_AUXADC_ADC_RDY_CH3, PMIC_AUXADC_ADC_OUT_CH3),
  449. /* BATID */
  450. PMIC_AUXADC_GEN(12, 2, 3, PMIC_AUXADC_RQST_BATID,
  451. PMIC_AUXADC_ADC_RDY_BATID, PMIC_AUXADC_ADC_OUT_BATID),
  452. /* VBIF */
  453. PMIC_AUXADC_GEN(12, 2, 11, PMIC_AUXADC_RQST_CH11,
  454. PMIC_AUXADC_ADC_RDY_CH11, PMIC_AUXADC_ADC_OUT_CH11),
  455. /* CHIP TEMP */
  456. PMIC_AUXADC_GEN(12, 1, 4, PMIC_AUXADC_RQST_CH4,
  457. PMIC_AUXADC_ADC_RDY_CH4, PMIC_AUXADC_ADC_OUT_CH4),
  458. /* DCXO */
  459. PMIC_AUXADC_GEN(12, 1.5, 6, PMIC_AUXADC_RQST_CH6,
  460. PMIC_AUXADC_ADC_RDY_CH6, PMIC_AUXADC_ADC_OUT_CH6),
  461. /* ACCDET Multi-Key */
  462. PMIC_AUXADC_GEN(12, 1, 5, PMIC_AUXADC_RQST_CH5,
  463. PMIC_AUXADC_ADC_RDY_CH5, PMIC_AUXADC_ADC_OUT_CH5),
  464. /* TSX */
  465. PMIC_AUXADC_GEN(15, 1, 7, PMIC_AUXADC_RQST_CH7,
  466. PMIC_AUXADC_ADC_RDY_CH7_BY_AP, PMIC_AUXADC_ADC_OUT_CH7_BY_AP),
  467. /* HP OFFSET CAL */
  468. PMIC_AUXADC_GEN(15, 1, 9, PMIC_AUXADC_RQST_CH9,
  469. PMIC_AUXADC_ADC_RDY_CH9, PMIC_AUXADC_ADC_OUT_CH9),
  470. /* ISENSE */
  471. PMIC_AUXADC_GEN(15, 3, 1, PMIC_AUXADC_RQST_CH1,
  472. PMIC_AUXADC_ADC_RDY_CH1_BY_AP, PMIC_AUXADC_ADC_OUT_CH1_BY_AP),
  473. /* VCORE_TEMP */
  474. PMIC_AUXADC_GEN(12, 1, 4, PMIC_AUXADC_RQST_CH4_BY_THR1,
  475. PMIC_AUXADC_ADC_RDY_CH4_BY_THR1, PMIC_AUXADC_ADC_OUT_CH4_BY_THR1),
  476. /* VPROC_TEMP */
  477. PMIC_AUXADC_GEN(12, 1, 4, PMIC_AUXADC_RQST_CH4_BY_THR2,
  478. PMIC_AUXADC_ADC_RDY_CH4_BY_THR2, PMIC_AUXADC_ADC_OUT_CH4_BY_THR2),
  479. /* VGPU_TEMP */
  480. PMIC_AUXADC_GEN(12, 1, 4, PMIC_AUXADC_RQST_CH4_BY_THR3,
  481. PMIC_AUXADC_ADC_RDY_CH4_BY_THR3, PMIC_AUXADC_ADC_OUT_CH4_BY_THR3),
  482. };
  483. int pmic_get_auxadc_value(unsigned short channel)
  484. {
  485. int count = 0;
  486. signed int adc_result = 0, reg_val = 0;
  487. struct pmic_auxadc_channel_new *auxadc_channel;
  488. if (channel >= AUXADC_LIST_MAX) {
  489. dprintf(INFO, "[%s] Invalid channel(%d)\n", __func__, channel);
  490. return -1;
  491. }
  492. auxadc_channel = &pmic_auxadc_channel[channel];
  493. pmic_set_register_value(auxadc_channel->channel_rqst, 1);
  494. udelay(10);
  495. while (pmic_get_register_value(auxadc_channel->channel_rdy) != 1) {
  496. udelay(1300);
  497. count++;
  498. if (count > count_time_out) {
  499. dprintf(INFO, "[%s] (%d) Time out!\n",
  500. __func__, auxadc_channel->ch_num);
  501. break;
  502. }
  503. }
  504. reg_val = pmic_get_register_value(auxadc_channel->channel_out);
  505. /* Audio request HPOFS to return raw data */
  506. if (channel == AUXADC_LIST_HPOFS_CAL)
  507. adc_result = reg_val;
  508. else if (auxadc_channel->resolution == 12)
  509. adc_result = (reg_val * auxadc_channel->r_val *
  510. VOLTAGE_FULL_RANGE) / 4096;
  511. else if (auxadc_channel->resolution == 15)
  512. adc_result = (reg_val * auxadc_channel->r_val *
  513. VOLTAGE_FULL_RANGE) / 32768;
  514. if (channel == AUXADC_LIST_BATADC) {
  515. adc_result = wk_vbat_cali(adc_result * 10,
  516. pmic_get_auxadc_value(AUXADC_LIST_CHIP_TEMP));
  517. adc_result /= 10;
  518. }
  519. dprintf(INFO, "[%s] channel = %d, reg_val = 0x%x, adc_result = %d\n",
  520. __func__, auxadc_channel->ch_num, reg_val, adc_result);
  521. return adc_result;
  522. }
  523. //==============================================================================
  524. // PMIC-AUXADC
  525. //==============================================================================
  526. int get_bat_sense_volt(int times)
  527. {
  528. return pmic_get_auxadc_value(AUXADC_LIST_BATADC);
  529. }
  530. int get_i_sense_volt(int times)
  531. {
  532. /* FIX ME: mt6358 has no i_sense */
  533. return pmic_get_auxadc_value(AUXADC_LIST_BATADC);
  534. }
  535. #define R_CHARGER_1 330
  536. #define R_CHARGER_2 39
  537. int get_charger_volt(int times)
  538. {
  539. kal_int32 val;
  540. val = pmic_get_auxadc_value(AUXADC_LIST_VCDT);
  541. val = (((R_CHARGER_1+R_CHARGER_2)*100*val)/R_CHARGER_2)/100;
  542. return val;
  543. }
  544. int get_tbat_volt(int times)
  545. {
  546. return pmic_get_auxadc_value(AUXADC_LIST_BATTEMP);
  547. }
  548. #define CUST_R_SENSE 68
  549. int get_charging_current(int times)
  550. {
  551. kal_int32 ADC_I_SENSE = 1; // 1 measure time
  552. kal_int32 ADC_BAT_SENSE = 1; // 1 measure time
  553. int ICharging = 0;
  554. ADC_I_SENSE = get_i_sense_volt(1);
  555. ADC_BAT_SENSE = get_bat_sense_volt(1);
  556. ICharging = (ADC_I_SENSE - ADC_BAT_SENSE ) * 1000 / CUST_R_SENSE;
  557. return ICharging;
  558. }