bq256xx_charger.c 49 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. // BQ256XX Battery Charger Driver
  3. // Copyright (C) 2020 Texas Instruments Incorporated - http://www.ti.com/
  4. #include <linux/err.h>
  5. #include <linux/i2c.h>
  6. #include <linux/init.h>
  7. #include <linux/interrupt.h>
  8. #include <linux/kernel.h>
  9. #include <linux/module.h>
  10. #include <linux/gpio/consumer.h>
  11. #include <linux/power_supply.h>
  12. #include <linux/regmap.h>
  13. #include <linux/types.h>
  14. #include <linux/usb/phy.h>
  15. #include <linux/device.h>
  16. #include <linux/moduleparam.h>
  17. #include <linux/slab.h>
  18. #include <linux/acpi.h>
  19. #define BQ256XX_MANUFACTURER "Texas Instruments"
  20. #define BQ256XX_INPUT_CURRENT_LIMIT 0x00
  21. #define BQ256XX_CHARGER_CONTROL_0 0x01
  22. #define BQ256XX_CHARGE_CURRENT_LIMIT 0x02
  23. #define BQ256XX_PRECHG_AND_TERM_CURR_LIM 0x03
  24. #define BQ256XX_BATTERY_VOLTAGE_LIMIT 0x04
  25. #define BQ256XX_CHARGER_CONTROL_1 0x05
  26. #define BQ256XX_CHARGER_CONTROL_2 0x06
  27. #define BQ256XX_CHARGER_CONTROL_3 0x07
  28. #define BQ256XX_CHARGER_STATUS_0 0x08
  29. #define BQ256XX_CHARGER_STATUS_1 0x09
  30. #define BQ256XX_CHARGER_STATUS_2 0x0a
  31. #define BQ256XX_PART_INFORMATION 0x0b
  32. #define BQ256XX_CHARGER_CONTROL_4 0x0c
  33. #define BQ256XX_IINDPM_MASK GENMASK(4, 0)
  34. #define BQ256XX_IINDPM_STEP_uA 100000
  35. #define BQ256XX_IINDPM_OFFSET_uA 100000
  36. #define BQ256XX_IINDPM_MIN_uA 100000
  37. #define BQ256XX_IINDPM_MAX_uA 3200000
  38. #define BQ256XX_IINDPM_DEF_uA 2400000
  39. #define BQ256XX_VINDPM_MASK GENMASK(3, 0)
  40. #define BQ256XX_VINDPM_STEP_uV 100000
  41. #define BQ256XX_VINDPM_OFFSET_uV 3900000
  42. #define BQ256XX_VINDPM_MIN_uV 3900000
  43. #define BQ256XX_VINDPM_MAX_uV 5400000
  44. #define BQ256XX_VINDPM_DEF_uV 4500000
  45. #define BQ256XX_VBATREG_MASK GENMASK(7, 3)
  46. #define BQ2560X_VBATREG_STEP_uV 32000
  47. #define BQ2560X_VBATREG_OFFSET_uV 3856000
  48. #define BQ2560X_VBATREG_MIN_uV 3856000
  49. #define BQ2560X_VBATREG_MAX_uV 4624000
  50. #define BQ2560X_VBATREG_DEF_uV 4208000
  51. #define BQ25601D_VBATREG_OFFSET_uV 3847000
  52. #define BQ25601D_VBATREG_MIN_uV 3847000
  53. #define BQ25601D_VBATREG_MAX_uV 4615000
  54. #define BQ25601D_VBATREG_DEF_uV 4199000
  55. #define BQ2561X_VBATREG_STEP_uV 10000
  56. #define BQ25611D_VBATREG_MIN_uV 3494000
  57. #define BQ25611D_VBATREG_MAX_uV 4510000
  58. #define BQ25611D_VBATREG_DEF_uV 4190000
  59. #define BQ25618_VBATREG_MIN_uV 3504000
  60. #define BQ25618_VBATREG_MAX_uV 4500000
  61. #define BQ25618_VBATREG_DEF_uV 4200000
  62. #define BQ256XX_VBATREG_BIT_SHIFT 3
  63. #define BQ2561X_VBATREG_THRESH 0x8
  64. #define BQ25611D_VBATREG_THRESH_uV 4290000
  65. #define BQ25618_VBATREG_THRESH_uV 4300000
  66. #define BQ256XX_ITERM_MASK GENMASK(3, 0)
  67. #define BQ256XX_ITERM_STEP_uA 60000
  68. #define BQ256XX_ITERM_OFFSET_uA 60000
  69. #define BQ256XX_ITERM_MIN_uA 60000
  70. #define BQ256XX_ITERM_MAX_uA 780000
  71. #define BQ256XX_ITERM_DEF_uA 180000
  72. #define BQ25618_ITERM_STEP_uA 20000
  73. #define BQ25618_ITERM_OFFSET_uA 20000
  74. #define BQ25618_ITERM_MIN_uA 20000
  75. #define BQ25618_ITERM_MAX_uA 260000
  76. #define BQ25618_ITERM_DEF_uA 60000
  77. #define BQ256XX_IPRECHG_MASK GENMASK(7, 4)
  78. #define BQ256XX_IPRECHG_STEP_uA 60000
  79. #define BQ256XX_IPRECHG_OFFSET_uA 60000
  80. #define BQ256XX_IPRECHG_MIN_uA 60000
  81. #define BQ256XX_IPRECHG_MAX_uA 780000
  82. #define BQ256XX_IPRECHG_DEF_uA 180000
  83. #define BQ25618_IPRECHG_STEP_uA 20000
  84. #define BQ25618_IPRECHG_OFFSET_uA 20000
  85. #define BQ25618_IPRECHG_MIN_uA 20000
  86. #define BQ25618_IPRECHG_MAX_uA 260000
  87. #define BQ25618_IPRECHG_DEF_uA 40000
  88. #define BQ256XX_IPRECHG_BIT_SHIFT 4
  89. #define BQ256XX_ICHG_MASK GENMASK(5, 0)
  90. #define BQ256XX_ICHG_STEP_uA 60000
  91. #define BQ256XX_ICHG_MIN_uA 0
  92. #define BQ256XX_ICHG_MAX_uA 3000000
  93. #define BQ2560X_ICHG_DEF_uA 2040000
  94. #define BQ25611D_ICHG_DEF_uA 1020000
  95. #define BQ25618_ICHG_STEP_uA 20000
  96. #define BQ25618_ICHG_MIN_uA 0
  97. #define BQ25618_ICHG_MAX_uA 1500000
  98. #define BQ25618_ICHG_DEF_uA 340000
  99. #define BQ25618_ICHG_THRESH 0x3c
  100. #define BQ25618_ICHG_THRESH_uA 1180000
  101. #define BQ256XX_VBUS_STAT_MASK GENMASK(7, 5)
  102. #define BQ256XX_VBUS_STAT_NO_INPUT 0
  103. #define BQ256XX_VBUS_STAT_USB_SDP BIT(5)
  104. #define BQ256XX_VBUS_STAT_USB_CDP BIT(6)
  105. #define BQ256XX_VBUS_STAT_USB_DCP (BIT(6) | BIT(5))
  106. #define BQ256XX_VBUS_STAT_USB_OTG (BIT(7) | BIT(6) | BIT(5))
  107. #define BQ256XX_CHRG_STAT_MASK GENMASK(4, 3)
  108. #define BQ256XX_CHRG_STAT_NOT_CHRGING 0
  109. #define BQ256XX_CHRG_STAT_PRECHRGING BIT(3)
  110. #define BQ256XX_CHRG_STAT_FAST_CHRGING BIT(4)
  111. #define BQ256XX_CHRG_STAT_CHRG_TERM (BIT(4) | BIT(3))
  112. #define BQ256XX_PG_STAT_MASK BIT(2)
  113. #define BQ256XX_WDT_FAULT_MASK BIT(7)
  114. #define BQ256XX_CHRG_FAULT_MASK GENMASK(5, 4)
  115. #define BQ256XX_CHRG_FAULT_NORMAL 0
  116. #define BQ256XX_CHRG_FAULT_INPUT BIT(4)
  117. #define BQ256XX_CHRG_FAULT_THERM BIT(5)
  118. #define BQ256XX_CHRG_FAULT_CST_EXPIRE (BIT(5) | BIT(4))
  119. #define BQ256XX_BAT_FAULT_MASK BIT(3)
  120. #define BQ256XX_NTC_FAULT_MASK GENMASK(2, 0)
  121. #define BQ256XX_NTC_FAULT_WARM BIT(1)
  122. #define BQ256XX_NTC_FAULT_COOL (BIT(1) | BIT(0))
  123. #define BQ256XX_NTC_FAULT_COLD (BIT(2) | BIT(0))
  124. #define BQ256XX_NTC_FAULT_HOT (BIT(2) | BIT(1))
  125. #define BQ256XX_NUM_WD_VAL 4
  126. #define BQ256XX_WATCHDOG_MASK GENMASK(5, 4)
  127. #define BQ256XX_WATCHDOG_MAX 1600000
  128. #define BQ256XX_WATCHDOG_DIS 0
  129. #define BQ256XX_WDT_BIT_SHIFT 4
  130. #define BQ256XX_REG_RST BIT(7)
  131. /**
  132. * struct bq256xx_init_data -
  133. * @ichg: fast charge current
  134. * @iindpm: input current limit
  135. * @vbatreg: charge voltage
  136. * @iterm: termination current
  137. * @iprechg: precharge current
  138. * @vindpm: input voltage limit
  139. * @ichg_max: maximum fast charge current
  140. * @vbatreg_max: maximum charge voltage
  141. */
  142. struct bq256xx_init_data {
  143. u32 ichg;
  144. u32 iindpm;
  145. u32 vbatreg;
  146. u32 iterm;
  147. u32 iprechg;
  148. u32 vindpm;
  149. u32 ichg_max;
  150. u32 vbatreg_max;
  151. };
  152. /**
  153. * struct bq256xx_state -
  154. * @vbus_stat: VBUS status according to BQ256XX_CHARGER_STATUS_0
  155. * @chrg_stat: charging status according to BQ256XX_CHARGER_STATUS_0
  156. * @online: PG status according to BQ256XX_CHARGER_STATUS_0
  157. *
  158. * @wdt_fault: watchdog fault according to BQ256XX_CHARGER_STATUS_1
  159. * @bat_fault: battery fault according to BQ256XX_CHARGER_STATUS_1
  160. * @chrg_fault: charging fault according to BQ256XX_CHARGER_STATUS_1
  161. * @ntc_fault: TS fault according to BQ256XX_CHARGER_STATUS_1
  162. */
  163. struct bq256xx_state {
  164. u8 vbus_stat;
  165. u8 chrg_stat;
  166. bool online;
  167. u8 wdt_fault;
  168. u8 bat_fault;
  169. u8 chrg_fault;
  170. u8 ntc_fault;
  171. };
  172. enum bq256xx_id {
  173. BQ25600,
  174. BQ25600D,
  175. BQ25601,
  176. BQ25601D,
  177. BQ25618,
  178. BQ25619,
  179. BQ25611D,
  180. };
  181. /**
  182. * struct bq256xx_device -
  183. * @client: i2c client structure
  184. * @regmap: register map structure
  185. * @dev: device structure
  186. * @charger: power supply registered for the charger
  187. * @battery: power supply registered for the battery
  188. * @lock: mutex lock structure
  189. *
  190. * @usb2_phy: usb_phy identifier
  191. * @usb3_phy: usb_phy identifier
  192. * @usb_nb: notifier block
  193. * @usb_work: usb work queue
  194. * @usb_event: usb_event code
  195. *
  196. * @model_name: i2c name string
  197. *
  198. * @init_data: initialization data
  199. * @chip_info: device variant information
  200. * @state: device status and faults
  201. * @watchdog_timer: watchdog timer value in milliseconds
  202. */
  203. struct bq256xx_device {
  204. struct i2c_client *client;
  205. struct device *dev;
  206. struct power_supply *charger;
  207. struct power_supply *battery;
  208. struct mutex lock;
  209. struct regmap *regmap;
  210. struct usb_phy *usb2_phy;
  211. struct usb_phy *usb3_phy;
  212. struct notifier_block usb_nb;
  213. struct work_struct usb_work;
  214. unsigned long usb_event;
  215. char model_name[I2C_NAME_SIZE];
  216. struct bq256xx_init_data init_data;
  217. const struct bq256xx_chip_info *chip_info;
  218. struct bq256xx_state state;
  219. int watchdog_timer;
  220. };
  221. /**
  222. * struct bq256xx_chip_info -
  223. * @model_id: device instance
  224. *
  225. * @bq256xx_regmap_config: regmap configuration struct
  226. * @bq256xx_get_ichg: pointer to instance specific get_ichg function
  227. * @bq256xx_get_iindpm: pointer to instance specific get_iindpm function
  228. * @bq256xx_get_vbatreg: pointer to instance specific get_vbatreg function
  229. * @bq256xx_get_iterm: pointer to instance specific get_iterm function
  230. * @bq256xx_get_iprechg: pointer to instance specific get_iprechg function
  231. * @bq256xx_get_vindpm: pointer to instance specific get_vindpm function
  232. *
  233. * @bq256xx_set_ichg: pointer to instance specific set_ichg function
  234. * @bq256xx_set_iindpm: pointer to instance specific set_iindpm function
  235. * @bq256xx_set_vbatreg: pointer to instance specific set_vbatreg function
  236. * @bq256xx_set_iterm: pointer to instance specific set_iterm function
  237. * @bq256xx_set_iprechg: pointer to instance specific set_iprechg function
  238. * @bq256xx_set_vindpm: pointer to instance specific set_vindpm function
  239. *
  240. * @bq256xx_def_ichg: default ichg value in microamps
  241. * @bq256xx_def_iindpm: default iindpm value in microamps
  242. * @bq256xx_def_vbatreg: default vbatreg value in microvolts
  243. * @bq256xx_def_iterm: default iterm value in microamps
  244. * @bq256xx_def_iprechg: default iprechg value in microamps
  245. * @bq256xx_def_vindpm: default vindpm value in microvolts
  246. *
  247. * @bq256xx_max_ichg: maximum charge current in microamps
  248. * @bq256xx_max_vbatreg: maximum battery regulation voltage in microvolts
  249. *
  250. * @has_usb_detect: indicates whether device has BC1.2 detection
  251. */
  252. struct bq256xx_chip_info {
  253. int model_id;
  254. const struct regmap_config *bq256xx_regmap_config;
  255. int (*bq256xx_get_ichg)(struct bq256xx_device *bq);
  256. int (*bq256xx_get_iindpm)(struct bq256xx_device *bq);
  257. int (*bq256xx_get_vbatreg)(struct bq256xx_device *bq);
  258. int (*bq256xx_get_iterm)(struct bq256xx_device *bq);
  259. int (*bq256xx_get_iprechg)(struct bq256xx_device *bq);
  260. int (*bq256xx_get_vindpm)(struct bq256xx_device *bq);
  261. int (*bq256xx_set_ichg)(struct bq256xx_device *bq, int ichg);
  262. int (*bq256xx_set_iindpm)(struct bq256xx_device *bq, int iindpm);
  263. int (*bq256xx_set_vbatreg)(struct bq256xx_device *bq, int vbatreg);
  264. int (*bq256xx_set_iterm)(struct bq256xx_device *bq, int iterm);
  265. int (*bq256xx_set_iprechg)(struct bq256xx_device *bq, int iprechg);
  266. int (*bq256xx_set_vindpm)(struct bq256xx_device *bq, int vindpm);
  267. int bq256xx_def_ichg;
  268. int bq256xx_def_iindpm;
  269. int bq256xx_def_vbatreg;
  270. int bq256xx_def_iterm;
  271. int bq256xx_def_iprechg;
  272. int bq256xx_def_vindpm;
  273. int bq256xx_max_ichg;
  274. int bq256xx_max_vbatreg;
  275. bool has_usb_detect;
  276. };
  277. static int bq256xx_watchdog_time[BQ256XX_NUM_WD_VAL] = {
  278. 0, 40000, 80000, 1600000
  279. };
  280. static const int bq25611d_vbatreg_values[] = {
  281. 3494000, 3590000, 3686000, 3790000, 3894000, 3990000, 4090000, 4140000,
  282. 4190000
  283. };
  284. static const int bq25618_619_vbatreg_values[] = {
  285. 3504000, 3600000, 3696000, 3800000, 3904000, 4000000, 4100000, 4150000,
  286. 4200000
  287. };
  288. static const int bq25618_619_ichg_values[] = {
  289. 1290000, 1360000, 1430000, 1500000
  290. };
  291. static enum power_supply_usb_type bq256xx_usb_type[] = {
  292. POWER_SUPPLY_USB_TYPE_SDP,
  293. POWER_SUPPLY_USB_TYPE_CDP,
  294. POWER_SUPPLY_USB_TYPE_DCP,
  295. POWER_SUPPLY_USB_TYPE_UNKNOWN,
  296. POWER_SUPPLY_USB_TYPE_ACA,
  297. };
  298. static int bq256xx_array_parse(int array_size, int val, const int array[])
  299. {
  300. int i = 0;
  301. if (val < array[i])
  302. return i - 1;
  303. if (val >= array[array_size - 1])
  304. return array_size - 1;
  305. for (i = 1; i < array_size; i++) {
  306. if (val == array[i])
  307. return i;
  308. if (val > array[i - 1] && val < array[i]) {
  309. if (val < array[i])
  310. return i - 1;
  311. else
  312. return i;
  313. }
  314. }
  315. return -EINVAL;
  316. }
  317. static int bq256xx_usb_notifier(struct notifier_block *nb, unsigned long val,
  318. void *priv)
  319. {
  320. struct bq256xx_device *bq =
  321. container_of(nb, struct bq256xx_device, usb_nb);
  322. bq->usb_event = val;
  323. queue_work(system_power_efficient_wq, &bq->usb_work);
  324. return NOTIFY_OK;
  325. }
  326. static void bq256xx_usb_work(struct work_struct *data)
  327. {
  328. struct bq256xx_device *bq =
  329. container_of(data, struct bq256xx_device, usb_work);
  330. switch (bq->usb_event) {
  331. case USB_EVENT_ID:
  332. break;
  333. case USB_EVENT_NONE:
  334. power_supply_changed(bq->charger);
  335. break;
  336. default:
  337. dev_err(bq->dev, "Error switching to charger mode.\n");
  338. break;
  339. }
  340. }
  341. static struct reg_default bq2560x_reg_defs[] = {
  342. {BQ256XX_INPUT_CURRENT_LIMIT, 0x17},
  343. {BQ256XX_CHARGER_CONTROL_0, 0x1a},
  344. {BQ256XX_CHARGE_CURRENT_LIMIT, 0xa2},
  345. {BQ256XX_PRECHG_AND_TERM_CURR_LIM, 0x22},
  346. {BQ256XX_BATTERY_VOLTAGE_LIMIT, 0x58},
  347. {BQ256XX_CHARGER_CONTROL_1, 0x9f},
  348. {BQ256XX_CHARGER_CONTROL_2, 0x66},
  349. {BQ256XX_CHARGER_CONTROL_3, 0x4c},
  350. };
  351. static struct reg_default bq25611d_reg_defs[] = {
  352. {BQ256XX_INPUT_CURRENT_LIMIT, 0x17},
  353. {BQ256XX_CHARGER_CONTROL_0, 0x1a},
  354. {BQ256XX_CHARGE_CURRENT_LIMIT, 0x91},
  355. {BQ256XX_PRECHG_AND_TERM_CURR_LIM, 0x12},
  356. {BQ256XX_BATTERY_VOLTAGE_LIMIT, 0x40},
  357. {BQ256XX_CHARGER_CONTROL_1, 0x9e},
  358. {BQ256XX_CHARGER_CONTROL_2, 0xe6},
  359. {BQ256XX_CHARGER_CONTROL_3, 0x4c},
  360. {BQ256XX_PART_INFORMATION, 0x54},
  361. {BQ256XX_CHARGER_CONTROL_4, 0x75},
  362. };
  363. static struct reg_default bq25618_619_reg_defs[] = {
  364. {BQ256XX_INPUT_CURRENT_LIMIT, 0x17},
  365. {BQ256XX_CHARGER_CONTROL_0, 0x1a},
  366. {BQ256XX_CHARGE_CURRENT_LIMIT, 0x91},
  367. {BQ256XX_PRECHG_AND_TERM_CURR_LIM, 0x12},
  368. {BQ256XX_BATTERY_VOLTAGE_LIMIT, 0x40},
  369. {BQ256XX_CHARGER_CONTROL_1, 0x9e},
  370. {BQ256XX_CHARGER_CONTROL_2, 0xe6},
  371. {BQ256XX_CHARGER_CONTROL_3, 0x4c},
  372. {BQ256XX_PART_INFORMATION, 0x2c},
  373. {BQ256XX_CHARGER_CONTROL_4, 0x75},
  374. };
  375. static int bq256xx_get_state(struct bq256xx_device *bq,
  376. struct bq256xx_state *state)
  377. {
  378. unsigned int charger_status_0;
  379. unsigned int charger_status_1;
  380. int ret;
  381. ret = regmap_read(bq->regmap, BQ256XX_CHARGER_STATUS_0,
  382. &charger_status_0);
  383. if (ret)
  384. return ret;
  385. ret = regmap_read(bq->regmap, BQ256XX_CHARGER_STATUS_1,
  386. &charger_status_1);
  387. if (ret)
  388. return ret;
  389. state->vbus_stat = charger_status_0 & BQ256XX_VBUS_STAT_MASK;
  390. state->chrg_stat = charger_status_0 & BQ256XX_CHRG_STAT_MASK;
  391. state->online = charger_status_0 & BQ256XX_PG_STAT_MASK;
  392. state->wdt_fault = charger_status_1 & BQ256XX_WDT_FAULT_MASK;
  393. state->bat_fault = charger_status_1 & BQ256XX_BAT_FAULT_MASK;
  394. state->chrg_fault = charger_status_1 & BQ256XX_CHRG_FAULT_MASK;
  395. state->ntc_fault = charger_status_1 & BQ256XX_NTC_FAULT_MASK;
  396. return 0;
  397. }
  398. static int bq256xx_get_ichg_curr(struct bq256xx_device *bq)
  399. {
  400. unsigned int charge_current_limit;
  401. unsigned int ichg_reg_code;
  402. int ret;
  403. ret = regmap_read(bq->regmap, BQ256XX_CHARGE_CURRENT_LIMIT,
  404. &charge_current_limit);
  405. if (ret)
  406. return ret;
  407. ichg_reg_code = charge_current_limit & BQ256XX_ICHG_MASK;
  408. return ichg_reg_code * BQ256XX_ICHG_STEP_uA;
  409. }
  410. static int bq25618_619_get_ichg_curr(struct bq256xx_device *bq)
  411. {
  412. unsigned int charge_current_limit;
  413. unsigned int ichg_reg_code;
  414. int ret;
  415. ret = regmap_read(bq->regmap, BQ256XX_CHARGE_CURRENT_LIMIT,
  416. &charge_current_limit);
  417. if (ret)
  418. return ret;
  419. ichg_reg_code = charge_current_limit & BQ256XX_ICHG_MASK;
  420. if (ichg_reg_code < BQ25618_ICHG_THRESH)
  421. return ichg_reg_code * BQ25618_ICHG_STEP_uA;
  422. return bq25618_619_ichg_values[ichg_reg_code - BQ25618_ICHG_THRESH];
  423. }
  424. static int bq256xx_set_ichg_curr(struct bq256xx_device *bq, int ichg)
  425. {
  426. unsigned int ichg_reg_code;
  427. int ichg_max = bq->init_data.ichg_max;
  428. ichg = clamp(ichg, BQ256XX_ICHG_MIN_uA, ichg_max);
  429. ichg_reg_code = ichg / BQ256XX_ICHG_STEP_uA;
  430. return regmap_update_bits(bq->regmap, BQ256XX_CHARGE_CURRENT_LIMIT,
  431. BQ256XX_ICHG_MASK, ichg_reg_code);
  432. }
  433. static int bq25618_619_set_ichg_curr(struct bq256xx_device *bq, int ichg)
  434. {
  435. int array_size = ARRAY_SIZE(bq25618_619_ichg_values);
  436. unsigned int ichg_reg_code;
  437. int ichg_max = bq->init_data.ichg_max;
  438. ichg = clamp(ichg, BQ25618_ICHG_MIN_uA, ichg_max);
  439. if (ichg <= BQ25618_ICHG_THRESH_uA) {
  440. ichg_reg_code = ichg / BQ25618_ICHG_STEP_uA;
  441. } else {
  442. ichg_reg_code = bq256xx_array_parse(array_size, ichg,
  443. bq25618_619_ichg_values) + BQ25618_ICHG_THRESH;
  444. }
  445. return regmap_update_bits(bq->regmap, BQ256XX_CHARGE_CURRENT_LIMIT,
  446. BQ256XX_ICHG_MASK, ichg_reg_code);
  447. }
  448. static int bq25618_619_get_chrg_volt(struct bq256xx_device *bq)
  449. {
  450. unsigned int battery_volt_lim;
  451. unsigned int vbatreg_reg_code;
  452. int ret;
  453. ret = regmap_read(bq->regmap, BQ256XX_BATTERY_VOLTAGE_LIMIT,
  454. &battery_volt_lim);
  455. if (ret)
  456. return ret;
  457. vbatreg_reg_code = (battery_volt_lim & BQ256XX_VBATREG_MASK) >>
  458. BQ256XX_VBATREG_BIT_SHIFT;
  459. if (vbatreg_reg_code > BQ2561X_VBATREG_THRESH)
  460. return ((vbatreg_reg_code - BQ2561X_VBATREG_THRESH) *
  461. BQ2561X_VBATREG_STEP_uV) +
  462. BQ25618_VBATREG_THRESH_uV;
  463. return bq25618_619_vbatreg_values[vbatreg_reg_code];
  464. }
  465. static int bq25611d_get_chrg_volt(struct bq256xx_device *bq)
  466. {
  467. unsigned int battery_volt_lim;
  468. unsigned int vbatreg_reg_code;
  469. int ret;
  470. ret = regmap_read(bq->regmap, BQ256XX_BATTERY_VOLTAGE_LIMIT,
  471. &battery_volt_lim);
  472. if (ret)
  473. return ret;
  474. vbatreg_reg_code = (battery_volt_lim & BQ256XX_VBATREG_MASK) >>
  475. BQ256XX_VBATREG_BIT_SHIFT;
  476. if (vbatreg_reg_code > BQ2561X_VBATREG_THRESH)
  477. return ((vbatreg_reg_code - BQ2561X_VBATREG_THRESH) *
  478. BQ2561X_VBATREG_STEP_uV) +
  479. BQ25611D_VBATREG_THRESH_uV;
  480. return bq25611d_vbatreg_values[vbatreg_reg_code];
  481. }
  482. static int bq2560x_get_chrg_volt(struct bq256xx_device *bq)
  483. {
  484. unsigned int battery_volt_lim;
  485. unsigned int vbatreg_reg_code;
  486. int ret;
  487. ret = regmap_read(bq->regmap, BQ256XX_BATTERY_VOLTAGE_LIMIT,
  488. &battery_volt_lim);
  489. if (ret)
  490. return ret;
  491. vbatreg_reg_code = (battery_volt_lim & BQ256XX_VBATREG_MASK) >>
  492. BQ256XX_VBATREG_BIT_SHIFT;
  493. return (vbatreg_reg_code * BQ2560X_VBATREG_STEP_uV)
  494. + BQ2560X_VBATREG_OFFSET_uV;
  495. }
  496. static int bq25601d_get_chrg_volt(struct bq256xx_device *bq)
  497. {
  498. unsigned int battery_volt_lim;
  499. unsigned int vbatreg_reg_code;
  500. int ret;
  501. ret = regmap_read(bq->regmap, BQ256XX_BATTERY_VOLTAGE_LIMIT,
  502. &battery_volt_lim);
  503. if (ret)
  504. return ret;
  505. vbatreg_reg_code = (battery_volt_lim & BQ256XX_VBATREG_MASK) >>
  506. BQ256XX_VBATREG_BIT_SHIFT;
  507. return (vbatreg_reg_code * BQ2560X_VBATREG_STEP_uV)
  508. + BQ25601D_VBATREG_OFFSET_uV;
  509. }
  510. static int bq25618_619_set_chrg_volt(struct bq256xx_device *bq, int vbatreg)
  511. {
  512. int array_size = ARRAY_SIZE(bq25618_619_vbatreg_values);
  513. unsigned int vbatreg_reg_code;
  514. int vbatreg_max = bq->init_data.vbatreg_max;
  515. vbatreg = clamp(vbatreg, BQ25618_VBATREG_MIN_uV, vbatreg_max);
  516. if (vbatreg > BQ25618_VBATREG_THRESH_uV)
  517. vbatreg_reg_code = ((vbatreg -
  518. BQ25618_VBATREG_THRESH_uV) /
  519. (BQ2561X_VBATREG_STEP_uV)) + BQ2561X_VBATREG_THRESH;
  520. else {
  521. vbatreg_reg_code = bq256xx_array_parse(array_size, vbatreg,
  522. bq25618_619_vbatreg_values);
  523. }
  524. return regmap_update_bits(bq->regmap, BQ256XX_BATTERY_VOLTAGE_LIMIT,
  525. BQ256XX_VBATREG_MASK, vbatreg_reg_code <<
  526. BQ256XX_VBATREG_BIT_SHIFT);
  527. }
  528. static int bq25611d_set_chrg_volt(struct bq256xx_device *bq, int vbatreg)
  529. {
  530. int array_size = ARRAY_SIZE(bq25611d_vbatreg_values);
  531. unsigned int vbatreg_reg_code;
  532. int vbatreg_max = bq->init_data.vbatreg_max;
  533. vbatreg = clamp(vbatreg, BQ25611D_VBATREG_MIN_uV, vbatreg_max);
  534. if (vbatreg > BQ25611D_VBATREG_THRESH_uV)
  535. vbatreg_reg_code = ((vbatreg -
  536. BQ25611D_VBATREG_THRESH_uV) /
  537. (BQ2561X_VBATREG_STEP_uV)) + BQ2561X_VBATREG_THRESH;
  538. else {
  539. vbatreg_reg_code = bq256xx_array_parse(array_size, vbatreg,
  540. bq25611d_vbatreg_values);
  541. }
  542. return regmap_update_bits(bq->regmap, BQ256XX_BATTERY_VOLTAGE_LIMIT,
  543. BQ256XX_VBATREG_MASK, vbatreg_reg_code <<
  544. BQ256XX_VBATREG_BIT_SHIFT);
  545. }
  546. static int bq2560x_set_chrg_volt(struct bq256xx_device *bq, int vbatreg)
  547. {
  548. unsigned int vbatreg_reg_code;
  549. int vbatreg_max = bq->init_data.vbatreg_max;
  550. vbatreg = clamp(vbatreg, BQ2560X_VBATREG_MIN_uV, vbatreg_max);
  551. vbatreg_reg_code = (vbatreg - BQ2560X_VBATREG_OFFSET_uV) /
  552. BQ2560X_VBATREG_STEP_uV;
  553. return regmap_update_bits(bq->regmap, BQ256XX_BATTERY_VOLTAGE_LIMIT,
  554. BQ256XX_VBATREG_MASK, vbatreg_reg_code <<
  555. BQ256XX_VBATREG_BIT_SHIFT);
  556. }
  557. static int bq25601d_set_chrg_volt(struct bq256xx_device *bq, int vbatreg)
  558. {
  559. unsigned int vbatreg_reg_code;
  560. int vbatreg_max = bq->init_data.vbatreg_max;
  561. vbatreg = clamp(vbatreg, BQ25601D_VBATREG_MIN_uV, vbatreg_max);
  562. vbatreg_reg_code = (vbatreg - BQ25601D_VBATREG_OFFSET_uV) /
  563. BQ2560X_VBATREG_STEP_uV;
  564. return regmap_update_bits(bq->regmap, BQ256XX_BATTERY_VOLTAGE_LIMIT,
  565. BQ256XX_VBATREG_MASK, vbatreg_reg_code <<
  566. BQ256XX_VBATREG_BIT_SHIFT);
  567. }
  568. static int bq256xx_get_prechrg_curr(struct bq256xx_device *bq)
  569. {
  570. unsigned int prechg_and_term_curr_lim;
  571. unsigned int iprechg_reg_code;
  572. int ret;
  573. ret = regmap_read(bq->regmap, BQ256XX_PRECHG_AND_TERM_CURR_LIM,
  574. &prechg_and_term_curr_lim);
  575. if (ret)
  576. return ret;
  577. iprechg_reg_code = (prechg_and_term_curr_lim & BQ256XX_IPRECHG_MASK)
  578. >> BQ256XX_IPRECHG_BIT_SHIFT;
  579. return (iprechg_reg_code * BQ256XX_IPRECHG_STEP_uA) +
  580. BQ256XX_IPRECHG_OFFSET_uA;
  581. }
  582. static int bq256xx_set_prechrg_curr(struct bq256xx_device *bq, int iprechg)
  583. {
  584. unsigned int iprechg_reg_code;
  585. iprechg = clamp(iprechg, BQ256XX_IPRECHG_MIN_uA,
  586. BQ256XX_IPRECHG_MAX_uA);
  587. iprechg_reg_code = ((iprechg - BQ256XX_IPRECHG_OFFSET_uA) /
  588. BQ256XX_IPRECHG_STEP_uA) << BQ256XX_IPRECHG_BIT_SHIFT;
  589. return regmap_update_bits(bq->regmap, BQ256XX_PRECHG_AND_TERM_CURR_LIM,
  590. BQ256XX_IPRECHG_MASK, iprechg_reg_code);
  591. }
  592. static int bq25618_619_get_prechrg_curr(struct bq256xx_device *bq)
  593. {
  594. unsigned int prechg_and_term_curr_lim;
  595. unsigned int iprechg_reg_code;
  596. int ret;
  597. ret = regmap_read(bq->regmap, BQ256XX_PRECHG_AND_TERM_CURR_LIM,
  598. &prechg_and_term_curr_lim);
  599. if (ret)
  600. return ret;
  601. iprechg_reg_code = (prechg_and_term_curr_lim & BQ256XX_IPRECHG_MASK)
  602. >> BQ256XX_IPRECHG_BIT_SHIFT;
  603. return (iprechg_reg_code * BQ25618_IPRECHG_STEP_uA) +
  604. BQ25618_IPRECHG_OFFSET_uA;
  605. }
  606. static int bq25618_619_set_prechrg_curr(struct bq256xx_device *bq, int iprechg)
  607. {
  608. unsigned int iprechg_reg_code;
  609. iprechg = clamp(iprechg, BQ25618_IPRECHG_MIN_uA,
  610. BQ25618_IPRECHG_MAX_uA);
  611. iprechg_reg_code = ((iprechg - BQ25618_IPRECHG_OFFSET_uA) /
  612. BQ25618_IPRECHG_STEP_uA) << BQ256XX_IPRECHG_BIT_SHIFT;
  613. return regmap_update_bits(bq->regmap, BQ256XX_PRECHG_AND_TERM_CURR_LIM,
  614. BQ256XX_IPRECHG_MASK, iprechg_reg_code);
  615. }
  616. static int bq256xx_get_term_curr(struct bq256xx_device *bq)
  617. {
  618. unsigned int prechg_and_term_curr_lim;
  619. unsigned int iterm_reg_code;
  620. int ret;
  621. ret = regmap_read(bq->regmap, BQ256XX_PRECHG_AND_TERM_CURR_LIM,
  622. &prechg_and_term_curr_lim);
  623. if (ret)
  624. return ret;
  625. iterm_reg_code = prechg_and_term_curr_lim & BQ256XX_ITERM_MASK;
  626. return (iterm_reg_code * BQ256XX_ITERM_STEP_uA) +
  627. BQ256XX_ITERM_OFFSET_uA;
  628. }
  629. static int bq256xx_set_term_curr(struct bq256xx_device *bq, int iterm)
  630. {
  631. unsigned int iterm_reg_code;
  632. iterm = clamp(iterm, BQ256XX_ITERM_MIN_uA, BQ256XX_ITERM_MAX_uA);
  633. iterm_reg_code = (iterm - BQ256XX_ITERM_OFFSET_uA) /
  634. BQ256XX_ITERM_STEP_uA;
  635. return regmap_update_bits(bq->regmap, BQ256XX_PRECHG_AND_TERM_CURR_LIM,
  636. BQ256XX_ITERM_MASK, iterm_reg_code);
  637. }
  638. static int bq25618_619_get_term_curr(struct bq256xx_device *bq)
  639. {
  640. unsigned int prechg_and_term_curr_lim;
  641. unsigned int iterm_reg_code;
  642. int ret;
  643. ret = regmap_read(bq->regmap, BQ256XX_PRECHG_AND_TERM_CURR_LIM,
  644. &prechg_and_term_curr_lim);
  645. if (ret)
  646. return ret;
  647. iterm_reg_code = prechg_and_term_curr_lim & BQ256XX_ITERM_MASK;
  648. return (iterm_reg_code * BQ25618_ITERM_STEP_uA) +
  649. BQ25618_ITERM_OFFSET_uA;
  650. }
  651. static int bq25618_619_set_term_curr(struct bq256xx_device *bq, int iterm)
  652. {
  653. unsigned int iterm_reg_code;
  654. iterm = clamp(iterm, BQ25618_ITERM_MIN_uA, BQ25618_ITERM_MAX_uA);
  655. iterm_reg_code = (iterm - BQ25618_ITERM_OFFSET_uA) /
  656. BQ25618_ITERM_STEP_uA;
  657. return regmap_update_bits(bq->regmap, BQ256XX_PRECHG_AND_TERM_CURR_LIM,
  658. BQ256XX_ITERM_MASK, iterm_reg_code);
  659. }
  660. static int bq256xx_get_input_volt_lim(struct bq256xx_device *bq)
  661. {
  662. unsigned int charger_control_2;
  663. unsigned int vindpm_reg_code;
  664. int ret;
  665. ret = regmap_read(bq->regmap, BQ256XX_CHARGER_CONTROL_2,
  666. &charger_control_2);
  667. if (ret)
  668. return ret;
  669. vindpm_reg_code = charger_control_2 & BQ256XX_VINDPM_MASK;
  670. return (vindpm_reg_code * BQ256XX_VINDPM_STEP_uV) +
  671. BQ256XX_VINDPM_OFFSET_uV;
  672. }
  673. static int bq256xx_set_input_volt_lim(struct bq256xx_device *bq, int vindpm)
  674. {
  675. unsigned int vindpm_reg_code;
  676. vindpm = clamp(vindpm, BQ256XX_VINDPM_MIN_uV, BQ256XX_VINDPM_MAX_uV);
  677. vindpm_reg_code = (vindpm - BQ256XX_VINDPM_OFFSET_uV) /
  678. BQ256XX_VINDPM_STEP_uV;
  679. return regmap_update_bits(bq->regmap, BQ256XX_CHARGER_CONTROL_2,
  680. BQ256XX_VINDPM_MASK, vindpm_reg_code);
  681. }
  682. static int bq256xx_get_input_curr_lim(struct bq256xx_device *bq)
  683. {
  684. unsigned int input_current_limit;
  685. unsigned int iindpm_reg_code;
  686. int ret;
  687. ret = regmap_read(bq->regmap, BQ256XX_INPUT_CURRENT_LIMIT,
  688. &input_current_limit);
  689. if (ret)
  690. return ret;
  691. iindpm_reg_code = input_current_limit & BQ256XX_IINDPM_MASK;
  692. return (iindpm_reg_code * BQ256XX_IINDPM_STEP_uA) +
  693. BQ256XX_IINDPM_OFFSET_uA;
  694. }
  695. static int bq256xx_set_input_curr_lim(struct bq256xx_device *bq, int iindpm)
  696. {
  697. unsigned int iindpm_reg_code;
  698. iindpm = clamp(iindpm, BQ256XX_IINDPM_MIN_uA, BQ256XX_IINDPM_MAX_uA);
  699. iindpm_reg_code = (iindpm - BQ256XX_IINDPM_OFFSET_uA) /
  700. BQ256XX_IINDPM_STEP_uA;
  701. return regmap_update_bits(bq->regmap, BQ256XX_INPUT_CURRENT_LIMIT,
  702. BQ256XX_IINDPM_MASK, iindpm_reg_code);
  703. }
  704. static void bq256xx_charger_reset(void *data)
  705. {
  706. struct bq256xx_device *bq = data;
  707. regmap_update_bits(bq->regmap, BQ256XX_PART_INFORMATION,
  708. BQ256XX_REG_RST, BQ256XX_REG_RST);
  709. if (!IS_ERR_OR_NULL(bq->usb2_phy))
  710. usb_unregister_notifier(bq->usb2_phy, &bq->usb_nb);
  711. if (!IS_ERR_OR_NULL(bq->usb3_phy))
  712. usb_unregister_notifier(bq->usb3_phy, &bq->usb_nb);
  713. }
  714. static int bq256xx_set_charger_property(struct power_supply *psy,
  715. enum power_supply_property prop,
  716. const union power_supply_propval *val)
  717. {
  718. struct bq256xx_device *bq = power_supply_get_drvdata(psy);
  719. int ret = -EINVAL;
  720. switch (prop) {
  721. case POWER_SUPPLY_PROP_INPUT_CURRENT_LIMIT:
  722. ret = bq->chip_info->bq256xx_set_iindpm(bq, val->intval);
  723. if (ret)
  724. return ret;
  725. break;
  726. case POWER_SUPPLY_PROP_STATUS:
  727. break;
  728. case POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE:
  729. ret = bq->chip_info->bq256xx_set_vbatreg(bq, val->intval);
  730. if (ret)
  731. return ret;
  732. break;
  733. case POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT:
  734. ret = bq->chip_info->bq256xx_set_ichg(bq, val->intval);
  735. if (ret)
  736. return ret;
  737. break;
  738. case POWER_SUPPLY_PROP_PRECHARGE_CURRENT:
  739. ret = bq->chip_info->bq256xx_set_iprechg(bq, val->intval);
  740. if (ret)
  741. return ret;
  742. break;
  743. case POWER_SUPPLY_PROP_CHARGE_TERM_CURRENT:
  744. ret = bq->chip_info->bq256xx_set_iterm(bq, val->intval);
  745. if (ret)
  746. return ret;
  747. break;
  748. case POWER_SUPPLY_PROP_INPUT_VOLTAGE_LIMIT:
  749. ret = bq->chip_info->bq256xx_set_vindpm(bq, val->intval);
  750. if (ret)
  751. return ret;
  752. break;
  753. default:
  754. break;
  755. }
  756. return ret;
  757. }
  758. static int bq256xx_get_battery_property(struct power_supply *psy,
  759. enum power_supply_property psp,
  760. union power_supply_propval *val)
  761. {
  762. struct bq256xx_device *bq = power_supply_get_drvdata(psy);
  763. switch (psp) {
  764. case POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT_MAX:
  765. val->intval = bq->init_data.ichg_max;
  766. break;
  767. case POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE_MAX:
  768. val->intval = bq->init_data.vbatreg_max;
  769. break;
  770. default:
  771. return -EINVAL;
  772. }
  773. return 0;
  774. }
  775. static int bq256xx_get_charger_property(struct power_supply *psy,
  776. enum power_supply_property psp,
  777. union power_supply_propval *val)
  778. {
  779. struct bq256xx_device *bq = power_supply_get_drvdata(psy);
  780. struct bq256xx_state state;
  781. int ret = 0;
  782. mutex_lock(&bq->lock);
  783. ret = bq256xx_get_state(bq, &state);
  784. mutex_unlock(&bq->lock);
  785. if (ret)
  786. return ret;
  787. switch (psp) {
  788. case POWER_SUPPLY_PROP_STATUS:
  789. if (state.vbus_stat == BQ256XX_VBUS_STAT_NO_INPUT ||
  790. state.vbus_stat == BQ256XX_VBUS_STAT_USB_OTG)
  791. val->intval = POWER_SUPPLY_STATUS_DISCHARGING;
  792. else if (state.chrg_stat == BQ256XX_CHRG_STAT_NOT_CHRGING)
  793. val->intval = POWER_SUPPLY_STATUS_NOT_CHARGING;
  794. else if (state.chrg_stat == BQ256XX_CHRG_STAT_CHRG_TERM)
  795. val->intval = POWER_SUPPLY_STATUS_FULL;
  796. else
  797. val->intval = POWER_SUPPLY_STATUS_CHARGING;
  798. break;
  799. case POWER_SUPPLY_PROP_HEALTH:
  800. val->intval = POWER_SUPPLY_HEALTH_UNKNOWN;
  801. if (state.wdt_fault) {
  802. val->intval =
  803. POWER_SUPPLY_HEALTH_WATCHDOG_TIMER_EXPIRE;
  804. } else if (state.bat_fault) {
  805. val->intval = POWER_SUPPLY_HEALTH_OVERVOLTAGE;
  806. } else {
  807. switch (state.chrg_stat) {
  808. case BQ256XX_CHRG_FAULT_INPUT:
  809. val->intval =
  810. POWER_SUPPLY_HEALTH_UNSPEC_FAILURE;
  811. break;
  812. case BQ256XX_CHRG_FAULT_THERM:
  813. val->intval = POWER_SUPPLY_HEALTH_OVERHEAT;
  814. break;
  815. case BQ256XX_CHRG_FAULT_CST_EXPIRE:
  816. val->intval =
  817. POWER_SUPPLY_HEALTH_SAFETY_TIMER_EXPIRE;
  818. break;
  819. default:
  820. break;
  821. }
  822. switch (state.ntc_fault) {
  823. case BQ256XX_NTC_FAULT_WARM:
  824. val->intval = POWER_SUPPLY_HEALTH_WARM;
  825. break;
  826. case BQ256XX_NTC_FAULT_COOL:
  827. val->intval = POWER_SUPPLY_HEALTH_COOL;
  828. break;
  829. case BQ256XX_NTC_FAULT_COLD:
  830. val->intval = POWER_SUPPLY_HEALTH_COLD;
  831. break;
  832. case BQ256XX_NTC_FAULT_HOT:
  833. val->intval = POWER_SUPPLY_HEALTH_HOT;
  834. break;
  835. default:
  836. val->intval = POWER_SUPPLY_HEALTH_GOOD;
  837. break;
  838. }
  839. }
  840. break;
  841. case POWER_SUPPLY_PROP_USB_TYPE:
  842. if (bq->chip_info->has_usb_detect) {
  843. switch (state.vbus_stat) {
  844. case BQ256XX_VBUS_STAT_USB_SDP:
  845. val->intval = POWER_SUPPLY_USB_TYPE_SDP;
  846. break;
  847. case BQ256XX_VBUS_STAT_USB_CDP:
  848. val->intval = POWER_SUPPLY_USB_TYPE_CDP;
  849. break;
  850. case BQ256XX_VBUS_STAT_USB_DCP:
  851. val->intval = POWER_SUPPLY_USB_TYPE_DCP;
  852. break;
  853. case BQ256XX_VBUS_STAT_USB_OTG:
  854. val->intval = POWER_SUPPLY_USB_TYPE_ACA;
  855. break;
  856. default:
  857. val->intval = POWER_SUPPLY_USB_TYPE_UNKNOWN;
  858. break;
  859. }
  860. } else {
  861. switch (state.vbus_stat) {
  862. case BQ256XX_VBUS_STAT_USB_SDP:
  863. val->intval = POWER_SUPPLY_USB_TYPE_SDP;
  864. break;
  865. case BQ256XX_VBUS_STAT_USB_OTG:
  866. val->intval = POWER_SUPPLY_USB_TYPE_ACA;
  867. break;
  868. default:
  869. val->intval = POWER_SUPPLY_USB_TYPE_UNKNOWN;
  870. break;
  871. }
  872. }
  873. break;
  874. case POWER_SUPPLY_PROP_CHARGE_TYPE:
  875. switch (state.chrg_stat) {
  876. case BQ256XX_CHRG_STAT_NOT_CHRGING:
  877. val->intval = POWER_SUPPLY_CHARGE_TYPE_NONE;
  878. break;
  879. case BQ256XX_CHRG_STAT_PRECHRGING:
  880. val->intval = POWER_SUPPLY_CHARGE_TYPE_TRICKLE;
  881. break;
  882. case BQ256XX_CHRG_STAT_FAST_CHRGING:
  883. val->intval = POWER_SUPPLY_CHARGE_TYPE_FAST;
  884. break;
  885. case BQ256XX_CHRG_STAT_CHRG_TERM:
  886. val->intval = POWER_SUPPLY_CHARGE_TYPE_TRICKLE;
  887. break;
  888. default:
  889. val->intval = POWER_SUPPLY_CHARGE_TYPE_UNKNOWN;
  890. }
  891. break;
  892. case POWER_SUPPLY_PROP_MANUFACTURER:
  893. val->strval = BQ256XX_MANUFACTURER;
  894. break;
  895. case POWER_SUPPLY_PROP_MODEL_NAME:
  896. val->strval = bq->model_name;
  897. break;
  898. case POWER_SUPPLY_PROP_ONLINE:
  899. val->intval = state.online;
  900. break;
  901. case POWER_SUPPLY_PROP_INPUT_VOLTAGE_LIMIT:
  902. ret = bq->chip_info->bq256xx_get_vindpm(bq);
  903. if (ret < 0)
  904. return ret;
  905. val->intval = ret;
  906. break;
  907. case POWER_SUPPLY_PROP_INPUT_CURRENT_LIMIT:
  908. ret = bq->chip_info->bq256xx_get_iindpm(bq);
  909. if (ret < 0)
  910. return ret;
  911. val->intval = ret;
  912. break;
  913. case POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE:
  914. ret = bq->chip_info->bq256xx_get_vbatreg(bq);
  915. if (ret < 0)
  916. return ret;
  917. val->intval = ret;
  918. break;
  919. case POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT:
  920. ret = bq->chip_info->bq256xx_get_ichg(bq);
  921. if (ret < 0)
  922. return ret;
  923. val->intval = ret;
  924. break;
  925. case POWER_SUPPLY_PROP_PRECHARGE_CURRENT:
  926. ret = bq->chip_info->bq256xx_get_iprechg(bq);
  927. if (ret < 0)
  928. return ret;
  929. val->intval = ret;
  930. break;
  931. case POWER_SUPPLY_PROP_CHARGE_TERM_CURRENT:
  932. ret = bq->chip_info->bq256xx_get_iterm(bq);
  933. if (ret < 0)
  934. return ret;
  935. val->intval = ret;
  936. break;
  937. default:
  938. return -EINVAL;
  939. }
  940. return ret;
  941. }
  942. static bool bq256xx_state_changed(struct bq256xx_device *bq,
  943. struct bq256xx_state *new_state)
  944. {
  945. struct bq256xx_state old_state;
  946. mutex_lock(&bq->lock);
  947. old_state = bq->state;
  948. mutex_unlock(&bq->lock);
  949. return memcmp(&old_state, new_state, sizeof(struct bq256xx_state)) != 0;
  950. }
  951. static irqreturn_t bq256xx_irq_handler_thread(int irq, void *private)
  952. {
  953. struct bq256xx_device *bq = private;
  954. struct bq256xx_state state;
  955. int ret;
  956. ret = bq256xx_get_state(bq, &state);
  957. if (ret < 0)
  958. goto irq_out;
  959. if (!bq256xx_state_changed(bq, &state))
  960. goto irq_out;
  961. mutex_lock(&bq->lock);
  962. bq->state = state;
  963. mutex_unlock(&bq->lock);
  964. power_supply_changed(bq->charger);
  965. irq_out:
  966. return IRQ_HANDLED;
  967. }
  968. static enum power_supply_property bq256xx_power_supply_props[] = {
  969. POWER_SUPPLY_PROP_MANUFACTURER,
  970. POWER_SUPPLY_PROP_MODEL_NAME,
  971. POWER_SUPPLY_PROP_STATUS,
  972. POWER_SUPPLY_PROP_ONLINE,
  973. POWER_SUPPLY_PROP_HEALTH,
  974. POWER_SUPPLY_PROP_INPUT_VOLTAGE_LIMIT,
  975. POWER_SUPPLY_PROP_INPUT_CURRENT_LIMIT,
  976. POWER_SUPPLY_PROP_CHARGE_TYPE,
  977. POWER_SUPPLY_PROP_USB_TYPE,
  978. POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT,
  979. POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE,
  980. POWER_SUPPLY_PROP_PRECHARGE_CURRENT,
  981. POWER_SUPPLY_PROP_CHARGE_TERM_CURRENT,
  982. };
  983. static enum power_supply_property bq256xx_battery_props[] = {
  984. POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT_MAX,
  985. POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE_MAX,
  986. };
  987. static int bq256xx_property_is_writeable(struct power_supply *psy,
  988. enum power_supply_property prop)
  989. {
  990. switch (prop) {
  991. case POWER_SUPPLY_PROP_INPUT_CURRENT_LIMIT:
  992. case POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE:
  993. case POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT:
  994. case POWER_SUPPLY_PROP_PRECHARGE_CURRENT:
  995. case POWER_SUPPLY_PROP_CHARGE_TERM_CURRENT:
  996. case POWER_SUPPLY_PROP_STATUS:
  997. case POWER_SUPPLY_PROP_INPUT_VOLTAGE_LIMIT:
  998. return true;
  999. default:
  1000. return false;
  1001. }
  1002. }
  1003. static const struct power_supply_desc bq256xx_power_supply_desc = {
  1004. .name = "bq256xx-charger",
  1005. .type = POWER_SUPPLY_TYPE_USB,
  1006. .usb_types = bq256xx_usb_type,
  1007. .num_usb_types = ARRAY_SIZE(bq256xx_usb_type),
  1008. .properties = bq256xx_power_supply_props,
  1009. .num_properties = ARRAY_SIZE(bq256xx_power_supply_props),
  1010. .get_property = bq256xx_get_charger_property,
  1011. .set_property = bq256xx_set_charger_property,
  1012. .property_is_writeable = bq256xx_property_is_writeable,
  1013. };
  1014. static struct power_supply_desc bq256xx_battery_desc = {
  1015. .name = "bq256xx-battery",
  1016. .type = POWER_SUPPLY_TYPE_BATTERY,
  1017. .get_property = bq256xx_get_battery_property,
  1018. .properties = bq256xx_battery_props,
  1019. .num_properties = ARRAY_SIZE(bq256xx_battery_props),
  1020. .property_is_writeable = bq256xx_property_is_writeable,
  1021. };
  1022. static bool bq256xx_is_volatile_reg(struct device *dev, unsigned int reg)
  1023. {
  1024. switch (reg) {
  1025. case BQ256XX_INPUT_CURRENT_LIMIT:
  1026. case BQ256XX_CHARGER_STATUS_0...BQ256XX_CHARGER_STATUS_2:
  1027. return true;
  1028. default:
  1029. return false;
  1030. }
  1031. }
  1032. static const struct regmap_config bq25600_regmap_config = {
  1033. .reg_bits = 8,
  1034. .val_bits = 8,
  1035. .max_register = BQ256XX_PART_INFORMATION,
  1036. .reg_defaults = bq2560x_reg_defs,
  1037. .num_reg_defaults = ARRAY_SIZE(bq2560x_reg_defs),
  1038. .cache_type = REGCACHE_FLAT,
  1039. .volatile_reg = bq256xx_is_volatile_reg,
  1040. };
  1041. static const struct regmap_config bq25611d_regmap_config = {
  1042. .reg_bits = 8,
  1043. .val_bits = 8,
  1044. .max_register = BQ256XX_CHARGER_CONTROL_4,
  1045. .reg_defaults = bq25611d_reg_defs,
  1046. .num_reg_defaults = ARRAY_SIZE(bq25611d_reg_defs),
  1047. .cache_type = REGCACHE_FLAT,
  1048. .volatile_reg = bq256xx_is_volatile_reg,
  1049. };
  1050. static const struct regmap_config bq25618_619_regmap_config = {
  1051. .reg_bits = 8,
  1052. .val_bits = 8,
  1053. .max_register = BQ256XX_CHARGER_CONTROL_4,
  1054. .reg_defaults = bq25618_619_reg_defs,
  1055. .num_reg_defaults = ARRAY_SIZE(bq25618_619_reg_defs),
  1056. .cache_type = REGCACHE_FLAT,
  1057. .volatile_reg = bq256xx_is_volatile_reg,
  1058. };
  1059. static const struct bq256xx_chip_info bq256xx_chip_info_tbl[] = {
  1060. [BQ25600] = {
  1061. .model_id = BQ25600,
  1062. .bq256xx_regmap_config = &bq25600_regmap_config,
  1063. .bq256xx_get_ichg = bq256xx_get_ichg_curr,
  1064. .bq256xx_get_iindpm = bq256xx_get_input_curr_lim,
  1065. .bq256xx_get_vbatreg = bq2560x_get_chrg_volt,
  1066. .bq256xx_get_iterm = bq256xx_get_term_curr,
  1067. .bq256xx_get_iprechg = bq256xx_get_prechrg_curr,
  1068. .bq256xx_get_vindpm = bq256xx_get_input_volt_lim,
  1069. .bq256xx_set_ichg = bq256xx_set_ichg_curr,
  1070. .bq256xx_set_iindpm = bq256xx_set_input_curr_lim,
  1071. .bq256xx_set_vbatreg = bq2560x_set_chrg_volt,
  1072. .bq256xx_set_iterm = bq256xx_set_term_curr,
  1073. .bq256xx_set_iprechg = bq256xx_set_prechrg_curr,
  1074. .bq256xx_set_vindpm = bq256xx_set_input_volt_lim,
  1075. .bq256xx_def_ichg = BQ2560X_ICHG_DEF_uA,
  1076. .bq256xx_def_iindpm = BQ256XX_IINDPM_DEF_uA,
  1077. .bq256xx_def_vbatreg = BQ2560X_VBATREG_DEF_uV,
  1078. .bq256xx_def_iterm = BQ256XX_ITERM_DEF_uA,
  1079. .bq256xx_def_iprechg = BQ256XX_IPRECHG_DEF_uA,
  1080. .bq256xx_def_vindpm = BQ256XX_VINDPM_DEF_uV,
  1081. .bq256xx_max_ichg = BQ256XX_ICHG_MAX_uA,
  1082. .bq256xx_max_vbatreg = BQ2560X_VBATREG_MAX_uV,
  1083. .has_usb_detect = false,
  1084. },
  1085. [BQ25600D] = {
  1086. .model_id = BQ25600D,
  1087. .bq256xx_regmap_config = &bq25600_regmap_config,
  1088. .bq256xx_get_ichg = bq256xx_get_ichg_curr,
  1089. .bq256xx_get_iindpm = bq256xx_get_input_curr_lim,
  1090. .bq256xx_get_vbatreg = bq2560x_get_chrg_volt,
  1091. .bq256xx_get_iterm = bq256xx_get_term_curr,
  1092. .bq256xx_get_iprechg = bq256xx_get_prechrg_curr,
  1093. .bq256xx_get_vindpm = bq256xx_get_input_volt_lim,
  1094. .bq256xx_set_ichg = bq256xx_set_ichg_curr,
  1095. .bq256xx_set_iindpm = bq256xx_set_input_curr_lim,
  1096. .bq256xx_set_vbatreg = bq2560x_set_chrg_volt,
  1097. .bq256xx_set_iterm = bq256xx_set_term_curr,
  1098. .bq256xx_set_iprechg = bq256xx_set_prechrg_curr,
  1099. .bq256xx_set_vindpm = bq256xx_set_input_volt_lim,
  1100. .bq256xx_def_ichg = BQ2560X_ICHG_DEF_uA,
  1101. .bq256xx_def_iindpm = BQ256XX_IINDPM_DEF_uA,
  1102. .bq256xx_def_vbatreg = BQ2560X_VBATREG_DEF_uV,
  1103. .bq256xx_def_iterm = BQ256XX_ITERM_DEF_uA,
  1104. .bq256xx_def_iprechg = BQ256XX_IPRECHG_DEF_uA,
  1105. .bq256xx_def_vindpm = BQ256XX_VINDPM_DEF_uV,
  1106. .bq256xx_max_ichg = BQ256XX_ICHG_MAX_uA,
  1107. .bq256xx_max_vbatreg = BQ2560X_VBATREG_MAX_uV,
  1108. .has_usb_detect = true,
  1109. },
  1110. [BQ25601] = {
  1111. .model_id = BQ25601,
  1112. .bq256xx_regmap_config = &bq25600_regmap_config,
  1113. .bq256xx_get_ichg = bq256xx_get_ichg_curr,
  1114. .bq256xx_get_iindpm = bq256xx_get_input_curr_lim,
  1115. .bq256xx_get_vbatreg = bq2560x_get_chrg_volt,
  1116. .bq256xx_get_iterm = bq256xx_get_term_curr,
  1117. .bq256xx_get_iprechg = bq256xx_get_prechrg_curr,
  1118. .bq256xx_get_vindpm = bq256xx_get_input_volt_lim,
  1119. .bq256xx_set_ichg = bq256xx_set_ichg_curr,
  1120. .bq256xx_set_iindpm = bq256xx_set_input_curr_lim,
  1121. .bq256xx_set_vbatreg = bq2560x_set_chrg_volt,
  1122. .bq256xx_set_iterm = bq256xx_set_term_curr,
  1123. .bq256xx_set_iprechg = bq256xx_set_prechrg_curr,
  1124. .bq256xx_set_vindpm = bq256xx_set_input_volt_lim,
  1125. .bq256xx_def_ichg = BQ2560X_ICHG_DEF_uA,
  1126. .bq256xx_def_iindpm = BQ256XX_IINDPM_DEF_uA,
  1127. .bq256xx_def_vbatreg = BQ2560X_VBATREG_DEF_uV,
  1128. .bq256xx_def_iterm = BQ256XX_ITERM_DEF_uA,
  1129. .bq256xx_def_iprechg = BQ256XX_IPRECHG_DEF_uA,
  1130. .bq256xx_def_vindpm = BQ256XX_VINDPM_DEF_uV,
  1131. .bq256xx_max_ichg = BQ256XX_ICHG_MAX_uA,
  1132. .bq256xx_max_vbatreg = BQ2560X_VBATREG_MAX_uV,
  1133. .has_usb_detect = false,
  1134. },
  1135. [BQ25601D] = {
  1136. .model_id = BQ25601D,
  1137. .bq256xx_regmap_config = &bq25600_regmap_config,
  1138. .bq256xx_get_ichg = bq256xx_get_ichg_curr,
  1139. .bq256xx_get_iindpm = bq256xx_get_input_curr_lim,
  1140. .bq256xx_get_vbatreg = bq25601d_get_chrg_volt,
  1141. .bq256xx_get_iterm = bq256xx_get_term_curr,
  1142. .bq256xx_get_iprechg = bq256xx_get_prechrg_curr,
  1143. .bq256xx_get_vindpm = bq256xx_get_input_volt_lim,
  1144. .bq256xx_set_ichg = bq256xx_set_ichg_curr,
  1145. .bq256xx_set_iindpm = bq256xx_set_input_curr_lim,
  1146. .bq256xx_set_vbatreg = bq25601d_set_chrg_volt,
  1147. .bq256xx_set_iterm = bq256xx_set_term_curr,
  1148. .bq256xx_set_iprechg = bq256xx_set_prechrg_curr,
  1149. .bq256xx_set_vindpm = bq256xx_set_input_volt_lim,
  1150. .bq256xx_def_ichg = BQ2560X_ICHG_DEF_uA,
  1151. .bq256xx_def_iindpm = BQ256XX_IINDPM_DEF_uA,
  1152. .bq256xx_def_vbatreg = BQ2560X_VBATREG_DEF_uV,
  1153. .bq256xx_def_iterm = BQ256XX_ITERM_DEF_uA,
  1154. .bq256xx_def_iprechg = BQ256XX_IPRECHG_DEF_uA,
  1155. .bq256xx_def_vindpm = BQ256XX_VINDPM_DEF_uV,
  1156. .bq256xx_max_ichg = BQ256XX_ICHG_MAX_uA,
  1157. .bq256xx_max_vbatreg = BQ2560X_VBATREG_MAX_uV,
  1158. .has_usb_detect = true,
  1159. },
  1160. [BQ25611D] = {
  1161. .model_id = BQ25611D,
  1162. .bq256xx_regmap_config = &bq25611d_regmap_config,
  1163. .bq256xx_get_ichg = bq256xx_get_ichg_curr,
  1164. .bq256xx_get_iindpm = bq256xx_get_input_curr_lim,
  1165. .bq256xx_get_vbatreg = bq25611d_get_chrg_volt,
  1166. .bq256xx_get_iterm = bq256xx_get_term_curr,
  1167. .bq256xx_get_iprechg = bq256xx_get_prechrg_curr,
  1168. .bq256xx_get_vindpm = bq256xx_get_input_volt_lim,
  1169. .bq256xx_set_ichg = bq256xx_set_ichg_curr,
  1170. .bq256xx_set_iindpm = bq256xx_set_input_curr_lim,
  1171. .bq256xx_set_vbatreg = bq25611d_set_chrg_volt,
  1172. .bq256xx_set_iterm = bq256xx_set_term_curr,
  1173. .bq256xx_set_iprechg = bq256xx_set_prechrg_curr,
  1174. .bq256xx_set_vindpm = bq256xx_set_input_volt_lim,
  1175. .bq256xx_def_ichg = BQ25611D_ICHG_DEF_uA,
  1176. .bq256xx_def_iindpm = BQ256XX_IINDPM_DEF_uA,
  1177. .bq256xx_def_vbatreg = BQ25611D_VBATREG_DEF_uV,
  1178. .bq256xx_def_iterm = BQ256XX_ITERM_DEF_uA,
  1179. .bq256xx_def_iprechg = BQ256XX_IPRECHG_DEF_uA,
  1180. .bq256xx_def_vindpm = BQ256XX_VINDPM_DEF_uV,
  1181. .bq256xx_max_ichg = BQ256XX_ICHG_MAX_uA,
  1182. .bq256xx_max_vbatreg = BQ25611D_VBATREG_MAX_uV,
  1183. .has_usb_detect = true,
  1184. },
  1185. [BQ25618] = {
  1186. .model_id = BQ25618,
  1187. .bq256xx_regmap_config = &bq25618_619_regmap_config,
  1188. .bq256xx_get_ichg = bq25618_619_get_ichg_curr,
  1189. .bq256xx_get_iindpm = bq256xx_get_input_curr_lim,
  1190. .bq256xx_get_vbatreg = bq25618_619_get_chrg_volt,
  1191. .bq256xx_get_iterm = bq25618_619_get_term_curr,
  1192. .bq256xx_get_iprechg = bq25618_619_get_prechrg_curr,
  1193. .bq256xx_get_vindpm = bq256xx_get_input_volt_lim,
  1194. .bq256xx_set_ichg = bq25618_619_set_ichg_curr,
  1195. .bq256xx_set_iindpm = bq256xx_set_input_curr_lim,
  1196. .bq256xx_set_vbatreg = bq25618_619_set_chrg_volt,
  1197. .bq256xx_set_iterm = bq25618_619_set_term_curr,
  1198. .bq256xx_set_iprechg = bq25618_619_set_prechrg_curr,
  1199. .bq256xx_set_vindpm = bq256xx_set_input_volt_lim,
  1200. .bq256xx_def_ichg = BQ25618_ICHG_DEF_uA,
  1201. .bq256xx_def_iindpm = BQ256XX_IINDPM_DEF_uA,
  1202. .bq256xx_def_vbatreg = BQ25618_VBATREG_DEF_uV,
  1203. .bq256xx_def_iterm = BQ25618_ITERM_DEF_uA,
  1204. .bq256xx_def_iprechg = BQ25618_IPRECHG_DEF_uA,
  1205. .bq256xx_def_vindpm = BQ256XX_VINDPM_DEF_uV,
  1206. .bq256xx_max_ichg = BQ25618_ICHG_MAX_uA,
  1207. .bq256xx_max_vbatreg = BQ25618_VBATREG_MAX_uV,
  1208. .has_usb_detect = false,
  1209. },
  1210. [BQ25619] = {
  1211. .model_id = BQ25619,
  1212. .bq256xx_regmap_config = &bq25618_619_regmap_config,
  1213. .bq256xx_get_ichg = bq25618_619_get_ichg_curr,
  1214. .bq256xx_get_iindpm = bq256xx_get_input_curr_lim,
  1215. .bq256xx_get_vbatreg = bq25618_619_get_chrg_volt,
  1216. .bq256xx_get_iterm = bq25618_619_get_term_curr,
  1217. .bq256xx_get_iprechg = bq25618_619_get_prechrg_curr,
  1218. .bq256xx_get_vindpm = bq256xx_get_input_volt_lim,
  1219. .bq256xx_set_ichg = bq25618_619_set_ichg_curr,
  1220. .bq256xx_set_iindpm = bq256xx_set_input_curr_lim,
  1221. .bq256xx_set_vbatreg = bq25618_619_set_chrg_volt,
  1222. .bq256xx_set_iterm = bq25618_619_set_term_curr,
  1223. .bq256xx_set_iprechg = bq25618_619_set_prechrg_curr,
  1224. .bq256xx_set_vindpm = bq256xx_set_input_volt_lim,
  1225. .bq256xx_def_ichg = BQ25618_ICHG_DEF_uA,
  1226. .bq256xx_def_iindpm = BQ256XX_IINDPM_DEF_uA,
  1227. .bq256xx_def_vbatreg = BQ25618_VBATREG_DEF_uV,
  1228. .bq256xx_def_iterm = BQ25618_ITERM_DEF_uA,
  1229. .bq256xx_def_iprechg = BQ25618_IPRECHG_DEF_uA,
  1230. .bq256xx_def_vindpm = BQ256XX_VINDPM_DEF_uV,
  1231. .bq256xx_max_ichg = BQ25618_ICHG_MAX_uA,
  1232. .bq256xx_max_vbatreg = BQ25618_VBATREG_MAX_uV,
  1233. .has_usb_detect = false,
  1234. },
  1235. };
  1236. static int bq256xx_power_supply_init(struct bq256xx_device *bq,
  1237. struct power_supply_config *psy_cfg, struct device *dev)
  1238. {
  1239. bq->charger = devm_power_supply_register(bq->dev,
  1240. &bq256xx_power_supply_desc,
  1241. psy_cfg);
  1242. if (IS_ERR(bq->charger)) {
  1243. dev_err(dev, "power supply register charger failed\n");
  1244. return PTR_ERR(bq->charger);
  1245. }
  1246. bq->battery = devm_power_supply_register(bq->dev,
  1247. &bq256xx_battery_desc,
  1248. psy_cfg);
  1249. if (IS_ERR(bq->battery)) {
  1250. dev_err(dev, "power supply register battery failed\n");
  1251. return PTR_ERR(bq->battery);
  1252. }
  1253. return 0;
  1254. }
  1255. static int bq256xx_hw_init(struct bq256xx_device *bq)
  1256. {
  1257. struct power_supply_battery_info *bat_info;
  1258. int wd_reg_val = BQ256XX_WATCHDOG_DIS;
  1259. int ret = 0;
  1260. int i;
  1261. for (i = 0; i < BQ256XX_NUM_WD_VAL; i++) {
  1262. if (bq->watchdog_timer == bq256xx_watchdog_time[i]) {
  1263. wd_reg_val = i;
  1264. break;
  1265. }
  1266. if (bq->watchdog_timer > bq256xx_watchdog_time[i] &&
  1267. bq->watchdog_timer < bq256xx_watchdog_time[i + 1])
  1268. wd_reg_val = i;
  1269. }
  1270. ret = regmap_update_bits(bq->regmap, BQ256XX_CHARGER_CONTROL_1,
  1271. BQ256XX_WATCHDOG_MASK, wd_reg_val <<
  1272. BQ256XX_WDT_BIT_SHIFT);
  1273. ret = power_supply_get_battery_info(bq->charger, &bat_info);
  1274. if (ret == -ENOMEM)
  1275. return ret;
  1276. if (ret) {
  1277. dev_warn(bq->dev, "battery info missing, default values will be applied\n");
  1278. bat_info->constant_charge_current_max_ua =
  1279. bq->chip_info->bq256xx_def_ichg;
  1280. bat_info->constant_charge_voltage_max_uv =
  1281. bq->chip_info->bq256xx_def_vbatreg;
  1282. bat_info->precharge_current_ua =
  1283. bq->chip_info->bq256xx_def_iprechg;
  1284. bat_info->charge_term_current_ua =
  1285. bq->chip_info->bq256xx_def_iterm;
  1286. bq->init_data.ichg_max =
  1287. bq->chip_info->bq256xx_max_ichg;
  1288. bq->init_data.vbatreg_max =
  1289. bq->chip_info->bq256xx_max_vbatreg;
  1290. } else {
  1291. bq->init_data.ichg_max =
  1292. bat_info->constant_charge_current_max_ua;
  1293. bq->init_data.vbatreg_max =
  1294. bat_info->constant_charge_voltage_max_uv;
  1295. }
  1296. ret = bq->chip_info->bq256xx_set_vindpm(bq, bq->init_data.vindpm);
  1297. if (ret)
  1298. return ret;
  1299. ret = bq->chip_info->bq256xx_set_iindpm(bq, bq->init_data.iindpm);
  1300. if (ret)
  1301. return ret;
  1302. ret = bq->chip_info->bq256xx_set_ichg(bq,
  1303. bat_info->constant_charge_current_max_ua);
  1304. if (ret)
  1305. return ret;
  1306. ret = bq->chip_info->bq256xx_set_iprechg(bq,
  1307. bat_info->precharge_current_ua);
  1308. if (ret)
  1309. return ret;
  1310. ret = bq->chip_info->bq256xx_set_vbatreg(bq,
  1311. bat_info->constant_charge_voltage_max_uv);
  1312. if (ret)
  1313. return ret;
  1314. ret = bq->chip_info->bq256xx_set_iterm(bq,
  1315. bat_info->charge_term_current_ua);
  1316. if (ret)
  1317. return ret;
  1318. power_supply_put_battery_info(bq->charger, bat_info);
  1319. return 0;
  1320. }
  1321. static int bq256xx_parse_dt(struct bq256xx_device *bq,
  1322. struct power_supply_config *psy_cfg, struct device *dev)
  1323. {
  1324. int ret = 0;
  1325. psy_cfg->drv_data = bq;
  1326. psy_cfg->of_node = dev->of_node;
  1327. ret = device_property_read_u32(bq->dev, "ti,watchdog-timeout-ms",
  1328. &bq->watchdog_timer);
  1329. if (ret)
  1330. bq->watchdog_timer = BQ256XX_WATCHDOG_DIS;
  1331. if (bq->watchdog_timer > BQ256XX_WATCHDOG_MAX ||
  1332. bq->watchdog_timer < BQ256XX_WATCHDOG_DIS)
  1333. return -EINVAL;
  1334. ret = device_property_read_u32(bq->dev,
  1335. "input-voltage-limit-microvolt",
  1336. &bq->init_data.vindpm);
  1337. if (ret)
  1338. bq->init_data.vindpm = bq->chip_info->bq256xx_def_vindpm;
  1339. ret = device_property_read_u32(bq->dev,
  1340. "input-current-limit-microamp",
  1341. &bq->init_data.iindpm);
  1342. if (ret)
  1343. bq->init_data.iindpm = bq->chip_info->bq256xx_def_iindpm;
  1344. return 0;
  1345. }
  1346. static int bq256xx_probe(struct i2c_client *client,
  1347. const struct i2c_device_id *id)
  1348. {
  1349. struct device *dev = &client->dev;
  1350. struct bq256xx_device *bq;
  1351. struct power_supply_config psy_cfg = { };
  1352. int ret;
  1353. bq = devm_kzalloc(dev, sizeof(*bq), GFP_KERNEL);
  1354. if (!bq)
  1355. return -ENOMEM;
  1356. bq->client = client;
  1357. bq->dev = dev;
  1358. bq->chip_info = &bq256xx_chip_info_tbl[id->driver_data];
  1359. mutex_init(&bq->lock);
  1360. strncpy(bq->model_name, id->name, I2C_NAME_SIZE);
  1361. bq->regmap = devm_regmap_init_i2c(client,
  1362. bq->chip_info->bq256xx_regmap_config);
  1363. if (IS_ERR(bq->regmap)) {
  1364. dev_err(dev, "Failed to allocate register map\n");
  1365. return PTR_ERR(bq->regmap);
  1366. }
  1367. i2c_set_clientdata(client, bq);
  1368. ret = bq256xx_parse_dt(bq, &psy_cfg, dev);
  1369. if (ret) {
  1370. dev_err(dev, "Failed to read device tree properties%d\n", ret);
  1371. return ret;
  1372. }
  1373. ret = devm_add_action_or_reset(dev, bq256xx_charger_reset, bq);
  1374. if (ret)
  1375. return ret;
  1376. /* OTG reporting */
  1377. bq->usb2_phy = devm_usb_get_phy(dev, USB_PHY_TYPE_USB2);
  1378. if (!IS_ERR_OR_NULL(bq->usb2_phy)) {
  1379. INIT_WORK(&bq->usb_work, bq256xx_usb_work);
  1380. bq->usb_nb.notifier_call = bq256xx_usb_notifier;
  1381. usb_register_notifier(bq->usb2_phy, &bq->usb_nb);
  1382. }
  1383. bq->usb3_phy = devm_usb_get_phy(dev, USB_PHY_TYPE_USB3);
  1384. if (!IS_ERR_OR_NULL(bq->usb3_phy)) {
  1385. INIT_WORK(&bq->usb_work, bq256xx_usb_work);
  1386. bq->usb_nb.notifier_call = bq256xx_usb_notifier;
  1387. usb_register_notifier(bq->usb3_phy, &bq->usb_nb);
  1388. }
  1389. if (client->irq) {
  1390. ret = devm_request_threaded_irq(dev, client->irq, NULL,
  1391. bq256xx_irq_handler_thread,
  1392. IRQF_TRIGGER_FALLING |
  1393. IRQF_ONESHOT,
  1394. dev_name(&client->dev), bq);
  1395. if (ret < 0) {
  1396. dev_err(dev, "get irq fail: %d\n", ret);
  1397. return ret;
  1398. }
  1399. }
  1400. ret = bq256xx_power_supply_init(bq, &psy_cfg, dev);
  1401. if (ret) {
  1402. dev_err(dev, "Failed to register power supply\n");
  1403. return ret;
  1404. }
  1405. ret = bq256xx_hw_init(bq);
  1406. if (ret) {
  1407. dev_err(dev, "Cannot initialize the chip.\n");
  1408. return ret;
  1409. }
  1410. return ret;
  1411. }
  1412. static const struct i2c_device_id bq256xx_i2c_ids[] = {
  1413. { "bq25600", BQ25600 },
  1414. { "bq25600d", BQ25600D },
  1415. { "bq25601", BQ25601 },
  1416. { "bq25601d", BQ25601D },
  1417. { "bq25611d", BQ25611D },
  1418. { "bq25618", BQ25618 },
  1419. { "bq25619", BQ25619 },
  1420. {},
  1421. };
  1422. MODULE_DEVICE_TABLE(i2c, bq256xx_i2c_ids);
  1423. static const struct of_device_id bq256xx_of_match[] = {
  1424. { .compatible = "ti,bq25600", .data = (void *)BQ25600 },
  1425. { .compatible = "ti,bq25600d", .data = (void *)BQ25600D },
  1426. { .compatible = "ti,bq25601", .data = (void *)BQ25601 },
  1427. { .compatible = "ti,bq25601d", .data = (void *)BQ25601D },
  1428. { .compatible = "ti,bq25611d", .data = (void *)BQ25611D },
  1429. { .compatible = "ti,bq25618", .data = (void *)BQ25618 },
  1430. { .compatible = "ti,bq25619", .data = (void *)BQ25619 },
  1431. { },
  1432. };
  1433. MODULE_DEVICE_TABLE(of, bq256xx_of_match);
  1434. static const struct acpi_device_id bq256xx_acpi_match[] = {
  1435. { "bq25600", BQ25600 },
  1436. { "bq25600d", BQ25600D },
  1437. { "bq25601", BQ25601 },
  1438. { "bq25601d", BQ25601D },
  1439. { "bq25611d", BQ25611D },
  1440. { "bq25618", BQ25618 },
  1441. { "bq25619", BQ25619 },
  1442. {},
  1443. };
  1444. MODULE_DEVICE_TABLE(acpi, bq256xx_acpi_match);
  1445. static struct i2c_driver bq256xx_driver = {
  1446. .driver = {
  1447. .name = "bq256xx-charger",
  1448. .of_match_table = bq256xx_of_match,
  1449. .acpi_match_table = bq256xx_acpi_match,
  1450. },
  1451. .probe = bq256xx_probe,
  1452. .id_table = bq256xx_i2c_ids,
  1453. };
  1454. module_i2c_driver(bq256xx_driver);
  1455. MODULE_AUTHOR("Ricardo Rivera-Matos <[email protected]>");
  1456. MODULE_DESCRIPTION("bq256xx charger driver");
  1457. MODULE_LICENSE("GPL v2");