qcom_spmi-regulator.c 51 KB

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  1. /*
  2. * Copyright (c) 2012-2015, The Linux Foundation. All rights reserved.
  3. *
  4. * This program is free software; you can redistribute it and/or modify
  5. * it under the terms of the GNU General Public License version 2 and
  6. * only version 2 as published by the Free Software Foundation.
  7. *
  8. * This program is distributed in the hope that it will be useful,
  9. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  10. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  11. * GNU General Public License for more details.
  12. */
  13. #include <linux/module.h>
  14. #include <linux/delay.h>
  15. #include <linux/err.h>
  16. #include <linux/kernel.h>
  17. #include <linux/interrupt.h>
  18. #include <linux/bitops.h>
  19. #include <linux/slab.h>
  20. #include <linux/of.h>
  21. #include <linux/of_device.h>
  22. #include <linux/platform_device.h>
  23. #include <linux/ktime.h>
  24. #include <linux/regulator/driver.h>
  25. #include <linux/regmap.h>
  26. #include <linux/list.h>
  27. /* Pin control enable input pins. */
  28. #define SPMI_REGULATOR_PIN_CTRL_ENABLE_NONE 0x00
  29. #define SPMI_REGULATOR_PIN_CTRL_ENABLE_EN0 0x01
  30. #define SPMI_REGULATOR_PIN_CTRL_ENABLE_EN1 0x02
  31. #define SPMI_REGULATOR_PIN_CTRL_ENABLE_EN2 0x04
  32. #define SPMI_REGULATOR_PIN_CTRL_ENABLE_EN3 0x08
  33. #define SPMI_REGULATOR_PIN_CTRL_ENABLE_HW_DEFAULT 0x10
  34. /* Pin control high power mode input pins. */
  35. #define SPMI_REGULATOR_PIN_CTRL_HPM_NONE 0x00
  36. #define SPMI_REGULATOR_PIN_CTRL_HPM_EN0 0x01
  37. #define SPMI_REGULATOR_PIN_CTRL_HPM_EN1 0x02
  38. #define SPMI_REGULATOR_PIN_CTRL_HPM_EN2 0x04
  39. #define SPMI_REGULATOR_PIN_CTRL_HPM_EN3 0x08
  40. #define SPMI_REGULATOR_PIN_CTRL_HPM_SLEEP_B 0x10
  41. #define SPMI_REGULATOR_PIN_CTRL_HPM_HW_DEFAULT 0x20
  42. /*
  43. * Used with enable parameters to specify that hardware default register values
  44. * should be left unaltered.
  45. */
  46. #define SPMI_REGULATOR_USE_HW_DEFAULT 2
  47. /* Soft start strength of a voltage switch type regulator */
  48. enum spmi_vs_soft_start_str {
  49. SPMI_VS_SOFT_START_STR_0P05_UA = 0,
  50. SPMI_VS_SOFT_START_STR_0P25_UA,
  51. SPMI_VS_SOFT_START_STR_0P55_UA,
  52. SPMI_VS_SOFT_START_STR_0P75_UA,
  53. SPMI_VS_SOFT_START_STR_HW_DEFAULT,
  54. };
  55. /**
  56. * struct spmi_regulator_init_data - spmi-regulator initialization data
  57. * @pin_ctrl_enable: Bit mask specifying which hardware pins should be
  58. * used to enable the regulator, if any
  59. * Value should be an ORing of
  60. * SPMI_REGULATOR_PIN_CTRL_ENABLE_* constants. If
  61. * the bit specified by
  62. * SPMI_REGULATOR_PIN_CTRL_ENABLE_HW_DEFAULT is
  63. * set, then pin control enable hardware registers
  64. * will not be modified.
  65. * @pin_ctrl_hpm: Bit mask specifying which hardware pins should be
  66. * used to force the regulator into high power
  67. * mode, if any
  68. * Value should be an ORing of
  69. * SPMI_REGULATOR_PIN_CTRL_HPM_* constants. If
  70. * the bit specified by
  71. * SPMI_REGULATOR_PIN_CTRL_HPM_HW_DEFAULT is
  72. * set, then pin control mode hardware registers
  73. * will not be modified.
  74. * @vs_soft_start_strength: This parameter sets the soft start strength for
  75. * voltage switch type regulators. Its value
  76. * should be one of SPMI_VS_SOFT_START_STR_*. If
  77. * its value is SPMI_VS_SOFT_START_STR_HW_DEFAULT,
  78. * then the soft start strength will be left at its
  79. * default hardware value.
  80. */
  81. struct spmi_regulator_init_data {
  82. unsigned pin_ctrl_enable;
  83. unsigned pin_ctrl_hpm;
  84. enum spmi_vs_soft_start_str vs_soft_start_strength;
  85. };
  86. /* These types correspond to unique register layouts. */
  87. enum spmi_regulator_logical_type {
  88. SPMI_REGULATOR_LOGICAL_TYPE_SMPS,
  89. SPMI_REGULATOR_LOGICAL_TYPE_LDO,
  90. SPMI_REGULATOR_LOGICAL_TYPE_VS,
  91. SPMI_REGULATOR_LOGICAL_TYPE_BOOST,
  92. SPMI_REGULATOR_LOGICAL_TYPE_FTSMPS,
  93. SPMI_REGULATOR_LOGICAL_TYPE_BOOST_BYP,
  94. SPMI_REGULATOR_LOGICAL_TYPE_LN_LDO,
  95. SPMI_REGULATOR_LOGICAL_TYPE_ULT_LO_SMPS,
  96. SPMI_REGULATOR_LOGICAL_TYPE_ULT_HO_SMPS,
  97. SPMI_REGULATOR_LOGICAL_TYPE_ULT_LDO,
  98. };
  99. enum spmi_regulator_type {
  100. SPMI_REGULATOR_TYPE_BUCK = 0x03,
  101. SPMI_REGULATOR_TYPE_LDO = 0x04,
  102. SPMI_REGULATOR_TYPE_VS = 0x05,
  103. SPMI_REGULATOR_TYPE_BOOST = 0x1b,
  104. SPMI_REGULATOR_TYPE_FTS = 0x1c,
  105. SPMI_REGULATOR_TYPE_BOOST_BYP = 0x1f,
  106. SPMI_REGULATOR_TYPE_ULT_LDO = 0x21,
  107. SPMI_REGULATOR_TYPE_ULT_BUCK = 0x22,
  108. };
  109. enum spmi_regulator_subtype {
  110. SPMI_REGULATOR_SUBTYPE_GP_CTL = 0x08,
  111. SPMI_REGULATOR_SUBTYPE_RF_CTL = 0x09,
  112. SPMI_REGULATOR_SUBTYPE_N50 = 0x01,
  113. SPMI_REGULATOR_SUBTYPE_N150 = 0x02,
  114. SPMI_REGULATOR_SUBTYPE_N300 = 0x03,
  115. SPMI_REGULATOR_SUBTYPE_N600 = 0x04,
  116. SPMI_REGULATOR_SUBTYPE_N1200 = 0x05,
  117. SPMI_REGULATOR_SUBTYPE_N600_ST = 0x06,
  118. SPMI_REGULATOR_SUBTYPE_N1200_ST = 0x07,
  119. SPMI_REGULATOR_SUBTYPE_N900_ST = 0x14,
  120. SPMI_REGULATOR_SUBTYPE_N300_ST = 0x15,
  121. SPMI_REGULATOR_SUBTYPE_P50 = 0x08,
  122. SPMI_REGULATOR_SUBTYPE_P150 = 0x09,
  123. SPMI_REGULATOR_SUBTYPE_P300 = 0x0a,
  124. SPMI_REGULATOR_SUBTYPE_P600 = 0x0b,
  125. SPMI_REGULATOR_SUBTYPE_P1200 = 0x0c,
  126. SPMI_REGULATOR_SUBTYPE_LN = 0x10,
  127. SPMI_REGULATOR_SUBTYPE_LV_P50 = 0x28,
  128. SPMI_REGULATOR_SUBTYPE_LV_P150 = 0x29,
  129. SPMI_REGULATOR_SUBTYPE_LV_P300 = 0x2a,
  130. SPMI_REGULATOR_SUBTYPE_LV_P600 = 0x2b,
  131. SPMI_REGULATOR_SUBTYPE_LV_P1200 = 0x2c,
  132. SPMI_REGULATOR_SUBTYPE_LV_P450 = 0x2d,
  133. SPMI_REGULATOR_SUBTYPE_LV100 = 0x01,
  134. SPMI_REGULATOR_SUBTYPE_LV300 = 0x02,
  135. SPMI_REGULATOR_SUBTYPE_MV300 = 0x08,
  136. SPMI_REGULATOR_SUBTYPE_MV500 = 0x09,
  137. SPMI_REGULATOR_SUBTYPE_HDMI = 0x10,
  138. SPMI_REGULATOR_SUBTYPE_OTG = 0x11,
  139. SPMI_REGULATOR_SUBTYPE_5V_BOOST = 0x01,
  140. SPMI_REGULATOR_SUBTYPE_FTS_CTL = 0x08,
  141. SPMI_REGULATOR_SUBTYPE_FTS2p5_CTL = 0x09,
  142. SPMI_REGULATOR_SUBTYPE_BB_2A = 0x01,
  143. SPMI_REGULATOR_SUBTYPE_ULT_HF_CTL1 = 0x0d,
  144. SPMI_REGULATOR_SUBTYPE_ULT_HF_CTL2 = 0x0e,
  145. SPMI_REGULATOR_SUBTYPE_ULT_HF_CTL3 = 0x0f,
  146. SPMI_REGULATOR_SUBTYPE_ULT_HF_CTL4 = 0x10,
  147. };
  148. enum spmi_common_regulator_registers {
  149. SPMI_COMMON_REG_DIG_MAJOR_REV = 0x01,
  150. SPMI_COMMON_REG_TYPE = 0x04,
  151. SPMI_COMMON_REG_SUBTYPE = 0x05,
  152. SPMI_COMMON_REG_VOLTAGE_RANGE = 0x40,
  153. SPMI_COMMON_REG_VOLTAGE_SET = 0x41,
  154. SPMI_COMMON_REG_MODE = 0x45,
  155. SPMI_COMMON_REG_ENABLE = 0x46,
  156. SPMI_COMMON_REG_PULL_DOWN = 0x48,
  157. SPMI_COMMON_REG_SOFT_START = 0x4c,
  158. SPMI_COMMON_REG_STEP_CTRL = 0x61,
  159. };
  160. enum spmi_vs_registers {
  161. SPMI_VS_REG_OCP = 0x4a,
  162. SPMI_VS_REG_SOFT_START = 0x4c,
  163. };
  164. enum spmi_boost_registers {
  165. SPMI_BOOST_REG_CURRENT_LIMIT = 0x4a,
  166. };
  167. enum spmi_boost_byp_registers {
  168. SPMI_BOOST_BYP_REG_CURRENT_LIMIT = 0x4b,
  169. };
  170. /* Used for indexing into ctrl_reg. These are offets from 0x40 */
  171. enum spmi_common_control_register_index {
  172. SPMI_COMMON_IDX_VOLTAGE_RANGE = 0,
  173. SPMI_COMMON_IDX_VOLTAGE_SET = 1,
  174. SPMI_COMMON_IDX_MODE = 5,
  175. SPMI_COMMON_IDX_ENABLE = 6,
  176. };
  177. /* Common regulator control register layout */
  178. #define SPMI_COMMON_ENABLE_MASK 0x80
  179. #define SPMI_COMMON_ENABLE 0x80
  180. #define SPMI_COMMON_DISABLE 0x00
  181. #define SPMI_COMMON_ENABLE_FOLLOW_HW_EN3_MASK 0x08
  182. #define SPMI_COMMON_ENABLE_FOLLOW_HW_EN2_MASK 0x04
  183. #define SPMI_COMMON_ENABLE_FOLLOW_HW_EN1_MASK 0x02
  184. #define SPMI_COMMON_ENABLE_FOLLOW_HW_EN0_MASK 0x01
  185. #define SPMI_COMMON_ENABLE_FOLLOW_ALL_MASK 0x0f
  186. /* Common regulator mode register layout */
  187. #define SPMI_COMMON_MODE_HPM_MASK 0x80
  188. #define SPMI_COMMON_MODE_AUTO_MASK 0x40
  189. #define SPMI_COMMON_MODE_BYPASS_MASK 0x20
  190. #define SPMI_COMMON_MODE_FOLLOW_AWAKE_MASK 0x10
  191. #define SPMI_COMMON_MODE_FOLLOW_HW_EN3_MASK 0x08
  192. #define SPMI_COMMON_MODE_FOLLOW_HW_EN2_MASK 0x04
  193. #define SPMI_COMMON_MODE_FOLLOW_HW_EN1_MASK 0x02
  194. #define SPMI_COMMON_MODE_FOLLOW_HW_EN0_MASK 0x01
  195. #define SPMI_COMMON_MODE_FOLLOW_ALL_MASK 0x1f
  196. /* Common regulator pull down control register layout */
  197. #define SPMI_COMMON_PULL_DOWN_ENABLE_MASK 0x80
  198. /* LDO regulator current limit control register layout */
  199. #define SPMI_LDO_CURRENT_LIMIT_ENABLE_MASK 0x80
  200. /* LDO regulator soft start control register layout */
  201. #define SPMI_LDO_SOFT_START_ENABLE_MASK 0x80
  202. /* VS regulator over current protection control register layout */
  203. #define SPMI_VS_OCP_OVERRIDE 0x01
  204. #define SPMI_VS_OCP_NO_OVERRIDE 0x00
  205. /* VS regulator soft start control register layout */
  206. #define SPMI_VS_SOFT_START_ENABLE_MASK 0x80
  207. #define SPMI_VS_SOFT_START_SEL_MASK 0x03
  208. /* Boost regulator current limit control register layout */
  209. #define SPMI_BOOST_CURRENT_LIMIT_ENABLE_MASK 0x80
  210. #define SPMI_BOOST_CURRENT_LIMIT_MASK 0x07
  211. #define SPMI_VS_OCP_DEFAULT_MAX_RETRIES 10
  212. #define SPMI_VS_OCP_DEFAULT_RETRY_DELAY_MS 30
  213. #define SPMI_VS_OCP_FALL_DELAY_US 90
  214. #define SPMI_VS_OCP_FAULT_DELAY_US 20000
  215. #define SPMI_FTSMPS_STEP_CTRL_STEP_MASK 0x18
  216. #define SPMI_FTSMPS_STEP_CTRL_STEP_SHIFT 3
  217. #define SPMI_FTSMPS_STEP_CTRL_DELAY_MASK 0x07
  218. #define SPMI_FTSMPS_STEP_CTRL_DELAY_SHIFT 0
  219. /* Clock rate in kHz of the FTSMPS regulator reference clock. */
  220. #define SPMI_FTSMPS_CLOCK_RATE 19200
  221. /* Minimum voltage stepper delay for each step. */
  222. #define SPMI_FTSMPS_STEP_DELAY 8
  223. /*
  224. * The ratio SPMI_FTSMPS_STEP_MARGIN_NUM/SPMI_FTSMPS_STEP_MARGIN_DEN is used to
  225. * adjust the step rate in order to account for oscillator variance.
  226. */
  227. #define SPMI_FTSMPS_STEP_MARGIN_NUM 4
  228. #define SPMI_FTSMPS_STEP_MARGIN_DEN 5
  229. /*
  230. * This voltage in uV is returned by get_voltage functions when there is no way
  231. * to determine the current voltage level. It is needed because the regulator
  232. * framework treats a 0 uV voltage as an error.
  233. */
  234. #define VOLTAGE_UNKNOWN 1
  235. /* VSET value to decide the range of ULT SMPS */
  236. #define ULT_SMPS_RANGE_SPLIT 0x60
  237. /**
  238. * struct spmi_voltage_range - regulator set point voltage mapping description
  239. * @min_uV: Minimum programmable output voltage resulting from
  240. * set point register value 0x00
  241. * @max_uV: Maximum programmable output voltage
  242. * @step_uV: Output voltage increase resulting from the set point
  243. * register value increasing by 1
  244. * @set_point_min_uV: Minimum allowed voltage
  245. * @set_point_max_uV: Maximum allowed voltage. This may be tweaked in order
  246. * to pick which range should be used in the case of
  247. * overlapping set points.
  248. * @n_voltages: Number of preferred voltage set points present in this
  249. * range
  250. * @range_sel: Voltage range register value corresponding to this range
  251. *
  252. * The following relationships must be true for the values used in this struct:
  253. * (max_uV - min_uV) % step_uV == 0
  254. * (set_point_min_uV - min_uV) % step_uV == 0*
  255. * (set_point_max_uV - min_uV) % step_uV == 0*
  256. * n_voltages = (set_point_max_uV - set_point_min_uV) / step_uV + 1
  257. *
  258. * *Note, set_point_min_uV == set_point_max_uV == 0 is allowed in order to
  259. * specify that the voltage range has meaning, but is not preferred.
  260. */
  261. struct spmi_voltage_range {
  262. int min_uV;
  263. int max_uV;
  264. int step_uV;
  265. int set_point_min_uV;
  266. int set_point_max_uV;
  267. unsigned n_voltages;
  268. u8 range_sel;
  269. };
  270. /*
  271. * The ranges specified in the spmi_voltage_set_points struct must be listed
  272. * so that range[i].set_point_max_uV < range[i+1].set_point_min_uV.
  273. */
  274. struct spmi_voltage_set_points {
  275. struct spmi_voltage_range *range;
  276. int count;
  277. unsigned n_voltages;
  278. };
  279. struct spmi_regulator {
  280. struct regulator_desc desc;
  281. struct device *dev;
  282. struct delayed_work ocp_work;
  283. struct regmap *regmap;
  284. struct spmi_voltage_set_points *set_points;
  285. enum spmi_regulator_logical_type logical_type;
  286. int ocp_irq;
  287. int ocp_count;
  288. int ocp_max_retries;
  289. int ocp_retry_delay_ms;
  290. int hpm_min_load;
  291. int slew_rate;
  292. ktime_t vs_enable_time;
  293. u16 base;
  294. struct list_head node;
  295. };
  296. struct spmi_regulator_mapping {
  297. enum spmi_regulator_type type;
  298. enum spmi_regulator_subtype subtype;
  299. enum spmi_regulator_logical_type logical_type;
  300. u32 revision_min;
  301. u32 revision_max;
  302. struct regulator_ops *ops;
  303. struct spmi_voltage_set_points *set_points;
  304. int hpm_min_load;
  305. };
  306. struct spmi_regulator_data {
  307. const char *name;
  308. u16 base;
  309. const char *supply;
  310. const char *ocp;
  311. u16 force_type;
  312. };
  313. #define SPMI_VREG(_type, _subtype, _dig_major_min, _dig_major_max, \
  314. _logical_type, _ops_val, _set_points_val, _hpm_min_load) \
  315. { \
  316. .type = SPMI_REGULATOR_TYPE_##_type, \
  317. .subtype = SPMI_REGULATOR_SUBTYPE_##_subtype, \
  318. .revision_min = _dig_major_min, \
  319. .revision_max = _dig_major_max, \
  320. .logical_type = SPMI_REGULATOR_LOGICAL_TYPE_##_logical_type, \
  321. .ops = &spmi_##_ops_val##_ops, \
  322. .set_points = &_set_points_val##_set_points, \
  323. .hpm_min_load = _hpm_min_load, \
  324. }
  325. #define SPMI_VREG_VS(_subtype, _dig_major_min, _dig_major_max) \
  326. { \
  327. .type = SPMI_REGULATOR_TYPE_VS, \
  328. .subtype = SPMI_REGULATOR_SUBTYPE_##_subtype, \
  329. .revision_min = _dig_major_min, \
  330. .revision_max = _dig_major_max, \
  331. .logical_type = SPMI_REGULATOR_LOGICAL_TYPE_VS, \
  332. .ops = &spmi_vs_ops, \
  333. }
  334. #define SPMI_VOLTAGE_RANGE(_range_sel, _min_uV, _set_point_min_uV, \
  335. _set_point_max_uV, _max_uV, _step_uV) \
  336. { \
  337. .min_uV = _min_uV, \
  338. .max_uV = _max_uV, \
  339. .set_point_min_uV = _set_point_min_uV, \
  340. .set_point_max_uV = _set_point_max_uV, \
  341. .step_uV = _step_uV, \
  342. .range_sel = _range_sel, \
  343. }
  344. #define DEFINE_SPMI_SET_POINTS(name) \
  345. struct spmi_voltage_set_points name##_set_points = { \
  346. .range = name##_ranges, \
  347. .count = ARRAY_SIZE(name##_ranges), \
  348. }
  349. /*
  350. * These tables contain the physically available PMIC regulator voltage setpoint
  351. * ranges. Where two ranges overlap in hardware, one of the ranges is trimmed
  352. * to ensure that the setpoints available to software are monotonically
  353. * increasing and unique. The set_voltage callback functions expect these
  354. * properties to hold.
  355. */
  356. static struct spmi_voltage_range pldo_ranges[] = {
  357. SPMI_VOLTAGE_RANGE(2, 750000, 750000, 1537500, 1537500, 12500),
  358. SPMI_VOLTAGE_RANGE(3, 1500000, 1550000, 3075000, 3075000, 25000),
  359. SPMI_VOLTAGE_RANGE(4, 1750000, 3100000, 4900000, 4900000, 50000),
  360. };
  361. static struct spmi_voltage_range nldo1_ranges[] = {
  362. SPMI_VOLTAGE_RANGE(2, 750000, 750000, 1537500, 1537500, 12500),
  363. };
  364. static struct spmi_voltage_range nldo2_ranges[] = {
  365. SPMI_VOLTAGE_RANGE(0, 375000, 0, 0, 1537500, 12500),
  366. SPMI_VOLTAGE_RANGE(1, 375000, 375000, 768750, 768750, 6250),
  367. SPMI_VOLTAGE_RANGE(2, 750000, 775000, 1537500, 1537500, 12500),
  368. };
  369. static struct spmi_voltage_range nldo3_ranges[] = {
  370. SPMI_VOLTAGE_RANGE(0, 375000, 375000, 1537500, 1537500, 12500),
  371. SPMI_VOLTAGE_RANGE(1, 375000, 0, 0, 1537500, 12500),
  372. SPMI_VOLTAGE_RANGE(2, 750000, 0, 0, 1537500, 12500),
  373. };
  374. static struct spmi_voltage_range ln_ldo_ranges[] = {
  375. SPMI_VOLTAGE_RANGE(1, 690000, 690000, 1110000, 1110000, 60000),
  376. SPMI_VOLTAGE_RANGE(0, 1380000, 1380000, 2220000, 2220000, 120000),
  377. };
  378. static struct spmi_voltage_range smps_ranges[] = {
  379. SPMI_VOLTAGE_RANGE(0, 375000, 375000, 1562500, 1562500, 12500),
  380. SPMI_VOLTAGE_RANGE(1, 1550000, 1575000, 3125000, 3125000, 25000),
  381. };
  382. static struct spmi_voltage_range ftsmps_ranges[] = {
  383. SPMI_VOLTAGE_RANGE(0, 0, 350000, 1275000, 1275000, 5000),
  384. SPMI_VOLTAGE_RANGE(1, 0, 1280000, 2040000, 2040000, 10000),
  385. };
  386. static struct spmi_voltage_range ftsmps2p5_ranges[] = {
  387. SPMI_VOLTAGE_RANGE(0, 80000, 350000, 1355000, 1355000, 5000),
  388. SPMI_VOLTAGE_RANGE(1, 160000, 1360000, 2200000, 2200000, 10000),
  389. };
  390. static struct spmi_voltage_range boost_ranges[] = {
  391. SPMI_VOLTAGE_RANGE(0, 4000000, 4000000, 5550000, 5550000, 50000),
  392. };
  393. static struct spmi_voltage_range boost_byp_ranges[] = {
  394. SPMI_VOLTAGE_RANGE(0, 2500000, 2500000, 5200000, 5650000, 50000),
  395. };
  396. static struct spmi_voltage_range ult_lo_smps_ranges[] = {
  397. SPMI_VOLTAGE_RANGE(0, 375000, 375000, 1562500, 1562500, 12500),
  398. SPMI_VOLTAGE_RANGE(1, 750000, 0, 0, 1525000, 25000),
  399. };
  400. static struct spmi_voltage_range ult_ho_smps_ranges[] = {
  401. SPMI_VOLTAGE_RANGE(0, 1550000, 1550000, 2325000, 2325000, 25000),
  402. };
  403. static struct spmi_voltage_range ult_nldo_ranges[] = {
  404. SPMI_VOLTAGE_RANGE(0, 375000, 375000, 1537500, 1537500, 12500),
  405. };
  406. static struct spmi_voltage_range ult_pldo_ranges[] = {
  407. SPMI_VOLTAGE_RANGE(0, 1750000, 1750000, 3337500, 3337500, 12500),
  408. };
  409. static DEFINE_SPMI_SET_POINTS(pldo);
  410. static DEFINE_SPMI_SET_POINTS(nldo1);
  411. static DEFINE_SPMI_SET_POINTS(nldo2);
  412. static DEFINE_SPMI_SET_POINTS(nldo3);
  413. static DEFINE_SPMI_SET_POINTS(ln_ldo);
  414. static DEFINE_SPMI_SET_POINTS(smps);
  415. static DEFINE_SPMI_SET_POINTS(ftsmps);
  416. static DEFINE_SPMI_SET_POINTS(ftsmps2p5);
  417. static DEFINE_SPMI_SET_POINTS(boost);
  418. static DEFINE_SPMI_SET_POINTS(boost_byp);
  419. static DEFINE_SPMI_SET_POINTS(ult_lo_smps);
  420. static DEFINE_SPMI_SET_POINTS(ult_ho_smps);
  421. static DEFINE_SPMI_SET_POINTS(ult_nldo);
  422. static DEFINE_SPMI_SET_POINTS(ult_pldo);
  423. static inline int spmi_vreg_read(struct spmi_regulator *vreg, u16 addr, u8 *buf,
  424. int len)
  425. {
  426. return regmap_bulk_read(vreg->regmap, vreg->base + addr, buf, len);
  427. }
  428. static inline int spmi_vreg_write(struct spmi_regulator *vreg, u16 addr,
  429. u8 *buf, int len)
  430. {
  431. return regmap_bulk_write(vreg->regmap, vreg->base + addr, buf, len);
  432. }
  433. static int spmi_vreg_update_bits(struct spmi_regulator *vreg, u16 addr, u8 val,
  434. u8 mask)
  435. {
  436. return regmap_update_bits(vreg->regmap, vreg->base + addr, mask, val);
  437. }
  438. static int spmi_regulator_common_is_enabled(struct regulator_dev *rdev)
  439. {
  440. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  441. u8 reg;
  442. spmi_vreg_read(vreg, SPMI_COMMON_REG_ENABLE, &reg, 1);
  443. return (reg & SPMI_COMMON_ENABLE_MASK) == SPMI_COMMON_ENABLE;
  444. }
  445. static int spmi_regulator_common_enable(struct regulator_dev *rdev)
  446. {
  447. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  448. return spmi_vreg_update_bits(vreg, SPMI_COMMON_REG_ENABLE,
  449. SPMI_COMMON_ENABLE, SPMI_COMMON_ENABLE_MASK);
  450. }
  451. static int spmi_regulator_vs_enable(struct regulator_dev *rdev)
  452. {
  453. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  454. if (vreg->ocp_irq) {
  455. vreg->ocp_count = 0;
  456. vreg->vs_enable_time = ktime_get();
  457. }
  458. return spmi_regulator_common_enable(rdev);
  459. }
  460. static int spmi_regulator_vs_ocp(struct regulator_dev *rdev)
  461. {
  462. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  463. u8 reg = SPMI_VS_OCP_OVERRIDE;
  464. return spmi_vreg_write(vreg, SPMI_VS_REG_OCP, &reg, 1);
  465. }
  466. static int spmi_regulator_common_disable(struct regulator_dev *rdev)
  467. {
  468. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  469. return spmi_vreg_update_bits(vreg, SPMI_COMMON_REG_ENABLE,
  470. SPMI_COMMON_DISABLE, SPMI_COMMON_ENABLE_MASK);
  471. }
  472. static int spmi_regulator_select_voltage(struct spmi_regulator *vreg,
  473. int min_uV, int max_uV, u8 *range_sel, u8 *voltage_sel,
  474. unsigned *selector)
  475. {
  476. const struct spmi_voltage_range *range;
  477. int uV = min_uV;
  478. int lim_min_uV, lim_max_uV, i, range_id, range_max_uV;
  479. /* Check if request voltage is outside of physically settable range. */
  480. lim_min_uV = vreg->set_points->range[0].set_point_min_uV;
  481. lim_max_uV =
  482. vreg->set_points->range[vreg->set_points->count - 1].set_point_max_uV;
  483. if (uV < lim_min_uV && max_uV >= lim_min_uV)
  484. uV = lim_min_uV;
  485. if (uV < lim_min_uV || uV > lim_max_uV) {
  486. dev_err(vreg->dev,
  487. "request v=[%d, %d] is outside possible v=[%d, %d]\n",
  488. min_uV, max_uV, lim_min_uV, lim_max_uV);
  489. return -EINVAL;
  490. }
  491. /* Find the range which uV is inside of. */
  492. for (i = vreg->set_points->count - 1; i > 0; i--) {
  493. range_max_uV = vreg->set_points->range[i - 1].set_point_max_uV;
  494. if (uV > range_max_uV && range_max_uV > 0)
  495. break;
  496. }
  497. range_id = i;
  498. range = &vreg->set_points->range[range_id];
  499. *range_sel = range->range_sel;
  500. /*
  501. * Force uV to be an allowed set point by applying a ceiling function to
  502. * the uV value.
  503. */
  504. *voltage_sel = DIV_ROUND_UP(uV - range->min_uV, range->step_uV);
  505. uV = *voltage_sel * range->step_uV + range->min_uV;
  506. if (uV > max_uV) {
  507. dev_err(vreg->dev,
  508. "request v=[%d, %d] cannot be met by any set point; "
  509. "next set point: %d\n",
  510. min_uV, max_uV, uV);
  511. return -EINVAL;
  512. }
  513. *selector = 0;
  514. for (i = 0; i < range_id; i++)
  515. *selector += vreg->set_points->range[i].n_voltages;
  516. *selector += (uV - range->set_point_min_uV) / range->step_uV;
  517. return 0;
  518. }
  519. static const struct spmi_voltage_range *
  520. spmi_regulator_find_range(struct spmi_regulator *vreg)
  521. {
  522. u8 range_sel;
  523. const struct spmi_voltage_range *range, *end;
  524. range = vreg->set_points->range;
  525. end = range + vreg->set_points->count;
  526. spmi_vreg_read(vreg, SPMI_COMMON_REG_VOLTAGE_RANGE, &range_sel, 1);
  527. for (; range < end; range++)
  528. if (range->range_sel == range_sel)
  529. return range;
  530. return NULL;
  531. }
  532. static int spmi_regulator_select_voltage_same_range(struct spmi_regulator *vreg,
  533. int min_uV, int max_uV, u8 *range_sel, u8 *voltage_sel,
  534. unsigned *selector)
  535. {
  536. const struct spmi_voltage_range *range;
  537. int uV = min_uV;
  538. int i;
  539. range = spmi_regulator_find_range(vreg);
  540. if (!range)
  541. goto different_range;
  542. if (uV < range->min_uV && max_uV >= range->min_uV)
  543. uV = range->min_uV;
  544. if (uV < range->min_uV || uV > range->max_uV) {
  545. /* Current range doesn't support the requested voltage. */
  546. goto different_range;
  547. }
  548. /*
  549. * Force uV to be an allowed set point by applying a ceiling function to
  550. * the uV value.
  551. */
  552. *voltage_sel = DIV_ROUND_UP(uV - range->min_uV, range->step_uV);
  553. uV = *voltage_sel * range->step_uV + range->min_uV;
  554. if (uV > max_uV) {
  555. /*
  556. * No set point in the current voltage range is within the
  557. * requested min_uV to max_uV range.
  558. */
  559. goto different_range;
  560. }
  561. *selector = 0;
  562. for (i = 0; i < vreg->set_points->count; i++) {
  563. if (uV >= vreg->set_points->range[i].set_point_min_uV
  564. && uV <= vreg->set_points->range[i].set_point_max_uV) {
  565. *selector +=
  566. (uV - vreg->set_points->range[i].set_point_min_uV)
  567. / vreg->set_points->range[i].step_uV;
  568. break;
  569. }
  570. *selector += vreg->set_points->range[i].n_voltages;
  571. }
  572. if (*selector >= vreg->set_points->n_voltages)
  573. goto different_range;
  574. return 0;
  575. different_range:
  576. return spmi_regulator_select_voltage(vreg, min_uV, max_uV,
  577. range_sel, voltage_sel, selector);
  578. }
  579. static int spmi_regulator_common_set_voltage(struct regulator_dev *rdev,
  580. int min_uV, int max_uV, unsigned *selector)
  581. {
  582. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  583. int ret;
  584. u8 buf[2];
  585. u8 range_sel, voltage_sel;
  586. /*
  587. * Favor staying in the current voltage range if possible. This avoids
  588. * voltage spikes that occur when changing the voltage range.
  589. */
  590. ret = spmi_regulator_select_voltage_same_range(vreg, min_uV, max_uV,
  591. &range_sel, &voltage_sel, selector);
  592. if (ret)
  593. return ret;
  594. buf[0] = range_sel;
  595. buf[1] = voltage_sel;
  596. return spmi_vreg_write(vreg, SPMI_COMMON_REG_VOLTAGE_RANGE, buf, 2);
  597. }
  598. static int spmi_regulator_set_voltage_time_sel(struct regulator_dev *rdev,
  599. unsigned int old_selector, unsigned int new_selector)
  600. {
  601. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  602. const struct spmi_voltage_range *range;
  603. int diff_uV;
  604. range = spmi_regulator_find_range(vreg);
  605. if (!range)
  606. return -EINVAL;
  607. diff_uV = abs(new_selector - old_selector) * range->step_uV;
  608. return DIV_ROUND_UP(diff_uV, vreg->slew_rate);
  609. }
  610. static int spmi_regulator_common_get_voltage(struct regulator_dev *rdev)
  611. {
  612. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  613. const struct spmi_voltage_range *range;
  614. u8 voltage_sel;
  615. spmi_vreg_read(vreg, SPMI_COMMON_REG_VOLTAGE_SET, &voltage_sel, 1);
  616. range = spmi_regulator_find_range(vreg);
  617. if (!range)
  618. return VOLTAGE_UNKNOWN;
  619. return range->step_uV * voltage_sel + range->min_uV;
  620. }
  621. static int spmi_regulator_single_range_set_voltage(struct regulator_dev *rdev,
  622. int min_uV, int max_uV, unsigned *selector)
  623. {
  624. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  625. int ret;
  626. u8 range_sel, sel;
  627. ret = spmi_regulator_select_voltage(vreg, min_uV, max_uV, &range_sel,
  628. &sel, selector);
  629. if (ret) {
  630. dev_err(vreg->dev, "could not set voltage, ret=%d\n", ret);
  631. return ret;
  632. }
  633. /*
  634. * Certain types of regulators do not have a range select register so
  635. * only voltage set register needs to be written.
  636. */
  637. return spmi_vreg_write(vreg, SPMI_COMMON_REG_VOLTAGE_SET, &sel, 1);
  638. }
  639. static int spmi_regulator_single_range_get_voltage(struct regulator_dev *rdev)
  640. {
  641. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  642. const struct spmi_voltage_range *range = vreg->set_points->range;
  643. u8 voltage_sel;
  644. spmi_vreg_read(vreg, SPMI_COMMON_REG_VOLTAGE_SET, &voltage_sel, 1);
  645. return range->step_uV * voltage_sel + range->min_uV;
  646. }
  647. static int spmi_regulator_ult_lo_smps_set_voltage(struct regulator_dev *rdev,
  648. int min_uV, int max_uV, unsigned *selector)
  649. {
  650. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  651. int ret;
  652. u8 range_sel, voltage_sel;
  653. /*
  654. * Favor staying in the current voltage range if possible. This avoids
  655. * voltage spikes that occur when changing the voltage range.
  656. */
  657. ret = spmi_regulator_select_voltage_same_range(vreg, min_uV, max_uV,
  658. &range_sel, &voltage_sel, selector);
  659. if (ret)
  660. return ret;
  661. /*
  662. * Calculate VSET based on range
  663. * In case of range 0: voltage_sel is a 7 bit value, can be written
  664. * witout any modification.
  665. * In case of range 1: voltage_sel is a 5 bit value, bits[7-5] set to
  666. * [011].
  667. */
  668. if (range_sel == 1)
  669. voltage_sel |= ULT_SMPS_RANGE_SPLIT;
  670. return spmi_vreg_update_bits(vreg, SPMI_COMMON_REG_VOLTAGE_SET,
  671. voltage_sel, 0xff);
  672. }
  673. static int spmi_regulator_ult_lo_smps_get_voltage(struct regulator_dev *rdev)
  674. {
  675. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  676. const struct spmi_voltage_range *range;
  677. u8 voltage_sel;
  678. spmi_vreg_read(vreg, SPMI_COMMON_REG_VOLTAGE_SET, &voltage_sel, 1);
  679. range = spmi_regulator_find_range(vreg);
  680. if (!range)
  681. return VOLTAGE_UNKNOWN;
  682. if (range->range_sel == 1)
  683. voltage_sel &= ~ULT_SMPS_RANGE_SPLIT;
  684. return range->step_uV * voltage_sel + range->min_uV;
  685. }
  686. static int spmi_regulator_common_list_voltage(struct regulator_dev *rdev,
  687. unsigned selector)
  688. {
  689. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  690. int uV = 0;
  691. int i;
  692. if (selector >= vreg->set_points->n_voltages)
  693. return 0;
  694. for (i = 0; i < vreg->set_points->count; i++) {
  695. if (selector < vreg->set_points->range[i].n_voltages) {
  696. uV = selector * vreg->set_points->range[i].step_uV
  697. + vreg->set_points->range[i].set_point_min_uV;
  698. break;
  699. }
  700. selector -= vreg->set_points->range[i].n_voltages;
  701. }
  702. return uV;
  703. }
  704. static int
  705. spmi_regulator_common_set_bypass(struct regulator_dev *rdev, bool enable)
  706. {
  707. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  708. u8 mask = SPMI_COMMON_MODE_BYPASS_MASK;
  709. u8 val = 0;
  710. if (enable)
  711. val = mask;
  712. return spmi_vreg_update_bits(vreg, SPMI_COMMON_REG_MODE, val, mask);
  713. }
  714. static int
  715. spmi_regulator_common_get_bypass(struct regulator_dev *rdev, bool *enable)
  716. {
  717. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  718. u8 val;
  719. int ret;
  720. ret = spmi_vreg_read(vreg, SPMI_COMMON_REG_MODE, &val, 1);
  721. *enable = val & SPMI_COMMON_MODE_BYPASS_MASK;
  722. return ret;
  723. }
  724. static unsigned int spmi_regulator_common_get_mode(struct regulator_dev *rdev)
  725. {
  726. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  727. u8 reg;
  728. spmi_vreg_read(vreg, SPMI_COMMON_REG_MODE, &reg, 1);
  729. if (reg & SPMI_COMMON_MODE_HPM_MASK)
  730. return REGULATOR_MODE_NORMAL;
  731. if (reg & SPMI_COMMON_MODE_AUTO_MASK)
  732. return REGULATOR_MODE_FAST;
  733. return REGULATOR_MODE_IDLE;
  734. }
  735. static int
  736. spmi_regulator_common_set_mode(struct regulator_dev *rdev, unsigned int mode)
  737. {
  738. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  739. u8 mask = SPMI_COMMON_MODE_HPM_MASK | SPMI_COMMON_MODE_AUTO_MASK;
  740. u8 val = 0;
  741. if (mode == REGULATOR_MODE_NORMAL)
  742. val = SPMI_COMMON_MODE_HPM_MASK;
  743. else if (mode == REGULATOR_MODE_FAST)
  744. val = SPMI_COMMON_MODE_AUTO_MASK;
  745. return spmi_vreg_update_bits(vreg, SPMI_COMMON_REG_MODE, val, mask);
  746. }
  747. static int
  748. spmi_regulator_common_set_load(struct regulator_dev *rdev, int load_uA)
  749. {
  750. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  751. unsigned int mode;
  752. if (load_uA >= vreg->hpm_min_load)
  753. mode = REGULATOR_MODE_NORMAL;
  754. else
  755. mode = REGULATOR_MODE_IDLE;
  756. return spmi_regulator_common_set_mode(rdev, mode);
  757. }
  758. static int spmi_regulator_common_set_pull_down(struct regulator_dev *rdev)
  759. {
  760. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  761. unsigned int mask = SPMI_COMMON_PULL_DOWN_ENABLE_MASK;
  762. return spmi_vreg_update_bits(vreg, SPMI_COMMON_REG_PULL_DOWN,
  763. mask, mask);
  764. }
  765. static int spmi_regulator_common_set_soft_start(struct regulator_dev *rdev)
  766. {
  767. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  768. unsigned int mask = SPMI_LDO_SOFT_START_ENABLE_MASK;
  769. return spmi_vreg_update_bits(vreg, SPMI_COMMON_REG_SOFT_START,
  770. mask, mask);
  771. }
  772. static int spmi_regulator_set_ilim(struct regulator_dev *rdev, int ilim_uA)
  773. {
  774. struct spmi_regulator *vreg = rdev_get_drvdata(rdev);
  775. enum spmi_regulator_logical_type type = vreg->logical_type;
  776. unsigned int current_reg;
  777. u8 reg;
  778. u8 mask = SPMI_BOOST_CURRENT_LIMIT_MASK |
  779. SPMI_BOOST_CURRENT_LIMIT_ENABLE_MASK;
  780. int max = (SPMI_BOOST_CURRENT_LIMIT_MASK + 1) * 500;
  781. if (type == SPMI_REGULATOR_LOGICAL_TYPE_BOOST)
  782. current_reg = SPMI_BOOST_REG_CURRENT_LIMIT;
  783. else
  784. current_reg = SPMI_BOOST_BYP_REG_CURRENT_LIMIT;
  785. if (ilim_uA > max || ilim_uA <= 0)
  786. return -EINVAL;
  787. reg = (ilim_uA - 1) / 500;
  788. reg |= SPMI_BOOST_CURRENT_LIMIT_ENABLE_MASK;
  789. return spmi_vreg_update_bits(vreg, current_reg, reg, mask);
  790. }
  791. static int spmi_regulator_vs_clear_ocp(struct spmi_regulator *vreg)
  792. {
  793. int ret;
  794. ret = spmi_vreg_update_bits(vreg, SPMI_COMMON_REG_ENABLE,
  795. SPMI_COMMON_DISABLE, SPMI_COMMON_ENABLE_MASK);
  796. vreg->vs_enable_time = ktime_get();
  797. ret = spmi_vreg_update_bits(vreg, SPMI_COMMON_REG_ENABLE,
  798. SPMI_COMMON_ENABLE, SPMI_COMMON_ENABLE_MASK);
  799. return ret;
  800. }
  801. static void spmi_regulator_vs_ocp_work(struct work_struct *work)
  802. {
  803. struct delayed_work *dwork = to_delayed_work(work);
  804. struct spmi_regulator *vreg
  805. = container_of(dwork, struct spmi_regulator, ocp_work);
  806. spmi_regulator_vs_clear_ocp(vreg);
  807. }
  808. static irqreturn_t spmi_regulator_vs_ocp_isr(int irq, void *data)
  809. {
  810. struct spmi_regulator *vreg = data;
  811. ktime_t ocp_irq_time;
  812. s64 ocp_trigger_delay_us;
  813. ocp_irq_time = ktime_get();
  814. ocp_trigger_delay_us = ktime_us_delta(ocp_irq_time,
  815. vreg->vs_enable_time);
  816. /*
  817. * Reset the OCP count if there is a large delay between switch enable
  818. * and when OCP triggers. This is indicative of a hotplug event as
  819. * opposed to a fault.
  820. */
  821. if (ocp_trigger_delay_us > SPMI_VS_OCP_FAULT_DELAY_US)
  822. vreg->ocp_count = 0;
  823. /* Wait for switch output to settle back to 0 V after OCP triggered. */
  824. udelay(SPMI_VS_OCP_FALL_DELAY_US);
  825. vreg->ocp_count++;
  826. if (vreg->ocp_count == 1) {
  827. /* Immediately clear the over current condition. */
  828. spmi_regulator_vs_clear_ocp(vreg);
  829. } else if (vreg->ocp_count <= vreg->ocp_max_retries) {
  830. /* Schedule the over current clear task to run later. */
  831. schedule_delayed_work(&vreg->ocp_work,
  832. msecs_to_jiffies(vreg->ocp_retry_delay_ms) + 1);
  833. } else {
  834. dev_err(vreg->dev,
  835. "OCP triggered %d times; no further retries\n",
  836. vreg->ocp_count);
  837. }
  838. return IRQ_HANDLED;
  839. }
  840. static struct regulator_ops spmi_smps_ops = {
  841. .enable = spmi_regulator_common_enable,
  842. .disable = spmi_regulator_common_disable,
  843. .is_enabled = spmi_regulator_common_is_enabled,
  844. .set_voltage = spmi_regulator_common_set_voltage,
  845. .get_voltage = spmi_regulator_common_get_voltage,
  846. .list_voltage = spmi_regulator_common_list_voltage,
  847. .set_mode = spmi_regulator_common_set_mode,
  848. .get_mode = spmi_regulator_common_get_mode,
  849. .set_load = spmi_regulator_common_set_load,
  850. .set_pull_down = spmi_regulator_common_set_pull_down,
  851. };
  852. static struct regulator_ops spmi_ldo_ops = {
  853. .enable = spmi_regulator_common_enable,
  854. .disable = spmi_regulator_common_disable,
  855. .is_enabled = spmi_regulator_common_is_enabled,
  856. .set_voltage = spmi_regulator_common_set_voltage,
  857. .get_voltage = spmi_regulator_common_get_voltage,
  858. .list_voltage = spmi_regulator_common_list_voltage,
  859. .set_mode = spmi_regulator_common_set_mode,
  860. .get_mode = spmi_regulator_common_get_mode,
  861. .set_load = spmi_regulator_common_set_load,
  862. .set_bypass = spmi_regulator_common_set_bypass,
  863. .get_bypass = spmi_regulator_common_get_bypass,
  864. .set_pull_down = spmi_regulator_common_set_pull_down,
  865. .set_soft_start = spmi_regulator_common_set_soft_start,
  866. };
  867. static struct regulator_ops spmi_ln_ldo_ops = {
  868. .enable = spmi_regulator_common_enable,
  869. .disable = spmi_regulator_common_disable,
  870. .is_enabled = spmi_regulator_common_is_enabled,
  871. .set_voltage = spmi_regulator_common_set_voltage,
  872. .get_voltage = spmi_regulator_common_get_voltage,
  873. .list_voltage = spmi_regulator_common_list_voltage,
  874. .set_bypass = spmi_regulator_common_set_bypass,
  875. .get_bypass = spmi_regulator_common_get_bypass,
  876. };
  877. static struct regulator_ops spmi_vs_ops = {
  878. .enable = spmi_regulator_vs_enable,
  879. .disable = spmi_regulator_common_disable,
  880. .is_enabled = spmi_regulator_common_is_enabled,
  881. .set_pull_down = spmi_regulator_common_set_pull_down,
  882. .set_soft_start = spmi_regulator_common_set_soft_start,
  883. .set_over_current_protection = spmi_regulator_vs_ocp,
  884. };
  885. static struct regulator_ops spmi_boost_ops = {
  886. .enable = spmi_regulator_common_enable,
  887. .disable = spmi_regulator_common_disable,
  888. .is_enabled = spmi_regulator_common_is_enabled,
  889. .set_voltage = spmi_regulator_single_range_set_voltage,
  890. .get_voltage = spmi_regulator_single_range_get_voltage,
  891. .list_voltage = spmi_regulator_common_list_voltage,
  892. .set_input_current_limit = spmi_regulator_set_ilim,
  893. };
  894. static struct regulator_ops spmi_ftsmps_ops = {
  895. .enable = spmi_regulator_common_enable,
  896. .disable = spmi_regulator_common_disable,
  897. .is_enabled = spmi_regulator_common_is_enabled,
  898. .set_voltage = spmi_regulator_common_set_voltage,
  899. .set_voltage_time_sel = spmi_regulator_set_voltage_time_sel,
  900. .get_voltage = spmi_regulator_common_get_voltage,
  901. .list_voltage = spmi_regulator_common_list_voltage,
  902. .set_mode = spmi_regulator_common_set_mode,
  903. .get_mode = spmi_regulator_common_get_mode,
  904. .set_load = spmi_regulator_common_set_load,
  905. .set_pull_down = spmi_regulator_common_set_pull_down,
  906. };
  907. static struct regulator_ops spmi_ult_lo_smps_ops = {
  908. .enable = spmi_regulator_common_enable,
  909. .disable = spmi_regulator_common_disable,
  910. .is_enabled = spmi_regulator_common_is_enabled,
  911. .set_voltage = spmi_regulator_ult_lo_smps_set_voltage,
  912. .get_voltage = spmi_regulator_ult_lo_smps_get_voltage,
  913. .list_voltage = spmi_regulator_common_list_voltage,
  914. .set_mode = spmi_regulator_common_set_mode,
  915. .get_mode = spmi_regulator_common_get_mode,
  916. .set_load = spmi_regulator_common_set_load,
  917. .set_pull_down = spmi_regulator_common_set_pull_down,
  918. };
  919. static struct regulator_ops spmi_ult_ho_smps_ops = {
  920. .enable = spmi_regulator_common_enable,
  921. .disable = spmi_regulator_common_disable,
  922. .is_enabled = spmi_regulator_common_is_enabled,
  923. .set_voltage = spmi_regulator_single_range_set_voltage,
  924. .get_voltage = spmi_regulator_single_range_get_voltage,
  925. .list_voltage = spmi_regulator_common_list_voltage,
  926. .set_mode = spmi_regulator_common_set_mode,
  927. .get_mode = spmi_regulator_common_get_mode,
  928. .set_load = spmi_regulator_common_set_load,
  929. .set_pull_down = spmi_regulator_common_set_pull_down,
  930. };
  931. static struct regulator_ops spmi_ult_ldo_ops = {
  932. .enable = spmi_regulator_common_enable,
  933. .disable = spmi_regulator_common_disable,
  934. .is_enabled = spmi_regulator_common_is_enabled,
  935. .set_voltage = spmi_regulator_single_range_set_voltage,
  936. .get_voltage = spmi_regulator_single_range_get_voltage,
  937. .list_voltage = spmi_regulator_common_list_voltage,
  938. .set_mode = spmi_regulator_common_set_mode,
  939. .get_mode = spmi_regulator_common_get_mode,
  940. .set_load = spmi_regulator_common_set_load,
  941. .set_bypass = spmi_regulator_common_set_bypass,
  942. .get_bypass = spmi_regulator_common_get_bypass,
  943. .set_pull_down = spmi_regulator_common_set_pull_down,
  944. .set_soft_start = spmi_regulator_common_set_soft_start,
  945. };
  946. /* Maximum possible digital major revision value */
  947. #define INF 0xFF
  948. static const struct spmi_regulator_mapping supported_regulators[] = {
  949. /* type subtype dig_min dig_max ltype ops setpoints hpm_min */
  950. SPMI_VREG(BUCK, GP_CTL, 0, INF, SMPS, smps, smps, 100000),
  951. SPMI_VREG(LDO, N300, 0, INF, LDO, ldo, nldo1, 10000),
  952. SPMI_VREG(LDO, N600, 0, 0, LDO, ldo, nldo2, 10000),
  953. SPMI_VREG(LDO, N1200, 0, 0, LDO, ldo, nldo2, 10000),
  954. SPMI_VREG(LDO, N600, 1, INF, LDO, ldo, nldo3, 10000),
  955. SPMI_VREG(LDO, N1200, 1, INF, LDO, ldo, nldo3, 10000),
  956. SPMI_VREG(LDO, N600_ST, 0, 0, LDO, ldo, nldo2, 10000),
  957. SPMI_VREG(LDO, N1200_ST, 0, 0, LDO, ldo, nldo2, 10000),
  958. SPMI_VREG(LDO, N600_ST, 1, INF, LDO, ldo, nldo3, 10000),
  959. SPMI_VREG(LDO, N1200_ST, 1, INF, LDO, ldo, nldo3, 10000),
  960. SPMI_VREG(LDO, P50, 0, INF, LDO, ldo, pldo, 5000),
  961. SPMI_VREG(LDO, P150, 0, INF, LDO, ldo, pldo, 10000),
  962. SPMI_VREG(LDO, P300, 0, INF, LDO, ldo, pldo, 10000),
  963. SPMI_VREG(LDO, P600, 0, INF, LDO, ldo, pldo, 10000),
  964. SPMI_VREG(LDO, P1200, 0, INF, LDO, ldo, pldo, 10000),
  965. SPMI_VREG(LDO, LN, 0, INF, LN_LDO, ln_ldo, ln_ldo, 0),
  966. SPMI_VREG(LDO, LV_P50, 0, INF, LDO, ldo, pldo, 5000),
  967. SPMI_VREG(LDO, LV_P150, 0, INF, LDO, ldo, pldo, 10000),
  968. SPMI_VREG(LDO, LV_P300, 0, INF, LDO, ldo, pldo, 10000),
  969. SPMI_VREG(LDO, LV_P600, 0, INF, LDO, ldo, pldo, 10000),
  970. SPMI_VREG(LDO, LV_P1200, 0, INF, LDO, ldo, pldo, 10000),
  971. SPMI_VREG_VS(LV100, 0, INF),
  972. SPMI_VREG_VS(LV300, 0, INF),
  973. SPMI_VREG_VS(MV300, 0, INF),
  974. SPMI_VREG_VS(MV500, 0, INF),
  975. SPMI_VREG_VS(HDMI, 0, INF),
  976. SPMI_VREG_VS(OTG, 0, INF),
  977. SPMI_VREG(BOOST, 5V_BOOST, 0, INF, BOOST, boost, boost, 0),
  978. SPMI_VREG(FTS, FTS_CTL, 0, INF, FTSMPS, ftsmps, ftsmps, 100000),
  979. SPMI_VREG(FTS, FTS2p5_CTL, 0, INF, FTSMPS, ftsmps, ftsmps2p5, 100000),
  980. SPMI_VREG(BOOST_BYP, BB_2A, 0, INF, BOOST_BYP, boost, boost_byp, 0),
  981. SPMI_VREG(ULT_BUCK, ULT_HF_CTL1, 0, INF, ULT_LO_SMPS, ult_lo_smps,
  982. ult_lo_smps, 100000),
  983. SPMI_VREG(ULT_BUCK, ULT_HF_CTL2, 0, INF, ULT_LO_SMPS, ult_lo_smps,
  984. ult_lo_smps, 100000),
  985. SPMI_VREG(ULT_BUCK, ULT_HF_CTL3, 0, INF, ULT_LO_SMPS, ult_lo_smps,
  986. ult_lo_smps, 100000),
  987. SPMI_VREG(ULT_BUCK, ULT_HF_CTL4, 0, INF, ULT_HO_SMPS, ult_ho_smps,
  988. ult_ho_smps, 100000),
  989. SPMI_VREG(ULT_LDO, N300_ST, 0, INF, ULT_LDO, ult_ldo, ult_nldo, 10000),
  990. SPMI_VREG(ULT_LDO, N600_ST, 0, INF, ULT_LDO, ult_ldo, ult_nldo, 10000),
  991. SPMI_VREG(ULT_LDO, N900_ST, 0, INF, ULT_LDO, ult_ldo, ult_nldo, 10000),
  992. SPMI_VREG(ULT_LDO, N1200_ST, 0, INF, ULT_LDO, ult_ldo, ult_nldo, 10000),
  993. SPMI_VREG(ULT_LDO, LV_P150, 0, INF, ULT_LDO, ult_ldo, ult_pldo, 10000),
  994. SPMI_VREG(ULT_LDO, LV_P300, 0, INF, ULT_LDO, ult_ldo, ult_pldo, 10000),
  995. SPMI_VREG(ULT_LDO, LV_P450, 0, INF, ULT_LDO, ult_ldo, ult_pldo, 10000),
  996. SPMI_VREG(ULT_LDO, P600, 0, INF, ULT_LDO, ult_ldo, ult_pldo, 10000),
  997. SPMI_VREG(ULT_LDO, P150, 0, INF, ULT_LDO, ult_ldo, ult_pldo, 10000),
  998. SPMI_VREG(ULT_LDO, P50, 0, INF, ULT_LDO, ult_ldo, ult_pldo, 5000),
  999. };
  1000. static void spmi_calculate_num_voltages(struct spmi_voltage_set_points *points)
  1001. {
  1002. unsigned int n;
  1003. struct spmi_voltage_range *range = points->range;
  1004. for (; range < points->range + points->count; range++) {
  1005. n = 0;
  1006. if (range->set_point_max_uV) {
  1007. n = range->set_point_max_uV - range->set_point_min_uV;
  1008. n = (n / range->step_uV) + 1;
  1009. }
  1010. range->n_voltages = n;
  1011. points->n_voltages += n;
  1012. }
  1013. }
  1014. static int spmi_regulator_match(struct spmi_regulator *vreg, u16 force_type)
  1015. {
  1016. const struct spmi_regulator_mapping *mapping;
  1017. int ret, i;
  1018. u32 dig_major_rev;
  1019. u8 version[SPMI_COMMON_REG_SUBTYPE - SPMI_COMMON_REG_DIG_MAJOR_REV + 1];
  1020. u8 type, subtype;
  1021. ret = spmi_vreg_read(vreg, SPMI_COMMON_REG_DIG_MAJOR_REV, version,
  1022. ARRAY_SIZE(version));
  1023. if (ret) {
  1024. dev_err(vreg->dev, "could not read version registers\n");
  1025. return ret;
  1026. }
  1027. dig_major_rev = version[SPMI_COMMON_REG_DIG_MAJOR_REV
  1028. - SPMI_COMMON_REG_DIG_MAJOR_REV];
  1029. if (!force_type) {
  1030. type = version[SPMI_COMMON_REG_TYPE -
  1031. SPMI_COMMON_REG_DIG_MAJOR_REV];
  1032. subtype = version[SPMI_COMMON_REG_SUBTYPE -
  1033. SPMI_COMMON_REG_DIG_MAJOR_REV];
  1034. } else {
  1035. type = force_type >> 8;
  1036. subtype = force_type;
  1037. }
  1038. for (i = 0; i < ARRAY_SIZE(supported_regulators); i++) {
  1039. mapping = &supported_regulators[i];
  1040. if (mapping->type == type && mapping->subtype == subtype
  1041. && mapping->revision_min <= dig_major_rev
  1042. && mapping->revision_max >= dig_major_rev)
  1043. goto found;
  1044. }
  1045. dev_err(vreg->dev,
  1046. "unsupported regulator: name=%s type=0x%02X, subtype=0x%02X, dig major rev=0x%02X\n",
  1047. vreg->desc.name, type, subtype, dig_major_rev);
  1048. return -ENODEV;
  1049. found:
  1050. vreg->logical_type = mapping->logical_type;
  1051. vreg->set_points = mapping->set_points;
  1052. vreg->hpm_min_load = mapping->hpm_min_load;
  1053. vreg->desc.ops = mapping->ops;
  1054. if (mapping->set_points) {
  1055. if (!mapping->set_points->n_voltages)
  1056. spmi_calculate_num_voltages(mapping->set_points);
  1057. vreg->desc.n_voltages = mapping->set_points->n_voltages;
  1058. }
  1059. return 0;
  1060. }
  1061. static int spmi_regulator_ftsmps_init_slew_rate(struct spmi_regulator *vreg)
  1062. {
  1063. int ret;
  1064. u8 reg = 0;
  1065. int step, delay, slew_rate;
  1066. const struct spmi_voltage_range *range;
  1067. ret = spmi_vreg_read(vreg, SPMI_COMMON_REG_STEP_CTRL, &reg, 1);
  1068. if (ret) {
  1069. dev_err(vreg->dev, "spmi read failed, ret=%d\n", ret);
  1070. return ret;
  1071. }
  1072. range = spmi_regulator_find_range(vreg);
  1073. if (!range)
  1074. return -EINVAL;
  1075. step = reg & SPMI_FTSMPS_STEP_CTRL_STEP_MASK;
  1076. step >>= SPMI_FTSMPS_STEP_CTRL_STEP_SHIFT;
  1077. delay = reg & SPMI_FTSMPS_STEP_CTRL_DELAY_MASK;
  1078. delay >>= SPMI_FTSMPS_STEP_CTRL_DELAY_SHIFT;
  1079. /* slew_rate has units of uV/us */
  1080. slew_rate = SPMI_FTSMPS_CLOCK_RATE * range->step_uV * (1 << step);
  1081. slew_rate /= 1000 * (SPMI_FTSMPS_STEP_DELAY << delay);
  1082. slew_rate *= SPMI_FTSMPS_STEP_MARGIN_NUM;
  1083. slew_rate /= SPMI_FTSMPS_STEP_MARGIN_DEN;
  1084. /* Ensure that the slew rate is greater than 0 */
  1085. vreg->slew_rate = max(slew_rate, 1);
  1086. return ret;
  1087. }
  1088. static int spmi_regulator_init_registers(struct spmi_regulator *vreg,
  1089. const struct spmi_regulator_init_data *data)
  1090. {
  1091. int ret;
  1092. enum spmi_regulator_logical_type type;
  1093. u8 ctrl_reg[8], reg, mask;
  1094. type = vreg->logical_type;
  1095. ret = spmi_vreg_read(vreg, SPMI_COMMON_REG_VOLTAGE_RANGE, ctrl_reg, 8);
  1096. if (ret)
  1097. return ret;
  1098. /* Set up enable pin control. */
  1099. if ((type == SPMI_REGULATOR_LOGICAL_TYPE_SMPS
  1100. || type == SPMI_REGULATOR_LOGICAL_TYPE_LDO
  1101. || type == SPMI_REGULATOR_LOGICAL_TYPE_VS)
  1102. && !(data->pin_ctrl_enable
  1103. & SPMI_REGULATOR_PIN_CTRL_ENABLE_HW_DEFAULT)) {
  1104. ctrl_reg[SPMI_COMMON_IDX_ENABLE] &=
  1105. ~SPMI_COMMON_ENABLE_FOLLOW_ALL_MASK;
  1106. ctrl_reg[SPMI_COMMON_IDX_ENABLE] |=
  1107. data->pin_ctrl_enable & SPMI_COMMON_ENABLE_FOLLOW_ALL_MASK;
  1108. }
  1109. /* Set up mode pin control. */
  1110. if ((type == SPMI_REGULATOR_LOGICAL_TYPE_SMPS
  1111. || type == SPMI_REGULATOR_LOGICAL_TYPE_LDO)
  1112. && !(data->pin_ctrl_hpm
  1113. & SPMI_REGULATOR_PIN_CTRL_HPM_HW_DEFAULT)) {
  1114. ctrl_reg[SPMI_COMMON_IDX_MODE] &=
  1115. ~SPMI_COMMON_MODE_FOLLOW_ALL_MASK;
  1116. ctrl_reg[SPMI_COMMON_IDX_MODE] |=
  1117. data->pin_ctrl_hpm & SPMI_COMMON_MODE_FOLLOW_ALL_MASK;
  1118. }
  1119. if (type == SPMI_REGULATOR_LOGICAL_TYPE_VS
  1120. && !(data->pin_ctrl_hpm & SPMI_REGULATOR_PIN_CTRL_HPM_HW_DEFAULT)) {
  1121. ctrl_reg[SPMI_COMMON_IDX_MODE] &=
  1122. ~SPMI_COMMON_MODE_FOLLOW_AWAKE_MASK;
  1123. ctrl_reg[SPMI_COMMON_IDX_MODE] |=
  1124. data->pin_ctrl_hpm & SPMI_COMMON_MODE_FOLLOW_AWAKE_MASK;
  1125. }
  1126. if ((type == SPMI_REGULATOR_LOGICAL_TYPE_ULT_LO_SMPS
  1127. || type == SPMI_REGULATOR_LOGICAL_TYPE_ULT_HO_SMPS
  1128. || type == SPMI_REGULATOR_LOGICAL_TYPE_ULT_LDO)
  1129. && !(data->pin_ctrl_hpm
  1130. & SPMI_REGULATOR_PIN_CTRL_HPM_HW_DEFAULT)) {
  1131. ctrl_reg[SPMI_COMMON_IDX_MODE] &=
  1132. ~SPMI_COMMON_MODE_FOLLOW_AWAKE_MASK;
  1133. ctrl_reg[SPMI_COMMON_IDX_MODE] |=
  1134. data->pin_ctrl_hpm & SPMI_COMMON_MODE_FOLLOW_AWAKE_MASK;
  1135. }
  1136. /* Write back any control register values that were modified. */
  1137. ret = spmi_vreg_write(vreg, SPMI_COMMON_REG_VOLTAGE_RANGE, ctrl_reg, 8);
  1138. if (ret)
  1139. return ret;
  1140. /* Set soft start strength and over current protection for VS. */
  1141. if (type == SPMI_REGULATOR_LOGICAL_TYPE_VS) {
  1142. if (data->vs_soft_start_strength
  1143. != SPMI_VS_SOFT_START_STR_HW_DEFAULT) {
  1144. reg = data->vs_soft_start_strength
  1145. & SPMI_VS_SOFT_START_SEL_MASK;
  1146. mask = SPMI_VS_SOFT_START_SEL_MASK;
  1147. return spmi_vreg_update_bits(vreg,
  1148. SPMI_VS_REG_SOFT_START,
  1149. reg, mask);
  1150. }
  1151. }
  1152. return 0;
  1153. }
  1154. static void spmi_regulator_get_dt_config(struct spmi_regulator *vreg,
  1155. struct device_node *node, struct spmi_regulator_init_data *data)
  1156. {
  1157. /*
  1158. * Initialize configuration parameters to use hardware default in case
  1159. * no value is specified via device tree.
  1160. */
  1161. data->pin_ctrl_enable = SPMI_REGULATOR_PIN_CTRL_ENABLE_HW_DEFAULT;
  1162. data->pin_ctrl_hpm = SPMI_REGULATOR_PIN_CTRL_HPM_HW_DEFAULT;
  1163. data->vs_soft_start_strength = SPMI_VS_SOFT_START_STR_HW_DEFAULT;
  1164. /* These bindings are optional, so it is okay if they aren't found. */
  1165. of_property_read_u32(node, "qcom,ocp-max-retries",
  1166. &vreg->ocp_max_retries);
  1167. of_property_read_u32(node, "qcom,ocp-retry-delay",
  1168. &vreg->ocp_retry_delay_ms);
  1169. of_property_read_u32(node, "qcom,pin-ctrl-enable",
  1170. &data->pin_ctrl_enable);
  1171. of_property_read_u32(node, "qcom,pin-ctrl-hpm", &data->pin_ctrl_hpm);
  1172. of_property_read_u32(node, "qcom,vs-soft-start-strength",
  1173. &data->vs_soft_start_strength);
  1174. }
  1175. static unsigned int spmi_regulator_of_map_mode(unsigned int mode)
  1176. {
  1177. if (mode == 1)
  1178. return REGULATOR_MODE_NORMAL;
  1179. if (mode == 2)
  1180. return REGULATOR_MODE_FAST;
  1181. return REGULATOR_MODE_IDLE;
  1182. }
  1183. static int spmi_regulator_of_parse(struct device_node *node,
  1184. const struct regulator_desc *desc,
  1185. struct regulator_config *config)
  1186. {
  1187. struct spmi_regulator_init_data data = { };
  1188. struct spmi_regulator *vreg = config->driver_data;
  1189. struct device *dev = config->dev;
  1190. int ret;
  1191. spmi_regulator_get_dt_config(vreg, node, &data);
  1192. if (!vreg->ocp_max_retries)
  1193. vreg->ocp_max_retries = SPMI_VS_OCP_DEFAULT_MAX_RETRIES;
  1194. if (!vreg->ocp_retry_delay_ms)
  1195. vreg->ocp_retry_delay_ms = SPMI_VS_OCP_DEFAULT_RETRY_DELAY_MS;
  1196. ret = spmi_regulator_init_registers(vreg, &data);
  1197. if (ret) {
  1198. dev_err(dev, "common initialization failed, ret=%d\n", ret);
  1199. return ret;
  1200. }
  1201. if (vreg->logical_type == SPMI_REGULATOR_LOGICAL_TYPE_FTSMPS) {
  1202. ret = spmi_regulator_ftsmps_init_slew_rate(vreg);
  1203. if (ret)
  1204. return ret;
  1205. }
  1206. if (vreg->logical_type != SPMI_REGULATOR_LOGICAL_TYPE_VS)
  1207. vreg->ocp_irq = 0;
  1208. if (vreg->ocp_irq) {
  1209. ret = devm_request_irq(dev, vreg->ocp_irq,
  1210. spmi_regulator_vs_ocp_isr, IRQF_TRIGGER_RISING, "ocp",
  1211. vreg);
  1212. if (ret < 0) {
  1213. dev_err(dev, "failed to request irq %d, ret=%d\n",
  1214. vreg->ocp_irq, ret);
  1215. return ret;
  1216. }
  1217. INIT_DELAYED_WORK(&vreg->ocp_work, spmi_regulator_vs_ocp_work);
  1218. }
  1219. return 0;
  1220. }
  1221. static const struct spmi_regulator_data pm8941_regulators[] = {
  1222. { "s1", 0x1400, "vdd_s1", },
  1223. { "s2", 0x1700, "vdd_s2", },
  1224. { "s3", 0x1a00, "vdd_s3", },
  1225. { "l1", 0x4000, "vdd_l1_l3", },
  1226. { "l2", 0x4100, "vdd_l2_lvs_1_2_3", },
  1227. { "l3", 0x4200, "vdd_l1_l3", },
  1228. { "l4", 0x4300, "vdd_l4_l11", },
  1229. { "l5", 0x4400, "vdd_l5_l7", NULL, 0x0410 },
  1230. { "l6", 0x4500, "vdd_l6_l12_l14_l15", },
  1231. { "l7", 0x4600, "vdd_l5_l7", NULL, 0x0410 },
  1232. { "l8", 0x4700, "vdd_l8_l16_l18_19", },
  1233. { "l9", 0x4800, "vdd_l9_l10_l17_l22", },
  1234. { "l10", 0x4900, "vdd_l9_l10_l17_l22", },
  1235. { "l11", 0x4a00, "vdd_l4_l11", },
  1236. { "l12", 0x4b00, "vdd_l6_l12_l14_l15", },
  1237. { "l13", 0x4c00, "vdd_l13_l20_l23_l24", },
  1238. { "l14", 0x4d00, "vdd_l6_l12_l14_l15", },
  1239. { "l15", 0x4e00, "vdd_l6_l12_l14_l15", },
  1240. { "l16", 0x4f00, "vdd_l8_l16_l18_19", },
  1241. { "l17", 0x5000, "vdd_l9_l10_l17_l22", },
  1242. { "l18", 0x5100, "vdd_l8_l16_l18_19", },
  1243. { "l19", 0x5200, "vdd_l8_l16_l18_19", },
  1244. { "l20", 0x5300, "vdd_l13_l20_l23_l24", },
  1245. { "l21", 0x5400, "vdd_l21", },
  1246. { "l22", 0x5500, "vdd_l9_l10_l17_l22", },
  1247. { "l23", 0x5600, "vdd_l13_l20_l23_l24", },
  1248. { "l24", 0x5700, "vdd_l13_l20_l23_l24", },
  1249. { "lvs1", 0x8000, "vdd_l2_lvs_1_2_3", },
  1250. { "lvs2", 0x8100, "vdd_l2_lvs_1_2_3", },
  1251. { "lvs3", 0x8200, "vdd_l2_lvs_1_2_3", },
  1252. { "mvs1", 0x8300, "vin_5vs", },
  1253. { "mvs2", 0x8400, "vin_5vs", },
  1254. { }
  1255. };
  1256. static const struct spmi_regulator_data pm8841_regulators[] = {
  1257. { "s1", 0x1400, "vdd_s1", },
  1258. { "s2", 0x1700, "vdd_s2", NULL, 0x1c08 },
  1259. { "s3", 0x1a00, "vdd_s3", },
  1260. { "s4", 0x1d00, "vdd_s4", NULL, 0x1c08 },
  1261. { "s5", 0x2000, "vdd_s5", NULL, 0x1c08 },
  1262. { "s6", 0x2300, "vdd_s6", NULL, 0x1c08 },
  1263. { "s7", 0x2600, "vdd_s7", NULL, 0x1c08 },
  1264. { "s8", 0x2900, "vdd_s8", NULL, 0x1c08 },
  1265. { }
  1266. };
  1267. static const struct spmi_regulator_data pm8916_regulators[] = {
  1268. { "s1", 0x1400, "vdd_s1", },
  1269. { "s2", 0x1700, "vdd_s2", },
  1270. { "s3", 0x1a00, "vdd_s3", },
  1271. { "s4", 0x1d00, "vdd_s4", },
  1272. { "l1", 0x4000, "vdd_l1_l3", },
  1273. { "l2", 0x4100, "vdd_l2", },
  1274. { "l3", 0x4200, "vdd_l1_l3", },
  1275. { "l4", 0x4300, "vdd_l4_l5_l6", },
  1276. { "l5", 0x4400, "vdd_l4_l5_l6", },
  1277. { "l6", 0x4500, "vdd_l4_l5_l6", },
  1278. { "l7", 0x4600, "vdd_l7", },
  1279. { "l8", 0x4700, "vdd_l8_l11_l14_l15_l16", },
  1280. { "l9", 0x4800, "vdd_l9_l10_l12_l13_l17_l18", },
  1281. { "l10", 0x4900, "vdd_l9_l10_l12_l13_l17_l18", },
  1282. { "l11", 0x4a00, "vdd_l8_l11_l14_l15_l16", },
  1283. { "l12", 0x4b00, "vdd_l9_l10_l12_l13_l17_l18", },
  1284. { "l13", 0x4c00, "vdd_l9_l10_l12_l13_l17_l18", },
  1285. { "l14", 0x4d00, "vdd_l8_l11_l14_l15_l16", },
  1286. { "l15", 0x4e00, "vdd_l8_l11_l14_l15_l16", },
  1287. { "l16", 0x4f00, "vdd_l8_l11_l14_l15_l16", },
  1288. { "l17", 0x5000, "vdd_l9_l10_l12_l13_l17_l18", },
  1289. { "l18", 0x5100, "vdd_l9_l10_l12_l13_l17_l18", },
  1290. { }
  1291. };
  1292. static const struct of_device_id qcom_spmi_regulator_match[] = {
  1293. { .compatible = "qcom,pm8841-regulators", .data = &pm8841_regulators },
  1294. { .compatible = "qcom,pm8916-regulators", .data = &pm8916_regulators },
  1295. { .compatible = "qcom,pm8941-regulators", .data = &pm8941_regulators },
  1296. { }
  1297. };
  1298. MODULE_DEVICE_TABLE(of, qcom_spmi_regulator_match);
  1299. static int qcom_spmi_regulator_probe(struct platform_device *pdev)
  1300. {
  1301. const struct spmi_regulator_data *reg;
  1302. const struct of_device_id *match;
  1303. struct regulator_config config = { };
  1304. struct regulator_dev *rdev;
  1305. struct spmi_regulator *vreg;
  1306. struct regmap *regmap;
  1307. const char *name;
  1308. struct device *dev = &pdev->dev;
  1309. int ret;
  1310. struct list_head *vreg_list;
  1311. vreg_list = devm_kzalloc(dev, sizeof(*vreg_list), GFP_KERNEL);
  1312. if (!vreg_list)
  1313. return -ENOMEM;
  1314. INIT_LIST_HEAD(vreg_list);
  1315. platform_set_drvdata(pdev, vreg_list);
  1316. regmap = dev_get_regmap(dev->parent, NULL);
  1317. if (!regmap)
  1318. return -ENODEV;
  1319. match = of_match_device(qcom_spmi_regulator_match, &pdev->dev);
  1320. if (!match)
  1321. return -ENODEV;
  1322. for (reg = match->data; reg->name; reg++) {
  1323. vreg = devm_kzalloc(dev, sizeof(*vreg), GFP_KERNEL);
  1324. if (!vreg)
  1325. return -ENOMEM;
  1326. vreg->dev = dev;
  1327. vreg->base = reg->base;
  1328. vreg->regmap = regmap;
  1329. if (reg->ocp) {
  1330. vreg->ocp_irq = platform_get_irq_byname(pdev, reg->ocp);
  1331. if (vreg->ocp_irq < 0) {
  1332. ret = vreg->ocp_irq;
  1333. goto err;
  1334. }
  1335. }
  1336. vreg->desc.id = -1;
  1337. vreg->desc.owner = THIS_MODULE;
  1338. vreg->desc.type = REGULATOR_VOLTAGE;
  1339. vreg->desc.name = name = reg->name;
  1340. vreg->desc.supply_name = reg->supply;
  1341. vreg->desc.of_match = reg->name;
  1342. vreg->desc.of_parse_cb = spmi_regulator_of_parse;
  1343. vreg->desc.of_map_mode = spmi_regulator_of_map_mode;
  1344. ret = spmi_regulator_match(vreg, reg->force_type);
  1345. if (ret)
  1346. goto err;
  1347. config.dev = dev;
  1348. config.driver_data = vreg;
  1349. rdev = devm_regulator_register(dev, &vreg->desc, &config);
  1350. if (IS_ERR(rdev)) {
  1351. dev_err(dev, "failed to register %s\n", name);
  1352. ret = PTR_ERR(rdev);
  1353. goto err;
  1354. }
  1355. INIT_LIST_HEAD(&vreg->node);
  1356. list_add(&vreg->node, vreg_list);
  1357. }
  1358. return 0;
  1359. err:
  1360. list_for_each_entry(vreg, vreg_list, node)
  1361. if (vreg->ocp_irq)
  1362. cancel_delayed_work_sync(&vreg->ocp_work);
  1363. return ret;
  1364. }
  1365. static int qcom_spmi_regulator_remove(struct platform_device *pdev)
  1366. {
  1367. struct spmi_regulator *vreg;
  1368. struct list_head *vreg_list = platform_get_drvdata(pdev);
  1369. list_for_each_entry(vreg, vreg_list, node)
  1370. if (vreg->ocp_irq)
  1371. cancel_delayed_work_sync(&vreg->ocp_work);
  1372. return 0;
  1373. }
  1374. static struct platform_driver qcom_spmi_regulator_driver = {
  1375. .driver = {
  1376. .name = "qcom-spmi-regulator",
  1377. .of_match_table = qcom_spmi_regulator_match,
  1378. },
  1379. .probe = qcom_spmi_regulator_probe,
  1380. .remove = qcom_spmi_regulator_remove,
  1381. };
  1382. module_platform_driver(qcom_spmi_regulator_driver);
  1383. MODULE_DESCRIPTION("Qualcomm SPMI PMIC regulator driver");
  1384. MODULE_LICENSE("GPL v2");
  1385. MODULE_ALIAS("platform:qcom-spmi-regulator");