da9063-regulator.c 26 KB

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  1. /*
  2. * Regulator driver for DA9063 PMIC series
  3. *
  4. * Copyright 2012 Dialog Semiconductors Ltd.
  5. * Copyright 2013 Philipp Zabel, Pengutronix
  6. *
  7. * Author: Krystian Garbaciak <krystian.garbaciak@diasemi.com>
  8. *
  9. * This program is free software; you can redistribute it and/or modify it
  10. * under the terms of the GNU General Public License as published by the
  11. * Free Software Foundation; either version 2 of the License, or (at your
  12. * option) any later version.
  13. *
  14. */
  15. #include <linux/kernel.h>
  16. #include <linux/module.h>
  17. #include <linux/init.h>
  18. #include <linux/err.h>
  19. #include <linux/slab.h>
  20. #include <linux/of.h>
  21. #include <linux/platform_device.h>
  22. #include <linux/regmap.h>
  23. #include <linux/regulator/driver.h>
  24. #include <linux/regulator/machine.h>
  25. #include <linux/regulator/of_regulator.h>
  26. #include <linux/mfd/da9063/core.h>
  27. #include <linux/mfd/da9063/pdata.h>
  28. #include <linux/mfd/da9063/registers.h>
  29. /* Definition for registering regmap bit fields using a mask */
  30. #define BFIELD(_reg, _mask) \
  31. REG_FIELD(_reg, __builtin_ffs((int)_mask) - 1, \
  32. sizeof(unsigned int) * 8 - __builtin_clz((_mask)) - 1)
  33. /* Regulator capabilities and registers description */
  34. struct da9063_regulator_info {
  35. struct regulator_desc desc;
  36. /* Current limiting */
  37. unsigned n_current_limits;
  38. const int *current_limits;
  39. /* DA9063 main register fields */
  40. struct reg_field mode; /* buck mode of operation */
  41. struct reg_field suspend;
  42. struct reg_field sleep;
  43. struct reg_field suspend_sleep;
  44. unsigned int suspend_vsel_reg;
  45. struct reg_field ilimit;
  46. /* DA9063 event detection bit */
  47. struct reg_field oc_event;
  48. };
  49. /* Macros for LDO */
  50. #define DA9063_LDO(chip, regl_name, min_mV, step_mV, max_mV) \
  51. .desc.id = chip##_ID_##regl_name, \
  52. .desc.name = __stringify(chip##_##regl_name), \
  53. .desc.ops = &da9063_ldo_ops, \
  54. .desc.min_uV = (min_mV) * 1000, \
  55. .desc.uV_step = (step_mV) * 1000, \
  56. .desc.n_voltages = (((max_mV) - (min_mV))/(step_mV) + 1 \
  57. + (DA9063_V##regl_name##_BIAS)), \
  58. .desc.enable_reg = DA9063_REG_##regl_name##_CONT, \
  59. .desc.enable_mask = DA9063_LDO_EN, \
  60. .desc.vsel_reg = DA9063_REG_V##regl_name##_A, \
  61. .desc.vsel_mask = DA9063_V##regl_name##_MASK, \
  62. .desc.linear_min_sel = DA9063_V##regl_name##_BIAS, \
  63. .sleep = BFIELD(DA9063_REG_V##regl_name##_A, DA9063_LDO_SL), \
  64. .suspend_sleep = BFIELD(DA9063_REG_V##regl_name##_B, DA9063_LDO_SL), \
  65. .suspend_vsel_reg = DA9063_REG_V##regl_name##_B
  66. /* Macros for voltage DC/DC converters (BUCKs) */
  67. #define DA9063_BUCK(chip, regl_name, min_mV, step_mV, max_mV, limits_array) \
  68. .desc.id = chip##_ID_##regl_name, \
  69. .desc.name = __stringify(chip##_##regl_name), \
  70. .desc.ops = &da9063_buck_ops, \
  71. .desc.min_uV = (min_mV) * 1000, \
  72. .desc.uV_step = (step_mV) * 1000, \
  73. .desc.n_voltages = ((max_mV) - (min_mV))/(step_mV) + 1, \
  74. .current_limits = limits_array, \
  75. .n_current_limits = ARRAY_SIZE(limits_array)
  76. #define DA9063_BUCK_COMMON_FIELDS(regl_name) \
  77. .desc.enable_reg = DA9063_REG_##regl_name##_CONT, \
  78. .desc.enable_mask = DA9063_BUCK_EN, \
  79. .desc.vsel_reg = DA9063_REG_V##regl_name##_A, \
  80. .desc.vsel_mask = DA9063_VBUCK_MASK, \
  81. .desc.linear_min_sel = DA9063_VBUCK_BIAS, \
  82. .sleep = BFIELD(DA9063_REG_V##regl_name##_A, DA9063_BUCK_SL), \
  83. .suspend_sleep = BFIELD(DA9063_REG_V##regl_name##_B, DA9063_BUCK_SL), \
  84. .suspend_vsel_reg = DA9063_REG_V##regl_name##_B, \
  85. .mode = BFIELD(DA9063_REG_##regl_name##_CFG, DA9063_BUCK_MODE_MASK)
  86. /* Defines asignment of regulators info table to chip model */
  87. struct da9063_dev_model {
  88. const struct da9063_regulator_info *regulator_info;
  89. unsigned n_regulators;
  90. unsigned dev_model;
  91. };
  92. /* Single regulator settings */
  93. struct da9063_regulator {
  94. struct regulator_desc desc;
  95. struct regulator_dev *rdev;
  96. struct da9063 *hw;
  97. const struct da9063_regulator_info *info;
  98. struct regmap_field *mode;
  99. struct regmap_field *suspend;
  100. struct regmap_field *sleep;
  101. struct regmap_field *suspend_sleep;
  102. struct regmap_field *ilimit;
  103. };
  104. /* Encapsulates all information for the regulators driver */
  105. struct da9063_regulators {
  106. int irq_ldo_lim;
  107. int irq_uvov;
  108. unsigned n_regulators;
  109. /* Array size to be defined during init. Keep at end. */
  110. struct da9063_regulator regulator[0];
  111. };
  112. /* BUCK modes for DA9063 */
  113. enum {
  114. BUCK_MODE_MANUAL, /* 0 */
  115. BUCK_MODE_SLEEP, /* 1 */
  116. BUCK_MODE_SYNC, /* 2 */
  117. BUCK_MODE_AUTO /* 3 */
  118. };
  119. /* Regulator operations */
  120. /* Current limits array (in uA) for BCORE1, BCORE2, BPRO.
  121. Entry indexes corresponds to register values. */
  122. static const int da9063_buck_a_limits[] = {
  123. 500000, 600000, 700000, 800000, 900000, 1000000, 1100000, 1200000,
  124. 1300000, 1400000, 1500000, 1600000, 1700000, 1800000, 1900000, 2000000
  125. };
  126. /* Current limits array (in uA) for BMEM, BIO, BPERI.
  127. Entry indexes corresponds to register values. */
  128. static const int da9063_buck_b_limits[] = {
  129. 1500000, 1600000, 1700000, 1800000, 1900000, 2000000, 2100000, 2200000,
  130. 2300000, 2400000, 2500000, 2600000, 2700000, 2800000, 2900000, 3000000
  131. };
  132. /* Current limits array (in uA) for merged BCORE1 and BCORE2.
  133. Entry indexes corresponds to register values. */
  134. static const int da9063_bcores_merged_limits[] = {
  135. 1000000, 1200000, 1400000, 1600000, 1800000, 2000000, 2200000, 2400000,
  136. 2600000, 2800000, 3000000, 3200000, 3400000, 3600000, 3800000, 4000000
  137. };
  138. /* Current limits array (in uA) for merged BMEM and BIO.
  139. Entry indexes corresponds to register values. */
  140. static const int da9063_bmem_bio_merged_limits[] = {
  141. 3000000, 3200000, 3400000, 3600000, 3800000, 4000000, 4200000, 4400000,
  142. 4600000, 4800000, 5000000, 5200000, 5400000, 5600000, 5800000, 6000000
  143. };
  144. static int da9063_set_current_limit(struct regulator_dev *rdev,
  145. int min_uA, int max_uA)
  146. {
  147. struct da9063_regulator *regl = rdev_get_drvdata(rdev);
  148. const struct da9063_regulator_info *rinfo = regl->info;
  149. int n, tval;
  150. for (n = 0; n < rinfo->n_current_limits; n++) {
  151. tval = rinfo->current_limits[n];
  152. if (tval >= min_uA && tval <= max_uA)
  153. return regmap_field_write(regl->ilimit, n);
  154. }
  155. return -EINVAL;
  156. }
  157. static int da9063_get_current_limit(struct regulator_dev *rdev)
  158. {
  159. struct da9063_regulator *regl = rdev_get_drvdata(rdev);
  160. const struct da9063_regulator_info *rinfo = regl->info;
  161. unsigned int sel;
  162. int ret;
  163. ret = regmap_field_read(regl->ilimit, &sel);
  164. if (ret < 0)
  165. return ret;
  166. if (sel >= rinfo->n_current_limits)
  167. sel = rinfo->n_current_limits - 1;
  168. return rinfo->current_limits[sel];
  169. }
  170. static int da9063_buck_set_mode(struct regulator_dev *rdev, unsigned mode)
  171. {
  172. struct da9063_regulator *regl = rdev_get_drvdata(rdev);
  173. unsigned val;
  174. switch (mode) {
  175. case REGULATOR_MODE_FAST:
  176. val = BUCK_MODE_SYNC;
  177. break;
  178. case REGULATOR_MODE_NORMAL:
  179. val = BUCK_MODE_AUTO;
  180. break;
  181. case REGULATOR_MODE_STANDBY:
  182. val = BUCK_MODE_SLEEP;
  183. break;
  184. default:
  185. return -EINVAL;
  186. }
  187. return regmap_field_write(regl->mode, val);
  188. }
  189. /*
  190. * Bucks use single mode register field for normal operation
  191. * and suspend state.
  192. * There are 3 modes to map to: FAST, NORMAL, and STANDBY.
  193. */
  194. static unsigned da9063_buck_get_mode(struct regulator_dev *rdev)
  195. {
  196. struct da9063_regulator *regl = rdev_get_drvdata(rdev);
  197. struct regmap_field *field;
  198. unsigned int val, mode = 0;
  199. int ret;
  200. ret = regmap_field_read(regl->mode, &val);
  201. if (ret < 0)
  202. return ret;
  203. switch (val) {
  204. default:
  205. case BUCK_MODE_MANUAL:
  206. mode = REGULATOR_MODE_FAST | REGULATOR_MODE_STANDBY;
  207. /* Sleep flag bit decides the mode */
  208. break;
  209. case BUCK_MODE_SLEEP:
  210. return REGULATOR_MODE_STANDBY;
  211. case BUCK_MODE_SYNC:
  212. return REGULATOR_MODE_FAST;
  213. case BUCK_MODE_AUTO:
  214. return REGULATOR_MODE_NORMAL;
  215. }
  216. /* Detect current regulator state */
  217. ret = regmap_field_read(regl->suspend, &val);
  218. if (ret < 0)
  219. return 0;
  220. /* Read regulator mode from proper register, depending on state */
  221. if (val)
  222. field = regl->suspend_sleep;
  223. else
  224. field = regl->sleep;
  225. ret = regmap_field_read(field, &val);
  226. if (ret < 0)
  227. return 0;
  228. if (val)
  229. mode &= REGULATOR_MODE_STANDBY;
  230. else
  231. mode &= REGULATOR_MODE_NORMAL | REGULATOR_MODE_FAST;
  232. return mode;
  233. }
  234. /*
  235. * LDOs use sleep flags - one for normal and one for suspend state.
  236. * There are 2 modes to map to: NORMAL and STANDBY (sleep) for each state.
  237. */
  238. static int da9063_ldo_set_mode(struct regulator_dev *rdev, unsigned mode)
  239. {
  240. struct da9063_regulator *regl = rdev_get_drvdata(rdev);
  241. unsigned val;
  242. switch (mode) {
  243. case REGULATOR_MODE_NORMAL:
  244. val = 0;
  245. break;
  246. case REGULATOR_MODE_STANDBY:
  247. val = 1;
  248. break;
  249. default:
  250. return -EINVAL;
  251. }
  252. return regmap_field_write(regl->sleep, val);
  253. }
  254. static unsigned da9063_ldo_get_mode(struct regulator_dev *rdev)
  255. {
  256. struct da9063_regulator *regl = rdev_get_drvdata(rdev);
  257. struct regmap_field *field;
  258. int ret, val;
  259. /* Detect current regulator state */
  260. ret = regmap_field_read(regl->suspend, &val);
  261. if (ret < 0)
  262. return 0;
  263. /* Read regulator mode from proper register, depending on state */
  264. if (val)
  265. field = regl->suspend_sleep;
  266. else
  267. field = regl->sleep;
  268. ret = regmap_field_read(field, &val);
  269. if (ret < 0)
  270. return 0;
  271. if (val)
  272. return REGULATOR_MODE_STANDBY;
  273. else
  274. return REGULATOR_MODE_NORMAL;
  275. }
  276. static int da9063_buck_get_status(struct regulator_dev *rdev)
  277. {
  278. int ret = regulator_is_enabled_regmap(rdev);
  279. if (ret == 0) {
  280. ret = REGULATOR_STATUS_OFF;
  281. } else if (ret > 0) {
  282. ret = da9063_buck_get_mode(rdev);
  283. if (ret > 0)
  284. ret = regulator_mode_to_status(ret);
  285. else if (ret == 0)
  286. ret = -EIO;
  287. }
  288. return ret;
  289. }
  290. static int da9063_ldo_get_status(struct regulator_dev *rdev)
  291. {
  292. int ret = regulator_is_enabled_regmap(rdev);
  293. if (ret == 0) {
  294. ret = REGULATOR_STATUS_OFF;
  295. } else if (ret > 0) {
  296. ret = da9063_ldo_get_mode(rdev);
  297. if (ret > 0)
  298. ret = regulator_mode_to_status(ret);
  299. else if (ret == 0)
  300. ret = -EIO;
  301. }
  302. return ret;
  303. }
  304. static int da9063_set_suspend_voltage(struct regulator_dev *rdev, int uV)
  305. {
  306. struct da9063_regulator *regl = rdev_get_drvdata(rdev);
  307. const struct da9063_regulator_info *rinfo = regl->info;
  308. int ret, sel;
  309. sel = regulator_map_voltage_linear(rdev, uV, uV);
  310. if (sel < 0)
  311. return sel;
  312. sel <<= ffs(rdev->desc->vsel_mask) - 1;
  313. ret = regmap_update_bits(regl->hw->regmap, rinfo->suspend_vsel_reg,
  314. rdev->desc->vsel_mask, sel);
  315. return ret;
  316. }
  317. static int da9063_suspend_enable(struct regulator_dev *rdev)
  318. {
  319. struct da9063_regulator *regl = rdev_get_drvdata(rdev);
  320. return regmap_field_write(regl->suspend, 1);
  321. }
  322. static int da9063_suspend_disable(struct regulator_dev *rdev)
  323. {
  324. struct da9063_regulator *regl = rdev_get_drvdata(rdev);
  325. return regmap_field_write(regl->suspend, 0);
  326. }
  327. static int da9063_buck_set_suspend_mode(struct regulator_dev *rdev, unsigned mode)
  328. {
  329. struct da9063_regulator *regl = rdev_get_drvdata(rdev);
  330. int val;
  331. switch (mode) {
  332. case REGULATOR_MODE_FAST:
  333. val = BUCK_MODE_SYNC;
  334. break;
  335. case REGULATOR_MODE_NORMAL:
  336. val = BUCK_MODE_AUTO;
  337. break;
  338. case REGULATOR_MODE_STANDBY:
  339. val = BUCK_MODE_SLEEP;
  340. break;
  341. default:
  342. return -EINVAL;
  343. }
  344. return regmap_field_write(regl->mode, val);
  345. }
  346. static int da9063_ldo_set_suspend_mode(struct regulator_dev *rdev, unsigned mode)
  347. {
  348. struct da9063_regulator *regl = rdev_get_drvdata(rdev);
  349. unsigned val;
  350. switch (mode) {
  351. case REGULATOR_MODE_NORMAL:
  352. val = 0;
  353. break;
  354. case REGULATOR_MODE_STANDBY:
  355. val = 1;
  356. break;
  357. default:
  358. return -EINVAL;
  359. }
  360. return regmap_field_write(regl->suspend_sleep, val);
  361. }
  362. static struct regulator_ops da9063_buck_ops = {
  363. .enable = regulator_enable_regmap,
  364. .disable = regulator_disable_regmap,
  365. .is_enabled = regulator_is_enabled_regmap,
  366. .get_voltage_sel = regulator_get_voltage_sel_regmap,
  367. .set_voltage_sel = regulator_set_voltage_sel_regmap,
  368. .list_voltage = regulator_list_voltage_linear,
  369. .set_current_limit = da9063_set_current_limit,
  370. .get_current_limit = da9063_get_current_limit,
  371. .set_mode = da9063_buck_set_mode,
  372. .get_mode = da9063_buck_get_mode,
  373. .get_status = da9063_buck_get_status,
  374. .set_suspend_voltage = da9063_set_suspend_voltage,
  375. .set_suspend_enable = da9063_suspend_enable,
  376. .set_suspend_disable = da9063_suspend_disable,
  377. .set_suspend_mode = da9063_buck_set_suspend_mode,
  378. };
  379. static struct regulator_ops da9063_ldo_ops = {
  380. .enable = regulator_enable_regmap,
  381. .disable = regulator_disable_regmap,
  382. .is_enabled = regulator_is_enabled_regmap,
  383. .get_voltage_sel = regulator_get_voltage_sel_regmap,
  384. .set_voltage_sel = regulator_set_voltage_sel_regmap,
  385. .list_voltage = regulator_list_voltage_linear,
  386. .set_mode = da9063_ldo_set_mode,
  387. .get_mode = da9063_ldo_get_mode,
  388. .get_status = da9063_ldo_get_status,
  389. .set_suspend_voltage = da9063_set_suspend_voltage,
  390. .set_suspend_enable = da9063_suspend_enable,
  391. .set_suspend_disable = da9063_suspend_disable,
  392. .set_suspend_mode = da9063_ldo_set_suspend_mode,
  393. };
  394. /* Info of regulators for DA9063 */
  395. static const struct da9063_regulator_info da9063_regulator_info[] = {
  396. {
  397. DA9063_BUCK(DA9063, BCORE1, 300, 10, 1570,
  398. da9063_buck_a_limits),
  399. DA9063_BUCK_COMMON_FIELDS(BCORE1),
  400. .suspend = BFIELD(DA9063_REG_DVC_1, DA9063_VBCORE1_SEL),
  401. .ilimit = BFIELD(DA9063_REG_BUCK_ILIM_C,
  402. DA9063_BCORE1_ILIM_MASK),
  403. },
  404. {
  405. DA9063_BUCK(DA9063, BCORE2, 300, 10, 1570,
  406. da9063_buck_a_limits),
  407. DA9063_BUCK_COMMON_FIELDS(BCORE2),
  408. .suspend = BFIELD(DA9063_REG_DVC_1, DA9063_VBCORE2_SEL),
  409. .ilimit = BFIELD(DA9063_REG_BUCK_ILIM_C,
  410. DA9063_BCORE2_ILIM_MASK),
  411. },
  412. {
  413. DA9063_BUCK(DA9063, BPRO, 530, 10, 1800,
  414. da9063_buck_a_limits),
  415. DA9063_BUCK_COMMON_FIELDS(BPRO),
  416. .suspend = BFIELD(DA9063_REG_DVC_1, DA9063_VBPRO_SEL),
  417. .ilimit = BFIELD(DA9063_REG_BUCK_ILIM_B,
  418. DA9063_BPRO_ILIM_MASK),
  419. },
  420. {
  421. DA9063_BUCK(DA9063, BMEM, 800, 20, 3340,
  422. da9063_buck_b_limits),
  423. DA9063_BUCK_COMMON_FIELDS(BMEM),
  424. .suspend = BFIELD(DA9063_REG_DVC_1, DA9063_VBMEM_SEL),
  425. .ilimit = BFIELD(DA9063_REG_BUCK_ILIM_A,
  426. DA9063_BMEM_ILIM_MASK),
  427. },
  428. {
  429. DA9063_BUCK(DA9063, BIO, 800, 20, 3340,
  430. da9063_buck_b_limits),
  431. DA9063_BUCK_COMMON_FIELDS(BIO),
  432. .suspend = BFIELD(DA9063_REG_DVC_2, DA9063_VBIO_SEL),
  433. .ilimit = BFIELD(DA9063_REG_BUCK_ILIM_A,
  434. DA9063_BIO_ILIM_MASK),
  435. },
  436. {
  437. DA9063_BUCK(DA9063, BPERI, 800, 20, 3340,
  438. da9063_buck_b_limits),
  439. DA9063_BUCK_COMMON_FIELDS(BPERI),
  440. .suspend = BFIELD(DA9063_REG_DVC_1, DA9063_VBPERI_SEL),
  441. .ilimit = BFIELD(DA9063_REG_BUCK_ILIM_B,
  442. DA9063_BPERI_ILIM_MASK),
  443. },
  444. {
  445. DA9063_BUCK(DA9063, BCORES_MERGED, 300, 10, 1570,
  446. da9063_bcores_merged_limits),
  447. /* BCORES_MERGED uses the same register fields as BCORE1 */
  448. DA9063_BUCK_COMMON_FIELDS(BCORE1),
  449. .suspend = BFIELD(DA9063_REG_DVC_1, DA9063_VBCORE1_SEL),
  450. .ilimit = BFIELD(DA9063_REG_BUCK_ILIM_C,
  451. DA9063_BCORE1_ILIM_MASK),
  452. },
  453. {
  454. DA9063_BUCK(DA9063, BMEM_BIO_MERGED, 800, 20, 3340,
  455. da9063_bmem_bio_merged_limits),
  456. /* BMEM_BIO_MERGED uses the same register fields as BMEM */
  457. DA9063_BUCK_COMMON_FIELDS(BMEM),
  458. .suspend = BFIELD(DA9063_REG_DVC_1, DA9063_VBMEM_SEL),
  459. .ilimit = BFIELD(DA9063_REG_BUCK_ILIM_A,
  460. DA9063_BMEM_ILIM_MASK),
  461. },
  462. {
  463. DA9063_LDO(DA9063, LDO1, 600, 20, 1860),
  464. .suspend = BFIELD(DA9063_REG_DVC_1, DA9063_VLDO1_SEL),
  465. },
  466. {
  467. DA9063_LDO(DA9063, LDO2, 600, 20, 1860),
  468. .suspend = BFIELD(DA9063_REG_DVC_1, DA9063_VLDO2_SEL),
  469. },
  470. {
  471. DA9063_LDO(DA9063, LDO3, 900, 20, 3440),
  472. .suspend = BFIELD(DA9063_REG_DVC_1, DA9063_VLDO3_SEL),
  473. .oc_event = BFIELD(DA9063_REG_STATUS_D, DA9063_LDO3_LIM),
  474. },
  475. {
  476. DA9063_LDO(DA9063, LDO4, 900, 20, 3440),
  477. .suspend = BFIELD(DA9063_REG_DVC_2, DA9063_VLDO4_SEL),
  478. .oc_event = BFIELD(DA9063_REG_STATUS_D, DA9063_LDO4_LIM),
  479. },
  480. {
  481. DA9063_LDO(DA9063, LDO5, 900, 50, 3600),
  482. .suspend = BFIELD(DA9063_REG_LDO5_CONT, DA9063_VLDO5_SEL),
  483. },
  484. {
  485. DA9063_LDO(DA9063, LDO6, 900, 50, 3600),
  486. .suspend = BFIELD(DA9063_REG_LDO6_CONT, DA9063_VLDO6_SEL),
  487. },
  488. {
  489. DA9063_LDO(DA9063, LDO7, 900, 50, 3600),
  490. .suspend = BFIELD(DA9063_REG_LDO7_CONT, DA9063_VLDO7_SEL),
  491. .oc_event = BFIELD(DA9063_REG_STATUS_D, DA9063_LDO7_LIM),
  492. },
  493. {
  494. DA9063_LDO(DA9063, LDO8, 900, 50, 3600),
  495. .suspend = BFIELD(DA9063_REG_LDO8_CONT, DA9063_VLDO8_SEL),
  496. .oc_event = BFIELD(DA9063_REG_STATUS_D, DA9063_LDO8_LIM),
  497. },
  498. {
  499. DA9063_LDO(DA9063, LDO9, 950, 50, 3600),
  500. .suspend = BFIELD(DA9063_REG_LDO9_CONT, DA9063_VLDO9_SEL),
  501. },
  502. {
  503. DA9063_LDO(DA9063, LDO10, 900, 50, 3600),
  504. .suspend = BFIELD(DA9063_REG_LDO10_CONT, DA9063_VLDO10_SEL),
  505. },
  506. {
  507. DA9063_LDO(DA9063, LDO11, 900, 50, 3600),
  508. .suspend = BFIELD(DA9063_REG_LDO11_CONT, DA9063_VLDO11_SEL),
  509. .oc_event = BFIELD(DA9063_REG_STATUS_D, DA9063_LDO11_LIM),
  510. },
  511. };
  512. /* Link chip model with regulators info table */
  513. static struct da9063_dev_model regulators_models[] = {
  514. {
  515. .regulator_info = da9063_regulator_info,
  516. .n_regulators = ARRAY_SIZE(da9063_regulator_info),
  517. .dev_model = PMIC_DA9063,
  518. },
  519. { }
  520. };
  521. /* Regulator interrupt handlers */
  522. static irqreturn_t da9063_ldo_lim_event(int irq, void *data)
  523. {
  524. struct da9063_regulators *regulators = data;
  525. struct da9063 *hw = regulators->regulator[0].hw;
  526. struct da9063_regulator *regl;
  527. int bits, i , ret;
  528. ret = regmap_read(hw->regmap, DA9063_REG_STATUS_D, &bits);
  529. if (ret < 0)
  530. return IRQ_NONE;
  531. for (i = regulators->n_regulators - 1; i >= 0; i--) {
  532. regl = &regulators->regulator[i];
  533. if (regl->info->oc_event.reg != DA9063_REG_STATUS_D)
  534. continue;
  535. if (BIT(regl->info->oc_event.lsb) & bits)
  536. regulator_notifier_call_chain(regl->rdev,
  537. REGULATOR_EVENT_OVER_CURRENT, NULL);
  538. }
  539. return IRQ_HANDLED;
  540. }
  541. /*
  542. * Probing and Initialisation functions
  543. */
  544. static const struct regulator_init_data *da9063_get_regulator_initdata(
  545. const struct da9063_regulators_pdata *regl_pdata, int id)
  546. {
  547. int i;
  548. for (i = 0; i < regl_pdata->n_regulators; i++) {
  549. if (id == regl_pdata->regulator_data[i].id)
  550. return regl_pdata->regulator_data[i].initdata;
  551. }
  552. return NULL;
  553. }
  554. #ifdef CONFIG_OF
  555. static struct of_regulator_match da9063_matches[] = {
  556. [DA9063_ID_BCORE1] = { .name = "bcore1" },
  557. [DA9063_ID_BCORE2] = { .name = "bcore2" },
  558. [DA9063_ID_BPRO] = { .name = "bpro", },
  559. [DA9063_ID_BMEM] = { .name = "bmem", },
  560. [DA9063_ID_BIO] = { .name = "bio", },
  561. [DA9063_ID_BPERI] = { .name = "bperi", },
  562. [DA9063_ID_BCORES_MERGED] = { .name = "bcores-merged" },
  563. [DA9063_ID_BMEM_BIO_MERGED] = { .name = "bmem-bio-merged", },
  564. [DA9063_ID_LDO1] = { .name = "ldo1", },
  565. [DA9063_ID_LDO2] = { .name = "ldo2", },
  566. [DA9063_ID_LDO3] = { .name = "ldo3", },
  567. [DA9063_ID_LDO4] = { .name = "ldo4", },
  568. [DA9063_ID_LDO5] = { .name = "ldo5", },
  569. [DA9063_ID_LDO6] = { .name = "ldo6", },
  570. [DA9063_ID_LDO7] = { .name = "ldo7", },
  571. [DA9063_ID_LDO8] = { .name = "ldo8", },
  572. [DA9063_ID_LDO9] = { .name = "ldo9", },
  573. [DA9063_ID_LDO10] = { .name = "ldo10", },
  574. [DA9063_ID_LDO11] = { .name = "ldo11", },
  575. };
  576. static struct da9063_regulators_pdata *da9063_parse_regulators_dt(
  577. struct platform_device *pdev,
  578. struct of_regulator_match **da9063_reg_matches)
  579. {
  580. struct da9063_regulators_pdata *pdata;
  581. struct da9063_regulator_data *rdata;
  582. struct device_node *node;
  583. int i, n, num;
  584. node = of_get_child_by_name(pdev->dev.parent->of_node, "regulators");
  585. if (!node) {
  586. dev_err(&pdev->dev, "Regulators device node not found\n");
  587. return ERR_PTR(-ENODEV);
  588. }
  589. num = of_regulator_match(&pdev->dev, node, da9063_matches,
  590. ARRAY_SIZE(da9063_matches));
  591. of_node_put(node);
  592. if (num < 0) {
  593. dev_err(&pdev->dev, "Failed to match regulators\n");
  594. return ERR_PTR(-EINVAL);
  595. }
  596. pdata = devm_kzalloc(&pdev->dev, sizeof(*pdata), GFP_KERNEL);
  597. if (!pdata)
  598. return ERR_PTR(-ENOMEM);
  599. pdata->regulator_data = devm_kzalloc(&pdev->dev,
  600. num * sizeof(*pdata->regulator_data),
  601. GFP_KERNEL);
  602. if (!pdata->regulator_data)
  603. return ERR_PTR(-ENOMEM);
  604. pdata->n_regulators = num;
  605. n = 0;
  606. for (i = 0; i < ARRAY_SIZE(da9063_matches); i++) {
  607. if (!da9063_matches[i].init_data)
  608. continue;
  609. rdata = &pdata->regulator_data[n];
  610. rdata->id = i;
  611. rdata->initdata = da9063_matches[i].init_data;
  612. n++;
  613. };
  614. *da9063_reg_matches = da9063_matches;
  615. return pdata;
  616. }
  617. #else
  618. static struct da9063_regulators_pdata *da9063_parse_regulators_dt(
  619. struct platform_device *pdev,
  620. struct of_regulator_match **da9063_reg_matches)
  621. {
  622. *da9063_reg_matches = NULL;
  623. return ERR_PTR(-ENODEV);
  624. }
  625. #endif
  626. static int da9063_regulator_probe(struct platform_device *pdev)
  627. {
  628. struct da9063 *da9063 = dev_get_drvdata(pdev->dev.parent);
  629. struct da9063_pdata *da9063_pdata = dev_get_platdata(da9063->dev);
  630. struct of_regulator_match *da9063_reg_matches = NULL;
  631. struct da9063_regulators_pdata *regl_pdata;
  632. const struct da9063_dev_model *model;
  633. struct da9063_regulators *regulators;
  634. struct da9063_regulator *regl;
  635. struct regulator_config config;
  636. bool bcores_merged, bmem_bio_merged;
  637. int id, irq, n, n_regulators, ret, val;
  638. size_t size;
  639. regl_pdata = da9063_pdata ? da9063_pdata->regulators_pdata : NULL;
  640. if (!regl_pdata)
  641. regl_pdata = da9063_parse_regulators_dt(pdev,
  642. &da9063_reg_matches);
  643. if (IS_ERR(regl_pdata) || regl_pdata->n_regulators == 0) {
  644. dev_err(&pdev->dev,
  645. "No regulators defined for the platform\n");
  646. return PTR_ERR(regl_pdata);
  647. }
  648. /* Find regulators set for particular device model */
  649. for (model = regulators_models; model->regulator_info; model++) {
  650. if (model->dev_model == da9063->model)
  651. break;
  652. }
  653. if (!model->regulator_info) {
  654. dev_err(&pdev->dev, "Chip model not recognised (%u)\n",
  655. da9063->model);
  656. return -ENODEV;
  657. }
  658. ret = regmap_read(da9063->regmap, DA9063_REG_CONFIG_H, &val);
  659. if (ret < 0) {
  660. dev_err(&pdev->dev,
  661. "Error while reading BUCKs configuration\n");
  662. return ret;
  663. }
  664. bcores_merged = val & DA9063_BCORE_MERGE;
  665. bmem_bio_merged = val & DA9063_BUCK_MERGE;
  666. n_regulators = model->n_regulators;
  667. if (bcores_merged)
  668. n_regulators -= 2; /* remove BCORE1, BCORE2 */
  669. else
  670. n_regulators--; /* remove BCORES_MERGED */
  671. if (bmem_bio_merged)
  672. n_regulators -= 2; /* remove BMEM, BIO */
  673. else
  674. n_regulators--; /* remove BMEM_BIO_MERGED */
  675. /* Allocate memory required by usable regulators */
  676. size = sizeof(struct da9063_regulators) +
  677. n_regulators * sizeof(struct da9063_regulator);
  678. regulators = devm_kzalloc(&pdev->dev, size, GFP_KERNEL);
  679. if (!regulators)
  680. return -ENOMEM;
  681. regulators->n_regulators = n_regulators;
  682. platform_set_drvdata(pdev, regulators);
  683. /* Register all regulators declared in platform information */
  684. n = 0;
  685. id = 0;
  686. while (n < regulators->n_regulators) {
  687. /* Skip regulator IDs depending on merge mode configuration */
  688. switch (id) {
  689. case DA9063_ID_BCORE1:
  690. case DA9063_ID_BCORE2:
  691. if (bcores_merged) {
  692. id++;
  693. continue;
  694. }
  695. break;
  696. case DA9063_ID_BMEM:
  697. case DA9063_ID_BIO:
  698. if (bmem_bio_merged) {
  699. id++;
  700. continue;
  701. }
  702. break;
  703. case DA9063_ID_BCORES_MERGED:
  704. if (!bcores_merged) {
  705. id++;
  706. continue;
  707. }
  708. break;
  709. case DA9063_ID_BMEM_BIO_MERGED:
  710. if (!bmem_bio_merged) {
  711. id++;
  712. continue;
  713. }
  714. break;
  715. }
  716. /* Initialise regulator structure */
  717. regl = &regulators->regulator[n];
  718. regl->hw = da9063;
  719. regl->info = &model->regulator_info[id];
  720. regl->desc = regl->info->desc;
  721. regl->desc.type = REGULATOR_VOLTAGE;
  722. regl->desc.owner = THIS_MODULE;
  723. if (regl->info->mode.reg)
  724. regl->mode = devm_regmap_field_alloc(&pdev->dev,
  725. da9063->regmap, regl->info->mode);
  726. if (regl->info->suspend.reg)
  727. regl->suspend = devm_regmap_field_alloc(&pdev->dev,
  728. da9063->regmap, regl->info->suspend);
  729. if (regl->info->sleep.reg)
  730. regl->sleep = devm_regmap_field_alloc(&pdev->dev,
  731. da9063->regmap, regl->info->sleep);
  732. if (regl->info->suspend_sleep.reg)
  733. regl->suspend_sleep = devm_regmap_field_alloc(&pdev->dev,
  734. da9063->regmap, regl->info->suspend_sleep);
  735. if (regl->info->ilimit.reg)
  736. regl->ilimit = devm_regmap_field_alloc(&pdev->dev,
  737. da9063->regmap, regl->info->ilimit);
  738. /* Register regulator */
  739. memset(&config, 0, sizeof(config));
  740. config.dev = &pdev->dev;
  741. config.init_data = da9063_get_regulator_initdata(regl_pdata, id);
  742. config.driver_data = regl;
  743. if (da9063_reg_matches)
  744. config.of_node = da9063_reg_matches[id].of_node;
  745. config.regmap = da9063->regmap;
  746. regl->rdev = devm_regulator_register(&pdev->dev, &regl->desc,
  747. &config);
  748. if (IS_ERR(regl->rdev)) {
  749. dev_err(&pdev->dev,
  750. "Failed to register %s regulator\n",
  751. regl->desc.name);
  752. return PTR_ERR(regl->rdev);
  753. }
  754. id++;
  755. n++;
  756. }
  757. /* LDOs overcurrent event support */
  758. irq = platform_get_irq_byname(pdev, "LDO_LIM");
  759. if (irq < 0) {
  760. dev_err(&pdev->dev, "Failed to get IRQ.\n");
  761. return irq;
  762. }
  763. regulators->irq_ldo_lim = regmap_irq_get_virq(da9063->regmap_irq, irq);
  764. if (regulators->irq_ldo_lim >= 0) {
  765. ret = request_threaded_irq(regulators->irq_ldo_lim,
  766. NULL, da9063_ldo_lim_event,
  767. IRQF_TRIGGER_LOW | IRQF_ONESHOT,
  768. "LDO_LIM", regulators);
  769. if (ret) {
  770. dev_err(&pdev->dev,
  771. "Failed to request LDO_LIM IRQ.\n");
  772. regulators->irq_ldo_lim = -ENXIO;
  773. }
  774. }
  775. return 0;
  776. }
  777. static int da9063_regulator_remove(struct platform_device *pdev)
  778. {
  779. struct da9063_regulators *regulators = platform_get_drvdata(pdev);
  780. free_irq(regulators->irq_ldo_lim, regulators);
  781. free_irq(regulators->irq_uvov, regulators);
  782. return 0;
  783. }
  784. static struct platform_driver da9063_regulator_driver = {
  785. .driver = {
  786. .name = DA9063_DRVNAME_REGULATORS,
  787. .owner = THIS_MODULE,
  788. },
  789. .probe = da9063_regulator_probe,
  790. .remove = da9063_regulator_remove,
  791. };
  792. static int __init da9063_regulator_init(void)
  793. {
  794. return platform_driver_register(&da9063_regulator_driver);
  795. }
  796. subsys_initcall(da9063_regulator_init);
  797. static void __exit da9063_regulator_cleanup(void)
  798. {
  799. platform_driver_unregister(&da9063_regulator_driver);
  800. }
  801. module_exit(da9063_regulator_cleanup);
  802. /* Module information */
  803. MODULE_AUTHOR("Krystian Garbaciak <krystian.garbaciak@diasemi.com>");
  804. MODULE_DESCRIPTION("DA9063 regulators driver");
  805. MODULE_LICENSE("GPL");
  806. MODULE_ALIAS("paltform:" DA9063_DRVNAME_REGULATORS);