axp20x.c 26 KB

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  1. /*
  2. * MFD core driver for the X-Powers' Power Management ICs
  3. *
  4. * AXP20x typically comprises an adaptive USB-Compatible PWM charger, BUCK DC-DC
  5. * converters, LDOs, multiple 12-bit ADCs of voltage, current and temperature
  6. * as well as configurable GPIOs.
  7. *
  8. * This file contains the interface independent core functions.
  9. *
  10. * Copyright (C) 2014 Carlo Caione
  11. *
  12. * Author: Carlo Caione <carlo@caione.org>
  13. *
  14. * This program is free software; you can redistribute it and/or modify
  15. * it under the terms of the GNU General Public License version 2 as
  16. * published by the Free Software Foundation.
  17. */
  18. #include <linux/err.h>
  19. #include <linux/delay.h>
  20. #include <linux/interrupt.h>
  21. #include <linux/kernel.h>
  22. #include <linux/module.h>
  23. #include <linux/pm_runtime.h>
  24. #include <linux/regmap.h>
  25. #include <linux/regulator/consumer.h>
  26. #include <linux/mfd/axp20x.h>
  27. #include <linux/mfd/core.h>
  28. #include <linux/of_device.h>
  29. #include <linux/acpi.h>
  30. #define AXP20X_OFF 0x80
  31. static const char * const axp20x_model_names[] = {
  32. "AXP152",
  33. "AXP202",
  34. "AXP209",
  35. "AXP221",
  36. "AXP223",
  37. "AXP288",
  38. "AXP806",
  39. "AXP809",
  40. };
  41. static const struct regmap_range axp152_writeable_ranges[] = {
  42. regmap_reg_range(AXP152_LDO3456_DC1234_CTRL, AXP152_IRQ3_STATE),
  43. regmap_reg_range(AXP152_DCDC_MODE, AXP152_PWM1_DUTY_CYCLE),
  44. };
  45. static const struct regmap_range axp152_volatile_ranges[] = {
  46. regmap_reg_range(AXP152_PWR_OP_MODE, AXP152_PWR_OP_MODE),
  47. regmap_reg_range(AXP152_IRQ1_EN, AXP152_IRQ3_STATE),
  48. regmap_reg_range(AXP152_GPIO_INPUT, AXP152_GPIO_INPUT),
  49. };
  50. static const struct regmap_access_table axp152_writeable_table = {
  51. .yes_ranges = axp152_writeable_ranges,
  52. .n_yes_ranges = ARRAY_SIZE(axp152_writeable_ranges),
  53. };
  54. static const struct regmap_access_table axp152_volatile_table = {
  55. .yes_ranges = axp152_volatile_ranges,
  56. .n_yes_ranges = ARRAY_SIZE(axp152_volatile_ranges),
  57. };
  58. static const struct regmap_range axp20x_writeable_ranges[] = {
  59. regmap_reg_range(AXP20X_DATACACHE(0), AXP20X_IRQ5_STATE),
  60. regmap_reg_range(AXP20X_DCDC_MODE, AXP20X_FG_RES),
  61. regmap_reg_range(AXP20X_RDC_H, AXP20X_OCV(AXP20X_OCV_MAX)),
  62. };
  63. static const struct regmap_range axp20x_volatile_ranges[] = {
  64. regmap_reg_range(AXP20X_PWR_INPUT_STATUS, AXP20X_USB_OTG_STATUS),
  65. regmap_reg_range(AXP20X_CHRG_CTRL1, AXP20X_CHRG_CTRL2),
  66. regmap_reg_range(AXP20X_IRQ1_EN, AXP20X_IRQ5_STATE),
  67. regmap_reg_range(AXP20X_ACIN_V_ADC_H, AXP20X_IPSOUT_V_HIGH_L),
  68. regmap_reg_range(AXP20X_GPIO20_SS, AXP20X_GPIO3_CTRL),
  69. regmap_reg_range(AXP20X_FG_RES, AXP20X_RDC_L),
  70. };
  71. static const struct regmap_access_table axp20x_writeable_table = {
  72. .yes_ranges = axp20x_writeable_ranges,
  73. .n_yes_ranges = ARRAY_SIZE(axp20x_writeable_ranges),
  74. };
  75. static const struct regmap_access_table axp20x_volatile_table = {
  76. .yes_ranges = axp20x_volatile_ranges,
  77. .n_yes_ranges = ARRAY_SIZE(axp20x_volatile_ranges),
  78. };
  79. /* AXP22x ranges are shared with the AXP809, as they cover the same range */
  80. static const struct regmap_range axp22x_writeable_ranges[] = {
  81. regmap_reg_range(AXP20X_DATACACHE(0), AXP20X_IRQ5_STATE),
  82. regmap_reg_range(AXP20X_DCDC_MODE, AXP22X_BATLOW_THRES1),
  83. };
  84. static const struct regmap_range axp22x_volatile_ranges[] = {
  85. regmap_reg_range(AXP20X_PWR_INPUT_STATUS, AXP20X_PWR_OP_MODE),
  86. regmap_reg_range(AXP20X_IRQ1_EN, AXP20X_IRQ5_STATE),
  87. regmap_reg_range(AXP22X_GPIO_STATE, AXP22X_GPIO_STATE),
  88. regmap_reg_range(AXP22X_PMIC_ADC_H, AXP20X_IPSOUT_V_HIGH_L),
  89. regmap_reg_range(AXP20X_FG_RES, AXP20X_FG_RES),
  90. };
  91. static const struct regmap_access_table axp22x_writeable_table = {
  92. .yes_ranges = axp22x_writeable_ranges,
  93. .n_yes_ranges = ARRAY_SIZE(axp22x_writeable_ranges),
  94. };
  95. static const struct regmap_access_table axp22x_volatile_table = {
  96. .yes_ranges = axp22x_volatile_ranges,
  97. .n_yes_ranges = ARRAY_SIZE(axp22x_volatile_ranges),
  98. };
  99. static const struct regmap_range axp288_writeable_ranges[] = {
  100. regmap_reg_range(AXP20X_DATACACHE(0), AXP20X_IRQ6_STATE),
  101. regmap_reg_range(AXP20X_DCDC_MODE, AXP288_FG_TUNE5),
  102. };
  103. static const struct regmap_range axp288_volatile_ranges[] = {
  104. regmap_reg_range(AXP20X_IRQ1_EN, AXP20X_IPSOUT_V_HIGH_L),
  105. };
  106. static const struct regmap_access_table axp288_writeable_table = {
  107. .yes_ranges = axp288_writeable_ranges,
  108. .n_yes_ranges = ARRAY_SIZE(axp288_writeable_ranges),
  109. };
  110. static const struct regmap_access_table axp288_volatile_table = {
  111. .yes_ranges = axp288_volatile_ranges,
  112. .n_yes_ranges = ARRAY_SIZE(axp288_volatile_ranges),
  113. };
  114. static const struct regmap_range axp806_writeable_ranges[] = {
  115. regmap_reg_range(AXP20X_DATACACHE(0), AXP20X_DATACACHE(3)),
  116. regmap_reg_range(AXP806_PWR_OUT_CTRL1, AXP806_CLDO3_V_CTRL),
  117. regmap_reg_range(AXP20X_IRQ1_EN, AXP20X_IRQ2_EN),
  118. regmap_reg_range(AXP20X_IRQ1_STATE, AXP20X_IRQ2_STATE),
  119. regmap_reg_range(AXP806_REG_ADDR_EXT, AXP806_REG_ADDR_EXT),
  120. };
  121. static const struct regmap_range axp806_volatile_ranges[] = {
  122. regmap_reg_range(AXP20X_IRQ1_STATE, AXP20X_IRQ2_STATE),
  123. };
  124. static const struct regmap_access_table axp806_writeable_table = {
  125. .yes_ranges = axp806_writeable_ranges,
  126. .n_yes_ranges = ARRAY_SIZE(axp806_writeable_ranges),
  127. };
  128. static const struct regmap_access_table axp806_volatile_table = {
  129. .yes_ranges = axp806_volatile_ranges,
  130. .n_yes_ranges = ARRAY_SIZE(axp806_volatile_ranges),
  131. };
  132. static struct resource axp152_pek_resources[] = {
  133. DEFINE_RES_IRQ_NAMED(AXP152_IRQ_PEK_RIS_EDGE, "PEK_DBR"),
  134. DEFINE_RES_IRQ_NAMED(AXP152_IRQ_PEK_FAL_EDGE, "PEK_DBF"),
  135. };
  136. static struct resource axp20x_ac_power_supply_resources[] = {
  137. DEFINE_RES_IRQ_NAMED(AXP20X_IRQ_ACIN_PLUGIN, "ACIN_PLUGIN"),
  138. DEFINE_RES_IRQ_NAMED(AXP20X_IRQ_ACIN_REMOVAL, "ACIN_REMOVAL"),
  139. DEFINE_RES_IRQ_NAMED(AXP20X_IRQ_ACIN_OVER_V, "ACIN_OVER_V"),
  140. };
  141. static struct resource axp20x_pek_resources[] = {
  142. {
  143. .name = "PEK_DBR",
  144. .start = AXP20X_IRQ_PEK_RIS_EDGE,
  145. .end = AXP20X_IRQ_PEK_RIS_EDGE,
  146. .flags = IORESOURCE_IRQ,
  147. }, {
  148. .name = "PEK_DBF",
  149. .start = AXP20X_IRQ_PEK_FAL_EDGE,
  150. .end = AXP20X_IRQ_PEK_FAL_EDGE,
  151. .flags = IORESOURCE_IRQ,
  152. },
  153. };
  154. static struct resource axp20x_usb_power_supply_resources[] = {
  155. DEFINE_RES_IRQ_NAMED(AXP20X_IRQ_VBUS_PLUGIN, "VBUS_PLUGIN"),
  156. DEFINE_RES_IRQ_NAMED(AXP20X_IRQ_VBUS_REMOVAL, "VBUS_REMOVAL"),
  157. DEFINE_RES_IRQ_NAMED(AXP20X_IRQ_VBUS_VALID, "VBUS_VALID"),
  158. DEFINE_RES_IRQ_NAMED(AXP20X_IRQ_VBUS_NOT_VALID, "VBUS_NOT_VALID"),
  159. };
  160. static struct resource axp22x_usb_power_supply_resources[] = {
  161. DEFINE_RES_IRQ_NAMED(AXP22X_IRQ_VBUS_PLUGIN, "VBUS_PLUGIN"),
  162. DEFINE_RES_IRQ_NAMED(AXP22X_IRQ_VBUS_REMOVAL, "VBUS_REMOVAL"),
  163. };
  164. static struct resource axp22x_pek_resources[] = {
  165. {
  166. .name = "PEK_DBR",
  167. .start = AXP22X_IRQ_PEK_RIS_EDGE,
  168. .end = AXP22X_IRQ_PEK_RIS_EDGE,
  169. .flags = IORESOURCE_IRQ,
  170. }, {
  171. .name = "PEK_DBF",
  172. .start = AXP22X_IRQ_PEK_FAL_EDGE,
  173. .end = AXP22X_IRQ_PEK_FAL_EDGE,
  174. .flags = IORESOURCE_IRQ,
  175. },
  176. };
  177. static struct resource axp288_power_button_resources[] = {
  178. {
  179. .name = "PEK_DBR",
  180. .start = AXP288_IRQ_POKN,
  181. .end = AXP288_IRQ_POKN,
  182. .flags = IORESOURCE_IRQ,
  183. },
  184. {
  185. .name = "PEK_DBF",
  186. .start = AXP288_IRQ_POKP,
  187. .end = AXP288_IRQ_POKP,
  188. .flags = IORESOURCE_IRQ,
  189. },
  190. };
  191. static struct resource axp288_fuel_gauge_resources[] = {
  192. {
  193. .start = AXP288_IRQ_QWBTU,
  194. .end = AXP288_IRQ_QWBTU,
  195. .flags = IORESOURCE_IRQ,
  196. },
  197. {
  198. .start = AXP288_IRQ_WBTU,
  199. .end = AXP288_IRQ_WBTU,
  200. .flags = IORESOURCE_IRQ,
  201. },
  202. {
  203. .start = AXP288_IRQ_QWBTO,
  204. .end = AXP288_IRQ_QWBTO,
  205. .flags = IORESOURCE_IRQ,
  206. },
  207. {
  208. .start = AXP288_IRQ_WBTO,
  209. .end = AXP288_IRQ_WBTO,
  210. .flags = IORESOURCE_IRQ,
  211. },
  212. {
  213. .start = AXP288_IRQ_WL2,
  214. .end = AXP288_IRQ_WL2,
  215. .flags = IORESOURCE_IRQ,
  216. },
  217. {
  218. .start = AXP288_IRQ_WL1,
  219. .end = AXP288_IRQ_WL1,
  220. .flags = IORESOURCE_IRQ,
  221. },
  222. };
  223. static struct resource axp809_pek_resources[] = {
  224. {
  225. .name = "PEK_DBR",
  226. .start = AXP809_IRQ_PEK_RIS_EDGE,
  227. .end = AXP809_IRQ_PEK_RIS_EDGE,
  228. .flags = IORESOURCE_IRQ,
  229. }, {
  230. .name = "PEK_DBF",
  231. .start = AXP809_IRQ_PEK_FAL_EDGE,
  232. .end = AXP809_IRQ_PEK_FAL_EDGE,
  233. .flags = IORESOURCE_IRQ,
  234. },
  235. };
  236. static const struct regmap_config axp152_regmap_config = {
  237. .reg_bits = 8,
  238. .val_bits = 8,
  239. .wr_table = &axp152_writeable_table,
  240. .volatile_table = &axp152_volatile_table,
  241. .max_register = AXP152_PWM1_DUTY_CYCLE,
  242. .cache_type = REGCACHE_RBTREE,
  243. };
  244. static const struct regmap_config axp20x_regmap_config = {
  245. .reg_bits = 8,
  246. .val_bits = 8,
  247. .wr_table = &axp20x_writeable_table,
  248. .volatile_table = &axp20x_volatile_table,
  249. .max_register = AXP20X_OCV(AXP20X_OCV_MAX),
  250. .cache_type = REGCACHE_RBTREE,
  251. };
  252. static const struct regmap_config axp22x_regmap_config = {
  253. .reg_bits = 8,
  254. .val_bits = 8,
  255. .wr_table = &axp22x_writeable_table,
  256. .volatile_table = &axp22x_volatile_table,
  257. .max_register = AXP22X_BATLOW_THRES1,
  258. .cache_type = REGCACHE_RBTREE,
  259. };
  260. static const struct regmap_config axp288_regmap_config = {
  261. .reg_bits = 8,
  262. .val_bits = 8,
  263. .wr_table = &axp288_writeable_table,
  264. .volatile_table = &axp288_volatile_table,
  265. .max_register = AXP288_FG_TUNE5,
  266. .cache_type = REGCACHE_RBTREE,
  267. };
  268. static const struct regmap_config axp806_regmap_config = {
  269. .reg_bits = 8,
  270. .val_bits = 8,
  271. .wr_table = &axp806_writeable_table,
  272. .volatile_table = &axp806_volatile_table,
  273. .max_register = AXP806_REG_ADDR_EXT,
  274. .cache_type = REGCACHE_RBTREE,
  275. };
  276. #define INIT_REGMAP_IRQ(_variant, _irq, _off, _mask) \
  277. [_variant##_IRQ_##_irq] = { .reg_offset = (_off), .mask = BIT(_mask) }
  278. static const struct regmap_irq axp152_regmap_irqs[] = {
  279. INIT_REGMAP_IRQ(AXP152, LDO0IN_CONNECT, 0, 6),
  280. INIT_REGMAP_IRQ(AXP152, LDO0IN_REMOVAL, 0, 5),
  281. INIT_REGMAP_IRQ(AXP152, ALDO0IN_CONNECT, 0, 3),
  282. INIT_REGMAP_IRQ(AXP152, ALDO0IN_REMOVAL, 0, 2),
  283. INIT_REGMAP_IRQ(AXP152, DCDC1_V_LOW, 1, 5),
  284. INIT_REGMAP_IRQ(AXP152, DCDC2_V_LOW, 1, 4),
  285. INIT_REGMAP_IRQ(AXP152, DCDC3_V_LOW, 1, 3),
  286. INIT_REGMAP_IRQ(AXP152, DCDC4_V_LOW, 1, 2),
  287. INIT_REGMAP_IRQ(AXP152, PEK_SHORT, 1, 1),
  288. INIT_REGMAP_IRQ(AXP152, PEK_LONG, 1, 0),
  289. INIT_REGMAP_IRQ(AXP152, TIMER, 2, 7),
  290. INIT_REGMAP_IRQ(AXP152, PEK_RIS_EDGE, 2, 6),
  291. INIT_REGMAP_IRQ(AXP152, PEK_FAL_EDGE, 2, 5),
  292. INIT_REGMAP_IRQ(AXP152, GPIO3_INPUT, 2, 3),
  293. INIT_REGMAP_IRQ(AXP152, GPIO2_INPUT, 2, 2),
  294. INIT_REGMAP_IRQ(AXP152, GPIO1_INPUT, 2, 1),
  295. INIT_REGMAP_IRQ(AXP152, GPIO0_INPUT, 2, 0),
  296. };
  297. static const struct regmap_irq axp20x_regmap_irqs[] = {
  298. INIT_REGMAP_IRQ(AXP20X, ACIN_OVER_V, 0, 7),
  299. INIT_REGMAP_IRQ(AXP20X, ACIN_PLUGIN, 0, 6),
  300. INIT_REGMAP_IRQ(AXP20X, ACIN_REMOVAL, 0, 5),
  301. INIT_REGMAP_IRQ(AXP20X, VBUS_OVER_V, 0, 4),
  302. INIT_REGMAP_IRQ(AXP20X, VBUS_PLUGIN, 0, 3),
  303. INIT_REGMAP_IRQ(AXP20X, VBUS_REMOVAL, 0, 2),
  304. INIT_REGMAP_IRQ(AXP20X, VBUS_V_LOW, 0, 1),
  305. INIT_REGMAP_IRQ(AXP20X, BATT_PLUGIN, 1, 7),
  306. INIT_REGMAP_IRQ(AXP20X, BATT_REMOVAL, 1, 6),
  307. INIT_REGMAP_IRQ(AXP20X, BATT_ENT_ACT_MODE, 1, 5),
  308. INIT_REGMAP_IRQ(AXP20X, BATT_EXIT_ACT_MODE, 1, 4),
  309. INIT_REGMAP_IRQ(AXP20X, CHARG, 1, 3),
  310. INIT_REGMAP_IRQ(AXP20X, CHARG_DONE, 1, 2),
  311. INIT_REGMAP_IRQ(AXP20X, BATT_TEMP_HIGH, 1, 1),
  312. INIT_REGMAP_IRQ(AXP20X, BATT_TEMP_LOW, 1, 0),
  313. INIT_REGMAP_IRQ(AXP20X, DIE_TEMP_HIGH, 2, 7),
  314. INIT_REGMAP_IRQ(AXP20X, CHARG_I_LOW, 2, 6),
  315. INIT_REGMAP_IRQ(AXP20X, DCDC1_V_LONG, 2, 5),
  316. INIT_REGMAP_IRQ(AXP20X, DCDC2_V_LONG, 2, 4),
  317. INIT_REGMAP_IRQ(AXP20X, DCDC3_V_LONG, 2, 3),
  318. INIT_REGMAP_IRQ(AXP20X, PEK_SHORT, 2, 1),
  319. INIT_REGMAP_IRQ(AXP20X, PEK_LONG, 2, 0),
  320. INIT_REGMAP_IRQ(AXP20X, N_OE_PWR_ON, 3, 7),
  321. INIT_REGMAP_IRQ(AXP20X, N_OE_PWR_OFF, 3, 6),
  322. INIT_REGMAP_IRQ(AXP20X, VBUS_VALID, 3, 5),
  323. INIT_REGMAP_IRQ(AXP20X, VBUS_NOT_VALID, 3, 4),
  324. INIT_REGMAP_IRQ(AXP20X, VBUS_SESS_VALID, 3, 3),
  325. INIT_REGMAP_IRQ(AXP20X, VBUS_SESS_END, 3, 2),
  326. INIT_REGMAP_IRQ(AXP20X, LOW_PWR_LVL1, 3, 1),
  327. INIT_REGMAP_IRQ(AXP20X, LOW_PWR_LVL2, 3, 0),
  328. INIT_REGMAP_IRQ(AXP20X, TIMER, 4, 7),
  329. INIT_REGMAP_IRQ(AXP20X, PEK_RIS_EDGE, 4, 6),
  330. INIT_REGMAP_IRQ(AXP20X, PEK_FAL_EDGE, 4, 5),
  331. INIT_REGMAP_IRQ(AXP20X, GPIO3_INPUT, 4, 3),
  332. INIT_REGMAP_IRQ(AXP20X, GPIO2_INPUT, 4, 2),
  333. INIT_REGMAP_IRQ(AXP20X, GPIO1_INPUT, 4, 1),
  334. INIT_REGMAP_IRQ(AXP20X, GPIO0_INPUT, 4, 0),
  335. };
  336. static const struct regmap_irq axp22x_regmap_irqs[] = {
  337. INIT_REGMAP_IRQ(AXP22X, ACIN_OVER_V, 0, 7),
  338. INIT_REGMAP_IRQ(AXP22X, ACIN_PLUGIN, 0, 6),
  339. INIT_REGMAP_IRQ(AXP22X, ACIN_REMOVAL, 0, 5),
  340. INIT_REGMAP_IRQ(AXP22X, VBUS_OVER_V, 0, 4),
  341. INIT_REGMAP_IRQ(AXP22X, VBUS_PLUGIN, 0, 3),
  342. INIT_REGMAP_IRQ(AXP22X, VBUS_REMOVAL, 0, 2),
  343. INIT_REGMAP_IRQ(AXP22X, VBUS_V_LOW, 0, 1),
  344. INIT_REGMAP_IRQ(AXP22X, BATT_PLUGIN, 1, 7),
  345. INIT_REGMAP_IRQ(AXP22X, BATT_REMOVAL, 1, 6),
  346. INIT_REGMAP_IRQ(AXP22X, BATT_ENT_ACT_MODE, 1, 5),
  347. INIT_REGMAP_IRQ(AXP22X, BATT_EXIT_ACT_MODE, 1, 4),
  348. INIT_REGMAP_IRQ(AXP22X, CHARG, 1, 3),
  349. INIT_REGMAP_IRQ(AXP22X, CHARG_DONE, 1, 2),
  350. INIT_REGMAP_IRQ(AXP22X, BATT_TEMP_HIGH, 1, 1),
  351. INIT_REGMAP_IRQ(AXP22X, BATT_TEMP_LOW, 1, 0),
  352. INIT_REGMAP_IRQ(AXP22X, DIE_TEMP_HIGH, 2, 7),
  353. INIT_REGMAP_IRQ(AXP22X, PEK_SHORT, 2, 1),
  354. INIT_REGMAP_IRQ(AXP22X, PEK_LONG, 2, 0),
  355. INIT_REGMAP_IRQ(AXP22X, LOW_PWR_LVL1, 3, 1),
  356. INIT_REGMAP_IRQ(AXP22X, LOW_PWR_LVL2, 3, 0),
  357. INIT_REGMAP_IRQ(AXP22X, TIMER, 4, 7),
  358. INIT_REGMAP_IRQ(AXP22X, PEK_RIS_EDGE, 4, 6),
  359. INIT_REGMAP_IRQ(AXP22X, PEK_FAL_EDGE, 4, 5),
  360. INIT_REGMAP_IRQ(AXP22X, GPIO1_INPUT, 4, 1),
  361. INIT_REGMAP_IRQ(AXP22X, GPIO0_INPUT, 4, 0),
  362. };
  363. /* some IRQs are compatible with axp20x models */
  364. static const struct regmap_irq axp288_regmap_irqs[] = {
  365. INIT_REGMAP_IRQ(AXP288, VBUS_FALL, 0, 2),
  366. INIT_REGMAP_IRQ(AXP288, VBUS_RISE, 0, 3),
  367. INIT_REGMAP_IRQ(AXP288, OV, 0, 4),
  368. INIT_REGMAP_IRQ(AXP288, DONE, 1, 2),
  369. INIT_REGMAP_IRQ(AXP288, CHARGING, 1, 3),
  370. INIT_REGMAP_IRQ(AXP288, SAFE_QUIT, 1, 4),
  371. INIT_REGMAP_IRQ(AXP288, SAFE_ENTER, 1, 5),
  372. INIT_REGMAP_IRQ(AXP288, ABSENT, 1, 6),
  373. INIT_REGMAP_IRQ(AXP288, APPEND, 1, 7),
  374. INIT_REGMAP_IRQ(AXP288, QWBTU, 2, 0),
  375. INIT_REGMAP_IRQ(AXP288, WBTU, 2, 1),
  376. INIT_REGMAP_IRQ(AXP288, QWBTO, 2, 2),
  377. INIT_REGMAP_IRQ(AXP288, WBTO, 2, 3),
  378. INIT_REGMAP_IRQ(AXP288, QCBTU, 2, 4),
  379. INIT_REGMAP_IRQ(AXP288, CBTU, 2, 5),
  380. INIT_REGMAP_IRQ(AXP288, QCBTO, 2, 6),
  381. INIT_REGMAP_IRQ(AXP288, CBTO, 2, 7),
  382. INIT_REGMAP_IRQ(AXP288, WL2, 3, 0),
  383. INIT_REGMAP_IRQ(AXP288, WL1, 3, 1),
  384. INIT_REGMAP_IRQ(AXP288, GPADC, 3, 2),
  385. INIT_REGMAP_IRQ(AXP288, OT, 3, 7),
  386. INIT_REGMAP_IRQ(AXP288, GPIO0, 4, 0),
  387. INIT_REGMAP_IRQ(AXP288, GPIO1, 4, 1),
  388. INIT_REGMAP_IRQ(AXP288, POKO, 4, 2),
  389. INIT_REGMAP_IRQ(AXP288, POKL, 4, 3),
  390. INIT_REGMAP_IRQ(AXP288, POKS, 4, 4),
  391. INIT_REGMAP_IRQ(AXP288, POKN, 4, 5),
  392. INIT_REGMAP_IRQ(AXP288, POKP, 4, 6),
  393. INIT_REGMAP_IRQ(AXP288, TIMER, 4, 7),
  394. INIT_REGMAP_IRQ(AXP288, MV_CHNG, 5, 0),
  395. INIT_REGMAP_IRQ(AXP288, BC_USB_CHNG, 5, 1),
  396. };
  397. static const struct regmap_irq axp806_regmap_irqs[] = {
  398. INIT_REGMAP_IRQ(AXP806, DIE_TEMP_HIGH_LV1, 0, 0),
  399. INIT_REGMAP_IRQ(AXP806, DIE_TEMP_HIGH_LV2, 0, 1),
  400. INIT_REGMAP_IRQ(AXP806, DCDCA_V_LOW, 0, 3),
  401. INIT_REGMAP_IRQ(AXP806, DCDCB_V_LOW, 0, 4),
  402. INIT_REGMAP_IRQ(AXP806, DCDCC_V_LOW, 0, 5),
  403. INIT_REGMAP_IRQ(AXP806, DCDCD_V_LOW, 0, 6),
  404. INIT_REGMAP_IRQ(AXP806, DCDCE_V_LOW, 0, 7),
  405. INIT_REGMAP_IRQ(AXP806, PWROK_LONG, 1, 0),
  406. INIT_REGMAP_IRQ(AXP806, PWROK_SHORT, 1, 1),
  407. INIT_REGMAP_IRQ(AXP806, WAKEUP, 1, 4),
  408. INIT_REGMAP_IRQ(AXP806, PWROK_FALL, 1, 5),
  409. INIT_REGMAP_IRQ(AXP806, PWROK_RISE, 1, 6),
  410. };
  411. static const struct regmap_irq axp809_regmap_irqs[] = {
  412. INIT_REGMAP_IRQ(AXP809, ACIN_OVER_V, 0, 7),
  413. INIT_REGMAP_IRQ(AXP809, ACIN_PLUGIN, 0, 6),
  414. INIT_REGMAP_IRQ(AXP809, ACIN_REMOVAL, 0, 5),
  415. INIT_REGMAP_IRQ(AXP809, VBUS_OVER_V, 0, 4),
  416. INIT_REGMAP_IRQ(AXP809, VBUS_PLUGIN, 0, 3),
  417. INIT_REGMAP_IRQ(AXP809, VBUS_REMOVAL, 0, 2),
  418. INIT_REGMAP_IRQ(AXP809, VBUS_V_LOW, 0, 1),
  419. INIT_REGMAP_IRQ(AXP809, BATT_PLUGIN, 1, 7),
  420. INIT_REGMAP_IRQ(AXP809, BATT_REMOVAL, 1, 6),
  421. INIT_REGMAP_IRQ(AXP809, BATT_ENT_ACT_MODE, 1, 5),
  422. INIT_REGMAP_IRQ(AXP809, BATT_EXIT_ACT_MODE, 1, 4),
  423. INIT_REGMAP_IRQ(AXP809, CHARG, 1, 3),
  424. INIT_REGMAP_IRQ(AXP809, CHARG_DONE, 1, 2),
  425. INIT_REGMAP_IRQ(AXP809, BATT_CHG_TEMP_HIGH, 2, 7),
  426. INIT_REGMAP_IRQ(AXP809, BATT_CHG_TEMP_HIGH_END, 2, 6),
  427. INIT_REGMAP_IRQ(AXP809, BATT_CHG_TEMP_LOW, 2, 5),
  428. INIT_REGMAP_IRQ(AXP809, BATT_CHG_TEMP_LOW_END, 2, 4),
  429. INIT_REGMAP_IRQ(AXP809, BATT_ACT_TEMP_HIGH, 2, 3),
  430. INIT_REGMAP_IRQ(AXP809, BATT_ACT_TEMP_HIGH_END, 2, 2),
  431. INIT_REGMAP_IRQ(AXP809, BATT_ACT_TEMP_LOW, 2, 1),
  432. INIT_REGMAP_IRQ(AXP809, BATT_ACT_TEMP_LOW_END, 2, 0),
  433. INIT_REGMAP_IRQ(AXP809, DIE_TEMP_HIGH, 3, 7),
  434. INIT_REGMAP_IRQ(AXP809, LOW_PWR_LVL1, 3, 1),
  435. INIT_REGMAP_IRQ(AXP809, LOW_PWR_LVL2, 3, 0),
  436. INIT_REGMAP_IRQ(AXP809, TIMER, 4, 7),
  437. INIT_REGMAP_IRQ(AXP809, PEK_RIS_EDGE, 4, 6),
  438. INIT_REGMAP_IRQ(AXP809, PEK_FAL_EDGE, 4, 5),
  439. INIT_REGMAP_IRQ(AXP809, PEK_SHORT, 4, 4),
  440. INIT_REGMAP_IRQ(AXP809, PEK_LONG, 4, 3),
  441. INIT_REGMAP_IRQ(AXP809, PEK_OVER_OFF, 4, 2),
  442. INIT_REGMAP_IRQ(AXP809, GPIO1_INPUT, 4, 1),
  443. INIT_REGMAP_IRQ(AXP809, GPIO0_INPUT, 4, 0),
  444. };
  445. static const struct regmap_irq_chip axp152_regmap_irq_chip = {
  446. .name = "axp152_irq_chip",
  447. .status_base = AXP152_IRQ1_STATE,
  448. .ack_base = AXP152_IRQ1_STATE,
  449. .mask_base = AXP152_IRQ1_EN,
  450. .mask_invert = true,
  451. .init_ack_masked = true,
  452. .irqs = axp152_regmap_irqs,
  453. .num_irqs = ARRAY_SIZE(axp152_regmap_irqs),
  454. .num_regs = 3,
  455. };
  456. static const struct regmap_irq_chip axp20x_regmap_irq_chip = {
  457. .name = "axp20x_irq_chip",
  458. .status_base = AXP20X_IRQ1_STATE,
  459. .ack_base = AXP20X_IRQ1_STATE,
  460. .mask_base = AXP20X_IRQ1_EN,
  461. .mask_invert = true,
  462. .init_ack_masked = true,
  463. .irqs = axp20x_regmap_irqs,
  464. .num_irqs = ARRAY_SIZE(axp20x_regmap_irqs),
  465. .num_regs = 5,
  466. };
  467. static const struct regmap_irq_chip axp22x_regmap_irq_chip = {
  468. .name = "axp22x_irq_chip",
  469. .status_base = AXP20X_IRQ1_STATE,
  470. .ack_base = AXP20X_IRQ1_STATE,
  471. .mask_base = AXP20X_IRQ1_EN,
  472. .mask_invert = true,
  473. .init_ack_masked = true,
  474. .irqs = axp22x_regmap_irqs,
  475. .num_irqs = ARRAY_SIZE(axp22x_regmap_irqs),
  476. .num_regs = 5,
  477. };
  478. static const struct regmap_irq_chip axp288_regmap_irq_chip = {
  479. .name = "axp288_irq_chip",
  480. .status_base = AXP20X_IRQ1_STATE,
  481. .ack_base = AXP20X_IRQ1_STATE,
  482. .mask_base = AXP20X_IRQ1_EN,
  483. .mask_invert = true,
  484. .init_ack_masked = true,
  485. .irqs = axp288_regmap_irqs,
  486. .num_irqs = ARRAY_SIZE(axp288_regmap_irqs),
  487. .num_regs = 6,
  488. };
  489. static const struct regmap_irq_chip axp806_regmap_irq_chip = {
  490. .name = "axp806",
  491. .status_base = AXP20X_IRQ1_STATE,
  492. .ack_base = AXP20X_IRQ1_STATE,
  493. .mask_base = AXP20X_IRQ1_EN,
  494. .mask_invert = true,
  495. .init_ack_masked = true,
  496. .irqs = axp806_regmap_irqs,
  497. .num_irqs = ARRAY_SIZE(axp806_regmap_irqs),
  498. .num_regs = 2,
  499. };
  500. static const struct regmap_irq_chip axp809_regmap_irq_chip = {
  501. .name = "axp809",
  502. .status_base = AXP20X_IRQ1_STATE,
  503. .ack_base = AXP20X_IRQ1_STATE,
  504. .mask_base = AXP20X_IRQ1_EN,
  505. .mask_invert = true,
  506. .init_ack_masked = true,
  507. .irqs = axp809_regmap_irqs,
  508. .num_irqs = ARRAY_SIZE(axp809_regmap_irqs),
  509. .num_regs = 5,
  510. };
  511. static struct mfd_cell axp20x_cells[] = {
  512. {
  513. .name = "axp20x-gpio",
  514. .of_compatible = "x-powers,axp209-gpio",
  515. }, {
  516. .name = "axp20x-pek",
  517. .num_resources = ARRAY_SIZE(axp20x_pek_resources),
  518. .resources = axp20x_pek_resources,
  519. }, {
  520. .name = "axp20x-regulator",
  521. }, {
  522. .name = "axp20x-ac-power-supply",
  523. .of_compatible = "x-powers,axp202-ac-power-supply",
  524. .num_resources = ARRAY_SIZE(axp20x_ac_power_supply_resources),
  525. .resources = axp20x_ac_power_supply_resources,
  526. }, {
  527. .name = "axp20x-usb-power-supply",
  528. .of_compatible = "x-powers,axp202-usb-power-supply",
  529. .num_resources = ARRAY_SIZE(axp20x_usb_power_supply_resources),
  530. .resources = axp20x_usb_power_supply_resources,
  531. },
  532. };
  533. static struct mfd_cell axp22x_cells[] = {
  534. {
  535. .name = "axp20x-pek",
  536. .num_resources = ARRAY_SIZE(axp22x_pek_resources),
  537. .resources = axp22x_pek_resources,
  538. }, {
  539. .name = "axp20x-regulator",
  540. }, {
  541. .name = "axp20x-usb-power-supply",
  542. .of_compatible = "x-powers,axp221-usb-power-supply",
  543. .num_resources = ARRAY_SIZE(axp22x_usb_power_supply_resources),
  544. .resources = axp22x_usb_power_supply_resources,
  545. },
  546. };
  547. static struct mfd_cell axp152_cells[] = {
  548. {
  549. .name = "axp20x-pek",
  550. .num_resources = ARRAY_SIZE(axp152_pek_resources),
  551. .resources = axp152_pek_resources,
  552. },
  553. };
  554. static struct resource axp288_adc_resources[] = {
  555. {
  556. .name = "GPADC",
  557. .start = AXP288_IRQ_GPADC,
  558. .end = AXP288_IRQ_GPADC,
  559. .flags = IORESOURCE_IRQ,
  560. },
  561. };
  562. static struct resource axp288_extcon_resources[] = {
  563. {
  564. .start = AXP288_IRQ_VBUS_FALL,
  565. .end = AXP288_IRQ_VBUS_FALL,
  566. .flags = IORESOURCE_IRQ,
  567. },
  568. {
  569. .start = AXP288_IRQ_VBUS_RISE,
  570. .end = AXP288_IRQ_VBUS_RISE,
  571. .flags = IORESOURCE_IRQ,
  572. },
  573. {
  574. .start = AXP288_IRQ_MV_CHNG,
  575. .end = AXP288_IRQ_MV_CHNG,
  576. .flags = IORESOURCE_IRQ,
  577. },
  578. {
  579. .start = AXP288_IRQ_BC_USB_CHNG,
  580. .end = AXP288_IRQ_BC_USB_CHNG,
  581. .flags = IORESOURCE_IRQ,
  582. },
  583. };
  584. static struct resource axp288_charger_resources[] = {
  585. {
  586. .start = AXP288_IRQ_OV,
  587. .end = AXP288_IRQ_OV,
  588. .flags = IORESOURCE_IRQ,
  589. },
  590. {
  591. .start = AXP288_IRQ_DONE,
  592. .end = AXP288_IRQ_DONE,
  593. .flags = IORESOURCE_IRQ,
  594. },
  595. {
  596. .start = AXP288_IRQ_CHARGING,
  597. .end = AXP288_IRQ_CHARGING,
  598. .flags = IORESOURCE_IRQ,
  599. },
  600. {
  601. .start = AXP288_IRQ_SAFE_QUIT,
  602. .end = AXP288_IRQ_SAFE_QUIT,
  603. .flags = IORESOURCE_IRQ,
  604. },
  605. {
  606. .start = AXP288_IRQ_SAFE_ENTER,
  607. .end = AXP288_IRQ_SAFE_ENTER,
  608. .flags = IORESOURCE_IRQ,
  609. },
  610. {
  611. .start = AXP288_IRQ_QCBTU,
  612. .end = AXP288_IRQ_QCBTU,
  613. .flags = IORESOURCE_IRQ,
  614. },
  615. {
  616. .start = AXP288_IRQ_CBTU,
  617. .end = AXP288_IRQ_CBTU,
  618. .flags = IORESOURCE_IRQ,
  619. },
  620. {
  621. .start = AXP288_IRQ_QCBTO,
  622. .end = AXP288_IRQ_QCBTO,
  623. .flags = IORESOURCE_IRQ,
  624. },
  625. {
  626. .start = AXP288_IRQ_CBTO,
  627. .end = AXP288_IRQ_CBTO,
  628. .flags = IORESOURCE_IRQ,
  629. },
  630. };
  631. static struct mfd_cell axp288_cells[] = {
  632. {
  633. .name = "axp288_adc",
  634. .num_resources = ARRAY_SIZE(axp288_adc_resources),
  635. .resources = axp288_adc_resources,
  636. },
  637. {
  638. .name = "axp288_extcon",
  639. .num_resources = ARRAY_SIZE(axp288_extcon_resources),
  640. .resources = axp288_extcon_resources,
  641. },
  642. {
  643. .name = "axp288_charger",
  644. .num_resources = ARRAY_SIZE(axp288_charger_resources),
  645. .resources = axp288_charger_resources,
  646. },
  647. {
  648. .name = "axp288_fuel_gauge",
  649. .num_resources = ARRAY_SIZE(axp288_fuel_gauge_resources),
  650. .resources = axp288_fuel_gauge_resources,
  651. },
  652. {
  653. .name = "axp20x-pek",
  654. .num_resources = ARRAY_SIZE(axp288_power_button_resources),
  655. .resources = axp288_power_button_resources,
  656. },
  657. {
  658. .name = "axp288_pmic_acpi",
  659. },
  660. };
  661. static struct mfd_cell axp806_cells[] = {
  662. {
  663. .id = 2,
  664. .name = "axp20x-regulator",
  665. },
  666. };
  667. static struct mfd_cell axp809_cells[] = {
  668. {
  669. .name = "axp20x-pek",
  670. .num_resources = ARRAY_SIZE(axp809_pek_resources),
  671. .resources = axp809_pek_resources,
  672. }, {
  673. .id = 1,
  674. .name = "axp20x-regulator",
  675. },
  676. };
  677. static struct axp20x_dev *axp20x_pm_power_off;
  678. static void axp20x_power_off(void)
  679. {
  680. if (axp20x_pm_power_off->variant == AXP288_ID)
  681. return;
  682. regmap_write(axp20x_pm_power_off->regmap, AXP20X_OFF_CTRL,
  683. AXP20X_OFF);
  684. /* Give capacitors etc. time to drain to avoid kernel panic msg. */
  685. msleep(500);
  686. }
  687. int axp20x_match_device(struct axp20x_dev *axp20x)
  688. {
  689. struct device *dev = axp20x->dev;
  690. const struct acpi_device_id *acpi_id;
  691. const struct of_device_id *of_id;
  692. if (dev->of_node) {
  693. of_id = of_match_device(dev->driver->of_match_table, dev);
  694. if (!of_id) {
  695. dev_err(dev, "Unable to match OF ID\n");
  696. return -ENODEV;
  697. }
  698. axp20x->variant = (long)of_id->data;
  699. } else {
  700. acpi_id = acpi_match_device(dev->driver->acpi_match_table, dev);
  701. if (!acpi_id || !acpi_id->driver_data) {
  702. dev_err(dev, "Unable to match ACPI ID and data\n");
  703. return -ENODEV;
  704. }
  705. axp20x->variant = (long)acpi_id->driver_data;
  706. }
  707. switch (axp20x->variant) {
  708. case AXP152_ID:
  709. axp20x->nr_cells = ARRAY_SIZE(axp152_cells);
  710. axp20x->cells = axp152_cells;
  711. axp20x->regmap_cfg = &axp152_regmap_config;
  712. axp20x->regmap_irq_chip = &axp152_regmap_irq_chip;
  713. break;
  714. case AXP202_ID:
  715. case AXP209_ID:
  716. axp20x->nr_cells = ARRAY_SIZE(axp20x_cells);
  717. axp20x->cells = axp20x_cells;
  718. axp20x->regmap_cfg = &axp20x_regmap_config;
  719. axp20x->regmap_irq_chip = &axp20x_regmap_irq_chip;
  720. break;
  721. case AXP221_ID:
  722. case AXP223_ID:
  723. axp20x->nr_cells = ARRAY_SIZE(axp22x_cells);
  724. axp20x->cells = axp22x_cells;
  725. axp20x->regmap_cfg = &axp22x_regmap_config;
  726. axp20x->regmap_irq_chip = &axp22x_regmap_irq_chip;
  727. break;
  728. case AXP288_ID:
  729. axp20x->cells = axp288_cells;
  730. axp20x->nr_cells = ARRAY_SIZE(axp288_cells);
  731. axp20x->regmap_cfg = &axp288_regmap_config;
  732. axp20x->regmap_irq_chip = &axp288_regmap_irq_chip;
  733. break;
  734. case AXP806_ID:
  735. axp20x->nr_cells = ARRAY_SIZE(axp806_cells);
  736. axp20x->cells = axp806_cells;
  737. axp20x->regmap_cfg = &axp806_regmap_config;
  738. axp20x->regmap_irq_chip = &axp806_regmap_irq_chip;
  739. break;
  740. case AXP809_ID:
  741. axp20x->nr_cells = ARRAY_SIZE(axp809_cells);
  742. axp20x->cells = axp809_cells;
  743. axp20x->regmap_cfg = &axp22x_regmap_config;
  744. axp20x->regmap_irq_chip = &axp809_regmap_irq_chip;
  745. break;
  746. default:
  747. dev_err(dev, "unsupported AXP20X ID %lu\n", axp20x->variant);
  748. return -EINVAL;
  749. }
  750. dev_info(dev, "AXP20x variant %s found\n",
  751. axp20x_model_names[axp20x->variant]);
  752. return 0;
  753. }
  754. EXPORT_SYMBOL(axp20x_match_device);
  755. int axp20x_device_probe(struct axp20x_dev *axp20x)
  756. {
  757. int ret;
  758. ret = regmap_add_irq_chip(axp20x->regmap, axp20x->irq,
  759. IRQF_ONESHOT | IRQF_SHARED, -1,
  760. axp20x->regmap_irq_chip,
  761. &axp20x->regmap_irqc);
  762. if (ret) {
  763. dev_err(axp20x->dev, "failed to add irq chip: %d\n", ret);
  764. return ret;
  765. }
  766. ret = mfd_add_devices(axp20x->dev, -1, axp20x->cells,
  767. axp20x->nr_cells, NULL, 0, NULL);
  768. if (ret) {
  769. dev_err(axp20x->dev, "failed to add MFD devices: %d\n", ret);
  770. regmap_del_irq_chip(axp20x->irq, axp20x->regmap_irqc);
  771. return ret;
  772. }
  773. if (!pm_power_off) {
  774. axp20x_pm_power_off = axp20x;
  775. pm_power_off = axp20x_power_off;
  776. }
  777. dev_info(axp20x->dev, "AXP20X driver loaded\n");
  778. return 0;
  779. }
  780. EXPORT_SYMBOL(axp20x_device_probe);
  781. int axp20x_device_remove(struct axp20x_dev *axp20x)
  782. {
  783. if (axp20x == axp20x_pm_power_off) {
  784. axp20x_pm_power_off = NULL;
  785. pm_power_off = NULL;
  786. }
  787. mfd_remove_devices(axp20x->dev);
  788. regmap_del_irq_chip(axp20x->irq, axp20x->regmap_irqc);
  789. return 0;
  790. }
  791. EXPORT_SYMBOL(axp20x_device_remove);
  792. MODULE_DESCRIPTION("PMIC MFD core driver for AXP20X");
  793. MODULE_AUTHOR("Carlo Caione <carlo@caione.org>");
  794. MODULE_LICENSE("GPL");