xref: /freebsd/sys/arm/allwinner/axp81x.c (revision 0957b409)
1 /*-
2  * Copyright (c) 2018 Emmanuel Vadot <manu@freebsd.org>
3  * Copyright (c) 2016 Jared McNeill <jmcneill@invisible.ca>
4  * All rights reserved.
5  *
6  * Redistribution and use in source and binary forms, with or without
7  * modification, are permitted provided that the following conditions
8  * are met:
9  * 1. Redistributions of source code must retain the above copyright
10  *    notice, this list of conditions and the following disclaimer.
11  * 2. Redistributions in binary form must reproduce the above copyright
12  *    notice, this list of conditions and the following disclaimer in the
13  *    documentation and/or other materials provided with the distribution.
14  *
15  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
16  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
17  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
18  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
19  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
20  * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
21  * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
22  * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
23  * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
24  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
25  * SUCH DAMAGE.
26  *
27  * $FreeBSD$
28  */
29 
30 /*
31  * X-Powers AXP803/813/818 PMU for Allwinner SoCs
32  */
33 
34 #include <sys/cdefs.h>
35 __FBSDID("$FreeBSD$");
36 
37 #include <sys/param.h>
38 #include <sys/systm.h>
39 #include <sys/eventhandler.h>
40 #include <sys/bus.h>
41 #include <sys/rman.h>
42 #include <sys/kernel.h>
43 #include <sys/reboot.h>
44 #include <sys/gpio.h>
45 #include <sys/module.h>
46 #include <machine/bus.h>
47 
48 #include <dev/iicbus/iicbus.h>
49 #include <dev/iicbus/iiconf.h>
50 
51 #include <dev/gpio/gpiobusvar.h>
52 
53 #include <dev/ofw/ofw_bus.h>
54 #include <dev/ofw/ofw_bus_subr.h>
55 
56 #include <dev/extres/regulator/regulator.h>
57 
58 #include "gpio_if.h"
59 #include "iicbus_if.h"
60 #include "regdev_if.h"
61 
62 MALLOC_DEFINE(M_AXP8XX_REG, "AXP8xx regulator", "AXP8xx power regulator");
63 
64 #define	AXP_POWERSRC		0x00
65 #define	 AXP_POWERSRC_ACIN	(1 << 7)
66 #define	 AXP_POWERSRC_VBUS	(1 << 5)
67 #define	 AXP_POWERSRC_VBAT	(1 << 3)
68 #define	 AXP_POWERSRC_CHARING	(1 << 2)	/* Charging Direction */
69 #define	 AXP_POWERSRC_SHORTED	(1 << 1)
70 #define	 AXP_POWERSRC_STARTUP	(1 << 0)
71 #define	AXP_POWERMODE		0x01
72 #define	 AXP_POWERMODE_BAT_CHARGING	(1 << 6)
73 #define	 AXP_POWERMODE_BAT_PRESENT	(1 << 5)
74 #define	 AXP_POWERMODE_BAT_VALID	(1 << 4)
75 #define	AXP_ICTYPE		0x03
76 #define	AXP_POWERCTL1		0x10
77 #define	 AXP_POWERCTL1_DCDC7	(1 << 6)	/* AXP813/818 only */
78 #define	 AXP_POWERCTL1_DCDC6	(1 << 5)
79 #define	 AXP_POWERCTL1_DCDC5	(1 << 4)
80 #define	 AXP_POWERCTL1_DCDC4	(1 << 3)
81 #define	 AXP_POWERCTL1_DCDC3	(1 << 2)
82 #define	 AXP_POWERCTL1_DCDC2	(1 << 1)
83 #define	 AXP_POWERCTL1_DCDC1	(1 << 0)
84 #define	AXP_POWERCTL2		0x12
85 #define	 AXP_POWERCTL2_DC1SW	(1 << 7)	/* AXP803 only */
86 #define	 AXP_POWERCTL2_DLDO4	(1 << 6)
87 #define	 AXP_POWERCTL2_DLDO3	(1 << 5)
88 #define	 AXP_POWERCTL2_DLDO2	(1 << 4)
89 #define	 AXP_POWERCTL2_DLDO1	(1 << 3)
90 #define	 AXP_POWERCTL2_ELDO3	(1 << 2)
91 #define	 AXP_POWERCTL2_ELDO2	(1 << 1)
92 #define	 AXP_POWERCTL2_ELDO1	(1 << 0)
93 #define	AXP_POWERCTL3		0x13
94 #define	 AXP_POWERCTL3_ALDO3	(1 << 7)
95 #define	 AXP_POWERCTL3_ALDO2	(1 << 6)
96 #define	 AXP_POWERCTL3_ALDO1	(1 << 5)
97 #define	 AXP_POWERCTL3_FLDO3	(1 << 4)	/* AXP813/818 only */
98 #define	 AXP_POWERCTL3_FLDO2	(1 << 3)
99 #define	 AXP_POWERCTL3_FLDO1	(1 << 2)
100 #define	AXP_VOLTCTL_DLDO1	0x15
101 #define	AXP_VOLTCTL_DLDO2	0x16
102 #define	AXP_VOLTCTL_DLDO3	0x17
103 #define	AXP_VOLTCTL_DLDO4	0x18
104 #define	AXP_VOLTCTL_ELDO1	0x19
105 #define	AXP_VOLTCTL_ELDO2	0x1A
106 #define	AXP_VOLTCTL_ELDO3	0x1B
107 #define	AXP_VOLTCTL_FLDO1	0x1C
108 #define	AXP_VOLTCTL_FLDO2	0x1D
109 #define	AXP_VOLTCTL_DCDC1	0x20
110 #define	AXP_VOLTCTL_DCDC2	0x21
111 #define	AXP_VOLTCTL_DCDC3	0x22
112 #define	AXP_VOLTCTL_DCDC4	0x23
113 #define	AXP_VOLTCTL_DCDC5	0x24
114 #define	AXP_VOLTCTL_DCDC6	0x25
115 #define	AXP_VOLTCTL_DCDC7	0x26
116 #define	AXP_VOLTCTL_ALDO1	0x28
117 #define	AXP_VOLTCTL_ALDO2	0x29
118 #define	AXP_VOLTCTL_ALDO3	0x2A
119 #define	 AXP_VOLTCTL_STATUS	(1 << 7)
120 #define	 AXP_VOLTCTL_MASK	0x7f
121 #define	AXP_POWERBAT		0x32
122 #define	 AXP_POWERBAT_SHUTDOWN	(1 << 7)
123 #define	AXP_CHARGERCTL1		0x33
124 #define	 AXP_CHARGERCTL1_MIN	0
125 #define	 AXP_CHARGERCTL1_MAX	13
126 #define	 AXP_CHARGERCTL1_CMASK	0xf
127 #define	AXP_IRQEN1		0x40
128 #define	 AXP_IRQEN1_ACIN_HI	(1 << 6)
129 #define	 AXP_IRQEN1_ACIN_LO	(1 << 5)
130 #define	 AXP_IRQEN1_VBUS_HI	(1 << 3)
131 #define	 AXP_IRQEN1_VBUS_LO	(1 << 2)
132 #define	AXP_IRQEN2		0x41
133 #define	 AXP_IRQEN2_BAT_IN	(1 << 7)
134 #define	 AXP_IRQEN2_BAT_NO	(1 << 6)
135 #define	 AXP_IRQEN2_BATCHGC	(1 << 3)
136 #define	 AXP_IRQEN2_BATCHGD	(1 << 2)
137 #define	AXP_IRQEN3		0x42
138 #define	AXP_IRQEN4		0x43
139 #define	 AXP_IRQEN4_BATLVL_LO1	(1 << 1)
140 #define	 AXP_IRQEN4_BATLVL_LO0	(1 << 0)
141 #define	AXP_IRQEN5		0x44
142 #define	 AXP_IRQEN5_POKSIRQ	(1 << 4)
143 #define	 AXP_IRQEN5_POKLIRQ	(1 << 3)
144 #define	AXP_IRQEN6		0x45
145 #define	AXP_IRQSTAT1		0x48
146 #define	 AXP_IRQSTAT1_ACIN_HI	(1 << 6)
147 #define	 AXP_IRQSTAT1_ACIN_LO	(1 << 5)
148 #define	 AXP_IRQSTAT1_VBUS_HI	(1 << 3)
149 #define	 AXP_IRQSTAT1_VBUS_LO	(1 << 2)
150 #define	AXP_IRQSTAT2		0x49
151 #define	 AXP_IRQSTAT2_BAT_IN	(1 << 7)
152 #define	 AXP_IRQSTAT2_BAT_NO	(1 << 6)
153 #define	 AXP_IRQSTAT2_BATCHGC	(1 << 3)
154 #define	 AXP_IRQSTAT2_BATCHGD	(1 << 2)
155 #define	AXP_IRQSTAT3		0x4a
156 #define	AXP_IRQSTAT4		0x4b
157 #define	 AXP_IRQSTAT4_BATLVL_LO1	(1 << 1)
158 #define	 AXP_IRQSTAT4_BATLVL_LO0	(1 << 0)
159 #define	AXP_IRQSTAT5		0x4c
160 #define	 AXP_IRQSTAT5_POKSIRQ	(1 << 4)
161 #define	 AXP_IRQEN5_POKLIRQ	(1 << 3)
162 #define	AXP_IRQSTAT6		0x4d
163 #define	AXP_BATSENSE_HI		0x78
164 #define	AXP_BATSENSE_LO		0x79
165 #define	AXP_BATCHG_HI		0x7a
166 #define	AXP_BATCHG_LO		0x7b
167 #define	AXP_BATDISCHG_HI	0x7c
168 #define	AXP_BATDISCHG_LO	0x7d
169 #define	AXP_GPIO0_CTRL		0x90
170 #define	AXP_GPIO0LDO_CTRL	0x91
171 #define	AXP_GPIO1_CTRL		0x92
172 #define	AXP_GPIO1LDO_CTRL	0x93
173 #define	 AXP_GPIO_FUNC		(0x7 << 0)
174 #define	 AXP_GPIO_FUNC_SHIFT	0
175 #define	 AXP_GPIO_FUNC_DRVLO	0
176 #define	 AXP_GPIO_FUNC_DRVHI	1
177 #define	 AXP_GPIO_FUNC_INPUT	2
178 #define	 AXP_GPIO_FUNC_LDO_ON	3
179 #define	 AXP_GPIO_FUNC_LDO_OFF	4
180 #define	AXP_GPIO_SIGBIT		0x94
181 #define	AXP_GPIO_PD		0x97
182 #define	AXP_FUEL_GAUGECTL	0xb8
183 #define	 AXP_FUEL_GAUGECTL_EN	(1 << 7)
184 
185 #define	AXP_BAT_CAP		0xb9
186 #define	 AXP_BAT_CAP_VALID	(1 << 7)
187 #define	 AXP_BAT_CAP_PERCENT	0x7f
188 
189 #define	AXP_BAT_MAX_CAP_HI	0xe0
190 #define	 AXP_BAT_MAX_CAP_VALID	(1 << 7)
191 #define	AXP_BAT_MAX_CAP_LO	0xe1
192 
193 #define	AXP_BAT_COULOMB_HI	0xe2
194 #define	 AXP_BAT_COULOMB_VALID	(1 << 7)
195 #define	AXP_BAT_COULOMB_LO	0xe3
196 
197 #define	AXP_BAT_CAP_WARN	0xe6
198 #define	 AXP_BAT_CAP_WARN_LV1		0xf0	/* Bits 4, 5, 6, 7 */
199 #define	 AXP_BAP_CAP_WARN_LV1BASE	5	/* 5-20%, 1% per step */
200 #define	 AXP_BAT_CAP_WARN_LV2		0xf	/* Bits 0, 1, 2, 3 */
201 
202 /* Sensor conversion macros */
203 #define	AXP_SENSOR_BAT_H(hi)		((hi) << 4)
204 #define	AXP_SENSOR_BAT_L(lo)		((lo) & 0xf)
205 #define	AXP_SENSOR_COULOMB(hi, lo)	(((hi & ~(1 << 7)) << 8) | (lo))
206 
207 static const struct {
208 	const char *name;
209 	uint8_t	ctrl_reg;
210 } axp8xx_pins[] = {
211 	{ "GPIO0", AXP_GPIO0_CTRL },
212 	{ "GPIO1", AXP_GPIO1_CTRL },
213 };
214 
215 enum AXP8XX_TYPE {
216 	AXP803 = 1,
217 	AXP813,
218 };
219 
220 static struct ofw_compat_data compat_data[] = {
221 	{ "x-powers,axp803",			AXP803 },
222 	{ "x-powers,axp813",			AXP813 },
223 	{ "x-powers,axp818",			AXP813 },
224 	{ NULL,					0 }
225 };
226 
227 static struct resource_spec axp8xx_spec[] = {
228 	{ SYS_RES_IRQ,		0,	RF_ACTIVE },
229 	{ -1, 0 }
230 };
231 
232 struct axp8xx_regdef {
233 	intptr_t		id;
234 	char			*name;
235 	char			*supply_name;
236 	uint8_t			enable_reg;
237 	uint8_t			enable_mask;
238 	uint8_t			enable_value;
239 	uint8_t			disable_value;
240 	uint8_t			voltage_reg;
241 	int			voltage_min;
242 	int			voltage_max;
243 	int			voltage_step1;
244 	int			voltage_nstep1;
245 	int			voltage_step2;
246 	int			voltage_nstep2;
247 };
248 
249 enum axp8xx_reg_id {
250 	AXP8XX_REG_ID_DCDC1 = 100,
251 	AXP8XX_REG_ID_DCDC2,
252 	AXP8XX_REG_ID_DCDC3,
253 	AXP8XX_REG_ID_DCDC4,
254 	AXP8XX_REG_ID_DCDC5,
255 	AXP8XX_REG_ID_DCDC6,
256 	AXP813_REG_ID_DCDC7,
257 	AXP803_REG_ID_DC1SW,
258 	AXP8XX_REG_ID_DLDO1,
259 	AXP8XX_REG_ID_DLDO2,
260 	AXP8XX_REG_ID_DLDO3,
261 	AXP8XX_REG_ID_DLDO4,
262 	AXP8XX_REG_ID_ELDO1,
263 	AXP8XX_REG_ID_ELDO2,
264 	AXP8XX_REG_ID_ELDO3,
265 	AXP8XX_REG_ID_ALDO1,
266 	AXP8XX_REG_ID_ALDO2,
267 	AXP8XX_REG_ID_ALDO3,
268 	AXP8XX_REG_ID_FLDO1,
269 	AXP8XX_REG_ID_FLDO2,
270 	AXP813_REG_ID_FLDO3,
271 	AXP8XX_REG_ID_GPIO0_LDO,
272 	AXP8XX_REG_ID_GPIO1_LDO,
273 };
274 
275 static struct axp8xx_regdef axp803_regdefs[] = {
276 	{
277 		.id = AXP803_REG_ID_DC1SW,
278 		.name = "dc1sw",
279 		.enable_reg = AXP_POWERCTL2,
280 		.enable_mask = (uint8_t) AXP_POWERCTL2_DC1SW,
281 		.enable_value = AXP_POWERCTL2_DC1SW,
282 	},
283 };
284 
285 static struct axp8xx_regdef axp813_regdefs[] = {
286 	{
287 		.id = AXP813_REG_ID_DCDC7,
288 		.name = "dcdc7",
289 		.enable_reg = AXP_POWERCTL1,
290 		.enable_mask = (uint8_t) AXP_POWERCTL1_DCDC7,
291 		.enable_value = AXP_POWERCTL1_DCDC7,
292 		.voltage_reg = AXP_VOLTCTL_DCDC7,
293 		.voltage_min = 600,
294 		.voltage_max = 1520,
295 		.voltage_step1 = 10,
296 		.voltage_nstep1 = 50,
297 		.voltage_step2 = 20,
298 		.voltage_nstep2 = 21,
299 	},
300 };
301 
302 static struct axp8xx_regdef axp8xx_common_regdefs[] = {
303 	{
304 		.id = AXP8XX_REG_ID_DCDC1,
305 		.name = "dcdc1",
306 		.enable_reg = AXP_POWERCTL1,
307 		.enable_mask = (uint8_t) AXP_POWERCTL1_DCDC1,
308 		.enable_value = AXP_POWERCTL1_DCDC1,
309 		.voltage_reg = AXP_VOLTCTL_DCDC1,
310 		.voltage_min = 1600,
311 		.voltage_max = 3400,
312 		.voltage_step1 = 100,
313 		.voltage_nstep1 = 18,
314 	},
315 	{
316 		.id = AXP8XX_REG_ID_DCDC2,
317 		.name = "dcdc2",
318 		.enable_reg = AXP_POWERCTL1,
319 		.enable_mask = (uint8_t) AXP_POWERCTL1_DCDC2,
320 		.enable_value = AXP_POWERCTL1_DCDC2,
321 		.voltage_reg = AXP_VOLTCTL_DCDC2,
322 		.voltage_min = 500,
323 		.voltage_max = 1300,
324 		.voltage_step1 = 10,
325 		.voltage_nstep1 = 70,
326 		.voltage_step2 = 20,
327 		.voltage_nstep2 = 5,
328 	},
329 	{
330 		.id = AXP8XX_REG_ID_DCDC3,
331 		.name = "dcdc3",
332 		.enable_reg = AXP_POWERCTL1,
333 		.enable_mask = (uint8_t) AXP_POWERCTL1_DCDC3,
334 		.enable_value = AXP_POWERCTL1_DCDC3,
335 		.voltage_reg = AXP_VOLTCTL_DCDC3,
336 		.voltage_min = 500,
337 		.voltage_max = 1300,
338 		.voltage_step1 = 10,
339 		.voltage_nstep1 = 70,
340 		.voltage_step2 = 20,
341 		.voltage_nstep2 = 5,
342 	},
343 	{
344 		.id = AXP8XX_REG_ID_DCDC4,
345 		.name = "dcdc4",
346 		.enable_reg = AXP_POWERCTL1,
347 		.enable_mask = (uint8_t) AXP_POWERCTL1_DCDC4,
348 		.enable_value = AXP_POWERCTL1_DCDC4,
349 		.voltage_reg = AXP_VOLTCTL_DCDC4,
350 		.voltage_min = 500,
351 		.voltage_max = 1300,
352 		.voltage_step1 = 10,
353 		.voltage_nstep1 = 70,
354 		.voltage_step2 = 20,
355 		.voltage_nstep2 = 5,
356 	},
357 	{
358 		.id = AXP8XX_REG_ID_DCDC5,
359 		.name = "dcdc5",
360 		.enable_reg = AXP_POWERCTL1,
361 		.enable_mask = (uint8_t) AXP_POWERCTL1_DCDC5,
362 		.enable_value = AXP_POWERCTL1_DCDC5,
363 		.voltage_reg = AXP_VOLTCTL_DCDC5,
364 		.voltage_min = 800,
365 		.voltage_max = 1840,
366 		.voltage_step1 = 10,
367 		.voltage_nstep1 = 42,
368 		.voltage_step2 = 20,
369 		.voltage_nstep2 = 36,
370 	},
371 	{
372 		.id = AXP8XX_REG_ID_DCDC6,
373 		.name = "dcdc6",
374 		.enable_reg = AXP_POWERCTL1,
375 		.enable_mask = (uint8_t) AXP_POWERCTL1_DCDC6,
376 		.enable_value = AXP_POWERCTL1_DCDC6,
377 		.voltage_reg = AXP_VOLTCTL_DCDC6,
378 		.voltage_min = 600,
379 		.voltage_max = 1520,
380 		.voltage_step1 = 10,
381 		.voltage_nstep1 = 50,
382 		.voltage_step2 = 20,
383 		.voltage_nstep2 = 21,
384 	},
385 	{
386 		.id = AXP8XX_REG_ID_DLDO1,
387 		.name = "dldo1",
388 		.enable_reg = AXP_POWERCTL2,
389 		.enable_mask = (uint8_t) AXP_POWERCTL2_DLDO1,
390 		.enable_value = AXP_POWERCTL2_DLDO1,
391 		.voltage_reg = AXP_VOLTCTL_DLDO1,
392 		.voltage_min = 700,
393 		.voltage_max = 3300,
394 		.voltage_step1 = 100,
395 		.voltage_nstep1 = 26,
396 	},
397 	{
398 		.id = AXP8XX_REG_ID_DLDO2,
399 		.name = "dldo2",
400 		.enable_reg = AXP_POWERCTL2,
401 		.enable_mask = (uint8_t) AXP_POWERCTL2_DLDO2,
402 		.enable_value = AXP_POWERCTL2_DLDO2,
403 		.voltage_reg = AXP_VOLTCTL_DLDO2,
404 		.voltage_min = 700,
405 		.voltage_max = 4200,
406 		.voltage_step1 = 100,
407 		.voltage_nstep1 = 27,
408 		.voltage_step2 = 200,
409 		.voltage_nstep2 = 4,
410 	},
411 	{
412 		.id = AXP8XX_REG_ID_DLDO3,
413 		.name = "dldo3",
414 		.enable_reg = AXP_POWERCTL2,
415 		.enable_mask = (uint8_t) AXP_POWERCTL2_DLDO3,
416 		.enable_value = AXP_POWERCTL2_DLDO3,
417 		.voltage_reg = AXP_VOLTCTL_DLDO3,
418 		.voltage_min = 700,
419 		.voltage_max = 3300,
420 		.voltage_step1 = 100,
421 		.voltage_nstep1 = 26,
422 	},
423 	{
424 		.id = AXP8XX_REG_ID_DLDO4,
425 		.name = "dldo4",
426 		.enable_reg = AXP_POWERCTL2,
427 		.enable_mask = (uint8_t) AXP_POWERCTL2_DLDO4,
428 		.enable_value = AXP_POWERCTL2_DLDO4,
429 		.voltage_reg = AXP_VOLTCTL_DLDO4,
430 		.voltage_min = 700,
431 		.voltage_max = 3300,
432 		.voltage_step1 = 100,
433 		.voltage_nstep1 = 26,
434 	},
435 	{
436 		.id = AXP8XX_REG_ID_ALDO1,
437 		.name = "aldo1",
438 		.enable_reg = AXP_POWERCTL3,
439 		.enable_mask = (uint8_t) AXP_POWERCTL3_ALDO1,
440 		.enable_value = AXP_POWERCTL3_ALDO1,
441 		.voltage_min = 700,
442 		.voltage_max = 3300,
443 		.voltage_step1 = 100,
444 		.voltage_nstep1 = 26,
445 	},
446 	{
447 		.id = AXP8XX_REG_ID_ALDO2,
448 		.name = "aldo2",
449 		.enable_reg = AXP_POWERCTL3,
450 		.enable_mask = (uint8_t) AXP_POWERCTL3_ALDO2,
451 		.enable_value = AXP_POWERCTL3_ALDO2,
452 		.voltage_min = 700,
453 		.voltage_max = 3300,
454 		.voltage_step1 = 100,
455 		.voltage_nstep1 = 26,
456 	},
457 	{
458 		.id = AXP8XX_REG_ID_ALDO3,
459 		.name = "aldo3",
460 		.enable_reg = AXP_POWERCTL3,
461 		.enable_mask = (uint8_t) AXP_POWERCTL3_ALDO3,
462 		.enable_value = AXP_POWERCTL3_ALDO3,
463 		.voltage_min = 700,
464 		.voltage_max = 3300,
465 		.voltage_step1 = 100,
466 		.voltage_nstep1 = 26,
467 	},
468 	{
469 		.id = AXP8XX_REG_ID_ELDO1,
470 		.name = "eldo1",
471 		.enable_reg = AXP_POWERCTL2,
472 		.enable_mask = (uint8_t) AXP_POWERCTL2_ELDO1,
473 		.enable_value = AXP_POWERCTL2_ELDO1,
474 		.voltage_min = 700,
475 		.voltage_max = 1900,
476 		.voltage_step1 = 50,
477 		.voltage_nstep1 = 24,
478 	},
479 	{
480 		.id = AXP8XX_REG_ID_ELDO2,
481 		.name = "eldo2",
482 		.enable_reg = AXP_POWERCTL2,
483 		.enable_mask = (uint8_t) AXP_POWERCTL2_ELDO2,
484 		.enable_value = AXP_POWERCTL2_ELDO2,
485 		.voltage_min = 700,
486 		.voltage_max = 1900,
487 		.voltage_step1 = 50,
488 		.voltage_nstep1 = 24,
489 	},
490 	{
491 		.id = AXP8XX_REG_ID_ELDO3,
492 		.name = "eldo3",
493 		.enable_reg = AXP_POWERCTL2,
494 		.enable_mask = (uint8_t) AXP_POWERCTL2_ELDO3,
495 		.enable_value = AXP_POWERCTL2_ELDO3,
496 		.voltage_min = 700,
497 		.voltage_max = 1900,
498 		.voltage_step1 = 50,
499 		.voltage_nstep1 = 24,
500 	},
501 	{
502 		.id = AXP8XX_REG_ID_FLDO1,
503 		.name = "fldo1",
504 		.enable_reg = AXP_POWERCTL3,
505 		.enable_mask = (uint8_t) AXP_POWERCTL3_FLDO1,
506 		.enable_value = AXP_POWERCTL3_FLDO1,
507 		.voltage_min = 700,
508 		.voltage_max = 1450,
509 		.voltage_step1 = 50,
510 		.voltage_nstep1 = 15,
511 	},
512 	{
513 		.id = AXP8XX_REG_ID_FLDO2,
514 		.name = "fldo2",
515 		.enable_reg = AXP_POWERCTL3,
516 		.enable_mask = (uint8_t) AXP_POWERCTL3_FLDO2,
517 		.enable_value = AXP_POWERCTL3_FLDO2,
518 		.voltage_min = 700,
519 		.voltage_max = 1450,
520 		.voltage_step1 = 50,
521 		.voltage_nstep1 = 15,
522 	},
523 	{
524 		.id = AXP8XX_REG_ID_GPIO0_LDO,
525 		.name = "ldo-io0",
526 		.enable_reg = AXP_GPIO0_CTRL,
527 		.enable_mask = (uint8_t) AXP_GPIO_FUNC,
528 		.enable_value = AXP_GPIO_FUNC_LDO_ON,
529 		.disable_value = AXP_GPIO_FUNC_LDO_OFF,
530 		.voltage_reg = AXP_GPIO0LDO_CTRL,
531 		.voltage_min = 700,
532 		.voltage_max = 3300,
533 		.voltage_step1 = 100,
534 		.voltage_nstep1 = 26,
535 	},
536 	{
537 		.id = AXP8XX_REG_ID_GPIO1_LDO,
538 		.name = "ldo-io1",
539 		.enable_reg = AXP_GPIO1_CTRL,
540 		.enable_mask = (uint8_t) AXP_GPIO_FUNC,
541 		.enable_value = AXP_GPIO_FUNC_LDO_ON,
542 		.disable_value = AXP_GPIO_FUNC_LDO_OFF,
543 		.voltage_reg = AXP_GPIO1LDO_CTRL,
544 		.voltage_min = 700,
545 		.voltage_max = 3300,
546 		.voltage_step1 = 100,
547 		.voltage_nstep1 = 26,
548 	},
549 };
550 
551 enum axp8xx_sensor {
552 	AXP_SENSOR_ACIN_PRESENT,
553 	AXP_SENSOR_VBUS_PRESENT,
554 	AXP_SENSOR_BATT_PRESENT,
555 	AXP_SENSOR_BATT_CHARGING,
556 	AXP_SENSOR_BATT_CHARGE_STATE,
557 	AXP_SENSOR_BATT_VOLTAGE,
558 	AXP_SENSOR_BATT_CHARGE_CURRENT,
559 	AXP_SENSOR_BATT_DISCHARGE_CURRENT,
560 	AXP_SENSOR_BATT_CAPACITY_PERCENT,
561 	AXP_SENSOR_BATT_MAXIMUM_CAPACITY,
562 	AXP_SENSOR_BATT_CURRENT_CAPACITY,
563 };
564 
565 enum battery_capacity_state {
566 	BATT_CAPACITY_NORMAL = 1,	/* normal cap in battery */
567 	BATT_CAPACITY_WARNING,		/* warning cap in battery */
568 	BATT_CAPACITY_CRITICAL,		/* critical cap in battery */
569 	BATT_CAPACITY_HIGH,		/* high cap in battery */
570 	BATT_CAPACITY_MAX,		/* maximum cap in battery */
571 	BATT_CAPACITY_LOW		/* low cap in battery */
572 };
573 
574 struct axp8xx_sensors {
575 	int             id;
576 	const char      *name;
577 	const char      *desc;
578 	const char      *format;
579 };
580 
581 static const struct axp8xx_sensors axp8xx_common_sensors[] = {
582 	{
583 		.id = AXP_SENSOR_ACIN_PRESENT,
584 		.name = "acin",
585 		.format = "I",
586 		.desc = "ACIN Present",
587 	},
588 	{
589 		.id = AXP_SENSOR_VBUS_PRESENT,
590 		.name = "vbus",
591 		.format = "I",
592 		.desc = "VBUS Present",
593 	},
594 	{
595 		.id = AXP_SENSOR_BATT_PRESENT,
596 		.name = "bat",
597 		.format = "I",
598 		.desc = "Battery Present",
599 	},
600 	{
601 		.id = AXP_SENSOR_BATT_CHARGING,
602 		.name = "batcharging",
603 		.format = "I",
604 		.desc = "Battery Charging",
605 	},
606 	{
607 		.id = AXP_SENSOR_BATT_CHARGE_STATE,
608 		.name = "batchargestate",
609 		.format = "I",
610 		.desc = "Battery Charge State",
611 	},
612 	{
613 		.id = AXP_SENSOR_BATT_VOLTAGE,
614 		.name = "batvolt",
615 		.format = "I",
616 		.desc = "Battery Voltage",
617 	},
618 	{
619 		.id = AXP_SENSOR_BATT_CHARGE_CURRENT,
620 		.name = "batchargecurrent",
621 		.format = "I",
622 		.desc = "Average Battery Charging Current",
623 	},
624 	{
625 		.id = AXP_SENSOR_BATT_DISCHARGE_CURRENT,
626 		.name = "batdischargecurrent",
627 		.format = "I",
628 		.desc = "Average Battery Discharging Current",
629 	},
630 	{
631 		.id = AXP_SENSOR_BATT_CAPACITY_PERCENT,
632 		.name = "batcapacitypercent",
633 		.format = "I",
634 		.desc = "Battery Capacity Percentage",
635 	},
636 	{
637 		.id = AXP_SENSOR_BATT_MAXIMUM_CAPACITY,
638 		.name = "batmaxcapacity",
639 		.format = "I",
640 		.desc = "Battery Maximum Capacity",
641 	},
642 	{
643 		.id = AXP_SENSOR_BATT_CURRENT_CAPACITY,
644 		.name = "batcurrentcapacity",
645 		.format = "I",
646 		.desc = "Battery Current Capacity",
647 	},
648 };
649 
650 struct axp8xx_config {
651 	const char		*name;
652 	int			batsense_step;  /* uV */
653 	int			charge_step;    /* uA */
654 	int			discharge_step; /* uA */
655 	int			maxcap_step;    /* uAh */
656 	int			coulomb_step;   /* uAh */
657 };
658 
659 static struct axp8xx_config axp803_config = {
660 	.name = "AXP803",
661 	.batsense_step = 1100,
662 	.charge_step = 1000,
663 	.discharge_step = 1000,
664 	.maxcap_step = 1456,
665 	.coulomb_step = 1456,
666 };
667 
668 struct axp8xx_softc;
669 
670 struct axp8xx_reg_sc {
671 	struct regnode		*regnode;
672 	device_t		base_dev;
673 	struct axp8xx_regdef	*def;
674 	phandle_t		xref;
675 	struct regnode_std_param *param;
676 };
677 
678 struct axp8xx_softc {
679 	struct resource		*res;
680 	uint16_t		addr;
681 	void			*ih;
682 	device_t		gpiodev;
683 	struct mtx		mtx;
684 	int			busy;
685 
686 	int			type;
687 
688 	/* Configs */
689 	const struct axp8xx_config	*config;
690 
691 	/* Sensors */
692 	const struct axp8xx_sensors	*sensors;
693 	int				nsensors;
694 
695 	/* Regulators */
696 	struct axp8xx_reg_sc	**regs;
697 	int			nregs;
698 
699 	/* Warning, shutdown thresholds */
700 	int			warn_thres;
701 	int			shut_thres;
702 };
703 
704 #define	AXP_LOCK(sc)	mtx_lock(&(sc)->mtx)
705 #define	AXP_UNLOCK(sc)	mtx_unlock(&(sc)->mtx)
706 
707 static int
708 axp8xx_read(device_t dev, uint8_t reg, uint8_t *data, uint8_t size)
709 {
710 	struct axp8xx_softc *sc;
711 	struct iic_msg msg[2];
712 
713 	sc = device_get_softc(dev);
714 
715 	msg[0].slave = sc->addr;
716 	msg[0].flags = IIC_M_WR;
717 	msg[0].len = 1;
718 	msg[0].buf = &reg;
719 
720 	msg[1].slave = sc->addr;
721 	msg[1].flags = IIC_M_RD;
722 	msg[1].len = size;
723 	msg[1].buf = data;
724 
725 	return (iicbus_transfer(dev, msg, 2));
726 }
727 
728 static int
729 axp8xx_write(device_t dev, uint8_t reg, uint8_t val)
730 {
731 	struct axp8xx_softc *sc;
732 	struct iic_msg msg[2];
733 
734 	sc = device_get_softc(dev);
735 
736 	msg[0].slave = sc->addr;
737 	msg[0].flags = IIC_M_WR;
738 	msg[0].len = 1;
739 	msg[0].buf = &reg;
740 
741 	msg[1].slave = sc->addr;
742 	msg[1].flags = IIC_M_WR;
743 	msg[1].len = 1;
744 	msg[1].buf = &val;
745 
746 	return (iicbus_transfer(dev, msg, 2));
747 }
748 
749 static int
750 axp8xx_regnode_init(struct regnode *regnode)
751 {
752 	return (0);
753 }
754 
755 static int
756 axp8xx_regnode_enable(struct regnode *regnode, bool enable, int *udelay)
757 {
758 	struct axp8xx_reg_sc *sc;
759 	uint8_t val;
760 
761 	sc = regnode_get_softc(regnode);
762 
763 	if (bootverbose)
764 		device_printf(sc->base_dev, "%sable %s (%s)\n",
765 		    enable ? "En" : "Dis",
766 		    regnode_get_name(regnode),
767 		    sc->def->name);
768 
769 	axp8xx_read(sc->base_dev, sc->def->enable_reg, &val, 1);
770 	val &= ~sc->def->enable_mask;
771 	if (enable)
772 		val |= sc->def->enable_value;
773 	else {
774 		if (sc->def->disable_value)
775 			val |= sc->def->disable_value;
776 		else
777 			val &= ~sc->def->enable_value;
778 	}
779 	axp8xx_write(sc->base_dev, sc->def->enable_reg, val);
780 
781 	*udelay = 0;
782 
783 	return (0);
784 }
785 
786 static void
787 axp8xx_regnode_reg_to_voltage(struct axp8xx_reg_sc *sc, uint8_t val, int *uv)
788 {
789 	if (val < sc->def->voltage_nstep1)
790 		*uv = sc->def->voltage_min + val * sc->def->voltage_step1;
791 	else
792 		*uv = sc->def->voltage_min +
793 		    (sc->def->voltage_nstep1 * sc->def->voltage_step1) +
794 		    ((val - sc->def->voltage_nstep1) * sc->def->voltage_step2);
795 	*uv *= 1000;
796 }
797 
798 static int
799 axp8xx_regnode_voltage_to_reg(struct axp8xx_reg_sc *sc, int min_uvolt,
800     int max_uvolt, uint8_t *val)
801 {
802 	uint8_t nval;
803 	int nstep, uvolt;
804 
805 	nval = 0;
806 	uvolt = sc->def->voltage_min * 1000;
807 
808 	for (nstep = 0; nstep < sc->def->voltage_nstep1 && uvolt < min_uvolt;
809 	     nstep++) {
810 		++nval;
811 		uvolt += (sc->def->voltage_step1 * 1000);
812 	}
813 	for (nstep = 0; nstep < sc->def->voltage_nstep2 && uvolt < min_uvolt;
814 	     nstep++) {
815 		++nval;
816 		uvolt += (sc->def->voltage_step2 * 1000);
817 	}
818 	if (uvolt > max_uvolt)
819 		return (EINVAL);
820 
821 	*val = nval;
822 	return (0);
823 }
824 
825 static int
826 axp8xx_regnode_set_voltage(struct regnode *regnode, int min_uvolt,
827     int max_uvolt, int *udelay)
828 {
829 	struct axp8xx_reg_sc *sc;
830 	uint8_t val;
831 
832 	sc = regnode_get_softc(regnode);
833 
834 	if (bootverbose)
835 		device_printf(sc->base_dev, "Setting %s (%s) to %d<->%d\n",
836 		    regnode_get_name(regnode),
837 		    sc->def->name,
838 		    min_uvolt, max_uvolt);
839 
840 	if (sc->def->voltage_step1 == 0)
841 		return (ENXIO);
842 
843 	if (axp8xx_regnode_voltage_to_reg(sc, min_uvolt, max_uvolt, &val) != 0)
844 		return (ERANGE);
845 
846 	axp8xx_write(sc->base_dev, sc->def->voltage_reg, val);
847 
848 	*udelay = 0;
849 
850 	return (0);
851 }
852 
853 static int
854 axp8xx_regnode_get_voltage(struct regnode *regnode, int *uvolt)
855 {
856 	struct axp8xx_reg_sc *sc;
857 	uint8_t val;
858 
859 	sc = regnode_get_softc(regnode);
860 
861 	if (!sc->def->voltage_step1 || !sc->def->voltage_step2)
862 		return (ENXIO);
863 
864 	axp8xx_read(sc->base_dev, sc->def->voltage_reg, &val, 1);
865 	axp8xx_regnode_reg_to_voltage(sc, val & AXP_VOLTCTL_MASK, uvolt);
866 
867 	return (0);
868 }
869 
870 static regnode_method_t axp8xx_regnode_methods[] = {
871 	/* Regulator interface */
872 	REGNODEMETHOD(regnode_init,		axp8xx_regnode_init),
873 	REGNODEMETHOD(regnode_enable,		axp8xx_regnode_enable),
874 	REGNODEMETHOD(regnode_set_voltage,	axp8xx_regnode_set_voltage),
875 	REGNODEMETHOD(regnode_get_voltage,	axp8xx_regnode_get_voltage),
876 	REGNODEMETHOD_END
877 };
878 DEFINE_CLASS_1(axp8xx_regnode, axp8xx_regnode_class, axp8xx_regnode_methods,
879     sizeof(struct axp8xx_reg_sc), regnode_class);
880 
881 static void
882 axp8xx_shutdown(void *devp, int howto)
883 {
884 	device_t dev;
885 
886 	if ((howto & RB_POWEROFF) == 0)
887 		return;
888 
889 	dev = devp;
890 
891 	if (bootverbose)
892 		device_printf(dev, "Shutdown Axp8xx\n");
893 
894 	axp8xx_write(dev, AXP_POWERBAT, AXP_POWERBAT_SHUTDOWN);
895 }
896 
897 static int
898 axp8xx_sysctl_chargecurrent(SYSCTL_HANDLER_ARGS)
899 {
900 	device_t dev = arg1;
901 	uint8_t data;
902 	int val, error;
903 
904 	error = axp8xx_read(dev, AXP_CHARGERCTL1, &data, 1);
905 	if (error != 0)
906 		return (error);
907 
908 	if (bootverbose)
909 		device_printf(dev, "Raw CHARGECTL1 val: 0x%0x\n", data);
910 	val = (data & AXP_CHARGERCTL1_CMASK);
911 	error = sysctl_handle_int(oidp, &val, 0, req);
912 	if (error || !req->newptr) /* error || read request */
913 		return (error);
914 
915 	if ((val < AXP_CHARGERCTL1_MIN) || (val > AXP_CHARGERCTL1_MAX))
916 		return (EINVAL);
917 
918 	val |= (data & (AXP_CHARGERCTL1_CMASK << 4));
919 	axp8xx_write(dev, AXP_CHARGERCTL1, val);
920 
921 	return (0);
922 }
923 
924 static int
925 axp8xx_sysctl(SYSCTL_HANDLER_ARGS)
926 {
927 	struct axp8xx_softc *sc;
928 	device_t dev = arg1;
929 	enum axp8xx_sensor sensor = arg2;
930 	const struct axp8xx_config *c;
931 	uint8_t data;
932 	int val, i, found, batt_val;
933 	uint8_t lo, hi;
934 
935 	sc = device_get_softc(dev);
936 	c = sc->config;
937 
938 	for (found = 0, i = 0; i < sc->nsensors; i++) {
939 		if (sc->sensors[i].id == sensor) {
940 			found = 1;
941 			break;
942 		}
943 	}
944 
945 	if (found == 0)
946 		return (ENOENT);
947 
948 	switch (sensor) {
949 	case AXP_SENSOR_ACIN_PRESENT:
950 		if (axp8xx_read(dev, AXP_POWERSRC, &data, 1) == 0)
951 			val = !!(data & AXP_POWERSRC_ACIN);
952 		break;
953 	case AXP_SENSOR_VBUS_PRESENT:
954 		if (axp8xx_read(dev, AXP_POWERSRC, &data, 1) == 0)
955 			val = !!(data & AXP_POWERSRC_VBUS);
956 		break;
957 	case AXP_SENSOR_BATT_PRESENT:
958 		if (axp8xx_read(dev, AXP_POWERMODE, &data, 1) == 0) {
959 			if (data & AXP_POWERMODE_BAT_VALID)
960 				val = !!(data & AXP_POWERMODE_BAT_PRESENT);
961 		}
962 		break;
963 	case AXP_SENSOR_BATT_CHARGING:
964 		if (axp8xx_read(dev, AXP_POWERMODE, &data, 1) == 0)
965 			val = !!(data & AXP_POWERMODE_BAT_CHARGING);
966 		break;
967 	case AXP_SENSOR_BATT_CHARGE_STATE:
968 		if (axp8xx_read(dev, AXP_BAT_CAP, &data, 1) == 0 &&
969 		    (data & AXP_BAT_CAP_VALID) != 0) {
970 			batt_val = (data & AXP_BAT_CAP_PERCENT);
971 			if (batt_val <= sc->shut_thres)
972 				val = BATT_CAPACITY_CRITICAL;
973 			else if (batt_val <= sc->warn_thres)
974 				val = BATT_CAPACITY_WARNING;
975 			else
976 				val = BATT_CAPACITY_NORMAL;
977 		}
978 		break;
979 	case AXP_SENSOR_BATT_CAPACITY_PERCENT:
980 		if (axp8xx_read(dev, AXP_BAT_CAP, &data, 1) == 0 &&
981 		    (data & AXP_BAT_CAP_VALID) != 0)
982 			val = (data & AXP_BAT_CAP_PERCENT);
983 		break;
984 	case AXP_SENSOR_BATT_VOLTAGE:
985 		if (axp8xx_read(dev, AXP_BATSENSE_HI, &hi, 1) == 0 &&
986 		    axp8xx_read(dev, AXP_BATSENSE_LO, &lo, 1) == 0) {
987 			val = (AXP_SENSOR_BAT_H(hi) | AXP_SENSOR_BAT_L(lo));
988 			val *= c->batsense_step;
989 		}
990 		break;
991 	case AXP_SENSOR_BATT_CHARGE_CURRENT:
992 		if (axp8xx_read(dev, AXP_POWERSRC, &data, 1) == 0 &&
993 		    (data & AXP_POWERSRC_CHARING) != 0 &&
994 		    axp8xx_read(dev, AXP_BATCHG_HI, &hi, 1) == 0 &&
995 		    axp8xx_read(dev, AXP_BATCHG_LO, &lo, 1) == 0) {
996 			val = (AXP_SENSOR_BAT_H(hi) | AXP_SENSOR_BAT_L(lo));
997 			val *= c->charge_step;
998 		}
999 		break;
1000 	case AXP_SENSOR_BATT_DISCHARGE_CURRENT:
1001 		if (axp8xx_read(dev, AXP_POWERSRC, &data, 1) == 0 &&
1002 		    (data & AXP_POWERSRC_CHARING) == 0 &&
1003 		    axp8xx_read(dev, AXP_BATDISCHG_HI, &hi, 1) == 0 &&
1004 		    axp8xx_read(dev, AXP_BATDISCHG_LO, &lo, 1) == 0) {
1005 			val = (AXP_SENSOR_BAT_H(hi) | AXP_SENSOR_BAT_L(lo));
1006 			val *= c->discharge_step;
1007 		}
1008 		break;
1009 	case AXP_SENSOR_BATT_MAXIMUM_CAPACITY:
1010 		if (axp8xx_read(dev, AXP_BAT_MAX_CAP_HI, &hi, 1) == 0 &&
1011 		    axp8xx_read(dev, AXP_BAT_MAX_CAP_LO, &lo, 1) == 0) {
1012 			val = AXP_SENSOR_COULOMB(hi, lo);
1013 			val *= c->maxcap_step;
1014 		}
1015 		break;
1016 	case AXP_SENSOR_BATT_CURRENT_CAPACITY:
1017 		if (axp8xx_read(dev, AXP_BAT_COULOMB_HI, &hi, 1) == 0 &&
1018 		    axp8xx_read(dev, AXP_BAT_COULOMB_LO, &lo, 1) == 0) {
1019 			val = AXP_SENSOR_COULOMB(hi, lo);
1020 			val *= c->coulomb_step;
1021 		}
1022 		break;
1023 	}
1024 
1025 	return sysctl_handle_opaque(oidp, &val, sizeof(val), req);
1026 }
1027 
1028 static void
1029 axp8xx_intr(void *arg)
1030 {
1031 	device_t dev;
1032 	uint8_t val;
1033 	int error;
1034 
1035 	dev = arg;
1036 
1037 	error = axp8xx_read(dev, AXP_IRQSTAT1, &val, 1);
1038 	if (error != 0)
1039 		return;
1040 
1041 	if (val) {
1042 		if (bootverbose)
1043 			device_printf(dev, "AXP_IRQSTAT1 val: %x\n", val);
1044 		if (val & AXP_IRQSTAT1_ACIN_HI)
1045 			devctl_notify("PMU", "AC", "plugged", NULL);
1046 		if (val & AXP_IRQSTAT1_ACIN_LO)
1047 			devctl_notify("PMU", "AC", "unplugged", NULL);
1048 		if (val & AXP_IRQSTAT1_VBUS_HI)
1049 			devctl_notify("PMU", "USB", "plugged", NULL);
1050 		if (val & AXP_IRQSTAT1_VBUS_LO)
1051 			devctl_notify("PMU", "USB", "unplugged", NULL);
1052 		/* Acknowledge */
1053 		axp8xx_write(dev, AXP_IRQSTAT1, val);
1054 	}
1055 
1056 	error = axp8xx_read(dev, AXP_IRQSTAT2, &val, 1);
1057 	if (error != 0)
1058 		return;
1059 
1060 	if (val) {
1061 		if (bootverbose)
1062 			device_printf(dev, "AXP_IRQSTAT2 val: %x\n", val);
1063 		if (val & AXP_IRQSTAT2_BATCHGD)
1064 			devctl_notify("PMU", "Battery", "charged", NULL);
1065 		if (val & AXP_IRQSTAT2_BATCHGC)
1066 			devctl_notify("PMU", "Battery", "charging", NULL);
1067 		if (val & AXP_IRQSTAT2_BAT_NO)
1068 			devctl_notify("PMU", "Battery", "absent", NULL);
1069 		if (val & AXP_IRQSTAT2_BAT_IN)
1070 			devctl_notify("PMU", "Battery", "plugged", NULL);
1071 		/* Acknowledge */
1072 		axp8xx_write(dev, AXP_IRQSTAT2, val);
1073 	}
1074 
1075 	error = axp8xx_read(dev, AXP_IRQSTAT3, &val, 1);
1076 	if (error != 0)
1077 		return;
1078 
1079 	if (val) {
1080 		/* Acknowledge */
1081 		axp8xx_write(dev, AXP_IRQSTAT3, val);
1082 	}
1083 
1084 	error = axp8xx_read(dev, AXP_IRQSTAT4, &val, 1);
1085 	if (error != 0)
1086 		return;
1087 
1088 	if (val) {
1089 		if (bootverbose)
1090 			device_printf(dev, "AXP_IRQSTAT4 val: %x\n", val);
1091 		if (val & AXP_IRQSTAT4_BATLVL_LO0)
1092 			devctl_notify("PMU", "Battery", "shutdown threshold", NULL);
1093 		if (val & AXP_IRQSTAT4_BATLVL_LO1)
1094 			devctl_notify("PMU", "Battery", "warning threshold", NULL);
1095 		/* Acknowledge */
1096 		axp8xx_write(dev, AXP_IRQSTAT4, val);
1097 	}
1098 
1099 	error = axp8xx_read(dev, AXP_IRQSTAT5, &val, 1);
1100 	if (error != 0)
1101 		return;
1102 
1103 	if (val != 0) {
1104 		if ((val & AXP_IRQSTAT5_POKSIRQ) != 0) {
1105 			if (bootverbose)
1106 				device_printf(dev, "Power button pressed\n");
1107 			shutdown_nice(RB_POWEROFF);
1108 		}
1109 		/* Acknowledge */
1110 		axp8xx_write(dev, AXP_IRQSTAT5, val);
1111 	}
1112 
1113 	error = axp8xx_read(dev, AXP_IRQSTAT6, &val, 1);
1114 	if (error != 0)
1115 		return;
1116 
1117 	if (val) {
1118 		/* Acknowledge */
1119 		axp8xx_write(dev, AXP_IRQSTAT6, val);
1120 	}
1121 }
1122 
1123 static device_t
1124 axp8xx_gpio_get_bus(device_t dev)
1125 {
1126 	struct axp8xx_softc *sc;
1127 
1128 	sc = device_get_softc(dev);
1129 
1130 	return (sc->gpiodev);
1131 }
1132 
1133 static int
1134 axp8xx_gpio_pin_max(device_t dev, int *maxpin)
1135 {
1136 	*maxpin = nitems(axp8xx_pins) - 1;
1137 
1138 	return (0);
1139 }
1140 
1141 static int
1142 axp8xx_gpio_pin_getname(device_t dev, uint32_t pin, char *name)
1143 {
1144 	if (pin >= nitems(axp8xx_pins))
1145 		return (EINVAL);
1146 
1147 	snprintf(name, GPIOMAXNAME, "%s", axp8xx_pins[pin].name);
1148 
1149 	return (0);
1150 }
1151 
1152 static int
1153 axp8xx_gpio_pin_getcaps(device_t dev, uint32_t pin, uint32_t *caps)
1154 {
1155 	if (pin >= nitems(axp8xx_pins))
1156 		return (EINVAL);
1157 
1158 	*caps = GPIO_PIN_INPUT | GPIO_PIN_OUTPUT;
1159 
1160 	return (0);
1161 }
1162 
1163 static int
1164 axp8xx_gpio_pin_getflags(device_t dev, uint32_t pin, uint32_t *flags)
1165 {
1166 	struct axp8xx_softc *sc;
1167 	uint8_t data, func;
1168 	int error;
1169 
1170 	if (pin >= nitems(axp8xx_pins))
1171 		return (EINVAL);
1172 
1173 	sc = device_get_softc(dev);
1174 
1175 	AXP_LOCK(sc);
1176 	error = axp8xx_read(dev, axp8xx_pins[pin].ctrl_reg, &data, 1);
1177 	if (error == 0) {
1178 		func = (data & AXP_GPIO_FUNC) >> AXP_GPIO_FUNC_SHIFT;
1179 		if (func == AXP_GPIO_FUNC_INPUT)
1180 			*flags = GPIO_PIN_INPUT;
1181 		else if (func == AXP_GPIO_FUNC_DRVLO ||
1182 		    func == AXP_GPIO_FUNC_DRVHI)
1183 			*flags = GPIO_PIN_OUTPUT;
1184 		else
1185 			*flags = 0;
1186 	}
1187 	AXP_UNLOCK(sc);
1188 
1189 	return (error);
1190 }
1191 
1192 static int
1193 axp8xx_gpio_pin_setflags(device_t dev, uint32_t pin, uint32_t flags)
1194 {
1195 	struct axp8xx_softc *sc;
1196 	uint8_t data;
1197 	int error;
1198 
1199 	if (pin >= nitems(axp8xx_pins))
1200 		return (EINVAL);
1201 
1202 	sc = device_get_softc(dev);
1203 
1204 	AXP_LOCK(sc);
1205 	error = axp8xx_read(dev, axp8xx_pins[pin].ctrl_reg, &data, 1);
1206 	if (error == 0) {
1207 		data &= ~AXP_GPIO_FUNC;
1208 		if ((flags & (GPIO_PIN_INPUT|GPIO_PIN_OUTPUT)) != 0) {
1209 			if ((flags & GPIO_PIN_OUTPUT) == 0)
1210 				data |= AXP_GPIO_FUNC_INPUT;
1211 		}
1212 		error = axp8xx_write(dev, axp8xx_pins[pin].ctrl_reg, data);
1213 	}
1214 	AXP_UNLOCK(sc);
1215 
1216 	return (error);
1217 }
1218 
1219 static int
1220 axp8xx_gpio_pin_get(device_t dev, uint32_t pin, unsigned int *val)
1221 {
1222 	struct axp8xx_softc *sc;
1223 	uint8_t data, func;
1224 	int error;
1225 
1226 	if (pin >= nitems(axp8xx_pins))
1227 		return (EINVAL);
1228 
1229 	sc = device_get_softc(dev);
1230 
1231 	AXP_LOCK(sc);
1232 	error = axp8xx_read(dev, axp8xx_pins[pin].ctrl_reg, &data, 1);
1233 	if (error == 0) {
1234 		func = (data & AXP_GPIO_FUNC) >> AXP_GPIO_FUNC_SHIFT;
1235 		switch (func) {
1236 		case AXP_GPIO_FUNC_DRVLO:
1237 			*val = 0;
1238 			break;
1239 		case AXP_GPIO_FUNC_DRVHI:
1240 			*val = 1;
1241 			break;
1242 		case AXP_GPIO_FUNC_INPUT:
1243 			error = axp8xx_read(dev, AXP_GPIO_SIGBIT, &data, 1);
1244 			if (error == 0)
1245 				*val = (data & (1 << pin)) ? 1 : 0;
1246 			break;
1247 		default:
1248 			error = EIO;
1249 			break;
1250 		}
1251 	}
1252 	AXP_UNLOCK(sc);
1253 
1254 	return (error);
1255 }
1256 
1257 static int
1258 axp8xx_gpio_pin_set(device_t dev, uint32_t pin, unsigned int val)
1259 {
1260 	struct axp8xx_softc *sc;
1261 	uint8_t data, func;
1262 	int error;
1263 
1264 	if (pin >= nitems(axp8xx_pins))
1265 		return (EINVAL);
1266 
1267 	sc = device_get_softc(dev);
1268 
1269 	AXP_LOCK(sc);
1270 	error = axp8xx_read(dev, axp8xx_pins[pin].ctrl_reg, &data, 1);
1271 	if (error == 0) {
1272 		func = (data & AXP_GPIO_FUNC) >> AXP_GPIO_FUNC_SHIFT;
1273 		switch (func) {
1274 		case AXP_GPIO_FUNC_DRVLO:
1275 		case AXP_GPIO_FUNC_DRVHI:
1276 			data &= ~AXP_GPIO_FUNC;
1277 			data |= (val << AXP_GPIO_FUNC_SHIFT);
1278 			break;
1279 		default:
1280 			error = EIO;
1281 			break;
1282 		}
1283 	}
1284 	if (error == 0)
1285 		error = axp8xx_write(dev, axp8xx_pins[pin].ctrl_reg, data);
1286 	AXP_UNLOCK(sc);
1287 
1288 	return (error);
1289 }
1290 
1291 
1292 static int
1293 axp8xx_gpio_pin_toggle(device_t dev, uint32_t pin)
1294 {
1295 	struct axp8xx_softc *sc;
1296 	uint8_t data, func;
1297 	int error;
1298 
1299 	if (pin >= nitems(axp8xx_pins))
1300 		return (EINVAL);
1301 
1302 	sc = device_get_softc(dev);
1303 
1304 	AXP_LOCK(sc);
1305 	error = axp8xx_read(dev, axp8xx_pins[pin].ctrl_reg, &data, 1);
1306 	if (error == 0) {
1307 		func = (data & AXP_GPIO_FUNC) >> AXP_GPIO_FUNC_SHIFT;
1308 		switch (func) {
1309 		case AXP_GPIO_FUNC_DRVLO:
1310 			data &= ~AXP_GPIO_FUNC;
1311 			data |= (AXP_GPIO_FUNC_DRVHI << AXP_GPIO_FUNC_SHIFT);
1312 			break;
1313 		case AXP_GPIO_FUNC_DRVHI:
1314 			data &= ~AXP_GPIO_FUNC;
1315 			data |= (AXP_GPIO_FUNC_DRVLO << AXP_GPIO_FUNC_SHIFT);
1316 			break;
1317 		default:
1318 			error = EIO;
1319 			break;
1320 		}
1321 	}
1322 	if (error == 0)
1323 		error = axp8xx_write(dev, axp8xx_pins[pin].ctrl_reg, data);
1324 	AXP_UNLOCK(sc);
1325 
1326 	return (error);
1327 }
1328 
1329 static int
1330 axp8xx_gpio_map_gpios(device_t bus, phandle_t dev, phandle_t gparent,
1331     int gcells, pcell_t *gpios, uint32_t *pin, uint32_t *flags)
1332 {
1333 	if (gpios[0] >= nitems(axp8xx_pins))
1334 		return (EINVAL);
1335 
1336 	*pin = gpios[0];
1337 	*flags = gpios[1];
1338 
1339 	return (0);
1340 }
1341 
1342 static phandle_t
1343 axp8xx_get_node(device_t dev, device_t bus)
1344 {
1345 	return (ofw_bus_get_node(dev));
1346 }
1347 
1348 static struct axp8xx_reg_sc *
1349 axp8xx_reg_attach(device_t dev, phandle_t node,
1350     struct axp8xx_regdef *def)
1351 {
1352 	struct axp8xx_reg_sc *reg_sc;
1353 	struct regnode_init_def initdef;
1354 	struct regnode *regnode;
1355 
1356 	memset(&initdef, 0, sizeof(initdef));
1357 	if (regulator_parse_ofw_stdparam(dev, node, &initdef) != 0)
1358 		return (NULL);
1359 	if (initdef.std_param.min_uvolt == 0)
1360 		initdef.std_param.min_uvolt = def->voltage_min * 1000;
1361 	if (initdef.std_param.max_uvolt == 0)
1362 		initdef.std_param.max_uvolt = def->voltage_max * 1000;
1363 	initdef.id = def->id;
1364 	initdef.ofw_node = node;
1365 	regnode = regnode_create(dev, &axp8xx_regnode_class, &initdef);
1366 	if (regnode == NULL) {
1367 		device_printf(dev, "cannot create regulator\n");
1368 		return (NULL);
1369 	}
1370 
1371 	reg_sc = regnode_get_softc(regnode);
1372 	reg_sc->regnode = regnode;
1373 	reg_sc->base_dev = dev;
1374 	reg_sc->def = def;
1375 	reg_sc->xref = OF_xref_from_node(node);
1376 	reg_sc->param = regnode_get_stdparam(regnode);
1377 
1378 	regnode_register(regnode);
1379 
1380 	return (reg_sc);
1381 }
1382 
1383 static int
1384 axp8xx_regdev_map(device_t dev, phandle_t xref, int ncells, pcell_t *cells,
1385     intptr_t *num)
1386 {
1387 	struct axp8xx_softc *sc;
1388 	int i;
1389 
1390 	sc = device_get_softc(dev);
1391 	for (i = 0; i < sc->nregs; i++) {
1392 		if (sc->regs[i] == NULL)
1393 			continue;
1394 		if (sc->regs[i]->xref == xref) {
1395 			*num = sc->regs[i]->def->id;
1396 			return (0);
1397 		}
1398 	}
1399 
1400 	return (ENXIO);
1401 }
1402 
1403 static int
1404 axp8xx_probe(device_t dev)
1405 {
1406 	if (!ofw_bus_status_okay(dev))
1407 		return (ENXIO);
1408 
1409 	switch (ofw_bus_search_compatible(dev, compat_data)->ocd_data)
1410 	{
1411 	case AXP803:
1412 		device_set_desc(dev, "X-Powers AXP803 Power Management Unit");
1413 		break;
1414 	case AXP813:
1415 		device_set_desc(dev, "X-Powers AXP813 Power Management Unit");
1416 		break;
1417 	default:
1418 		return (ENXIO);
1419 	}
1420 
1421 	return (BUS_PROBE_DEFAULT);
1422 }
1423 
1424 static int
1425 axp8xx_attach(device_t dev)
1426 {
1427 	struct axp8xx_softc *sc;
1428 	struct axp8xx_reg_sc *reg;
1429 	uint8_t chip_id, val;
1430 	phandle_t rnode, child;
1431 	int error, i;
1432 
1433 	sc = device_get_softc(dev);
1434 
1435 	sc->addr = iicbus_get_addr(dev);
1436 	mtx_init(&sc->mtx, device_get_nameunit(dev), NULL, MTX_DEF);
1437 
1438 	error = bus_alloc_resources(dev, axp8xx_spec, &sc->res);
1439 	if (error != 0) {
1440 		device_printf(dev, "cannot allocate resources for device\n");
1441 		return (error);
1442 	}
1443 
1444 	if (bootverbose) {
1445 		axp8xx_read(dev, AXP_ICTYPE, &chip_id, 1);
1446 		device_printf(dev, "chip ID 0x%02x\n", chip_id);
1447 	}
1448 
1449 	sc->nregs = nitems(axp8xx_common_regdefs);
1450 	sc->type = ofw_bus_search_compatible(dev, compat_data)->ocd_data;
1451 	switch (sc->type) {
1452 	case AXP803:
1453 		sc->nregs += nitems(axp803_regdefs);
1454 		break;
1455 	case AXP813:
1456 		sc->nregs += nitems(axp813_regdefs);
1457 		break;
1458 	}
1459 	sc->config = &axp803_config;
1460 	sc->sensors = axp8xx_common_sensors;
1461 	sc->nsensors = nitems(axp8xx_common_sensors);
1462 
1463 	sc->regs = malloc(sizeof(struct axp8xx_reg_sc *) * sc->nregs,
1464 	    M_AXP8XX_REG, M_WAITOK | M_ZERO);
1465 
1466 	/* Attach known regulators that exist in the DT */
1467 	rnode = ofw_bus_find_child(ofw_bus_get_node(dev), "regulators");
1468 	if (rnode > 0) {
1469 		for (i = 0; i < sc->nregs; i++) {
1470 			char *regname;
1471 			struct axp8xx_regdef *regdef;
1472 
1473 			if (i <= nitems(axp8xx_common_regdefs)) {
1474 				regname = axp8xx_common_regdefs[i].name;
1475 				regdef = &axp8xx_common_regdefs[i];
1476 			} else {
1477 				int off;
1478 
1479 				off = i - nitems(axp8xx_common_regdefs);
1480 				switch (sc->type) {
1481 				case AXP803:
1482 					regname = axp803_regdefs[off].name;
1483 					regdef = &axp803_regdefs[off];
1484 					break;
1485 				case AXP813:
1486 					regname = axp813_regdefs[off].name;
1487 					regdef = &axp813_regdefs[off];
1488 					break;
1489 				}
1490 			}
1491 			child = ofw_bus_find_child(rnode,
1492 			    regname);
1493 			if (child == 0)
1494 				continue;
1495 			reg = axp8xx_reg_attach(dev, child,
1496 			    regdef);
1497 			if (reg == NULL) {
1498 				device_printf(dev,
1499 				    "cannot attach regulator %s\n",
1500 				    regname);
1501 				continue;
1502 			}
1503 			sc->regs[i] = reg;
1504 		}
1505 	}
1506 
1507 	/* Add sensors */
1508 	for (i = 0; i < sc->nsensors; i++) {
1509 		SYSCTL_ADD_PROC(device_get_sysctl_ctx(dev),
1510 		    SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
1511 		    OID_AUTO, sc->sensors[i].name,
1512 		    CTLTYPE_INT | CTLFLAG_RD,
1513 		    dev, sc->sensors[i].id, axp8xx_sysctl,
1514 		    sc->sensors[i].format,
1515 		    sc->sensors[i].desc);
1516 	}
1517 	SYSCTL_ADD_PROC(device_get_sysctl_ctx(dev),
1518 	    SYSCTL_CHILDREN(device_get_sysctl_tree(dev)),
1519 	    OID_AUTO, "batchargecurrentstep",
1520 	    CTLTYPE_INT | CTLFLAG_RW,
1521 	    dev, 0, axp8xx_sysctl_chargecurrent,
1522 	    "I", "Battery Charging Current Step, "
1523 	    "0: 200mA, 1: 400mA, 2: 600mA, 3: 800mA, "
1524 	    "4: 1000mA, 5: 1200mA, 6: 1400mA, 7: 1600mA, "
1525 	    "8: 1800mA, 9: 2000mA, 10: 2200mA, 11: 2400mA, "
1526 	    "12: 2600mA, 13: 2800mA");
1527 
1528 	/* Get thresholds */
1529 	if (axp8xx_read(dev, AXP_BAT_CAP_WARN, &val, 1) == 0) {
1530 		sc->warn_thres = (val & AXP_BAT_CAP_WARN_LV1) >> 4;
1531 		sc->warn_thres += AXP_BAP_CAP_WARN_LV1BASE;
1532 		sc->shut_thres = (val & AXP_BAT_CAP_WARN_LV2);
1533 		if (bootverbose) {
1534 			device_printf(dev,
1535 			    "Raw reg val: 0x%02x\n", val);
1536 			device_printf(dev,
1537 			    "Warning threshold: 0x%02x\n", sc->warn_thres);
1538 			device_printf(dev,
1539 			    "Shutdown threshold: 0x%02x\n", sc->shut_thres);
1540 		}
1541 	}
1542 
1543 	/* Enable interrupts */
1544 	axp8xx_write(dev, AXP_IRQEN1,
1545 	    AXP_IRQEN1_VBUS_LO |
1546 	    AXP_IRQEN1_VBUS_HI |
1547 	    AXP_IRQEN1_ACIN_LO |
1548 	    AXP_IRQEN1_ACIN_HI);
1549 	axp8xx_write(dev, AXP_IRQEN2,
1550 	    AXP_IRQEN2_BATCHGD |
1551 	    AXP_IRQEN2_BATCHGC |
1552 	    AXP_IRQEN2_BAT_NO |
1553 	    AXP_IRQEN2_BAT_IN);
1554 	axp8xx_write(dev, AXP_IRQEN3, 0);
1555 	axp8xx_write(dev, AXP_IRQEN4,
1556 	    AXP_IRQEN4_BATLVL_LO0 |
1557 	    AXP_IRQEN4_BATLVL_LO1);
1558 	axp8xx_write(dev, AXP_IRQEN5,
1559 	    AXP_IRQEN5_POKSIRQ |
1560 	    AXP_IRQEN5_POKLIRQ);
1561 	axp8xx_write(dev, AXP_IRQEN6, 0);
1562 
1563 	/* Install interrupt handler */
1564 	error = bus_setup_intr(dev, sc->res, INTR_TYPE_MISC | INTR_MPSAFE,
1565 	    NULL, axp8xx_intr, dev, &sc->ih);
1566 	if (error != 0) {
1567 		device_printf(dev, "cannot setup interrupt handler\n");
1568 		return (error);
1569 	}
1570 
1571 	EVENTHANDLER_REGISTER(shutdown_final, axp8xx_shutdown, dev,
1572 	    SHUTDOWN_PRI_LAST);
1573 
1574 	sc->gpiodev = gpiobus_attach_bus(dev);
1575 
1576 	return (0);
1577 }
1578 
1579 static device_method_t axp8xx_methods[] = {
1580 	/* Device interface */
1581 	DEVMETHOD(device_probe,		axp8xx_probe),
1582 	DEVMETHOD(device_attach,	axp8xx_attach),
1583 
1584 	/* GPIO interface */
1585 	DEVMETHOD(gpio_get_bus,		axp8xx_gpio_get_bus),
1586 	DEVMETHOD(gpio_pin_max,		axp8xx_gpio_pin_max),
1587 	DEVMETHOD(gpio_pin_getname,	axp8xx_gpio_pin_getname),
1588 	DEVMETHOD(gpio_pin_getcaps,	axp8xx_gpio_pin_getcaps),
1589 	DEVMETHOD(gpio_pin_getflags,	axp8xx_gpio_pin_getflags),
1590 	DEVMETHOD(gpio_pin_setflags,	axp8xx_gpio_pin_setflags),
1591 	DEVMETHOD(gpio_pin_get,		axp8xx_gpio_pin_get),
1592 	DEVMETHOD(gpio_pin_set,		axp8xx_gpio_pin_set),
1593 	DEVMETHOD(gpio_pin_toggle,	axp8xx_gpio_pin_toggle),
1594 	DEVMETHOD(gpio_map_gpios,	axp8xx_gpio_map_gpios),
1595 
1596 	/* Regdev interface */
1597 	DEVMETHOD(regdev_map,		axp8xx_regdev_map),
1598 
1599 	/* OFW bus interface */
1600 	DEVMETHOD(ofw_bus_get_node,	axp8xx_get_node),
1601 
1602 	DEVMETHOD_END
1603 };
1604 
1605 static driver_t axp8xx_driver = {
1606 	"axp8xx_pmu",
1607 	axp8xx_methods,
1608 	sizeof(struct axp8xx_softc),
1609 };
1610 
1611 static devclass_t axp8xx_devclass;
1612 extern devclass_t ofwgpiobus_devclass, gpioc_devclass;
1613 extern driver_t ofw_gpiobus_driver, gpioc_driver;
1614 
1615 EARLY_DRIVER_MODULE(axp8xx, iicbus, axp8xx_driver, axp8xx_devclass, 0, 0,
1616     BUS_PASS_INTERRUPT + BUS_PASS_ORDER_LAST);
1617 EARLY_DRIVER_MODULE(ofw_gpiobus, axp8xx_pmu, ofw_gpiobus_driver,
1618     ofwgpiobus_devclass, 0, 0, BUS_PASS_INTERRUPT + BUS_PASS_ORDER_LAST);
1619 DRIVER_MODULE(gpioc, axp8xx_pmu, gpioc_driver, gpioc_devclass, 0, 0);
1620 MODULE_VERSION(axp8xx, 1);
1621 MODULE_DEPEND(axp8xx, iicbus, 1, 1, 1);
1622