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axp20x.c revision 1.3
      1  1.3    bouyer /* $NetBSD: axp20x.c,v 1.3 2015/10/15 13:41:11 bouyer Exp $ */
      2  1.1  jmcneill 
      3  1.1  jmcneill /*-
      4  1.1  jmcneill  * Copyright (c) 2014 Jared D. McNeill <jmcneill (at) invisible.ca>
      5  1.1  jmcneill  * All rights reserved.
      6  1.1  jmcneill  *
      7  1.1  jmcneill  * Redistribution and use in source and binary forms, with or without
      8  1.1  jmcneill  * modification, are permitted provided that the following conditions
      9  1.1  jmcneill  * are met:
     10  1.1  jmcneill  * 1. Redistributions of source code must retain the above copyright
     11  1.1  jmcneill  *    notice, this list of conditions and the following disclaimer.
     12  1.1  jmcneill  * 2. Redistributions in binary form must reproduce the above copyright
     13  1.1  jmcneill  *    notice, this list of conditions and the following disclaimer in the
     14  1.1  jmcneill  *    documentation and/or other materials provided with the distribution.
     15  1.1  jmcneill  *
     16  1.1  jmcneill  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     17  1.1  jmcneill  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     18  1.1  jmcneill  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     19  1.1  jmcneill  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     20  1.1  jmcneill  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     21  1.1  jmcneill  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     22  1.1  jmcneill  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     23  1.1  jmcneill  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     24  1.1  jmcneill  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     25  1.1  jmcneill  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     26  1.1  jmcneill  * POSSIBILITY OF SUCH DAMAGE.
     27  1.1  jmcneill  */
     28  1.1  jmcneill 
     29  1.1  jmcneill #include <sys/cdefs.h>
     30  1.3    bouyer __KERNEL_RCSID(0, "$NetBSD: axp20x.c,v 1.3 2015/10/15 13:41:11 bouyer Exp $");
     31  1.1  jmcneill 
     32  1.1  jmcneill #include <sys/param.h>
     33  1.1  jmcneill #include <sys/systm.h>
     34  1.1  jmcneill #include <sys/device.h>
     35  1.1  jmcneill #include <sys/conf.h>
     36  1.1  jmcneill #include <sys/bus.h>
     37  1.1  jmcneill #include <sys/kmem.h>
     38  1.1  jmcneill 
     39  1.1  jmcneill #include <dev/i2c/i2cvar.h>
     40  1.3    bouyer #include <dev/i2c/axp20xvar.h>
     41  1.1  jmcneill 
     42  1.1  jmcneill #include <dev/sysmon/sysmonvar.h>
     43  1.1  jmcneill 
     44  1.3    bouyer #define AXP_INPUT_STATUS	0x00
     45  1.3    bouyer #define AXP_INPUT_STATUS_AC_PRESENT	__BIT(7)
     46  1.3    bouyer #define AXP_INPUT_STATUS_AC_OK		__BIT(6)
     47  1.3    bouyer #define AXP_INPUT_STATUS_VBUS_PRESENT	__BIT(5)
     48  1.3    bouyer #define AXP_INPUT_STATUS_VBUS_OK	__BIT(4)
     49  1.3    bouyer 
     50  1.3    bouyer #define AXP_POWER_MODE		0x01
     51  1.3    bouyer #define AXP_POWER_MODE_OVERTEMP		__BIT(7)
     52  1.3    bouyer #define AXP_POWER_MODE_CHARGING		__BIT(6)
     53  1.3    bouyer #define AXP_POWER_MODE_BATTOK		__BIT(5)
     54  1.3    bouyer 
     55  1.3    bouyer #define AXP_POWEROUT_CTRL	0x12
     56  1.3    bouyer #define AXP_POWEROUT_CTRL_LDO3		__BIT(6)
     57  1.3    bouyer #define AXP_POWEROUT_CTRL_DCDC2		__BIT(4)
     58  1.3    bouyer #define AXP_POWEROUT_CTRL_LDO4		__BIT(3)
     59  1.3    bouyer #define AXP_POWEROUT_CTRL_LDO2		__BIT(2)
     60  1.3    bouyer #define AXP_POWEROUT_CTRL_DCDC3		__BIT(1)
     61  1.3    bouyer #define AXP_POWEROUT_CTRL_EXTEN		__BIT(0)
     62  1.3    bouyer 
     63  1.3    bouyer #define AXP_DCDC2		0x23
     64  1.3    bouyer #define AXP_DCDC2_VOLT_MASK		__BITS(0,5)
     65  1.3    bouyer #define AXP_DCDC2_VOLT_SHIFT		0
     66  1.3    bouyer 
     67  1.3    bouyer #define AXP_DCDC2_LDO3_VRC	0x25
     68  1.3    bouyer 
     69  1.3    bouyer #define AXP_DCDC3		0x27
     70  1.3    bouyer #define AXP_DCDC3_VOLT_MASK		__BITS(0,6)
     71  1.3    bouyer #define AXP_DCDC3_VOLT_SHIFT		0
     72  1.3    bouyer 
     73  1.3    bouyer #define AXP_LDO2_4		0x28
     74  1.3    bouyer #define AXP_LDO2_VOLT_MASK		__BITS(4,7)
     75  1.3    bouyer #define AXP_LDO2_VOLT_SHIFT		4
     76  1.3    bouyer #define AXP_LDO4_VOLT_MASK		__BITS(0,3)
     77  1.3    bouyer #define AXP_LDO4_VOLT_SHIFT		0
     78  1.3    bouyer static int ldo4_mvV[] = {
     79  1.3    bouyer 	1250,
     80  1.3    bouyer 	1300,
     81  1.3    bouyer 	1400,
     82  1.3    bouyer 	1500,
     83  1.3    bouyer 	1600,
     84  1.3    bouyer 	1700,
     85  1.3    bouyer 	1800,
     86  1.3    bouyer 	1900,
     87  1.3    bouyer 	2000,
     88  1.3    bouyer 	2500,
     89  1.3    bouyer 	2700,
     90  1.3    bouyer 	2800,
     91  1.3    bouyer 	3000,
     92  1.3    bouyer 	3100,
     93  1.3    bouyer 	3200,
     94  1.3    bouyer 	3300
     95  1.3    bouyer };
     96  1.3    bouyer 
     97  1.3    bouyer #define AXP_LDO3		0x29
     98  1.3    bouyer #define AXP_LDO3_TRACK			__BIT(7)
     99  1.3    bouyer #define AXP_LDO3_VOLT_MASK		__BITS(0,6)
    100  1.3    bouyer #define AXP_LDO3_VOLT_SHIFT		0
    101  1.3    bouyer 
    102  1.3    bouyer #define AXP_ACV_MON_REG		0x56	/* 2 bytes */
    103  1.3    bouyer #define AXP_ACI_MON_REG		0x58	/* 2 bytes */
    104  1.3    bouyer #define AXP_VBUSV_MON_REG	0x5a	/* 2 bytes */
    105  1.3    bouyer #define AXP_VBUSI_MON_REG	0x5c	/* 2 bytes */
    106  1.1  jmcneill #define AXP_TEMP_MON_REG	0x5e	/* 2 bytes */
    107  1.3    bouyer #define AXP_BATTV_MON_REG	0x78	/* 2 bytes */
    108  1.3    bouyer #define AXP_BATTCI_MON_REG	0x7a	/* 2 bytes */
    109  1.3    bouyer #define AXP_BATTDI_MON_REG	0x7c	/* 2 bytes */
    110  1.3    bouyer #define AXP_APSV_MON_REG	0x7e	/* 2 bytes */
    111  1.3    bouyer 
    112  1.3    bouyer #define AXP_ADC_EN1		0x82
    113  1.3    bouyer #define AXP_ADC_EN1_BATTV		__BIT(7)
    114  1.3    bouyer #define AXP_ADC_EN1_BATTI		__BIT(6)
    115  1.3    bouyer #define AXP_ADC_EN1_ACV			__BIT(5)
    116  1.3    bouyer #define AXP_ADC_EN1_ACI			__BIT(4)
    117  1.3    bouyer #define AXP_ADC_EN1_VBUSV		__BIT(3)
    118  1.3    bouyer #define AXP_ADC_EN1_VBUSI		__BIT(2)
    119  1.3    bouyer #define AXP_ADC_EN1_APSV		__BIT(1)
    120  1.3    bouyer #define AXP_ADC_EN1_TS			__BIT(0)
    121  1.3    bouyer #define AXP_ADC_EN2		0x83
    122  1.3    bouyer #define AXP_ADC_EN2_TEMP		__BIT(7)
    123  1.3    bouyer 
    124  1.3    bouyer #define AXP_SENSOR_ACOK		0
    125  1.3    bouyer #define AXP_SENSOR_ACV		1
    126  1.3    bouyer #define AXP_SENSOR_ACI		2
    127  1.3    bouyer #define AXP_SENSOR_VBUSOK	3
    128  1.3    bouyer #define AXP_SENSOR_VBUSV	4
    129  1.3    bouyer #define AXP_SENSOR_VBUSI	5
    130  1.3    bouyer #define AXP_SENSOR_BATTOK	6
    131  1.3    bouyer #define AXP_SENSOR_BATTV	7
    132  1.3    bouyer #define AXP_SENSOR_BATTI	8
    133  1.3    bouyer #define AXP_SENSOR_APSV		9
    134  1.3    bouyer #define AXP_SENSOR_TEMP		10
    135  1.3    bouyer #define AXP_NSENSORS (AXP_SENSOR_TEMP + 1)
    136  1.3    bouyer 
    137  1.3    bouyer /* define per-ADC LSB to uV/uA values */
    138  1.3    bouyer static int axp20x_sensors_lsb[] = {
    139  1.3    bouyer 	   0, /* AXP_SENSOR_ACOK */
    140  1.3    bouyer 	1700, /* AXP_SENSOR_ACV */
    141  1.3    bouyer 	 625, /* AXP_SENSOR_ACI */
    142  1.3    bouyer 	   0,
    143  1.3    bouyer 	1700, /* AXP_SENSOR_VBUSV */
    144  1.3    bouyer 	 375, /* AXP_SENSOR_VBUSI */
    145  1.3    bouyer 	   0,
    146  1.3    bouyer 	1100, /* AXP_SENSOR_BATTV */
    147  1.3    bouyer 	 500, /* AXP_SENSOR_BATTI */
    148  1.3    bouyer 	1400, /* AXP_SENSOR_APSV */
    149  1.3    bouyer };
    150  1.3    bouyer 
    151  1.1  jmcneill 
    152  1.1  jmcneill struct axp20x_softc {
    153  1.1  jmcneill 	device_t	sc_dev;
    154  1.1  jmcneill 	i2c_tag_t	sc_i2c;
    155  1.1  jmcneill 	i2c_addr_t	sc_addr;
    156  1.1  jmcneill 
    157  1.3    bouyer 	uint8_t 	sc_inputstatus;
    158  1.3    bouyer 	uint8_t 	sc_powermode;
    159  1.3    bouyer 
    160  1.1  jmcneill 	struct sysmon_envsys *sc_sme;
    161  1.3    bouyer 	envsys_data_t	sc_sensor[AXP_NSENSORS];
    162  1.1  jmcneill };
    163  1.1  jmcneill 
    164  1.1  jmcneill static int	axp20x_match(device_t, cfdata_t, void *);
    165  1.1  jmcneill static void	axp20x_attach(device_t, device_t, void *);
    166  1.1  jmcneill 
    167  1.1  jmcneill static void	axp20x_sensors_refresh(struct sysmon_envsys *, envsys_data_t *);
    168  1.3    bouyer static int	axp20x_read(struct axp20x_softc *, uint8_t, uint8_t *, size_t, int);
    169  1.3    bouyer static int	axp20x_write(struct axp20x_softc *, uint8_t, uint8_t *, size_t, int);
    170  1.1  jmcneill 
    171  1.1  jmcneill CFATTACH_DECL_NEW(axp20x, sizeof(struct axp20x_softc),
    172  1.1  jmcneill     axp20x_match, axp20x_attach, NULL, NULL);
    173  1.1  jmcneill 
    174  1.1  jmcneill static int
    175  1.1  jmcneill axp20x_match(device_t parent, cfdata_t match, void *aux)
    176  1.1  jmcneill {
    177  1.1  jmcneill 	return 1;
    178  1.1  jmcneill }
    179  1.1  jmcneill 
    180  1.1  jmcneill static void
    181  1.1  jmcneill axp20x_attach(device_t parent, device_t self, void *aux)
    182  1.1  jmcneill {
    183  1.1  jmcneill 	struct axp20x_softc *sc = device_private(self);
    184  1.1  jmcneill 	struct i2c_attach_args *ia = aux;
    185  1.3    bouyer 	int first;
    186  1.3    bouyer 	int error;
    187  1.3    bouyer 	uint8_t value;
    188  1.1  jmcneill 
    189  1.1  jmcneill 	sc->sc_dev = self;
    190  1.1  jmcneill 	sc->sc_i2c = ia->ia_tag;
    191  1.1  jmcneill 	sc->sc_addr = ia->ia_addr;
    192  1.1  jmcneill 
    193  1.3    bouyer 	error = axp20x_read(sc, AXP_INPUT_STATUS,
    194  1.3    bouyer 	    &sc->sc_inputstatus, 1, I2C_F_POLL);
    195  1.3    bouyer 	if (error) {
    196  1.3    bouyer 		aprint_error(": can't read status: %d\n", error);
    197  1.3    bouyer 		return;
    198  1.3    bouyer 	}
    199  1.3    bouyer 	error = axp20x_read(sc, AXP_POWER_MODE,
    200  1.3    bouyer 	    &sc->sc_powermode, 1, I2C_F_POLL);
    201  1.3    bouyer 	if (error) {
    202  1.3    bouyer 		aprint_error(": can't read power mode: %d\n", error);
    203  1.3    bouyer 		return;
    204  1.3    bouyer 	}
    205  1.3    bouyer 	value = AXP_ADC_EN1_ACV | AXP_ADC_EN1_ACI | AXP_ADC_EN1_VBUSV | AXP_ADC_EN1_VBUSI | AXP_ADC_EN1_APSV | AXP_ADC_EN1_TS;
    206  1.3    bouyer 	if (sc->sc_powermode & AXP_POWER_MODE_BATTOK)
    207  1.3    bouyer 		value |= AXP_ADC_EN1_BATTV | AXP_ADC_EN1_BATTI;
    208  1.3    bouyer 	error = axp20x_write(sc, AXP_ADC_EN1, &value, 1, I2C_F_POLL);
    209  1.3    bouyer 	if (error) {
    210  1.3    bouyer 		aprint_error(": can't set AXP_ADC_EN1\n");
    211  1.3    bouyer 		return;
    212  1.3    bouyer 	}
    213  1.3    bouyer 	error = axp20x_read(sc, AXP_ADC_EN2, &value, 1, I2C_F_POLL);
    214  1.3    bouyer 	if (error) {
    215  1.3    bouyer 		aprint_error(": can't read AXP_ADC_EN2\n");
    216  1.3    bouyer 		return;
    217  1.3    bouyer 	}
    218  1.3    bouyer 	value |= AXP_ADC_EN2_TEMP;
    219  1.3    bouyer 	error = axp20x_write(sc, AXP_ADC_EN2, &value, 1, I2C_F_POLL);
    220  1.3    bouyer 	if (error) {
    221  1.3    bouyer 		aprint_error(": can't set AXP_ADC_EN2\n");
    222  1.3    bouyer 		return;
    223  1.3    bouyer 	}
    224  1.3    bouyer 
    225  1.1  jmcneill 	aprint_naive("\n");
    226  1.3    bouyer 	first = 1;
    227  1.3    bouyer 	if (sc->sc_inputstatus & AXP_INPUT_STATUS_AC_OK) {
    228  1.3    bouyer 		aprint_normal(": AC used");
    229  1.3    bouyer 		first = 0;
    230  1.3    bouyer 	} else if (sc->sc_inputstatus & AXP_INPUT_STATUS_AC_PRESENT) {
    231  1.3    bouyer 		aprint_normal(": AC present (but unused)");
    232  1.3    bouyer 		first = 0;
    233  1.3    bouyer 	}
    234  1.3    bouyer 	if (sc->sc_inputstatus & AXP_INPUT_STATUS_VBUS_OK) {
    235  1.3    bouyer 		aprint_normal("%s VBUS used", first ? ":" : ",");
    236  1.3    bouyer 		first = 0;
    237  1.3    bouyer 	} else if (sc->sc_inputstatus & AXP_INPUT_STATUS_VBUS_PRESENT) {
    238  1.3    bouyer 		aprint_normal("%s VBUS present (but unused)", first ? ":" : ",");
    239  1.3    bouyer 		first = 0;
    240  1.3    bouyer 	}
    241  1.3    bouyer 	if (sc->sc_powermode & AXP_POWER_MODE_BATTOK) {
    242  1.3    bouyer 		aprint_normal("%s battery present", first ? ":" : ",");
    243  1.3    bouyer 	}
    244  1.1  jmcneill 	aprint_normal("\n");
    245  1.1  jmcneill 
    246  1.1  jmcneill 	sc->sc_sme = sysmon_envsys_create();
    247  1.1  jmcneill 	sc->sc_sme->sme_name = device_xname(self);
    248  1.1  jmcneill 	sc->sc_sme->sme_cookie = sc;
    249  1.1  jmcneill 	sc->sc_sme->sme_refresh = axp20x_sensors_refresh;
    250  1.1  jmcneill 
    251  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_ACOK].units = ENVSYS_INDICATOR;
    252  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_ACOK].state = ENVSYS_SVALID;
    253  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_ACOK].value_cur =
    254  1.3    bouyer 	    (sc->sc_inputstatus & AXP_INPUT_STATUS_AC_OK) ? 1 : 0;
    255  1.3    bouyer 	snprintf(sc->sc_sensor[AXP_SENSOR_ACOK].desc,
    256  1.3    bouyer 	    sizeof(sc->sc_sensor[AXP_SENSOR_ACOK].desc), "AC input");
    257  1.3    bouyer 	sysmon_envsys_sensor_attach(sc->sc_sme, &sc->sc_sensor[AXP_SENSOR_ACOK]);
    258  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_ACV].units = ENVSYS_SVOLTS_DC;
    259  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_ACV].state = ENVSYS_SINVALID;
    260  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_ACV].flags = ENVSYS_FHAS_ENTROPY;
    261  1.3    bouyer 	snprintf(sc->sc_sensor[AXP_SENSOR_ACV].desc,
    262  1.3    bouyer 	    sizeof(sc->sc_sensor[AXP_SENSOR_ACV].desc), "AC input voltage");
    263  1.3    bouyer 	sysmon_envsys_sensor_attach(sc->sc_sme, &sc->sc_sensor[AXP_SENSOR_ACV]);
    264  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_ACI].units = ENVSYS_SAMPS;
    265  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_ACI].state = ENVSYS_SINVALID;
    266  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_ACI].flags = ENVSYS_FHAS_ENTROPY;
    267  1.3    bouyer 	snprintf(sc->sc_sensor[AXP_SENSOR_ACI].desc,
    268  1.3    bouyer 	    sizeof(sc->sc_sensor[AXP_SENSOR_ACI].desc), "AC input current");
    269  1.3    bouyer 	sysmon_envsys_sensor_attach(sc->sc_sme, &sc->sc_sensor[AXP_SENSOR_ACI]);
    270  1.3    bouyer 
    271  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_VBUSOK].units = ENVSYS_INDICATOR;
    272  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_VBUSOK].state = ENVSYS_SVALID;
    273  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_VBUSOK].value_cur =
    274  1.3    bouyer 	    (sc->sc_inputstatus & AXP_INPUT_STATUS_VBUS_OK) ? 1 : 0;
    275  1.3    bouyer 	snprintf(sc->sc_sensor[AXP_SENSOR_VBUSOK].desc,
    276  1.3    bouyer 	    sizeof(sc->sc_sensor[AXP_SENSOR_VBUSOK].desc), "VBUS input");
    277  1.3    bouyer 	sysmon_envsys_sensor_attach(sc->sc_sme, &sc->sc_sensor[AXP_SENSOR_VBUSOK]);
    278  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_VBUSV].units = ENVSYS_SVOLTS_DC;
    279  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_VBUSV].state = ENVSYS_SINVALID;
    280  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_VBUSV].flags = ENVSYS_FHAS_ENTROPY;
    281  1.3    bouyer 	snprintf(sc->sc_sensor[AXP_SENSOR_VBUSV].desc,
    282  1.3    bouyer 	    sizeof(sc->sc_sensor[AXP_SENSOR_VBUSV].desc), "VBUS input voltage");
    283  1.3    bouyer 	sysmon_envsys_sensor_attach(sc->sc_sme, &sc->sc_sensor[AXP_SENSOR_VBUSV]);
    284  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_VBUSI].units = ENVSYS_SAMPS;
    285  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_VBUSI].state = ENVSYS_SINVALID;
    286  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_VBUSI].flags = ENVSYS_FHAS_ENTROPY;
    287  1.3    bouyer 	snprintf(sc->sc_sensor[AXP_SENSOR_VBUSI].desc,
    288  1.3    bouyer 	    sizeof(sc->sc_sensor[AXP_SENSOR_VBUSI].desc), "VBUS input current");
    289  1.3    bouyer 	sysmon_envsys_sensor_attach(sc->sc_sme, &sc->sc_sensor[AXP_SENSOR_VBUSI]);
    290  1.3    bouyer 
    291  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_BATTOK].units = ENVSYS_INDICATOR;
    292  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_BATTOK].state = ENVSYS_SVALID;
    293  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_BATTOK].value_cur =
    294  1.3    bouyer 	    (sc->sc_powermode & AXP_POWER_MODE_BATTOK) ? 1 : 0;
    295  1.3    bouyer 	snprintf(sc->sc_sensor[AXP_SENSOR_BATTOK].desc,
    296  1.3    bouyer 	    sizeof(sc->sc_sensor[AXP_SENSOR_BATTOK].desc), "battery");
    297  1.3    bouyer 	sysmon_envsys_sensor_attach(sc->sc_sme, &sc->sc_sensor[AXP_SENSOR_BATTOK]);
    298  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_BATTV].units = ENVSYS_SVOLTS_DC;
    299  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_BATTV].state = ENVSYS_SINVALID;
    300  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_BATTV].flags = ENVSYS_FHAS_ENTROPY;
    301  1.3    bouyer 	snprintf(sc->sc_sensor[AXP_SENSOR_BATTV].desc,
    302  1.3    bouyer 	    sizeof(sc->sc_sensor[AXP_SENSOR_BATTV].desc), "battery voltage");
    303  1.3    bouyer 	sysmon_envsys_sensor_attach(sc->sc_sme, &sc->sc_sensor[AXP_SENSOR_BATTV]);
    304  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_BATTI].units = ENVSYS_SAMPS;
    305  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_BATTI].state = ENVSYS_SINVALID;
    306  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_BATTI].flags = ENVSYS_FHAS_ENTROPY;
    307  1.3    bouyer 	snprintf(sc->sc_sensor[AXP_SENSOR_BATTI].desc,
    308  1.3    bouyer 	    sizeof(sc->sc_sensor[AXP_SENSOR_BATTI].desc), "battery current");
    309  1.3    bouyer 	sysmon_envsys_sensor_attach(sc->sc_sme, &sc->sc_sensor[AXP_SENSOR_BATTI]);
    310  1.3    bouyer 
    311  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_APSV].units = ENVSYS_SVOLTS_DC;
    312  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_APSV].state = ENVSYS_SINVALID;
    313  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_APSV].flags = ENVSYS_FHAS_ENTROPY;
    314  1.3    bouyer 	snprintf(sc->sc_sensor[AXP_SENSOR_APSV].desc,
    315  1.3    bouyer 	    sizeof(sc->sc_sensor[AXP_SENSOR_APSV].desc), "APS output voltage");
    316  1.3    bouyer 	sysmon_envsys_sensor_attach(sc->sc_sme, &sc->sc_sensor[AXP_SENSOR_APSV]);
    317  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_TEMP].units = ENVSYS_STEMP;
    318  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_TEMP].state = ENVSYS_SINVALID;
    319  1.3    bouyer 	sc->sc_sensor[AXP_SENSOR_TEMP].flags = ENVSYS_FHAS_ENTROPY;
    320  1.3    bouyer 	snprintf(sc->sc_sensor[AXP_SENSOR_TEMP].desc,
    321  1.3    bouyer 	    sizeof(sc->sc_sensor[AXP_SENSOR_TEMP].desc),
    322  1.1  jmcneill 	    "internal temperature");
    323  1.3    bouyer 	sysmon_envsys_sensor_attach(sc->sc_sme, &sc->sc_sensor[AXP_SENSOR_TEMP]);
    324  1.1  jmcneill 
    325  1.1  jmcneill 	sysmon_envsys_register(sc->sc_sme);
    326  1.3    bouyer 
    327  1.3    bouyer 	if (axp20x_read(sc, AXP_DCDC2, &value, 1, I2C_F_POLL) == 0) {
    328  1.3    bouyer 		aprint_normal_dev(sc->sc_dev, ": DCDC2 %dmV\n",
    329  1.3    bouyer 		    (int)(700 + (value & AXP_DCDC2_VOLT_MASK) * 25));
    330  1.3    bouyer 	}
    331  1.3    bouyer 	if (axp20x_read(sc, AXP_DCDC3, &value, 1, I2C_F_POLL) == 0) {
    332  1.3    bouyer 		aprint_normal_dev(sc->sc_dev, ": DCDC3 %dmV\n",
    333  1.3    bouyer 		    (int)(700 + (value & AXP_DCDC3_VOLT_MASK) * 25));
    334  1.3    bouyer 	}
    335  1.3    bouyer 	if (axp20x_read(sc, AXP_LDO2_4, &value, 1, I2C_F_POLL) == 0) {
    336  1.3    bouyer 		aprint_normal_dev(sc->sc_dev, ": LDO2 %dmV, LDO4 %dmV\n",
    337  1.3    bouyer 		    (int)(1800 +
    338  1.3    bouyer 		    ((value & AXP_LDO2_VOLT_MASK) >> AXP_LDO2_VOLT_SHIFT) * 100
    339  1.3    bouyer 		    ),
    340  1.3    bouyer 		    ldo4_mvV[(value & AXP_LDO4_VOLT_MASK) >> AXP_LDO4_VOLT_SHIFT]);
    341  1.3    bouyer 	}
    342  1.3    bouyer 	if (axp20x_read(sc, AXP_LDO3, &value, 1, I2C_F_POLL) == 0) {
    343  1.3    bouyer 		if (value & AXP_LDO3_TRACK) {
    344  1.3    bouyer 			aprint_normal_dev(sc->sc_dev, ": LDO3: tracking\n");
    345  1.3    bouyer 		} else {
    346  1.3    bouyer 			aprint_normal_dev(sc->sc_dev, ": LDO3 %dmV\n",
    347  1.3    bouyer 			    (int)(700 + (value & AXP_LDO3_VOLT_MASK) * 25));
    348  1.3    bouyer 		}
    349  1.3    bouyer 	}
    350  1.1  jmcneill }
    351  1.1  jmcneill 
    352  1.1  jmcneill static void
    353  1.3    bouyer axp20x_sensors_refresh_volt(struct axp20x_softc *sc, int reg,
    354  1.3    bouyer     envsys_data_t *edata)
    355  1.1  jmcneill {
    356  1.1  jmcneill 	uint8_t buf[2];
    357  1.1  jmcneill 	int error;
    358  1.1  jmcneill 
    359  1.3    bouyer 	error = axp20x_read(sc, reg, buf, sizeof(buf), 0);
    360  1.3    bouyer 	if (error) {
    361  1.3    bouyer 		edata->state = ENVSYS_SINVALID;
    362  1.3    bouyer 	} else {
    363  1.3    bouyer 		edata->value_cur = ((buf[0] << 4) | (buf[1] & 0xf)) *
    364  1.3    bouyer 		    axp20x_sensors_lsb[edata->sensor];
    365  1.3    bouyer 		edata->state = ENVSYS_SVALID;
    366  1.3    bouyer 	}
    367  1.3    bouyer }
    368  1.3    bouyer 
    369  1.3    bouyer static void
    370  1.3    bouyer axp20x_sensors_refresh_amp(struct axp20x_softc *sc, int reg,
    371  1.3    bouyer     envsys_data_t *edata)
    372  1.3    bouyer {
    373  1.3    bouyer 	uint8_t buf[2];
    374  1.3    bouyer 	int error;
    375  1.1  jmcneill 
    376  1.3    bouyer 	error = axp20x_read(sc, reg, buf, sizeof(buf), 0);
    377  1.1  jmcneill 	if (error) {
    378  1.1  jmcneill 		edata->state = ENVSYS_SINVALID;
    379  1.1  jmcneill 	} else {
    380  1.3    bouyer 		edata->value_cur = ((buf[0] << 4) | (buf[1] & 0xf)) *
    381  1.3    bouyer 		    axp20x_sensors_lsb[edata->sensor];
    382  1.1  jmcneill 		edata->state = ENVSYS_SVALID;
    383  1.1  jmcneill 	}
    384  1.1  jmcneill }
    385  1.1  jmcneill 
    386  1.3    bouyer static void
    387  1.3    bouyer axp20x_sensors_refresh(struct sysmon_envsys *sme, envsys_data_t *edata)
    388  1.3    bouyer {
    389  1.3    bouyer 	struct axp20x_softc *sc = sme->sme_cookie;
    390  1.3    bouyer 	uint8_t buf[2];
    391  1.3    bouyer 	int error;
    392  1.3    bouyer 
    393  1.3    bouyer 	switch(edata->sensor) {
    394  1.3    bouyer 	case AXP_SENSOR_ACOK:
    395  1.3    bouyer 	case AXP_SENSOR_VBUSOK:
    396  1.3    bouyer 		error = axp20x_read(sc, AXP_INPUT_STATUS,
    397  1.3    bouyer 		    &sc->sc_inputstatus, 1, 0);
    398  1.3    bouyer 		if (error) {
    399  1.3    bouyer 			edata->state = ENVSYS_SINVALID;
    400  1.3    bouyer 			return;
    401  1.3    bouyer 		}
    402  1.3    bouyer 		if (edata->sensor == AXP_SENSOR_ACOK) {
    403  1.3    bouyer 		    edata->value_cur =
    404  1.3    bouyer 			(sc->sc_inputstatus & AXP_INPUT_STATUS_AC_OK) ? 1 : 0;
    405  1.3    bouyer 		} else {
    406  1.3    bouyer 		    edata->value_cur =
    407  1.3    bouyer 			(sc->sc_inputstatus & AXP_INPUT_STATUS_VBUS_OK) ? 1 : 0;
    408  1.3    bouyer 		}
    409  1.3    bouyer 		edata->state = ENVSYS_SVALID;
    410  1.3    bouyer 		return;
    411  1.3    bouyer 	case AXP_SENSOR_BATTOK:
    412  1.3    bouyer 		error = axp20x_read(sc, AXP_POWER_MODE,
    413  1.3    bouyer 		    &sc->sc_powermode, 1, 0);
    414  1.3    bouyer 		if (error) {
    415  1.3    bouyer 			edata->state = ENVSYS_SINVALID;
    416  1.3    bouyer 			return;
    417  1.3    bouyer 		}
    418  1.3    bouyer 		edata->value_cur =
    419  1.3    bouyer 		    (sc->sc_powermode & AXP_POWER_MODE_BATTOK) ? 1 : 0;
    420  1.3    bouyer 		return;
    421  1.3    bouyer 	case AXP_SENSOR_ACV:
    422  1.3    bouyer 		if (sc->sc_inputstatus & AXP_INPUT_STATUS_AC_OK)
    423  1.3    bouyer 			axp20x_sensors_refresh_volt(sc, AXP_ACV_MON_REG, edata);
    424  1.3    bouyer 		else
    425  1.3    bouyer 			edata->state = ENVSYS_SINVALID;
    426  1.3    bouyer 		return;
    427  1.3    bouyer 	case AXP_SENSOR_ACI:
    428  1.3    bouyer 		if (sc->sc_inputstatus & AXP_INPUT_STATUS_AC_OK)
    429  1.3    bouyer 			axp20x_sensors_refresh_amp(sc, AXP_ACI_MON_REG, edata);
    430  1.3    bouyer 		else
    431  1.3    bouyer 			edata->state = ENVSYS_SINVALID;
    432  1.3    bouyer 		return;
    433  1.3    bouyer 	case AXP_SENSOR_VBUSV:
    434  1.3    bouyer 		if (sc->sc_inputstatus & AXP_INPUT_STATUS_VBUS_OK)
    435  1.3    bouyer 			axp20x_sensors_refresh_volt(sc, AXP_VBUSV_MON_REG, edata);
    436  1.3    bouyer 		else
    437  1.3    bouyer 			edata->state = ENVSYS_SINVALID;
    438  1.3    bouyer 		return;
    439  1.3    bouyer 	case AXP_SENSOR_VBUSI:
    440  1.3    bouyer 		if (sc->sc_inputstatus & AXP_INPUT_STATUS_VBUS_OK)
    441  1.3    bouyer 			axp20x_sensors_refresh_amp(sc, AXP_VBUSI_MON_REG, edata);
    442  1.3    bouyer 		else
    443  1.3    bouyer 			edata->state = ENVSYS_SINVALID;
    444  1.3    bouyer 		return;
    445  1.3    bouyer 	case AXP_SENSOR_BATTV:
    446  1.3    bouyer 		if (sc->sc_powermode & AXP_POWER_MODE_BATTOK)
    447  1.3    bouyer 			axp20x_sensors_refresh_volt(sc, AXP_BATTV_MON_REG, edata);
    448  1.3    bouyer 		else
    449  1.3    bouyer 			edata->state = ENVSYS_SINVALID;
    450  1.3    bouyer 		return;
    451  1.3    bouyer 	case AXP_SENSOR_BATTI:
    452  1.3    bouyer 		if ((sc->sc_powermode & AXP_POWER_MODE_BATTOK) == 0) {
    453  1.3    bouyer 			edata->state = ENVSYS_SINVALID;
    454  1.3    bouyer 			return;
    455  1.3    bouyer 		}
    456  1.3    bouyer 		error = axp20x_read(sc, AXP_POWER_MODE,
    457  1.3    bouyer 		    &sc->sc_inputstatus, 1, 0);
    458  1.3    bouyer 		if (error) {
    459  1.3    bouyer 			edata->state = ENVSYS_SINVALID;
    460  1.3    bouyer 			return;
    461  1.3    bouyer 		}
    462  1.3    bouyer 		if (sc->sc_inputstatus & AXP_POWER_MODE_CHARGING) {
    463  1.3    bouyer 			axp20x_sensors_refresh_amp(sc, AXP_BATTCI_MON_REG,
    464  1.3    bouyer 			    edata);
    465  1.3    bouyer 			edata->value_cur = -edata->value_cur;
    466  1.3    bouyer 		} else {
    467  1.3    bouyer 			axp20x_sensors_refresh_amp(sc, AXP_BATTDI_MON_REG,
    468  1.3    bouyer 			    edata);
    469  1.3    bouyer 		}
    470  1.3    bouyer 		return;
    471  1.3    bouyer 	case AXP_SENSOR_APSV:
    472  1.3    bouyer 		axp20x_sensors_refresh_volt(sc, AXP_APSV_MON_REG, edata);
    473  1.3    bouyer 		return;
    474  1.3    bouyer 	case AXP_SENSOR_TEMP:
    475  1.3    bouyer 		error = axp20x_read(sc, AXP_TEMP_MON_REG, buf, sizeof(buf), 0);
    476  1.3    bouyer 		if (error) {
    477  1.3    bouyer 			edata->state = ENVSYS_SINVALID;
    478  1.3    bouyer 		} else {
    479  1.3    bouyer 			/* between -144.7C and 264.8C, step +0.1C */
    480  1.3    bouyer 			edata->value_cur =
    481  1.3    bouyer 			    (((buf[0] << 4) | (buf[1] & 0xf)) - 1447)
    482  1.3    bouyer 			   * 100000 + 273150000;
    483  1.3    bouyer 			edata->state = ENVSYS_SVALID;
    484  1.3    bouyer 		}
    485  1.3    bouyer 		return;
    486  1.3    bouyer 	default:
    487  1.3    bouyer 		aprint_error_dev(sc->sc_dev, ": invalid sensor %d\n",
    488  1.3    bouyer 		    edata->sensor);
    489  1.3    bouyer 	}
    490  1.3    bouyer }
    491  1.3    bouyer 
    492  1.3    bouyer static int
    493  1.3    bouyer axp20x_read(struct axp20x_softc *sc, uint8_t reg, uint8_t *val, size_t len,
    494  1.3    bouyer     int flags)
    495  1.3    bouyer {
    496  1.3    bouyer 	int ret;
    497  1.3    bouyer 	iic_acquire_bus(sc->sc_i2c, flags);
    498  1.3    bouyer 	ret =  iic_smbus_block_read(sc->sc_i2c, sc->sc_addr,
    499  1.3    bouyer 	    reg, val, len, flags);
    500  1.3    bouyer 	iic_release_bus(sc->sc_i2c, flags);
    501  1.3    bouyer 	return ret;
    502  1.3    bouyer 
    503  1.3    bouyer }
    504  1.3    bouyer 
    505  1.1  jmcneill static int
    506  1.3    bouyer axp20x_write(struct axp20x_softc *sc, uint8_t reg, uint8_t *val, size_t len,
    507  1.3    bouyer     int flags)
    508  1.1  jmcneill {
    509  1.3    bouyer 	int ret;
    510  1.3    bouyer 	iic_acquire_bus(sc->sc_i2c, flags);
    511  1.3    bouyer 	ret = iic_smbus_block_write(sc->sc_i2c, sc->sc_addr,
    512  1.3    bouyer 	    reg, val, len, flags);
    513  1.3    bouyer 	iic_release_bus(sc->sc_i2c, flags);
    514  1.3    bouyer 	return ret;
    515  1.3    bouyer }
    516  1.3    bouyer 
    517  1.3    bouyer int
    518  1.3    bouyer axp20x_set_dcdc(device_t dev, int dcdc, int mvolt, bool poll)
    519  1.3    bouyer {
    520  1.3    bouyer 	struct axp20x_softc *sc = device_private(dev);
    521  1.3    bouyer 	int ret;
    522  1.3    bouyer 	int value;
    523  1.3    bouyer 	uint8_t reg;
    524  1.3    bouyer 
    525  1.3    bouyer 	KASSERT(sc != NULL);
    526  1.3    bouyer 	value = (mvolt - 700) / 25;
    527  1.3    bouyer 	switch (dcdc) {
    528  1.3    bouyer 	case AXP20X_DCDC2:
    529  1.3    bouyer 		value <<= AXP_DCDC2_VOLT_SHIFT;
    530  1.3    bouyer 		if (value > AXP_DCDC2_VOLT_MASK)
    531  1.3    bouyer 			return EINVAL;
    532  1.3    bouyer 		reg = value & AXP_DCDC2_VOLT_MASK;
    533  1.3    bouyer 		ret = axp20x_write(sc, AXP_DCDC2, &reg, 1,
    534  1.3    bouyer 		    poll ? I2C_F_POLL : 0);
    535  1.3    bouyer 		if (ret)
    536  1.3    bouyer 			return ret;
    537  1.3    bouyer 		if (axp20x_read(sc, AXP_DCDC2, &reg, 1, poll ? I2C_F_POLL : 0)
    538  1.3    bouyer 		  == 0) {
    539  1.3    bouyer 			aprint_normal_dev(sc->sc_dev,
    540  1.3    bouyer 			    ": DCDC2 changed to %dmV\n",
    541  1.3    bouyer 			    (int)(700 + (reg & AXP_DCDC2_VOLT_MASK) * 25));
    542  1.3    bouyer 		}
    543  1.3    bouyer 		return 0;
    544  1.3    bouyer 
    545  1.3    bouyer 	case AXP20X_DCDC3:
    546  1.3    bouyer 		value <<= AXP_DCDC2_VOLT_SHIFT;
    547  1.3    bouyer 		if (value > AXP_DCDC2_VOLT_MASK)
    548  1.3    bouyer 			return EINVAL;
    549  1.3    bouyer 		reg = value & AXP_DCDC2_VOLT_MASK;
    550  1.3    bouyer 		ret = axp20x_write(sc, AXP_DCDC2, &reg, 1,
    551  1.3    bouyer 		    poll ? I2C_F_POLL : 0);
    552  1.3    bouyer 		if (ret)
    553  1.3    bouyer 			return ret;
    554  1.3    bouyer 		if (axp20x_read(sc, AXP_DCDC2, &reg, 1, poll ? I2C_F_POLL : 0)
    555  1.3    bouyer 		  == 0) {
    556  1.3    bouyer 			aprint_normal_dev(sc->sc_dev,
    557  1.3    bouyer 			    ": DCDC2 changed to %dmV\n",
    558  1.3    bouyer 			    (int)(700 + (reg & AXP_DCDC2_VOLT_MASK) * 25));
    559  1.3    bouyer 		}
    560  1.3    bouyer 		return 0;
    561  1.3    bouyer 	default:
    562  1.3    bouyer 		aprint_error_dev(dev, "wrong DCDC %d\n", dcdc);
    563  1.3    bouyer 		return EINVAL;
    564  1.3    bouyer 	}
    565  1.1  jmcneill }
    566