lm85.c 45.8 KB
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/*
    lm85.c - Part of lm_sensors, Linux kernel modules for hardware
             monitoring
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    Copyright (c) 1998, 1999  Frodo Looijaard <frodol@dds.nl>
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    Copyright (c) 2002, 2003  Philip Pokorny <ppokorny@penguincomputing.com>
    Copyright (c) 2003        Margit Schubert-While <margitsw@t-online.de>
    Copyright (c) 2004        Justin Thiessen <jthiessen@penguincomputing.com>
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    Copyright (C) 2007, 2008  Jean Delvare <khali@linux-fr.org>
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    Chip details at	      <http://www.national.com/ds/LM/LM85.pdf>

    This program is free software; you can redistribute it and/or modify
    it under the terms of the GNU General Public License as published by
    the Free Software Foundation; either version 2 of the License, or
    (at your option) any later version.

    This program is distributed in the hope that it will be useful,
    but WITHOUT ANY WARRANTY; without even the implied warranty of
    MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
    GNU General Public License for more details.

    You should have received a copy of the GNU General Public License
    along with this program; if not, write to the Free Software
    Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
*/

#include <linux/module.h>
#include <linux/init.h>
#include <linux/slab.h>
#include <linux/jiffies.h>
#include <linux/i2c.h>
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#include <linux/hwmon.h>
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#include <linux/hwmon-vid.h>
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#include <linux/hwmon-sysfs.h>
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#include <linux/err.h>
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#include <linux/mutex.h>
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/* Addresses to scan */
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static const unsigned short normal_i2c[] = { 0x2c, 0x2d, 0x2e, I2C_CLIENT_END };
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/* Insmod parameters */
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I2C_CLIENT_INSMOD_6(lm85b, lm85c, adm1027, adt7463, emc6d100, emc6d102);
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/* The LM85 registers */

#define	LM85_REG_IN(nr)			(0x20 + (nr))
#define	LM85_REG_IN_MIN(nr)		(0x44 + (nr) * 2)
#define	LM85_REG_IN_MAX(nr)		(0x45 + (nr) * 2)

#define	LM85_REG_TEMP(nr)		(0x25 + (nr))
#define	LM85_REG_TEMP_MIN(nr)		(0x4e + (nr) * 2)
#define	LM85_REG_TEMP_MAX(nr)		(0x4f + (nr) * 2)

/* Fan speeds are LSB, MSB (2 bytes) */
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#define	LM85_REG_FAN(nr)		(0x28 + (nr) * 2)
#define	LM85_REG_FAN_MIN(nr)		(0x54 + (nr) * 2)
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#define	LM85_REG_PWM(nr)		(0x30 + (nr))

#define	LM85_REG_COMPANY		0x3e
#define	LM85_REG_VERSTEP		0x3f
/* These are the recognized values for the above regs */
#define	LM85_COMPANY_NATIONAL		0x01
#define	LM85_COMPANY_ANALOG_DEV		0x41
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#define	LM85_COMPANY_SMSC		0x5c
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#define	LM85_VERSTEP_VMASK              0xf0
#define	LM85_VERSTEP_GENERIC		0x60
#define	LM85_VERSTEP_LM85C		0x60
#define	LM85_VERSTEP_LM85B		0x62
#define	LM85_VERSTEP_ADM1027		0x60
#define	LM85_VERSTEP_ADT7463		0x62
#define	LM85_VERSTEP_ADT7463C		0x6A
#define	LM85_VERSTEP_EMC6D100_A0        0x60
#define	LM85_VERSTEP_EMC6D100_A1        0x61
#define	LM85_VERSTEP_EMC6D102		0x65

#define	LM85_REG_CONFIG			0x40

#define	LM85_REG_ALARM1			0x41
#define	LM85_REG_ALARM2			0x42

#define	LM85_REG_VID			0x43

/* Automated FAN control */
#define	LM85_REG_AFAN_CONFIG(nr)	(0x5c + (nr))
#define	LM85_REG_AFAN_RANGE(nr)		(0x5f + (nr))
#define	LM85_REG_AFAN_SPIKE1		0x62
#define	LM85_REG_AFAN_MINPWM(nr)	(0x64 + (nr))
#define	LM85_REG_AFAN_LIMIT(nr)		(0x67 + (nr))
#define	LM85_REG_AFAN_CRITICAL(nr)	(0x6a + (nr))
#define	LM85_REG_AFAN_HYST1		0x6d
#define	LM85_REG_AFAN_HYST2		0x6e

#define	ADM1027_REG_EXTEND_ADC1		0x76
#define	ADM1027_REG_EXTEND_ADC2		0x77

#define EMC6D100_REG_ALARM3             0x7d
/* IN5, IN6 and IN7 */
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#define	EMC6D100_REG_IN(nr)             (0x70 + ((nr) - 5))
#define	EMC6D100_REG_IN_MIN(nr)         (0x73 + ((nr) - 5) * 2)
#define	EMC6D100_REG_IN_MAX(nr)         (0x74 + ((nr) - 5) * 2)
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#define	EMC6D102_REG_EXTEND_ADC1	0x85
#define	EMC6D102_REG_EXTEND_ADC2	0x86
#define	EMC6D102_REG_EXTEND_ADC3	0x87
#define	EMC6D102_REG_EXTEND_ADC4	0x88


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/* Conversions. Rounding and limit checking is only done on the TO_REG
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   variants. Note that you should be a bit careful with which arguments
   these macros are called: arguments may be evaluated more than once.
 */

/* IN are scaled acording to built-in resistors */
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static const int lm85_scaling[] = {  /* .001 Volts */
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	2500, 2250, 3300, 5000, 12000,
	3300, 1500, 1800 /*EMC6D100*/
};
#define SCALE(val, from, to)	(((val) * (to) + ((from) / 2)) / (from))
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#define INS_TO_REG(n, val)	\
		SENSORS_LIMIT(SCALE(val, lm85_scaling[n], 192), 0, 255)
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#define INSEXT_FROM_REG(n, val, ext)	\
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		SCALE(((val) << 4) + (ext), 192 << 4, lm85_scaling[n])
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#define INS_FROM_REG(n, val)	SCALE((val), 192, lm85_scaling[n])
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/* FAN speed is measured using 90kHz clock */
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static inline u16 FAN_TO_REG(unsigned long val)
{
	if (!val)
		return 0xffff;
	return SENSORS_LIMIT(5400000 / val, 1, 0xfffe);
}
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#define FAN_FROM_REG(val)	((val) == 0 ? -1 : (val) == 0xffff ? 0 : \
				 5400000 / (val))
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/* Temperature is reported in .001 degC increments */
#define TEMP_TO_REG(val)	\
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		SENSORS_LIMIT(SCALE(val, 1000, 1), -127, 127)
#define TEMPEXT_FROM_REG(val, ext)	\
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		SCALE(((val) << 4) + (ext), 16, 1000)
#define TEMP_FROM_REG(val)	((val) * 1000)
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#define PWM_TO_REG(val)			SENSORS_LIMIT(val, 0, 255)
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#define PWM_FROM_REG(val)		(val)


/* ZONEs have the following parameters:
 *    Limit (low) temp,           1. degC
 *    Hysteresis (below limit),   1. degC (0-15)
 *    Range of speed control,     .1 degC (2-80)
 *    Critical (high) temp,       1. degC
 *
 * FAN PWMs have the following parameters:
 *    Reference Zone,                 1, 2, 3, etc.
 *    Spinup time,                    .05 sec
 *    PWM value at limit/low temp,    1 count
 *    PWM Frequency,                  1. Hz
 *    PWM is Min or OFF below limit,  flag
 *    Invert PWM output,              flag
 *
 * Some chips filter the temp, others the fan.
 *    Filter constant (or disabled)   .1 seconds
 */

/* These are the zone temperature range encodings in .001 degree C */
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static const int lm85_range_map[] = {
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	2000, 2500, 3300, 4000, 5000, 6600, 8000, 10000,
	13300, 16000, 20000, 26600, 32000, 40000, 53300, 80000
};

static int RANGE_TO_REG(int range)
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{
	int i;

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	if (range >= lm85_range_map[15])
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		return 15;
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	/* Find the closest match */
	for (i = 14; i >= 0; --i) {
		if (range >= lm85_range_map[i]) {
			if ((lm85_range_map[i + 1] - range) <
					(range - lm85_range_map[i]))
				return i + 1;
			return i;
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		}
	}
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	return 0;
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}
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#define RANGE_FROM_REG(val)	lm85_range_map[(val) & 0x0f]
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/* These are the PWM frequency encodings */
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static const int lm85_freq_map[8] = { /* 1 Hz */
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	10, 15, 23, 30, 38, 47, 61, 94
};
static const int adm1027_freq_map[8] = { /* 1 Hz */
	11, 15, 22, 29, 35, 44, 59, 88
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};

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static int FREQ_TO_REG(const int *map, int freq)
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{
	int i;

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	/* Find the closest match */
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	for (i = 0; i < 7; ++i)
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		if (freq <= (map[i] + map[i + 1]) / 2)
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			break;
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	return i;
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}
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static int FREQ_FROM_REG(const int *map, u8 reg)
{
	return map[reg & 0x07];
}
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/* Since we can't use strings, I'm abusing these numbers
 *   to stand in for the following meanings:
 *      1 -- PWM responds to Zone 1
 *      2 -- PWM responds to Zone 2
 *      3 -- PWM responds to Zone 3
 *     23 -- PWM responds to the higher temp of Zone 2 or 3
 *    123 -- PWM responds to highest of Zone 1, 2, or 3
 *      0 -- PWM is always at 0% (ie, off)
 *     -1 -- PWM is always at 100%
 *     -2 -- PWM responds to manual control
 */

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static const int lm85_zone_map[] = { 1, 2, 3, -1, 0, 23, 123, -2 };
#define ZONE_FROM_REG(val)	lm85_zone_map[(val) >> 5]
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static int ZONE_TO_REG(int zone)
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{
	int i;

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	for (i = 0; i <= 7; ++i)
		if (zone == lm85_zone_map[i])
			break;
	if (i > 7)   /* Not found. */
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		i = 3;  /* Always 100% */
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	return i << 5;
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}

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#define HYST_TO_REG(val)	SENSORS_LIMIT(((val) + 500) / 1000, 0, 15)
#define HYST_FROM_REG(val)	((val) * 1000)
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/* Chip sampling rates
 *
 * Some sensors are not updated more frequently than once per second
 *    so it doesn't make sense to read them more often than that.
 *    We cache the results and return the saved data if the driver
 *    is called again before a second has elapsed.
 *
 * Also, there is significant configuration data for this chip
 *    given the automatic PWM fan control that is possible.  There
 *    are about 47 bytes of config data to only 22 bytes of actual
 *    readings.  So, we keep the config data up to date in the cache
 *    when it is written and only sample it once every 1 *minute*
 */
#define LM85_DATA_INTERVAL  (HZ + HZ / 2)
#define LM85_CONFIG_INTERVAL  (1 * 60 * HZ)

/* LM85 can automatically adjust fan speeds based on temperature
 * This structure encapsulates an entire Zone config.  There are
 * three zones (one for each temperature input) on the lm85
 */
struct lm85_zone {
	s8 limit;	/* Low temp limit */
	u8 hyst;	/* Low limit hysteresis. (0-15) */
	u8 range;	/* Temp range, encoded */
	s8 critical;	/* "All fans ON" temp limit */
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	u8 off_desired; /* Actual "off" temperature specified.  Preserved
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			 * to prevent "drift" as other autofan control
			 * values change.
			 */
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	u8 max_desired; /* Actual "max" temperature specified.  Preserved
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			 * to prevent "drift" as other autofan control
			 * values change.
			 */
};

struct lm85_autofan {
	u8 config;	/* Register value */
	u8 min_pwm;	/* Minimum PWM value, encoded */
	u8 min_off;	/* Min PWM or OFF below "limit", flag */
};

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/* For each registered chip, we need to keep some data in memory.
   The structure is dynamically allocated. */
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struct lm85_data {
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	struct device *hwmon_dev;
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	const int *freq_map;
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	enum chips type;

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	struct mutex update_lock;
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	int valid;		/* !=0 if following fields are valid */
	unsigned long last_reading;	/* In jiffies */
	unsigned long last_config;	/* In jiffies */

	u8 in[8];		/* Register value */
	u8 in_max[8];		/* Register value */
	u8 in_min[8];		/* Register value */
	s8 temp[3];		/* Register value */
	s8 temp_min[3];		/* Register value */
	s8 temp_max[3];		/* Register value */
	u16 fan[4];		/* Register value */
	u16 fan_min[4];		/* Register value */
	u8 pwm[3];		/* Register value */
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	u8 pwm_freq[3];		/* Register encoding */
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	u8 temp_ext[3];		/* Decoded values */
	u8 in_ext[8];		/* Decoded values */
	u8 vid;			/* Register value */
	u8 vrm;			/* VRM version */
	u32 alarms;		/* Register encoding, combined */
	struct lm85_autofan autofan[3];
	struct lm85_zone zone[3];
};

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static int lm85_detect(struct i2c_client *client, int kind,
		       struct i2c_board_info *info);
static int lm85_probe(struct i2c_client *client,
		      const struct i2c_device_id *id);
static int lm85_remove(struct i2c_client *client);
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static int lm85_read_value(struct i2c_client *client, u8 reg);
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static void lm85_write_value(struct i2c_client *client, u8 reg, int value);
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static struct lm85_data *lm85_update_device(struct device *dev);


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static const struct i2c_device_id lm85_id[] = {
	{ "adm1027", adm1027 },
	{ "adt7463", adt7463 },
	{ "lm85", any_chip },
	{ "lm85b", lm85b },
	{ "lm85c", lm85c },
	{ "emc6d100", emc6d100 },
	{ "emc6d101", emc6d100 },
	{ "emc6d102", emc6d102 },
	{ }
};
MODULE_DEVICE_TABLE(i2c, lm85_id);

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static struct i2c_driver lm85_driver = {
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	.class		= I2C_CLASS_HWMON,
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	.driver = {
		.name   = "lm85",
	},
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	.probe		= lm85_probe,
	.remove		= lm85_remove,
	.id_table	= lm85_id,
	.detect		= lm85_detect,
	.address_data	= &addr_data,
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};


/* 4 Fans */
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static ssize_t show_fan(struct device *dev, struct device_attribute *attr,
		char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", FAN_FROM_REG(data->fan[nr]));
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}
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static ssize_t show_fan_min(struct device *dev, struct device_attribute *attr,
		char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", FAN_FROM_REG(data->fan_min[nr]));
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}
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static ssize_t set_fan_min(struct device *dev, struct device_attribute *attr,
		const char *buf, size_t count)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
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	unsigned long val = simple_strtoul(buf, NULL, 10);
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	mutex_lock(&data->update_lock);
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	data->fan_min[nr] = FAN_TO_REG(val);
	lm85_write_value(client, LM85_REG_FAN_MIN(nr), data->fan_min[nr]);
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	mutex_unlock(&data->update_lock);
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	return count;
}

#define show_fan_offset(offset)						\
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static SENSOR_DEVICE_ATTR(fan##offset##_input, S_IRUGO,			\
		show_fan, NULL, offset - 1);				\
static SENSOR_DEVICE_ATTR(fan##offset##_min, S_IRUGO | S_IWUSR,		\
		show_fan_min, set_fan_min, offset - 1)
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show_fan_offset(1);
show_fan_offset(2);
show_fan_offset(3);
show_fan_offset(4);

/* vid, vrm, alarms */

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static ssize_t show_vid_reg(struct device *dev, struct device_attribute *attr,
		char *buf)
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{
	struct lm85_data *data = lm85_update_device(dev);
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	int vid;

	if (data->type == adt7463 && (data->vid & 0x80)) {
		/* 6-pin VID (VRM 10) */
		vid = vid_from_reg(data->vid & 0x3f, data->vrm);
	} else {
		/* 5-pin VID (VRM 9) */
		vid = vid_from_reg(data->vid & 0x1f, data->vrm);
	}

	return sprintf(buf, "%d\n", vid);
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}

static DEVICE_ATTR(cpu0_vid, S_IRUGO, show_vid_reg, NULL);

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static ssize_t show_vrm_reg(struct device *dev, struct device_attribute *attr,
		char *buf)
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{
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	struct lm85_data *data = dev_get_drvdata(dev);
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	return sprintf(buf, "%ld\n", (long) data->vrm);
}

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static ssize_t store_vrm_reg(struct device *dev, struct device_attribute *attr,
		const char *buf, size_t count)
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{
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	struct lm85_data *data = dev_get_drvdata(dev);
	data->vrm = simple_strtoul(buf, NULL, 10);
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	return count;
}

static DEVICE_ATTR(vrm, S_IRUGO | S_IWUSR, show_vrm_reg, store_vrm_reg);

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static ssize_t show_alarms_reg(struct device *dev, struct device_attribute
		*attr, char *buf)
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{
	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%u\n", data->alarms);
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}

static DEVICE_ATTR(alarms, S_IRUGO, show_alarms_reg, NULL);

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static ssize_t show_alarm(struct device *dev, struct device_attribute *attr,
		char *buf)
{
	int nr = to_sensor_dev_attr(attr)->index;
	struct lm85_data *data = lm85_update_device(dev);
	return sprintf(buf, "%u\n", (data->alarms >> nr) & 1);
}

static SENSOR_DEVICE_ATTR(in0_alarm, S_IRUGO, show_alarm, NULL, 0);
static SENSOR_DEVICE_ATTR(in1_alarm, S_IRUGO, show_alarm, NULL, 1);
static SENSOR_DEVICE_ATTR(in2_alarm, S_IRUGO, show_alarm, NULL, 2);
static SENSOR_DEVICE_ATTR(in3_alarm, S_IRUGO, show_alarm, NULL, 3);
static SENSOR_DEVICE_ATTR(in4_alarm, S_IRUGO, show_alarm, NULL, 8);
static SENSOR_DEVICE_ATTR(in5_alarm, S_IRUGO, show_alarm, NULL, 18);
static SENSOR_DEVICE_ATTR(in6_alarm, S_IRUGO, show_alarm, NULL, 16);
static SENSOR_DEVICE_ATTR(in7_alarm, S_IRUGO, show_alarm, NULL, 17);
static SENSOR_DEVICE_ATTR(temp1_alarm, S_IRUGO, show_alarm, NULL, 4);
static SENSOR_DEVICE_ATTR(temp1_fault, S_IRUGO, show_alarm, NULL, 14);
static SENSOR_DEVICE_ATTR(temp2_alarm, S_IRUGO, show_alarm, NULL, 5);
static SENSOR_DEVICE_ATTR(temp3_alarm, S_IRUGO, show_alarm, NULL, 6);
static SENSOR_DEVICE_ATTR(temp3_fault, S_IRUGO, show_alarm, NULL, 15);
static SENSOR_DEVICE_ATTR(fan1_alarm, S_IRUGO, show_alarm, NULL, 10);
static SENSOR_DEVICE_ATTR(fan2_alarm, S_IRUGO, show_alarm, NULL, 11);
static SENSOR_DEVICE_ATTR(fan3_alarm, S_IRUGO, show_alarm, NULL, 12);
static SENSOR_DEVICE_ATTR(fan4_alarm, S_IRUGO, show_alarm, NULL, 13);

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/* pwm */

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static ssize_t show_pwm(struct device *dev, struct device_attribute *attr,
		char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", PWM_FROM_REG(data->pwm[nr]));
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}
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static ssize_t set_pwm(struct device *dev, struct device_attribute *attr,
		const char *buf, size_t count)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	long val = simple_strtol(buf, NULL, 10);

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	mutex_lock(&data->update_lock);
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	data->pwm[nr] = PWM_TO_REG(val);
	lm85_write_value(client, LM85_REG_PWM(nr), data->pwm[nr]);
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	mutex_unlock(&data->update_lock);
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	return count;
}
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static ssize_t show_pwm_enable(struct device *dev, struct device_attribute
		*attr, char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	int pwm_zone, enable;
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	pwm_zone = ZONE_FROM_REG(data->autofan[nr].config);
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	switch (pwm_zone) {
	case -1:	/* PWM is always at 100% */
		enable = 0;
		break;
	case 0:		/* PWM is always at 0% */
	case -2:	/* PWM responds to manual control */
		enable = 1;
		break;
	default:	/* PWM in automatic mode */
		enable = 2;
	}
	return sprintf(buf, "%d\n", enable);
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}

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static ssize_t set_pwm_enable(struct device *dev, struct device_attribute
		*attr, const char *buf, size_t count)
{
	int nr = to_sensor_dev_attr(attr)->index;
	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	long val = simple_strtol(buf, NULL, 10);
	u8 config;

	switch (val) {
	case 0:
		config = 3;
		break;
	case 1:
		config = 7;
		break;
	case 2:
		/* Here we have to choose arbitrarily one of the 5 possible
		   configurations; I go for the safest */
		config = 6;
		break;
	default:
		return -EINVAL;
	}

	mutex_lock(&data->update_lock);
	data->autofan[nr].config = lm85_read_value(client,
		LM85_REG_AFAN_CONFIG(nr));
	data->autofan[nr].config = (data->autofan[nr].config & ~0xe0)
		| (config << 5);
	lm85_write_value(client, LM85_REG_AFAN_CONFIG(nr),
		data->autofan[nr].config);
	mutex_unlock(&data->update_lock);
	return count;
}

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static ssize_t show_pwm_freq(struct device *dev,
		struct device_attribute *attr, char *buf)
{
	int nr = to_sensor_dev_attr(attr)->index;
	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", FREQ_FROM_REG(data->freq_map,
						  data->pwm_freq[nr]));
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}

static ssize_t set_pwm_freq(struct device *dev,
		struct device_attribute *attr, const char *buf, size_t count)
{
	int nr = to_sensor_dev_attr(attr)->index;
	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	long val = simple_strtol(buf, NULL, 10);

	mutex_lock(&data->update_lock);
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	data->pwm_freq[nr] = FREQ_TO_REG(data->freq_map, val);
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	lm85_write_value(client, LM85_REG_AFAN_RANGE(nr),
		(data->zone[nr].range << 4)
		| data->pwm_freq[nr]);
	mutex_unlock(&data->update_lock);
	return count;
}

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#define show_pwm_reg(offset)						\
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static SENSOR_DEVICE_ATTR(pwm##offset, S_IRUGO | S_IWUSR,		\
		show_pwm, set_pwm, offset - 1);				\
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static SENSOR_DEVICE_ATTR(pwm##offset##_enable, S_IRUGO | S_IWUSR,	\
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		show_pwm_enable, set_pwm_enable, offset - 1);		\
static SENSOR_DEVICE_ATTR(pwm##offset##_freq, S_IRUGO | S_IWUSR,	\
		show_pwm_freq, set_pwm_freq, offset - 1)
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show_pwm_reg(1);
show_pwm_reg(2);
show_pwm_reg(3);

/* Voltages */

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static ssize_t show_in(struct device *dev, struct device_attribute *attr,
		char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", INSEXT_FROM_REG(nr, data->in[nr],
						    data->in_ext[nr]));
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}
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static ssize_t show_in_min(struct device *dev, struct device_attribute *attr,
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		char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", INS_FROM_REG(nr, data->in_min[nr]));
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}
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static ssize_t set_in_min(struct device *dev, struct device_attribute *attr,
		const char *buf, size_t count)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	long val = simple_strtol(buf, NULL, 10);

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	mutex_lock(&data->update_lock);
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	data->in_min[nr] = INS_TO_REG(nr, val);
	lm85_write_value(client, LM85_REG_IN_MIN(nr), data->in_min[nr]);
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	mutex_unlock(&data->update_lock);
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	return count;
}
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static ssize_t show_in_max(struct device *dev, struct device_attribute *attr,
		char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", INS_FROM_REG(nr, data->in_max[nr]));
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}
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static ssize_t set_in_max(struct device *dev, struct device_attribute *attr,
		const char *buf, size_t count)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	long val = simple_strtol(buf, NULL, 10);

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	mutex_lock(&data->update_lock);
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	data->in_max[nr] = INS_TO_REG(nr, val);
	lm85_write_value(client, LM85_REG_IN_MAX(nr), data->in_max[nr]);
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	mutex_unlock(&data->update_lock);
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	return count;
}
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#define show_in_reg(offset)						\
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static SENSOR_DEVICE_ATTR(in##offset##_input, S_IRUGO,			\
		show_in, NULL, offset);					\
static SENSOR_DEVICE_ATTR(in##offset##_min, S_IRUGO | S_IWUSR,		\
		show_in_min, set_in_min, offset);			\
static SENSOR_DEVICE_ATTR(in##offset##_max, S_IRUGO | S_IWUSR,		\
		show_in_max, set_in_max, offset)
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show_in_reg(0);
show_in_reg(1);
show_in_reg(2);
show_in_reg(3);
show_in_reg(4);
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show_in_reg(5);
show_in_reg(6);
show_in_reg(7);
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/* Temps */

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static ssize_t show_temp(struct device *dev, struct device_attribute *attr,
		char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", TEMPEXT_FROM_REG(data->temp[nr],
						     data->temp_ext[nr]));
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}
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static ssize_t show_temp_min(struct device *dev, struct device_attribute *attr,
		char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", TEMP_FROM_REG(data->temp_min[nr]));
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}
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static ssize_t set_temp_min(struct device *dev, struct device_attribute *attr,
		const char *buf, size_t count)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	long val = simple_strtol(buf, NULL, 10);

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	mutex_lock(&data->update_lock);
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	data->temp_min[nr] = TEMP_TO_REG(val);
	lm85_write_value(client, LM85_REG_TEMP_MIN(nr), data->temp_min[nr]);
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	mutex_unlock(&data->update_lock);
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	return count;
}
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static ssize_t show_temp_max(struct device *dev, struct device_attribute *attr,
		char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", TEMP_FROM_REG(data->temp_max[nr]));
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}
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static ssize_t set_temp_max(struct device *dev, struct device_attribute *attr,
		const char *buf, size_t count)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
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	long val = simple_strtol(buf, NULL, 10);
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	mutex_lock(&data->update_lock);
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	data->temp_max[nr] = TEMP_TO_REG(val);
	lm85_write_value(client, LM85_REG_TEMP_MAX(nr), data->temp_max[nr]);
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	mutex_unlock(&data->update_lock);
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	return count;
}
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#define show_temp_reg(offset)						\
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static SENSOR_DEVICE_ATTR(temp##offset##_input, S_IRUGO,		\
		show_temp, NULL, offset - 1);				\
static SENSOR_DEVICE_ATTR(temp##offset##_min, S_IRUGO | S_IWUSR,	\
		show_temp_min, set_temp_min, offset - 1);		\
static SENSOR_DEVICE_ATTR(temp##offset##_max, S_IRUGO | S_IWUSR,	\
		show_temp_max, set_temp_max, offset - 1);
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show_temp_reg(1);
show_temp_reg(2);
show_temp_reg(3);


/* Automatic PWM control */

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static ssize_t show_pwm_auto_channels(struct device *dev,
		struct device_attribute *attr, char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", ZONE_FROM_REG(data->autofan[nr].config));
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}
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static ssize_t set_pwm_auto_channels(struct device *dev,
		struct device_attribute *attr, const char *buf, size_t count)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
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	long val = simple_strtol(buf, NULL, 10);
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	mutex_lock(&data->update_lock);
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	data->autofan[nr].config = (data->autofan[nr].config & (~0xe0))
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		| ZONE_TO_REG(val);
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	lm85_write_value(client, LM85_REG_AFAN_CONFIG(nr),
		data->autofan[nr].config);
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	mutex_unlock(&data->update_lock);
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	return count;
}
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static ssize_t show_pwm_auto_pwm_min(struct device *dev,
		struct device_attribute *attr, char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", PWM_FROM_REG(data->autofan[nr].min_pwm));
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}
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static ssize_t set_pwm_auto_pwm_min(struct device *dev,
		struct device_attribute *attr, const char *buf, size_t count)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	long val = simple_strtol(buf, NULL, 10);

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	mutex_lock(&data->update_lock);
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	data->autofan[nr].min_pwm = PWM_TO_REG(val);
	lm85_write_value(client, LM85_REG_AFAN_MINPWM(nr),
		data->autofan[nr].min_pwm);
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	mutex_unlock(&data->update_lock);
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	return count;
}
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static ssize_t show_pwm_auto_pwm_minctl(struct device *dev,
		struct device_attribute *attr, char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", data->autofan[nr].min_off);
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}
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static ssize_t set_pwm_auto_pwm_minctl(struct device *dev,
		struct device_attribute *attr, const char *buf, size_t count)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	long val = simple_strtol(buf, NULL, 10);
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	u8 tmp;
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	mutex_lock(&data->update_lock);
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	data->autofan[nr].min_off = val;
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	tmp = lm85_read_value(client, LM85_REG_AFAN_SPIKE1);
	tmp &= ~(0x20 << nr);
	if (data->autofan[nr].min_off)
		tmp |= 0x20 << nr;
	lm85_write_value(client, LM85_REG_AFAN_SPIKE1, tmp);
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	mutex_unlock(&data->update_lock);
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	return count;
}
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#define pwm_auto(offset)						\
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static SENSOR_DEVICE_ATTR(pwm##offset##_auto_channels,			\
		S_IRUGO | S_IWUSR, show_pwm_auto_channels,		\
		set_pwm_auto_channels, offset - 1);			\
static SENSOR_DEVICE_ATTR(pwm##offset##_auto_pwm_min,			\
		S_IRUGO | S_IWUSR, show_pwm_auto_pwm_min,		\
		set_pwm_auto_pwm_min, offset - 1);			\
static SENSOR_DEVICE_ATTR(pwm##offset##_auto_pwm_minctl,		\
		S_IRUGO | S_IWUSR, show_pwm_auto_pwm_minctl,		\
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		set_pwm_auto_pwm_minctl, offset - 1)
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pwm_auto(1);
pwm_auto(2);
pwm_auto(3);

/* Temperature settings for automatic PWM control */

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static ssize_t show_temp_auto_temp_off(struct device *dev,
		struct device_attribute *attr, char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", TEMP_FROM_REG(data->zone[nr].limit) -
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		HYST_FROM_REG(data->zone[nr].hyst));
}
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static ssize_t set_temp_auto_temp_off(struct device *dev,
		struct device_attribute *attr, const char *buf, size_t count)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	int min;
	long val = simple_strtol(buf, NULL, 10);

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	mutex_lock(&data->update_lock);
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	min = TEMP_FROM_REG(data->zone[nr].limit);
	data->zone[nr].off_desired = TEMP_TO_REG(val);
	data->zone[nr].hyst = HYST_TO_REG(min - val);
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	if (nr == 0 || nr == 1) {
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		lm85_write_value(client, LM85_REG_AFAN_HYST1,
			(data->zone[0].hyst << 4)
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			| data->zone[1].hyst);
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	} else {
		lm85_write_value(client, LM85_REG_AFAN_HYST2,
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			(data->zone[2].hyst << 4));
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	}
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	mutex_unlock(&data->update_lock);
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	return count;
}
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static ssize_t show_temp_auto_temp_min(struct device *dev,
		struct device_attribute *attr, char *buf)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
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	return sprintf(buf, "%d\n", TEMP_FROM_REG(data->zone[nr].limit));
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}
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static ssize_t set_temp_auto_temp_min(struct device *dev,
		struct device_attribute *attr, const char *buf, size_t count)
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{
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	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	long val = simple_strtol(buf, NULL, 10);

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	mutex_lock(&data->update_lock);
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	data->zone[nr].limit = TEMP_TO_REG(val);
	lm85_write_value(client, LM85_REG_AFAN_LIMIT(nr),
		data->zone[nr].limit);

/* Update temp_auto_max and temp_auto_range */
	data->zone[nr].range = RANGE_TO_REG(
		TEMP_FROM_REG(data->zone[nr].max_desired) -
		TEMP_FROM_REG(data->zone[nr].limit));
	lm85_write_value(client, LM85_REG_AFAN_RANGE(nr),
		((data->zone[nr].range & 0x0f) << 4)
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		| (data->pwm_freq[nr] & 0x07));
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/* Update temp_auto_hyst and temp_auto_off */
	data->zone[nr].hyst = HYST_TO_REG(TEMP_FROM_REG(
		data->zone[nr].limit) - TEMP_FROM_REG(
		data->zone[nr].off_desired));
901
	if (nr == 0 || nr == 1) {
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		lm85_write_value(client, LM85_REG_AFAN_HYST1,
			(data->zone[0].hyst << 4)
904
			| data->zone[1].hyst);
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	} else {
		lm85_write_value(client, LM85_REG_AFAN_HYST2,
907
			(data->zone[2].hyst << 4));
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	}
909
	mutex_unlock(&data->update_lock);
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	return count;
}
912 913 914

static ssize_t show_temp_auto_temp_max(struct device *dev,
		struct device_attribute *attr, char *buf)
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{
916
	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
918
	return sprintf(buf, "%d\n", TEMP_FROM_REG(data->zone[nr].limit) +
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		RANGE_FROM_REG(data->zone[nr].range));
}
921 922 923

static ssize_t set_temp_auto_temp_max(struct device *dev,
		struct device_attribute *attr, const char *buf, size_t count)
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{
925
	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	int min;
	long val = simple_strtol(buf, NULL, 10);

931
	mutex_lock(&data->update_lock);
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	min = TEMP_FROM_REG(data->zone[nr].limit);
	data->zone[nr].max_desired = TEMP_TO_REG(val);
	data->zone[nr].range = RANGE_TO_REG(
		val - min);
	lm85_write_value(client, LM85_REG_AFAN_RANGE(nr),
		((data->zone[nr].range & 0x0f) << 4)
938
		| (data->pwm_freq[nr] & 0x07));
939
	mutex_unlock(&data->update_lock);
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	return count;
}
942 943 944

static ssize_t show_temp_auto_temp_crit(struct device *dev,
		struct device_attribute *attr, char *buf)
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{
946
	int nr = to_sensor_dev_attr(attr)->index;
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	struct lm85_data *data = lm85_update_device(dev);
948
	return sprintf(buf, "%d\n", TEMP_FROM_REG(data->zone[nr].critical));
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}
950 951

static ssize_t set_temp_auto_temp_crit(struct device *dev,
952
		struct device_attribute *attr, const char *buf, size_t count)
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{
954
	int nr = to_sensor_dev_attr(attr)->index;
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	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	long val = simple_strtol(buf, NULL, 10);

959
	mutex_lock(&data->update_lock);
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	data->zone[nr].critical = TEMP_TO_REG(val);
	lm85_write_value(client, LM85_REG_AFAN_CRITICAL(nr),
		data->zone[nr].critical);
963
	mutex_unlock(&data->update_lock);
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	return count;
}
966

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#define temp_auto(offset)						\
968 969 970 971 972 973 974 975 976 977 978 979 980
static SENSOR_DEVICE_ATTR(temp##offset##_auto_temp_off,			\
		S_IRUGO | S_IWUSR, show_temp_auto_temp_off,		\
		set_temp_auto_temp_off, offset - 1);			\
static SENSOR_DEVICE_ATTR(temp##offset##_auto_temp_min,			\
		S_IRUGO | S_IWUSR, show_temp_auto_temp_min,		\
		set_temp_auto_temp_min, offset - 1);			\
static SENSOR_DEVICE_ATTR(temp##offset##_auto_temp_max,			\
		S_IRUGO | S_IWUSR, show_temp_auto_temp_max,		\
		set_temp_auto_temp_max, offset - 1);			\
static SENSOR_DEVICE_ATTR(temp##offset##_auto_temp_crit,		\
		S_IRUGO | S_IWUSR, show_temp_auto_temp_crit,		\
		set_temp_auto_temp_crit, offset - 1);

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981 982 983 984
temp_auto(1);
temp_auto(2);
temp_auto(3);

985
static struct attribute *lm85_attributes[] = {
986 987 988 989 990 991 992 993
	&sensor_dev_attr_fan1_input.dev_attr.attr,
	&sensor_dev_attr_fan2_input.dev_attr.attr,
	&sensor_dev_attr_fan3_input.dev_attr.attr,
	&sensor_dev_attr_fan4_input.dev_attr.attr,
	&sensor_dev_attr_fan1_min.dev_attr.attr,
	&sensor_dev_attr_fan2_min.dev_attr.attr,
	&sensor_dev_attr_fan3_min.dev_attr.attr,
	&sensor_dev_attr_fan4_min.dev_attr.attr,
994 995 996 997
	&sensor_dev_attr_fan1_alarm.dev_attr.attr,
	&sensor_dev_attr_fan2_alarm.dev_attr.attr,
	&sensor_dev_attr_fan3_alarm.dev_attr.attr,
	&sensor_dev_attr_fan4_alarm.dev_attr.attr,
998 999 1000 1001 1002 1003 1004

	&sensor_dev_attr_pwm1.dev_attr.attr,
	&sensor_dev_attr_pwm2.dev_attr.attr,
	&sensor_dev_attr_pwm3.dev_attr.attr,
	&sensor_dev_attr_pwm1_enable.dev_attr.attr,
	&sensor_dev_attr_pwm2_enable.dev_attr.attr,
	&sensor_dev_attr_pwm3_enable.dev_attr.attr,
1005 1006 1007
	&sensor_dev_attr_pwm1_freq.dev_attr.attr,
	&sensor_dev_attr_pwm2_freq.dev_attr.attr,
	&sensor_dev_attr_pwm3_freq.dev_attr.attr,
1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020

	&sensor_dev_attr_in0_input.dev_attr.attr,
	&sensor_dev_attr_in1_input.dev_attr.attr,
	&sensor_dev_attr_in2_input.dev_attr.attr,
	&sensor_dev_attr_in3_input.dev_attr.attr,
	&sensor_dev_attr_in0_min.dev_attr.attr,
	&sensor_dev_attr_in1_min.dev_attr.attr,
	&sensor_dev_attr_in2_min.dev_attr.attr,
	&sensor_dev_attr_in3_min.dev_attr.attr,
	&sensor_dev_attr_in0_max.dev_attr.attr,
	&sensor_dev_attr_in1_max.dev_attr.attr,
	&sensor_dev_attr_in2_max.dev_attr.attr,
	&sensor_dev_attr_in3_max.dev_attr.attr,
1021 1022 1023 1024
	&sensor_dev_attr_in0_alarm.dev_attr.attr,
	&sensor_dev_attr_in1_alarm.dev_attr.attr,
	&sensor_dev_attr_in2_alarm.dev_attr.attr,
	&sensor_dev_attr_in3_alarm.dev_attr.attr,
1025 1026 1027 1028 1029 1030 1031 1032 1033 1034

	&sensor_dev_attr_temp1_input.dev_attr.attr,
	&sensor_dev_attr_temp2_input.dev_attr.attr,
	&sensor_dev_attr_temp3_input.dev_attr.attr,
	&sensor_dev_attr_temp1_min.dev_attr.attr,
	&sensor_dev_attr_temp2_min.dev_attr.attr,
	&sensor_dev_attr_temp3_min.dev_attr.attr,
	&sensor_dev_attr_temp1_max.dev_attr.attr,
	&sensor_dev_attr_temp2_max.dev_attr.attr,
	&sensor_dev_attr_temp3_max.dev_attr.attr,
1035 1036 1037 1038 1039
	&sensor_dev_attr_temp1_alarm.dev_attr.attr,
	&sensor_dev_attr_temp2_alarm.dev_attr.attr,
	&sensor_dev_attr_temp3_alarm.dev_attr.attr,
	&sensor_dev_attr_temp1_fault.dev_attr.attr,
	&sensor_dev_attr_temp3_fault.dev_attr.attr,
1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063

	&sensor_dev_attr_pwm1_auto_channels.dev_attr.attr,
	&sensor_dev_attr_pwm2_auto_channels.dev_attr.attr,
	&sensor_dev_attr_pwm3_auto_channels.dev_attr.attr,
	&sensor_dev_attr_pwm1_auto_pwm_min.dev_attr.attr,
	&sensor_dev_attr_pwm2_auto_pwm_min.dev_attr.attr,
	&sensor_dev_attr_pwm3_auto_pwm_min.dev_attr.attr,
	&sensor_dev_attr_pwm1_auto_pwm_minctl.dev_attr.attr,
	&sensor_dev_attr_pwm2_auto_pwm_minctl.dev_attr.attr,
	&sensor_dev_attr_pwm3_auto_pwm_minctl.dev_attr.attr,

	&sensor_dev_attr_temp1_auto_temp_off.dev_attr.attr,
	&sensor_dev_attr_temp2_auto_temp_off.dev_attr.attr,
	&sensor_dev_attr_temp3_auto_temp_off.dev_attr.attr,
	&sensor_dev_attr_temp1_auto_temp_min.dev_attr.attr,
	&sensor_dev_attr_temp2_auto_temp_min.dev_attr.attr,
	&sensor_dev_attr_temp3_auto_temp_min.dev_attr.attr,
	&sensor_dev_attr_temp1_auto_temp_max.dev_attr.attr,
	&sensor_dev_attr_temp2_auto_temp_max.dev_attr.attr,
	&sensor_dev_attr_temp3_auto_temp_max.dev_attr.attr,
	&sensor_dev_attr_temp1_auto_temp_crit.dev_attr.attr,
	&sensor_dev_attr_temp2_auto_temp_crit.dev_attr.attr,
	&sensor_dev_attr_temp3_auto_temp_crit.dev_attr.attr,

1064 1065 1066 1067 1068 1069 1070 1071 1072 1073
	&dev_attr_vrm.attr,
	&dev_attr_cpu0_vid.attr,
	&dev_attr_alarms.attr,
	NULL
};

static const struct attribute_group lm85_group = {
	.attrs = lm85_attributes,
};

1074
static struct attribute *lm85_attributes_in4[] = {
1075 1076 1077
	&sensor_dev_attr_in4_input.dev_attr.attr,
	&sensor_dev_attr_in4_min.dev_attr.attr,
	&sensor_dev_attr_in4_max.dev_attr.attr,
1078
	&sensor_dev_attr_in4_alarm.dev_attr.attr,
1079 1080 1081
	NULL
};

1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095
static const struct attribute_group lm85_group_in4 = {
	.attrs = lm85_attributes_in4,
};

static struct attribute *lm85_attributes_in567[] = {
	&sensor_dev_attr_in5_input.dev_attr.attr,
	&sensor_dev_attr_in6_input.dev_attr.attr,
	&sensor_dev_attr_in7_input.dev_attr.attr,
	&sensor_dev_attr_in5_min.dev_attr.attr,
	&sensor_dev_attr_in6_min.dev_attr.attr,
	&sensor_dev_attr_in7_min.dev_attr.attr,
	&sensor_dev_attr_in5_max.dev_attr.attr,
	&sensor_dev_attr_in6_max.dev_attr.attr,
	&sensor_dev_attr_in7_max.dev_attr.attr,
1096 1097 1098
	&sensor_dev_attr_in5_alarm.dev_attr.attr,
	&sensor_dev_attr_in6_alarm.dev_attr.attr,
	&sensor_dev_attr_in7_alarm.dev_attr.attr,
1099 1100 1101 1102 1103
	NULL
};

static const struct attribute_group lm85_group_in567 = {
	.attrs = lm85_attributes_in567,
1104 1105
};

1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123
static void lm85_init_client(struct i2c_client *client)
{
	int value;

	/* Start monitoring if needed */
	value = lm85_read_value(client, LM85_REG_CONFIG);
	if (!(value & 0x01)) {
		dev_info(&client->dev, "Starting monitoring\n");
		lm85_write_value(client, LM85_REG_CONFIG, value | 0x01);
	}

	/* Warn about unusual configuration bits */
	if (value & 0x02)
		dev_warn(&client->dev, "Device configuration is locked\n");
	if (!(value & 0x04))
		dev_warn(&client->dev, "Device is not ready\n");
}

1124 1125 1126
/* Return 0 if detection is successful, -ENODEV otherwise */
static int lm85_detect(struct i2c_client *client, int kind,
		       struct i2c_board_info *info)
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1127
{
1128 1129
	struct i2c_adapter *adapter = client->adapter;
	int address = client->addr;
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1130
	const char *type_name;
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1131

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1132
	if (!i2c_check_functionality(adapter, I2C_FUNC_SMBUS_BYTE_DATA)) {
L
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1133
		/* We need to be able to do byte I/O */
1134
		return -ENODEV;
1135
	}
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1136

1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149
	/* If auto-detecting, determine the chip type */
	if (kind < 0) {
		int company = lm85_read_value(client, LM85_REG_COMPANY);
		int verstep = lm85_read_value(client, LM85_REG_VERSTEP);

		dev_dbg(&adapter->dev, "Detecting device at 0x%02x with "
			"COMPANY: 0x%02x and VERSTEP: 0x%02x\n",
			address, company, verstep);

		/* All supported chips have the version in common */
		if ((verstep & LM85_VERSTEP_VMASK) != LM85_VERSTEP_GENERIC) {
			dev_dbg(&adapter->dev, "Autodetection failed: "
				"unsupported version\n");
1150
			return -ENODEV;
1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172
		}
		kind = any_chip;

		/* Now, refine the detection */
		if (company == LM85_COMPANY_NATIONAL) {
			switch (verstep) {
			case LM85_VERSTEP_LM85C:
				kind = lm85c;
				break;
			case LM85_VERSTEP_LM85B:
				kind = lm85b;
				break;
			}
		} else if (company == LM85_COMPANY_ANALOG_DEV) {
			switch (verstep) {
			case LM85_VERSTEP_ADM1027:
				kind = adm1027;
				break;
			case LM85_VERSTEP_ADT7463:
			case LM85_VERSTEP_ADT7463C:
				kind = adt7463;
				break;
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1173
			}
1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187
		} else if (company == LM85_COMPANY_SMSC) {
			switch (verstep) {
			case LM85_VERSTEP_EMC6D100_A0:
			case LM85_VERSTEP_EMC6D100_A1:
				/* Note: we can't tell a '100 from a '101 */
				kind = emc6d100;
				break;
			case LM85_VERSTEP_EMC6D102:
				kind = emc6d102;
				break;
			}
		} else {
			dev_dbg(&adapter->dev, "Autodetection failed: "
				"unknown vendor\n");
1188
			return -ENODEV;
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1189 1190 1191
		}
	}

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1192 1193
	switch (kind) {
	case lm85b:
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1194
		type_name = "lm85b";
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1195 1196
		break;
	case lm85c:
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1197
		type_name = "lm85c";
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1198 1199
		break;
	case adm1027:
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1200
		type_name = "adm1027";
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1201 1202
		break;
	case adt7463:
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1203
		type_name = "adt7463";
J
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1204 1205
		break;
	case emc6d100:
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1206
		type_name = "emc6d100";
J
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1207 1208
		break;
	case emc6d102:
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1209
		type_name = "emc6d102";
J
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1210 1211 1212 1213
		break;
	default:
		type_name = "lm85";
	}
1214 1215 1216 1217
	strlcpy(info->type, type_name, I2C_NAME_SIZE);

	return 0;
}
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1218

1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230
static int lm85_probe(struct i2c_client *client,
		      const struct i2c_device_id *id)
{
	struct lm85_data *data;
	int err;

	data = kzalloc(sizeof(struct lm85_data), GFP_KERNEL);
	if (!data)
		return -ENOMEM;

	i2c_set_clientdata(client, data);
	data->type = id->driver_data;
1231
	mutex_init(&data->update_lock);
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1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243
	/* Fill in the chip specific driver values */
	switch (data->type) {
	case adm1027:
	case adt7463:
	case emc6d100:
	case emc6d102:
		data->freq_map = adm1027_freq_map;
		break;
	default:
		data->freq_map = lm85_freq_map;
	}
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1244 1245

	/* Set the VRM version */
1246
	data->vrm = vid_which_vrm();
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1247 1248

	/* Initialize the LM85 chip */
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1249
	lm85_init_client(client);
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1250 1251

	/* Register sysfs hooks */
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1252 1253
	err = sysfs_create_group(&client->dev.kobj, &lm85_group);
	if (err)
1254
		goto ERROR1;
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1255

1256 1257
	/* The ADT7463 has an optional VRM 10 mode where pin 21 is used
	   as a sixth digital VID input rather than an analog input. */
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1258
	data->vid = lm85_read_value(client, LM85_REG_VID);
1259
	if (!(data->type == adt7463 && (data->vid & 0x80)))
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1260
		if ((err = sysfs_create_group(&client->dev.kobj,
1261 1262 1263 1264
					&lm85_group_in4)))
			goto ERROR3;

	/* The EMC6D100 has 3 additional voltage inputs */
1265
	if (data->type == emc6d100)
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1266
		if ((err = sysfs_create_group(&client->dev.kobj,
1267
					&lm85_group_in567)))
1268 1269
			goto ERROR3;

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1270
	data->hwmon_dev = hwmon_device_register(&client->dev);
1271 1272
	if (IS_ERR(data->hwmon_dev)) {
		err = PTR_ERR(data->hwmon_dev);
1273
		goto ERROR3;
1274 1275
	}

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1276 1277 1278
	return 0;

	/* Error out and cleanup code */
1279
 ERROR3:
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1280 1281
	sysfs_remove_group(&client->dev.kobj, &lm85_group);
	sysfs_remove_group(&client->dev.kobj, &lm85_group_in4);
1282
	if (data->type == emc6d100)
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1283
		sysfs_remove_group(&client->dev.kobj, &lm85_group_in567);
1284
 ERROR1:
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1285 1286 1287 1288
	kfree(data);
	return err;
}

1289
static int lm85_remove(struct i2c_client *client)
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1290
{
1291
	struct lm85_data *data = i2c_get_clientdata(client);
1292
	hwmon_device_unregister(data->hwmon_dev);
1293
	sysfs_remove_group(&client->dev.kobj, &lm85_group);
1294 1295 1296
	sysfs_remove_group(&client->dev.kobj, &lm85_group_in4);
	if (data->type == emc6d100)
		sysfs_remove_group(&client->dev.kobj, &lm85_group_in567);
1297
	kfree(data);
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1298 1299 1300 1301
	return 0;
}


1302
static int lm85_read_value(struct i2c_client *client, u8 reg)
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1303 1304 1305 1306
{
	int res;

	/* What size location is it? */
1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319
	switch (reg) {
	case LM85_REG_FAN(0):  /* Read WORD data */
	case LM85_REG_FAN(1):
	case LM85_REG_FAN(2):
	case LM85_REG_FAN(3):
	case LM85_REG_FAN_MIN(0):
	case LM85_REG_FAN_MIN(1):
	case LM85_REG_FAN_MIN(2):
	case LM85_REG_FAN_MIN(3):
	case LM85_REG_ALARM1:	/* Read both bytes at once */
		res = i2c_smbus_read_byte_data(client, reg) & 0xff;
		res |= i2c_smbus_read_byte_data(client, reg + 1) << 8;
		break;
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1320 1321
	default:	/* Read BYTE data */
		res = i2c_smbus_read_byte_data(client, reg);
1322
		break;
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1323 1324
	}

1325
	return res;
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}

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static void lm85_write_value(struct i2c_client *client, u8 reg, int value)
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1329
{
1330 1331 1332 1333 1334 1335 1336 1337 1338
	switch (reg) {
	case LM85_REG_FAN(0):  /* Write WORD data */
	case LM85_REG_FAN(1):
	case LM85_REG_FAN(2):
	case LM85_REG_FAN(3):
	case LM85_REG_FAN_MIN(0):
	case LM85_REG_FAN_MIN(1):
	case LM85_REG_FAN_MIN(2):
	case LM85_REG_FAN_MIN(3):
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	/* NOTE: ALARM is read only, so not included here */
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		i2c_smbus_write_byte_data(client, reg, value & 0xff);
		i2c_smbus_write_byte_data(client, reg + 1, value >> 8);
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		break;
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	default:	/* Write BYTE data */
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		i2c_smbus_write_byte_data(client, reg, value);
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		break;
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	}
}

static struct lm85_data *lm85_update_device(struct device *dev)
{
	struct i2c_client *client = to_i2c_client(dev);
	struct lm85_data *data = i2c_get_clientdata(client);
	int i;

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	mutex_lock(&data->update_lock);
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	if (!data->valid ||
	     time_after(jiffies, data->last_reading + LM85_DATA_INTERVAL)) {
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		/* Things that change quickly */
		dev_dbg(&client->dev, "Reading sensor values\n");
1361

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		/* Have to read extended bits first to "freeze" the
		 * more significant bits that are read later.
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		 * There are 2 additional resolution bits per channel and we
		 * have room for 4, so we shift them to the left.
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		 */
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		if (data->type == adm1027 || data->type == adt7463) {
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			int ext1 = lm85_read_value(client,
						   ADM1027_REG_EXTEND_ADC1);
			int ext2 =  lm85_read_value(client,
						    ADM1027_REG_EXTEND_ADC2);
			int val = (ext1 << 8) + ext2;

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			for (i = 0; i <= 4; i++)
				data->in_ext[i] =
					((val >> (i * 2)) & 0x03) << 2;
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			for (i = 0; i <= 2; i++)
				data->temp_ext[i] =
					(val >> ((i + 4) * 2)) & 0x0c;
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		}

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		data->vid = lm85_read_value(client, LM85_REG_VID);

		for (i = 0; i <= 3; ++i) {
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			data->in[i] =
			    lm85_read_value(client, LM85_REG_IN(i));
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			data->fan[i] =
			    lm85_read_value(client, LM85_REG_FAN(i));
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		}

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		if (!(data->type == adt7463 && (data->vid & 0x80))) {
			data->in[4] = lm85_read_value(client,
				      LM85_REG_IN(4));
		}

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		for (i = 0; i <= 2; ++i) {
			data->temp[i] =
			    lm85_read_value(client, LM85_REG_TEMP(i));
			data->pwm[i] =
			    lm85_read_value(client, LM85_REG_PWM(i));
		}

		data->alarms = lm85_read_value(client, LM85_REG_ALARM1);

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		if (data->type == emc6d100) {
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			/* Three more voltage sensors */
			for (i = 5; i <= 7; ++i) {
1409 1410
				data->in[i] = lm85_read_value(client,
							EMC6D100_REG_IN(i));
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			}
			/* More alarm bits */
1413 1414 1415
			data->alarms |= lm85_read_value(client,
						EMC6D100_REG_ALARM3) << 16;
		} else if (data->type == emc6d102) {
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			/* Have to read LSB bits after the MSB ones because
			   the reading of the MSB bits has frozen the
			   LSBs (backward from the ADM1027).
			 */
			int ext1 = lm85_read_value(client,
						   EMC6D102_REG_EXTEND_ADC1);
			int ext2 = lm85_read_value(client,
						   EMC6D102_REG_EXTEND_ADC2);
			int ext3 = lm85_read_value(client,
						   EMC6D102_REG_EXTEND_ADC3);
			int ext4 = lm85_read_value(client,
						   EMC6D102_REG_EXTEND_ADC4);
			data->in_ext[0] = ext3 & 0x0f;
			data->in_ext[1] = ext4 & 0x0f;
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			data->in_ext[2] = ext4 >> 4;
			data->in_ext[3] = ext3 >> 4;
			data->in_ext[4] = ext2 >> 4;
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			data->temp_ext[0] = ext1 & 0x0f;
			data->temp_ext[1] = ext2 & 0x0f;
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			data->temp_ext[2] = ext1 >> 4;
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		}

1439 1440
		data->last_reading = jiffies;
	}  /* last_reading */
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1442 1443
	if (!data->valid ||
	     time_after(jiffies, data->last_config + LM85_CONFIG_INTERVAL)) {
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		/* Things that don't change often */
		dev_dbg(&client->dev, "Reading config values\n");

1447
		for (i = 0; i <= 3; ++i) {
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			data->in_min[i] =
			    lm85_read_value(client, LM85_REG_IN_MIN(i));
			data->in_max[i] =
			    lm85_read_value(client, LM85_REG_IN_MAX(i));
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			data->fan_min[i] =
			    lm85_read_value(client, LM85_REG_FAN_MIN(i));
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		}

1456 1457 1458 1459 1460 1461 1462
		if (!(data->type == adt7463 && (data->vid & 0x80))) {
			data->in_min[4] = lm85_read_value(client,
					  LM85_REG_IN_MIN(4));
			data->in_max[4] = lm85_read_value(client,
					  LM85_REG_IN_MAX(4));
		}

1463
		if (data->type == emc6d100) {
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			for (i = 5; i <= 7; ++i) {
1465 1466 1467 1468
				data->in_min[i] = lm85_read_value(client,
						EMC6D100_REG_IN_MIN(i));
				data->in_max[i] = lm85_read_value(client,
						EMC6D100_REG_IN_MAX(i));
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			}
		}

		for (i = 0; i <= 2; ++i) {
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			int val;

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			data->temp_min[i] =
			    lm85_read_value(client, LM85_REG_TEMP_MIN(i));
			data->temp_max[i] =
			    lm85_read_value(client, LM85_REG_TEMP_MAX(i));

			data->autofan[i].config =
			    lm85_read_value(client, LM85_REG_AFAN_CONFIG(i));
			val = lm85_read_value(client, LM85_REG_AFAN_RANGE(i));
1483
			data->pwm_freq[i] = val & 0x07;
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			data->zone[i].range = val >> 4;
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			data->autofan[i].min_pwm =
			    lm85_read_value(client, LM85_REG_AFAN_MINPWM(i));
			data->zone[i].limit =
			    lm85_read_value(client, LM85_REG_AFAN_LIMIT(i));
			data->zone[i].critical =
			    lm85_read_value(client, LM85_REG_AFAN_CRITICAL(i));
		}

		i = lm85_read_value(client, LM85_REG_AFAN_SPIKE1);
1494 1495 1496
		data->autofan[0].min_off = (i & 0x20) != 0;
		data->autofan[1].min_off = (i & 0x40) != 0;
		data->autofan[2].min_off = (i & 0x80) != 0;
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		i = lm85_read_value(client, LM85_REG_AFAN_HYST1);
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		data->zone[0].hyst = i >> 4;
1500
		data->zone[1].hyst = i & 0x0f;
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		i = lm85_read_value(client, LM85_REG_AFAN_HYST2);
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		data->zone[2].hyst = i >> 4;
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		data->last_config = jiffies;
1506
	}  /* last_config */
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	data->valid = 1;

1510
	mutex_unlock(&data->update_lock);
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	return data;
}


static int __init sm_lm85_init(void)
{
	return i2c_add_driver(&lm85_driver);
}

1521
static void __exit sm_lm85_exit(void)
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{
	i2c_del_driver(&lm85_driver);
}

MODULE_LICENSE("GPL");
1527 1528
MODULE_AUTHOR("Philip Pokorny <ppokorny@penguincomputing.com>, "
	"Margit Schubert-While <margitsw@t-online.de>, "
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	"Justin Thiessen <jthiessen@penguincomputing.com>");
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MODULE_DESCRIPTION("LM85-B, LM85-C driver");

module_init(sm_lm85_init);
module_exit(sm_lm85_exit);