pmbus_core.c 44.8 KB
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/*
 * Hardware monitoring driver for PMBus devices
 *
 * Copyright (c) 2010, 2011 Ericsson AB.
 *
 * 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/kernel.h>
#include <linux/module.h>
#include <linux/init.h>
#include <linux/err.h>
#include <linux/slab.h>
#include <linux/i2c.h>
#include <linux/hwmon.h>
#include <linux/hwmon-sysfs.h>
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#include <linux/jiffies.h>
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#include <linux/i2c/pmbus.h>
#include "pmbus.h"

/*
 * Constants needed to determine number of sensors, booleans, and labels.
 */
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#define PMBUS_MAX_INPUT_SENSORS		22	/* 10*volt, 7*curr, 5*power */
#define PMBUS_VOUT_SENSORS_PER_PAGE	9	/* input, min, max, lcrit,
						   crit, lowest, highest, avg,
						   reset */
#define PMBUS_IOUT_SENSORS_PER_PAGE	8	/* input, min, max, crit,
						   lowest, highest, avg,
						   reset */
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#define PMBUS_POUT_SENSORS_PER_PAGE	7	/* input, cap, max, crit,
						 * highest, avg, reset
						 */
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#define PMBUS_MAX_SENSORS_PER_FAN	1	/* input */
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#define PMBUS_MAX_SENSORS_PER_TEMP	9	/* input, min, max, lcrit,
						 * crit, lowest, highest, avg,
						 * reset
						 */
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#define PMBUS_MAX_INPUT_BOOLEANS	7	/* v: min_alarm, max_alarm,
						   lcrit_alarm, crit_alarm;
						   c: alarm, crit_alarm;
						   p: crit_alarm */
#define PMBUS_VOUT_BOOLEANS_PER_PAGE	4	/* min_alarm, max_alarm,
						   lcrit_alarm, crit_alarm */
#define PMBUS_IOUT_BOOLEANS_PER_PAGE	3	/* alarm, lcrit_alarm,
						   crit_alarm */
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#define PMBUS_POUT_BOOLEANS_PER_PAGE	3	/* cap_alarm, alarm, crit_alarm
						 */
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#define PMBUS_MAX_BOOLEANS_PER_FAN	2	/* alarm, fault */
#define PMBUS_MAX_BOOLEANS_PER_TEMP	4	/* min_alarm, max_alarm,
						   lcrit_alarm, crit_alarm */

#define PMBUS_MAX_INPUT_LABELS		4	/* vin, vcap, iin, pin */

/*
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 * status, status_vout, status_iout, status_fans, status_fan34, and status_temp
 * are paged. status_input is unpaged.
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 */
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#define PB_NUM_STATUS_REG	(PMBUS_PAGES * 6 + 1)
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/*
 * Index into status register array, per status register group
 */
#define PB_STATUS_BASE		0
#define PB_STATUS_VOUT_BASE	(PB_STATUS_BASE + PMBUS_PAGES)
#define PB_STATUS_IOUT_BASE	(PB_STATUS_VOUT_BASE + PMBUS_PAGES)
#define PB_STATUS_FAN_BASE	(PB_STATUS_IOUT_BASE + PMBUS_PAGES)
#define PB_STATUS_FAN34_BASE	(PB_STATUS_FAN_BASE + PMBUS_PAGES)
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#define PB_STATUS_INPUT_BASE	(PB_STATUS_FAN34_BASE + PMBUS_PAGES)
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#define PB_STATUS_TEMP_BASE	(PB_STATUS_INPUT_BASE + 1)

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#define PMBUS_NAME_SIZE		24

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struct pmbus_sensor {
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	struct pmbus_sensor *next;
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	char name[PMBUS_NAME_SIZE];	/* sysfs sensor name */
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	struct device_attribute attribute;
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	u8 page;		/* page number */
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	u16 reg;		/* register */
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	enum pmbus_sensor_classes class;	/* sensor class */
	bool update;		/* runtime sensor update needed */
	int data;		/* Sensor data.
				   Negative if there was a read error */
};
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#define to_pmbus_sensor(_attr) \
	container_of(_attr, struct pmbus_sensor, attribute)
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struct pmbus_boolean {
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	char name[PMBUS_NAME_SIZE];	/* sysfs boolean name */
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	struct sensor_device_attribute attribute;
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	struct pmbus_sensor *s1;
	struct pmbus_sensor *s2;
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};
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#define to_pmbus_boolean(_attr) \
	container_of(_attr, struct pmbus_boolean, attribute)
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struct pmbus_label {
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	char name[PMBUS_NAME_SIZE];	/* sysfs label name */
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	struct device_attribute attribute;
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	char label[PMBUS_NAME_SIZE];	/* label */
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};
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#define to_pmbus_label(_attr) \
	container_of(_attr, struct pmbus_label, attribute)
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struct pmbus_data {
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	struct device *dev;
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	struct device *hwmon_dev;

	u32 flags;		/* from platform data */

	int exponent;		/* linear mode: exponent for output voltages */

	const struct pmbus_driver_info *info;

	int max_attributes;
	int num_attributes;
	struct attribute **attributes;
	struct attribute_group group;

	struct pmbus_sensor *sensors;

	struct mutex update_lock;
	bool valid;
	unsigned long last_updated;	/* in jiffies */

	/*
	 * A single status register covers multiple attributes,
	 * so we keep them all together.
	 */
	u8 status[PB_NUM_STATUS_REG];

	u8 currpage;
};

int pmbus_set_page(struct i2c_client *client, u8 page)
{
	struct pmbus_data *data = i2c_get_clientdata(client);
	int rv = 0;
	int newpage;

	if (page != data->currpage) {
		rv = i2c_smbus_write_byte_data(client, PMBUS_PAGE, page);
		newpage = i2c_smbus_read_byte_data(client, PMBUS_PAGE);
		if (newpage != page)
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			rv = -EIO;
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		else
			data->currpage = page;
	}
	return rv;
}
EXPORT_SYMBOL_GPL(pmbus_set_page);

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int pmbus_write_byte(struct i2c_client *client, int page, u8 value)
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{
	int rv;

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	if (page >= 0) {
		rv = pmbus_set_page(client, page);
		if (rv < 0)
			return rv;
	}
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	return i2c_smbus_write_byte(client, value);
}
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EXPORT_SYMBOL_GPL(pmbus_write_byte);
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/*
 * _pmbus_write_byte() is similar to pmbus_write_byte(), but checks if
 * a device specific mapping funcion exists and calls it if necessary.
 */
static int _pmbus_write_byte(struct i2c_client *client, int page, u8 value)
{
	struct pmbus_data *data = i2c_get_clientdata(client);
	const struct pmbus_driver_info *info = data->info;
	int status;

	if (info->write_byte) {
		status = info->write_byte(client, page, value);
		if (status != -ENODATA)
			return status;
	}
	return pmbus_write_byte(client, page, value);
}

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int pmbus_write_word_data(struct i2c_client *client, u8 page, u8 reg, u16 word)
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{
	int rv;

	rv = pmbus_set_page(client, page);
	if (rv < 0)
		return rv;

	return i2c_smbus_write_word_data(client, reg, word);
}
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EXPORT_SYMBOL_GPL(pmbus_write_word_data);

/*
 * _pmbus_write_word_data() is similar to pmbus_write_word_data(), but checks if
 * a device specific mapping function exists and calls it if necessary.
 */
static int _pmbus_write_word_data(struct i2c_client *client, int page, int reg,
				  u16 word)
{
	struct pmbus_data *data = i2c_get_clientdata(client);
	const struct pmbus_driver_info *info = data->info;
	int status;

	if (info->write_word_data) {
		status = info->write_word_data(client, page, reg, word);
		if (status != -ENODATA)
			return status;
	}
	if (reg >= PMBUS_VIRT_BASE)
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		return -ENXIO;
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	return pmbus_write_word_data(client, page, reg, word);
}
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int pmbus_read_word_data(struct i2c_client *client, u8 page, u8 reg)
{
	int rv;

	rv = pmbus_set_page(client, page);
	if (rv < 0)
		return rv;

	return i2c_smbus_read_word_data(client, reg);
}
EXPORT_SYMBOL_GPL(pmbus_read_word_data);

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/*
 * _pmbus_read_word_data() is similar to pmbus_read_word_data(), but checks if
 * a device specific mapping function exists and calls it if necessary.
 */
static int _pmbus_read_word_data(struct i2c_client *client, int page, int reg)
{
	struct pmbus_data *data = i2c_get_clientdata(client);
	const struct pmbus_driver_info *info = data->info;
	int status;

	if (info->read_word_data) {
		status = info->read_word_data(client, page, reg);
		if (status != -ENODATA)
			return status;
	}
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	if (reg >= PMBUS_VIRT_BASE)
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		return -ENXIO;
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	return pmbus_read_word_data(client, page, reg);
}

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int pmbus_read_byte_data(struct i2c_client *client, int page, u8 reg)
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{
	int rv;

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	if (page >= 0) {
		rv = pmbus_set_page(client, page);
		if (rv < 0)
			return rv;
	}
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	return i2c_smbus_read_byte_data(client, reg);
}
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EXPORT_SYMBOL_GPL(pmbus_read_byte_data);
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/*
 * _pmbus_read_byte_data() is similar to pmbus_read_byte_data(), but checks if
 * a device specific mapping function exists and calls it if necessary.
 */
static int _pmbus_read_byte_data(struct i2c_client *client, int page, int reg)
{
	struct pmbus_data *data = i2c_get_clientdata(client);
	const struct pmbus_driver_info *info = data->info;
	int status;

	if (info->read_byte_data) {
		status = info->read_byte_data(client, page, reg);
		if (status != -ENODATA)
			return status;
	}
	return pmbus_read_byte_data(client, page, reg);
}

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static void pmbus_clear_fault_page(struct i2c_client *client, int page)
{
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	_pmbus_write_byte(client, page, PMBUS_CLEAR_FAULTS);
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}

void pmbus_clear_faults(struct i2c_client *client)
{
	struct pmbus_data *data = i2c_get_clientdata(client);
	int i;

	for (i = 0; i < data->info->pages; i++)
		pmbus_clear_fault_page(client, i);
}
EXPORT_SYMBOL_GPL(pmbus_clear_faults);

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static int pmbus_check_status_cml(struct i2c_client *client)
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{
	int status, status2;

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	status = _pmbus_read_byte_data(client, -1, PMBUS_STATUS_BYTE);
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	if (status < 0 || (status & PB_STATUS_CML)) {
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		status2 = _pmbus_read_byte_data(client, -1, PMBUS_STATUS_CML);
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		if (status2 < 0 || (status2 & PB_CML_FAULT_INVALID_COMMAND))
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			return -EIO;
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	}
	return 0;
}

bool pmbus_check_byte_register(struct i2c_client *client, int page, int reg)
{
	int rv;
	struct pmbus_data *data = i2c_get_clientdata(client);

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	rv = _pmbus_read_byte_data(client, page, reg);
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	if (rv >= 0 && !(data->flags & PMBUS_SKIP_STATUS_CHECK))
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		rv = pmbus_check_status_cml(client);
	pmbus_clear_fault_page(client, -1);
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	return rv >= 0;
}
EXPORT_SYMBOL_GPL(pmbus_check_byte_register);

bool pmbus_check_word_register(struct i2c_client *client, int page, int reg)
{
	int rv;
	struct pmbus_data *data = i2c_get_clientdata(client);

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	rv = _pmbus_read_word_data(client, page, reg);
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	if (rv >= 0 && !(data->flags & PMBUS_SKIP_STATUS_CHECK))
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		rv = pmbus_check_status_cml(client);
	pmbus_clear_fault_page(client, -1);
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	return rv >= 0;
}
EXPORT_SYMBOL_GPL(pmbus_check_word_register);

const struct pmbus_driver_info *pmbus_get_driver_info(struct i2c_client *client)
{
	struct pmbus_data *data = i2c_get_clientdata(client);

	return data->info;
}
EXPORT_SYMBOL_GPL(pmbus_get_driver_info);

static struct pmbus_data *pmbus_update_device(struct device *dev)
{
	struct i2c_client *client = to_i2c_client(dev);
	struct pmbus_data *data = i2c_get_clientdata(client);
	const struct pmbus_driver_info *info = data->info;
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	struct pmbus_sensor *sensor;
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	mutex_lock(&data->update_lock);
	if (time_after(jiffies, data->last_updated + HZ) || !data->valid) {
		int i;

		for (i = 0; i < info->pages; i++)
			data->status[PB_STATUS_BASE + i]
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			    = _pmbus_read_byte_data(client, i,
						    PMBUS_STATUS_BYTE);
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		for (i = 0; i < info->pages; i++) {
			if (!(info->func[i] & PMBUS_HAVE_STATUS_VOUT))
				continue;
			data->status[PB_STATUS_VOUT_BASE + i]
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			  = _pmbus_read_byte_data(client, i, PMBUS_STATUS_VOUT);
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		}
		for (i = 0; i < info->pages; i++) {
			if (!(info->func[i] & PMBUS_HAVE_STATUS_IOUT))
				continue;
			data->status[PB_STATUS_IOUT_BASE + i]
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			  = _pmbus_read_byte_data(client, i, PMBUS_STATUS_IOUT);
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		}
		for (i = 0; i < info->pages; i++) {
			if (!(info->func[i] & PMBUS_HAVE_STATUS_TEMP))
				continue;
			data->status[PB_STATUS_TEMP_BASE + i]
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			  = _pmbus_read_byte_data(client, i,
						  PMBUS_STATUS_TEMPERATURE);
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		}
		for (i = 0; i < info->pages; i++) {
			if (!(info->func[i] & PMBUS_HAVE_STATUS_FAN12))
				continue;
			data->status[PB_STATUS_FAN_BASE + i]
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			  = _pmbus_read_byte_data(client, i,
						  PMBUS_STATUS_FAN_12);
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		}

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		for (i = 0; i < info->pages; i++) {
			if (!(info->func[i] & PMBUS_HAVE_STATUS_FAN34))
				continue;
			data->status[PB_STATUS_FAN34_BASE + i]
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			  = _pmbus_read_byte_data(client, i,
						  PMBUS_STATUS_FAN_34);
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		}

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		if (info->func[0] & PMBUS_HAVE_STATUS_INPUT)
			data->status[PB_STATUS_INPUT_BASE]
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			  = _pmbus_read_byte_data(client, 0,
						  PMBUS_STATUS_INPUT);
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		for (sensor = data->sensors; sensor; sensor = sensor->next) {
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			if (!data->valid || sensor->update)
				sensor->data
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				    = _pmbus_read_word_data(client,
							    sensor->page,
							    sensor->reg);
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		}
		pmbus_clear_faults(client);
		data->last_updated = jiffies;
		data->valid = 1;
	}
	mutex_unlock(&data->update_lock);
	return data;
}

/*
 * Convert linear sensor values to milli- or micro-units
 * depending on sensor type.
 */
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static long pmbus_reg2data_linear(struct pmbus_data *data,
				  struct pmbus_sensor *sensor)
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{
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	s16 exponent;
	s32 mantissa;
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	long val;

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	if (sensor->class == PSC_VOLTAGE_OUT) {	/* LINEAR16 */
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		exponent = data->exponent;
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		mantissa = (u16) sensor->data;
	} else {				/* LINEAR11 */
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		exponent = ((s16)sensor->data) >> 11;
		mantissa = ((s16)((sensor->data & 0x7ff) << 5)) >> 5;
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	}

	val = mantissa;

	/* scale result to milli-units for all sensors except fans */
	if (sensor->class != PSC_FAN)
		val = val * 1000L;

	/* scale result to micro-units for power sensors */
	if (sensor->class == PSC_POWER)
		val = val * 1000L;

	if (exponent >= 0)
		val <<= exponent;
	else
		val >>= -exponent;

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	return val;
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}

/*
 * Convert direct sensor values to milli- or micro-units
 * depending on sensor type.
 */
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static long pmbus_reg2data_direct(struct pmbus_data *data,
				  struct pmbus_sensor *sensor)
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{
	long val = (s16) sensor->data;
	long m, b, R;

	m = data->info->m[sensor->class];
	b = data->info->b[sensor->class];
	R = data->info->R[sensor->class];

	if (m == 0)
		return 0;

	/* X = 1/m * (Y * 10^-R - b) */
	R = -R;
	/* scale result to milli-units for everything but fans */
	if (sensor->class != PSC_FAN) {
		R += 3;
		b *= 1000;
	}

	/* scale result to micro-units for power sensors */
	if (sensor->class == PSC_POWER) {
		R += 3;
		b *= 1000;
	}

	while (R > 0) {
		val *= 10;
		R--;
	}
	while (R < 0) {
		val = DIV_ROUND_CLOSEST(val, 10);
		R++;
	}

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	return (val - b) / m;
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}

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/*
 * Convert VID sensor values to milli- or micro-units
 * depending on sensor type.
 * We currently only support VR11.
 */
static long pmbus_reg2data_vid(struct pmbus_data *data,
			       struct pmbus_sensor *sensor)
{
	long val = sensor->data;

	if (val < 0x02 || val > 0xb2)
		return 0;
	return DIV_ROUND_CLOSEST(160000 - (val - 2) * 625, 100);
}

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static long pmbus_reg2data(struct pmbus_data *data, struct pmbus_sensor *sensor)
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{
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	long val;
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	switch (data->info->format[sensor->class]) {
	case direct:
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		val = pmbus_reg2data_direct(data, sensor);
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		break;
	case vid:
		val = pmbus_reg2data_vid(data, sensor);
		break;
	case linear:
	default:
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		val = pmbus_reg2data_linear(data, sensor);
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		break;
	}
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	return val;
}

#define MAX_MANTISSA	(1023 * 1000)
#define MIN_MANTISSA	(511 * 1000)

static u16 pmbus_data2reg_linear(struct pmbus_data *data,
				 enum pmbus_sensor_classes class, long val)
{
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	s16 exponent = 0, mantissa;
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	bool negative = false;

	/* simple case */
	if (val == 0)
		return 0;

	if (class == PSC_VOLTAGE_OUT) {
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		/* LINEAR16 does not support negative voltages */
		if (val < 0)
			return 0;

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		/*
		 * For a static exponents, we don't have a choice
		 * but to adjust the value to it.
		 */
		if (data->exponent < 0)
			val <<= -data->exponent;
		else
			val >>= data->exponent;
		val = DIV_ROUND_CLOSEST(val, 1000);
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		return val & 0xffff;
	}

	if (val < 0) {
		negative = true;
		val = -val;
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	}

	/* Power is in uW. Convert to mW before converting. */
	if (class == PSC_POWER)
		val = DIV_ROUND_CLOSEST(val, 1000L);

	/*
	 * For simplicity, convert fan data to milli-units
	 * before calculating the exponent.
	 */
	if (class == PSC_FAN)
		val = val * 1000;

	/* Reduce large mantissa until it fits into 10 bit */
	while (val >= MAX_MANTISSA && exponent < 15) {
		exponent++;
		val >>= 1;
	}
	/* Increase small mantissa to improve precision */
	while (val < MIN_MANTISSA && exponent > -15) {
		exponent--;
		val <<= 1;
	}

	/* Convert mantissa from milli-units to units */
	mantissa = DIV_ROUND_CLOSEST(val, 1000);

	/* Ensure that resulting number is within range */
	if (mantissa > 0x3ff)
		mantissa = 0x3ff;

	/* restore sign */
	if (negative)
		mantissa = -mantissa;

	/* Convert to 5 bit exponent, 11 bit mantissa */
	return (mantissa & 0x7ff) | ((exponent << 11) & 0xf800);
}

static u16 pmbus_data2reg_direct(struct pmbus_data *data,
				 enum pmbus_sensor_classes class, long val)
{
	long m, b, R;

	m = data->info->m[class];
	b = data->info->b[class];
	R = data->info->R[class];

	/* Power is in uW. Adjust R and b. */
	if (class == PSC_POWER) {
		R -= 3;
		b *= 1000;
	}

	/* Calculate Y = (m * X + b) * 10^R */
	if (class != PSC_FAN) {
		R -= 3;		/* Adjust R and b for data in milli-units */
		b *= 1000;
	}
	val = val * m + b;

	while (R > 0) {
		val *= 10;
		R--;
	}
	while (R < 0) {
		val = DIV_ROUND_CLOSEST(val, 10);
		R++;
	}

	return val;
}

647 648 649
static u16 pmbus_data2reg_vid(struct pmbus_data *data,
			      enum pmbus_sensor_classes class, long val)
{
650
	val = clamp_val(val, 500, 1600);
651 652 653 654

	return 2 + DIV_ROUND_CLOSEST((1600 - val) * 100, 625);
}

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static u16 pmbus_data2reg(struct pmbus_data *data,
			  enum pmbus_sensor_classes class, long val)
{
	u16 regval;

660 661
	switch (data->info->format[class]) {
	case direct:
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		regval = pmbus_data2reg_direct(data, class, val);
663 664 665 666 667 668
		break;
	case vid:
		regval = pmbus_data2reg_vid(data, class, val);
		break;
	case linear:
	default:
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		regval = pmbus_data2reg_linear(data, class, val);
670 671
		break;
	}
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	return regval;
}

/*
 * Return boolean calculated from converted data.
677 678
 * <index> defines a status register index and mask.
 * The mask is in the lower 8 bits, the register index is in bits 8..23.
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 *
680 681 682
 * The associated pmbus_boolean structure contains optional pointers to two
 * sensor attributes. If specified, those attributes are compared against each
 * other to determine if a limit has been exceeded.
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 *
684 685 686 687 688
 * If the sensor attribute pointers are NULL, the function returns true if
 * (status[reg] & mask) is true.
 *
 * If sensor attribute pointers are provided, a comparison against a specified
 * limit has to be performed to determine the boolean result.
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 * In this case, the function returns true if v1 >= v2 (where v1 and v2 are
690
 * sensor values referenced by sensor attribute pointers s1 and s2).
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 *
 * To determine if an object exceeds upper limits, specify <s1,s2> = <v,limit>.
 * To determine if an object exceeds lower limits, specify <s1,s2> = <limit,v>.
 *
 * If a negative value is stored in any of the referenced registers, this value
 * reflects an error code which will be returned.
 */
698 699
static int pmbus_get_boolean(struct pmbus_data *data, struct pmbus_boolean *b,
			     int index)
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{
701 702 703
	struct pmbus_sensor *s1 = b->s1;
	struct pmbus_sensor *s2 = b->s2;
	u16 reg = (index >> 8) & 0xffff;
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	u8 mask = index & 0xff;
705
	int ret, status;
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	u8 regval;

	status = data->status[reg];
	if (status < 0)
		return status;

	regval = status & mask;
713
	if (!s1 && !s2) {
714
		ret = !!regval;
715 716 717 718
	} else if (!s1 || !s2) {
		BUG();
		return 0;
	} else {
719
		long v1, v2;
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		if (s1->data < 0)
			return s1->data;
		if (s2->data < 0)
			return s2->data;
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726 727
		v1 = pmbus_reg2data(data, s1);
		v2 = pmbus_reg2data(data, s2);
728
		ret = !!(regval && v1 >= v2);
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	}
730
	return ret;
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}

static ssize_t pmbus_show_boolean(struct device *dev,
				  struct device_attribute *da, char *buf)
{
	struct sensor_device_attribute *attr = to_sensor_dev_attr(da);
737
	struct pmbus_boolean *boolean = to_pmbus_boolean(attr);
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	struct pmbus_data *data = pmbus_update_device(dev);
	int val;

741
	val = pmbus_get_boolean(data, boolean, attr->index);
742 743
	if (val < 0)
		return val;
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	return snprintf(buf, PAGE_SIZE, "%d\n", val);
}

static ssize_t pmbus_show_sensor(struct device *dev,
748
				 struct device_attribute *devattr, char *buf)
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{
	struct pmbus_data *data = pmbus_update_device(dev);
751
	struct pmbus_sensor *sensor = to_pmbus_sensor(devattr);
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	if (sensor->data < 0)
		return sensor->data;

756
	return snprintf(buf, PAGE_SIZE, "%ld\n", pmbus_reg2data(data, sensor));
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}

static ssize_t pmbus_set_sensor(struct device *dev,
				struct device_attribute *devattr,
				const char *buf, size_t count)
{
	struct i2c_client *client = to_i2c_client(dev);
	struct pmbus_data *data = i2c_get_clientdata(client);
765
	struct pmbus_sensor *sensor = to_pmbus_sensor(devattr);
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	ssize_t rv = count;
	long val = 0;
	int ret;
	u16 regval;

771
	if (kstrtol(buf, 10, &val) < 0)
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		return -EINVAL;

	mutex_lock(&data->update_lock);
	regval = pmbus_data2reg(data, sensor->class, val);
776
	ret = _pmbus_write_word_data(client, sensor->page, sensor->reg, regval);
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	if (ret < 0)
		rv = ret;
	else
780
		sensor->data = regval;
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	mutex_unlock(&data->update_lock);
	return rv;
}

static ssize_t pmbus_show_label(struct device *dev,
				struct device_attribute *da, char *buf)
{
788 789 790 791
	struct pmbus_label *label = to_pmbus_label(da);

	return snprintf(buf, PAGE_SIZE, "%s\n", label->label);
}
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793 794 795 796 797 798 799 800 801 802 803 804 805 806 807
static void pmbus_dev_attr_init(struct device_attribute *dev_attr,
				const char *name,
				umode_t mode,
				ssize_t (*show)(struct device *dev,
						struct device_attribute *attr,
						char *buf),
				ssize_t (*store)(struct device *dev,
						 struct device_attribute *attr,
						 const char *buf, size_t count))
{
	sysfs_attr_init(&dev_attr->attr);
	dev_attr->attr.name = name;
	dev_attr->attr.mode = mode;
	dev_attr->show = show;
	dev_attr->store = store;
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}

810 811 812 813 814 815 816 817 818 819 820
static void pmbus_attr_init(struct sensor_device_attribute *a,
			    const char *name,
			    umode_t mode,
			    ssize_t (*show)(struct device *dev,
					    struct device_attribute *attr,
					    char *buf),
			    ssize_t (*store)(struct device *dev,
					     struct device_attribute *attr,
					     const char *buf, size_t count),
			    int idx)
{
821
	pmbus_dev_attr_init(&a->dev_attr, name, mode, show, store);
822 823
	a->index = idx;
}
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825 826
static int pmbus_add_boolean(struct pmbus_data *data,
			     const char *name, const char *type, int seq,
827 828 829
			     struct pmbus_sensor *s1,
			     struct pmbus_sensor *s2,
			     u16 reg, u8 mask)
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{
	struct pmbus_boolean *boolean;
832
	struct sensor_device_attribute *a;
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834 835 836 837 838
	BUG_ON(data->num_attributes >= data->max_attributes);

	boolean = devm_kzalloc(data->dev, sizeof(*boolean), GFP_KERNEL);
	if (!boolean)
		return -ENOMEM;
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840
	a = &boolean->attribute;
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	snprintf(boolean->name, sizeof(boolean->name), "%s%d_%s",
		 name, seq, type);
844 845
	boolean->s1 = s1;
	boolean->s2 = s2;
846
	pmbus_attr_init(a, boolean->name, S_IRUGO, pmbus_show_boolean, NULL,
847
			(reg << 8) | mask);
848
	data->attributes[data->num_attributes++] = &a->dev_attr.attr;
849 850

	return 0;
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}

853 854 855 856 857
static struct pmbus_sensor *pmbus_add_sensor(struct pmbus_data *data,
					     const char *name, const char *type,
					     int seq, int page, int reg,
					     enum pmbus_sensor_classes class,
					     bool update, bool readonly)
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{
	struct pmbus_sensor *sensor;
860
	struct device_attribute *a;
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861

862
	BUG_ON(data->num_attributes >= data->max_attributes);
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864 865 866
	sensor = devm_kzalloc(data->dev, sizeof(*sensor), GFP_KERNEL);
	if (!sensor)
		return NULL;
867 868
	a = &sensor->attribute;

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	snprintf(sensor->name, sizeof(sensor->name), "%s%d_%s",
		 name, seq, type);
	sensor->page = page;
	sensor->reg = reg;
	sensor->class = class;
	sensor->update = update;
875 876 877
	pmbus_dev_attr_init(a, sensor->name,
			    readonly ? S_IRUGO : S_IRUGO | S_IWUSR,
			    pmbus_show_sensor, pmbus_set_sensor);
878

879 880 881
	data->attributes[data->num_attributes++] = &a->attr;
	sensor->next = data->sensors;
	data->sensors = sensor;
882 883

	return sensor;
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}

886 887 888
static int pmbus_add_label(struct pmbus_data *data,
			   const char *name, int seq,
			   const char *lstring, int index)
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{
	struct pmbus_label *label;
891
	struct device_attribute *a;
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892

893 894 895 896 897
	BUG_ON(data->num_attributes >= data->max_attributes);

	label = devm_kzalloc(data->dev, sizeof(*label), GFP_KERNEL);
	if (!label)
		return -ENOMEM;
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899 900
	a = &label->attribute;

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	snprintf(label->name, sizeof(label->name), "%s%d_label", name, seq);
	if (!index)
		strncpy(label->label, lstring, sizeof(label->label) - 1);
	else
		snprintf(label->label, sizeof(label->label), "%s%d", lstring,
			 index);

908 909 910
	pmbus_dev_attr_init(a, label->name, S_IRUGO, pmbus_show_label, NULL);
	data->attributes[data->num_attributes++] = &a->attr;
	return 0;
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}

/*
 * Determine maximum number of sensors, booleans, and labels.
 * To keep things simple, only make a rough high estimate.
 */
static void pmbus_find_max_attr(struct i2c_client *client,
				struct pmbus_data *data)
{
	const struct pmbus_driver_info *info = data->info;
	int page, max_sensors, max_booleans, max_labels;

	max_sensors = PMBUS_MAX_INPUT_SENSORS;
	max_booleans = PMBUS_MAX_INPUT_BOOLEANS;
	max_labels = PMBUS_MAX_INPUT_LABELS;

	for (page = 0; page < info->pages; page++) {
		if (info->func[page] & PMBUS_HAVE_VOUT) {
			max_sensors += PMBUS_VOUT_SENSORS_PER_PAGE;
			max_booleans += PMBUS_VOUT_BOOLEANS_PER_PAGE;
			max_labels++;
		}
		if (info->func[page] & PMBUS_HAVE_IOUT) {
			max_sensors += PMBUS_IOUT_SENSORS_PER_PAGE;
			max_booleans += PMBUS_IOUT_BOOLEANS_PER_PAGE;
			max_labels++;
		}
		if (info->func[page] & PMBUS_HAVE_POUT) {
			max_sensors += PMBUS_POUT_SENSORS_PER_PAGE;
			max_booleans += PMBUS_POUT_BOOLEANS_PER_PAGE;
			max_labels++;
		}
		if (info->func[page] & PMBUS_HAVE_FAN12) {
944 945 946 947 948 949
			max_sensors += 2 * PMBUS_MAX_SENSORS_PER_FAN;
			max_booleans += 2 * PMBUS_MAX_BOOLEANS_PER_FAN;
		}
		if (info->func[page] & PMBUS_HAVE_FAN34) {
			max_sensors += 2 * PMBUS_MAX_SENSORS_PER_FAN;
			max_booleans += 2 * PMBUS_MAX_BOOLEANS_PER_FAN;
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		}
		if (info->func[page] & PMBUS_HAVE_TEMP) {
952 953 954 955 956 957 958 959 960 961
			max_sensors += PMBUS_MAX_SENSORS_PER_TEMP;
			max_booleans += PMBUS_MAX_BOOLEANS_PER_TEMP;
		}
		if (info->func[page] & PMBUS_HAVE_TEMP2) {
			max_sensors += PMBUS_MAX_SENSORS_PER_TEMP;
			max_booleans += PMBUS_MAX_BOOLEANS_PER_TEMP;
		}
		if (info->func[page] & PMBUS_HAVE_TEMP3) {
			max_sensors += PMBUS_MAX_SENSORS_PER_TEMP;
			max_booleans += PMBUS_MAX_BOOLEANS_PER_TEMP;
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		}
	}
	data->max_attributes = max_sensors + max_booleans + max_labels;
}

/*
 * Search for attributes. Allocate sensors, booleans, and labels as needed.
 */

971 972 973 974 975
/*
 * The pmbus_limit_attr structure describes a single limit attribute
 * and its associated alarm attribute.
 */
struct pmbus_limit_attr {
976 977
	u16 reg;		/* Limit register */
	bool update;		/* True if register needs updates */
978 979
	bool low;		/* True if low limit; for limits with compare
				   functions only */
980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006
	const char *attr;	/* Attribute name */
	const char *alarm;	/* Alarm attribute name */
	u32 sbit;		/* Alarm attribute status bit */
};

/*
 * The pmbus_sensor_attr structure describes one sensor attribute. This
 * description includes a reference to the associated limit attributes.
 */
struct pmbus_sensor_attr {
	u8 reg;				/* sensor register */
	enum pmbus_sensor_classes class;/* sensor class */
	const char *label;		/* sensor label */
	bool paged;			/* true if paged sensor */
	bool update;			/* true if update needed */
	bool compare;			/* true if compare function needed */
	u32 func;			/* sensor mask */
	u32 sfunc;			/* sensor status mask */
	int sbase;			/* status base register */
	u32 gbit;			/* generic status bit */
	const struct pmbus_limit_attr *limit;/* limit registers */
	int nlimit;			/* # of limit registers */
};

/*
 * Add a set of limit attributes and, if supported, the associated
 * alarm attributes.
1007 1008
 * returns 0 if no alarm register found, 1 if an alarm register was found,
 * < 0 on errors.
1009
 */
1010 1011 1012 1013
static int pmbus_add_limit_attrs(struct i2c_client *client,
				 struct pmbus_data *data,
				 const struct pmbus_driver_info *info,
				 const char *name, int index, int page,
1014
				 struct pmbus_sensor *base,
1015
				 const struct pmbus_sensor_attr *attr)
1016 1017 1018
{
	const struct pmbus_limit_attr *l = attr->limit;
	int nlimit = attr->nlimit;
1019
	int have_alarm = 0;
1020 1021
	int i, ret;
	struct pmbus_sensor *curr;
1022 1023 1024

	for (i = 0; i < nlimit; i++) {
		if (pmbus_check_word_register(client, page, l->reg)) {
1025 1026 1027 1028
			curr = pmbus_add_sensor(data, name, l->attr, index,
						page, l->reg, attr->class,
						attr->update || l->update,
						false);
1029 1030
			if (!curr)
				return -ENOMEM;
1031
			if (l->sbit && (info->func[page] & attr->sfunc)) {
1032 1033 1034 1035 1036 1037 1038 1039 1040
				ret = pmbus_add_boolean(data, name,
					l->alarm, index,
					attr->compare ?  l->low ? curr : base
						      : NULL,
					attr->compare ? l->low ? base : curr
						      : NULL,
					attr->sbase + page, l->sbit);
				if (ret)
					return ret;
1041
				have_alarm = 1;
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1042 1043
			}
		}
1044
		l++;
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	}
1046 1047
	return have_alarm;
}
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1049 1050 1051 1052 1053 1054
static int pmbus_add_sensor_attrs_one(struct i2c_client *client,
				      struct pmbus_data *data,
				      const struct pmbus_driver_info *info,
				      const char *name,
				      int index, int page,
				      const struct pmbus_sensor_attr *attr)
1055
{
1056
	struct pmbus_sensor *base;
1057
	int ret;
1058

1059 1060 1061 1062 1063 1064
	if (attr->label) {
		ret = pmbus_add_label(data, name, index, attr->label,
				      attr->paged ? page + 1 : 0);
		if (ret)
			return ret;
	}
1065 1066
	base = pmbus_add_sensor(data, name, "input", index, page, attr->reg,
				attr->class, true, true);
1067 1068
	if (!base)
		return -ENOMEM;
1069
	if (attr->sfunc) {
1070
		ret = pmbus_add_limit_attrs(client, data, info, name,
1071
					    index, page, base, attr);
1072 1073
		if (ret < 0)
			return ret;
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		/*
		 * Add generic alarm attribute only if there are no individual
1076 1077
		 * alarm attributes, if there is a global alarm bit, and if
		 * the generic status register for this page is accessible.
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		 */
1079 1080 1081
		if (!ret && attr->gbit &&
		    pmbus_check_byte_register(client, page,
					      PMBUS_STATUS_BYTE)) {
1082 1083 1084 1085
			ret = pmbus_add_boolean(data, name, "alarm", index,
						NULL, NULL,
						PB_STATUS_BASE + page,
						attr->gbit);
1086 1087 1088
			if (ret)
				return ret;
		}
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	}
1090
	return 0;
1091
}
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1093 1094 1095 1096 1097
static int pmbus_add_sensor_attrs(struct i2c_client *client,
				  struct pmbus_data *data,
				  const char *name,
				  const struct pmbus_sensor_attr *attrs,
				  int nattrs)
1098 1099 1100
{
	const struct pmbus_driver_info *info = data->info;
	int index, i;
1101
	int ret;
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1103 1104 1105 1106 1107 1108 1109 1110
	index = 1;
	for (i = 0; i < nattrs; i++) {
		int page, pages;

		pages = attrs->paged ? info->pages : 1;
		for (page = 0; page < pages; page++) {
			if (!(info->func[page] & attrs->func))
				continue;
1111 1112 1113 1114 1115
			ret = pmbus_add_sensor_attrs_one(client, data, info,
							 name, index, page,
							 attrs);
			if (ret)
				return ret;
1116
			index++;
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		}
1118
		attrs++;
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	}
1120
	return 0;
1121
}
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1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143
static const struct pmbus_limit_attr vin_limit_attrs[] = {
	{
		.reg = PMBUS_VIN_UV_WARN_LIMIT,
		.attr = "min",
		.alarm = "min_alarm",
		.sbit = PB_VOLTAGE_UV_WARNING,
	}, {
		.reg = PMBUS_VIN_UV_FAULT_LIMIT,
		.attr = "lcrit",
		.alarm = "lcrit_alarm",
		.sbit = PB_VOLTAGE_UV_FAULT,
	}, {
		.reg = PMBUS_VIN_OV_WARN_LIMIT,
		.attr = "max",
		.alarm = "max_alarm",
		.sbit = PB_VOLTAGE_OV_WARNING,
	}, {
		.reg = PMBUS_VIN_OV_FAULT_LIMIT,
		.attr = "crit",
		.alarm = "crit_alarm",
		.sbit = PB_VOLTAGE_OV_FAULT,
1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158
	}, {
		.reg = PMBUS_VIRT_READ_VIN_AVG,
		.update = true,
		.attr = "average",
	}, {
		.reg = PMBUS_VIRT_READ_VIN_MIN,
		.update = true,
		.attr = "lowest",
	}, {
		.reg = PMBUS_VIRT_READ_VIN_MAX,
		.update = true,
		.attr = "highest",
	}, {
		.reg = PMBUS_VIRT_RESET_VIN_HISTORY,
		.attr = "reset_history",
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	},
};

static const struct pmbus_limit_attr vout_limit_attrs[] = {
	{
		.reg = PMBUS_VOUT_UV_WARN_LIMIT,
		.attr = "min",
		.alarm = "min_alarm",
		.sbit = PB_VOLTAGE_UV_WARNING,
	}, {
		.reg = PMBUS_VOUT_UV_FAULT_LIMIT,
		.attr = "lcrit",
		.alarm = "lcrit_alarm",
		.sbit = PB_VOLTAGE_UV_FAULT,
	}, {
		.reg = PMBUS_VOUT_OV_WARN_LIMIT,
		.attr = "max",
		.alarm = "max_alarm",
		.sbit = PB_VOLTAGE_OV_WARNING,
	}, {
		.reg = PMBUS_VOUT_OV_FAULT_LIMIT,
		.attr = "crit",
		.alarm = "crit_alarm",
		.sbit = PB_VOLTAGE_OV_FAULT,
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	}, {
		.reg = PMBUS_VIRT_READ_VOUT_AVG,
		.update = true,
		.attr = "average",
	}, {
		.reg = PMBUS_VIRT_READ_VOUT_MIN,
		.update = true,
		.attr = "lowest",
	}, {
		.reg = PMBUS_VIRT_READ_VOUT_MAX,
		.update = true,
		.attr = "highest",
	}, {
		.reg = PMBUS_VIRT_RESET_VOUT_HISTORY,
		.attr = "reset_history",
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	}
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};
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static const struct pmbus_sensor_attr voltage_attributes[] = {
	{
		.reg = PMBUS_READ_VIN,
		.class = PSC_VOLTAGE_IN,
		.label = "vin",
		.func = PMBUS_HAVE_VIN,
		.sfunc = PMBUS_HAVE_STATUS_INPUT,
		.sbase = PB_STATUS_INPUT_BASE,
		.gbit = PB_STATUS_VIN_UV,
		.limit = vin_limit_attrs,
		.nlimit = ARRAY_SIZE(vin_limit_attrs),
	}, {
		.reg = PMBUS_READ_VCAP,
		.class = PSC_VOLTAGE_IN,
		.label = "vcap",
		.func = PMBUS_HAVE_VCAP,
	}, {
		.reg = PMBUS_READ_VOUT,
		.class = PSC_VOLTAGE_OUT,
		.label = "vout",
		.paged = true,
		.func = PMBUS_HAVE_VOUT,
		.sfunc = PMBUS_HAVE_STATUS_VOUT,
		.sbase = PB_STATUS_VOUT_BASE,
		.gbit = PB_STATUS_VOUT_OV,
		.limit = vout_limit_attrs,
		.nlimit = ARRAY_SIZE(vout_limit_attrs),
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	}
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};
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/* Current attributes */

static const struct pmbus_limit_attr iin_limit_attrs[] = {
	{
		.reg = PMBUS_IIN_OC_WARN_LIMIT,
		.attr = "max",
		.alarm = "max_alarm",
		.sbit = PB_IIN_OC_WARNING,
	}, {
		.reg = PMBUS_IIN_OC_FAULT_LIMIT,
		.attr = "crit",
		.alarm = "crit_alarm",
		.sbit = PB_IIN_OC_FAULT,
1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258
	}, {
		.reg = PMBUS_VIRT_READ_IIN_AVG,
		.update = true,
		.attr = "average",
	}, {
		.reg = PMBUS_VIRT_READ_IIN_MIN,
		.update = true,
		.attr = "lowest",
	}, {
		.reg = PMBUS_VIRT_READ_IIN_MAX,
		.update = true,
		.attr = "highest",
	}, {
		.reg = PMBUS_VIRT_RESET_IIN_HISTORY,
		.attr = "reset_history",
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	}
};
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static const struct pmbus_limit_attr iout_limit_attrs[] = {
	{
		.reg = PMBUS_IOUT_OC_WARN_LIMIT,
		.attr = "max",
		.alarm = "max_alarm",
		.sbit = PB_IOUT_OC_WARNING,
	}, {
		.reg = PMBUS_IOUT_UC_FAULT_LIMIT,
		.attr = "lcrit",
		.alarm = "lcrit_alarm",
		.sbit = PB_IOUT_UC_FAULT,
	}, {
		.reg = PMBUS_IOUT_OC_FAULT_LIMIT,
		.attr = "crit",
		.alarm = "crit_alarm",
		.sbit = PB_IOUT_OC_FAULT,
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	}, {
		.reg = PMBUS_VIRT_READ_IOUT_AVG,
		.update = true,
		.attr = "average",
	}, {
		.reg = PMBUS_VIRT_READ_IOUT_MIN,
		.update = true,
		.attr = "lowest",
	}, {
		.reg = PMBUS_VIRT_READ_IOUT_MAX,
		.update = true,
		.attr = "highest",
	}, {
		.reg = PMBUS_VIRT_RESET_IOUT_HISTORY,
		.attr = "reset_history",
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	}
};
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static const struct pmbus_sensor_attr current_attributes[] = {
	{
		.reg = PMBUS_READ_IIN,
		.class = PSC_CURRENT_IN,
		.label = "iin",
		.func = PMBUS_HAVE_IIN,
		.sfunc = PMBUS_HAVE_STATUS_INPUT,
		.sbase = PB_STATUS_INPUT_BASE,
		.limit = iin_limit_attrs,
		.nlimit = ARRAY_SIZE(iin_limit_attrs),
	}, {
		.reg = PMBUS_READ_IOUT,
		.class = PSC_CURRENT_OUT,
		.label = "iout",
		.paged = true,
		.func = PMBUS_HAVE_IOUT,
		.sfunc = PMBUS_HAVE_STATUS_IOUT,
		.sbase = PB_STATUS_IOUT_BASE,
		.gbit = PB_STATUS_IOUT_OC,
		.limit = iout_limit_attrs,
		.nlimit = ARRAY_SIZE(iout_limit_attrs),
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	}
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};
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/* Power attributes */
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static const struct pmbus_limit_attr pin_limit_attrs[] = {
	{
		.reg = PMBUS_PIN_OP_WARN_LIMIT,
		.attr = "max",
		.alarm = "alarm",
		.sbit = PB_PIN_OP_WARNING,
1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338
	}, {
		.reg = PMBUS_VIRT_READ_PIN_AVG,
		.update = true,
		.attr = "average",
	}, {
		.reg = PMBUS_VIRT_READ_PIN_MAX,
		.update = true,
		.attr = "input_highest",
	}, {
		.reg = PMBUS_VIRT_RESET_PIN_HISTORY,
		.attr = "reset_history",
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	}
};
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static const struct pmbus_limit_attr pout_limit_attrs[] = {
	{
		.reg = PMBUS_POUT_MAX,
		.attr = "cap",
		.alarm = "cap_alarm",
		.sbit = PB_POWER_LIMITING,
	}, {
		.reg = PMBUS_POUT_OP_WARN_LIMIT,
		.attr = "max",
		.alarm = "max_alarm",
		.sbit = PB_POUT_OP_WARNING,
	}, {
		.reg = PMBUS_POUT_OP_FAULT_LIMIT,
		.attr = "crit",
		.alarm = "crit_alarm",
		.sbit = PB_POUT_OP_FAULT,
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	}, {
		.reg = PMBUS_VIRT_READ_POUT_AVG,
		.update = true,
		.attr = "average",
	}, {
		.reg = PMBUS_VIRT_READ_POUT_MAX,
		.update = true,
		.attr = "input_highest",
	}, {
		.reg = PMBUS_VIRT_RESET_POUT_HISTORY,
		.attr = "reset_history",
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	}
};
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static const struct pmbus_sensor_attr power_attributes[] = {
	{
		.reg = PMBUS_READ_PIN,
		.class = PSC_POWER,
		.label = "pin",
		.func = PMBUS_HAVE_PIN,
		.sfunc = PMBUS_HAVE_STATUS_INPUT,
		.sbase = PB_STATUS_INPUT_BASE,
		.limit = pin_limit_attrs,
		.nlimit = ARRAY_SIZE(pin_limit_attrs),
	}, {
		.reg = PMBUS_READ_POUT,
		.class = PSC_POWER,
		.label = "pout",
		.paged = true,
		.func = PMBUS_HAVE_POUT,
		.sfunc = PMBUS_HAVE_STATUS_IOUT,
		.sbase = PB_STATUS_IOUT_BASE,
		.limit = pout_limit_attrs,
		.nlimit = ARRAY_SIZE(pout_limit_attrs),
	}
};
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/* Temperature atributes */

static const struct pmbus_limit_attr temp_limit_attrs[] = {
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	{
		.reg = PMBUS_UT_WARN_LIMIT,
1400
		.low = true,
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		.attr = "min",
		.alarm = "min_alarm",
		.sbit = PB_TEMP_UT_WARNING,
	}, {
		.reg = PMBUS_UT_FAULT_LIMIT,
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		.low = true,
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		.attr = "lcrit",
		.alarm = "lcrit_alarm",
		.sbit = PB_TEMP_UT_FAULT,
	}, {
		.reg = PMBUS_OT_WARN_LIMIT,
		.attr = "max",
		.alarm = "max_alarm",
		.sbit = PB_TEMP_OT_WARNING,
	}, {
		.reg = PMBUS_OT_FAULT_LIMIT,
		.attr = "crit",
		.alarm = "crit_alarm",
		.sbit = PB_TEMP_OT_FAULT,
	}, {
		.reg = PMBUS_VIRT_READ_TEMP_MIN,
		.attr = "lowest",
1423 1424 1425
	}, {
		.reg = PMBUS_VIRT_READ_TEMP_AVG,
		.attr = "average",
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	}, {
		.reg = PMBUS_VIRT_READ_TEMP_MAX,
		.attr = "highest",
	}, {
		.reg = PMBUS_VIRT_RESET_TEMP_HISTORY,
		.attr = "reset_history",
	}
};

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static const struct pmbus_limit_attr temp_limit_attrs2[] = {
	{
		.reg = PMBUS_UT_WARN_LIMIT,
		.low = true,
		.attr = "min",
		.alarm = "min_alarm",
		.sbit = PB_TEMP_UT_WARNING,
	}, {
		.reg = PMBUS_UT_FAULT_LIMIT,
		.low = true,
		.attr = "lcrit",
		.alarm = "lcrit_alarm",
		.sbit = PB_TEMP_UT_FAULT,
	}, {
		.reg = PMBUS_OT_WARN_LIMIT,
		.attr = "max",
		.alarm = "max_alarm",
		.sbit = PB_TEMP_OT_WARNING,
	}, {
		.reg = PMBUS_OT_FAULT_LIMIT,
		.attr = "crit",
		.alarm = "crit_alarm",
		.sbit = PB_TEMP_OT_FAULT,
	}, {
		.reg = PMBUS_VIRT_READ_TEMP2_MIN,
		.attr = "lowest",
1461 1462 1463
	}, {
		.reg = PMBUS_VIRT_READ_TEMP2_AVG,
		.attr = "average",
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	}, {
		.reg = PMBUS_VIRT_READ_TEMP2_MAX,
		.attr = "highest",
	}, {
		.reg = PMBUS_VIRT_RESET_TEMP2_HISTORY,
		.attr = "reset_history",
	}
};

static const struct pmbus_limit_attr temp_limit_attrs3[] = {
1474 1475
	{
		.reg = PMBUS_UT_WARN_LIMIT,
1476
		.low = true,
1477 1478 1479 1480 1481
		.attr = "min",
		.alarm = "min_alarm",
		.sbit = PB_TEMP_UT_WARNING,
	}, {
		.reg = PMBUS_UT_FAULT_LIMIT,
1482
		.low = true,
1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497
		.attr = "lcrit",
		.alarm = "lcrit_alarm",
		.sbit = PB_TEMP_UT_FAULT,
	}, {
		.reg = PMBUS_OT_WARN_LIMIT,
		.attr = "max",
		.alarm = "max_alarm",
		.sbit = PB_TEMP_OT_WARNING,
	}, {
		.reg = PMBUS_OT_FAULT_LIMIT,
		.attr = "crit",
		.alarm = "crit_alarm",
		.sbit = PB_TEMP_OT_FAULT,
	}
};
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static const struct pmbus_sensor_attr temp_attributes[] = {
	{
		.reg = PMBUS_READ_TEMPERATURE_1,
		.class = PSC_TEMPERATURE,
		.paged = true,
		.update = true,
		.compare = true,
		.func = PMBUS_HAVE_TEMP,
		.sfunc = PMBUS_HAVE_STATUS_TEMP,
		.sbase = PB_STATUS_TEMP_BASE,
		.gbit = PB_STATUS_TEMPERATURE,
		.limit = temp_limit_attrs,
		.nlimit = ARRAY_SIZE(temp_limit_attrs),
	}, {
		.reg = PMBUS_READ_TEMPERATURE_2,
		.class = PSC_TEMPERATURE,
		.paged = true,
		.update = true,
		.compare = true,
		.func = PMBUS_HAVE_TEMP2,
		.sfunc = PMBUS_HAVE_STATUS_TEMP,
		.sbase = PB_STATUS_TEMP_BASE,
		.gbit = PB_STATUS_TEMPERATURE,
1522 1523
		.limit = temp_limit_attrs2,
		.nlimit = ARRAY_SIZE(temp_limit_attrs2),
1524 1525 1526 1527 1528 1529 1530 1531 1532 1533
	}, {
		.reg = PMBUS_READ_TEMPERATURE_3,
		.class = PSC_TEMPERATURE,
		.paged = true,
		.update = true,
		.compare = true,
		.func = PMBUS_HAVE_TEMP3,
		.sfunc = PMBUS_HAVE_STATUS_TEMP,
		.sbase = PB_STATUS_TEMP_BASE,
		.gbit = PB_STATUS_TEMPERATURE,
1534 1535
		.limit = temp_limit_attrs3,
		.nlimit = ARRAY_SIZE(temp_limit_attrs3),
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	}
1537 1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574
};

static const int pmbus_fan_registers[] = {
	PMBUS_READ_FAN_SPEED_1,
	PMBUS_READ_FAN_SPEED_2,
	PMBUS_READ_FAN_SPEED_3,
	PMBUS_READ_FAN_SPEED_4
};

static const int pmbus_fan_config_registers[] = {
	PMBUS_FAN_CONFIG_12,
	PMBUS_FAN_CONFIG_12,
	PMBUS_FAN_CONFIG_34,
	PMBUS_FAN_CONFIG_34
};

static const int pmbus_fan_status_registers[] = {
	PMBUS_STATUS_FAN_12,
	PMBUS_STATUS_FAN_12,
	PMBUS_STATUS_FAN_34,
	PMBUS_STATUS_FAN_34
};

static const u32 pmbus_fan_flags[] = {
	PMBUS_HAVE_FAN12,
	PMBUS_HAVE_FAN12,
	PMBUS_HAVE_FAN34,
	PMBUS_HAVE_FAN34
};

static const u32 pmbus_fan_status_flags[] = {
	PMBUS_HAVE_STATUS_FAN12,
	PMBUS_HAVE_STATUS_FAN12,
	PMBUS_HAVE_STATUS_FAN34,
	PMBUS_HAVE_STATUS_FAN34
};

/* Fans */
1575 1576
static int pmbus_add_fan_attributes(struct i2c_client *client,
				    struct pmbus_data *data)
1577 1578 1579 1580
{
	const struct pmbus_driver_info *info = data->info;
	int index = 1;
	int page;
1581
	int ret;
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	for (page = 0; page < info->pages; page++) {
1584
		int f;
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1586
		for (f = 0; f < ARRAY_SIZE(pmbus_fan_registers); f++) {
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			int regval;

1589 1590 1591
			if (!(info->func[page] & pmbus_fan_flags[f]))
				break;

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			if (!pmbus_check_word_register(client, page,
1593
						       pmbus_fan_registers[f]))
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				break;

			/*
			 * Skip fan if not installed.
			 * Each fan configuration register covers multiple fans,
			 * so we have to do some magic.
			 */
1601
			regval = _pmbus_read_byte_data(client, page,
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				pmbus_fan_config_registers[f]);
			if (regval < 0 ||
			    (!(regval & (PB_FAN_1_INSTALLED >> ((f & 1) * 4)))))
				continue;

1607 1608 1609 1610
			if (pmbus_add_sensor(data, "fan", "input", index,
					     page, pmbus_fan_registers[f],
					     PSC_FAN, true, true) == NULL)
				return -ENOMEM;
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			/*
			 * Each fan status register covers multiple fans,
			 * so we have to do some magic.
			 */
1616 1617 1618
			if ((info->func[page] & pmbus_fan_status_flags[f]) &&
			    pmbus_check_byte_register(client,
					page, pmbus_fan_status_registers[f])) {
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				int base;

				if (f > 1)	/* fan 3, 4 */
1622
					base = PB_STATUS_FAN34_BASE + page;
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				else
					base = PB_STATUS_FAN_BASE + page;
1625 1626
				ret = pmbus_add_boolean(data, "fan",
					"alarm", index, NULL, NULL, base,
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					PB_FAN_FAN1_WARNING >> (f & 1));
1628 1629
				if (ret)
					return ret;
1630 1631
				ret = pmbus_add_boolean(data, "fan",
					"fault", index, NULL, NULL, base,
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					PB_FAN_FAN1_FAULT >> (f & 1));
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				if (ret)
					return ret;
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			}
1636
			index++;
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		}
	}
1639
	return 0;
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}

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static int pmbus_find_attributes(struct i2c_client *client,
				 struct pmbus_data *data)
1644
{
1645 1646
	int ret;

1647
	/* Voltage sensors */
1648 1649 1650 1651
	ret = pmbus_add_sensor_attrs(client, data, "in", voltage_attributes,
				     ARRAY_SIZE(voltage_attributes));
	if (ret)
		return ret;
1652 1653

	/* Current sensors */
1654 1655 1656 1657
	ret = pmbus_add_sensor_attrs(client, data, "curr", current_attributes,
				     ARRAY_SIZE(current_attributes));
	if (ret)
		return ret;
1658 1659

	/* Power sensors */
1660 1661 1662 1663
	ret = pmbus_add_sensor_attrs(client, data, "power", power_attributes,
				     ARRAY_SIZE(power_attributes));
	if (ret)
		return ret;
1664 1665

	/* Temperature sensors */
1666 1667 1668 1669
	ret = pmbus_add_sensor_attrs(client, data, "temp", temp_attributes,
				     ARRAY_SIZE(temp_attributes));
	if (ret)
		return ret;
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	/* Fans */
1672 1673
	ret = pmbus_add_fan_attributes(client, data);
	return ret;
1674 1675
}

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/*
 * Identify chip parameters.
 * This function is called for all chips.
 */
static int pmbus_identify_common(struct i2c_client *client,
				 struct pmbus_data *data)
{
1683
	int vout_mode = -1;
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1685
	if (pmbus_check_byte_register(client, 0, PMBUS_VOUT_MODE))
1686
		vout_mode = _pmbus_read_byte_data(client, 0, PMBUS_VOUT_MODE);
1687
	if (vout_mode >= 0 && vout_mode != 0xff) {
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		/*
		 * Not all chips support the VOUT_MODE command,
		 * so a failure to read it is not an error.
		 */
		switch (vout_mode >> 5) {
		case 0:	/* linear mode      */
1694
			if (data->info->format[PSC_VOLTAGE_OUT] != linear)
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1695 1696
				return -ENODEV;

1697
			data->exponent = ((s8)(vout_mode << 3)) >> 3;
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1698
			break;
1699 1700 1701 1702
		case 1: /* VID mode         */
			if (data->info->format[PSC_VOLTAGE_OUT] != vid)
				return -ENODEV;
			break;
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		case 2:	/* direct mode      */
1704
			if (data->info->format[PSC_VOLTAGE_OUT] != direct)
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1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720
				return -ENODEV;
			break;
		default:
			return -ENODEV;
		}
	}

	/* Determine maximum number of sensors, booleans, and labels */
	pmbus_find_max_attr(client, data);
	pmbus_clear_fault_page(client, 0);
	return 0;
}

int pmbus_do_probe(struct i2c_client *client, const struct i2c_device_id *id,
		   struct pmbus_driver_info *info)
{
1721 1722
	struct device *dev = &client->dev;
	const struct pmbus_platform_data *pdata = dev->platform_data;
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	struct pmbus_data *data;
	int ret;

1726
	if (!info)
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		return -ENODEV;

	if (!i2c_check_functionality(client->adapter, I2C_FUNC_SMBUS_WRITE_BYTE
				     | I2C_FUNC_SMBUS_BYTE_DATA
				     | I2C_FUNC_SMBUS_WORD_DATA))
		return -ENODEV;

1734
	data = devm_kzalloc(dev, sizeof(*data), GFP_KERNEL);
1735
	if (!data)
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1736 1737 1738 1739
		return -ENOMEM;

	i2c_set_clientdata(client, data);
	mutex_init(&data->update_lock);
1740
	data->dev = dev;
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1741

1742 1743
	/* Bail out if PMBus status register does not exist. */
	if (i2c_smbus_read_byte_data(client, PMBUS_STATUS_BYTE) < 0) {
1744
		dev_err(dev, "PMBus status register not found\n");
1745
		return -ENODEV;
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	}

	if (pdata)
		data->flags = pdata->flags;
	data->info = info;

	pmbus_clear_faults(client);

	if (info->identify) {
		ret = (*info->identify)(client, info);
		if (ret < 0) {
1757
			dev_err(dev, "Chip identification failed\n");
1758
			return ret;
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1759 1760 1761 1762
		}
	}

	if (info->pages <= 0 || info->pages > PMBUS_PAGES) {
1763
		dev_err(dev, "Bad number of PMBus pages: %d\n", info->pages);
1764
		return -ENODEV;
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	}

	ret = pmbus_identify_common(client, data);
	if (ret < 0) {
1769
		dev_err(dev, "Failed to identify chip capabilities\n");
1770
		return ret;
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	}

1773
	data->attributes = devm_kzalloc(dev, sizeof(struct attribute *)
1774
					* data->max_attributes, GFP_KERNEL);
1775
	if (!data->attributes)
1776
		return -ENOMEM;
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1777

1778 1779 1780
	ret = pmbus_find_attributes(client, data);
	if (ret)
		return ret;
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	/*
	 * If there are no attributes, something is wrong.
	 * Bail out instead of trying to register nothing.
	 */
	if (!data->num_attributes) {
1787
		dev_err(dev, "No attributes found\n");
1788
		return -ENODEV;
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	}

	/* Register sysfs hooks */
	data->group.attrs = data->attributes;
1793
	ret = sysfs_create_group(&dev->kobj, &data->group);
G
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1794
	if (ret) {
1795
		dev_err(dev, "Failed to create sysfs entries\n");
1796
		return ret;
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1797
	}
1798
	data->hwmon_dev = hwmon_device_register(dev);
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1799 1800
	if (IS_ERR(data->hwmon_dev)) {
		ret = PTR_ERR(data->hwmon_dev);
1801
		dev_err(dev, "Failed to register hwmon device\n");
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		goto out_hwmon_device_register;
	}
	return 0;

out_hwmon_device_register:
1807
	sysfs_remove_group(&dev->kobj, &data->group);
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	return ret;
}
EXPORT_SYMBOL_GPL(pmbus_do_probe);

1812
int pmbus_do_remove(struct i2c_client *client)
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1813 1814 1815 1816
{
	struct pmbus_data *data = i2c_get_clientdata(client);
	hwmon_device_unregister(data->hwmon_dev);
	sysfs_remove_group(&client->dev.kobj, &data->group);
1817
	return 0;
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}
EXPORT_SYMBOL_GPL(pmbus_do_remove);

MODULE_AUTHOR("Guenter Roeck");
MODULE_DESCRIPTION("PMBus core driver");
MODULE_LICENSE("GPL");