ab8500_fg.c 83.6 KB
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/*
 * Copyright (C) ST-Ericsson AB 2012
 *
 * Main and Back-up battery management driver.
 *
 * Note: Backup battery management is required in case of Li-Ion battery and not
 * for capacitive battery. HREF boards have capacitive battery and hence backup
 * battery management is not used and the supported code is available in this
 * driver.
 *
 * License Terms: GNU General Public License v2
 * Author:
 *	Johan Palsson <johan.palsson@stericsson.com>
 *	Karl Komierowski <karl.komierowski@stericsson.com>
 *	Arun R Murthy <arun.murthy@stericsson.com>
 */

#include <linux/init.h>
#include <linux/module.h>
#include <linux/device.h>
#include <linux/interrupt.h>
#include <linux/platform_device.h>
#include <linux/power_supply.h>
#include <linux/kobject.h>
#include <linux/slab.h>
#include <linux/delay.h>
#include <linux/time.h>
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#include <linux/time64.h>
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#include <linux/of.h>
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#include <linux/completion.h>
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#include <linux/mfd/core.h>
#include <linux/mfd/abx500.h>
#include <linux/mfd/abx500/ab8500.h>
#include <linux/mfd/abx500/ab8500-bm.h>
#include <linux/mfd/abx500/ab8500-gpadc.h>
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#include <linux/kernel.h>
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#define MILLI_TO_MICRO			1000
#define FG_LSB_IN_MA			1627
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#define QLSB_NANO_AMP_HOURS_X10		1071
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#define INS_CURR_TIMEOUT		(3 * HZ)

#define SEC_TO_SAMPLE(S)		(S * 4)

#define NBR_AVG_SAMPLES			20

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#define LOW_BAT_CHECK_INTERVAL		(HZ / 16) /* 62.5 ms */
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#define VALID_CAPACITY_SEC		(45 * 60) /* 45 minutes */
#define BATT_OK_MIN			2360 /* mV */
#define BATT_OK_INCREMENT		50 /* mV */
#define BATT_OK_MAX_NR_INCREMENTS	0xE

/* FG constants */
#define BATT_OVV			0x01

#define interpolate(x, x1, y1, x2, y2) \
	((y1) + ((((y2) - (y1)) * ((x) - (x1))) / ((x2) - (x1))));

/**
 * struct ab8500_fg_interrupts - ab8500 fg interupts
 * @name:	name of the interrupt
 * @isr		function pointer to the isr
 */
struct ab8500_fg_interrupts {
	char *name;
	irqreturn_t (*isr)(int irq, void *data);
};

enum ab8500_fg_discharge_state {
	AB8500_FG_DISCHARGE_INIT,
	AB8500_FG_DISCHARGE_INITMEASURING,
	AB8500_FG_DISCHARGE_INIT_RECOVERY,
	AB8500_FG_DISCHARGE_RECOVERY,
	AB8500_FG_DISCHARGE_READOUT_INIT,
	AB8500_FG_DISCHARGE_READOUT,
	AB8500_FG_DISCHARGE_WAKEUP,
};

static char *discharge_state[] = {
	"DISCHARGE_INIT",
	"DISCHARGE_INITMEASURING",
	"DISCHARGE_INIT_RECOVERY",
	"DISCHARGE_RECOVERY",
	"DISCHARGE_READOUT_INIT",
	"DISCHARGE_READOUT",
	"DISCHARGE_WAKEUP",
};

enum ab8500_fg_charge_state {
	AB8500_FG_CHARGE_INIT,
	AB8500_FG_CHARGE_READOUT,
};

static char *charge_state[] = {
	"CHARGE_INIT",
	"CHARGE_READOUT",
};

enum ab8500_fg_calibration_state {
	AB8500_FG_CALIB_INIT,
	AB8500_FG_CALIB_WAIT,
	AB8500_FG_CALIB_END,
};

struct ab8500_fg_avg_cap {
	int avg;
	int samples[NBR_AVG_SAMPLES];
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	time64_t time_stamps[NBR_AVG_SAMPLES];
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	int pos;
	int nbr_samples;
	int sum;
};

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struct ab8500_fg_cap_scaling {
	bool enable;
	int cap_to_scale[2];
	int disable_cap_level;
	int scaled_cap;
};

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struct ab8500_fg_battery_capacity {
	int max_mah_design;
	int max_mah;
	int mah;
	int permille;
	int level;
	int prev_mah;
	int prev_percent;
	int prev_level;
	int user_mah;
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	struct ab8500_fg_cap_scaling cap_scale;
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};

struct ab8500_fg_flags {
	bool fg_enabled;
	bool conv_done;
	bool charging;
	bool fully_charged;
	bool force_full;
	bool low_bat_delay;
	bool low_bat;
	bool bat_ovv;
	bool batt_unknown;
	bool calibrate;
	bool user_cap;
	bool batt_id_received;
};

struct inst_curr_result_list {
	struct list_head list;
	int *result;
};

/**
 * struct ab8500_fg - ab8500 FG device information
 * @dev:		Pointer to the structure device
 * @node:		a list of AB8500 FGs, hence prepared for reentrance
 * @irq			holds the CCEOC interrupt number
 * @vbat:		Battery voltage in mV
 * @vbat_nom:		Nominal battery voltage in mV
 * @inst_curr:		Instantenous battery current in mA
 * @avg_curr:		Average battery current in mA
 * @bat_temp		battery temperature
 * @fg_samples:		Number of samples used in the FG accumulation
 * @accu_charge:	Accumulated charge from the last conversion
 * @recovery_cnt:	Counter for recovery mode
 * @high_curr_cnt:	Counter for high current mode
 * @init_cnt:		Counter for init mode
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 * @low_bat_cnt		Counter for number of consecutive low battery measures
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 * @nbr_cceoc_irq_cnt	Counter for number of CCEOC irqs received since enabled
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 * @recovery_needed:	Indicate if recovery is needed
 * @high_curr_mode:	Indicate if we're in high current mode
 * @init_capacity:	Indicate if initial capacity measuring should be done
 * @turn_off_fg:	True if fg was off before current measurement
 * @calib_state		State during offset calibration
 * @discharge_state:	Current discharge state
 * @charge_state:	Current charge state
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 * @ab8500_fg_started	Completion struct used for the instant current start
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 * @ab8500_fg_complete	Completion struct used for the instant current reading
 * @flags:		Structure for information about events triggered
 * @bat_cap:		Structure for battery capacity specific parameters
 * @avg_cap:		Average capacity filter
 * @parent:		Pointer to the struct ab8500
 * @gpadc:		Pointer to the struct gpadc
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 * @bm:           	Platform specific battery management information
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 * @fg_psy:		Structure that holds the FG specific battery properties
 * @fg_wq:		Work queue for running the FG algorithm
 * @fg_periodic_work:	Work to run the FG algorithm periodically
 * @fg_low_bat_work:	Work to check low bat condition
 * @fg_reinit_work	Work used to reset and reinitialise the FG algorithm
 * @fg_work:		Work to run the FG algorithm instantly
 * @fg_acc_cur_work:	Work to read the FG accumulator
 * @fg_check_hw_failure_work:	Work for checking HW state
 * @cc_lock:		Mutex for locking the CC
 * @fg_kobject:		Structure of type kobject
 */
struct ab8500_fg {
	struct device *dev;
	struct list_head node;
	int irq;
	int vbat;
	int vbat_nom;
	int inst_curr;
	int avg_curr;
	int bat_temp;
	int fg_samples;
	int accu_charge;
	int recovery_cnt;
	int high_curr_cnt;
	int init_cnt;
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	int low_bat_cnt;
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	int nbr_cceoc_irq_cnt;
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	bool recovery_needed;
	bool high_curr_mode;
	bool init_capacity;
	bool turn_off_fg;
	enum ab8500_fg_calibration_state calib_state;
	enum ab8500_fg_discharge_state discharge_state;
	enum ab8500_fg_charge_state charge_state;
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	struct completion ab8500_fg_started;
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	struct completion ab8500_fg_complete;
	struct ab8500_fg_flags flags;
	struct ab8500_fg_battery_capacity bat_cap;
	struct ab8500_fg_avg_cap avg_cap;
	struct ab8500 *parent;
	struct ab8500_gpadc *gpadc;
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	struct abx500_bm_data *bm;
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	struct power_supply *fg_psy;
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	struct workqueue_struct *fg_wq;
	struct delayed_work fg_periodic_work;
	struct delayed_work fg_low_bat_work;
	struct delayed_work fg_reinit_work;
	struct work_struct fg_work;
	struct work_struct fg_acc_cur_work;
	struct delayed_work fg_check_hw_failure_work;
	struct mutex cc_lock;
	struct kobject fg_kobject;
};
static LIST_HEAD(ab8500_fg_list);

/**
 * ab8500_fg_get() - returns a reference to the primary AB8500 fuel gauge
 * (i.e. the first fuel gauge in the instance list)
 */
struct ab8500_fg *ab8500_fg_get(void)
{
	struct ab8500_fg *fg;

	if (list_empty(&ab8500_fg_list))
		return NULL;

	fg = list_first_entry(&ab8500_fg_list, struct ab8500_fg, node);
	return fg;
}

/* Main battery properties */
static enum power_supply_property ab8500_fg_props[] = {
	POWER_SUPPLY_PROP_VOLTAGE_NOW,
	POWER_SUPPLY_PROP_CURRENT_NOW,
	POWER_SUPPLY_PROP_CURRENT_AVG,
	POWER_SUPPLY_PROP_ENERGY_FULL_DESIGN,
	POWER_SUPPLY_PROP_ENERGY_FULL,
	POWER_SUPPLY_PROP_ENERGY_NOW,
	POWER_SUPPLY_PROP_CHARGE_FULL_DESIGN,
	POWER_SUPPLY_PROP_CHARGE_FULL,
	POWER_SUPPLY_PROP_CHARGE_NOW,
	POWER_SUPPLY_PROP_CAPACITY,
	POWER_SUPPLY_PROP_CAPACITY_LEVEL,
};

/*
 * This array maps the raw hex value to lowbat voltage used by the AB8500
 * Values taken from the UM0836
 */
static int ab8500_fg_lowbat_voltage_map[] = {
	2300 ,
	2325 ,
	2350 ,
	2375 ,
	2400 ,
	2425 ,
	2450 ,
	2475 ,
	2500 ,
	2525 ,
	2550 ,
	2575 ,
	2600 ,
	2625 ,
	2650 ,
	2675 ,
	2700 ,
	2725 ,
	2750 ,
	2775 ,
	2800 ,
	2825 ,
	2850 ,
	2875 ,
	2900 ,
	2925 ,
	2950 ,
	2975 ,
	3000 ,
	3025 ,
	3050 ,
	3075 ,
	3100 ,
	3125 ,
	3150 ,
	3175 ,
	3200 ,
	3225 ,
	3250 ,
	3275 ,
	3300 ,
	3325 ,
	3350 ,
	3375 ,
	3400 ,
	3425 ,
	3450 ,
	3475 ,
	3500 ,
	3525 ,
	3550 ,
	3575 ,
	3600 ,
	3625 ,
	3650 ,
	3675 ,
	3700 ,
	3725 ,
	3750 ,
	3775 ,
	3800 ,
	3825 ,
	3850 ,
	3850 ,
};

static u8 ab8500_volt_to_regval(int voltage)
{
	int i;

	if (voltage < ab8500_fg_lowbat_voltage_map[0])
		return 0;

	for (i = 0; i < ARRAY_SIZE(ab8500_fg_lowbat_voltage_map); i++) {
		if (voltage < ab8500_fg_lowbat_voltage_map[i])
			return (u8) i - 1;
	}

	/* If not captured above, return index of last element */
	return (u8) ARRAY_SIZE(ab8500_fg_lowbat_voltage_map) - 1;
}

/**
 * ab8500_fg_is_low_curr() - Low or high current mode
 * @di:		pointer to the ab8500_fg structure
 * @curr:	the current to base or our decision on
 *
 * Low current mode if the current consumption is below a certain threshold
 */
static int ab8500_fg_is_low_curr(struct ab8500_fg *di, int curr)
{
	/*
	 * We want to know if we're in low current mode
	 */
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	if (curr > -di->bm->fg_params->high_curr_threshold)
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		return true;
	else
		return false;
}

/**
 * ab8500_fg_add_cap_sample() - Add capacity to average filter
 * @di:		pointer to the ab8500_fg structure
 * @sample:	the capacity in mAh to add to the filter
 *
 * A capacity is added to the filter and a new mean capacity is calculated and
 * returned
 */
static int ab8500_fg_add_cap_sample(struct ab8500_fg *di, int sample)
{
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	struct timespec64 ts64;
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	struct ab8500_fg_avg_cap *avg = &di->avg_cap;

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	getnstimeofday64(&ts64);
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	do {
		avg->sum += sample - avg->samples[avg->pos];
		avg->samples[avg->pos] = sample;
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		avg->time_stamps[avg->pos] = ts64.tv_sec;
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		avg->pos++;

		if (avg->pos == NBR_AVG_SAMPLES)
			avg->pos = 0;

		if (avg->nbr_samples < NBR_AVG_SAMPLES)
			avg->nbr_samples++;

		/*
		 * Check the time stamp for each sample. If too old,
		 * replace with latest sample
		 */
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	} while (ts64.tv_sec - VALID_CAPACITY_SEC > avg->time_stamps[avg->pos]);
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	avg->avg = avg->sum / avg->nbr_samples;

	return avg->avg;
}

/**
 * ab8500_fg_clear_cap_samples() - Clear average filter
 * @di:		pointer to the ab8500_fg structure
 *
 * The capacity filter is is reset to zero.
 */
static void ab8500_fg_clear_cap_samples(struct ab8500_fg *di)
{
	int i;
	struct ab8500_fg_avg_cap *avg = &di->avg_cap;

	avg->pos = 0;
	avg->nbr_samples = 0;
	avg->sum = 0;
	avg->avg = 0;

	for (i = 0; i < NBR_AVG_SAMPLES; i++) {
		avg->samples[i] = 0;
		avg->time_stamps[i] = 0;
	}
}

/**
 * ab8500_fg_fill_cap_sample() - Fill average filter
 * @di:		pointer to the ab8500_fg structure
 * @sample:	the capacity in mAh to fill the filter with
 *
 * The capacity filter is filled with a capacity in mAh
 */
static void ab8500_fg_fill_cap_sample(struct ab8500_fg *di, int sample)
{
	int i;
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	struct timespec64 ts64;
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	struct ab8500_fg_avg_cap *avg = &di->avg_cap;

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	getnstimeofday64(&ts64);
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	for (i = 0; i < NBR_AVG_SAMPLES; i++) {
		avg->samples[i] = sample;
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		avg->time_stamps[i] = ts64.tv_sec;
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	}

	avg->pos = 0;
	avg->nbr_samples = NBR_AVG_SAMPLES;
	avg->sum = sample * NBR_AVG_SAMPLES;
	avg->avg = sample;
}

/**
 * ab8500_fg_coulomb_counter() - enable coulomb counter
 * @di:		pointer to the ab8500_fg structure
 * @enable:	enable/disable
 *
 * Enable/Disable coulomb counter.
 * On failure returns negative value.
 */
static int ab8500_fg_coulomb_counter(struct ab8500_fg *di, bool enable)
{
	int ret = 0;
	mutex_lock(&di->cc_lock);
	if (enable) {
		/* To be able to reprogram the number of samples, we have to
		 * first stop the CC and then enable it again */
		ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
			AB8500_RTC_CC_CONF_REG, 0x00);
		if (ret)
			goto cc_err;

		/* Program the samples */
		ret = abx500_set_register_interruptible(di->dev,
			AB8500_GAS_GAUGE, AB8500_GASG_CC_NCOV_ACCU,
			di->fg_samples);
		if (ret)
			goto cc_err;

		/* Start the CC */
		ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
			AB8500_RTC_CC_CONF_REG,
			(CC_DEEP_SLEEP_ENA | CC_PWR_UP_ENA));
		if (ret)
			goto cc_err;

		di->flags.fg_enabled = true;
	} else {
		/* Clear any pending read requests */
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		ret = abx500_mask_and_set_register_interruptible(di->dev,
			AB8500_GAS_GAUGE, AB8500_GASG_CC_CTRL_REG,
			(RESET_ACCU | READ_REQ), 0);
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		if (ret)
			goto cc_err;

		ret = abx500_set_register_interruptible(di->dev,
			AB8500_GAS_GAUGE, AB8500_GASG_CC_NCOV_ACCU_CTRL, 0);
		if (ret)
			goto cc_err;

		/* Stop the CC */
		ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
			AB8500_RTC_CC_CONF_REG, 0);
		if (ret)
			goto cc_err;

		di->flags.fg_enabled = false;

	}
	dev_dbg(di->dev, " CC enabled: %d Samples: %d\n",
		enable, di->fg_samples);

	mutex_unlock(&di->cc_lock);

	return ret;
cc_err:
	dev_err(di->dev, "%s Enabling coulomb counter failed\n", __func__);
	mutex_unlock(&di->cc_lock);
	return ret;
}

/**
 * ab8500_fg_inst_curr_start() - start battery instantaneous current
 * @di:         pointer to the ab8500_fg structure
 *
 * Returns 0 or error code
 * Note: This is part "one" and has to be called before
 * ab8500_fg_inst_curr_finalize()
 */
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int ab8500_fg_inst_curr_start(struct ab8500_fg *di)
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{
	u8 reg_val;
	int ret;

	mutex_lock(&di->cc_lock);

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	di->nbr_cceoc_irq_cnt = 0;
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	ret = abx500_get_register_interruptible(di->dev, AB8500_RTC,
		AB8500_RTC_CC_CONF_REG, &reg_val);
	if (ret < 0)
		goto fail;

	if (!(reg_val & CC_PWR_UP_ENA)) {
		dev_dbg(di->dev, "%s Enable FG\n", __func__);
		di->turn_off_fg = true;

		/* Program the samples */
		ret = abx500_set_register_interruptible(di->dev,
			AB8500_GAS_GAUGE, AB8500_GASG_CC_NCOV_ACCU,
			SEC_TO_SAMPLE(10));
		if (ret)
			goto fail;

		/* Start the CC */
		ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
			AB8500_RTC_CC_CONF_REG,
			(CC_DEEP_SLEEP_ENA | CC_PWR_UP_ENA));
		if (ret)
			goto fail;
	} else {
		di->turn_off_fg = false;
	}

	/* Return and WFI */
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	reinit_completion(&di->ab8500_fg_started);
	reinit_completion(&di->ab8500_fg_complete);
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	enable_irq(di->irq);

	/* Note: cc_lock is still locked */
	return 0;
fail:
	mutex_unlock(&di->cc_lock);
	return ret;
}

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/**
 * ab8500_fg_inst_curr_started() - check if fg conversion has started
 * @di:         pointer to the ab8500_fg structure
 *
 * Returns 1 if conversion started, 0 if still waiting
 */
int ab8500_fg_inst_curr_started(struct ab8500_fg *di)
{
	return completion_done(&di->ab8500_fg_started);
}

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/**
 * ab8500_fg_inst_curr_done() - check if fg conversion is done
 * @di:         pointer to the ab8500_fg structure
 *
 * Returns 1 if conversion done, 0 if still waiting
 */
int ab8500_fg_inst_curr_done(struct ab8500_fg *di)
{
	return completion_done(&di->ab8500_fg_complete);
}

/**
 * ab8500_fg_inst_curr_finalize() - battery instantaneous current
 * @di:         pointer to the ab8500_fg structure
 * @res:	battery instantenous current(on success)
 *
 * Returns 0 or an error code
 * Note: This is part "two" and has to be called at earliest 250 ms
 * after ab8500_fg_inst_curr_start()
 */
int ab8500_fg_inst_curr_finalize(struct ab8500_fg *di, int *res)
{
	u8 low, high;
	int val;
	int ret;
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	unsigned long timeout;
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	if (!completion_done(&di->ab8500_fg_complete)) {
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		timeout = wait_for_completion_timeout(
			&di->ab8500_fg_complete,
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			INS_CURR_TIMEOUT);
		dev_dbg(di->dev, "Finalize time: %d ms\n",
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			jiffies_to_msecs(INS_CURR_TIMEOUT - timeout));
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		if (!timeout) {
			ret = -ETIME;
			disable_irq(di->irq);
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			di->nbr_cceoc_irq_cnt = 0;
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			dev_err(di->dev, "completion timed out [%d]\n",
				__LINE__);
			goto fail;
		}
	}

	disable_irq(di->irq);
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	di->nbr_cceoc_irq_cnt = 0;
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	ret = abx500_mask_and_set_register_interruptible(di->dev,
			AB8500_GAS_GAUGE, AB8500_GASG_CC_CTRL_REG,
			READ_REQ, READ_REQ);

	/* 100uS between read request and read is needed */
	usleep_range(100, 100);

	/* Read CC Sample conversion value Low and high */
	ret = abx500_get_register_interruptible(di->dev, AB8500_GAS_GAUGE,
		AB8500_GASG_CC_SMPL_CNVL_REG,  &low);
	if (ret < 0)
		goto fail;

	ret = abx500_get_register_interruptible(di->dev, AB8500_GAS_GAUGE,
		AB8500_GASG_CC_SMPL_CNVH_REG,  &high);
	if (ret < 0)
		goto fail;

	/*
	 * negative value for Discharging
	 * convert 2's compliment into decimal
	 */
	if (high & 0x10)
		val = (low | (high << 8) | 0xFFFFE000);
	else
		val = (low | (high << 8));

	/*
	 * Convert to unit value in mA
	 * Full scale input voltage is
L
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	 * 63.160mV => LSB = 63.160mV/(4096*res) = 1.542mA
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	 * Given a 250ms conversion cycle time the LSB corresponds
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	 * to 107.1 nAh. Convert to current by dividing by the conversion
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	 * time in hours (250ms = 1 / (3600 * 4)h)
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	 * 107.1nAh assumes 10mOhm, but fg_res is in 0.1mOhm
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	 */
	val = (val * QLSB_NANO_AMP_HOURS_X10 * 36 * 4) /
680
		(1000 * di->bm->fg_res);
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	if (di->turn_off_fg) {
		dev_dbg(di->dev, "%s Disable FG\n", __func__);

		/* Clear any pending read requests */
		ret = abx500_set_register_interruptible(di->dev,
			AB8500_GAS_GAUGE, AB8500_GASG_CC_CTRL_REG, 0);
		if (ret)
			goto fail;

		/* Stop the CC */
		ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
			AB8500_RTC_CC_CONF_REG, 0);
		if (ret)
			goto fail;
	}
	mutex_unlock(&di->cc_lock);
	(*res) = val;

	return 0;
fail:
	mutex_unlock(&di->cc_lock);
	return ret;
}

/**
 * ab8500_fg_inst_curr_blocking() - battery instantaneous current
 * @di:         pointer to the ab8500_fg structure
 * @res:	battery instantenous current(on success)
 *
 * Returns 0 else error code
 */
int ab8500_fg_inst_curr_blocking(struct ab8500_fg *di)
{
	int ret;
716
	unsigned long timeout;
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	int res = 0;

	ret = ab8500_fg_inst_curr_start(di);
	if (ret) {
		dev_err(di->dev, "Failed to initialize fg_inst\n");
		return 0;
	}

725 726 727 728 729 730
	/* Wait for CC to actually start */
	if (!completion_done(&di->ab8500_fg_started)) {
		timeout = wait_for_completion_timeout(
			&di->ab8500_fg_started,
			INS_CURR_TIMEOUT);
		dev_dbg(di->dev, "Start time: %d ms\n",
731
			jiffies_to_msecs(INS_CURR_TIMEOUT - timeout));
732 733 734 735 736 737 738 739
		if (!timeout) {
			ret = -ETIME;
			dev_err(di->dev, "completion timed out [%d]\n",
				__LINE__);
			goto fail;
		}
	}

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	ret = ab8500_fg_inst_curr_finalize(di, &res);
	if (ret) {
		dev_err(di->dev, "Failed to finalize fg_inst\n");
		return 0;
	}

746
	dev_dbg(di->dev, "%s instant current: %d", __func__, res);
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	return res;
748
fail:
749
	disable_irq(di->irq);
750 751
	mutex_unlock(&di->cc_lock);
	return ret;
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}

/**
 * ab8500_fg_acc_cur_work() - average battery current
 * @work:	pointer to the work_struct structure
 *
 * Updated the average battery current obtained from the
 * coulomb counter.
 */
static void ab8500_fg_acc_cur_work(struct work_struct *work)
{
	int val;
	int ret;
	u8 low, med, high;

	struct ab8500_fg *di = container_of(work,
		struct ab8500_fg, fg_acc_cur_work);

	mutex_lock(&di->cc_lock);
	ret = abx500_set_register_interruptible(di->dev, AB8500_GAS_GAUGE,
		AB8500_GASG_CC_NCOV_ACCU_CTRL, RD_NCONV_ACCU_REQ);
	if (ret)
		goto exit;

	ret = abx500_get_register_interruptible(di->dev, AB8500_GAS_GAUGE,
		AB8500_GASG_CC_NCOV_ACCU_LOW,  &low);
	if (ret < 0)
		goto exit;

	ret = abx500_get_register_interruptible(di->dev, AB8500_GAS_GAUGE,
		AB8500_GASG_CC_NCOV_ACCU_MED,  &med);
	if (ret < 0)
		goto exit;

	ret = abx500_get_register_interruptible(di->dev, AB8500_GAS_GAUGE,
		AB8500_GASG_CC_NCOV_ACCU_HIGH, &high);
	if (ret < 0)
		goto exit;

	/* Check for sign bit in case of negative value, 2's compliment */
	if (high & 0x10)
		val = (low | (med << 8) | (high << 16) | 0xFFE00000);
	else
		val = (low | (med << 8) | (high << 16));

	/*
	 * Convert to uAh
	 * Given a 250ms conversion cycle time the LSB corresponds
	 * to 112.9 nAh.
	 * 112.9nAh assumes 10mOhm, but fg_res is in 0.1mOhm
	 */
	di->accu_charge = (val * QLSB_NANO_AMP_HOURS_X10) /
804
		(100 * di->bm->fg_res);
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	/*
	 * Convert to unit value in mA
808
	 * by dividing by the conversion
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	 * time in hours (= samples / (3600 * 4)h)
810
	 * and multiply with 1000
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	 */
	di->avg_curr = (val * QLSB_NANO_AMP_HOURS_X10 * 36) /
813
		(1000 * di->bm->fg_res * (di->fg_samples / 4));
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	di->flags.conv_done = true;

	mutex_unlock(&di->cc_lock);

	queue_work(di->fg_wq, &di->fg_work);

821 822
	dev_dbg(di->dev, "fg_res: %d, fg_samples: %d, gasg: %d, accu_charge: %d \n",
				di->bm->fg_res, di->fg_samples, val, di->accu_charge);
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	return;
exit:
	dev_err(di->dev,
		"Failed to read or write gas gauge registers\n");
	mutex_unlock(&di->cc_lock);
	queue_work(di->fg_wq, &di->fg_work);
}

/**
 * ab8500_fg_bat_voltage() - get battery voltage
 * @di:		pointer to the ab8500_fg structure
 *
 * Returns battery voltage(on success) else error code
 */
static int ab8500_fg_bat_voltage(struct ab8500_fg *di)
{
	int vbat;
	static int prev;

	vbat = ab8500_gpadc_convert(di->gpadc, MAIN_BAT_V);
	if (vbat < 0) {
		dev_err(di->dev,
			"%s gpadc conversion failed, using previous value\n",
			__func__);
		return prev;
	}

	prev = vbat;
	return vbat;
}

/**
 * ab8500_fg_volt_to_capacity() - Voltage based capacity
 * @di:		pointer to the ab8500_fg structure
 * @voltage:	The voltage to convert to a capacity
 *
 * Returns battery capacity in per mille based on voltage
 */
static int ab8500_fg_volt_to_capacity(struct ab8500_fg *di, int voltage)
{
	int i, tbl_size;
864
	const struct abx500_v_to_cap *tbl;
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	int cap = 0;

867 868
	tbl = di->bm->bat_type[di->bm->batt_id].v_to_cap_tbl,
	tbl_size = di->bm->bat_type[di->bm->batt_id].n_v_cap_tbl_elements;
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	for (i = 0; i < tbl_size; ++i) {
		if (voltage > tbl[i].voltage)
			break;
	}

	if ((i > 0) && (i < tbl_size)) {
		cap = interpolate(voltage,
			tbl[i].voltage,
			tbl[i].capacity * 10,
			tbl[i-1].voltage,
			tbl[i-1].capacity * 10);
	} else if (i == 0) {
		cap = 1000;
	} else {
		cap = 0;
	}

	dev_dbg(di->dev, "%s Vbat: %d, Cap: %d per mille",
		__func__, voltage, cap);

	return cap;
}

/**
 * ab8500_fg_uncomp_volt_to_capacity() - Uncompensated voltage based capacity
 * @di:		pointer to the ab8500_fg structure
 *
 * Returns battery capacity based on battery voltage that is not compensated
 * for the voltage drop due to the load
 */
static int ab8500_fg_uncomp_volt_to_capacity(struct ab8500_fg *di)
{
	di->vbat = ab8500_fg_bat_voltage(di);
	return ab8500_fg_volt_to_capacity(di, di->vbat);
}

/**
 * ab8500_fg_battery_resistance() - Returns the battery inner resistance
 * @di:		pointer to the ab8500_fg structure
 *
 * Returns battery inner resistance added with the fuel gauge resistor value
 * to get the total resistance in the whole link from gnd to bat+ node.
 */
static int ab8500_fg_battery_resistance(struct ab8500_fg *di)
{
	int i, tbl_size;
916
	const struct batres_vs_temp *tbl;
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	int resist = 0;

919 920
	tbl = di->bm->bat_type[di->bm->batt_id].batres_tbl;
	tbl_size = di->bm->bat_type[di->bm->batt_id].n_batres_tbl_elements;
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	for (i = 0; i < tbl_size; ++i) {
		if (di->bat_temp / 10 > tbl[i].temp)
			break;
	}

	if ((i > 0) && (i < tbl_size)) {
		resist = interpolate(di->bat_temp / 10,
			tbl[i].temp,
			tbl[i].resist,
			tbl[i-1].temp,
			tbl[i-1].resist);
	} else if (i == 0) {
		resist = tbl[0].resist;
	} else {
		resist = tbl[tbl_size - 1].resist;
	}

	dev_dbg(di->dev, "%s Temp: %d battery internal resistance: %d"
	    " fg resistance %d, total: %d (mOhm)\n",
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		__func__, di->bat_temp, resist, di->bm->fg_res / 10,
		(di->bm->fg_res / 10) + resist);
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	/* fg_res variable is in 0.1mOhm */
945
	resist += di->bm->fg_res / 10;
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	return resist;
}

/**
 * ab8500_fg_load_comp_volt_to_capacity() - Load compensated voltage based capacity
 * @di:		pointer to the ab8500_fg structure
 *
 * Returns battery capacity based on battery voltage that is load compensated
 * for the voltage drop
 */
static int ab8500_fg_load_comp_volt_to_capacity(struct ab8500_fg *di)
{
	int vbat_comp, res;
	int i = 0;
	int vbat = 0;

	ab8500_fg_inst_curr_start(di);

	do {
		vbat += ab8500_fg_bat_voltage(di);
		i++;
968
		usleep_range(5000, 6000);
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	} while (!ab8500_fg_inst_curr_done(di));

	ab8500_fg_inst_curr_finalize(di, &di->inst_curr);

	di->vbat = vbat / i;
	res = ab8500_fg_battery_resistance(di);

	/* Use Ohms law to get the load compensated voltage */
	vbat_comp = di->vbat - (di->inst_curr * res) / 1000;

	dev_dbg(di->dev, "%s Measured Vbat: %dmV,Compensated Vbat %dmV, "
		"R: %dmOhm, Current: %dmA Vbat Samples: %d\n",
		__func__, di->vbat, vbat_comp, res, di->inst_curr, i);

	return ab8500_fg_volt_to_capacity(di, vbat_comp);
}

/**
 * ab8500_fg_convert_mah_to_permille() - Capacity in mAh to permille
 * @di:		pointer to the ab8500_fg structure
 * @cap_mah:	capacity in mAh
 *
 * Converts capacity in mAh to capacity in permille
 */
static int ab8500_fg_convert_mah_to_permille(struct ab8500_fg *di, int cap_mah)
{
	return (cap_mah * 1000) / di->bat_cap.max_mah_design;
}

/**
 * ab8500_fg_convert_permille_to_mah() - Capacity in permille to mAh
 * @di:		pointer to the ab8500_fg structure
 * @cap_pm:	capacity in permille
 *
 * Converts capacity in permille to capacity in mAh
 */
static int ab8500_fg_convert_permille_to_mah(struct ab8500_fg *di, int cap_pm)
{
	return cap_pm * di->bat_cap.max_mah_design / 1000;
}

/**
 * ab8500_fg_convert_mah_to_uwh() - Capacity in mAh to uWh
 * @di:		pointer to the ab8500_fg structure
 * @cap_mah:	capacity in mAh
 *
 * Converts capacity in mAh to capacity in uWh
 */
static int ab8500_fg_convert_mah_to_uwh(struct ab8500_fg *di, int cap_mah)
{
	u64 div_res;
	u32 div_rem;

	div_res = ((u64) cap_mah) * ((u64) di->vbat_nom);
	div_rem = do_div(div_res, 1000);

	/* Make sure to round upwards if necessary */
	if (div_rem >= 1000 / 2)
		div_res++;

	return (int) div_res;
}

/**
 * ab8500_fg_calc_cap_charging() - Calculate remaining capacity while charging
 * @di:		pointer to the ab8500_fg structure
 *
 * Return the capacity in mAh based on previous calculated capcity and the FG
 * accumulator register value. The filter is filled with this capacity
 */
static int ab8500_fg_calc_cap_charging(struct ab8500_fg *di)
{
	dev_dbg(di->dev, "%s cap_mah %d accu_charge %d\n",
		__func__,
		di->bat_cap.mah,
		di->accu_charge);

	/* Capacity should not be less than 0 */
	if (di->bat_cap.mah + di->accu_charge > 0)
		di->bat_cap.mah += di->accu_charge;
	else
		di->bat_cap.mah = 0;
	/*
	 * We force capacity to 100% once when the algorithm
	 * reports that it's full.
	 */
	if (di->bat_cap.mah >= di->bat_cap.max_mah_design ||
		di->flags.force_full) {
		di->bat_cap.mah = di->bat_cap.max_mah_design;
	}

	ab8500_fg_fill_cap_sample(di, di->bat_cap.mah);
	di->bat_cap.permille =
		ab8500_fg_convert_mah_to_permille(di, di->bat_cap.mah);

	/* We need to update battery voltage and inst current when charging */
	di->vbat = ab8500_fg_bat_voltage(di);
	di->inst_curr = ab8500_fg_inst_curr_blocking(di);

	return di->bat_cap.mah;
}

/**
 * ab8500_fg_calc_cap_discharge_voltage() - Capacity in discharge with voltage
 * @di:		pointer to the ab8500_fg structure
 * @comp:	if voltage should be load compensated before capacity calc
 *
 * Return the capacity in mAh based on the battery voltage. The voltage can
 * either be load compensated or not. This value is added to the filter and a
 * new mean value is calculated and returned.
 */
static int ab8500_fg_calc_cap_discharge_voltage(struct ab8500_fg *di, bool comp)
{
	int permille, mah;

	if (comp)
		permille = ab8500_fg_load_comp_volt_to_capacity(di);
	else
		permille = ab8500_fg_uncomp_volt_to_capacity(di);

	mah = ab8500_fg_convert_permille_to_mah(di, permille);

	di->bat_cap.mah = ab8500_fg_add_cap_sample(di, mah);
	di->bat_cap.permille =
		ab8500_fg_convert_mah_to_permille(di, di->bat_cap.mah);

	return di->bat_cap.mah;
}

/**
 * ab8500_fg_calc_cap_discharge_fg() - Capacity in discharge with FG
 * @di:		pointer to the ab8500_fg structure
 *
 * Return the capacity in mAh based on previous calculated capcity and the FG
 * accumulator register value. This value is added to the filter and a
 * new mean value is calculated and returned.
 */
static int ab8500_fg_calc_cap_discharge_fg(struct ab8500_fg *di)
{
	int permille_volt, permille;

	dev_dbg(di->dev, "%s cap_mah %d accu_charge %d\n",
		__func__,
		di->bat_cap.mah,
		di->accu_charge);

	/* Capacity should not be less than 0 */
	if (di->bat_cap.mah + di->accu_charge > 0)
		di->bat_cap.mah += di->accu_charge;
	else
		di->bat_cap.mah = 0;

	if (di->bat_cap.mah >= di->bat_cap.max_mah_design)
		di->bat_cap.mah = di->bat_cap.max_mah_design;

	/*
	 * Check against voltage based capacity. It can not be lower
	 * than what the uncompensated voltage says
	 */
	permille = ab8500_fg_convert_mah_to_permille(di, di->bat_cap.mah);
	permille_volt = ab8500_fg_uncomp_volt_to_capacity(di);

	if (permille < permille_volt) {
		di->bat_cap.permille = permille_volt;
		di->bat_cap.mah = ab8500_fg_convert_permille_to_mah(di,
			di->bat_cap.permille);

		dev_dbg(di->dev, "%s voltage based: perm %d perm_volt %d\n",
			__func__,
			permille,
			permille_volt);

		ab8500_fg_fill_cap_sample(di, di->bat_cap.mah);
	} else {
		ab8500_fg_fill_cap_sample(di, di->bat_cap.mah);
		di->bat_cap.permille =
			ab8500_fg_convert_mah_to_permille(di, di->bat_cap.mah);
	}

	return di->bat_cap.mah;
}

/**
 * ab8500_fg_capacity_level() - Get the battery capacity level
 * @di:		pointer to the ab8500_fg structure
 *
 * Get the battery capacity level based on the capacity in percent
 */
static int ab8500_fg_capacity_level(struct ab8500_fg *di)
{
	int ret, percent;

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	percent = DIV_ROUND_CLOSEST(di->bat_cap.permille, 10);
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1163
	if (percent <= di->bm->cap_levels->critical ||
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		di->flags.low_bat)
		ret = POWER_SUPPLY_CAPACITY_LEVEL_CRITICAL;
1166
	else if (percent <= di->bm->cap_levels->low)
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		ret = POWER_SUPPLY_CAPACITY_LEVEL_LOW;
1168
	else if (percent <= di->bm->cap_levels->normal)
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		ret = POWER_SUPPLY_CAPACITY_LEVEL_NORMAL;
1170
	else if (percent <= di->bm->cap_levels->high)
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		ret = POWER_SUPPLY_CAPACITY_LEVEL_HIGH;
	else
		ret = POWER_SUPPLY_CAPACITY_LEVEL_FULL;

	return ret;
}

1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270
/**
 * ab8500_fg_calculate_scaled_capacity() - Capacity scaling
 * @di:		pointer to the ab8500_fg structure
 *
 * Calculates the capacity to be shown to upper layers. Scales the capacity
 * to have 100% as a reference from the actual capacity upon removal of charger
 * when charging is in maintenance mode.
 */
static int ab8500_fg_calculate_scaled_capacity(struct ab8500_fg *di)
{
	struct ab8500_fg_cap_scaling *cs = &di->bat_cap.cap_scale;
	int capacity = di->bat_cap.prev_percent;

	if (!cs->enable)
		return capacity;

	/*
	 * As long as we are in fully charge mode scale the capacity
	 * to show 100%.
	 */
	if (di->flags.fully_charged) {
		cs->cap_to_scale[0] = 100;
		cs->cap_to_scale[1] =
			max(capacity, di->bm->fg_params->maint_thres);
		dev_dbg(di->dev, "Scale cap with %d/%d\n",
			 cs->cap_to_scale[0], cs->cap_to_scale[1]);
	}

	/* Calculates the scaled capacity. */
	if ((cs->cap_to_scale[0] != cs->cap_to_scale[1])
					&& (cs->cap_to_scale[1] > 0))
		capacity = min(100,
				 DIV_ROUND_CLOSEST(di->bat_cap.prev_percent *
						 cs->cap_to_scale[0],
						 cs->cap_to_scale[1]));

	if (di->flags.charging) {
		if (capacity < cs->disable_cap_level) {
			cs->disable_cap_level = capacity;
			dev_dbg(di->dev, "Cap to stop scale lowered %d%%\n",
				cs->disable_cap_level);
		} else if (!di->flags.fully_charged) {
			if (di->bat_cap.prev_percent >=
			    cs->disable_cap_level) {
				dev_dbg(di->dev, "Disabling scaled capacity\n");
				cs->enable = false;
				capacity = di->bat_cap.prev_percent;
			} else {
				dev_dbg(di->dev,
					"Waiting in cap to level %d%%\n",
					cs->disable_cap_level);
				capacity = cs->disable_cap_level;
			}
		}
	}

	return capacity;
}

/**
 * ab8500_fg_update_cap_scalers() - Capacity scaling
 * @di:		pointer to the ab8500_fg structure
 *
 * To be called when state change from charge<->discharge to update
 * the capacity scalers.
 */
static void ab8500_fg_update_cap_scalers(struct ab8500_fg *di)
{
	struct ab8500_fg_cap_scaling *cs = &di->bat_cap.cap_scale;

	if (!cs->enable)
		return;
	if (di->flags.charging) {
		di->bat_cap.cap_scale.disable_cap_level =
			di->bat_cap.cap_scale.scaled_cap;
		dev_dbg(di->dev, "Cap to stop scale at charge %d%%\n",
				di->bat_cap.cap_scale.disable_cap_level);
	} else {
		if (cs->scaled_cap != 100) {
			cs->cap_to_scale[0] = cs->scaled_cap;
			cs->cap_to_scale[1] = di->bat_cap.prev_percent;
		} else {
			cs->cap_to_scale[0] = 100;
			cs->cap_to_scale[1] =
				max(di->bat_cap.prev_percent,
				    di->bm->fg_params->maint_thres);
		}

		dev_dbg(di->dev, "Cap to scale at discharge %d/%d\n",
				cs->cap_to_scale[0], cs->cap_to_scale[1]);
	}
}

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/**
 * ab8500_fg_check_capacity_limits() - Check if capacity has changed
 * @di:		pointer to the ab8500_fg structure
 * @init:	capacity is allowed to go up in init mode
 *
 * Check if capacity or capacity limit has changed and notify the system
 * about it using the power_supply framework
 */
static void ab8500_fg_check_capacity_limits(struct ab8500_fg *di, bool init)
{
	bool changed = false;
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	int percent = DIV_ROUND_CLOSEST(di->bat_cap.permille, 10);
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	di->bat_cap.level = ab8500_fg_capacity_level(di);

	if (di->bat_cap.level != di->bat_cap.prev_level) {
		/*
		 * We do not allow reported capacity level to go up
		 * unless we're charging or if we're in init
		 */
		if (!(!di->flags.charging && di->bat_cap.level >
			di->bat_cap.prev_level) || init) {
			dev_dbg(di->dev, "level changed from %d to %d\n",
				di->bat_cap.prev_level,
				di->bat_cap.level);
			di->bat_cap.prev_level = di->bat_cap.level;
			changed = true;
		} else {
			dev_dbg(di->dev, "level not allowed to go up "
				"since no charger is connected: %d to %d\n",
				di->bat_cap.prev_level,
				di->bat_cap.level);
		}
	}

	/*
	 * If we have received the LOW_BAT IRQ, set capacity to 0 to initiate
	 * shutdown
	 */
	if (di->flags.low_bat) {
		dev_dbg(di->dev, "Battery low, set capacity to 0\n");
		di->bat_cap.prev_percent = 0;
		di->bat_cap.permille = 0;
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		percent = 0;
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		di->bat_cap.prev_mah = 0;
		di->bat_cap.mah = 0;
		changed = true;
	} else if (di->flags.fully_charged) {
		/*
		 * We report 100% if algorithm reported fully charged
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		 * and show 100% during maintenance charging (scaling).
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		 */
		if (di->flags.force_full) {
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			di->bat_cap.prev_percent = percent;
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			di->bat_cap.prev_mah = di->bat_cap.mah;
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			changed = true;

			if (!di->bat_cap.cap_scale.enable &&
						di->bm->capacity_scaling) {
				di->bat_cap.cap_scale.enable = true;
				di->bat_cap.cap_scale.cap_to_scale[0] = 100;
				di->bat_cap.cap_scale.cap_to_scale[1] =
						di->bat_cap.prev_percent;
				di->bat_cap.cap_scale.disable_cap_level = 100;
			}
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		} else if (di->bat_cap.prev_percent != percent) {
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			dev_dbg(di->dev,
				"battery reported full "
				"but capacity dropping: %d\n",
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				percent);
			di->bat_cap.prev_percent = percent;
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			di->bat_cap.prev_mah = di->bat_cap.mah;

			changed = true;
		}
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	} else if (di->bat_cap.prev_percent != percent) {
		if (percent == 0) {
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			/*
			 * We will not report 0% unless we've got
			 * the LOW_BAT IRQ, no matter what the FG
			 * algorithm says.
			 */
			di->bat_cap.prev_percent = 1;
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			percent = 1;
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			changed = true;
		} else if (!(!di->flags.charging &&
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			percent > di->bat_cap.prev_percent) || init) {
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			/*
			 * We do not allow reported capacity to go up
			 * unless we're charging or if we're in init
			 */
			dev_dbg(di->dev,
				"capacity changed from %d to %d (%d)\n",
				di->bat_cap.prev_percent,
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				percent,
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				di->bat_cap.permille);
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			di->bat_cap.prev_percent = percent;
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			di->bat_cap.prev_mah = di->bat_cap.mah;

			changed = true;
		} else {
			dev_dbg(di->dev, "capacity not allowed to go up since "
				"no charger is connected: %d to %d (%d)\n",
				di->bat_cap.prev_percent,
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				percent,
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				di->bat_cap.permille);
		}
	}

	if (changed) {
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		if (di->bm->capacity_scaling) {
			di->bat_cap.cap_scale.scaled_cap =
				ab8500_fg_calculate_scaled_capacity(di);

			dev_info(di->dev, "capacity=%d (%d)\n",
				di->bat_cap.prev_percent,
				di->bat_cap.cap_scale.scaled_cap);
		}
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		power_supply_changed(di->fg_psy);
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		if (di->flags.fully_charged && di->flags.force_full) {
			dev_dbg(di->dev, "Battery full, notifying.\n");
			di->flags.force_full = false;
			sysfs_notify(&di->fg_kobject, NULL, "charge_full");
		}
		sysfs_notify(&di->fg_kobject, NULL, "charge_now");
	}
}

static void ab8500_fg_charge_state_to(struct ab8500_fg *di,
	enum ab8500_fg_charge_state new_state)
{
	dev_dbg(di->dev, "Charge state from %d [%s] to %d [%s]\n",
		di->charge_state,
		charge_state[di->charge_state],
		new_state,
		charge_state[new_state]);

	di->charge_state = new_state;
}

static void ab8500_fg_discharge_state_to(struct ab8500_fg *di,
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	enum ab8500_fg_discharge_state new_state)
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{
	dev_dbg(di->dev, "Disharge state from %d [%s] to %d [%s]\n",
		di->discharge_state,
		discharge_state[di->discharge_state],
		new_state,
		discharge_state[new_state]);

	di->discharge_state = new_state;
}

/**
 * ab8500_fg_algorithm_charging() - FG algorithm for when charging
 * @di:		pointer to the ab8500_fg structure
 *
 * Battery capacity calculation state machine for when we're charging
 */
static void ab8500_fg_algorithm_charging(struct ab8500_fg *di)
{
	/*
	 * If we change to discharge mode
	 * we should start with recovery
	 */
	if (di->discharge_state != AB8500_FG_DISCHARGE_INIT_RECOVERY)
		ab8500_fg_discharge_state_to(di,
			AB8500_FG_DISCHARGE_INIT_RECOVERY);

	switch (di->charge_state) {
	case AB8500_FG_CHARGE_INIT:
		di->fg_samples = SEC_TO_SAMPLE(
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			di->bm->fg_params->accu_charging);
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		ab8500_fg_coulomb_counter(di, true);
		ab8500_fg_charge_state_to(di, AB8500_FG_CHARGE_READOUT);

		break;

	case AB8500_FG_CHARGE_READOUT:
		/*
		 * Read the FG and calculate the new capacity
		 */
		mutex_lock(&di->cc_lock);
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		if (!di->flags.conv_done && !di->flags.force_full) {
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			/* Wasn't the CC IRQ that got us here */
			mutex_unlock(&di->cc_lock);
			dev_dbg(di->dev, "%s CC conv not done\n",
				__func__);

			break;
		}
		di->flags.conv_done = false;
		mutex_unlock(&di->cc_lock);

		ab8500_fg_calc_cap_charging(di);

		break;

	default:
		break;
	}

	/* Check capacity limits */
	ab8500_fg_check_capacity_limits(di, false);
}

static void force_capacity(struct ab8500_fg *di)
{
	int cap;

	ab8500_fg_clear_cap_samples(di);
	cap = di->bat_cap.user_mah;
	if (cap > di->bat_cap.max_mah_design) {
		dev_dbg(di->dev, "Remaining cap %d can't be bigger than total"
			" %d\n", cap, di->bat_cap.max_mah_design);
		cap = di->bat_cap.max_mah_design;
	}
	ab8500_fg_fill_cap_sample(di, di->bat_cap.user_mah);
	di->bat_cap.permille = ab8500_fg_convert_mah_to_permille(di, cap);
	di->bat_cap.mah = cap;
	ab8500_fg_check_capacity_limits(di, true);
}

static bool check_sysfs_capacity(struct ab8500_fg *di)
{
	int cap, lower, upper;
	int cap_permille;

	cap = di->bat_cap.user_mah;

	cap_permille = ab8500_fg_convert_mah_to_permille(di,
		di->bat_cap.user_mah);

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	lower = di->bat_cap.permille - di->bm->fg_params->user_cap_limit * 10;
	upper = di->bat_cap.permille + di->bm->fg_params->user_cap_limit * 10;
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	if (lower < 0)
		lower = 0;
	/* 1000 is permille, -> 100 percent */
	if (upper > 1000)
		upper = 1000;

	dev_dbg(di->dev, "Capacity limits:"
		" (Lower: %d User: %d Upper: %d) [user: %d, was: %d]\n",
		lower, cap_permille, upper, cap, di->bat_cap.mah);

	/* If within limits, use the saved capacity and exit estimation...*/
	if (cap_permille > lower && cap_permille < upper) {
		dev_dbg(di->dev, "OK! Using users cap %d uAh now\n", cap);
		force_capacity(di);
		return true;
	}
	dev_dbg(di->dev, "Capacity from user out of limits, ignoring");
	return false;
}

/**
 * ab8500_fg_algorithm_discharging() - FG algorithm for when discharging
 * @di:		pointer to the ab8500_fg structure
 *
 * Battery capacity calculation state machine for when we're discharging
 */
static void ab8500_fg_algorithm_discharging(struct ab8500_fg *di)
{
	int sleep_time;

	/* If we change to charge mode we should start with init */
	if (di->charge_state != AB8500_FG_CHARGE_INIT)
		ab8500_fg_charge_state_to(di, AB8500_FG_CHARGE_INIT);

	switch (di->discharge_state) {
	case AB8500_FG_DISCHARGE_INIT:
		/* We use the FG IRQ to work on */
		di->init_cnt = 0;
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		di->fg_samples = SEC_TO_SAMPLE(di->bm->fg_params->init_timer);
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		ab8500_fg_coulomb_counter(di, true);
		ab8500_fg_discharge_state_to(di,
			AB8500_FG_DISCHARGE_INITMEASURING);

		/* Intentional fallthrough */
	case AB8500_FG_DISCHARGE_INITMEASURING:
		/*
		 * Discard a number of samples during startup.
		 * After that, use compensated voltage for a few
		 * samples to get an initial capacity.
		 * Then go to READOUT
		 */
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		sleep_time = di->bm->fg_params->init_timer;
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		/* Discard the first [x] seconds */
1563
		if (di->init_cnt > di->bm->fg_params->init_discard_time) {
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			ab8500_fg_calc_cap_discharge_voltage(di, true);

			ab8500_fg_check_capacity_limits(di, true);
		}

		di->init_cnt += sleep_time;
1570
		if (di->init_cnt > di->bm->fg_params->init_total_time)
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			ab8500_fg_discharge_state_to(di,
				AB8500_FG_DISCHARGE_READOUT_INIT);

		break;

	case AB8500_FG_DISCHARGE_INIT_RECOVERY:
		di->recovery_cnt = 0;
		di->recovery_needed = true;
		ab8500_fg_discharge_state_to(di,
			AB8500_FG_DISCHARGE_RECOVERY);

		/* Intentional fallthrough */

	case AB8500_FG_DISCHARGE_RECOVERY:
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		sleep_time = di->bm->fg_params->recovery_sleep_timer;
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		/*
		 * We should check the power consumption
		 * If low, go to READOUT (after x min) or
		 * RECOVERY_SLEEP if time left.
		 * If high, go to READOUT
		 */
		di->inst_curr = ab8500_fg_inst_curr_blocking(di);

		if (ab8500_fg_is_low_curr(di, di->inst_curr)) {
			if (di->recovery_cnt >
1597
				di->bm->fg_params->recovery_total_time) {
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				di->fg_samples = SEC_TO_SAMPLE(
1599
					di->bm->fg_params->accu_high_curr);
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				ab8500_fg_coulomb_counter(di, true);
				ab8500_fg_discharge_state_to(di,
					AB8500_FG_DISCHARGE_READOUT);
				di->recovery_needed = false;
			} else {
				queue_delayed_work(di->fg_wq,
					&di->fg_periodic_work,
					sleep_time * HZ);
			}
			di->recovery_cnt += sleep_time;
		} else {
			di->fg_samples = SEC_TO_SAMPLE(
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				di->bm->fg_params->accu_high_curr);
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			ab8500_fg_coulomb_counter(di, true);
			ab8500_fg_discharge_state_to(di,
				AB8500_FG_DISCHARGE_READOUT);
		}
		break;

	case AB8500_FG_DISCHARGE_READOUT_INIT:
		di->fg_samples = SEC_TO_SAMPLE(
1621
			di->bm->fg_params->accu_high_curr);
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		ab8500_fg_coulomb_counter(di, true);
		ab8500_fg_discharge_state_to(di,
				AB8500_FG_DISCHARGE_READOUT);
		break;

	case AB8500_FG_DISCHARGE_READOUT:
		di->inst_curr = ab8500_fg_inst_curr_blocking(di);

		if (ab8500_fg_is_low_curr(di, di->inst_curr)) {
			/* Detect mode change */
			if (di->high_curr_mode) {
				di->high_curr_mode = false;
				di->high_curr_cnt = 0;
			}

			if (di->recovery_needed) {
				ab8500_fg_discharge_state_to(di,
1639
					AB8500_FG_DISCHARGE_INIT_RECOVERY);
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				queue_delayed_work(di->fg_wq,
					&di->fg_periodic_work, 0);

				break;
			}

			ab8500_fg_calc_cap_discharge_voltage(di, true);
		} else {
			mutex_lock(&di->cc_lock);
			if (!di->flags.conv_done) {
				/* Wasn't the CC IRQ that got us here */
				mutex_unlock(&di->cc_lock);
				dev_dbg(di->dev, "%s CC conv not done\n",
					__func__);

				break;
			}
			di->flags.conv_done = false;
			mutex_unlock(&di->cc_lock);

			/* Detect mode change */
			if (!di->high_curr_mode) {
				di->high_curr_mode = true;
				di->high_curr_cnt = 0;
			}

			di->high_curr_cnt +=
1668
				di->bm->fg_params->accu_high_curr;
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			if (di->high_curr_cnt >
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				di->bm->fg_params->high_curr_time)
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				di->recovery_needed = true;

			ab8500_fg_calc_cap_discharge_fg(di);
		}

		ab8500_fg_check_capacity_limits(di, false);

		break;

	case AB8500_FG_DISCHARGE_WAKEUP:
		ab8500_fg_calc_cap_discharge_voltage(di, true);

		di->fg_samples = SEC_TO_SAMPLE(
1684
			di->bm->fg_params->accu_high_curr);
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		ab8500_fg_coulomb_counter(di, true);
		ab8500_fg_discharge_state_to(di,
				AB8500_FG_DISCHARGE_READOUT);

		ab8500_fg_check_capacity_limits(di, false);

		break;

	default:
		break;
	}
}

/**
 * ab8500_fg_algorithm_calibrate() - Internal columb counter offset calibration
 * @di:		pointer to the ab8500_fg structure
 *
 */
static void ab8500_fg_algorithm_calibrate(struct ab8500_fg *di)
{
	int ret;

	switch (di->calib_state) {
	case AB8500_FG_CALIB_INIT:
		dev_dbg(di->dev, "Calibration ongoing...\n");

		ret = abx500_mask_and_set_register_interruptible(di->dev,
			AB8500_GAS_GAUGE, AB8500_GASG_CC_CTRL_REG,
			CC_INT_CAL_N_AVG_MASK, CC_INT_CAL_SAMPLES_8);
		if (ret < 0)
			goto err;

		ret = abx500_mask_and_set_register_interruptible(di->dev,
			AB8500_GAS_GAUGE, AB8500_GASG_CC_CTRL_REG,
			CC_INTAVGOFFSET_ENA, CC_INTAVGOFFSET_ENA);
		if (ret < 0)
			goto err;
		di->calib_state = AB8500_FG_CALIB_WAIT;
		break;
	case AB8500_FG_CALIB_END:
		ret = abx500_mask_and_set_register_interruptible(di->dev,
			AB8500_GAS_GAUGE, AB8500_GASG_CC_CTRL_REG,
			CC_MUXOFFSET, CC_MUXOFFSET);
		if (ret < 0)
			goto err;
		di->flags.calibrate = false;
		dev_dbg(di->dev, "Calibration done...\n");
		queue_delayed_work(di->fg_wq, &di->fg_periodic_work, 0);
		break;
	case AB8500_FG_CALIB_WAIT:
		dev_dbg(di->dev, "Calibration WFI\n");
	default:
		break;
	}
	return;
err:
	/* Something went wrong, don't calibrate then */
	dev_err(di->dev, "failed to calibrate the CC\n");
	di->flags.calibrate = false;
	di->calib_state = AB8500_FG_CALIB_INIT;
	queue_delayed_work(di->fg_wq, &di->fg_periodic_work, 0);
}

/**
 * ab8500_fg_algorithm() - Entry point for the FG algorithm
 * @di:		pointer to the ab8500_fg structure
 *
 * Entry point for the battery capacity calculation state machine
 */
static void ab8500_fg_algorithm(struct ab8500_fg *di)
{
	if (di->flags.calibrate)
		ab8500_fg_algorithm_calibrate(di);
	else {
		if (di->flags.charging)
			ab8500_fg_algorithm_charging(di);
		else
			ab8500_fg_algorithm_discharging(di);
	}

1765
	dev_dbg(di->dev, "[FG_DATA] %d %d %d %d %d %d %d %d %d %d "
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		"%d %d %d %d %d %d %d\n",
		di->bat_cap.max_mah_design,
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		di->bat_cap.max_mah,
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		di->bat_cap.mah,
		di->bat_cap.permille,
		di->bat_cap.level,
		di->bat_cap.prev_mah,
		di->bat_cap.prev_percent,
		di->bat_cap.prev_level,
		di->vbat,
		di->inst_curr,
		di->avg_curr,
		di->accu_charge,
		di->flags.charging,
		di->charge_state,
		di->discharge_state,
		di->high_curr_mode,
		di->recovery_needed);
}

/**
 * ab8500_fg_periodic_work() - Run the FG state machine periodically
 * @work:	pointer to the work_struct structure
 *
 * Work queue function for periodic work
 */
static void ab8500_fg_periodic_work(struct work_struct *work)
{
	struct ab8500_fg *di = container_of(work, struct ab8500_fg,
		fg_periodic_work.work);

	if (di->init_capacity) {
		/* Get an initial capacity calculation */
		ab8500_fg_calc_cap_discharge_voltage(di, true);
		ab8500_fg_check_capacity_limits(di, true);
		di->init_capacity = false;

		queue_delayed_work(di->fg_wq, &di->fg_periodic_work, 0);
	} else if (di->flags.user_cap) {
		if (check_sysfs_capacity(di)) {
			ab8500_fg_check_capacity_limits(di, true);
			if (di->flags.charging)
				ab8500_fg_charge_state_to(di,
					AB8500_FG_CHARGE_INIT);
			else
				ab8500_fg_discharge_state_to(di,
					AB8500_FG_DISCHARGE_READOUT_INIT);
		}
		di->flags.user_cap = false;
		queue_delayed_work(di->fg_wq, &di->fg_periodic_work, 0);
	} else
		ab8500_fg_algorithm(di);

}

/**
 * ab8500_fg_check_hw_failure_work() - Check OVV_BAT condition
 * @work:	pointer to the work_struct structure
 *
 * Work queue function for checking the OVV_BAT condition
 */
static void ab8500_fg_check_hw_failure_work(struct work_struct *work)
{
	int ret;
	u8 reg_value;

	struct ab8500_fg *di = container_of(work, struct ab8500_fg,
		fg_check_hw_failure_work.work);

	/*
	 * If we have had a battery over-voltage situation,
	 * check ovv-bit to see if it should be reset.
	 */
1839 1840 1841 1842 1843 1844 1845 1846 1847 1848 1849
	ret = abx500_get_register_interruptible(di->dev,
		AB8500_CHARGER, AB8500_CH_STAT_REG,
		&reg_value);
	if (ret < 0) {
		dev_err(di->dev, "%s ab8500 read failed\n", __func__);
		return;
	}
	if ((reg_value & BATT_OVV) == BATT_OVV) {
		if (!di->flags.bat_ovv) {
			dev_dbg(di->dev, "Battery OVV\n");
			di->flags.bat_ovv = true;
1850
			power_supply_changed(di->fg_psy);
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		}
		/* Not yet recovered from ovv, reschedule this test */
		queue_delayed_work(di->fg_wq, &di->fg_check_hw_failure_work,
1854
				   HZ);
1855 1856 1857
		} else {
			dev_dbg(di->dev, "Battery recovered from OVV\n");
			di->flags.bat_ovv = false;
1858
			power_supply_changed(di->fg_psy);
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	}
}

/**
 * ab8500_fg_low_bat_work() - Check LOW_BAT condition
 * @work:	pointer to the work_struct structure
 *
 * Work queue function for checking the LOW_BAT condition
 */
static void ab8500_fg_low_bat_work(struct work_struct *work)
{
	int vbat;

	struct ab8500_fg *di = container_of(work, struct ab8500_fg,
		fg_low_bat_work.work);

	vbat = ab8500_fg_bat_voltage(di);

	/* Check if LOW_BAT still fulfilled */
1878
	if (vbat < di->bm->fg_params->lowbat_threshold) {
1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893
		/* Is it time to shut down? */
		if (di->low_bat_cnt < 1) {
			di->flags.low_bat = true;
			dev_warn(di->dev, "Shut down pending...\n");
		} else {
			/*
			* Else we need to re-schedule this check to be able to detect
			* if the voltage increases again during charging or
			* due to decreasing load.
			*/
			di->low_bat_cnt--;
			dev_warn(di->dev, "Battery voltage still LOW\n");
			queue_delayed_work(di->fg_wq, &di->fg_low_bat_work,
				round_jiffies(LOW_BAT_CHECK_INTERVAL));
		}
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	} else {
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		di->flags.low_bat_delay = false;
		di->low_bat_cnt = 10;
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		dev_warn(di->dev, "Battery voltage OK again\n");
	}

	/* This is needed to dispatch LOW_BAT */
	ab8500_fg_check_capacity_limits(di, false);
}

/**
 * ab8500_fg_battok_calc - calculate the bit pattern corresponding
 * to the target voltage.
 * @di:       pointer to the ab8500_fg structure
 * @target    target voltage
 *
 * Returns bit pattern closest to the target voltage
 * valid return values are 0-14. (0-BATT_OK_MAX_NR_INCREMENTS)
 */

static int ab8500_fg_battok_calc(struct ab8500_fg *di, int target)
{
	if (target > BATT_OK_MIN +
		(BATT_OK_INCREMENT * BATT_OK_MAX_NR_INCREMENTS))
		return BATT_OK_MAX_NR_INCREMENTS;
	if (target < BATT_OK_MIN)
		return 0;
	return (target - BATT_OK_MIN) / BATT_OK_INCREMENT;
}

/**
 * ab8500_fg_battok_init_hw_register - init battok levels
 * @di:       pointer to the ab8500_fg structure
 *
 */

static int ab8500_fg_battok_init_hw_register(struct ab8500_fg *di)
{
	int selected;
	int sel0;
	int sel1;
	int cbp_sel0;
	int cbp_sel1;
	int ret;
	int new_val;

1940 1941
	sel0 = di->bm->fg_params->battok_falling_th_sel0;
	sel1 = di->bm->fg_params->battok_raising_th_sel1;
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	cbp_sel0 = ab8500_fg_battok_calc(di, sel0);
	cbp_sel1 = ab8500_fg_battok_calc(di, sel1);

	selected = BATT_OK_MIN + cbp_sel0 * BATT_OK_INCREMENT;

	if (selected != sel0)
		dev_warn(di->dev, "Invalid voltage step:%d, using %d %d\n",
			sel0, selected, cbp_sel0);

	selected = BATT_OK_MIN + cbp_sel1 * BATT_OK_INCREMENT;

	if (selected != sel1)
		dev_warn(di->dev, "Invalid voltage step:%d, using %d %d\n",
			sel1, selected, cbp_sel1);

	new_val = cbp_sel0 | (cbp_sel1 << 4);

	dev_dbg(di->dev, "using: %x %d %d\n", new_val, cbp_sel0, cbp_sel1);
	ret = abx500_set_register_interruptible(di->dev, AB8500_SYS_CTRL2_BLOCK,
		AB8500_BATT_OK_REG, new_val);
	return ret;
}

/**
 * ab8500_fg_instant_work() - Run the FG state machine instantly
 * @work:	pointer to the work_struct structure
 *
 * Work queue function for instant work
 */
static void ab8500_fg_instant_work(struct work_struct *work)
{
	struct ab8500_fg *di = container_of(work, struct ab8500_fg, fg_work);

	ab8500_fg_algorithm(di);
}

/**
1980
 * ab8500_fg_cc_data_end_handler() - end of data conversion isr.
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 * @irq:       interrupt number
 * @_di:       pointer to the ab8500_fg structure
 *
 * Returns IRQ status(IRQ_HANDLED)
 */
static irqreturn_t ab8500_fg_cc_data_end_handler(int irq, void *_di)
{
	struct ab8500_fg *di = _di;
1989 1990 1991 1992 1993 1994 1995
	if (!di->nbr_cceoc_irq_cnt) {
		di->nbr_cceoc_irq_cnt++;
		complete(&di->ab8500_fg_started);
	} else {
		di->nbr_cceoc_irq_cnt = 0;
		complete(&di->ab8500_fg_complete);
	}
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	return IRQ_HANDLED;
}

/**
2000
 * ab8500_fg_cc_int_calib_handler () - end of calibration isr.
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 * @irq:       interrupt number
 * @_di:       pointer to the ab8500_fg structure
 *
 * Returns IRQ status(IRQ_HANDLED)
 */
static irqreturn_t ab8500_fg_cc_int_calib_handler(int irq, void *_di)
{
	struct ab8500_fg *di = _di;
	di->calib_state = AB8500_FG_CALIB_END;
	queue_delayed_work(di->fg_wq, &di->fg_periodic_work, 0);
	return IRQ_HANDLED;
}

/**
 * ab8500_fg_cc_convend_handler() - isr to get battery avg current.
 * @irq:       interrupt number
 * @_di:       pointer to the ab8500_fg structure
 *
 * Returns IRQ status(IRQ_HANDLED)
 */
static irqreturn_t ab8500_fg_cc_convend_handler(int irq, void *_di)
{
	struct ab8500_fg *di = _di;

	queue_work(di->fg_wq, &di->fg_acc_cur_work);

	return IRQ_HANDLED;
}

/**
 * ab8500_fg_batt_ovv_handler() - Battery OVV occured
 * @irq:       interrupt number
 * @_di:       pointer to the ab8500_fg structure
 *
 * Returns IRQ status(IRQ_HANDLED)
 */
static irqreturn_t ab8500_fg_batt_ovv_handler(int irq, void *_di)
{
	struct ab8500_fg *di = _di;

	dev_dbg(di->dev, "Battery OVV\n");

	/* Schedule a new HW failure check */
	queue_delayed_work(di->fg_wq, &di->fg_check_hw_failure_work, 0);

	return IRQ_HANDLED;
}

/**
 * ab8500_fg_lowbatf_handler() - Battery voltage is below LOW threshold
 * @irq:       interrupt number
 * @_di:       pointer to the ab8500_fg structure
 *
 * Returns IRQ status(IRQ_HANDLED)
 */
static irqreturn_t ab8500_fg_lowbatf_handler(int irq, void *_di)
{
	struct ab8500_fg *di = _di;

2060
	/* Initiate handling in ab8500_fg_low_bat_work() if not already initiated. */
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	if (!di->flags.low_bat_delay) {
		dev_warn(di->dev, "Battery voltage is below LOW threshold\n");
		di->flags.low_bat_delay = true;
		/*
		 * Start a timer to check LOW_BAT again after some time
		 * This is done to avoid shutdown on single voltage dips
		 */
		queue_delayed_work(di->fg_wq, &di->fg_low_bat_work,
			round_jiffies(LOW_BAT_CHECK_INTERVAL));
	}
	return IRQ_HANDLED;
}

/**
 * ab8500_fg_get_property() - get the fg properties
 * @psy:	pointer to the power_supply structure
 * @psp:	pointer to the power_supply_property structure
 * @val:	pointer to the power_supply_propval union
 *
 * This function gets called when an application tries to get the
 * fg properties by reading the sysfs files.
 * voltage_now:		battery voltage
 * current_now:		battery instant current
 * current_avg:		battery average current
 * charge_full_design:	capacity where battery is considered full
 * charge_now:		battery capacity in nAh
 * capacity:		capacity in percent
 * capacity_level:	capacity level
 *
 * Returns error code in case of failure else 0 on success
 */
static int ab8500_fg_get_property(struct power_supply *psy,
	enum power_supply_property psp,
	union power_supply_propval *val)
{
2096
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
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	/*
	 * If battery is identified as unknown and charging of unknown
	 * batteries is disabled, we always report 100% capacity and
	 * capacity level UNKNOWN, since we can't calculate
	 * remaining capacity
	 */

	switch (psp) {
	case POWER_SUPPLY_PROP_VOLTAGE_NOW:
		if (di->flags.bat_ovv)
			val->intval = BATT_OVV_VALUE * 1000;
		else
			val->intval = di->vbat * 1000;
		break;
	case POWER_SUPPLY_PROP_CURRENT_NOW:
		val->intval = di->inst_curr * 1000;
		break;
	case POWER_SUPPLY_PROP_CURRENT_AVG:
		val->intval = di->avg_curr * 1000;
		break;
	case POWER_SUPPLY_PROP_ENERGY_FULL_DESIGN:
		val->intval = ab8500_fg_convert_mah_to_uwh(di,
				di->bat_cap.max_mah_design);
		break;
	case POWER_SUPPLY_PROP_ENERGY_FULL:
		val->intval = ab8500_fg_convert_mah_to_uwh(di,
				di->bat_cap.max_mah);
		break;
	case POWER_SUPPLY_PROP_ENERGY_NOW:
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		if (di->flags.batt_unknown && !di->bm->chg_unknown_bat &&
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				di->flags.batt_id_received)
			val->intval = ab8500_fg_convert_mah_to_uwh(di,
					di->bat_cap.max_mah);
		else
			val->intval = ab8500_fg_convert_mah_to_uwh(di,
					di->bat_cap.prev_mah);
		break;
	case POWER_SUPPLY_PROP_CHARGE_FULL_DESIGN:
		val->intval = di->bat_cap.max_mah_design;
		break;
	case POWER_SUPPLY_PROP_CHARGE_FULL:
		val->intval = di->bat_cap.max_mah;
		break;
	case POWER_SUPPLY_PROP_CHARGE_NOW:
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		if (di->flags.batt_unknown && !di->bm->chg_unknown_bat &&
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				di->flags.batt_id_received)
			val->intval = di->bat_cap.max_mah;
		else
			val->intval = di->bat_cap.prev_mah;
		break;
	case POWER_SUPPLY_PROP_CAPACITY:
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		if (di->flags.batt_unknown && !di->bm->chg_unknown_bat &&
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				di->flags.batt_id_received)
			val->intval = 100;
		else
			val->intval = di->bat_cap.prev_percent;
		break;
	case POWER_SUPPLY_PROP_CAPACITY_LEVEL:
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		if (di->flags.batt_unknown && !di->bm->chg_unknown_bat &&
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				di->flags.batt_id_received)
			val->intval = POWER_SUPPLY_CAPACITY_LEVEL_UNKNOWN;
		else
			val->intval = di->bat_cap.prev_level;
		break;
	default:
		return -EINVAL;
	}
	return 0;
}

static int ab8500_fg_get_ext_psy_data(struct device *dev, void *data)
{
	struct power_supply *psy;
2171 2172
	struct power_supply *ext = dev_get_drvdata(dev);
	const char **supplicants = (const char **)ext->supplied_to;
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	struct ab8500_fg *di;
	union power_supply_propval ret;
2175
	int j;
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	psy = (struct power_supply *)data;
2178
	di = power_supply_get_drvdata(psy);
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	/*
	 * For all psy where the name of your driver
	 * appears in any supplied_to
	 */
2184 2185
	j = match_string(supplicants, ext->num_supplicants, psy->desc->name);
	if (j < 0)
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		return 0;

	/* Go through all properties for the psy */
2189
	for (j = 0; j < ext->desc->num_properties; j++) {
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		enum power_supply_property prop;
2191
		prop = ext->desc->properties[j];
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2193
		if (power_supply_get_property(ext, prop, &ret))
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			continue;

		switch (prop) {
		case POWER_SUPPLY_PROP_STATUS:
2198
			switch (ext->desc->type) {
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			case POWER_SUPPLY_TYPE_BATTERY:
				switch (ret.intval) {
				case POWER_SUPPLY_STATUS_UNKNOWN:
				case POWER_SUPPLY_STATUS_DISCHARGING:
				case POWER_SUPPLY_STATUS_NOT_CHARGING:
					if (!di->flags.charging)
						break;
					di->flags.charging = false;
					di->flags.fully_charged = false;
2208 2209
					if (di->bm->capacity_scaling)
						ab8500_fg_update_cap_scalers(di);
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					queue_work(di->fg_wq, &di->fg_work);
					break;
				case POWER_SUPPLY_STATUS_FULL:
					if (di->flags.fully_charged)
						break;
					di->flags.fully_charged = true;
					di->flags.force_full = true;
					/* Save current capacity as maximum */
					di->bat_cap.max_mah = di->bat_cap.mah;
					queue_work(di->fg_wq, &di->fg_work);
					break;
				case POWER_SUPPLY_STATUS_CHARGING:
2222 2223
					if (di->flags.charging &&
						!di->flags.fully_charged)
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						break;
					di->flags.charging = true;
					di->flags.fully_charged = false;
2227 2228
					if (di->bm->capacity_scaling)
						ab8500_fg_update_cap_scalers(di);
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					queue_work(di->fg_wq, &di->fg_work);
					break;
				};
			default:
				break;
			};
			break;
		case POWER_SUPPLY_PROP_TECHNOLOGY:
2237
			switch (ext->desc->type) {
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			case POWER_SUPPLY_TYPE_BATTERY:
2239 2240
				if (!di->flags.batt_id_received &&
				    di->bm->batt_id != BATTERY_UNKNOWN) {
2241 2242
					const struct abx500_battery_type *b;

2243
					b = &(di->bm->bat_type[di->bm->batt_id]);
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					di->flags.batt_id_received = true;

					di->bat_cap.max_mah_design =
						MILLI_TO_MICRO *
						b->charge_full_design;

					di->bat_cap.max_mah =
						di->bat_cap.max_mah_design;

					di->vbat_nom = b->nominal_voltage;
				}

				if (ret.intval)
					di->flags.batt_unknown = false;
				else
					di->flags.batt_unknown = true;
				break;
			default:
				break;
			}
			break;
		case POWER_SUPPLY_PROP_TEMP:
2267
			switch (ext->desc->type) {
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			case POWER_SUPPLY_TYPE_BATTERY:
2269 2270
				if (di->flags.batt_id_received)
					di->bat_temp = ret.intval;
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				break;
			default:
				break;
			}
			break;
		default:
			break;
		}
	}
	return 0;
}

/**
 * ab8500_fg_init_hw_registers() - Set up FG related registers
 * @di:		pointer to the ab8500_fg structure
 *
 * Set up battery OVV, low battery voltage registers
 */
static int ab8500_fg_init_hw_registers(struct ab8500_fg *di)
{
	int ret;

	/* Set VBAT OVV threshold */
	ret = abx500_mask_and_set_register_interruptible(di->dev,
		AB8500_CHARGER,
		AB8500_BATT_OVV,
		BATT_OVV_TH_4P75,
		BATT_OVV_TH_4P75);
	if (ret) {
		dev_err(di->dev, "failed to set BATT_OVV\n");
		goto out;
	}

	/* Enable VBAT OVV detection */
	ret = abx500_mask_and_set_register_interruptible(di->dev,
		AB8500_CHARGER,
		AB8500_BATT_OVV,
		BATT_OVV_ENA,
		BATT_OVV_ENA);
	if (ret) {
		dev_err(di->dev, "failed to enable BATT_OVV\n");
		goto out;
	}

	/* Low Battery Voltage */
	ret = abx500_set_register_interruptible(di->dev,
		AB8500_SYS_CTRL2_BLOCK,
		AB8500_LOW_BAT_REG,
		ab8500_volt_to_regval(
2320
			di->bm->fg_params->lowbat_threshold) << 1 |
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		LOW_BAT_ENABLE);
	if (ret) {
		dev_err(di->dev, "%s write failed\n", __func__);
		goto out;
	}

	/* Battery OK threshold */
	ret = ab8500_fg_battok_init_hw_register(di);
	if (ret) {
		dev_err(di->dev, "BattOk init write failed.\n");
		goto out;
	}
2333 2334 2335 2336 2337 2338 2339 2340 2341 2342 2343 2344 2345 2346 2347 2348 2349 2350 2351 2352 2353 2354 2355 2356 2357 2358 2359 2360 2361 2362 2363 2364 2365 2366 2367 2368 2369 2370 2371 2372 2373 2374 2375 2376

	if (((is_ab8505(di->parent) || is_ab9540(di->parent)) &&
			abx500_get_chip_id(di->dev) >= AB8500_CUT2P0)
			|| is_ab8540(di->parent)) {
		ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
			AB8505_RTC_PCUT_MAX_TIME_REG, di->bm->fg_params->pcut_max_time);

		if (ret) {
			dev_err(di->dev, "%s write failed AB8505_RTC_PCUT_MAX_TIME_REG\n", __func__);
			goto out;
		};

		ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
			AB8505_RTC_PCUT_FLAG_TIME_REG, di->bm->fg_params->pcut_flag_time);

		if (ret) {
			dev_err(di->dev, "%s write failed AB8505_RTC_PCUT_FLAG_TIME_REG\n", __func__);
			goto out;
		};

		ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
			AB8505_RTC_PCUT_RESTART_REG, di->bm->fg_params->pcut_max_restart);

		if (ret) {
			dev_err(di->dev, "%s write failed AB8505_RTC_PCUT_RESTART_REG\n", __func__);
			goto out;
		};

		ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
			AB8505_RTC_PCUT_DEBOUNCE_REG, di->bm->fg_params->pcut_debounce_time);

		if (ret) {
			dev_err(di->dev, "%s write failed AB8505_RTC_PCUT_DEBOUNCE_REG\n", __func__);
			goto out;
		};

		ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
			AB8505_RTC_PCUT_CTL_STATUS_REG, di->bm->fg_params->pcut_enable);

		if (ret) {
			dev_err(di->dev, "%s write failed AB8505_RTC_PCUT_CTL_STATUS_REG\n", __func__);
			goto out;
		};
	}
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out:
	return ret;
}

/**
 * ab8500_fg_external_power_changed() - callback for power supply changes
 * @psy:       pointer to the structure power_supply
 *
 * This function is the entry point of the pointer external_power_changed
 * of the structure power_supply.
 * This function gets executed when there is a change in any external power
 * supply that this driver needs to be notified of.
 */
static void ab8500_fg_external_power_changed(struct power_supply *psy)
{
2392
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
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Arun Murthy 已提交
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	class_for_each_device(power_supply_class, NULL,
2395
		di->fg_psy, ab8500_fg_get_ext_psy_data);
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2396 2397 2398 2399 2400 2401 2402 2403 2404 2405 2406 2407 2408 2409 2410 2411 2412 2413 2414 2415 2416 2417 2418 2419 2420 2421 2422 2423 2424 2425 2426 2427 2428 2429 2430 2431 2432 2433 2434 2435 2436 2437 2438 2439 2440 2441 2442 2443 2444
}

/**
 * abab8500_fg_reinit_work() - work to reset the FG algorithm
 * @work:	pointer to the work_struct structure
 *
 * Used to reset the current battery capacity to be able to
 * retrigger a new voltage base capacity calculation. For
 * test and verification purpose.
 */
static void ab8500_fg_reinit_work(struct work_struct *work)
{
	struct ab8500_fg *di = container_of(work, struct ab8500_fg,
		fg_reinit_work.work);

	if (di->flags.calibrate == false) {
		dev_dbg(di->dev, "Resetting FG state machine to init.\n");
		ab8500_fg_clear_cap_samples(di);
		ab8500_fg_calc_cap_discharge_voltage(di, true);
		ab8500_fg_charge_state_to(di, AB8500_FG_CHARGE_INIT);
		ab8500_fg_discharge_state_to(di, AB8500_FG_DISCHARGE_INIT);
		queue_delayed_work(di->fg_wq, &di->fg_periodic_work, 0);

	} else {
		dev_err(di->dev, "Residual offset calibration ongoing "
			"retrying..\n");
		/* Wait one second until next try*/
		queue_delayed_work(di->fg_wq, &di->fg_reinit_work,
			round_jiffies(1));
	}
}

/* Exposure to the sysfs interface */

struct ab8500_fg_sysfs_entry {
	struct attribute attr;
	ssize_t (*show)(struct ab8500_fg *, char *);
	ssize_t (*store)(struct ab8500_fg *, const char *, size_t);
};

static ssize_t charge_full_show(struct ab8500_fg *di, char *buf)
{
	return sprintf(buf, "%d\n", di->bat_cap.max_mah);
}

static ssize_t charge_full_store(struct ab8500_fg *di, const char *buf,
				 size_t count)
{
	unsigned long charge_full;
2445
	ssize_t ret;
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Arun Murthy 已提交
2446

2447
	ret = kstrtoul(buf, 10, &charge_full);
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2448

2449
	dev_dbg(di->dev, "Ret %zd charge_full %lu", ret, charge_full);
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2450 2451 2452 2453 2454 2455 2456 2457 2458 2459 2460 2461 2462 2463 2464 2465 2466 2467 2468

	if (!ret) {
		di->bat_cap.max_mah = (int) charge_full;
		ret = count;
	}
	return ret;
}

static ssize_t charge_now_show(struct ab8500_fg *di, char *buf)
{
	return sprintf(buf, "%d\n", di->bat_cap.prev_mah);
}

static ssize_t charge_now_store(struct ab8500_fg *di, const char *buf,
				 size_t count)
{
	unsigned long charge_now;
	ssize_t ret;

2469
	ret = kstrtoul(buf, 10, &charge_now);
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Arun Murthy 已提交
2470

2471
	dev_dbg(di->dev, "Ret %zd charge_now %lu was %d",
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2472 2473 2474 2475 2476 2477 2478 2479 2480 2481 2482 2483 2484 2485 2486 2487 2488 2489 2490 2491 2492 2493 2494 2495 2496 2497 2498 2499 2500 2501 2502 2503 2504 2505 2506 2507 2508 2509 2510 2511 2512 2513 2514 2515 2516 2517 2518
		ret, charge_now, di->bat_cap.prev_mah);

	if (!ret) {
		di->bat_cap.user_mah = (int) charge_now;
		di->flags.user_cap = true;
		ret = count;
		queue_delayed_work(di->fg_wq, &di->fg_periodic_work, 0);
	}
	return ret;
}

static struct ab8500_fg_sysfs_entry charge_full_attr =
	__ATTR(charge_full, 0644, charge_full_show, charge_full_store);

static struct ab8500_fg_sysfs_entry charge_now_attr =
	__ATTR(charge_now, 0644, charge_now_show, charge_now_store);

static ssize_t
ab8500_fg_show(struct kobject *kobj, struct attribute *attr, char *buf)
{
	struct ab8500_fg_sysfs_entry *entry;
	struct ab8500_fg *di;

	entry = container_of(attr, struct ab8500_fg_sysfs_entry, attr);
	di = container_of(kobj, struct ab8500_fg, fg_kobject);

	if (!entry->show)
		return -EIO;

	return entry->show(di, buf);
}
static ssize_t
ab8500_fg_store(struct kobject *kobj, struct attribute *attr, const char *buf,
		size_t count)
{
	struct ab8500_fg_sysfs_entry *entry;
	struct ab8500_fg *di;

	entry = container_of(attr, struct ab8500_fg_sysfs_entry, attr);
	di = container_of(kobj, struct ab8500_fg, fg_kobject);

	if (!entry->store)
		return -EIO;

	return entry->store(di, buf, count);
}

2519
static const struct sysfs_ops ab8500_fg_sysfs_ops = {
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2520 2521 2522 2523 2524 2525 2526 2527 2528 2529 2530 2531 2532 2533 2534 2535 2536 2537 2538 2539 2540 2541 2542 2543 2544 2545 2546 2547 2548 2549 2550 2551 2552 2553 2554 2555 2556 2557 2558 2559 2560 2561 2562 2563 2564
	.show = ab8500_fg_show,
	.store = ab8500_fg_store,
};

static struct attribute *ab8500_fg_attrs[] = {
	&charge_full_attr.attr,
	&charge_now_attr.attr,
	NULL,
};

static struct kobj_type ab8500_fg_ktype = {
	.sysfs_ops = &ab8500_fg_sysfs_ops,
	.default_attrs = ab8500_fg_attrs,
};

/**
 * ab8500_chargalg_sysfs_exit() - de-init of sysfs entry
 * @di:                pointer to the struct ab8500_chargalg
 *
 * This function removes the entry in sysfs.
 */
static void ab8500_fg_sysfs_exit(struct ab8500_fg *di)
{
	kobject_del(&di->fg_kobject);
}

/**
 * ab8500_chargalg_sysfs_init() - init of sysfs entry
 * @di:                pointer to the struct ab8500_chargalg
 *
 * This function adds an entry in sysfs.
 * Returns error code in case of failure else 0(on success)
 */
static int ab8500_fg_sysfs_init(struct ab8500_fg *di)
{
	int ret = 0;

	ret = kobject_init_and_add(&di->fg_kobject,
		&ab8500_fg_ktype,
		NULL, "battery");
	if (ret < 0)
		dev_err(di->dev, "failed to create sysfs entry\n");

	return ret;
}
2565 2566 2567 2568 2569 2570 2571 2572

static ssize_t ab8505_powercut_flagtime_read(struct device *dev,
			     struct device_attribute *attr,
			     char *buf)
{
	int ret;
	u8 reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2573
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2574 2575 2576 2577 2578 2579 2580 2581 2582 2583 2584 2585 2586 2587 2588 2589 2590 2591 2592 2593 2594 2595

	ret = abx500_get_register_interruptible(di->dev, AB8500_RTC,
		AB8505_RTC_PCUT_FLAG_TIME_REG, &reg_value);

	if (ret < 0) {
		dev_err(dev, "Failed to read AB8505_RTC_PCUT_FLAG_TIME_REG\n");
		goto fail;
	}

	return scnprintf(buf, PAGE_SIZE, "%d\n", (reg_value & 0x7F));

fail:
	return ret;
}

static ssize_t ab8505_powercut_flagtime_write(struct device *dev,
				  struct device_attribute *attr,
				  const char *buf, size_t count)
{
	int ret;
	long unsigned reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2596
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2597 2598 2599 2600 2601 2602 2603 2604 2605 2606 2607 2608 2609 2610 2611 2612 2613 2614 2615 2616 2617 2618 2619 2620 2621

	reg_value = simple_strtoul(buf, NULL, 10);

	if (reg_value > 0x7F) {
		dev_err(dev, "Incorrect parameter, echo 0 (1.98s) - 127 (15.625ms) for flagtime\n");
		goto fail;
	}

	ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
		AB8505_RTC_PCUT_FLAG_TIME_REG, (u8)reg_value);

	if (ret < 0)
		dev_err(dev, "Failed to set AB8505_RTC_PCUT_FLAG_TIME_REG\n");

fail:
	return count;
}

static ssize_t ab8505_powercut_maxtime_read(struct device *dev,
			     struct device_attribute *attr,
			     char *buf)
{
	int ret;
	u8 reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2622
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2623 2624 2625 2626 2627 2628 2629 2630 2631 2632 2633 2634 2635 2636 2637 2638 2639 2640 2641 2642 2643 2644 2645

	ret = abx500_get_register_interruptible(di->dev, AB8500_RTC,
		AB8505_RTC_PCUT_MAX_TIME_REG, &reg_value);

	if (ret < 0) {
		dev_err(dev, "Failed to read AB8505_RTC_PCUT_MAX_TIME_REG\n");
		goto fail;
	}

	return scnprintf(buf, PAGE_SIZE, "%d\n", (reg_value & 0x7F));

fail:
	return ret;

}

static ssize_t ab8505_powercut_maxtime_write(struct device *dev,
				  struct device_attribute *attr,
				  const char *buf, size_t count)
{
	int ret;
	int reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2646
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2647 2648 2649 2650 2651 2652 2653 2654 2655 2656 2657 2658 2659 2660 2661 2662 2663 2664 2665 2666 2667 2668 2669 2670

	reg_value = simple_strtoul(buf, NULL, 10);
	if (reg_value > 0x7F) {
		dev_err(dev, "Incorrect parameter, echo 0 (0.0s) - 127 (1.98s) for maxtime\n");
		goto fail;
	}

	ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
		AB8505_RTC_PCUT_MAX_TIME_REG, (u8)reg_value);

	if (ret < 0)
		dev_err(dev, "Failed to set AB8505_RTC_PCUT_MAX_TIME_REG\n");

fail:
	return count;
}

static ssize_t ab8505_powercut_restart_read(struct device *dev,
			     struct device_attribute *attr,
			     char *buf)
{
	int ret;
	u8 reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2671
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2672 2673 2674 2675 2676 2677 2678 2679 2680 2681 2682 2683 2684 2685 2686 2687 2688 2689 2690 2691 2692 2693

	ret = abx500_get_register_interruptible(di->dev, AB8500_RTC,
		AB8505_RTC_PCUT_RESTART_REG, &reg_value);

	if (ret < 0) {
		dev_err(dev, "Failed to read AB8505_RTC_PCUT_RESTART_REG\n");
		goto fail;
	}

	return scnprintf(buf, PAGE_SIZE, "%d\n", (reg_value & 0xF));

fail:
	return ret;
}

static ssize_t ab8505_powercut_restart_write(struct device *dev,
					     struct device_attribute *attr,
					     const char *buf, size_t count)
{
	int ret;
	int reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2694
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2695 2696 2697 2698 2699 2700 2701 2702 2703 2704 2705 2706 2707 2708 2709 2710 2711 2712 2713 2714 2715 2716 2717 2718 2719

	reg_value = simple_strtoul(buf, NULL, 10);
	if (reg_value > 0xF) {
		dev_err(dev, "Incorrect parameter, echo 0 - 15 for number of restart\n");
		goto fail;
	}

	ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
						AB8505_RTC_PCUT_RESTART_REG, (u8)reg_value);

	if (ret < 0)
		dev_err(dev, "Failed to set AB8505_RTC_PCUT_RESTART_REG\n");

fail:
	return count;

}

static ssize_t ab8505_powercut_timer_read(struct device *dev,
					  struct device_attribute *attr,
					  char *buf)
{
	int ret;
	u8 reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2720
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2721 2722 2723 2724 2725 2726 2727 2728 2729 2730 2731 2732 2733 2734 2735 2736 2737 2738 2739 2740 2741 2742

	ret = abx500_get_register_interruptible(di->dev, AB8500_RTC,
						AB8505_RTC_PCUT_TIME_REG, &reg_value);

	if (ret < 0) {
		dev_err(dev, "Failed to read AB8505_RTC_PCUT_TIME_REG\n");
		goto fail;
	}

	return scnprintf(buf, PAGE_SIZE, "%d\n", (reg_value & 0x7F));

fail:
	return ret;
}

static ssize_t ab8505_powercut_restart_counter_read(struct device *dev,
						    struct device_attribute *attr,
						    char *buf)
{
	int ret;
	u8 reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2743
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2744 2745 2746 2747 2748 2749 2750 2751 2752 2753 2754 2755 2756 2757 2758 2759 2760 2761 2762 2763 2764 2765

	ret = abx500_get_register_interruptible(di->dev, AB8500_RTC,
						AB8505_RTC_PCUT_RESTART_REG, &reg_value);

	if (ret < 0) {
		dev_err(dev, "Failed to read AB8505_RTC_PCUT_RESTART_REG\n");
		goto fail;
	}

	return scnprintf(buf, PAGE_SIZE, "%d\n", (reg_value & 0xF0) >> 4);

fail:
	return ret;
}

static ssize_t ab8505_powercut_read(struct device *dev,
				    struct device_attribute *attr,
				    char *buf)
{
	int ret;
	u8 reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2766
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2767 2768 2769 2770 2771 2772 2773 2774 2775 2776 2777 2778 2779 2780 2781 2782 2783 2784 2785 2786

	ret = abx500_get_register_interruptible(di->dev, AB8500_RTC,
						AB8505_RTC_PCUT_CTL_STATUS_REG, &reg_value);

	if (ret < 0)
		goto fail;

	return scnprintf(buf, PAGE_SIZE, "%d\n", (reg_value & 0x1));

fail:
	return ret;
}

static ssize_t ab8505_powercut_write(struct device *dev,
				     struct device_attribute *attr,
				     const char *buf, size_t count)
{
	int ret;
	int reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2787
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2788 2789 2790 2791 2792 2793 2794 2795 2796 2797 2798 2799 2800 2801 2802 2803 2804 2805 2806 2807 2808 2809 2810 2811 2812

	reg_value = simple_strtoul(buf, NULL, 10);
	if (reg_value > 0x1) {
		dev_err(dev, "Incorrect parameter, echo 0/1 to disable/enable Pcut feature\n");
		goto fail;
	}

	ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
						AB8505_RTC_PCUT_CTL_STATUS_REG, (u8)reg_value);

	if (ret < 0)
		dev_err(dev, "Failed to set AB8505_RTC_PCUT_CTL_STATUS_REG\n");

fail:
	return count;
}

static ssize_t ab8505_powercut_flag_read(struct device *dev,
					 struct device_attribute *attr,
					 char *buf)
{

	int ret;
	u8 reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2813
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2814 2815 2816 2817 2818 2819 2820 2821 2822 2823 2824 2825 2826 2827 2828 2829 2830 2831 2832 2833 2834 2835

	ret = abx500_get_register_interruptible(di->dev, AB8500_RTC,
						AB8505_RTC_PCUT_CTL_STATUS_REG,  &reg_value);

	if (ret < 0) {
		dev_err(dev, "Failed to read AB8505_RTC_PCUT_CTL_STATUS_REG\n");
		goto fail;
	}

	return scnprintf(buf, PAGE_SIZE, "%d\n", ((reg_value & 0x10) >> 4));

fail:
	return ret;
}

static ssize_t ab8505_powercut_debounce_read(struct device *dev,
					     struct device_attribute *attr,
					     char *buf)
{
	int ret;
	u8 reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2836
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2837 2838 2839 2840 2841 2842 2843 2844 2845 2846 2847 2848 2849 2850 2851 2852 2853 2854 2855 2856 2857 2858

	ret = abx500_get_register_interruptible(di->dev, AB8500_RTC,
						AB8505_RTC_PCUT_DEBOUNCE_REG,  &reg_value);

	if (ret < 0) {
		dev_err(dev, "Failed to read AB8505_RTC_PCUT_DEBOUNCE_REG\n");
		goto fail;
	}

	return scnprintf(buf, PAGE_SIZE, "%d\n", (reg_value & 0x7));

fail:
	return ret;
}

static ssize_t ab8505_powercut_debounce_write(struct device *dev,
					      struct device_attribute *attr,
					      const char *buf, size_t count)
{
	int ret;
	int reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2859
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2860 2861 2862 2863 2864 2865 2866 2867 2868 2869 2870 2871 2872 2873 2874 2875 2876 2877 2878 2879 2880 2881 2882 2883

	reg_value = simple_strtoul(buf, NULL, 10);
	if (reg_value > 0x7) {
		dev_err(dev, "Incorrect parameter, echo 0 to 7 for debounce setting\n");
		goto fail;
	}

	ret = abx500_set_register_interruptible(di->dev, AB8500_RTC,
						AB8505_RTC_PCUT_DEBOUNCE_REG, (u8)reg_value);

	if (ret < 0)
		dev_err(dev, "Failed to set AB8505_RTC_PCUT_DEBOUNCE_REG\n");

fail:
	return count;
}

static ssize_t ab8505_powercut_enable_status_read(struct device *dev,
						  struct device_attribute *attr,
						  char *buf)
{
	int ret;
	u8 reg_value;
	struct power_supply *psy = dev_get_drvdata(dev);
2884
	struct ab8500_fg *di = power_supply_get_drvdata(psy);
2885 2886 2887 2888 2889 2890 2891 2892 2893 2894 2895 2896 2897 2898 2899 2900 2901 2902 2903 2904 2905 2906 2907 2908 2909 2910 2911 2912 2913 2914 2915 2916 2917 2918

	ret = abx500_get_register_interruptible(di->dev, AB8500_RTC,
						AB8505_RTC_PCUT_CTL_STATUS_REG, &reg_value);

	if (ret < 0) {
		dev_err(dev, "Failed to read AB8505_RTC_PCUT_CTL_STATUS_REG\n");
		goto fail;
	}

	return scnprintf(buf, PAGE_SIZE, "%d\n", ((reg_value & 0x20) >> 5));

fail:
	return ret;
}

static struct device_attribute ab8505_fg_sysfs_psy_attrs[] = {
	__ATTR(powercut_flagtime, (S_IRUGO | S_IWUSR | S_IWGRP),
		ab8505_powercut_flagtime_read, ab8505_powercut_flagtime_write),
	__ATTR(powercut_maxtime, (S_IRUGO | S_IWUSR | S_IWGRP),
		ab8505_powercut_maxtime_read, ab8505_powercut_maxtime_write),
	__ATTR(powercut_restart_max, (S_IRUGO | S_IWUSR | S_IWGRP),
		ab8505_powercut_restart_read, ab8505_powercut_restart_write),
	__ATTR(powercut_timer, S_IRUGO, ab8505_powercut_timer_read, NULL),
	__ATTR(powercut_restart_counter, S_IRUGO,
		ab8505_powercut_restart_counter_read, NULL),
	__ATTR(powercut_enable, (S_IRUGO | S_IWUSR | S_IWGRP),
		ab8505_powercut_read, ab8505_powercut_write),
	__ATTR(powercut_flag, S_IRUGO, ab8505_powercut_flag_read, NULL),
	__ATTR(powercut_debounce_time, (S_IRUGO | S_IWUSR | S_IWGRP),
		ab8505_powercut_debounce_read, ab8505_powercut_debounce_write),
	__ATTR(powercut_enable_status, S_IRUGO,
		ab8505_powercut_enable_status_read, NULL),
};

2919
static int ab8500_fg_sysfs_psy_create_attrs(struct ab8500_fg *di)
2920
{
2921
	unsigned int i;
2922 2923

	if (((is_ab8505(di->parent) || is_ab9540(di->parent)) &&
2924
	     abx500_get_chip_id(di->dev) >= AB8500_CUT2P0)
2925
	    || is_ab8540(di->parent)) {
2926
		for (i = 0; i < ARRAY_SIZE(ab8505_fg_sysfs_psy_attrs); i++)
2927
			if (device_create_file(&di->fg_psy->dev,
2928
					       &ab8505_fg_sysfs_psy_attrs[i]))
2929 2930 2931 2932
				goto sysfs_psy_create_attrs_failed_ab8505;
	}
	return 0;
sysfs_psy_create_attrs_failed_ab8505:
2933
	dev_err(&di->fg_psy->dev, "Failed creating sysfs psy attrs for ab8505.\n");
2934
	while (i--)
2935 2936
		device_remove_file(&di->fg_psy->dev,
				   &ab8505_fg_sysfs_psy_attrs[i]);
2937 2938 2939 2940

	return -EIO;
}

2941
static void ab8500_fg_sysfs_psy_remove_attrs(struct ab8500_fg *di)
2942 2943 2944 2945
{
	unsigned int i;

	if (((is_ab8505(di->parent) || is_ab9540(di->parent)) &&
2946
	     abx500_get_chip_id(di->dev) >= AB8500_CUT2P0)
2947 2948
	    || is_ab8540(di->parent)) {
		for (i = 0; i < ARRAY_SIZE(ab8505_fg_sysfs_psy_attrs); i++)
2949
			(void)device_remove_file(&di->fg_psy->dev,
2950
						 &ab8505_fg_sysfs_psy_attrs[i]);
2951 2952 2953
	}
}

A
Arun Murthy 已提交
2954 2955 2956 2957 2958 2959 2960 2961 2962 2963 2964 2965 2966 2967 2968 2969 2970 2971 2972 2973 2974 2975 2976 2977 2978
/* Exposure to the sysfs interface <<END>> */

#if defined(CONFIG_PM)
static int ab8500_fg_resume(struct platform_device *pdev)
{
	struct ab8500_fg *di = platform_get_drvdata(pdev);

	/*
	 * Change state if we're not charging. If we're charging we will wake
	 * up on the FG IRQ
	 */
	if (!di->flags.charging) {
		ab8500_fg_discharge_state_to(di, AB8500_FG_DISCHARGE_WAKEUP);
		queue_work(di->fg_wq, &di->fg_work);
	}

	return 0;
}

static int ab8500_fg_suspend(struct platform_device *pdev,
	pm_message_t state)
{
	struct ab8500_fg *di = platform_get_drvdata(pdev);

	flush_delayed_work(&di->fg_periodic_work);
2979 2980 2981 2982 2983
	flush_work(&di->fg_work);
	flush_work(&di->fg_acc_cur_work);
	flush_delayed_work(&di->fg_reinit_work);
	flush_delayed_work(&di->fg_low_bat_work);
	flush_delayed_work(&di->fg_check_hw_failure_work);
A
Arun Murthy 已提交
2984 2985 2986 2987 2988 2989 2990 2991 2992 2993 2994 2995 2996 2997 2998

	/*
	 * If the FG is enabled we will disable it before going to suspend
	 * only if we're not charging
	 */
	if (di->flags.fg_enabled && !di->flags.charging)
		ab8500_fg_coulomb_counter(di, false);

	return 0;
}
#else
#define ab8500_fg_suspend      NULL
#define ab8500_fg_resume       NULL
#endif

B
Bill Pemberton 已提交
2999
static int ab8500_fg_remove(struct platform_device *pdev)
A
Arun Murthy 已提交
3000 3001 3002 3003 3004 3005 3006 3007 3008 3009 3010 3011 3012 3013 3014
{
	int ret = 0;
	struct ab8500_fg *di = platform_get_drvdata(pdev);

	list_del(&di->node);

	/* Disable coulomb counter */
	ret = ab8500_fg_coulomb_counter(di, false);
	if (ret)
		dev_err(di->dev, "failed to disable coulomb counter\n");

	destroy_workqueue(di->fg_wq);
	ab8500_fg_sysfs_exit(di);

	flush_scheduled_work();
3015
	ab8500_fg_sysfs_psy_remove_attrs(di);
3016
	power_supply_unregister(di->fg_psy);
A
Arun Murthy 已提交
3017 3018 3019 3020
	return ret;
}

/* ab8500 fg driver interrupts and their respective isr */
3021
static struct ab8500_fg_interrupts ab8500_fg_irq_th[] = {
A
Arun Murthy 已提交
3022 3023 3024 3025
	{"NCONV_ACCU", ab8500_fg_cc_convend_handler},
	{"BATT_OVV", ab8500_fg_batt_ovv_handler},
	{"LOW_BAT_F", ab8500_fg_lowbatf_handler},
	{"CC_INT_CALIB", ab8500_fg_cc_int_calib_handler},
3026 3027 3028
};

static struct ab8500_fg_interrupts ab8500_fg_irq_bh[] = {
A
Arun Murthy 已提交
3029 3030 3031
	{"CCEOC", ab8500_fg_cc_data_end_handler},
};

3032 3033 3034 3035 3036
static char *supply_interface[] = {
	"ab8500_chargalg",
	"ab8500_usb",
};

3037 3038 3039 3040 3041 3042 3043 3044 3045
static const struct power_supply_desc ab8500_fg_desc = {
	.name			= "ab8500_fg",
	.type			= POWER_SUPPLY_TYPE_BATTERY,
	.properties		= ab8500_fg_props,
	.num_properties		= ARRAY_SIZE(ab8500_fg_props),
	.get_property		= ab8500_fg_get_property,
	.external_power_changed	= ab8500_fg_external_power_changed,
};

B
Bill Pemberton 已提交
3046
static int ab8500_fg_probe(struct platform_device *pdev)
A
Arun Murthy 已提交
3047
{
3048
	struct device_node *np = pdev->dev.of_node;
3049
	struct abx500_bm_data *plat = pdev->dev.platform_data;
3050
	struct power_supply_config psy_cfg = {};
3051
	struct ab8500_fg *di;
A
Arun Murthy 已提交
3052 3053 3054
	int i, irq;
	int ret = 0;

3055 3056 3057
	di = devm_kzalloc(&pdev->dev, sizeof(*di), GFP_KERNEL);
	if (!di) {
		dev_err(&pdev->dev, "%s no mem for ab8500_fg\n", __func__);
A
Arun Murthy 已提交
3058
		return -ENOMEM;
3059
	}
3060 3061 3062 3063 3064 3065 3066 3067 3068 3069 3070 3071

	if (!plat) {
		dev_err(&pdev->dev, "no battery management data supplied\n");
		return -EINVAL;
	}
	di->bm = plat;

	if (np) {
		ret = ab8500_bm_of_probe(&pdev->dev, np, di->bm);
		if (ret) {
			dev_err(&pdev->dev, "failed to get battery information\n");
			return ret;
3072 3073
		}
	}
A
Arun Murthy 已提交
3074 3075 3076 3077 3078 3079 3080 3081

	mutex_init(&di->cc_lock);

	/* get parent data */
	di->dev = &pdev->dev;
	di->parent = dev_get_drvdata(pdev->dev.parent);
	di->gpadc = ab8500_gpadc_get("ab8500-gpadc.0");

3082 3083
	psy_cfg.supplied_to = supply_interface;
	psy_cfg.num_supplicants = ARRAY_SIZE(supply_interface);
3084
	psy_cfg.drv_data = di;
3085

A
Arun Murthy 已提交
3086
	di->bat_cap.max_mah_design = MILLI_TO_MICRO *
3087
		di->bm->bat_type[di->bm->batt_id].charge_full_design;
A
Arun Murthy 已提交
3088 3089 3090

	di->bat_cap.max_mah = di->bat_cap.max_mah_design;

3091
	di->vbat_nom = di->bm->bat_type[di->bm->batt_id].nominal_voltage;
A
Arun Murthy 已提交
3092 3093 3094 3095 3096 3097 3098 3099 3100 3101

	di->init_capacity = true;

	ab8500_fg_charge_state_to(di, AB8500_FG_CHARGE_INIT);
	ab8500_fg_discharge_state_to(di, AB8500_FG_DISCHARGE_INIT);

	/* Create a work queue for running the FG algorithm */
	di->fg_wq = create_singlethread_workqueue("ab8500_fg_wq");
	if (di->fg_wq == NULL) {
		dev_err(di->dev, "failed to create work queue\n");
3102
		return -ENOMEM;
A
Arun Murthy 已提交
3103 3104 3105 3106 3107 3108 3109 3110 3111
	}

	/* Init work for running the fg algorithm instantly */
	INIT_WORK(&di->fg_work, ab8500_fg_instant_work);

	/* Init work for getting the battery accumulated current */
	INIT_WORK(&di->fg_acc_cur_work, ab8500_fg_acc_cur_work);

	/* Init work for reinitialising the fg algorithm */
3112
	INIT_DEFERRABLE_WORK(&di->fg_reinit_work,
A
Arun Murthy 已提交
3113 3114 3115
		ab8500_fg_reinit_work);

	/* Work delayed Queue to run the state machine */
3116
	INIT_DEFERRABLE_WORK(&di->fg_periodic_work,
A
Arun Murthy 已提交
3117 3118 3119
		ab8500_fg_periodic_work);

	/* Work to check low battery condition */
3120
	INIT_DEFERRABLE_WORK(&di->fg_low_bat_work,
A
Arun Murthy 已提交
3121 3122 3123
		ab8500_fg_low_bat_work);

	/* Init work for HW failure check */
3124
	INIT_DEFERRABLE_WORK(&di->fg_check_hw_failure_work,
A
Arun Murthy 已提交
3125 3126
		ab8500_fg_check_hw_failure_work);

3127 3128 3129 3130 3131 3132
	/* Reset battery low voltage flag */
	di->flags.low_bat = false;

	/* Initialize low battery counter */
	di->low_bat_cnt = 10;

A
Arun Murthy 已提交
3133 3134 3135 3136 3137 3138 3139 3140 3141 3142 3143 3144
	/* Initialize OVV, and other registers */
	ret = ab8500_fg_init_hw_registers(di);
	if (ret) {
		dev_err(di->dev, "failed to initialize registers\n");
		goto free_inst_curr_wq;
	}

	/* Consider battery unknown until we're informed otherwise */
	di->flags.batt_unknown = true;
	di->flags.batt_id_received = false;

	/* Register FG power supply class */
3145 3146
	di->fg_psy = power_supply_register(di->dev, &ab8500_fg_desc, &psy_cfg);
	if (IS_ERR(di->fg_psy)) {
A
Arun Murthy 已提交
3147
		dev_err(di->dev, "failed to register FG psy\n");
3148
		ret = PTR_ERR(di->fg_psy);
A
Arun Murthy 已提交
3149 3150 3151
		goto free_inst_curr_wq;
	}

3152
	di->fg_samples = SEC_TO_SAMPLE(di->bm->fg_params->init_timer);
A
Arun Murthy 已提交
3153 3154
	ab8500_fg_coulomb_counter(di, true);

3155 3156 3157 3158 3159
	/*
	 * Initialize completion used to notify completion and start
	 * of inst current
	 */
	init_completion(&di->ab8500_fg_started);
A
Arun Murthy 已提交
3160 3161
	init_completion(&di->ab8500_fg_complete);

3162 3163 3164 3165 3166 3167
	/* Register primary interrupt handlers */
	for (i = 0; i < ARRAY_SIZE(ab8500_fg_irq_th); i++) {
		irq = platform_get_irq_byname(pdev, ab8500_fg_irq_th[i].name);
		ret = request_irq(irq, ab8500_fg_irq_th[i].isr,
				  IRQF_SHARED | IRQF_NO_SUSPEND,
				  ab8500_fg_irq_th[i].name, di);
A
Arun Murthy 已提交
3168 3169

		if (ret != 0) {
3170 3171
			dev_err(di->dev, "failed to request %s IRQ %d: %d\n",
				ab8500_fg_irq_th[i].name, irq, ret);
A
Arun Murthy 已提交
3172 3173 3174
			goto free_irq;
		}
		dev_dbg(di->dev, "Requested %s IRQ %d: %d\n",
3175
			ab8500_fg_irq_th[i].name, irq, ret);
A
Arun Murthy 已提交
3176
	}
3177 3178 3179 3180 3181 3182 3183 3184 3185 3186 3187 3188 3189 3190 3191

	/* Register threaded interrupt handler */
	irq = platform_get_irq_byname(pdev, ab8500_fg_irq_bh[0].name);
	ret = request_threaded_irq(irq, NULL, ab8500_fg_irq_bh[0].isr,
				IRQF_SHARED | IRQF_NO_SUSPEND | IRQF_ONESHOT,
			ab8500_fg_irq_bh[0].name, di);

	if (ret != 0) {
		dev_err(di->dev, "failed to request %s IRQ %d: %d\n",
			ab8500_fg_irq_bh[0].name, irq, ret);
		goto free_irq;
	}
	dev_dbg(di->dev, "Requested %s IRQ %d: %d\n",
		ab8500_fg_irq_bh[0].name, irq, ret);

A
Arun Murthy 已提交
3192 3193
	di->irq = platform_get_irq_byname(pdev, "CCEOC");
	disable_irq(di->irq);
3194
	di->nbr_cceoc_irq_cnt = 0;
A
Arun Murthy 已提交
3195 3196 3197 3198 3199 3200 3201 3202 3203

	platform_set_drvdata(pdev, di);

	ret = ab8500_fg_sysfs_init(di);
	if (ret) {
		dev_err(di->dev, "failed to create sysfs entry\n");
		goto free_irq;
	}

3204
	ret = ab8500_fg_sysfs_psy_create_attrs(di);
3205 3206 3207 3208 3209 3210
	if (ret) {
		dev_err(di->dev, "failed to create FG psy\n");
		ab8500_fg_sysfs_exit(di);
		goto free_irq;
	}

A
Arun Murthy 已提交
3211 3212 3213 3214 3215 3216 3217 3218 3219 3220 3221 3222 3223 3224 3225
	/* Calibrate the fg first time */
	di->flags.calibrate = true;
	di->calib_state = AB8500_FG_CALIB_INIT;

	/* Use room temp as default value until we get an update from driver. */
	di->bat_temp = 210;

	/* Run the FG algorithm */
	queue_delayed_work(di->fg_wq, &di->fg_periodic_work, 0);

	list_add_tail(&di->node, &ab8500_fg_list);

	return ret;

free_irq:
3226
	power_supply_unregister(di->fg_psy);
A
Arun Murthy 已提交
3227

3228 3229 3230
	/* We also have to free all registered irqs */
	for (i = 0; i < ARRAY_SIZE(ab8500_fg_irq_th); i++) {
		irq = platform_get_irq_byname(pdev, ab8500_fg_irq_th[i].name);
A
Arun Murthy 已提交
3231 3232
		free_irq(irq, di);
	}
3233 3234
	irq = platform_get_irq_byname(pdev, ab8500_fg_irq_bh[0].name);
	free_irq(irq, di);
A
Arun Murthy 已提交
3235 3236 3237 3238 3239
free_inst_curr_wq:
	destroy_workqueue(di->fg_wq);
	return ret;
}

3240 3241 3242 3243 3244
static const struct of_device_id ab8500_fg_match[] = {
	{ .compatible = "stericsson,ab8500-fg", },
	{ },
};

A
Arun Murthy 已提交
3245 3246
static struct platform_driver ab8500_fg_driver = {
	.probe = ab8500_fg_probe,
B
Bill Pemberton 已提交
3247
	.remove = ab8500_fg_remove,
A
Arun Murthy 已提交
3248 3249 3250 3251
	.suspend = ab8500_fg_suspend,
	.resume = ab8500_fg_resume,
	.driver = {
		.name = "ab8500-fg",
3252
		.of_match_table = ab8500_fg_match,
A
Arun Murthy 已提交
3253 3254 3255 3256 3257 3258 3259 3260 3261 3262 3263 3264 3265 3266 3267 3268 3269 3270 3271 3272
	},
};

static int __init ab8500_fg_init(void)
{
	return platform_driver_register(&ab8500_fg_driver);
}

static void __exit ab8500_fg_exit(void)
{
	platform_driver_unregister(&ab8500_fg_driver);
}

subsys_initcall_sync(ab8500_fg_init);
module_exit(ab8500_fg_exit);

MODULE_LICENSE("GPL v2");
MODULE_AUTHOR("Johan Palsson, Karl Komierowski");
MODULE_ALIAS("platform:ab8500-fg");
MODULE_DESCRIPTION("AB8500 Fuel Gauge driver");