#include <linux/module.h>
#include <linux/rtc.h>
#include <linux/i2c.h>
#include <linux/bcd.h>
#include <linux/of.h>
#include <linux/regmap.h>
#include <linux/interrupt.h>
#define DRV_NAME "rtc-ab-b5ze-s3"
#define ABB5ZES3_REG_CTRL1 0x00 /* Control 1 register */
#define ABB5ZES3_REG_CTRL1_CIE BIT(0) /* Pulse interrupt enable */
#define ABB5ZES3_REG_CTRL1_AIE BIT(1) /* Alarm interrupt enable */
#define ABB5ZES3_REG_CTRL1_SIE BIT(2) /* Second interrupt enable */
#define ABB5ZES3_REG_CTRL1_PM BIT(3) /* 24h/12h mode */
#define ABB5ZES3_REG_CTRL1_SR BIT(4) /* Software reset */
#define ABB5ZES3_REG_CTRL1_STOP BIT(5) /* RTC circuit enable */
#define ABB5ZES3_REG_CTRL1_CAP BIT(7)
#define ABB5ZES3_REG_CTRL2 0x01 /* Control 2 register */
#define ABB5ZES3_REG_CTRL2_CTBIE BIT(0) /* Countdown timer B int. enable */
#define ABB5ZES3_REG_CTRL2_CTAIE BIT(1) /* Countdown timer A int. enable */
#define ABB5ZES3_REG_CTRL2_WTAIE BIT(2) /* Watchdog timer A int. enable */
#define ABB5ZES3_REG_CTRL2_AF BIT(3) /* Alarm interrupt status */
#define ABB5ZES3_REG_CTRL2_SF BIT(4) /* Second interrupt status */
#define ABB5ZES3_REG_CTRL2_CTBF BIT(5) /* Countdown timer B int. status */
#define ABB5ZES3_REG_CTRL2_CTAF BIT(6) /* Countdown timer A int. status */
#define ABB5ZES3_REG_CTRL2_WTAF BIT(7) /* Watchdog timer A int. status */
#define ABB5ZES3_REG_CTRL3 0x02 /* Control 3 register */
#define ABB5ZES3_REG_CTRL3_PM2 BIT(7) /* Power Management bit 2 */
#define ABB5ZES3_REG_CTRL3_PM1 BIT(6) /* Power Management bit 1 */
#define ABB5ZES3_REG_CTRL3_PM0 BIT(5) /* Power Management bit 0 */
#define ABB5ZES3_REG_CTRL3_BSF BIT(3) /* Battery switchover int. status */
#define ABB5ZES3_REG_CTRL3_BLF BIT(2) /* Battery low int. status */
#define ABB5ZES3_REG_CTRL3_BSIE BIT(1) /* Battery switchover int. enable */
#define ABB5ZES3_REG_CTRL3_BLIE BIT(0) /* Battery low int. enable */
#define ABB5ZES3_CTRL_SEC_LEN 3
#define ABB5ZES3_REG_RTC_SC 0x03 /* RTC Seconds register */
#define ABB5ZES3_REG_RTC_SC_OSC BIT(7) /* Clock integrity status */
#define ABB5ZES3_REG_RTC_MN 0x04 /* RTC Minutes register */
#define ABB5ZES3_REG_RTC_HR 0x05 /* RTC Hours register */
#define ABB5ZES3_REG_RTC_HR_PM BIT(5) /* RTC Hours PM bit */
#define ABB5ZES3_REG_RTC_DT 0x06 /* RTC Date register */
#define ABB5ZES3_REG_RTC_DW 0x07 /* RTC Day of the week register */
#define ABB5ZES3_REG_RTC_MO 0x08 /* RTC Month register */
#define ABB5ZES3_REG_RTC_YR 0x09 /* RTC Year register */
#define ABB5ZES3_RTC_SEC_LEN 7
#define ABB5ZES3_REG_ALRM_MN 0x0A /* Alarm - minute register */
#define ABB5ZES3_REG_ALRM_MN_AE BIT(7) /* Minute enable */
#define ABB5ZES3_REG_ALRM_HR 0x0B /* Alarm - hours register */
#define ABB5ZES3_REG_ALRM_HR_AE BIT(7) /* Hour enable */
#define ABB5ZES3_REG_ALRM_DT 0x0C /* Alarm - date register */
#define ABB5ZES3_REG_ALRM_DT_AE BIT(7) /* Date (day of the month) enable */
#define ABB5ZES3_REG_ALRM_DW 0x0D /* Alarm - day of the week reg. */
#define ABB5ZES3_REG_ALRM_DW_AE BIT(7) /* Day of the week enable */
#define ABB5ZES3_ALRM_SEC_LEN 4
#define ABB5ZES3_REG_FREQ_OF 0x0E /* Frequency offset register */
#define ABB5ZES3_REG_FREQ_OF_MODE 0x0E /* Offset mode: 2 hours / minute */
#define ABB5ZES3_REG_TIM_CLK 0x0F /* Timer & Clockout register */
#define ABB5ZES3_REG_TIM_CLK_TAM BIT(7) /* Permanent/pulsed timer A/int. 2 */
#define ABB5ZES3_REG_TIM_CLK_TBM BIT(6) /* Permanent/pulsed timer B */
#define ABB5ZES3_REG_TIM_CLK_COF2 BIT(5) /* Clkout Freq bit 2 */
#define ABB5ZES3_REG_TIM_CLK_COF1 BIT(4) /* Clkout Freq bit 1 */
#define ABB5ZES3_REG_TIM_CLK_COF0 BIT(3) /* Clkout Freq bit 0 */
#define ABB5ZES3_REG_TIM_CLK_TAC1 BIT(2) /* Timer A: - 01 : countdown */
#define ABB5ZES3_REG_TIM_CLK_TAC0 BIT(1) /* - 10 : timer */
#define ABB5ZES3_REG_TIM_CLK_TBC BIT(0) /* Timer B enable */
#define ABB5ZES3_REG_TIMA_CLK 0x10 /* Timer A clock register */
#define ABB5ZES3_REG_TIMA_CLK_TAQ2 BIT(2) /* Freq bit 2 */
#define ABB5ZES3_REG_TIMA_CLK_TAQ1 BIT(1) /* Freq bit 1 */
#define ABB5ZES3_REG_TIMA_CLK_TAQ0 BIT(0) /* Freq bit 0 */
#define ABB5ZES3_REG_TIMA 0x11 /* Timer A register */
#define ABB5ZES3_TIMA_SEC_LEN 2
#define ABB5ZES3_REG_TIMB_CLK 0x12 /* Timer B clock register */
#define ABB5ZES3_REG_TIMB_CLK_TBW2 BIT(6)
#define ABB5ZES3_REG_TIMB_CLK_TBW1 BIT(5)
#define ABB5ZES3_REG_TIMB_CLK_TBW0 BIT(4)
#define ABB5ZES3_REG_TIMB_CLK_TAQ2 BIT(2)
#define ABB5ZES3_REG_TIMB_CLK_TAQ1 BIT(1)
#define ABB5ZES3_REG_TIMB_CLK_TAQ0 BIT(0)
#define ABB5ZES3_REG_TIMB 0x13 /* Timer B register */
#define ABB5ZES3_TIMB_SEC_LEN 2
#define ABB5ZES3_MEM_MAP_LEN 0x14
struct abb5zes3_rtc_data {
struct rtc_device *rtc;
struct regmap *regmap;
int irq;
bool battery_low;
bool timer_alarm;
};
static int abb5zes3_i2c_validate_chip(struct regmap *regmap)
{
u8 regs[ABB5ZES3_MEM_MAP_LEN];
static const u8 mask[ABB5ZES3_MEM_MAP_LEN] = { 0x00, 0x00, 0x10, 0x00,
0x80, 0xc0, 0xc0, 0xf8,
0xe0, 0x00, 0x00, 0x40,
0x40, 0x78, 0x00, 0x00,
0xf8, 0x00, 0x88, 0x00 };
int ret, i;
ret = regmap_bulk_read(regmap, 0, regs, ABB5ZES3_MEM_MAP_LEN);
if (ret)
return ret;
for (i = 0; i < ABB5ZES3_MEM_MAP_LEN; ++i) {
if (regs[i] & mask[i])
return -ENODEV;
}
return 0;
}
static int _abb5zes3_rtc_clear_alarm(struct device *dev)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
int ret;
ret = regmap_update_bits(data->regmap, ABB5ZES3_REG_CTRL2,
ABB5ZES3_REG_CTRL2_AF, 0);
if (ret)
dev_err(dev, "%s: clearing alarm failed (%d)\n", __func__, ret);
return ret;
}
static int _abb5zes3_rtc_update_alarm(struct device *dev, bool enable)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
int ret;
ret = regmap_update_bits(data->regmap, ABB5ZES3_REG_CTRL1,
ABB5ZES3_REG_CTRL1_AIE,
enable ? ABB5ZES3_REG_CTRL1_AIE : 0);
if (ret)
dev_err(dev, "%s: writing alarm INT failed (%d)\n",
__func__, ret);
return ret;
}
static int _abb5zes3_rtc_update_timer(struct device *dev, bool enable)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
int ret;
ret = regmap_update_bits(data->regmap, ABB5ZES3_REG_CTRL2,
ABB5ZES3_REG_CTRL2_WTAIE,
enable ? ABB5ZES3_REG_CTRL2_WTAIE : 0);
if (ret)
dev_err(dev, "%s: writing timer INT failed (%d)\n",
__func__, ret);
return ret;
}
static int _abb5zes3_rtc_read_time(struct device *dev, struct rtc_time *tm)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
u8 regs[ABB5ZES3_REG_RTC_SC + ABB5ZES3_RTC_SEC_LEN];
int ret = 0;
ret = regmap_bulk_read(data->regmap, ABB5ZES3_REG_CTRL1, regs,
sizeof(regs));
if (ret) {
dev_err(dev, "%s: reading RTC time failed (%d)\n",
__func__, ret);
return ret;
}
if (regs[ABB5ZES3_REG_RTC_SC] & ABB5ZES3_REG_RTC_SC_OSC)
return -ENODATA;
tm->tm_sec = bcd2bin(regs[ABB5ZES3_REG_RTC_SC] & 0x7F);
tm->tm_min = bcd2bin(regs[ABB5ZES3_REG_RTC_MN]);
if (regs[ABB5ZES3_REG_CTRL1] & ABB5ZES3_REG_CTRL1_PM) {
tm->tm_hour = bcd2bin(regs[ABB5ZES3_REG_RTC_HR] & 0x1f);
if (regs[ABB5ZES3_REG_RTC_HR] & ABB5ZES3_REG_RTC_HR_PM)
tm->tm_hour += 12;
} else {
tm->tm_hour = bcd2bin(regs[ABB5ZES3_REG_RTC_HR]);
}
tm->tm_mday = bcd2bin(regs[ABB5ZES3_REG_RTC_DT]);
tm->tm_wday = bcd2bin(regs[ABB5ZES3_REG_RTC_DW]);
tm->tm_mon = bcd2bin(regs[ABB5ZES3_REG_RTC_MO]) - 1;
tm->tm_year = bcd2bin(regs[ABB5ZES3_REG_RTC_YR]) + 100;
return ret;
}
static int abb5zes3_rtc_set_time(struct device *dev, struct rtc_time *tm)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
u8 regs[ABB5ZES3_REG_RTC_SC + ABB5ZES3_RTC_SEC_LEN];
int ret;
regs[ABB5ZES3_REG_RTC_SC] = bin2bcd(tm->tm_sec);
regs[ABB5ZES3_REG_RTC_MN] = bin2bcd(tm->tm_min);
regs[ABB5ZES3_REG_RTC_HR] = bin2bcd(tm->tm_hour);
regs[ABB5ZES3_REG_RTC_DT] = bin2bcd(tm->tm_mday);
regs[ABB5ZES3_REG_RTC_DW] = bin2bcd(tm->tm_wday);
regs[ABB5ZES3_REG_RTC_MO] = bin2bcd(tm->tm_mon + 1);
regs[ABB5ZES3_REG_RTC_YR] = bin2bcd(tm->tm_year - 100);
ret = regmap_bulk_write(data->regmap, ABB5ZES3_REG_RTC_SC,
regs + ABB5ZES3_REG_RTC_SC,
ABB5ZES3_RTC_SEC_LEN);
return ret;
}
static inline void sec_to_timer_a(u8 secs, u8 *taq, u8 *timer_a)
{
*taq = ABB5ZES3_REG_TIMA_CLK_TAQ1;
*timer_a = secs;
}
static inline int sec_from_timer_a(u8 *secs, u8 taq, u8 timer_a)
{
if (taq != ABB5ZES3_REG_TIMA_CLK_TAQ1)
return -EINVAL;
*secs = timer_a;
return 0;
}
static int _abb5zes3_rtc_read_timer(struct device *dev,
struct rtc_wkalrm *alarm)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
struct rtc_time rtc_tm, *alarm_tm = &alarm->time;
u8 regs[ABB5ZES3_TIMA_SEC_LEN + 1];
unsigned long rtc_secs;
unsigned int reg;
u8 timer_secs;
int ret;
ret = regmap_bulk_read(data->regmap, ABB5ZES3_REG_TIM_CLK, regs,
ABB5ZES3_TIMA_SEC_LEN + 1);
if (ret) {
dev_err(dev, "%s: reading Timer A section failed (%d)\n",
__func__, ret);
return ret;
}
ret = _abb5zes3_rtc_read_time(dev, &rtc_tm);
if (ret)
return ret;
rtc_secs = rtc_tm_to_time64(&rtc_tm);
ret = sec_from_timer_a(&timer_secs, regs[1], regs[2]);
if (ret)
return ret;
rtc_time64_to_tm(rtc_secs + timer_secs, alarm_tm);
ret = regmap_read(data->regmap, ABB5ZES3_REG_CTRL2, ®);
if (ret) {
dev_err(dev, "%s: reading ctrl reg failed (%d)\n",
__func__, ret);
return ret;
}
alarm->enabled = !!(reg & ABB5ZES3_REG_CTRL2_WTAIE);
return 0;
}
static int _abb5zes3_rtc_read_alarm(struct device *dev,
struct rtc_wkalrm *alarm)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
struct rtc_time rtc_tm, *alarm_tm = &alarm->time;
unsigned long rtc_secs, alarm_secs;
u8 regs[ABB5ZES3_ALRM_SEC_LEN];
unsigned int reg;
int ret;
ret = regmap_bulk_read(data->regmap, ABB5ZES3_REG_ALRM_MN, regs,
ABB5ZES3_ALRM_SEC_LEN);
if (ret) {
dev_err(dev, "%s: reading alarm section failed (%d)\n",
__func__, ret);
return ret;
}
alarm_tm->tm_sec = 0;
alarm_tm->tm_min = bcd2bin(regs[0] & 0x7f);
alarm_tm->tm_hour = bcd2bin(regs[1] & 0x3f);
alarm_tm->tm_mday = bcd2bin(regs[2] & 0x3f);
alarm_tm->tm_wday = -1;
ret = _abb5zes3_rtc_read_time(dev, &rtc_tm);
if (ret)
return ret;
alarm_tm->tm_year = rtc_tm.tm_year;
alarm_tm->tm_mon = rtc_tm.tm_mon;
rtc_secs = rtc_tm_to_time64(&rtc_tm);
alarm_secs = rtc_tm_to_time64(alarm_tm);
if (alarm_secs < rtc_secs) {
if (alarm_tm->tm_mon == 11) {
alarm_tm->tm_mon = 0;
alarm_tm->tm_year += 1;
} else {
alarm_tm->tm_mon += 1;
}
}
ret = regmap_read(data->regmap, ABB5ZES3_REG_CTRL1, ®);
if (ret) {
dev_err(dev, "%s: reading ctrl reg failed (%d)\n",
__func__, ret);
return ret;
}
alarm->enabled = !!(reg & ABB5ZES3_REG_CTRL1_AIE);
return 0;
}
static int abb5zes3_rtc_read_alarm(struct device *dev, struct rtc_wkalrm *alarm)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
int ret;
if (data->timer_alarm)
ret = _abb5zes3_rtc_read_timer(dev, alarm);
else
ret = _abb5zes3_rtc_read_alarm(dev, alarm);
return ret;
}
static int _abb5zes3_rtc_set_alarm(struct device *dev, struct rtc_wkalrm *alarm)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
struct rtc_time *alarm_tm = &alarm->time;
u8 regs[ABB5ZES3_ALRM_SEC_LEN];
struct rtc_time rtc_tm;
int ret, enable = 1;
if (!alarm->enabled) {
enable = 0;
} else {
unsigned long rtc_secs, alarm_secs;
ret = _abb5zes3_rtc_read_time(dev, &rtc_tm);
if (ret)
return ret;
if (rtc_tm.tm_mon == 11) {
rtc_tm.tm_mon = 0;
rtc_tm.tm_year += 1;
} else {
rtc_tm.tm_mon += 1;
}
rtc_secs = rtc_tm_to_time64(&rtc_tm);
alarm_secs = rtc_tm_to_time64(alarm_tm);
if (alarm_secs > rtc_secs) {
dev_err(dev, "%s: alarm maximum is one month in the future (%d)\n",
__func__, ret);
return -EINVAL;
}
}
regs[0] = bin2bcd(alarm_tm->tm_min) & 0x7f;
regs[1] = bin2bcd(alarm_tm->tm_hour) & 0x3f;
regs[2] = bin2bcd(alarm_tm->tm_mday) & 0x3f;
regs[3] = ABB5ZES3_REG_ALRM_DW_AE;
ret = regmap_bulk_write(data->regmap, ABB5ZES3_REG_ALRM_MN, regs,
ABB5ZES3_ALRM_SEC_LEN);
if (ret < 0) {
dev_err(dev, "%s: writing ALARM section failed (%d)\n",
__func__, ret);
return ret;
}
data->timer_alarm = 0;
return _abb5zes3_rtc_update_alarm(dev, enable);
}
static int _abb5zes3_rtc_set_timer(struct device *dev, struct rtc_wkalrm *alarm,
u8 secs)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
u8 regs[ABB5ZES3_TIMA_SEC_LEN];
u8 mask = ABB5ZES3_REG_TIM_CLK_TAC0 | ABB5ZES3_REG_TIM_CLK_TAC1;
int ret = 0;
sec_to_timer_a(secs, ®s[0], ®s[1]);
ret = regmap_bulk_write(data->regmap, ABB5ZES3_REG_TIMA_CLK, regs,
ABB5ZES3_TIMA_SEC_LEN);
if (ret < 0) {
dev_err(dev, "%s: writing timer section failed\n", __func__);
return ret;
}
ret = regmap_update_bits(data->regmap, ABB5ZES3_REG_TIM_CLK,
mask, ABB5ZES3_REG_TIM_CLK_TAC1);
if (ret)
dev_err(dev, "%s: failed to update timer\n", __func__);
data->timer_alarm = 1;
return _abb5zes3_rtc_update_timer(dev, alarm->enabled);
}
static int abb5zes3_rtc_set_alarm(struct device *dev, struct rtc_wkalrm *alarm)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
struct rtc_time *alarm_tm = &alarm->time;
unsigned long rtc_secs, alarm_secs;
struct rtc_time rtc_tm;
int ret;
ret = _abb5zes3_rtc_read_time(dev, &rtc_tm);
if (ret)
return ret;
rtc_secs = rtc_tm_to_time64(&rtc_tm);
alarm_secs = rtc_tm_to_time64(alarm_tm);
ret = _abb5zes3_rtc_update_alarm(dev, false);
if (ret < 0) {
dev_err(dev, "%s: unable to disable alarm (%d)\n", __func__,
ret);
return ret;
}
ret = _abb5zes3_rtc_update_timer(dev, false);
if (ret < 0) {
dev_err(dev, "%s: unable to disable timer (%d)\n", __func__,
ret);
return ret;
}
data->timer_alarm = 0;
if ((alarm_secs > rtc_secs) && ((alarm_secs - rtc_secs) <= 240))
ret = _abb5zes3_rtc_set_timer(dev, alarm,
alarm_secs - rtc_secs);
else
ret = _abb5zes3_rtc_set_alarm(dev, alarm);
if (ret)
dev_err(dev, "%s: unable to configure alarm (%d)\n", __func__,
ret);
return ret;
}
static inline int _abb5zes3_rtc_battery_low_irq_enable(struct regmap *regmap,
bool enable)
{
return regmap_update_bits(regmap, ABB5ZES3_REG_CTRL3,
ABB5ZES3_REG_CTRL3_BLIE,
enable ? ABB5ZES3_REG_CTRL3_BLIE : 0);
}
static int abb5zes3_rtc_check_setup(struct device *dev)
{
struct abb5zes3_rtc_data *data = dev_get_drvdata(dev);
struct regmap *regmap = data->regmap;
unsigned int reg;
int ret;
u8 mask;
mask = (ABB5ZES3_REG_TIM_CLK_TBC | ABB5ZES3_REG_TIM_CLK_TAC0 |
ABB5ZES3_REG_TIM_CLK_TAC1 | ABB5ZES3_REG_TIM_CLK_COF0 |
ABB5ZES3_REG_TIM_CLK_COF1 | ABB5ZES3_REG_TIM_CLK_COF2 |
ABB5ZES3_REG_TIM_CLK_TBM | ABB5ZES3_REG_TIM_CLK_TAM);
ret = regmap_update_bits(regmap, ABB5ZES3_REG_TIM_CLK, mask,
ABB5ZES3_REG_TIM_CLK_COF0 |
ABB5ZES3_REG_TIM_CLK_COF1 |
ABB5ZES3_REG_TIM_CLK_COF2);
if (ret < 0) {
dev_err(dev, "%s: unable to initialize clkout register (%d)\n",
__func__, ret);
return ret;
}
mask = (ABB5ZES3_REG_ALRM_MN_AE | ABB5ZES3_REG_ALRM_HR_AE |
ABB5ZES3_REG_ALRM_DT_AE | ABB5ZES3_REG_ALRM_DW_AE);
ret = regmap_update_bits(regmap, ABB5ZES3_REG_CTRL2, mask, mask);
if (ret < 0) {
dev_err(dev, "%s: unable to disable alarm setting (%d)\n",
__func__, ret);
return ret;
}
mask = (ABB5ZES3_REG_CTRL1_CIE | ABB5ZES3_REG_CTRL1_AIE |
ABB5ZES3_REG_CTRL1_SIE | ABB5ZES3_REG_CTRL1_PM |
ABB5ZES3_REG_CTRL1_CAP | ABB5ZES3_REG_CTRL1_STOP);
ret = regmap_update_bits(regmap, ABB5ZES3_REG_CTRL1, mask, 0);
if (ret < 0) {
dev_err(dev, "%s: unable to initialize CTRL1 register (%d)\n",
__func__, ret);
return ret;
}
mask = (ABB5ZES3_REG_CTRL2_CTBIE | ABB5ZES3_REG_CTRL2_CTAIE |
ABB5ZES3_REG_CTRL2_WTAIE | ABB5ZES3_REG_CTRL2_AF |
ABB5ZES3_REG_CTRL2_SF | ABB5ZES3_REG_CTRL2_CTBF |
ABB5ZES3_REG_CTRL2_CTAF);
ret = regmap_update_bits(regmap, ABB5ZES3_REG_CTRL2, mask, 0);
if (ret < 0) {
dev_err(dev, "%s: unable to initialize CTRL2 register (%d)\n",
__func__, ret);
return ret;
}
mask = (ABB5ZES3_REG_CTRL3_PM0 | ABB5ZES3_REG_CTRL3_PM1 |
ABB5ZES3_REG_CTRL3_PM2 | ABB5ZES3_REG_CTRL3_BLIE |
ABB5ZES3_REG_CTRL3_BSIE | ABB5ZES3_REG_CTRL3_BSF);
ret = regmap_update_bits(regmap, ABB5ZES3_REG_CTRL3, mask, 0);
if (ret < 0) {
dev_err(dev, "%s: unable to initialize CTRL3 register (%d)\n",
__func__, ret);
return ret;
}
ret = regmap_read(regmap, ABB5ZES3_REG_RTC_SC, ®);
if (ret < 0) {
dev_err(dev, "%s: unable to read osc. integrity flag (%d)\n",
__func__, ret);
return ret;
}
if (reg & ABB5ZES3_REG_RTC_SC_OSC) {
dev_err(dev, "clock integrity not guaranteed. Osc. has stopped or has been interrupted.\n");
dev_err(dev, "change battery (if not already done) and then set time to reset osc. failure flag.\n");
}
ret = regmap_read(regmap, ABB5ZES3_REG_CTRL3, ®);
if (ret < 0) {
dev_err(dev, "%s: unable to read battery low flag (%d)\n",
__func__, ret);
return ret;
}
data->battery_low = reg & ABB5ZES3_REG_CTRL3_BLF;
if (data->battery_low) {
dev_err(dev, "RTC battery is low; please, consider changing it!\n");
ret = _abb5zes3_rtc_battery_low_irq_enable(regmap, false);
if (ret)
dev_err(dev, "%s: disabling battery low interrupt generation failed (%d)\n",
__func__, ret);
}
return ret;
}
static int abb5zes3_rtc_alarm_irq_enable(struct device *dev,
unsigned int enable)
{
struct abb5zes3_rtc_data *rtc_data = dev_get_drvdata(dev);
int ret = 0;
if (rtc_data->irq) {
if (rtc_data->timer_alarm)
ret = _abb5zes3_rtc_update_timer(dev, enable);
else
ret = _abb5zes3_rtc_update_alarm(dev, enable);
}
return ret;
}
static irqreturn_t _abb5zes3_rtc_interrupt(int irq, void *data)
{
struct i2c_client *client = data;
struct device *dev = &client->dev;
struct abb5zes3_rtc_data *rtc_data = dev_get_drvdata(dev);
struct rtc_device *rtc = rtc_data->rtc;
u8 regs[ABB5ZES3_CTRL_SEC_LEN];
int ret, handled = IRQ_NONE;
ret = regmap_bulk_read(rtc_data->regmap, 0, regs,
ABB5ZES3_CTRL_SEC_LEN);
if (ret) {
dev_err(dev, "%s: unable to read control section (%d)!\n",
__func__, ret);
return handled;
}
if (regs[ABB5ZES3_REG_CTRL3] & ABB5ZES3_REG_CTRL3_BLF) {
dev_err(dev, "RTC battery is low; please change it!\n");
_abb5zes3_rtc_battery_low_irq_enable(rtc_data->regmap, false);
handled = IRQ_HANDLED;
}
if (regs[ABB5ZES3_REG_CTRL2] & ABB5ZES3_REG_CTRL2_AF) {
dev_dbg(dev, "RTC alarm!\n");
rtc_update_irq(rtc, 1, RTC_IRQF | RTC_AF);
_abb5zes3_rtc_clear_alarm(dev);
_abb5zes3_rtc_update_alarm(dev, 0);
handled = IRQ_HANDLED;
}
if (regs[ABB5ZES3_REG_CTRL2] & ABB5ZES3_REG_CTRL2_WTAF) {
dev_dbg(dev, "RTC timer!\n");
rtc_update_irq(rtc, 1, RTC_IRQF | RTC_AF);
_abb5zes3_rtc_update_timer(dev, 0);
rtc_data->timer_alarm = 0;
handled = IRQ_HANDLED;
}
return handled;
}
static const struct rtc_class_ops rtc_ops = {
.read_time = _abb5zes3_rtc_read_time,
.set_time = abb5zes3_rtc_set_time,
.read_alarm = abb5zes3_rtc_read_alarm,
.set_alarm = abb5zes3_rtc_set_alarm,
.alarm_irq_enable = abb5zes3_rtc_alarm_irq_enable,
};
static const struct regmap_config abb5zes3_rtc_regmap_config = {
.reg_bits = 8,
.val_bits = 8,
};
static int abb5zes3_probe(struct i2c_client *client)
{
struct abb5zes3_rtc_data *data = NULL;
struct device *dev = &client->dev;
struct regmap *regmap;
int ret;
if (!i2c_check_functionality(client->adapter, I2C_FUNC_I2C |
I2C_FUNC_SMBUS_BYTE_DATA |
I2C_FUNC_SMBUS_I2C_BLOCK))
return -ENODEV;
regmap = devm_regmap_init_i2c(client, &abb5zes3_rtc_regmap_config);
if (IS_ERR(regmap)) {
ret = PTR_ERR(regmap);
dev_err(dev, "%s: regmap allocation failed: %d\n",
__func__, ret);
return ret;
}
ret = abb5zes3_i2c_validate_chip(regmap);
if (ret)
return ret;
data = devm_kzalloc(dev, sizeof(*data), GFP_KERNEL);
if (!data)
return -ENOMEM;
data->regmap = regmap;
dev_set_drvdata(dev, data);
ret = abb5zes3_rtc_check_setup(dev);
if (ret)
return ret;
data->rtc = devm_rtc_allocate_device(dev);
ret = PTR_ERR_OR_ZERO(data->rtc);
if (ret) {
dev_err(dev, "%s: unable to allocate RTC device (%d)\n",
__func__, ret);
return ret;
}
if (client->irq > 0) {
ret = devm_request_threaded_irq(dev, client->irq, NULL,
_abb5zes3_rtc_interrupt,
IRQF_SHARED | IRQF_ONESHOT,
DRV_NAME, client);
if (!ret) {
device_init_wakeup(dev, true);
data->irq = client->irq;
dev_dbg(dev, "%s: irq %d used by RTC\n", __func__,
client->irq);
} else {
dev_err(dev, "%s: irq %d unavailable (%d)\n",
__func__, client->irq, ret);
goto err;
}
}
data->rtc->ops = &rtc_ops;
data->rtc->range_min = RTC_TIMESTAMP_BEGIN_2000;
data->rtc->range_max = RTC_TIMESTAMP_END_2099;
if (!data->battery_low && data->irq) {
ret = _abb5zes3_rtc_battery_low_irq_enable(regmap, true);
if (ret) {
dev_err(dev, "%s: enabling battery low interrupt generation failed (%d)\n",
__func__, ret);
goto err;
}
}
ret = devm_rtc_register_device(data->rtc);
err:
if (ret && data->irq)
device_init_wakeup(dev, false);
return ret;
}
#ifdef CONFIG_PM_SLEEP
static int abb5zes3_rtc_suspend(struct device *dev)
{
struct abb5zes3_rtc_data *rtc_data = dev_get_drvdata(dev);
if (device_may_wakeup(dev))
return enable_irq_wake(rtc_data->irq);
return 0;
}
static int abb5zes3_rtc_resume(struct device *dev)
{
struct abb5zes3_rtc_data *rtc_data = dev_get_drvdata(dev);
if (device_may_wakeup(dev))
return disable_irq_wake(rtc_data->irq);
return 0;
}
#endif
static SIMPLE_DEV_PM_OPS(abb5zes3_rtc_pm_ops, abb5zes3_rtc_suspend,
abb5zes3_rtc_resume);
#ifdef CONFIG_OF
static const struct of_device_id abb5zes3_dt_match[] = {
{ .compatible = "abracon,abb5zes3" },
{ },
};
MODULE_DEVICE_TABLE(of, abb5zes3_dt_match);
#endif
static const struct i2c_device_id abb5zes3_id[] = {
{ "abb5zes3", 0 },
{ }
};
MODULE_DEVICE_TABLE(i2c, abb5zes3_id);
static struct i2c_driver abb5zes3_driver = {
.driver = {
.name = DRV_NAME,
.pm = &abb5zes3_rtc_pm_ops,
.of_match_table = of_match_ptr(abb5zes3_dt_match),
},
.probe = abb5zes3_probe,
.id_table = abb5zes3_id,
};
module_i2c_driver(abb5zes3_driver);
MODULE_AUTHOR("Arnaud EBALARD <arno@natisbad.org>");
MODULE_DESCRIPTION("Abracon AB-RTCMC-32.768kHz-B5ZE-S3 RTC/Alarm driver");
MODULE_LICENSE("GPL"