forked from len0rd/rockbox
imx233: implement alarm wake up
This adds the application part of alarm wake up. On some targets like the Fuze+, it will also require a bootloader change to make sure that the device doesn't power down on alarm wake up (for example on the Fuze+ the bootloader requires the power button to be hold sufficiently long, thus preventing alarm wake up to work) Change-Id: I5d01957852355fddbd48110d3d75a5533f07879e
This commit is contained in:
parent
2773673733
commit
d8024df105
3 changed files with 67 additions and 12 deletions
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@ -28,15 +28,18 @@
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#define YEAR1980 315532800 /* 1980/1/1 00:00:00 in UTC */
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#define YEAR1980 315532800 /* 1980/1/1 00:00:00 in UTC */
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#if defined(SANSA_FUZEPLUS) || defined(CREATIVE_ZENXFI3)
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#define USE_PERSISTENT
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#endif
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void rtc_init(void)
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void rtc_init(void)
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{
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{
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/* rtc-imx233 is initialized by the system */
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/* rtc-imx233 is initialized by the system */
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}
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}
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int rtc_read_datetime(struct tm *tm)
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static void seconds_to_datetime(uint32_t seconds, struct tm *tm)
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{
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{
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uint32_t seconds = imx233_rtc_read_seconds();
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#ifdef USE_PERSISTENT
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#if defined(SANSA_FUZEPLUS) || defined(CREATIVE_ZENXFI3)
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/* The OF uses PERSISTENT2 register to keep the adjustment and only changes
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/* The OF uses PERSISTENT2 register to keep the adjustment and only changes
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* SECONDS if necessary. */
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* SECONDS if necessary. */
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seconds += imx233_rtc_read_persistent(2);
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seconds += imx233_rtc_read_persistent(2);
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@ -47,7 +50,11 @@ int rtc_read_datetime(struct tm *tm)
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#endif
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#endif
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gmtime_r(&seconds, tm);
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gmtime_r(&seconds, tm);
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}
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int rtc_read_datetime(struct tm *tm)
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{
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seconds_to_datetime(imx233_rtc_read_seconds(), tm);
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return 0;
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return 0;
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}
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}
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@ -57,7 +64,7 @@ int rtc_write_datetime(const struct tm *tm)
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seconds = mktime((struct tm *)tm);
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seconds = mktime((struct tm *)tm);
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#if defined(SANSA_FUZEPLUS) || defined(CREATIVE_ZENXFI3)
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#ifdef USE_PERSISTENT
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/* The OF uses PERSISTENT2 register to keep the adjustment and only changes
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/* The OF uses PERSISTENT2 register to keep the adjustment and only changes
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* SECONDS if necessary.
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* SECONDS if necessary.
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* NOTE: the OF uses this mechanism to prevent roll back in time. Although
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* NOTE: the OF uses this mechanism to prevent roll back in time. Although
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@ -75,28 +82,58 @@ int rtc_write_datetime(const struct tm *tm)
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void rtc_set_alarm(int h, int m)
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void rtc_set_alarm(int h, int m)
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{
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{
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(void) h;
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/* transform alarm time to absolute time */
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(void) m;
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struct tm tm;
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seconds_to_datetime(imx233_rtc_read_seconds(), &tm);
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/* if same date and hour/min is in the past, advance one day */
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if(h < tm.tm_hour || (h == tm.tm_hour && m <= tm.tm_min))
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seconds_to_datetime(imx233_rtc_read_seconds() + 3600 * 60, &tm);
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tm.tm_hour = h;
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tm.tm_min = m;
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tm.tm_sec = 0;
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uint32_t seconds = mktime(&tm);
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#ifdef USE_PERSISTENT
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imx233_rtc_write_alarm(seconds - imx233_rtc_read_persistent(2));
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#else
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imx233_rtc_write_alarm(seconds - YEAR1980);
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#endif
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}
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}
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void rtc_get_alarm(int *h, int *m)
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void rtc_get_alarm(int *h, int *m)
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{
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{
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(void) h;
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struct tm tm;
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(void) m;
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seconds_to_datetime(imx233_rtc_read_alarm(), &tm);
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*m = tm.tm_min;
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*h = tm.tm_hour;
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}
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}
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void rtc_enable_alarm(bool enable)
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void rtc_enable_alarm(bool enable)
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{
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{
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(void) enable;
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BF_CLR(RTC_CTRL, ALARM_IRQ_EN);
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BF_CLR(RTC_CTRL, ALARM_IRQ);
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uint32_t val = imx233_rtc_read_persistent(0);
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BF_WRX(val, RTC_PERSISTENT0, ALARM_EN, enable);
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BF_WRX(val, RTC_PERSISTENT0, ALARM_WAKE_EN, enable);
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BF_WRX(val, RTC_PERSISTENT0, ALARM_WAKE, 0);
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imx233_rtc_write_persistent(0, val);
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}
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}
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/**
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* Check if alarm caused unit to start.
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*/
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bool rtc_check_alarm_started(bool release_alarm)
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bool rtc_check_alarm_started(bool release_alarm)
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{
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{
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(void) release_alarm;
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bool res = BF_RDX(imx233_rtc_read_persistent(0), RTC_PERSISTENT0, ALARM_WAKE);
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return false;
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if(release_alarm)
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rtc_enable_alarm(false);
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return res;
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}
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}
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/**
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* Checks if an alarm interrupt has triggered since last we checked.
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*/
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bool rtc_check_alarm_flag(void)
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bool rtc_check_alarm_flag(void)
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{
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{
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return false;
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return BF_RD(RTC_CTRL, ALARM_IRQ);
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}
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}
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@ -38,6 +38,11 @@ void imx233_rtc_write_persistent(int idx, uint32_t val)
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imx233_rtc_write_reg(&HW_RTC_PERSISTENTn(idx), val);
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imx233_rtc_write_reg(&HW_RTC_PERSISTENTn(idx), val);
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}
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}
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void imx233_rtc_write_alarm(uint32_t seconds)
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{
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imx233_rtc_write_reg(&HW_RTC_ALARM, seconds);
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}
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struct imx233_rtc_info_t imx233_rtc_get_info(void)
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struct imx233_rtc_info_t imx233_rtc_get_info(void)
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{
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{
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struct imx233_rtc_info_t info;
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struct imx233_rtc_info_t info;
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@ -45,5 +50,10 @@ struct imx233_rtc_info_t imx233_rtc_get_info(void)
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info.seconds = HW_RTC_SECONDS;
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info.seconds = HW_RTC_SECONDS;
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for(int i = 0; i < 6; i++)
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for(int i = 0; i < 6; i++)
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info.persistent[i] = HW_RTC_PERSISTENTn(i);
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info.persistent[i] = HW_RTC_PERSISTENTn(i);
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info.alarm = imx233_rtc_read_alarm();
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info.alarm_en = BF_RD(RTC_PERSISTENT0, ALARM_EN);
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info.alarm_wake_en = BF_RD(RTC_PERSISTENT0, ALARM_WAKE_EN);
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info.alarm_wake = BF_RD(RTC_PERSISTENT0, ALARM_WAKE);
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info.alarm_irq = BF_RD(RTC_CTRL, ALARM_IRQ);
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return info;
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return info;
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}
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}
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@ -33,6 +33,8 @@ struct imx233_rtc_info_t
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{
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{
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uint32_t seconds;
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uint32_t seconds;
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uint32_t persistent[6];
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uint32_t persistent[6];
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uint32_t alarm;
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bool alarm_en, alarm_wake_en, alarm_wake, alarm_irq;
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};
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};
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static inline void imx233_rtc_init(void)
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static inline void imx233_rtc_init(void)
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@ -64,8 +66,14 @@ static inline void imx233_rtc_enable_msec_irq(bool enable)
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BF_CLR(RTC_CTRL, ONEMSEC_IRQ_EN);
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BF_CLR(RTC_CTRL, ONEMSEC_IRQ_EN);
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}
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}
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static inline uint32_t imx233_rtc_read_alarm(void)
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{
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return HW_RTC_ALARM;
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}
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void imx233_rtc_write_seconds(uint32_t seconds);
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void imx233_rtc_write_seconds(uint32_t seconds);
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void imx233_rtc_write_persistent(int idx, uint32_t val);
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void imx233_rtc_write_persistent(int idx, uint32_t val);
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void imx233_rtc_write_alarm(uint32_t seconds);
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struct imx233_rtc_info_t imx233_rtc_get_info(void);
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struct imx233_rtc_info_t imx233_rtc_get_info(void);
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