/* ----------------------------------------------------------------------------
* ATMEL Microcontroller Software Support
* ----------------------------------------------------------------------------
* Copyright (c) 2009, Atmel Corporation
*
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/** \addtogroup rtc_module Working with RTC
* The RTC driver provides the interface to configure and use the RTC
* peripheral.
*
* It manages date, time, and alarms.\n
* This timer is clocked by the 32kHz system clock, and is not impacted by
* power management settings (PMC). To be accurate, it is better to use an
* external 32kHz crystal instead of the internal 32kHz RC.\n
*
* It uses BCD format, and time can be set in AM/PM or 24h mode through a
* configuration bit in the mode register.\n
*
* To update date or time, the user has to follow these few steps :
*
* - Set UPDTIM and/or UPDCAL bit(s) in RTC_CR,
* - Polling or IRQ on the ACKUPD bit of RTC_CR,
* - Clear ACKUPD bit in RTC_SCCR,
* - Update Time and/or Calendar values in RTC_TIMR/RTC_CALR (BCD format),
* - Clear UPDTIM and/or UPDCAL bit in RTC_CR.
*
* An alarm can be set to happen on month, date, hours, minutes or seconds,
* by setting the proper "Enable" bit of each of these fields in the Time and
* Calendar registers.
* This allows a large number of configurations to be available for the user.
* Alarm occurence can be detected even by polling or interrupt.
*
* A check of the validity of the date and time format and values written by the user is automatically done.
* Errors are reported through the Valid Entry Register.
*
* For more accurate information, please look at the RTC section of the
* Datasheet.
*
* Related files :\n
* \ref rtc.c\n
* \ref rtc.h.\n
*/
/*@{*/
/*@}*/
/**
* \file
*
* Implementation of Real Time Clock (RTC) controller.
*
*/
/*----------------------------------------------------------------------------
* Headers
*----------------------------------------------------------------------------*/
/* These headers were introduced in C99 by working group ISO/IEC JTC1/SC22/WG14. */
#include
#include "rtc.h"
#include
#include
#include
/*----------------------------------------------------------------------------
* Exported functions
*----------------------------------------------------------------------------*/
/**
* \brief Sets the RTC in either 12 or 24 hour mode.
*
* \param mode Hour mode.
*/
void RTC_SetHourMode(uint32_t mode)
{
SANITY_CHECK((mode & 0xFFFFFFFE) == 0);
TRACE_DEBUG("RTC_SetHourMode()\n\r");
RTC->RTC_MR = mode;
}
/**
* \brief Gets the RTC mode.
*
* \return Hour mode.
*/
uint32_t RTC_GetHourMode( void )
{
uint32_t hmode;
TRACE_DEBUG("RTC_SetHourMode()\n\r");
hmode = RTC->RTC_MR;
hmode &= 0xFFFFFFFE;
return hmode;
}
/**
* \brief Enables the selected interrupt sources of the RTC.
*
* \param sources Interrupt sources to enable.
*/
void RTC_EnableIt(uint32_t sources)
{
SANITY_CHECK((sources & ~0x1F) == 0);
TRACE_DEBUG("RTC_EnableIt()\n\r");
RTC->RTC_IER = sources;
}
/**
* \brief Disables the selected interrupt sources of the RTC.
*
* \param sources Interrupt sources to disable.
*/
void RTC_DisableIt(uint32_t sources)
{
SANITY_CHECK((sources & ~0x1F) == 0);
TRACE_DEBUG("RTC_DisableIt()\n\r");
RTC->RTC_IDR = sources;
}
/**
* \brief Sets the current time in the RTC.
*
* \param hour Current hour in 12 or 24 hour mode.
* \param minute Current minute.
* \param second Current second.
* \return 0 sucess, 1 fail to set
*/
int RTC_SetTime(uint8_t hour, uint8_t minute, uint8_t second)
{
uint32_t time=0;
uint8_t hour_bcd;
uint8_t min_bcd;
uint8_t sec_bcd;
TRACE_DEBUG("RTC_SetTime(%02d:%02d:%02d)\n\r", hour, minute, second);
/* if 12-hour mode, set AMPM bit */
if ((RTC->RTC_MR & RTC_MR_HRMOD) == RTC_MR_HRMOD) {
if (hour > 12) {
hour -= 12;
time |= RTC_TIMR_AMPM;
}
}
hour_bcd = (hour%10) | ((hour/10)<<4);
min_bcd = (minute%10) | ((minute/10)<<4);
sec_bcd = (second%10) | ((second/10)<<4);
/* value overflow */
if((hour_bcd & (uint8_t)(~RTC_HOUR_BIT_LEN_MASK)) |
(min_bcd & (uint8_t)(~RTC_MIN_BIT_LEN_MASK)) |
(sec_bcd & (uint8_t)(~RTC_SEC_BIT_LEN_MASK)))
return 1;
time = sec_bcd | (min_bcd << 8) | (hour_bcd<<16);
/* Set time */
while ((RTC->RTC_SR & RTC_SR_SEC) != RTC_SR_SEC); /* wait from previous set */
RTC->RTC_CR |= RTC_CR_UPDTIM;
while ((RTC->RTC_SR & RTC_SR_ACKUPD) != RTC_SR_ACKUPD);
RTC->RTC_SCCR = RTC_SCCR_ACKCLR;
RTC->RTC_TIMR = time;
RTC->RTC_CR &= ~RTC_CR_UPDTIM;
RTC->RTC_SCCR |= RTC_SCCR_SECCLR; /* clear SECENV in SCCR */
return (int)(RTC->RTC_VER & RTC_VER_NVTIM);
}
/**
* \brief Retrieves the current time as stored in the RTC in several variables.
*
* \param pHour If not null, current hour is stored in this variable.
* \param pMinute If not null, current minute is stored in this variable.
* \param pSecond If not null, current second is stored in this variable.
*/
void RTC_GetTime(
uint8_t *pHour,
uint8_t *pMinute,
uint8_t *pSecond)
{
uint32_t time;
TRACE_DEBUG("RTC_GetTime()\n\r");
/* Get current RTC time */
time = RTC->RTC_TIMR;
while (time != RTC->RTC_TIMR) {
time = RTC->RTC_TIMR;
}
/* Hour */
if (pHour) {
*pHour = ((time & 0x00300000) >> 20) * 10
+ ((time & 0x000F0000) >> 16);
if ((time & RTC_TIMR_AMPM) == RTC_TIMR_AMPM) {
*pHour += 12;
}
}
/* Minute */
if (pMinute) {
*pMinute = ((time & 0x00007000) >> 12) * 10
+ ((time & 0x00000F00) >> 8);
}
/* Second */
if (pSecond) {
*pSecond = ((time & 0x00000070) >> 4) * 10
+ (time & 0x0000000F);
}
}
/**
* \brief Sets a time alarm on the RTC.
* The match is performed only on the provided variables;
* Setting all pointers to 0 disables the time alarm.
*
* \note In AM/PM mode, the hour value must have bit #7 set for PM, cleared for
* AM (as expected in the time registers).
*
* \param pHour If not null, the time alarm will hour-match this value.
* \param pMinute If not null, the time alarm will minute-match this value.
* \param pSecond If not null, the time alarm will second-match this value.
* \return 0 success, 1 fail to set
*/
int RTC_SetTimeAlarm(
uint8_t *pHour,
uint8_t *pMinute,
uint8_t *pSecond)
{
uint32_t alarm = 0;
TRACE_DEBUG("RTC_SetTimeAlarm()\n\r");
/* Hour */
if (pHour) {
alarm |= RTC_TIMALR_HOUREN | ((*pHour / 10) << 20) | ((*pHour % 10) << 16);
}
/* Minute */
if (pMinute) {
alarm |= RTC_TIMALR_MINEN | ((*pMinute / 10) << 12) | ((*pMinute % 10) << 8);
}
/* Second */
if (pSecond) {
alarm |= RTC_TIMALR_SECEN | ((*pSecond / 10) << 4) | (*pSecond % 10);
}
RTC->RTC_TIMALR = alarm;
return (int)(RTC->RTC_VER & RTC_VER_NVTIMALR);
}
/**
* \brief Retrieves the current year, month and day from the RTC.
* Month, day and week values are numbered starting at 1.
*
* \param pYear Current year (optional).
* \param pMonth Current month (optional).
* \param pDay Current day (optional).
* \param pWeek Current day in current week (optional).
*/
void RTC_GetDate(
unsigned short *pYear,
uint8_t *pMonth,
uint8_t *pDay,
uint8_t *pWeek)
{
uint32_t date;
/* Get current date (multiple reads are necessary to insure a stable value) */
do {
date = RTC->RTC_CALR;
}
while (date != RTC->RTC_CALR);
/* Retrieve year */
if (pYear) {
*pYear = (((date >> 4) & 0x7) * 1000)
+ ((date & 0xF) * 100)
+ (((date >> 12) & 0xF) * 10)
+ ((date >> 8) & 0xF);
}
/* Retrieve month */
if (pMonth) {
*pMonth = (((date >> 20) & 1) * 10) + ((date >> 16) & 0xF);
}
/* Retrieve day */
if (pDay) {
*pDay = (((date >> 28) & 0x3) * 10) + ((date >> 24) & 0xF);
}
/* Retrieve week */
if (pWeek) {
*pWeek = ((date >> 21) & 0x7);
}
}
/**
* \brief Sets the current year, month and day in the RTC.
* Month, day and week values must be numbered starting from 1.
*
* \param year Current year.
* \param month Current month.
* \param day Current day.
* \param week Day number in current week.
* \return 0 success, 1 fail to set
*/
int RTC_SetDate(
unsigned short year,
uint8_t month,
uint8_t day,
uint8_t week)
{
uint32_t date;
uint8_t cent_bcd;
uint8_t year_bcd;
uint8_t month_bcd;
uint8_t day_bcd;
uint8_t week_bcd;
cent_bcd = ((year/100)%10) | ((year/1000)<<4);
year_bcd = (year%10) | (((year/10)%10)<<4);
month_bcd = ((month%10) | (month/10)<<4);
day_bcd = ((day%10) | (day/10)<<4);
week_bcd = ((week%10) | (week/10)<<4);
/* value over flow */
if((cent_bcd & (uint8_t)(~RTC_CENT_BIT_LEN_MASK)) |
(year_bcd & (uint8_t)(~RTC_YEAR_BIT_LEN_MASK)) |
(month_bcd & (uint8_t)(~RTC_MONTH_BIT_LEN_MASK)) |
(week_bcd & (uint8_t)(~RTC_WEEK_BIT_LEN_MASK)) |
(day_bcd & (uint8_t)(~RTC_DATE_BIT_LEN_MASK)))
return 1;
/* Convert values to date register value */
date = cent_bcd |
(year_bcd << 8) |
(month_bcd << 16) |
(week_bcd << 21) |
(day_bcd << 24);
/* Update calendar register */
while ((RTC->RTC_SR & RTC_SR_SEC) != RTC_SR_SEC); /* wait from previous set */
RTC->RTC_CR |= RTC_CR_UPDCAL;
while ((RTC->RTC_SR & RTC_SR_ACKUPD) != RTC_SR_ACKUPD);
RTC->RTC_SCCR = RTC_SCCR_ACKCLR;
RTC->RTC_CALR = date;
RTC->RTC_CR &= ~RTC_CR_UPDCAL;
RTC->RTC_SCCR |= RTC_SCCR_SECCLR; /* clear SECENV in SCCR */
return (int)(RTC->RTC_VER & RTC_VER_NVCAL);
}
/**
* \brief Sets a date alarm in the RTC.
* The alarm will match only the provided values;
* Passing a null-pointer disables the corresponding field match.
*
* \param pMonth If not null, the RTC alarm will month-match this value.
* \param pDay If not null, the RTC alarm will day-match this value.
* \return 0 success, 1 fail to set
*/
int RTC_SetDateAlarm(uint8_t *pMonth, uint8_t *pDay)
{
uint32_t alarm;
alarm = ((pMonth) || (pDay)) ? (0) : (0x01010000);
TRACE_DEBUG("RTC_SetDateAlarm()\n\r");
/* Compute alarm field value */
if (pMonth) {
alarm |= RTC_CALALR_MTHEN | ((*pMonth / 10) << 20) | ((*pMonth % 10) << 16);
}
if (pDay) {
alarm |= RTC_CALALR_DATEEN | ((*pDay / 10) << 28) | ((*pDay % 10) << 24);
}
/* Set alarm */
RTC->RTC_CALALR = alarm;
return (int)(RTC->RTC_VER & RTC_VER_NVCALALR);
}
/**
* \brief Clear flag bits of status clear command register in the RTC.
*
* \param mask Bits mask of cleared events
*/
void RTC_ClearSCCR(uint32_t mask)
{
/* Clear all flag bits in status clear command register */
mask &= RTC_SCCR_ACKCLR | RTC_SCCR_ALRCLR | RTC_SCCR_SECCLR | \
RTC_SCCR_TIMCLR | RTC_SCCR_CALCLR;
RTC->RTC_SCCR = mask;
}
/**
* \brief Get flag bits of status register in the RTC.
*
* \param mask Bits mask of Status Register
* \return Status register & mask
*/
uint32_t RTC_GetSR(uint32_t mask)
{
uint32_t event;
event = RTC->RTC_SR;
return (event & mask);
}