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dc6f57f19c
This only has second accuracy right now, I'll work out subseconds later.
90 lines
1.9 KiB
C++
90 lines
1.9 KiB
C++
#include "RTC.h"
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#include "CMOS.h"
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namespace RTC {
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static time_t s_bootTime;
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void initialize()
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{
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byte cmosMode = CMOS::read(0x0b);
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cmosMode |= 2; // 24 hour mode
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cmosMode |= 4; // No BCD mode
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CMOS::write(0x0b, cmosMode);
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s_bootTime = now();
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}
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time_t bootTime()
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{
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return s_bootTime;
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}
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static bool updateInProgress()
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{
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return CMOS::read(0x0a) & 0x80;
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}
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inline bool isLeapYear(unsigned year)
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{
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return ((year % 4 == 0) && ((year % 100 != 0) || (year % 400) == 0));
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}
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static unsigned daysInMonthsSinceStartOfYear(unsigned month, unsigned year)
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{
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switch (month) {
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case 11: return 30;
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case 10: return 31;
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case 9: return 30;
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case 8: return 31;
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case 7: return 31;
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case 6: return 30;
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case 5: return 31;
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case 4: return 30;
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case 3: return 31;
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case 2:
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if (isLeapYear(year))
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return 29;
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return 28;
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case 1: return 31;
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default: return 0;
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}
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}
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static unsigned daysInYearsSinceEpoch(unsigned year)
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{
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unsigned days = 0;
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while (year > 1969) {
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days += 365;
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if (isLeapYear(year))
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++days;
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--year;
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}
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return days;
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}
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time_t now()
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{
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// FIXME: We should probably do something more robust here.
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// Perhaps read all the values twice and verify that they were identical.
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// We don't want to be caught in the middle of an RTC register update.
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while (updateInProgress())
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;
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unsigned year = (CMOS::read(0x32) * 100) + CMOS::read(0x09);
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unsigned month = CMOS::read(0x08);
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unsigned day = CMOS::read(0x07);
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unsigned hour = CMOS::read(0x04);
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unsigned minute = CMOS::read(0x02);
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unsigned second = CMOS::read(0x00);
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return daysInYearsSinceEpoch(year - 1) * 86400
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+ daysInMonthsSinceStartOfYear(month - 1, year) * 86400
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+ day * 86400
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+ hour * 3600
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+ minute * 60
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+ second;
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}
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}
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