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Im trying to convert a time structure to a FAT timestamp. My code looks like:

unsigned long Fat(tm_struct pTime)
{
    unsigned long FatTime = 0;

    FatTime |= (pTime.seconds / 2) >> 1;
    FatTime |= (pTime.minutes) << 5;
    FatTime |= (pTime.hours) << 11;
    FatTime |= (pTime.days) << 16;
    FatTime |= (pTime.months) << 21;
    FatTime |= (pTime.years + 20) << 25;

    return FatTime;
}

Does someone have the correct code?

share|improve this question
    
What is your problem? – user529758 Apr 2 '13 at 11:55
up vote 5 down vote accepted
The DOS date/time format is a bitmask:

               24                16                 8                 0
+-+-+-+-+-+-+-+-+ +-+-+-+-+-+-+-+-+ +-+-+-+-+-+-+-+-+ +-+-+-+-+-+-+-+-+
|Y|Y|Y|Y|Y|Y|Y|M| |M|M|M|D|D|D|D|D| |h|h|h|h|h|m|m|m| |m|m|m|s|s|s|s|s|
+-+-+-+-+-+-+-+-+ +-+-+-+-+-+-+-+-+ +-+-+-+-+-+-+-+-+ +-+-+-+-+-+-+-+-+
 \___________/\________/\_________/ \________/\____________/\_________/
    year        month       day      hour       minute        second

The year is stored as an offset from 1980. 
Seconds are stored in two-second increments. 
(So if the "second" value is 15, it actually represents 30 seconds.)

I dont know the tm_struct you are using but if it's http://www.cplusplus.com/reference/ctime/tm/ then

unsigned long FatTime = ((pTime.tm_year - 80) << 25) | 
                        (pTime.tm_mon << 21) |
                        (pTime.tm_mday << 16) |
                        (pTime.tm_hour << 11) |
                        (pTime.tm_min << 5) |
                        (pTime.tm_sec >> 1);
share|improve this answer
    
Some typecasts necessary if sizeof (int) is 2 (which can be the case here if the code is for DOS real mode). – Patrick Schlüter Apr 2 '13 at 13:02
1  
And btw it would be also better to cast to an unsigned type, as shifting of signed types is not completely portable. – Patrick Schlüter Apr 2 '13 at 13:04
    
Is FAT timestamp in UTC or local time zone? – rustyx Apr 22 at 7:57

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