Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Continuing on my attempt to create a DateTime class , I am trying to store the "epoch" time in my function:

void DateTime::processComponents(int month, int day, int year, 
                                 int hour, int minute, int second) {
    struct tm time;
    time.tm_hour = hour;
    time.tm_min = minute;
    time.tm_sec = second;
    time.tm_mday = day;
    time.tm_mon = month;
    time.tm_year = year - 1900;
    ticks_ = mktime(&time);

    processTm(time);
}

void DateTime::processTm(struct tm time) {
    second_ = time.tm_sec;
    minute_ = time.tm_min;
    hour_ = time.tm_hour;
    weekday_ = time.tm_wday;
    monthday_ = time.tm_mday;
    yearday_ = time.tm_yday;
    month_ = time.tm_mon;
    year_ = time.tm_year + 1900;
}

For an arbitrary date, processComponents(5,5,1990,1,23,45) (June 6, 1990 1:23:45 am), it sets all values correctly and as expected.

However, upon further testing, I find that for processComponents(0,0,1970,0,0,0) (January 1, 1970, 12:00:00 am), mktime(&time) causes time to be screwed up:

time.tm_mon  = 11;
time.tm_mday = 30;
time.tm_year = 69;
time.tm_hour = 23;
time.tm_min  = 0;
time.tm_sec  = 0;

time.tm_isdst  = 0;
time.tm_gmtoff = -18000;
time.tm_zone   = "EST";
time.tm_wday   = 2;
time.tm_yday   = 363;

Translating to a date of December 31, 1969 11:00:00 pm.

I can verify that mktime() is responsible, because by commenting out that line, it reports the date and time correctly as January 1, 1970 12:00:00 am.

Why is mktime() only messing up the epoch? And how should I fix / workaround this?

Thanks!

share|improve this question

3 Answers 3

up vote 5 down vote accepted

You're passing 0 as the day parameter and putting that into time.tm_mday. That component (and only that component) of struct tm is 1-based, not 0-based.

Don't ask me why.

To specify 01 Jan 1970, 12:00:00am you'd want to call it like so:

processComponents(0,1,1970,0,0,0);

And as sdtom mentioned, you'll want to make sure that tm_isdst is set appropriately - 0 for not in effect, positive for in effect, and negative for you don't know (in which case mktime() should try to guess).

Just to let you know, when I pass the date you have (0 Jan 1970, 00:00:00) to mktime() in MSVC 9 it returns an error (the passed in struct tm is untouched and the returned time_t value is -1).

share|improve this answer
    
Thanks! When I explicitly set time.tm_isdst = -1 everything works. –  Austin Hyde Nov 8 '09 at 7:29

Since it is off by one hour I would expect daylight savings time. Is the value of time.tm_isdst getting set somewhere? If you aren't setting it, it could be randomly getting set to 1 or 0 which would affect your results.

share|improve this answer
    
+1. I was thinking along the same lines. According to Python (on Mac OS X), gmtime(0) returns: time.struct_time(tm_year=1970, tm_mon=1, tm_mday=1, tm_hour=0, tm_min=0, tm_sec=0, tm_wday=3, tm_yday=1, tm_isdst=0). I'm not sure what that proves, though, because Python does some translation of struct tm when it builds a time.struct_time object. –  Daniel Pryden Nov 8 '09 at 4:57
    
tm_isdst is reporting 0. I have updated the post to reflect the rest of the time structure, according to my debugger. –  Austin Hyde Nov 8 '09 at 5:24
    
specify -1 for it as you are not setting it anywhere and don't know it :) –  rama-jka toti Nov 8 '09 at 10:41

Passing all zeros to mktime() is interpreted as "Sun Jan 0 00:00:00 1900". Based on this, there needs to be some adjustments...

// the input is local time
// the output is seconds since the epoch
// The epoch is Jan 1, 1970 @ 0:00 GMT
time_t mktime_wrapper( int month, int day, int year,
                       int hour=0, int min=0, int sec=0, bool isDST=-1
                     )
   {
   tm t;
   t.tm_sec=sec, t.tm_min=min, t.tm_hour=hour, t.tm_isdst=isDST;
   t.tm_mday=day, t.tm_mon=month-1, t.tm_year=year-1900;
   return mktime( &t );
   }
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.