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A string "2012-03-02" representing March 2nd, 2012 is given to me as an input variable (char *).

How do I convert this date into unix epoch time in C programming language?

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4 Answers 4

up vote 2 down vote accepted

C (POSIX) provides a function for this. Use strptime() to convert the string into a struct tm value. You can then convert the struct tm into time_t using mktime().

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That's not standard, C, it's POSIX. – Matteo Italia Mar 3 '12 at 0:42

Local time or UTC? If it's UTC, the easiest way to do the conversion is to avoid the C time API entirely and use the formula in POSIX for seconds since the epoch:

tm_sec + tm_min*60 + tm_hour*3600 + tm_yday*86400 +
    (tm_year-70)*31536000 + ((tm_year-69)/4)*86400 -
    ((tm_year-1)/100)*86400 + ((tm_year+299)/400)*86400


If it's local time, the problem turns into hell due to the fact that time_t is not guaranteed to be represented as seconds since the epoch except on POSIX systems, and the fact that it's difficult to compute a time_t value corresponding to the epoch (mktime will not work because it uses local time). Once you compute the time_t for the epoch, though, it's just a matter of using mktime for the time value you parsed and then calling difftime.

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Read it into a struct tm and call mktime to get your time_t.

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Extract the pieces with an sscanf, populate struct tm (from <time.h>) with the data extracted, and finally use mktime to convert it to time_t.

time_t ParseDate(const char * str)
    struct tm ti={0};
    if(sscanf("%d-%d-%d", &ti.tm_year, &ti.tm_mon, &ti.tm_day)!=3)
        /* ... error parsing ... */
    return mktime(&ti);
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