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How would one go about calculating a date from a day-number in C++? I don't require you to write the whole code, I just can't figure out the maths to calculate the month and the day-of-month!

Example:

input: 1
output: 01/01/2012

input: 10
output: 01/10/2012

input: 365
output: 12/31/2012

It would always use the current year, if they exceeded 365, I would return 0. There is no need for a leap-year detection.

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1  
Without a library function, I've never found a way to do this without a lookup table. 12 entries, each with # of days in the year up to that month. Then just get the month, look it up and add the day. –  Mark Stevens Nov 6 '12 at 0:27

3 Answers 3

up vote 6 down vote accepted

Use a date calc library as e.g. the fine Boost Date_Time library with which this becomes

using namespace boost::gregorian;
date d(2012,Jan,1);                     // or one of the other constructors
date d2 = d + days(365);                // or your other offsets
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+1 for not reinventing the wheel over and over again. –  gvd Nov 6 '12 at 1:10
    
It was so stupid of me to think people wrote such libraries only for languages as JavaScript, Ruby or such. I feel shame now! –  destiel starship Nov 7 '12 at 0:16

It's not even very hard with the standard library. Forgive me if I write C++ code like a C programmer (the C++ <ctime> has no reentrant gmtime function):

#include <time.h>
#include <cstdio>

int main(int argc, char *argv[])
{
    tm t;
    int daynum = 10;

    time_t now = time(NULL);
    gmtime_r(&now, &t);
    t.tm_sec = 0;
    t.tm_min = 0;
    t.tm_hour = 0;
    t.tm_mday = 1;
    t.tm_mon = 1;
    time_t ref = mktime(&t);
    time_t day = ref + (daynum - 1) * 86400;
    gmtime_r(&day, &t);
    std::printf("%02d/%02d/%04d\n", t.tm_mon, t.tm_mday, 1900 + t.tm_year);

    return 0;
}

Sorry, I don't know a sane way to do this without leap-year detection.

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A simple snippet from a program, assuming 365 days in a year:

int input, day, month = 0, months[13] = {0, 31, 59, 90, 120, 151, 181, 212, 243, 273, 304, 334, 365};

while (input > 365) {
    // Parse the input to be less than or equal to 365
    input -= 365;
}

while (months[month] < input) {
    // Figure out the correct month.
    month++;
}

// Get the day thanks to the months array
day = input - months[month - 1];
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