day Of Year

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Computes the Gregorian day of the year from a serial Julian date.

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DayOfYear
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Interface

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dayOfYear Computes the Gregorian day of the year from a serial Julian date.	<script type="text/javascript" src="http://www.codecogs.com/ic_json-198&u=3"></script>

DayOfYear

Day Of Year Calculator

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intdayOfYear( int nDate )[inline]

This function calculates the day of the year from a serial date, such that 1st January = 1 and 31st December = 365 or 366 in a leap year. The Gregorian calendar is assumed for these calculations. The most general solution for our Julian mode is:

$a = (nDate + 31738)\ mod\ 146097\ mod\ 36524\ mod\ 1461$

(1)

$b = a/1460$

(2)

$DayOfYear = (a-b)\ mod\ 365 + b + 1$

(3)

where nDate is equal to the Julian Period, and all division are integer divisions.

Example 1

#include <stdio.h>
#include <codecogs/units/date/dayofyear.h>
#include <codecogs/units/date/date.h>
using namespace Units::Date;
 
int main()
{
  for(int i=5;i<15;i++)
  {
    int adate=date(2004, 2, i);
    printf("\n %d February 2004 is %d day of year", i, dayOfYear(adate));
  }
  return 0;
}

Parameters

nDate

is a serial number of days from 24 November 4714 BC (1 January 4713BC in the Julian Calendar) - also known as the Julian Period.

Authors

Will Bateman (Oct 2004)

Source Code

Source code is available when you agree to a GP Licence or buy a Commercial Licence.

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