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I've written a simple code that converts a regular date to Julian date.

Here's the code for those who need the same conversion:

    public int convertToJulian(String unformattedDate)
    {
    /*Unformatted Date: ddmmyyyy*/
    int resultJulian = 0;
    if(unformattedDate.length() > 0)
    {
     /*Days of month*/
     int[] monthValues = {31,28,31,30,31,30,31,31,30,31,30,31};

     String dayS, monthS, yearS;
     dayS = unformattedDate.substring(0,2);
     monthS = unformattedDate.substring(3, 5);
     yearS = unformattedDate.substring(6, 10);

     /*Convert to Integer*/
     int day = Integer.valueOf(dayS);
     int month = Integer.valueOf(monthS);
     int year = Integer.valueOf(yearS); 

         //Leap year check
         if(year % 4 == 0)
         {
          monthValues[1] = 29;    
         }
         //Start building Julian date
         String julianDate = "1";
         //last two digit of year: 2012 ==> 12
         julianDate += yearS.substring(2,4);

         int julianDays = 0;
         for (int i=0; i < month-1; i++)
         {
          julianDays += monthValues[i];
         }
         julianDays += day;

             if(String.valueOf(julianDays).length() < 2)
             {
              julianDate += "00";
             }
             if(String.valueOf(julianDays).length() < 3)
             {
              julianDate += "0";
             }

        julianDate += String.valueOf(julianDays);
    resultJulian =  Integer.valueOf(julianDate);    
 }
 return resultJulian;
}

This code converts 01.01.2013 to 113001

What I want to do is to convert a Julian date to regular date without time details. For example: Julian date is 113029 ==> Regular date 29.01.2013

Please give me your ideas on how to do it.

Thanks.

share|improve this question

2 Answers 2

up vote 1 down vote accepted

If you want 113029 ==> 29.01.2013 try

    String j = "113029";
    Date date = new SimpleDateFormat("Myydd").parse(j);
    String g = new SimpleDateFormat("dd.MM.yyyy").format(date);
    System.out.println(g);

output

29.01.2013
share|improve this answer
    
That worked perfectly. Thanks!!! –  tanzer Jan 26 '13 at 11:45
public static int[] julianToGregorian(double injulian) {
    int JGREG= 15 + 31*(10+12*1582);     
    int jalpha,ja,jb,jc,jd,je,year,month,day;
    double julian = injulian + 0.5 / 86400.0;
    ja = (int) julian
    if (ja>= JGREG) {
        jalpha = (int) (((ja - 1867216) - 0.25) / 36524.25);
        ja = ja + 1 + jalpha - jalpha / 4;
    }

    jb = ja + 1524;
    jc = (int) (6680.0 + ((jb - 2439870) - 122.1) / 365.25);
    jd = 365 * jc + jc / 4;
    je = (int) ((jb - jd) / 30.6001);
    day = jb - jd - (int) (30.6001 * je);
    month = je - 1;
    if (month > 12) month = month - 12;
    year = jc - 4715;
    if (month > 2) year--;
    if (year <= 0) year--;

    return new int[] {year, month, day};
}
share|improve this answer
    
Thanks for response. I tried that function but I think it doesn't work. I sent 112304 as julian date parameter which is 30.10.2012 in regular date. It returned -4406 6 22 in an integer array. –  tanzer Jan 26 '13 at 11:02
    
It is right, check aa.usno.navy.mil/data/docs/JulianDate.php , put your julian number in the "Julian Date" field, and the result will be JD 112304.000000 is BCE 4406 June 22 12:00:00.0 UT Thursday –  BackSlash Jan 26 '13 at 11:15
    
In JD Edwards database the date in Julian is kept as 112304 where 1 is constant, 12 is year and 304 is the day of year. 112304 is 30.10.2012 but the converter that you said includes date time details and adds it which I don't want. The function you've sent is working you're right but in a way that I don't need. Thanks. –  tanzer Jan 26 '13 at 11:38
1  
@tanzer those JD Edwards dates are definitely NOT "standard Julian" dates. See this question: stackoverflow.com/questions/1171208/… –  Jose_GD May 6 at 14:51

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