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Here's an PHP example to go from Julian date to Gregorian date:

$jd = gregoriantojd(10,3,1975);
echo($jd . "<br />");

$gregorian = jdtogregorian($jd);


This works if you have the full Julian date, but what if you only have a Julian day like '254' and the year '2012'? How do you get to a Gregorian date with just the Julian day and Gregorian year with PHP?

Here's a graph of Julian days:

Is this possible with PHP?

Edit: Based on the answers, here's what I came up with, although there may be an easier way:

$JulianDay = 77;
$Year = 1977;
$DateYear = date("Y/m/d", mktime(0, 0, 0, 1, 1, $Year));
$GregDate = new DateTime($DateYear);
$GregDate->modify("+$JulianDay day");
$Date = $GregDate->format('Y/m/d');
echo $Date; // '1977/03/19'
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2 Answers 2

up vote 1 down vote accepted
echo jdtogregorian(gregoriantojd(01, 01, 2012)+253);

If 254 in 2012 is September 10 (it seems like it from your link) it works fine.

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This was off by one day for some reason... couldn't figure out why though. Thanks though this helped me get unstuck. – user1636317 Aug 30 '12 at 20:30
My code generate the julian date for the first of january in the given year. Since the first of january is always 1 in julian, you have to subtract 1 from your julian day before the addition to get the correct result. I'm glad I could help; you can accept my answer to show your gratitude ;) – aswyx Aug 31 '12 at 7:01
$date = strtotime('+'.YourDay.' days', mktime(0, 0, 0, 0, 0, YourYear));

strtotime is and incredible function

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This was off for some reason... couldn't figure out why, but probably user error. Thanks anyway! – user1636317 Aug 30 '12 at 20:29

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