12

How do you go in php from a nth day in the year to the date like:

getdatefromday(275, 2012) 

and it outputs a date (better if an object).

And I'd like to do the opposite too, like getdayoftheyear("21 oct 2012")

20

This is pretty easy all around. You should read up on the DateTime object's createFromFormat static method here, the date function here and the strtotime function here.

// This should get you a DateTime object from the date and year.
function getDateFromDay($dayOfYear, $year) {
  $date = DateTime::createFromFormat('z Y', strval($dayOfYear) . ' ' . strval($year));
  return $date;
}

// This should get you the day of the year and the year in a string.
date('z Y', strtotime('21 oct 2012'));
  • 1
    You should inverse the format order due to a known bug since php 5.3.9 with leap days: DateTime::createFromFormat('Y z', strval($year) . ' ' . strval($dayOfYear)); – mrohnstock May 31 '16 at 7:51
3

Try(days starts from 0 not 1):

$date = DateTime::createFromFormat( 'Y z' , '2012 275');
var_dump($date);

and that:

echo date('z', strtotime('21 oct 2012'));
  • 1
    This is the correct answer. Using the format 'z Y' causes a bug that results in skipping Leap Years in php 5.4+. The 'Y z' format is the workaround. see: bugs.php.net/bug.php?id=62476 – mcmurphy Apr 10 '17 at 22:37
2
$todayid = date("z");  // to get today's day of year

function dayofyear2date( $tDay, $tFormat = 'd-m-Y' ) {
$day = intval( $tDay );
$day = ( $day == 0 ) ? $day : $day - 1;
$offset = intval( intval( $tDay ) * 86400 );
$str = date( $tFormat, strtotime( 'Jan 1, ' . date( 'Y' ) ) + $offset );
return( $str );
}

echo dayofyear2date($todayid);

day of year

  • I believe he wanted to get a date from the day and the year. Not just the day. – Steven Oxley Mar 16 '12 at 10:45
  • This can still be useful for old systems that do not yet have access to DateTime. I've updated the code, which had some issues, and added support for a year attribute as well. – Exit Jun 9 '16 at 22:25
1

I know it's a bit old and the answer has already been accepted, but I wanted to put here an alternative way to do it, trying to use the exact formats required by the question owner:

// This gets the day of the year number
// given a formatted date string like
// "21 oct 2012"
function getdayoftheyear($dateString) {
  date('z', strtotime($dateString));
}

The other way around:

// This gets the date formatted in $dateFormat way
// like "Y-m-d"
// given the $dayOfTheYear and the $year in numeric form
function getdatefromday($dateFormat, $dayOfTheYear, $year) {
  date($dateFormat, mktime(0, 0, 0, 1, ($dayOfTheYear + 1), $year));
}

This second function uses a feature of mktime(), allowing to set whatever numbers in parameters list, because it manages overflows finding by itself the right month. So if you call mktime(0, 0, 0, 1, 32, 2015) it actually knows that the 32nd day of the 1st month is the 1st day of the 2dn month, and so on.

0

You can use strtotime() to get the amount of seconds for the year value ( http://de2.php.net/manual/en/function.strtotime.php). Than at the amount of days in seconds (day * 24 * 60 * 60). Now you can use this value with date() (see first answer)

0
function DayToTimestamp($day, $year = null)
{
    isset($year) or $year = date('Y');
    return strtotime("1 Jan $year +$day day");
}
0
function getDateFromDayOfYear($dayOfYear,$year){
    return date('Y-m-d', strtotime('January 1st '.$year.' +'.$dayOfYear.' days'));
}
-1

Getting the day of the year is easy. Just use the date function with the correct parameter as documented in the manual (it returns 0 for Jan-1 to 365 for Dec-31 on a leap year).

Going the other way will need a bit of creativity.

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