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I want to add one year to $joindate for the value of $exdate.

The php code is as shown below:

date_default_timezone_set('UTC');
$joindate = date("d/m/Y");
$exdate = date("d/m/Y",
    strtotime(date("d/m/Y", strtotime($joindate)) . " + 365 day"));

However, when I echo out both variables I get this:

Join date : 16/12/2011
Ex Date : 01/01/1971

(the ex date should be 16/12/2012)

Anyone knows where is the mistake I made?

Thanks.

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7 Answers 7

up vote 3 down vote accepted

$exdate = date("d/m/Y", strtotime("+ 365 day"));

And the $exdate will be 15/12/2012 because 2012 is leap year which has 366 days.

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the output of this is 15/12/2012 instead of 16/12/2012(that i want). Is this some kind of bug php have? thanks for replying. –  sm21guy Dec 16 '11 at 6:58
    
It can be years with 366 days) –  plutov.by Dec 16 '11 at 6:59
    
oh i see. thanks –  sm21guy Dec 16 '11 at 7:01
$joindate = date('d/m/Y');
$exdate   = date('d/m/Y', strtotime('+1 year'));
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Try this:

 $date = strtotime("+365 day", strtotime("2011-12-16"));
 echo date("Y-m-d", $date);
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the most easiest way of adding a year to current year is this intval(date('Y'))+1.

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Have a look at mktime() in the PHP manual (here)

With it you can add days, months, years, hours, minutes and seconds to an existing date like this:

$date = "2011-12-16";
$dateTime = strtotime($date);

$day = date("d", $dateTime);
$month = date("m", $dateTime);
$year = date("Y", $dateTime) + 1;
$hour = date("H", $dateTime);
$minute = date("i", $dateTime);
$second = date("s", $dateTime);

$nextYearTime = mktime($hour, $minute, $second, $month, $day, $year);  

$nextDate = date("Y-m-d", $nextYearTime);

You can also wrap this code (or variations on it) into a function for portability.

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thanks for your help. –  sm21guy Dec 16 '11 at 6:59

Your code can also work if you change format to "m/d/Y"

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try this line of code.

$dateOneYearAdded = strtotime(date("Y-m-d", strtotime($currentDate)) . " +1 year");
echo "Date After one year: ".date('l dS \o\f F Y', $dateOneYearAdded)."<br>";

Thanks.

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