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Many examples are about adding days to this day. But how to do it, if I have different starding day?

For example (Does not work):

$day='2010-01-23';

// add 7 days to the date above
$NewDate= Date('$day', strtotime("+7 days"));
echo $NewDate;

Example above does not work. How should I change the starding day by putting something else in the place of Date?

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2  
is '$day' a typo? you don't wrap variables in quotes. – TravisO Dec 17 '09 at 19:11
up vote 19 down vote accepted

For a very basic fix based on your code:

$day='2010-01-23';

// add 7 days to the date above
$NewDate = date('Y-m-d', strtotime($day . " +7 days"));
echo $NewDate;

If you are using PHP 5.3+, you can use the new DateTime libs which are very handy:

$day = '2010-01-23';

// add 7 days to the date above
$NewDate = new DateTime($day);
$NewDate->add(new DateInterval('P7D');
echo $NewDate->format('Y-m-d');

I've fully switched to using DateTime myself now as it's very powerful. You can also specify the timezone easily when instantiating, i.e. new DateTime($time, new DateTimeZone('UTC')). You can use the methods add() and sub() for changing the date with DateInterval objects. Here's documentation:

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$NewDate->add(new DateInterval('P7D'); - you need to add an extra ')' at the end here :) – mmvsbg Nov 9 '15 at 9:08
$NewDate = date('Y-m-d', strtotime('+7 days', strtotime($day)));
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2  
This will only output seconds since the unix epoch. – cballou Dec 17 '09 at 19:30

From php.com binupillai2003

<?php
/*
Add day/week/month to a particular date
@param1 yyyy-mm-dd
@param1 integer
by Binu V Pillai on 2009-12-17
*/

function addDate($date,$day)//add days
{
$sum = strtotime(date("Y-m-d", strtotime("$date")) . " +$day days");
$dateTo=date('Y-m-d',$sum);
return $dateTo;
}

?>
share|improve this answer
1  
While "$date" may technically work, it's poor syntax, just say $date – TravisO Dec 17 '09 at 20:06

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