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I am feeling a bit thick today and maybe a little tired..

I am trying to add days on to a string date...

$startdate = "18/7/2011";

$enddate = date(strtotime($startdate) . " +1 day");
echo $startdate;
echo $enddate;

My heads not with it... where am i going wrong ?

Thanks

Lee

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up vote 8 down vote accepted

Either

$enddate = date(strtotime("+1 day", strtotime($startdate)));

or

$enddate = date(strtotime($startdate . "+1 day"));

should work. However, neither is working with the 18/7/2011 date. They work fine with 7/18/2011: http://codepad.viper-7.com/IDS0gI . Might be some localization problem.

In the first way, using the second parameter to strtotime says to add one day relative to that date. In the second way, strtotime figures everything out. But apparently only if the date is in the USA's date format, or in the other format using dashes: http://codepad.viper-7.com/SKJ49r

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1  
I think you might just be able to do strtotime($startdate . "+1 day") (as in my answer before edit and PtPazuzu's answer) but I am not sure, as I cannot test right now. This should work, though, according to the docs. – NickAldwin Jul 28 '11 at 17:48
    
Nope that doesn't work either... – Lee Jul 28 '11 at 17:54
    
I've tried it out: strtotime seems to be messing up on 18/7 instead of 7/18. With 7/18, both ways work: codepad.viper-7.com/IDS0gI – NickAldwin Jul 28 '11 at 18:00
    
Here it seems to suggest that for non-American dates, you should use dashes php.net/manual/en/datetime.formats.date.php And dashes seem to work fine: codepad.viper-7.com/SKJ49r – NickAldwin Jul 28 '11 at 18:04

first parameter of date() is format

d.m.Y G:i:s

for example

additionally, your $startdate is invalid

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You're probably looking for strtotime($startdate . "+ 1 day") or something

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I get the feeling that might work, but I don't have php handy to test. And I can't seem to find that in the docs... – NickAldwin Jul 28 '11 at 17:47
    
Nope that doesn't work either... – Lee Jul 28 '11 at 17:54

First you have to change the date format by calling changeDateFormat("18/7/2011"): returns: 2011-07-18 if your parsing argument

function changeDateFormat($vdate){
    $pos = strpos($vdate, '/');
    if ($pos === false) return $vdate;
        $pieces = explode("/", $vdate);
        $thisday = str_pad($pieces[0], 2, "0", STR_PAD_LEFT);
        $thismonth = str_pad($pieces[1], 2, "0", STR_PAD_LEFT);
        $thisyear = $pieces[2];
        $thisdate = "$thisyear-$thismonth-$thisday";
        return $thisdate;
}

And this..

$startdate = changeDateFormat($startdate);
$enddate = date('Y-m-d', strtotime($startdate . "+".$noOfDays." day"));

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try this one, (tested and worked fine)

date('d-m-Y',strtotime($startdate . " +1" day"));
date('d-m-Y',strtotime($startdate . " +2" day"));
date('d-m-Y',strtotime($startdate . " +3" day"));
.
.
.
.
.
date('d-m-Y',strtotime($startdate . " +30" day"));
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This will work

$startdate = "18/7/2011";
$enddate = date('d/m/Y', strtotime($startdate) + strtotime("+1 day", 0));
echo $startdate;
echo $enddate;

First, the start date is parsed into integer, then the relative time is parsed.

You might also utilize the second parametr of strToTime:

$startdate = "18/7/2011";
$enddate = date('d/m/Y', strtotime("+1 day", strtotime($startdate)));
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1  
This will add two dates together, not add 1 day. – John Cartwright Jul 28 '11 at 17:47
    
this first one gives me 18/7/2011 and 1311961884 – Lee Jul 28 '11 at 17:49
2  
I would suggest YOU try it. Look at your first example a little more carefully. – John Cartwright Jul 28 '11 at 17:51

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