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I found a php function checkdate() , but strangely enough it only seems to accept data in format of int $month , int $day , int $year. However I am passing the date as a string (example "2012-06-13") so I came up with this workaround, because I would only allow date entered in such format. Unfortunately I am feeling this is both insecure and not a nice approach to the problem:

function CheckAdditional($value)
{
    $data = explode("-", $value);

    return checkdate($data[1], $data[2], $data[0]);
}

Question: is there a better way to check whether the date is valid?

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I don't see any problems with your method. Clean and simple. –  Jon Jun 13 '12 at 15:56
1  
There's 'valid', and then there's 'correct' - which one are you aiming for? 01/02/03 is valid, but depending on how you read it, it can be very very incorrect. –  Marc B Jun 13 '12 at 15:57
    
What is the insecure part do you think? –  xdazz Jun 13 '12 at 15:57
    
@MarcB - I want the data be both valid and correct. Sorry for confusion. –  Andrius Naruševičius Jun 13 '12 at 16:03
    
I think he meant getting data from client side, he might have js validation but still on server side you may want some protection. –  Nasaralla Jun 13 '12 at 16:03

5 Answers 5

function DDC($dates){ // Date Day Control
    $dy = substr($dates,0,4);
    $dm = substr($dates,5,2);
    $dd = substr($dates,8,2);
    for($i=0; $i<3; $i++){
        if(!checkdate($dm,$dd,$dy)){
            $dd--;
        }else{$i=3;}
    }
    return $dy.'.'.$dm.'.'.$dd;
}
echo DDC('2013.02.31');
//2013.02.28
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up vote 0 down vote accepted
<?php

function CheckAdditional($value)
{
    return date('Y-m-d', strtotime($value)) == $value;
}

?>

After several tests from both me and the people who tried to help me with my answer, I came up with this which suits me perfectly fine and is both easy and really reliable solution in my opinion as none was able to prove it wrong so far.

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2  
By itself, that is wrong (1 digit input suffices). Plus, it's way worse than checkdate(). –  Alix Axel Jun 18 '12 at 7:49
    
What you mean by 1 digit input suffices? –  Andrius Naruševičius Jun 18 '12 at 8:24

Just in order to be safe you can do

date("Y-m-d", strtotime($yourdatestr));

In that way even if the format may be wrong it will in most cases correct it.

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Bare in mind that strtotime() can return false. It can also adjust the date, for instance 2012-02-31 should come out as 2012-03-02 (I think). –  Alix Axel Jun 13 '12 at 16:08
    
Yup: codepad.org/gUlUqN0Q. –  Alix Axel Jun 13 '12 at 16:10
    
2012-02-31 is an invalid date! therefore it does returns the possible valid date. –  Nasaralla Jun 13 '12 at 16:16
1  
@Nasaralla: Indeed, the date is invalid, but this approach makes it valid. Depending on what the OP wants this may not be a very good idea. –  Alix Axel Jun 13 '12 at 16:19
1  
What about this? :P codepad.org/Nstz0mBG –  Andrius Naruševičius Jun 13 '12 at 16:23

If you limit the user inputs to be valid only in one format (what about localization?), then you just can parse the input by yourself, using a regexp-function or splitting the input by "-" and check whether it turns into an array with three digit values…

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You can try:

function checkDateFormat($date){  
//match the format of the date  
if (preg_match ("/^([0-9]{4})-([0-9]{2})-([0-9]{2})$/", $date, $parts))  {    
    //check weather the date is valid of not        

    if(checkdate($parts[2],$parts[3],$parts[1]))          
       return true;        
    else         
       return false;  
    }  
else    
return false;}

Credits: http://roshanbh.com.np/2008/05/date-format-validation-php.html

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1  
How is that any better? –  Alix Axel Jun 13 '12 at 16:11
    
Surprisingly, this turned out to be the best answer of all so far. –  Alix Axel Jun 18 '12 at 7:51

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