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I am building a timestamp from the date, month and year values entered by users.

Suppose that the user inputs some wrong values and the date is "31-02-2012" which does not exist, then I have to get a false return. But here its converting it to another date nearby. Precisely to: "02-03-2012"..

I dont want this to happen..

$str = "31-02-2012";
echo date("d-m-Y",strtotime($str)); // Outputs 02-03-2012

Can anyone help? I dont want a timestamp to be returned if the date is not original.

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I think that's actually the correct and documented behaviour that you're describing. Can you write what your actual problem is? Do you need to validate a date-string? –  hakre Sep 28 '11 at 13:06

6 Answers 6

up vote 2 down vote accepted

That's because strtotime() has troubles with - since they are used to denote phrase like -1 week, etc...

Try

$str = '31-02-2012';
echo date('d-m-Y', strtotime(str_replace('-', '/', $str)));

However 31-02-2012 is not a valid English format, it should be 02-31-2012.


If you have PHP >= 5.3, you can use createFromFormat:

$str = '31-02-2012';
$d = DateTime::createFromFormat('d-m-Y', $str);
echo $d->format('d-m-Y');
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I think you'll find that the English (as in England, and most other places for that matter) format is dd mm yy. That would be the cyan bit here: en.wikipedia.org/wiki/Date_format_by_country. It's only the US that insists on the ridiculous format :-) –  paxdiablo Sep 28 '11 at 13:11
    
@paxdiablo Well, strtotime docs claim it would "[p]arse about any English textual datetime description into a Unix timestamp". That's the English format I was referring to. :) –  Shef Sep 28 '11 at 13:14
    
awsome bro.. replacing the "-" with the "/" got me workin.. however the createFromFormat is not working in my end and my php version is 5.3.5.. does it require a still higher version? –  mithunsatheesh Sep 28 '11 at 13:15
    
@mithunsatheesh Nope, that's a high enough version. DateTime is part of the PHP core since PHP 5.2, and the function createFromFormat since 5.3, so it should be available. If you share the error you were getting or the behavior we might help as to why it didn't work. –  Shef Sep 28 '11 at 13:18
    
@Shef PHP 5.3.2 here. DateTime::createFromFormat() gives me current timestamp when checking 02/31/2012. –  Sean McSomething Aug 7 '12 at 21:51

You might look into checkdate.

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thanks for your help buddy.... –  mithunsatheesh Sep 28 '11 at 20:12

You'll have to check if the date is possible before using strtotime. Strtotime will convert it to unix date meaning it will use seconds since... This means it will always be a date.

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You can workaround this behavior

<?php
$str = "31-02-2012";
$unix = strtotime($str); 
echo date('d-m-Y', $unix);
if (date('d-m-Y', $unix) != $str){
   echo "wrong";
}
else{
   echo date("d-m-Y", $unx);
}

or just use checkdate()

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thanks.. for help buddy..... –  mithunsatheesh Sep 28 '11 at 20:12

Use the checkdate function.

$str = "31-02-2012";
$years = explode("-", $str);
$valid_date = checkdate($years[1], $years[0], $years[2]);

Checkdate Function - PHP Manual & Explode Function - PHP Manual

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Combine date_parse and checkdate to check if it's a valid time.

<?php
date_default_timezone_set('America/Chicago');

function is_valid_date($str) {
    $date = date_parse($str);
    return checkdate($date['month'], $date['day'], $date['year']);
}

print is_valid_date('31-02-2012') ? 'Yes' : 'No';
print "\n";
print is_valid_date('28-02-2012') ? 'Yes' : 'No';
print "\n";

Even though that date format is acceptable according to PHP date formats, it may still cause issues for date parsers because it's easy to confuse the month and day. For example, 02-03-2012, it's hard to tell if 02 is the month or the day. It's better to use the other more specific date parser examples here to first parse the date then check it with checkdate.

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