27

Below is how I previously verified dates. I also had my own functions to convert date formats, however, now am using PHP's DateTime class so no longer need them. How should I best verify a valid date using DataTime? Please also let me know whether you think I should be using DataTime in the first place. Thanks

PS. I am using Object oriented style, and not Procedural style.

static public function verifyDate($date)
{
  //Given m/d/Y and returns date if valid, else NULL.
  $d=explode('/',$date);
  return ((isset($d[0])&&isset($d[1])&&isset($d[2]))?(checkdate($d[0],$d[1],$d[2])?$date:NULL):NULL);
}
1
  • 2
    It seems kind of odd to say that you're using OO-style, and then present a statically defined function. Aug 22, 2014 at 0:08

8 Answers 8

79

You can try this one:

static public function verifyDate($date)
{
    return (DateTime::createFromFormat('m/d/Y', $date) !== false);
}

This outputs true/false. You could return DateTime object directly:

static public function verifyDate($date)
{
    return DateTime::createFromFormat('m/d/Y', $date);
}

Then you get back a DateTime object or false on failure.

UPDATE:

Thanks to Elvis Ciotti who showed that createFromFormat accepts invalid dates like 45/45/2014. More information on that: https://stackoverflow.com/a/10120725/1948627

I've extended the method with a strict check option:

static public function verifyDate($date, $strict = true)
{
    $dateTime = DateTime::createFromFormat('m/d/Y', $date);
    if ($strict) {
        $errors = DateTime::getLastErrors();
        if (!empty($errors['warning_count'])) {
            return false;
        }
    }
    return $dateTime !== false;
}
9
  • Thanks Redreggae, Looks like this will work. If I didn't care about the original format but only that it is a valid date, would you recommend just creating a new DateTime($data), and using exceptions? Jan 24, 2013 at 15:40
  • I have updated my answer...exceptions won't help, because the method doesn't throw an exception on failure only returns false.
    – bitWorking
    Jan 24, 2013 at 15:43
  • Sorry didn't answer you question right. If you don't care about the date format, then shadyyx's solution is better.
    – bitWorking
    Jan 24, 2013 at 15:51
  • 4
    careful DateTime::createFromFormat('Y-m-d', '2014-21-31')->format('d/m/Y') outputs 01/10/2015, not false
    – E Ciotti
    Jul 25, 2014 at 11:55
  • 2
    @ElvisCiotti thanks for this information. I've made an update.
    – bitWorking
    Jul 25, 2014 at 12:36
16

With DateTime you can make the shortest date&time validator for all formats.

function validateDate($date, $format = 'Y-m-d H:i:s')
{
    $d = DateTime::createFromFormat($format, $date);
    return $d && $d->format($format) == $date;
}

var_dump(validateDate('2012-02-28 12:12:12')); # true
var_dump(validateDate('2012-02-30 12:12:12')); # false

function was copied from this answer or php.net

1
  • This doesn't hold true for formats like: !m/Y or d-m-Y|. Additional parsing is necessary in such cases. Nov 4, 2019 at 11:45
11

You could check this resource: http://php.net/manual/en/datetime.getlasterrors.php

The PHP codes states:

try {
    $date = new DateTime('asdfasdf');
} catch (Exception $e) {
    print_r(DateTime::getLastErrors());
    // or
    echo $e->getMessage();
}
2
  • 1
    This doesn't throw an exception if the string is 0000-00-00 00:00:00
    – rybo111
    Oct 9, 2018 at 15:53
  • The issue with this - not actually the code's, but PHP's fault - that from 24:00 to 24:59 time is accepted without error.
    – Mcload
    Mar 8, 2019 at 12:07
6

Try this:

  function is_valid_date($date,$format='dmY')
  {
    $f = DateTime::createFromFormat($format, $date);
    $valid = DateTime::getLastErrors();         
    return ($valid['warning_count']==0 and $valid['error_count']==0);
  }
1
  • It's more concise and safe (check both counter: warning_count and error_count). I would just add a third condition (just in case): $f !== false.
    – Delmo
    Jan 10, 2017 at 17:36
1

I needed to allow user input in (n) different, known, formats...including microtime. Here is an example with 3.

function validateDate($date)
{
    $formats = ['Y-m-d','Y-m-d H:i:s','Y-m-d H:i:s.u'];
    foreach($formats as $format) {
        $d = DateTime::createFromFormat($format, $date);
        if ($d && $d->format($format) == $date) return true;
    }
    return false;
}
0
$date[] = '20/11/2569';     
$date[] = 'lksdjflskdj'; 
$date[] = '11/21/1973 10:20:30';
$date[] = '21/11/1973 10:20:30';
$date[] = " ' or uid like '%admin%"; 
foreach($date as $dt)echo date('Y-m-d H:i:s', strtotime($dt))."\n";

Output

1970-01-01 05:30:00
1970-01-01 05:30:00
1970-01-01 05:30:00
1973-11-21 10:20:30
1970-01-01 05:30:00
1970-01-01 05:30:00
0

For me, the combination of date_parse and checkdate works best and it is almost one-liner:

$date="2024-02-29";
$dp=date_parse("$date");

if (sprintf("%04d-%02d-%02d",$dp['year'], $dp['month'], $dp['day'])===$date && checkdate($dp['month'], $dp['day'], $dp['year'])) {
    // format is OK and date is valid
}
-1

With the following an empty string like '' or 0 or '0000-00-00 00:00:00' is false

$valid = strtotime($date) > 0;
1
  • I know this comment is more than a decade old... Still, this is bascially a regex checker which doesn't cover months with less than 31 days such as '2000-11-31'. Apr 1, 2022 at 7:45

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