I'm receiving a date string from an API, and it is formatted as yyyy-mm-dd.

I am currently using a regex to validate the string format, which works ok, but I can see some cases where it could be a correct format according to the string but actually an invalid date. i.e. 2013-13-01, for example.

Is there a better way in PHP to take a string such as 2013-13-01 and tell if it is a valid date or not for the format yyyy-mm-dd?

15 Answers 15

up vote 339 down vote accepted

You can use DateTime class for this purpose:

function validateDate($date, $format = 'Y-m-d')
{
    $d = DateTime::createFromFormat($format, $date);
    // The Y ( 4 digits year ) returns TRUE for any integer with any number of digits so changing the comparison from == to === fixes the issue.
    return $d && $d->format($format) === $date;
}

[Function taken from this answer. Also on php.net. Originally written by Glavić.]


Test cases:

var_dump(validateDate('2013-13-01'));  // false
var_dump(validateDate('20132-13-01')); // false
var_dump(validateDate('2013-11-32'));  // false
var_dump(validateDate('2012-2-25'));   // false
var_dump(validateDate('2013-12-01'));  // true
var_dump(validateDate('1970-12-01'));  // true
var_dump(validateDate('2012-02-29'));  // true
var_dump(validateDate('2012', 'Y'));   // true
var_dump(validateDate('12012', 'Y'));  // false

Demo!

  • 11
    If you are using PHP 5.2.x, you should use strtotime to get the unix timestamp then date('Y-m-d', $t) to get the string date. Then you compare them just like this answer. – pedromanoel Jun 24 '14 at 14:00
  • 2
    @pedromanoel: for standard datetime input you can use strtotime, but for non-standard formats that strtotime doesn't recognizes, you will need some other solution. And for php version 5.2 support stopped on January 2011, for 5.3 support stopped on August 2014. – Glavić Oct 23 '14 at 15:56
  • 1
    consider this date var_dump( validateDate('2012-2-9')); – reignsly Jun 10 '15 at 5:59
  • 2
    The function works correctly. It returned false because thr format you specified was incorrect. If you want to use day and month without leading zeroes, then the format should be 'Y-n-j', @reignsly. – Amal Murali Jun 10 '15 at 10:04
  • 1
    @AntonyD'Andrea: no, it will not work without that part. Because $d will not be false in you give it date, which has overflown parts, like 13th month (2013-13-01). But it really depends what you want. If you need for example validateDate('2015-55-66') to be valid, then yes, you only need to check if $d is object or not. – Glavić Jul 2 '15 at 5:42

Determine if any string is a date

function checkIsAValidDate($myDateString){
    return (bool)strtotime($myDateString);
}
  • This validates a whole range of valid date formats not just yyyy-mm-dd. – EWit Jun 25 '14 at 6:36
  • 2
    print_r(checkIsAValidDate("2015-02-30")); comes true... – Michel Ayres Feb 20 '15 at 10:57
  • 9
    @MichelAyres this is because php sees 2015-02-30 as a valid date because when the day given is greater than the number of days in the given month (or negative) php rolls over to the next month. Since the date is guaranteed to be of the format yyyy-mm-dd this can be fixed by changing the return to return (bool)strtotime($myDateString) && date("Y-m-d", strtotime($myDateString)) == $myDateString;. – elitechief21 Feb 25 '15 at 16:45
  • Why does (bool)strtotime('s') come out as true? – Peon Mar 31 '15 at 7:29
  • this also returns 1 checkIsAValidDate("F"); – Vaibhav Bhanushali Jan 20 '16 at 16:51

Use in simple way with php prebuilt function:

function checkmydate($date) {
  $tempDate = explode('-', $date);
  // checkdate(month, day, year)
  return checkdate($tempDate[1], $tempDate[2], $tempDate[0]);
}

Test

   checkmydate('2015-12-01'); //true
   checkmydate('2015-14-04'); //false
  • 2
    thanks! yes it is simple. – user3567805 Mar 17 '15 at 7:46
  • 1
    Nice straightforward solution, worked first time, thanks :) – David Bell Nov 3 '16 at 15:49
  • Again, when using a test, inside an if to return simply true or false, return the test itself. – Victor Schröder Feb 6 '17 at 15:21
  • 4
    This assumes there are at least 3 elements in the $tempDate array. – person27 Mar 8 '17 at 1:30
  • 2
    @person27: return sizeof($tmpDate) == 3 && checkdate($tmpDate[1]... – neurino Jun 15 at 13:22

Determine if string is a date, even if string is a non-standard format

(strtotime doesn't accept any custom format)

<?php
function validateDateTime($dateStr, $format)
{
    date_default_timezone_set('UTC');
    $date = DateTime::createFromFormat($format, $dateStr);
    return $date && ($date->format($format) === $dateStr);
}

// These return true
validateDateTime('2001-03-10 17:16:18', 'Y-m-d H:i:s');
validateDateTime('2001-03-10', 'Y-m-d');
validateDateTime('2001', 'Y');
validateDateTime('Mon', 'D');
validateDateTime('March 10, 2001, 5:16 pm', 'F j, Y, g:i a');
validateDateTime('March 10, 2001, 5:16 pm', 'F j, Y, g:i a');
validateDateTime('03.10.01', 'm.d.y');
validateDateTime('10, 3, 2001', 'j, n, Y');
validateDateTime('20010310', 'Ymd');
validateDateTime('05-16-18, 10-03-01', 'h-i-s, j-m-y');
validateDateTime('Monday 8th of August 2005 03:12:46 PM', 'l jS \of F Y h:i:s A');
validateDateTime('Wed, 25 Sep 2013 15:28:57', 'D, d M Y H:i:s');
validateDateTime('17:03:18 is the time', 'H:m:s \i\s \t\h\e \t\i\m\e');
validateDateTime('17:16:18', 'H:i:s');

// These return false
validateDateTime('2001-03-10 17:16:18', 'Y-m-D H:i:s');
validateDateTime('2001', 'm');
validateDateTime('Mon', 'D-m-y');
validateDateTime('Mon', 'D-m-y');
validateDateTime('2001-13-04', 'Y-m-d');
  • 1
    Best answer and Suitable for any format – NaveenDA Jan 20 '17 at 17:35
  • When using a test, inside an if to return simply true or false, return the test itself. – Victor Schröder Feb 6 '17 at 15:06
  • But 2018-3-24 is returning false,the method receive 2018-3-24, when the format is apply return 2018-03-24; how I can return true in two ways? – Aquiles Perez Mar 24 at 17:31

This option is not only simple but also accepts almost any format, although with non-standard formats it can be buggy.

$timestamp = strtotime($date);
return $timestamp ? $date : null;
  • This should have been the accepted answer! Much, much simpler. – Webmaster G Feb 26 '16 at 17:44
  • 1
    Important to note that this won't work with a British (d/m/Y) format as it will assume it's converting the American (m/d/Y). It will seem to work only if the day is lower than 12! – Sylvester Saracevas May 1 at 12:58

You can also Parse the date for month date and year and then you can use the PHP function checkdate() which you can read about here: http://php.net/manual/en/function.checkdate.php

You can also try this one:

$date="2013-13-01";

if (preg_match("/^[0-9]{4}-(0[1-9]|1[0-2])-(0[1-9]|[1-2][0-9]|3[0-1])$/",$date))
    {
        echo 'Date is valid';
    }else{
        echo 'Date is invalid';
    }
  • in case of february (as commented by elitechief21) function isValidDate($date) { return preg_match("/^[0-9]{4}-(0[1-9]|1[0-2])-(0[1-9]|[1-2][0-9]|3[0-1])$/",$date) && date("Y-m-d", strtotime($date)) == $date; } – abdulwadood Aug 12 '16 at 14:03
  • 3
    This solution is very poor, as it doesn't check the date validity in any sense. Any month can have 31 days, including February. Any year can have 29 of February. To validate dates using RegExp would demand something much more complex, with back-references and negative look aheads. – Victor Schröder Feb 6 '17 at 15:34

Accordling with cl-sah's answer, but this sound better, shorter...

function checkmydate($date) {
  $tempDate = explode('-', $date);
  return checkdate($tempDate[1], $tempDate[2], $tempDate[0]);
}

Test

checkmydate('2015-12-01');//true
checkmydate('2015-14-04');//false

I have this thing that, even with PHP, I like to find functional solutions. So, for example, the answer given by @migli is really a good one, highly flexible and elegant.

But it has a problem: what if you need to validate a lot of DateTime strings with the same format? You would have to repeat the format all over the place, what goes against the DRY principle. We could put the format in a constant, but still, we would have to pass the constant as an argument to every function call.

But fear no more! We can use currying to our rescue! PHP doesn't make this task pleasant, but it's still possible to implement currying with PHP:

<?php
function validateDateTime($format)
{
    return function($dateStr) use ($format) {
        $date = DateTime::createFromFormat($format, $dateStr);
        return $date && $date->format($format) === $dateStr;
    };
}

So, what we just did? Basically we wrapped the function body in an anonymous and returned such function instead. We can call the validation function like this:

validateDateTime('Y-m-d H:i:s')('2017-02-06 17:07:11'); // true

Yeah, not a big difference... but the real power comes from the partially applied function, made possible by currying:

// Get a partially applied function
$validate = validateDateTime('Y-m-d H:i:s');

// Now you can use it everywhere, without repeating the format!
$validate('2017-02-06 17:09:31'); // true
$validate('1999-03-31 07:07:07'); // true
$validate('13-2-4 3:2:45'); // false

Functional programming FTW!

  • 1
    The best answer by a landslide IMHO(solves the specific problem of the OP with greater flexibility and pretty much the same amount of code as the rest of the answers) – StubbornShowaGuy Feb 8 '17 at 5:59
  • IMHO this is really ugly programming, just put your values in an array and loop through them to validate, but please don't do this! – Tim Jan 2 at 10:58
  • I'm curious @Tim, could you give us an example of your array/loop validation? – Victor Schröder Jan 2 at 14:16

How about this one?

We simply use a try-catch block.

$dateTime = 'an invalid datetime';

try {
    $dateTimeObject = new DateTime($dateTime);
} catch (Exception $exc) {
    echo 'Do something with an invalid DateTime';
}

This approach is not limited to only one date/time format, and you don't need to define any function.

  • this will not work for datetime value 0000-00-00 00:00:00 – Naseeruddin V N Dec 5 '17 at 9:40
  • @NaseeruddinVN '0000-00-00 00:00:00' is a valid datetime value. It's just the first the value. However, the date property of the datetime object will be '-0001-11-30 00:00:00'. – Julian Dec 7 '17 at 9:35

The easiest way to check if given date is valid probably converting it to unixtime using strtotime, formatting it to the given date's format, then comparing it:

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

Of course you can use regular expression to check for validness, but it will be limited to given format, every time you will have to edit it to satisfy another formats, and also it will be more than required. Built-in functions is the best way (in most cases) to achieve jobs.

  • 1
    I feel that this answer is pretty low quality, especially considering there are already strtotime answers. – GrumpyCrouton Jul 3 '17 at 19:51
  • 1
    This is the shortest answer and it works. It is a bit harsh to say that it is low quality. – Tim Rogers Aug 16 at 9:30

Tested Regex solution:

    function isValidDate($date)
    {
            if (preg_match("/^(((((1[26]|2[048])00)|[12]\d([2468][048]|[13579][26]|0[48]))-((((0[13578]|1[02])-(0[1-9]|[12]\d|3[01]))|((0[469]|11)-(0[1-9]|[12]\d|30)))|(02-(0[1-9]|[12]\d))))|((([12]\d([02468][1235679]|[13579][01345789]))|((1[1345789]|2[1235679])00))-((((0[13578]|1[02])-(0[1-9]|[12]\d|3[01]))|((0[469]|11)-(0[1-9]|[12]\d|30)))|(02-(0[1-9]|1\d|2[0-8])))))$/", $date)) {
                    return $date;
            }
            return null;
    }

This will return null if the date is invalid or is not yyyy-mm-dd format, otherwise it will return the date.

/*********************************************************************************
Returns TRUE if the input parameter is a valid date string in "YYYY-MM-DD" format (aka "MySQL date format")
The date separator can be only the '-' character.
*********************************************************************************/
function isMysqlDate($yyyymmdd)
{
    return checkdate(substr($yyyymmdd, 5, 2), substr($yyyymmdd, 8), substr($yyyymmdd, 0, 4)) 
        && (substr($yyyymmdd, 4, 1) === '-') 
        && (substr($yyyymmdd, 7, 1) === '-');
}
    /**** date check is a recursive function. it's need 3 argument 
    MONTH,DAY,YEAR. ******/

    $always_valid_date = $this->date_check($month,$day,$year);

    private function date_check($month,$day,$year){

        /** checkdate() is a php function that check a date is valid 
        or not. if valid date it's return true else false.   **/

        $status = checkdate($month,$day,$year);

        if($status == true){

            $always_valid_date = $year . '-' . $month . '-' . $day;

            return $always_valid_date;

        }else{
            $day = ($day - 1);

            /**recursive call**/

            return $this->date_check($month,$day,$year);
        }

    }
  • 1
    Code without any explanation isn't very useful. – Gert Arnold Sep 1 '17 at 13:34

Give this a try:

$date = "2017-10-01";


function date_checker($input,$devider){
  $output = false;

  $input = explode($devider, $input);
  $year = $input[0];
  $month = $input[1];
  $day = $input[2];

  if (is_numeric($year) && is_numeric($month) && is_numeric($day)) {
    if (strlen($year) == 4 && strlen($month) == 2 && strlen($day) == 2) {
      $output = true;
    }
  }
  return $output;
}

if (date_checker($date, '-')) {
  echo "The function is working";
}else {
  echo "The function isNOT working";
}

According Amal Murali answer,

$d = DateTime::createFromFormat('Y-m-d g:i:s', $date);
$d2 = DateTime::createFromFormat('Y-m-d H:i:s', $date);

if(($d && $d->format('Y-m-d g:i:s') == $date) || ($d2 && $d2->format('Y-m-d H:i:s') == $date))
            {
                return true;
            }
            else 
            {
                return false;
            }

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.