Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to write a regular expression that validates a date. The regex needs to match the following

  • M/D/YYYY
  • MM/DD/YYYY
  • Single digit months can start with a leading zero (eg: 03/12/2008)
  • Single digit days can start with a leading zero (eg: 3/02/2008)
  • CANNOT include February 30 or February 31 (eg: 2/31/2008)

So far I have

^(([1-9]|1[012])[-/.]([1-9]|[12][0-9]|3[01])[-/.](19|20)\d\d)|((1[012]|0[1-9])(3[01]|2\d|1\d|0[1-9])(19|20)\d\d)|((1[012]|0[1-9])[-/.](3[01]|2\d|1\d|0[1-9])[-/.](19|20)\d\d)$

This matches properly EXCEPT it still includes 2/30/2008 & 2/31/2008.

Does anyone have a better suggestion?

Edit: I found the answer on RegExLib

^((((0[13578])|([13578])|(1[02]))[\/](([1-9])|([0-2][0-9])|(3[01])))|(((0[469])|([469])|(11))[\/](([1-9])|([0-2][0-9])|(30)))|((2|02)[\/](([1-9])|([0-2][0-9]))))[\/]\d{4}$|^\d{4}$

It matches all valid months that follow the MM/DD/YYYY format.

Thanks everyone for the help.

share|improve this question
32  
Your co-workers are going to hate you. –  Chris Conway Sep 9 '08 at 5:17
    
This doesn't take leap year into consideration. It outputs 02/29/2011 as a valid date. –  Varun Achar Jan 7 '12 at 7:49
1  
Check my answer for a reg ex that takes leap years into consideration. –  Varun Achar Jan 7 '12 at 9:22
    
It matches all valid months that follow the MM/DD/YYYY format. Fails to validate 1234 ! :( –  Aritra B 2 days ago

14 Answers 14

up vote 75 down vote accepted

This is not an appropriate use of regular expressions. You'd be better off using

[0-9]{2}/[0-9]{2}/[0-9]{4}

and then checking ranges in a higher-level language.

share|improve this answer
2  
what about 99/99/1000.............. –  Pranay Rana Oct 17 '12 at 11:36
1  
This is not a correct regex as it only checks number of digits in month/data/year. –  onsjjss Apr 23 at 8:39

Here is the Reg ex that matches all valid dates including leap years. Formats accepted mm/dd/yyyy or mm-dd-yyyy or mm.dd.yyyy format

^(?:(?:(?:0?[13578]|1[02])(\/|-|\.)31)\1|(?:(?:0?[1,3-9]|1[0-2])(\/|-|\.)(?:29|30)\2))(?:(?:1[6-9]|[2-9]\d)?\d{2})$|^(?:0?2(\/|-|\.)29\3(?:(?:(?:1[6-9]|[2-9]\d)?(?:0[48]|[2468][048]|[13579][26])|(?:(?:16|[2468][048]|[3579][26])00))))$|^(?:(?:0?[1-9])|(?:1[0-2]))(\/|-|\.)(?:0?[1-9]|1\d|2[0-8])\4(?:(?:1[6-9]|[2-9]\d)?\d{2})$

courtesy Asiq Ahamed

share|improve this answer
    
What about year 20BC? (like -20/1/1 ) –  Odys Feb 18 at 12:45

Maintainable Perl 5.10 version

/
  (?:
      (?<month> (?&mon_29)) [\/] (?<day>(?&day_29))
    | (?<month> (?&mon_30)) [\/] (?<day>(?&day_30))
    | (?<month> (?&mon_31)) [\/] (?<day>(?&day_31))
  )
  [\/]
  (?<year> \d{4})

  (?(DEFINE)
    (?<day_29> [0-2]?\d )
    (?<day_30> [0-2]?\d | 30 )
    (?<day_31> [0-2]?\d | 3[01] )

    (?<mon_29> 0?2 )
    (?<mon_30> 0?[469]   | (11) )
    (?<mon_31> 0?[13578] | 1[02] )
  )
/x

You can retrieve the elements by name in this version.

say "Month=$+{month} Day=$+{day} Year=$+{year}";
share|improve this answer
    
Wouldn't this match "12/00/0000"? –  mwolfetech Aug 8 '13 at 16:34
    
@mwolfetech That is true of most of the others as well, If you need the check that, it should be easy to figure out how to modify this regular expression. –  Brad Gilbert Aug 9 '13 at 0:31
    
+1 for having a version that is actually maintainable. –  Mike H-R Jun 24 at 13:18

Sounds like you're overextending regex for this purpose. What I would do is use a regex to match a few date formats and then use a separate function to validate the values of the date fields so extracted.

share|improve this answer

Perl expanded version

Note use of /x modifier.

/^(
      (
        ( # 31 day months
            (0[13578])
          | ([13578])
          | (1[02])
        )
        [\/]
        (
            ([1-9])
          | ([0-2][0-9])
          | (3[01])
        )
      )
    | (
        ( # 30 day months
            (0[469])
          | ([469])
          | (11)
        )
        [\/]
        (
            ([1-9])
          | ([0-2][0-9])
          | (30)
        )
      )
    | ( # 29 day month (Feb)
        (2|02)
        [\/]
        (
            ([1-9])
          | ([0-2][0-9])
        )
      )
    )
    [\/]
    # year
    \d{4}$

  | ^\d{4}$ # year only
/x

Original

^((((0[13578])|([13578])|(1[02]))[\/](([1-9])|([0-2][0-9])|(3[01])))|(((0[469])|([469])|(11))[\/](([1-9])|([0-2][0-9])|(30)))|((2|02)[\/](([1-9])|([0-2][0-9]))))[\/]\d{4}$|^\d{4}$
share|improve this answer
    var dtRegex = new RegExp(/[1-9\-]{4}[0-9\-]{2}[0-9\-]{2}/);
    if(dtRegex.test(date) == true){
        var evalDate = date.split('-');
        if(evalDate[0] != '0000' && evalDate[1] != '00' && evalDate[2] != '00'){
            return true;
        }
    }
share|improve this answer

This regex validates dates between 01-01-2000 and 12-31-2099 with matching separators.

^(0[1-9]|1[012])([- /.])(0[1-9]|[12][0-9]|3[01])\2(19|20)\d\d$
share|improve this answer

Regex was not meant to validate number ranges(this number must be from 1 to 5 when the number preceding it happens to be a 2 and the number preceding that happens to be below 6). Just look for the pattern of placement of numbers in regex. If you need to validate is qualities of a date, put it in a date object js/c#/vb, and interogate the numbers there.

share|improve this answer

I know this does not answer your question, but why don't you use a date handling routine to check if it's a valid date? Even if you modify the regexp with a negative lookahead assertion like (?!31/0?2) (ie, do not match 31/2 or 31/02) you'll still have the problem of accepting 29 02 on non leap years and about a single separator date format.

The problem is not easy if you want to really validate a date, check this forum thread.

For an example or a better way, in C#, check this link

If you are using another platform/language, let us know

share|improve this answer

if you didn't get those above suggestions working, I use this, as it gets any date I ran this expression through 50 links, and it got all the dates on each page.

^20\d\d-(Jan|Feb|Mar|Apr|May|Jun|Jul|Aug|Sep|Oct|Nov|Dec)-(0[1-9]|[1-2][0-9]|3[01])$ 
share|improve this answer

If you're going to insist on doing this with a regular expression, I'd recommend something like:

( (0?1|0?3| <...> |10|11|12) / (0?1| <...> |30|31) |
  0?2 / (0?1| <...> |28|29) ) 
/ (19|20)[0-9]{2}

This might make it possible to read and understand.

share|improve this answer

Perl 6 version

rx{
  ^
  $month := (\d{1,2})
  { $^month <= 12 or fail }
  <[\/]>
  $day := (\d{1,2})
  {
    given( +$^month ){
      when any(qw'1 3 5 7 8 10 12') {
        $day <= 31 or fail
      }
      when any(qw'4 6 9 11') {
        $day <= 30 or fail
      }
      when 2{
        $day <= 29 or fail
      }
      default { fail }
    }
  }
  <[\/]>
  $year := (\d{4})
  $
}

Note this was quickly made and probably has a few bugs.

share|improve this answer

A slightly different approach that may or may not be useful for you.

I'm in php.

The project this relates to will never have a date prior to the 1st of January 2008. So, I take the 'date' inputed and use strtotime(). If the answer is >= 1199167200 then I have a date that is useful to me. If something that doesn't look like a date is entered -1 is returned. If null is entered it does return today's date number so you do need a check for a non-null entry first.

Works for my situation, perhaps yours too?

share|improve this answer

To control a date validity under the following format :

YYYY/MM/DD or YYYY-MM-DD

I would recommand you tu use the following regular expression :

(((19|20)([2468][048]|[13579][26]|0[48])|2000)[/-]02[/-]29|((19|20)[0-9]{2}[/-](0[4678]|1[02])[/-](0[1-9]|[12][0-9]|30)|(19|20)[0-9]{2}[/-](0[1359]|11)[/-](0[1-9]|[12][0-9]|3[01])|(19|20)[0-9]{2}[/-]02[/-](0[1-9]|1[0-9]|2[0-8])))

Matches

2016-02-29 | 2012-04-30 | 2019/09/31

Non-Matches

2016-02-30 | 2012-04-31 | 2019/09/35

You can customise it if you wants to allow only '/' or '-' separators. This RegEx strictly controls the validity of the date and verify 28,30 and 31 days months, even leap years with 29/02 month.

Try it, it works very well and prevent your code from lot of bugs !

FYI : I made a variant for the SQL datetime. You'll find it there (look for my name) : Regular Expression to validate a timestamp

Feedback are welcomed :)

share|improve this answer

protected by Community Sep 13 at 13:38

Thank you for your interest in this question. Because it has attracted low-quality answers, posting an answer now requires 10 reputation on this site.

Would you like to answer one of these unanswered questions instead?

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