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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
47  
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 Oct 22 '14 at 9:00

14 Answers 14

up vote 99 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
5  
what about 99/99/1000.............. – Pranay Rana Oct 17 '12 at 11:36
2  
This is not a correct regex as it only checks number of digits in month/data/year. – Sanjeev Singh Apr 23 '14 at 8:39
    
Agreed, that's like using a regular expression for phone numbers that checks all possible area codes. What is the point of not including 2/30 or 2/31 if you include 2/29 for non-leap years, and if you include 4/31, 6/31, 9/31, and 11/31? – Jason Goemaat Nov 23 '15 at 13:52
2  
@SanjeevSingh that is the point - regular expressions should not be used for data validation. This will match date-like strings, which can then be validated using a proper date library if needed. – dimo414 Dec 14 '15 at 13:19

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
2  
What about year 20BC? (like -20/1/1 ) – Odys Feb 18 '14 at 12:45
    
@Odys - Did you actually need to program that for something, or did you pull that criticism out of a hat? – Dan Nissenbaum Apr 28 at 4:04
    
Yes, at the time of my comment (2+ years ago) I needed to represent dates dating that back and more. – Odys Apr 28 at 10:41

Maintainable Perl 5.10 version

/
  (?:
      (?<month> (?&mon_29)) [\/] (?<day>(?&day_29))
    | (?<month> (?&mon_30)) [\/] (?<day>(?&day_30))
    | (?<month> (?&mon_31)) [\/] (?<day>(?&day_31))
  )
  [\/]
  (?<year> [0-9]{4})

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

    (?<day_29> 0?[1-9] | [1-2]?[0-9] )
    (?<day_30> 0?[1-9] | [1-2]?[0-9] | 30 )
    (?<day_31> 0?[1-9] | [1-2]?[0-9] | 3[01] )
  )
/x

You can retrieve the elements by name in this version.

say "Month=$+{month} Day=$+{day} Year=$+{year}";

( No attempt has been made to restrict the values for the 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 '14 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

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
    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

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

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.

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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

Perl 6 version

rx{
  ^

  $<month> = (\d ** 1..2)
  { $<month> <= 12 or fail }

  '/'

  $<day> = (\d ** 1..2)
  {
    given( +$<month> ){
      when 1|3|5|7|8|10|12 {
        $<day> <= 31 or fail
      }
      when 4|6|9|11 {
        $<day> <= 30 or fail
      }
      when 2 {
        $<day> <= 29 or fail
      }
      default { fail }
    }
  }

  '/'

  $<year> = (\d ** 4)

  $
}

After you use this to check the input the values are available in $/ or individually as $<month>, $<day>, $<year>. ( those are just syntax for accessing values in $/ )

No attempt has been made to check the year, or that it doesn't match the 29th of Feburary on non leap years.

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.

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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?

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