172

I need to validate a date string for the format dd/mm/yyyy with a regular expresssion.

This regex validates dd/mm/yyyy, but not the invalid dates like 31/02/4500:

^(0?[1-9]|[12][0-9]|3[01])[\/\-](0?[1-9]|1[012])[\/\-]\d{4}$

What is a valid regex to validate dd/mm/yyyy format with leap year support?

  • 3
    I think it might help if you set an accurate expectation, as this regex does NOT, in fact, correctly validate leap years; e.g., there is no Feb. 29th in 2013, but this regex asserts that such is valid: regexr.com?346fp – TML Mar 19 '13 at 15:55
  • 7
    Why with Regex? There are easier (and more accurate) ways... – Dan Puzey Mar 19 '13 at 15:55
  • 2
    Regular expressions are for matching patterns, not checking numeric values. Find a likely string with the regex, then check its numeric value in whatever your host language is (PHP, whatever). – Andy Lester Mar 19 '13 at 16:41
  • 3
    This answer has been added to the Stack Overflow Regular Expression FAQ, under "Common Validation Tasks". – aliteralmind Apr 10 '14 at 1:23
  • 4
    @BurhanKhalid: You are wrong. Regular expression is the best tool for validation, since HTML5 input has an attribute named pattern that takes a regular expression, and the browsers validate automatically against the regex without use of any javascript at all. Just by settting a regex in the pattern attribute! – awe Apr 15 '14 at 6:43

18 Answers 18

329

The regex you pasted does not validate leap years correctly, but there is one that does in the same post. I modified it to take dd/mm/yyyy, dd-mm-yyyy or dd.mm.yyyy.

^(?:(?:31(\/|-|\.)(?:0?[13578]|1[02]))\1|(?:(?:29|30)(\/|-|\.)(?:0?[13-9]|1[0-2])\2))(?:(?:1[6-9]|[2-9]\d)?\d{2})$|^(?:29(\/|-|\.)0?2\3(?:(?:(?:1[6-9]|[2-9]\d)?(?:0[48]|[2468][048]|[13579][26])|(?:(?:16|[2468][048]|[3579][26])00))))$|^(?:0?[1-9]|1\d|2[0-8])(\/|-|\.)(?:(?:0?[1-9])|(?:1[0-2]))\4(?:(?:1[6-9]|[2-9]\d)?\d{2})$

I tested it a bit in the link Arun provided in his answer and also here and it seems to work.

Edit February 14th 2019: I've removed a comma that was in the regex which allowed dates like 29-0,-11

| improve this answer | |
  • 9
    Epic regex! How easily could this be interchanged according to format? For example yyyy-mm-dd and mm-dd-yyyy. I had a go at understanding it with that in mind, but it's beyond my regex skills. – mrswadge Oct 2 '14 at 16:13
  • 8
    Other than DD/MM/YYYY, this regex also accepts DD/MM/YY which I am not sure that it was in the initial intention of the poster. If you wish to not support 'YY', then remove all the optional ? quantifiers. – user1485864 Nov 21 '14 at 17:24
  • 2
    @PurveshDesai replace each 0? with 0, and also remove the last occurrence of ?. – Ofir Luzon Jun 9 '15 at 4:14
  • 5
    @MaraisRossouw, You are correct, for 4 digit year, there are actually 3 ? that should be removed: replace all (?:1[6-9]|[2-9]\d)? with (?:1[6-9]|[2-9]\d). – Ofir Luzon Jan 13 '16 at 7:26
  • 2
    Dropping by just to say this: WOW and of course thank you – Jero Dungog Nov 6 '18 at 21:01
266

I have extended the regex given by @Ofir Luzon for the formats dd-mmm-YYYY, dd/mmm/YYYY, dd.mmm.YYYY as per my requirement. Anyone else with same requirement can refer this

^(?:(?:31(\/|-|\.)(?:0?[13578]|1[02]|(?:Jan|Mar|May|Jul|Aug|Oct|Dec)))\1|(?:(?:29|30)(\/|-|\.)(?:0?[1,3-9]|1[0-2]|(?:Jan|Mar|Apr|May|Jun|Jul|Aug|Sep|Oct|Nov|Dec))\2))(?:(?:1[6-9]|[2-9]\d)?\d{2})$|^(?:29(\/|-|\.)(?:0?2|(?:Feb))\3(?:(?:(?:1[6-9]|[2-9]\d)?(?:0[48]|[2468][048]|[13579][26])|(?:(?:16|[2468][048]|[3579][26])00))))$|^(?:0?[1-9]|1\d|2[0-8])(\/|-|\.)(?:(?:0?[1-9]|(?:Jan|Feb|Mar|Apr|May|Jun|Jul|Aug|Sep))|(?:1[0-2]|(?:Oct|Nov|Dec)))\4(?:(?:1[6-9]|[2-9]\d)?\d{2})$

and tested for some test cases here http://regexr.com/39tr1.

For better understanding for this Regular expression refer this image: enter image description here

| improve this answer | |
  • 1
    Yes how did you generate it? :) – Razor Apr 10 '15 at 3:52
  • I generated it online using some website and now i also don't remember the website from which I generated this image. I will add the reference once I remember:) – Alok Chaudhary Apr 10 '15 at 3:58
  • 4
    @user3733831 8888 is a possible year. I expect to live to about that age. – Dan Nissenbaum Apr 27 '16 at 11:03
  • 1
    Works great even for leap years. I added support for short Spanish month names, also. – Fer R Feb 23 '17 at 19:03
  • 2
    @AlokChaudhary, the diagram was generated using debuggex.com – Taha BASRI Dec 23 '19 at 11:25
69

Notice:

Your regexp does not work for years that "are multiples of 4 and 100, but not of 400". Years that pass that test are not leap years. For example: 1900, 2100, 2200, 2300, 2500, etc. In other words, it puts all years with the format \d\d00 in the same class of leap years, which is incorrect. – MuchToLearn

So it works properly only for [1901 - 2099] (Whew) 😊

dd/MM/yyyy:

Checks if leap year. Years from 1900 to 9999 are valid. Only dd/MM/yyyy

(^(((0[1-9]|1[0-9]|2[0-8])[\/](0[1-9]|1[012]))|((29|30|31)[\/](0[13578]|1[02]))|((29|30)[\/](0[4,6,9]|11)))[\/](19|[2-9][0-9])\d\d$)|(^29[\/]02[\/](19|[2-9][0-9])(00|04|08|12|16|20|24|28|32|36|40|44|48|52|56|60|64|68|72|76|80|84|88|92|96)$)
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  • 7
    This answer works only with dd/MM/yyyy. Therefore, is the right answer. – Rodrigo Apr 10 '15 at 14:28
  • 2
    @SylvainB I have fixed it – gdZeus Oct 7 '15 at 21:18
  • 2
    @gdZeus Thanks for delivering, even two years later! Scary to think that an incomplete solution has stood validated around here for so long though. – SylvainB Oct 8 '15 at 8:04
  • To make it quicker you can make the groups non-grouping. regexr.com/3esom ^(?:(?:(?:(?:0[1-9]|1[0-9]|2[0-8])[\/](?:0[1-9]|1[012]))|(?:(?:29|30|31)[\/](?:0[13578]|1[02]))|(?:(?:29|30)[\/](?:0[4,6,9]|11)))[\/](?:19|[2-9][0-9])\d\d)|(?:29[\/]02[\/](?:19|[2-9][0-9])(?:00|04|08|12|16|20|24|28|32|36|40|44|48|52|56|60|64|68|72|76|80|84|88|92|96))$ – Matt Vukomanovic Dec 15 '16 at 9:17
  • I suppose I found an error: 29/02/2100 does not exist (2100 is NOT a leap year), but is still accepted by the given pattern. – KnorxThieus Jul 17 '17 at 19:54
17

try this.

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

you can test regular expression at http://www.regular-expressions.info/javascriptexample.html easily.

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  • 2
    this regex does not validate the date with the month like 30-02-2001... anyway thanks for the answer :) – Nalaka526 Mar 19 '13 at 15:16
12

I suspect that the following is as accurate as can be expected without knowing when the user's locale switched over from the Julian to the Gregorian calendars.

It accepts either '-', '/', or nothing as separators between year, month, and day, no matter the order.

MMddyyyy:

^(((0[13-9]|1[012])[-/]?(0[1-9]|[12][0-9]|30)|(0[13578]|1[02])[-/]?31|02[-/]?(0[1-9]|1[0-9]|2[0-8]))[-/]?[0-9]{4}|02[-/]?29[-/]?([0-9]{2}(([2468][048]|[02468][48])|[13579][26])|([13579][26]|[02468][048]|0[0-9]|1[0-6])00))$

ddMMyyyy:

^(((0[1-9]|[12][0-9]|30)[-/]?(0[13-9]|1[012])|31[-/]?(0[13578]|1[02])|(0[1-9]|1[0-9]|2[0-8])[-/]?02)[-/]?[0-9]{4}|29[-/]?02[-/]?([0-9]{2}(([2468][048]|[02468][48])|[13579][26])|([13579][26]|[02468][048]|0[0-9]|1[0-6])00))$

yyyyMMdd:

^([0-9]{4}[-/]?((0[13-9]|1[012])[-/]?(0[1-9]|[12][0-9]|30)|(0[13578]|1[02])[-/]?31|02[-/]?(0[1-9]|1[0-9]|2[0-8]))|([0-9]{2}(([2468][048]|[02468][48])|[13579][26])|([13579][26]|[02468][048]|0[0-9]|1[0-6])00)[-/]?02[-/]?29)$

Other than order, these all are accurate to the Julian Calendar (leap year every four years) until 1700, when the Gregorian Calendar diverges from the Julian. It has two issues:

  1. It accepts the year 0000, which doesn't exist in many, but not all, standards. Note that ISO 8601 does accept year 0000 (equivalent to 1 BCE).
  2. It doesn't skip the 10-13 days which were lost when the Gregorian Calendar came into use. This varies by locality though. For example, the Roman Catholic Church skipped 10 days, October 5th through October 14th, 1582, but Greece (the last to switch) skipped February 16th through the 28th of 1923, 13 days, having to take into account the leap years of 1700, 1800, and 1900.

This has been tested against Java's calendar implementation from the year 0001 until the year 9999 with the only discrepancy being the abovementioned 10 days in 1582.

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  • The YYYYMMDD regex incorrectly matches [01|02|03|05|06|07|09|10|11|13|14|15]00-02-29. Corrected regex: ^([0-9]{4}[-/]?((0[13-9]|1[012])[-/]?(0[1-9]|[12][0-9]|30)|(0[13578]|1[02])[-/]?31|02[-/]?(0[1-9]|1[0-9]|2[0-8]))|([0-9]{2}(([2468][048]|[02468][48])|[13579][26])|([13579][26]|[02468][048])00)[-/]?02[-/]?29)$. Tested with python: repl.it/repls/DependentBestChapters – kpr Jan 16 '19 at 16:32
10

For those who look at these and get completely confused, here is an excerpt from my script. Unfortunately, all it does is match valid numbers in a date time input, and 31st Feb will be marked as valid, but as so many have said, regex really isn't the best tool to do this test.

To match a date in the format 'yyyy-MM-dd hh:mm' (Or indeed in whatever order you please)

var dateerrors = false;
var yearReg = '(201[4-9]|202[0-9])';            ///< Allows a number between 2014 and 2029
var monthReg = '(0[1-9]|1[0-2])';               ///< Allows a number between 00 and 12
var dayReg = '(0[1-9]|1[0-9]|2[0-9]|3[0-1])';   ///< Allows a number between 00 and 31
var hourReg = '([0-1][0-9]|2[0-3])';            ///< Allows a number between 00 and 24
var minReg = '([0-5][0-9])';                    ///< Allows a number between 00 and 59
var reg = new RegExp('^' + yearReg + '-' + monthReg + '-' + dayReg + ' ' + hourReg + ':' + minReg + '$', 'g');
$('input').filter(function () {return this.id.match(/myhtml_element_with_id_\d+_datetime/);}).each(function (e) {
    if (e > 0) {
        // Don't test the first input. This will use the default
        var val = $(this).val();
        if (val && !val.trim().match(reg)) {
            dateerrors = true;
            return false;
        }
    }
});
if (dateerrors) {
    alert('You must enter a validate date in the format "yyyy-mm-dd HH:MM", e.g. 2019-12-31 19:30');
    return false;
}

The above script starts off by building a regex object. It then finds all of the inputs whose id's match a certain pattern and then loops through these. I don't test the first input I find (if (e > 0)).

A bit of explanation:

var reg = new RegExp('^' + yearReg + '-' + monthReg + '-' + dayReg + ' ' + hourReg + ':' + minReg + '$', 'g');

^ means start of match, whereas $ means end of match.

return this.id.match(/myhtml_element_with_id_\d+_datetime/);

\d+ means match a single or a contiguous sequence of integers, so myhtml_element_with_id_56_datetime and myhtml_element_with_id_2_datetime will match, but myhtml_element_with_id_5a_datetime will not

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8

Here is another version of regex to match any of the following date formats and allow leading zeros to be omitted:

Regex: ^[0-3]?[0-9].[0-3]?[0-9].(?:[0-9]{2})?[0-9]{2}$

Matches:

1/1/11 or 1.1.11 or 1-1-11 : true 01/01/11 or 01.01.11 or 01-01-11 : true 01/01/2011 or 01.01.2011 or 01-01-2011 : true 01/1/2011 or 01.1.2011 or 01-1-2011 : true 1/11/2011 or 1.11.2011 or 1-11-2011 : true 1/11/11 or 1.11.11 or 1-11-11 : true 11/1/11 or 11.1.11 or 11-1-11 : true

Regular expression visualization

Debuggex Demo

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  • 4
    does not work if you have 13/13/2000 = Matches is true – Andrei Krasutski Dec 1 '16 at 15:45
  • 3
    39/39/39 isn't a date. Please stop voting for this answer. – Warren Sergent Jun 19 '17 at 1:56
6

Found this reg ex here

^(((0[1-9]|[12]\d|3[01])\/(0[13578]|1[02])\/((19|[2-9]\d)\d{2}))|((0[1-9]|[12]\d|30)\/(0[13456789]|1[012])\/((19|[2-9]\d)\d{2}))|((0[1-9]|1\d|2[0-8])\/02\/((19|[2-9]\d)\d{2}))|(29\/02\/((1[6-9]|[2-9]\d)(0[48]|[2468][048]|[13579][26])|((16|[2468][048]|[3579][26])00))))$

This validates the format mm/dd/yyyy and valid dates correctly (but not m/d/yyyy).

Some tests

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  • 1
    Only works before 2014, have to change |20(0[0-9]|1[0-4]))) to |20(0[0-9]|1[0-9]))) to support until 2019 – Tony Dong Sep 26 '16 at 22:19
6

Here I wrote one for dd/mm/yyyy where separator can be one of -.,/ year range 0000-9999.

It deals with leap years and is designed for regex flavors, that support lookaheads, capturing groups and backreferences. NOT valid for such as d/m/yyyy. If needed add further separators to [-.,/]

^(?=\d{2}([-.,\/])\d{2}\1\d{4}$)(?:0[1-9]|1\d|[2][0-8]|29(?!.02.(?!(?!(?:[02468][1-35-79]|[13579][0-13-57-9])00)\d{2}(?:[02468][048]|[13579][26])))|30(?!.02)|31(?=.(?:0[13578]|10|12))).(?:0[1-9]|1[012]).\d{4}$

Test at regex101; as a Java string:

"^(?=\\d{2}([-.,\\/])\\d{2}\\1\\d{4}$)(?:0[1-9]|1\\d|[2][0-8]|29(?!.02.(?!(?!(?:[02468][1-35-79]|[13579][0-13-57-9])00)\\d{2}(?:[02468][048]|[13579][26])))|30(?!.02)|31(?=.(?:0[13578]|10|12))).(?:0[1-9]|1[012]).\\d{4}$"

explained:

(?x) # modifier x: free spacing mode (for comments)
     # verify date dd/mm/yyyy; possible separators: -.,/
     # valid year range: 0000-9999

^    # start anchor

# precheck xx-xx-xxxx,... add new separators here
(?=\d{2}([-.,\/])\d{2}\1\d{4}$)

(?:  # day-check: non caturing group

  # days 01-28
  0[1-9]|1\d|[2][0-8]| 

  # february 29d check for leap year: all 4y / 00 years: only each 400
  # 0400,0800,1200,1600,2000,...
  29
  (?!.02. # not if feb: if not ...
    (?!
      # 00 years: exclude !0 %400 years
      (?!(?:[02468][1-35-79]|[13579][0-13-57-9])00)

      # 00,04,08,12,... 
      \d{2}(?:[02468][048]|[13579][26])
    )
  )|

  # d30 negative lookahead: february cannot have 30 days
  30(?!.02)|

  # d31 positive lookahead: month up to 31 days
  31(?=.(?:0[13578]|10|12))

) # eof day-check

# month 01-12
.(?:0[1-9]|1[012])

# year 0000-9999
.\d{4}

$ # end anchor

Also see SO Regex FAQ; Please let me know, if it fails.

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5
"^(0[1-9]|[12][0-9]|3[01])[- /.](0[1-9]|1[012])[- /.]((19|20)\\d\\d)$"

will validate any date between 1900-2099

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5

The following expression is nice and easy to manipulate:

((((0[13578]|1[02])(\/|-|.)(0[1-9]|1[0-9]|2[0-9]|3[01]))|((0[469]|11)(\/|-|.)(0[1-9]|1[0-9]|2[0-9]|3[0]))|((02)((\/|-|.)(0[1-9]|1[0-9]|2[0-8]))))(\/|-|.)(19([6-9][0-9])|20(0[0-9]|1[0-4])))|((02)(\/|-|.)(29)(\/|-|.)(19(6[048]|7[26]|8[048]|9[26])|20(0[048]|1[26])))

It validates according to the MM/dd/YYYY format and allows for leap year support from 1960 to 2016. If you need the leap year support extended you need only manipulate this part of the expression:

(19(6[048]|7[26]|8[048]|9[26])|20(0[048]|1[26]))

Hope this helped you a lot

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3

Another answer which validates day (dd) depending upon the month (mm) and the year (yyyy) (i.e., also validates 29th Feb in leap years) and allows years ranging from 0001 to 9999 (0000 in a invalid year according to the Gregorian calendar)

^(?:(?:(?:0[1-9]|[12]\d|3[01])/(?:0[13578]|1[02])|(?:0[1-9]|[12]\d|30)/(?:0[469]|11)|(?:0[1-9]|1\d|2[0-8])/02)/(?!0000)\d{4}|(?:(?:0[1-9]|[12]\d)/02/(?:(?!0000)(?:[02468][048]|[13579][26])00|(?!..00)\d{2}(?:[02468][048]|[13579][26]))))$
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  • 1
    does not validate 18/05/0017 – user7917367 May 18 '17 at 2:41
1

I'm working with an API that only accepts MM/DD/YYYY format. I couldn't find any other post that did leap years quite as well as Ofir's answer, so I tweaked it and am re-posting it here for anyone that might need it.

/^(?:(?:(?:0[13578]|1[02])(\/)31)\1|(?:(?:0[1,3-9]|1[0-2])(\/)(?:29|30)\2))(?:(?:1[6-9]|[2-9]\d)?\d{2})$|^(?:02(\/)29\3(?:(?:(?:1[6-9]|[2-9]\d)?(?:0[48]|[2468][048]|[13579][26])|(?:(?:16|[2468][048]|[3579][26])00))))$|^(?:(?:0?[1-9])|(?:1[0-2]))(\/)(?:0[1-9]|1\d|2[0-8])\4(?:(?:1[6-9]|[2-9]\d)?\d{2})$/
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0
((((0[13578]|1[02])\/(0[1-9]|1[0-9]|2[0-9]|3[01]))|((0[469]|11)\/(0[1-9]|1[0-9]|2[0-9]|3[0]))|((02)(\/(0[1-9]|1[0-9]|2[0-8]))))\/(19([6-9][0-9])|20([0-9][0-9])))|((02)\/(29)\/(19(6[048]|7[26]|8[048]|9[26])|20(0[048]|1[26]|2[048])))

will validate MM/DD/YYYY format with 1960 to 2028

if you need to extend leap year support then add

19(6[048]|7[26]|8[048]|9[26])|20(0[048]|1[26]|2[048]|3[26]|4[048])))

this is also work

^((((0[13578]|1[02])[/](0[1-9]|1[0-9]|2[0-9]|3[01]))|((0[469]|11)[/](0[1-9]|1[0-9]|2[0-9]|3[0]))|((02)([/](0[1-9]|1[0-9]|2[0-8]))))[/](19([6-9][0-9])|20([0-9][0-9])))|((02)[/](29)[/](19(6[048]|7[26]|8[048]|9[26])|20(0[048]|1[26]|2[048])))

if you can change format mm-dd-yyyy than replace [/] to [-] also check online http://regexr.com/

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0

For date MM/DD/YYYY you can use

^((((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 verify proper days and moths.

Remeber that you can check your regular expression at

regex101

which i recommend :)

Have fun!

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0
^(((([13578]|0[13578]|1[02])[-](0[1-9]|[1-9]|1[0-9]|2[0-9]|3[01]))|(([469]|0[469]|11)[-]([1-9]|1[0-9]|2[0-9]|3[0]))|((2|02)([-](0[1-9]|1[0-9]|2[0-8]))))[-](19([6-9][0-9])|20([0-9][0-9])))|((02)[-](29)[-](19(6[048]|7[26]|8[048]|9[26])|20(0[048]|1[26]|2[048])))

this regex will validate dates in format:

12-30-2016 (mm-dd-yyyy) or 12-3-2016 (mm-d-yyyy) or 1-3-2016 (m-d-yyyy) or 1-30-2016 (m-dd-yyyy)

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0

I know it is a tangential answer to the question, but if the intention of the question is 'how do I validate a date?', then why not try letting the programming language do all the hard work (if you are using a language that can)?

e.g. in php

$this_date_object = date_create($this_date);

if ($this_date_object == false )
    {

        // process the error

    }
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0

For use only for the day:

<input placeholder="day" maxlength="2" minlength="1" formControlName="birthDay" 
   name="birthDay"pattern="(0[1-9]|1[0-9]|2[0-9]|3[0-1])" >/

For use only for the month:

 <input placeholder="month" maxlength="2" minlength="1" 
  formControlName="month" name="month" formControlName="month" name="month" pattern="(0[1- 
  9]|1[0-2])">/
| improve this answer | |

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