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I have the following regex which validates dates:

//are not both dates
if (!methods._isDate(first[0].value) || !methods._isDate(second[0].value)) {
    return options.allrules[rules[i]].alertText +   

Regex below :

_isDate: function (value) {
             var dateRegEx = new RegExp(/^\d{4}[\/\-](0?[1-9]|1[012])[\/\-](0?[1-9]|[12][0-9]|3[01])$|^(?:(?:(?:0?[13578]|1[02])(\/|-)31)|(?:(?:0?[1,3-9]|1[0-2])(\/|-)(?:29|30)))(\/|-)(?:[1-9]\d\d\d|\d[1-9]\d\d|\d\d[1-9]\d|\d\d\d[1-9])$|^(?:(?:0?[1-9]|1[0-2])(\/|-)(?:0?[1-9]|1\d|2[0-8]))(\/|-)(?:[1-9]\d\d\d|\d[1-9]\d\d|\d\d[1-9]\d|\d\d\d[1-9])$|^(0?2(\/|-)29)(\/|-)(?:(?:0[48]00|[13579][26]00|[2468][048]00)|(?:\d\d)?(?:0[48]|[2468][048]|[13579][26]))$/);
             return dateRegEx.test(value);

But this looks like for mmddyy, and my date is always ddmmyy.

Can you rewrite this regex? Please check it.

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StackOverflow is a community for answering questions, not a "fix this code for me" service. You did ask a specific question, but I doubt the answer would be of any use to you. – lanzz Jun 29 '12 at 10:08
what change i need to do here? – PeteEngineer Jun 29 '12 at 10:11
If you're working with regular expressions, you should learn regular expressions instead of looking for somebody to do your work for you. If you already know regular expressions, you should be able to rewrite the expression yourself instead of looking for somebody to do your work for you. At the very least, you should google for a regular expression that does what you need. – lanzz Jun 29 '12 at 10:14
[0-3][0-9][/](([0][0-9])|([1][0-2]))[/][0-9]{4} I got it myself please upvote my question – PeteEngineer Jun 29 '12 at 10:19
Your question is still bad, answering it yourself does not make it any better. You can post an actual answer yourself and accept it. Still won't make it a good question though. – lanzz Jun 29 '12 at 10:24

1 Answer 1

up vote 1 down vote accepted

For DDMMYYYY, with optional leading 0 for day and month, separators / or -, years 1900-2099, without checking validity of 29., 30. or 31. day in month it would be:


To use just 2-digit year format go with:

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