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I am trying to validate year using Regex.test in javascript, but no able to figure out why its returning false.

var regEx = new RegExp("^(19|20)[\d]{2,2}$"); 

regEx.test(inputValue) returns false for input value 1981, 2007

Thanks

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Uh, do you mean "1981, 2007" or "1981" and "2007"? –  BoltClock Jul 22 '11 at 17:28

4 Answers 4

up vote 4 down vote accepted

As you're creating a RegExp object using a string expression, you need to double the backslashes so they escape properly. Also [\d]{2,2} can simply be condensed to \d\d:

var regEx = new RegExp("^(19|20)\\d\\d$");

Or better yet use a regex literal to avoid doubling backslashes:

var regEx = /^(19|20)\d\d$/;
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That is nice. It works. –  Xiansong Aug 16 '13 at 15:54
    
@Xiansong: Consider upvoting the answer then. –  BoltClock Aug 16 '13 at 15:58

Found the REAL issue:

Change your declaration to remove quotes:

var regEx = new RegExp(/^(19|20)[\d]{2,2}$/); 
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You may as well just use the regex literal rather than passing it to another RegExp constructor. –  BoltClock Jul 22 '11 at 17:33
    
True. Although it was interesting to figure out the issue with the original ask. –  Mrchief Jul 22 '11 at 17:34

Do you mean

var inputValue = "1981, 2007";

If so, this will fail because the pattern is not matched due to the start string (^) and end string ($) characters.

If you want to capture both years, remove these characters from your pattern and do a global match (with /g)

var regEx = new RegExp(/(?:19|20)\d{2}/g);
var inputValue = "1981, 2007";
var matches = inputValue.match(regEx);

matches will be an array containing all matches.

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I've noticed, for reasons I can't explain, sometimes you have to have two \\ in front of the d.

so try [\\d] and see if that helps.

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