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I am using the following regex in .NET to validate that a string contains 12 numeric characters and it works perfectly. (EG: 000000174064)

public static string TwelveDigitNumber = @"^\d{12}$";

However that same regular expression does not work client side using javascript.

EDIT: I am using jquery validate, and have added the following function for regular expresssions

// regex validation
$.validator.addMethod(
        "regex",
        function (value, element, regexp) {
            var re = new RegExp(regexp);
            return this.optional(element) || re.test(value);
        },
        "Please check your input."
);


 rules: {
                    "Number": {
                        maxlength: 12, regex: "^\d{12}$"
                    },
share|improve this question
2  
/^\d{12}$/.test("000000174064") //true Seems to work fine – Esailija Jan 17 '12 at 21:39
    
To clarify: what exactly does "does not work" mean? Do you have a javascript error or does it always just fail? Next, have you tested to ensure the values you expect are actually being sent in the parameters to your function? – NotMe Jan 17 '12 at 21:49
1  
The \ is used as escape character in JavaScript. Therefore it needs to be escaped by doubling it. So either "^\\d{12}$" or /^\d{12}$/. – Augustus Kling Jan 17 '12 at 21:49
up vote 1 down vote accepted

The result from new RegExp( "^\d{12}$" ) is /^d{12}$/ instead of /^\d{12}$/ because of the escape backslash. It works in .NET because you have @ which I think skips the escaping.

Anyway, for static regexes you can just use regex literals:

regex: /^\d{12}$/

is same as

regex: new RegExp( "^\\d{12}$" )

You can then pass it directly to the function and it doesn't have to instantiate it every time.

share|improve this answer
    
Thanks, great explanation of what was happening. – Ryan Sampson Jan 17 '12 at 21:57
    
@RyanSampson I also forgot to mention that javascript doesn't have equivalent for @. – Esailija Jan 17 '12 at 22:01

Have you typed the Regex like this:

var rgx = /^\d{12}$/;

// or

var rgx = new RegExp('^\\d{12}$');

// or without the new keyword?
share|improve this answer
    
I am using the "new", added javascript code to question – Ryan Sampson Jan 17 '12 at 21:45
    
within the RegExp object you need to use \\d in place of \d – Wouter J Jan 17 '12 at 21:51

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