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trying to use this

(^AD\\[a-zA-Z]+$)|(^ad\\[a-zA-Z]+$)|(^Ad\\[a-zA-Z]+$)

or

^(AD|ad|Ad)\\([a-zA-Z]+$)

in an attempt to validate for strings like AD\loginid or ad\loginid or Ad\loginid

above regex works fine on the regex testers online.. like http://regexpal.com/ or http://www.regular-expressions.info/javascriptexample.html

but when I incorporate it in the script validations it fails for the below code...

var lanidRegex = new RegExp("(^AD\\[a-zA-Z]+$)|(^ad\\[a-zA-Z]+$)|(^Ad\\[a-zA-Z]+$)");
alert(lanidRegex.test("AD\loginid"));

I have rewritten the regex differently multiple times but to no luck..

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1  
I'm not sure why that's not working, but I will say that ^(AD|[Aa][d])\\[a-zA-Z]+$ is a better regex @JoeFrambach fixed. –  rogaos Sep 11 '13 at 21:16
1  
You might want to try alert("AD\loginid"), I think you will be surprised. –  Andrew Clark Sep 11 '13 at 21:17
    
No, OP does not want to match aD. –  Joe Frambach Sep 11 '13 at 21:17

6 Answers 6

You need to use double the amount of backslashes (in your case, quadruple backslashes) when you use new RegExp because the first backslash is used to escape the string, and the second backslash is seen by the regular expression.

Your intention is for the regular expression to match a backslash \, which means that the regular expression engine needs to see an escaped backslash \\, which means that your string needs to contain four backslashes "\\\\".

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I think you need:

var lanidRegex = new RegExp("(^AD\\\\[a-zA-Z]+$)|(^ad\\\\[a-zA-Z]+$)|(^Ad\\\\[a-zA-Z]+$)");

One backslash to get each backslash into the string and one to tell the regex that the backslash is quoted in the regex.

In the alert line, you only need two of them:

alert(lanidRegex.test("AD\\loginid"));

(Thanks to the other answerers for noticing that.)

FIDDLE

Alternate version works too:

var lanidRegex = /(^AD\\[a-zA-Z]+$)|(^ad\\[a-zA-Z]+$)|(^Ad\\[a-zA-Z]+$)/;
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tried your suggestion no luck :( –  user2770382 Sep 11 '13 at 21:23
    
New fiddle added. Works in Chrome and my IE (not 8). –  Lee Meador Sep 11 '13 at 21:30

You have some escaping problems. First surround your regex pattern with /, it takes care of having to deal with a bunch of escaping problems in strings.

var lanidRegex = new RegExp(/(^AD\\[a-zA-Z]+$)|(^ad\\[a-zA-Z]+$)|(^Ad\\[a-zA-Z]+$)/);

Second, you need to escape the \ in your test string.

alert(lanidRegex.test("AD\\loginid"));
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1  
If you use a regexp literal, you don't need new RegExp(). –  Barmar Sep 11 '13 at 21:29

The problem is that \ serves two purposes in Javascript: it's an escape prefix in strings, and also in regexp. Since you're using a string to initialize your regexp, it's doing the string escape. This results in a single backslash in the regexp, so it's then escaping the square bracket.

Instead, use a regexp literal:

var lanidRegex = /(^AD\\[a-zA-Z]+$)|(^ad\\[a-zA-Z]+$)|(^Ad\\[a-zA-Z]+$)/;
alert(lanidRegex.test("AD\\loginid"));

Notice that you also need to double the backslash in the literal string "AD\\loginid".

Your regexp can be simplified greatly by using the i case-insensitive modifier:

var lanidRegex = /^ad\\[a-z]+$/i;

If you don't want to allow aD at the beginning, it can still be simplified:

var lanidRegex = /^(AD|ad|Ad)\\[a-zA-Z]+$/;

You only need alternatives in the prefix, the rest is common to all variants.

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tried no luck.. doesnt work for alert(lanidRegex.test("AD\loginid")); –  user2770382 Sep 11 '13 at 21:28
    
@user2770382 I explained that, you have to double the slashes in the alert string. –  Barmar Sep 11 '13 at 21:30

You can do it simpler

var lanidRegex = new RegExp("^(AD|ad|Ad)\([a-zA-Z]+)$");
var res = lanidRegex.test("AD\loginid");
window.console && console.log(res);
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This worked finally

var lanidRegex = new RegExp("^(AD|ad|Ad)\\\\([a-zA-Z]+$)", "gi");
lanidRegex.test("ad\name")
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Warning: "i" regex option makes search case-insensitive –  Andriy F. Sep 12 '13 at 21:08
    
If you don't care about case, just use /^ad\\[a-z]+$/i. And the g option isn't doing anything useful. –  Alan Moore Sep 12 '13 at 22:37

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