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I need to regex match a password field using javascript with the following requirements:

  • At least 15 characters
  • two or more lower case letters
  • two or more upper case letters
  • two or more digits
  • two or more of the following special characters: !@#$%^&*-

I have a regex that takes care of MOST cases:

/^.*(?=.{15,})(?=.{2,}\d)(?=.{2,}[a-z])(?=.{2,}[A-Z])(?=.{2,}[\!\@\#\$\%\^\&\*\-]).*$/

The problem here is with the symbols, it works with:

P@ssw0rdP@ssw0rd
Pssw0rdPssw0rd@@
Pssw0rd@@Pssw0rd

But not:

@@Pssw0rdPssw0rd

I have a random password generator set up to exhaustively test this, so any ideas are greatly appreciated. Thanks!

share|improve this question
    
I think this cannot be done with one regex. –  Salman A Jan 12 '11 at 15:44
    
@Salman: why not? Ever heard of lookaheads? –  R. Martinho Fernandes Jan 12 '11 at 15:45
4  
I recommend against doing this. Enforced password security is one of the main reasons of users creating "password1", or "PAssword!@12345" in your case. –  yorick Jan 12 '11 at 15:46
1  
@yorick I think with users that lazy if you don't enforce password security they'll probably pick something like p (I have seen this) –  El Ronnoco Jan 12 '11 at 15:56
1  
I prefer to break the various conditions into steps in code rather than through one complex regex. That way you can report to the user why their password has failed security validation. Also easier to verify that it actually works. –  El Ronnoco Jan 12 '11 at 15:57

3 Answers 3

up vote 10 down vote accepted
/^(?=(?:.*[a-z]){2})(?=(?:.*[A-Z]){2})(?=(?:.*\d){2})(?=(?:.*[!@#$%^&*-]){2}).{15,}$/

Your lookaheads are wrong. The pattern

(?=.{2,}[class])

means to match 2 or more characters (no matter what characters), then followed by 1 character of the desired class. This is entirely different from "2 or more character of the desired class" you specified.

To correctly test if a character of desired class is in the text, use

(?=.*[class])

and since you want to check it twice, repeat the pattern

(?=.*[class].*[class])
# equivalent to (?=(?:.*[class]){2})
share|improve this answer
    
Tested and confirmed with 100,000 randomly created passwords. You sir are a regex jedi, thanks! –  rwyland Jan 12 '11 at 16:11
    
Would like to add that this regex works multi-platform, but if you use it in javascript it will NOT work in IE7 because of the lookahead issue in the javascript engine. link –  rwyland Apr 2 '11 at 19:21
    
Why won't they let you delete comments?? –  Joe Dec 21 '12 at 22:33

There are some good explanations already, so I'm just piling on ...

/^
(?= .{15} )
(?= (?:.*[[:lower:]]){2} )
(?= (?:.*[[:upper:]]){2} )
(?= (?:.*[[:digit:]]){2} )
(?= (?:.*[!@#$%^&*-]){2} )
/x

share|improve this answer

I'm not sure a single regexp is the way to go for this test.

Personally i'd implement it something like this: (treat as pseudo code, i haven't tested it)

function testPassword(pw) {
    var len = pw.length;
    if(len < 15) return false;
    if(pw.replace(/[a-z]/,'').length > len - 2) return false;
    if(pw.replace(/[A-Z]/,'').length > len - 2) return false;
    if(pw.replace(/[0-9]/,'').length > len - 2) return false;
    if(pw.replace(/[!@#$%^&*-]/,'').length > len - 2) return false;
    return true;
}
share|improve this answer
    
pw.replace(/[a-z]/**g**, '') .... –  kennytm Jan 12 '11 at 15:53
    
Yeah I had something like this is in mind also. +1 –  Anders Jan 12 '11 at 15:54
    
I like your thinking, but I need regex because it works across multiple languages, so easier code reuse was key for me. –  rwyland Jan 12 '11 at 16:17

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