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I have written a regular expression which could potentially be used for password strength validation:

^(?:([A-Z])*([a-z])*(\d)*(\W)*){8,12}$

The expression consists of four groups:

  1. Zero or more uppercase characters
  2. Zero or more lowercase characters
  3. Zero or more decimal digits
  4. Zero or more non-word characters (!, £, $, %, etc.)

The way I want it to work is to determine how many of the groups have been matched in order to determine the strength of the password. so for example, if only 1 group is matched, it would be weak. If all four groups were matched, it would be strong.

I have tested the expression using Rubular (a Ruby regular expression editor).

Here I can see visually, how many groups are matched, but I want to do this in JavaScript. I wrote a script that returns the number of matched groups, but the results were not the same as I can see in Rubular.

How can I achieve this in JavaScript? and is my regular expression up to the task?

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1  
Your regex allows passwords with an infinite length, the {8,12} has no impact. Hard code the non-word characters you want to allow. I guess you wanted something like ^[A-Za-z0-9!_.-]{8,12}$. –  sp00m Mar 28 '13 at 9:51
    
"but the results were not the same": in what way? Please include both sets of results and the code you using to generate those results. –  Richard Mar 28 '13 at 9:53
1  
Note, you expression only checks for lower case letters after upper case letters; and digits after that; …. It also doesn't consider an underscore a non-alphanumeric character. –  Richard Mar 28 '13 at 9:55

3 Answers 3

up vote 7 down vote accepted

I think you'll have to check each group independently. Pseudo-code:

bool[] array = {};
array[0] = pwd.match(/[A-Z]/);
array[1] = pwd.match(/[a-z]/);
array[2] = pwd.match(/\d/);
array[3] = pwd.match(/[!_.-]/);

int sum = 0;
for (int i=0; i<array.length; i++) {
    sum += array[i] ? 1 : 0;
}

switch (sum) {
    case 0: print("weird..."); break;
    case 1: print("weak"); break;
    case 2: print("ok"); break;
    case 3: print("strong"); break;
    case 4: print("awesome"); break;
    default: print("weird..."); break;
}
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Thanks. A slight modification to this solved my problem! :-) –  series0ne Mar 28 '13 at 10:51

You can do it by separating each group out and match them one by one, like this:

var level = 0;
var input = '';//user input goes here
switch(true){
    case /^(?:([A-Z])*){8,12}$/.test(input):
    level = 1;
    break;

    case /^(?:([A-Z])*([a-z])*){8,12}$/.test(input):
    level = 2;
    break;

    case /^(?:([A-Z])*([a-z])*(\d)*){8,12}$/.test(input):
    level = 3;
    break;

    case /^(?:([A-Z])*([a-z])*(\d)*(\W)*){8,12}$/.test(input):
    level = 4;
    break;
}

The level variable goes from 1 (the weakest) to 4 (the strongest).

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Here was my final solution based on sp00m's answer:

function testPassword(pwString) {
    var strength = 0;

    strength += /[A-Z]+/.test(pwString) ? 1 : 0;
    strength += /[a-z]+/.test(pwString) ? 1 : 0;
    strength += /[0-9]+/.test(pwString) ? 1 : 0;
    strength += /[\W]+/.test(pwString) ? 1 : 0;

    switch(strength) {
        case 3:
            // its's medium!
            break;
        case 4:
            // it's strong!
            break;
        default:
            // it's weak!
            break;
    }
}

I've added this purely for reference, however have accepted sp00m's answer since it was their answer that let me to this solution.

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