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I've started with [^\w\\d]*(([0-9]+.*[A-Za-z]{3}.*)|[A-Za-z]+.*([0-9]+.*)) but this requires all letters to be together.

  • 3
    Why not use 2 regex to make things easier – Ed Heal Aug 31 '16 at 18:26
  • Use lookaheads. There are plenty of examples here on SO to get you started. – user663031 Aug 31 '16 at 18:30
  • A single regex is going to be ugly because the digit could be in any of four places relative to the letters. Best to use three regexes. One for basic content, one for digit rule, one for letter rule. – Raymond Chen Aug 31 '16 at 18:32
  • For those interested in why this question was marked as a dup, see meta.stackoverflow.com/questions/285733/…. – user663031 Aug 31 '16 at 18:33
  • If this isn't a password validation question, it's close enough. The duplicate question I've chosen has different specific requirements, but it demonstrates the techniques you need. – Alan Moore Aug 31 '16 at 19:20
2

Personally, I'd do this with separate regexes because it's easier to read and maintain (and add new rules):

function testPW(password) {

    // no regex for length needed
    if (password.length < 6 || password.length > 64) return false;

    // new rules could easily be added here
    var patterns = [/(.*[a-zA-Z]){3}/, /\d/];

    for (var pattern in patterns) {
        if (!pattern.match(password)) return false;
    }

    return true;
}

The first pattern, /(.*[a-zA-Z]){3}/, will match any string that contains three ASCII letter characters. The second, /\d/, will match any string that contains a digit.

When taken together, they'll be able to verify that provided passwords meet the requirements you've specified.

  • I would not use a regex simply to test the length of the string, and also your second regex looks very tedious. Better write /(.*[a-zA-Z]){3}/ – Christoph Aug 31 '16 at 18:43
  • @Christoph: Fair point. Edited. – Sebastian Lenartowicz Aug 31 '16 at 18:55
  • Thanks Sebastian Lenartowicz, I agree it looks more elegant and it should be easier to maintain. I will take this approach. Since I am using Angular 2's Formcontrol and validators, I will work it with them. – Carlos F. Montano Aug 31 '16 at 21:49
2

You could use positive lookahead:

^(?=(.*[a-zA-Z]){3})(?=(.*\d)).{6,64}$

Break-down:

  • (?=(.*[a-zA-Z]){3}): look ahead requiring 3 letters to occur somewhere
  • (?=(.*\d)): look ahead requiring 1 digit to occur somewhere
  • .{6,64}: 6 - 64 characters (no newlines)
  • ^: match at the start of the string
  • $: match the end of the string

Test cases:

var re = /^(?=(.*[a-zA-Z]){3})(?=(.*\d)).{6,64}$/;
// tests: all these should match
var positives = ['abc1.#','1abc1#','@1abc?','@a1bc)'];
// execute tests
test(positives);

// negative tests: all these should not match
var negatives = ['abc1.','1a@c1#','@<abc?'];
// execute tests
test(negatives);

function test(tests){
  for (var str of tests) {
    console.log(`testing "${str}" => ${re.test(str)}`);
  }  
} 

  • Indeed Christoph is right, it fails to validate the legth. I am taking care of the length part by adding minLength and maxLength validators in Angular 2. Then I am actually having to write a custom animation as the requirements call for yes, validating with a pattern(s), but also set the error message for the one part in green for a second, then disappear, meaning I have to code for each condition separately. Thanks for all the help! – Carlos F. Montano Aug 31 '16 at 21:56
  • @CarlosF.Montano: "Indeed Christoph is right, it fails to validate the legth." That was fixed hours before your comment. Look at the abc1. negative test case. The only reason that fails is that it's too short, e.g., the regex is validating the length (that's what the {6,64} does). – T.J. Crowder Sep 1 '16 at 6:40
  • I had no idea positive lookaheads could be used like that. Nice one. – T.J. Crowder Sep 1 '16 at 6:40
  • Thanks @Christoph for having improved the testing snippet with a nice template literal! – trincot Sep 1 '16 at 7:36
  • You are very welcome. I really like the lookahead approach, though I would be highly interested in the performance. Seems like a lot of computational effort, especially with multiple lookaheads, doesn't it? – Christoph Sep 1 '16 at 14:17

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