134

What is the regex to make sure that a given string contains at least one character from each of the following categories.

  • Lowercase character
  • Uppercase character
  • Digit
  • Symbol

I know the patterns for individual sets namely [a-z], [A-Z], \d and _|[^\w] (I got them correct, didn't I?).

But how do I combine them to make sure that the string contains all of these in any order?

  • What platform/regex-dialect? Bart's answer is right, but lookahead assertions aren't reliable in JavaScript, for example. – bobince Oct 13 '09 at 12:31
  • Nowhere in particular - I'm learning regex. Is there an alternative that can be used in javascript? – Amarghosh Oct 14 '09 at 8:22
  • @bobince Hey, I am trying to find out why lookahead assertions aren't reliable in Javascript. Is there a writeup on this? – Chris Bier Oct 7 '13 at 21:18
  • @ChrisB: There's a really confusing IE/JScript bug: blog.stevenlevithan.com/archives/regex-lookahead-bug – bobince Oct 8 '13 at 13:49
307

If you need one single regex, try:

(?=.*\d)(?=.*[a-z])(?=.*[A-Z])(?=.*\W)

A short explanation:

(?=.*[a-z])        // use positive look ahead to see if at least one lower case letter exists
(?=.*[A-Z])        // use positive look ahead to see if at least one upper case letter exists
(?=.*\d)           // use positive look ahead to see if at least one digit exists
(?=.*\W])        // use positive look ahead to see if at least one non-word character exists

And I agree with SilentGhost, \W might be a bit broad. I'd replace it with a character set like this: [-+_!@#$%^&*.,?] (feel free to add more of course!)

  • 6
    Thanks again Bart. I wasn't aware of positive look ahead. – Amarghosh Oct 14 '09 at 4:30
  • What would happen if i change the last .+ into .*? I couldn't come up with a test case that fails with .*. Are they same in this context? "Zero or more characters" seems to be fine - just seeking confirmation. – Amarghosh Oct 14 '09 at 9:49
  • @Amarghosh: in this case, it makes no difference. Because of the positive look-aheads, the string already contains at least 4 characters. So it makes no difference to change .+ into .* or even .{4,} for that matter. – Bart Kiers Oct 14 '09 at 10:03
  • If you would be willing to add a little explanation, I am having trouble understanding how the combination of these lookaheads guarantees at least 1 of each character set will be present – Sharlike Jul 22 '13 at 19:46
  • 4
    @ikertxu, try something like this: ^(?=.*[a-z])(?=.*[A-Z])(?=.*\d)(?!.*[&%$]).{6,}$ – Bart Kiers Oct 21 '14 at 8:28
13

Bart Kiers, your regex has a couple issues. The best way to do that is this:

(.*[a-z].*)       // For lower cases
(.*[A-Z].*)       // For upper cases
(.*\d.*)          // For digits

In this way you are searching no matter if at the beginning, at the end or at the middle. In your have I have a lot of troubles with complex passwords.

  • 4
    You're not checking for symbols as the OP requested. – Casimir May 25 '18 at 12:56
5

You can match those three groups separately, and make sure that they all present. Also, [^\w] seems a bit too broad, but if that's what you want you might want to replace it with \W.

  • Thanks. I wasn't aware of \W. Just looked it up to find that it matches Not Word. Is there any difference between \W and [\W]? Is [\W] just redundant? – Amarghosh Oct 14 '09 at 4:29
  • @Amarghosh, yes, \W and [\W] result in the same. – Bart Kiers Oct 14 '09 at 5:31

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