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I know these questions are lame and make Stack Overflow like a regex dictionary, but I really would need some help with. It's like trying to understand hieroglyphs (at least for someone this is easy reputation).

I want to write a regex to check if password is at least 8 characters long and has at least 2 numbers or symbols (or mixed). The symbols probably can be the obvious ones [-+_!@#$%^&*.,?].

So I've come up with something like this so far: ^(?=.{8,})(?=.*\d{2,}).*$, but I can't understand how to put the symbols sequence in the \d part. Oh, I'm not sure if (?=) does work for Java, does it? This rubular.com/r/VC0ncbDlRl made writing regex little easier.

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2  
Why not making first a string length check (for 8 chars) and then one regex for numbers and another for symbols? Regexes are not a good fit for this kind of problems, where characters can be anywhere. –  Pablo Fernandez Jul 17 '11 at 22:51
    
@Pablo Uh, what are regexes good for then? –  Rihards Jul 17 '11 at 22:54
    
@Richards: For soooo much. When you learn working with it you will see it is really amazing. RegEx's are used to find/check regular data, like ip-addresses, email addresses, etc... Take a look at this site: regular-expressions.info/examples.html –  Martijn Courteaux Jul 17 '11 at 22:56
    
@Martijn, I see.. this just seemed perfect case (for me) to use regex too. Common pitfall? –  Rihards Jul 17 '11 at 22:59
1  
@Richards, for things like "this followed by that, and optionally by this and that". Check @Martijn answer. The code is readable, and you don't need to know stuff like positive lookahead (that your regex uses). Your teammates (and yourself in a few months) will be happier if you go that way. –  Pablo Fernandez Jul 17 '11 at 22:59

4 Answers 4

up vote 4 down vote accepted

That is not a job to do with a RegEx. In Java, it is so much simpler to write some custom code:

public static boolean isValidPassword(String pass)
{
    if (pass.length() < 8) return false;

    int symbolOrNumberCount = 0;
    String symbols = "0123456789-+_!@#$%^&*.,?";

    for (int i = 0; i < pass.length(); ++i)
    {
        if (symbols.indexOf((int) pass.charAt(i)) != -1)
        {
            symbolOrNumberCount++;
        }
    }

    return symbolOrNumberCount >= 2;
}
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bravo, I was writing the same but in a comment :S –  Pablo Fernandez Jul 17 '11 at 22:52
    
@Pablo: Indeed, I already upvoted that comment :D –  Martijn Courteaux Jul 17 '11 at 22:52
    
@Pablo @Martijn: "Simpler"? Compare your code to mine. Which do you consider simpler? –  Ryan Stewart Jul 17 '11 at 22:57
    
p.s. I do agree that it's not a great match for regex, but it can be done. –  Ryan Stewart Jul 17 '11 at 22:57
    
"Simpler"... Well, my code is almost speakable. It is pure logical. But a regex is so difficult to understand when they are that complex. And, yes I know that regexes are logical as well... :) –  Martijn Courteaux Jul 17 '11 at 23:00

Another way to count numbers and specials that's "simpler" all around, using Commons Collections:

int matches = CollectionUtils.countMatches(
    passwordCharacters, new NumberOrSpecialCharacterPredicate());
return passwordCharacters.size() >= 8 && matches >= 2;

class NumberOrSpecialCharacterPredicate implements Predicate {
    private static final String symbols = "0123456789-+_!@#$%^&*.,?";
    public boolean evaluate(Object object) {
        return symbols.indexOf((Character) object) >= 0;
    }
}
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You're missing the legnth > 8 check –  Pablo Fernandez Jul 18 '11 at 0:09
    
@Pablo: yeah, I was just going to demo the "special" character counting, but I just updated it to include the overall length check, too. –  Ryan Stewart Jul 18 '11 at 0:14
    
good alternative +1 –  Pablo Fernandez Jul 18 '11 at 0:20
3  
Thank you for this alternative, but I don't feel like including another library. –  Rihards Jul 18 '11 at 0:39

The other answer is a good one, but here's another way:

String password = "sn3arki7p";
char[] passwordCharacters = password.toCharArray();
Arrays.sort(passwordCharacters);
String sortedPassword = new String(passwordCharacters);
Pattern pattern = Pattern.compile("^(?=.{8,})(?=.*[-+_!@#$%^&*.,?0-9]{2,}).*$");
System.out.println(pattern.matcher(sortedPassword).matches());

Edit: Adjusted to require at least 2 of (number or special) instead of 2 number and 2 special.

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I would like the password to contain at least 2 numbers or 2 symbols or 1 number and 1 symbol. Well in sort - at least 2 of this group: 0123456789-+_!@#$%^&*.,?. –  Rihards Jul 17 '11 at 22:56
    
@Richards: Adjusted the answer's regex to match that. –  Ryan Stewart Jul 17 '11 at 23:01
    
Check this: rubular.com/r/LwO7hSmwhX it matches "snarki7p" too but it has only "7". –  Rihards Jul 17 '11 at 23:04
    
Yeah, sorry. Forgot that the \d outside wouldn't be quantified. Updated. –  Ryan Stewart Jul 17 '11 at 23:09
    
@Richards: You should give serious consideration to what @Pablo and @Martijn are saying. There are more maintainable ways to solve your problem than with this moderately complex regex. –  Ryan Stewart Jul 17 '11 at 23:22

How about this:

^(?=.{8,})(.*[-+_!@#$%^&*.,?0-9]){2,}
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Thank you, with String.matches("^(?=.{8,})(.*[-+_!@#$%^&*.,?0-9]){2,}") works perfect! –  Rihards Jul 18 '11 at 0:35
    
@Richards: This is wrong. It doesn't match, for example "abc34def" –  Ryan Stewart Jul 18 '11 at 0:50
    
Really?Ugghh. Arggg. –  Rihards Jul 18 '11 at 9:03
    
@Ryan, ummm, i just checked and it does: rubular.com/r/XpVhg3Fr9J ?! –  Rihards Jul 18 '11 at 9:05
2  
@Richards: You should be doing some fairly rigorous unit testing of your "password validator" in Java and not relying on sporadic, manual testing at a regex website whose behavior you can't even be sure matches Java's. –  Ryan Stewart Jul 18 '11 at 12:28

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