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I've been googling a lot and I didn't find an answer for my question:

How can I check with a regular expression whether a string contains at least one of each of these:

  • Big letter
  • Small letter
  • Digit
  • Special Characters `~!@#$%^&*()-_=+\|[{]};:'",<.>/?

So I need at least a big letter and at least a small letter and at least a digit and at least a special character.

I'm sure the answer is very simple, but I can't find it. Any help is greatly appreciated.

Best regards, Lajos Arpad.

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Google for "regex for strong password validation" –  theglauber Jan 9 '12 at 21:00

6 Answers 6

up vote 3 down vote accepted

This does what you want in java as a single regex, although I would personally use something like the solution provided by Mark Rhodes. This will get ridiculous quick (if it isn't already...) as the rules get more complicated.

String regex = "^(?=.*?\\p{Lu})(?=.*?[\\p{L}&&[^\\p{Lu}]])(?=.*?\\d)" + 
               "(?=.*?[`~!@#$%^&*()\\-_=+\\\\\\|\\[{\\]};:'\",<.>/?]).*$"
  1. ^ This matches the beginning of the string. It's not strictly necessary for this to work, but I find it helps readability and understanding. Also, using it when you can often makes a big performance improvement and is almost never a penalty.

  2. (?=X) This is called a positive lookahead. Basically what we're saying is "The beginning of the string (^) must be followed by this thing X in order for a match, but DO NOT advance the cursor to the end of X, stay at the beginning of the line. (that's the "look ahead" part.)

  3. .*?\p{Lu} eat characters after the beginning of the line until you find a capital letter. This will fail to match if no capital letter is found. We use \p{Lu} instead of A-Z because we don't want people from other parts of the world to throw up their hands and complain about how our software was written by an ignorant American.

  4. Now we go back to the beginning of the line (we go back because we used lookahead) and start a search for .*?[\p{L}&&[^\p{Lu}]] shorthand for "all letters, minus the capitals" (hence matches lower case).

  5. .*?\d + .*?[`~!@#$%^&*()\-_=+\\\|\[{\]};:'\",<.>/?] repeat for digits and for your list of special characters.

  6. .*$ Match everything else until the end of the line. We do this just because of the semantics of the 'matches' methods in java that see if the entire string is a match for the regex. You could leave this part of and use the Matcher#find() method and get the same result.

  7. The Owl is one of the best books ever written on any technical subject. And it's short and fast to read. I cannot recommend it enough.

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+1 Thank you, Affe, can you explain this to me? I must confess that I'm not a regular expression expert and I just wanted to solve my problem with regular expressions, instead of checking my strings character-by-character. –  Lajos Arpad Jan 10 '12 at 15:53
1  
Sure, why not?! –  Affe Jan 13 '12 at 3:26
    
Thank you Affe, I would like to upvote you again, but I can't. Ok, I can upvote your comment. –  Lajos Arpad Jan 14 '12 at 11:56

Regular expressions aren't very good for tests where you require all of several conditions to be met.

The simplest answer therefore is not to try and test them all at the same time, but just to try each of the four classes in turn.

Your code might be fractionally slower, but it'll be easier to read and maintain, e.g.

public boolean isLegalPassword(String pass) {

     if (!pass.matches(".*[A-Z].*")) return false;

     if (!pass.matches(".*[a-z].*")) return false;

     if (!pass.matches(".*\\d.*")) return false;

     if (!pass.matches(".*[~!.......].*")) return false;

     return true;
}

EDIT fixed quote marks - been doing too much damned JS programming...

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1  
The matches() method expects the regex to describe the whole string, as if it were anchored at both ends. That means you have to "pad" each of those regexes, like so: ".*[A-Z].*", ".*[a-z].*", etc. –  Alan Moore Jan 9 '12 at 21:15
1  
@AlanMoore gah, you're right! Why does Java have to be different...? –  Alnitak Jan 9 '12 at 21:17
    
nevermind, I think I was (somewhat) wrong. –  FakeRainBrigand Jan 9 '12 at 21:54
1  
@AlanMoore I gave you a +1 by error... It is true that .matches() is woefully misnamed regex-wise and expects to match the whole input, however the solution is not to use .* around. The real solution is to use .find() instead, which performs real regex matching. –  fge Jan 9 '12 at 23:42
3  
@fge: Unfortunately, String doesn't have a find() method, and I don't see any point in telling people to use Pattern.compile("[A-Z]").matcher(pass).find()) when pass.matches(".*[A-Z].*") gets the job done. The only thing to watch out for is if there are line separator characters (\n, \r, etc.) in the string, and I don't think that's an issue here. –  Alan Moore Jan 10 '12 at 0:34

Because these will not appear in any particular order, you will need lookahead assertions for each required character class:

(?=.*[A-Z])(?=.*[a-z])(?=.*[0-9])(?=.*[~!@#$%\^&*()\-_=+\|\[{\]};:'",<.>/?])

(NOTE: because backslash, caret, hyphen, and square brackets can be special inside a range, they should be backslash escaped if they appear in the range, as shown in the fourth lookahead assertion.)

This construct can be made considerably more readable using whitespace and comments, if your regex variant supports the x modifier. In java.util.regex, you can do:

(?x)         # extended syntax
(?=.*[A-Z])  # look ahead for at least one upper case
(?=.*[a-z])  # look ahead for at least one lower case
(?=.*[0-9])  # look ahead for at least one numeral
(?=.*[~!@#$%\^&*()\-_=+\|\[{\]};:'",<.>/?])
             # look ahead for at least one of the listed symbols
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3  
and this proves my point - I've been using regexps for god knows how many years, and have never used a lookahead assertion, and would struggle to read this. The version with four simple regexps can be read by anyone. –  Alnitak Jan 9 '12 at 20:57
1  
(+1) Good answer. Just make sure to use global matching (which is the most common anyway). –  FakeRainBrigand Jan 9 '12 at 20:58
1  
Still suffers from the larger problem of not actually working though :( –  Affe Jan 9 '12 at 21:44
1  
I wonder where all the upvotes are coming from, considering the fact that this regex only matches if the string contains one (1) character that is lowercase, uppercase, a digit and a "special character" all at the same time... –  Tim Pietzcker Jan 9 '12 at 22:23
1  
The original question does not supply context. It does not say, for example, that the regex will be handed "as is" to matches(). The OP may well want to use the solution with matcher(), or as part of a larger regular expression. So I am simply providing the fragment that will perform the necessary assertion. If the desired answer is made more concrete, I can modify the code to fit the specific need. –  MετάEd Jan 9 '12 at 22:42

I agree that @Alnitak's answer is the easiest to read, however it suffers from the fact that it has to evaluate the regexs each time it's run. Since the regexs are fixed, it makes sense to compile them then compare against them. e.g. Something like:

    private static final Pattern [] passwordRegexes = new Pattern[4];
    {
        passwordRegexes[0] = Pattern.compile(".*[A-Z].*");
        passwordRegexes[1] = Pattern.compile(".*[a-z].*");
        passwordRegexes[2] = Pattern.compile(".*\\d.*");
        passwordRegexes[3] = Pattern.compile(".*[~!].*");
    }
    public boolean isLegalPassword(String pass) {

        for(int i = 0; i < passwordRegexes.length; i++){
            if(!passwordRegexes[i].matcher(pass).matches())
                return false;
        }
        return true;
    }

When run 100,000 times on a 10 character password the above code was twice as fast. Although, I guess now you could say this code is harder to read! Never mind!

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+1. It all depends on your requirements, doesn't it. Hardware limitations always factor in, and anybody who fails to consider them in their design will eventually pay the cost, whether it's as obvious as a three-day run time for a single SQL query taking your application down, or as subtle as having to buy a larger fractional colo three months sooner than you might have otherwise. –  MετάEd Jan 10 '12 at 18:14
    
one up for clarity and code readability –  mithrandir Dec 4 at 9:34

You're looking for character classes.

  • Big letter: [A-Z]
  • Small letter: [a-z]
  • Digit: [0-9] or \d
  • Special character: [^A-Za-z0-9] (That is, not any of the others, where ^ negates the class)

If you want to test for 'this' or 'that', you can combine those ranges. For example, Big or Small letters would be [A-Za-z].

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1  
The OP is looking not for 'this' or 'that', but for 'this' and 'that'. I cannot think of a way to do this with character classes alone. –  MετάEd Jan 9 '12 at 21:23
    
+1@MetaEd Yes, MetaEd, I'm looking for at least a big letter and at least a small letter and at least a digit and at least a special character. –  Lajos Arpad Jan 10 '12 at 15:47
    
It's not a complete answer, but at the least the link is relevant, which is why I haven't deleted it. –  FakeRainBrigand Jan 11 '12 at 0:14

\w: is used for matching alpha-numeric (alphabets can be either big or small)
\W: is used for matching special characters

I think this RegEx will be helpful for you:

[\w|\W]+

Here's a good RegEx Simulator, you can use it for building your own RegEx.

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2  
-1. "\W matches special characters" is misleading at best. \W is the complement of \w, so [\w\W] matches any word character, or any character that's not a word character--i.e, any character. (There's no need to specify "OR" in a character class, so | matches a literal |--and that's already being matched by \W.) Anyway, you missed the point of the question, which was to ensure that one of each of the four kinds of character is present. –  Alan Moore Jan 10 '12 at 14:11
    
its not "one of each", please re-read "one of all these" –  Taha Jan 10 '12 at 15:15
    
+1@Alan Moore Yes, MetaEd, I'm looking for at least a big letter and at least a small letter and at least a digit and at least a special character. I'll edit my post to contain "one of each" insteat of "one of all these" to avoid confusions –  Lajos Arpad Jan 10 '12 at 15:48

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