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I need to create a regular expression that allows a string to contain any number of:

  • alphanumeric characters
  • spaces
  • (
  • )
  • &
  • .

No other characters are permitted. I used RegexBuddy to construct the following regex, which works correctly when I test it within RegexBuddy:

\w* *\(*\)*&*\.*

Then I used RegexBuddy's "Use" feature to convert this into Java code, but it doesn't appear to work correctly using a simple test program:

public class RegexTest
{
  public static void main(String[] args)
  {
    String test = "(AT) & (T)."; // Should be valid
    System.out.println("Test string matches: "
      + test.matches("\\w* *\\(*\\)*&*\\.*")); // Outputs false
  }
}
  • I must admit that I have a bit of a blind spot when it comes to regular expressions. Can anyone explain why it doesn't work please?
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4 Answers 4

up vote 13 down vote accepted

That regular expression tests for any amount of whitespace, followed by any amount of alphanumeric characters, followed by any amount of open parens, followed by any amount of close parens, followed by any amount of ampersands, followed by any amount of periods.

What you want is...

test.matches("[\\w \\(\\)&\\.]*")

As mentioned by mmyers, this allows the empty string. If you do not want to allow the empty string...

test.matches("[\\w \\(\\)&\\.]+")

Though that will also allow a string that is only spaces, or only periods, etc.. If you want to ensure at least one alpha-numeric character...

test.matches("[\\w \\(\\)&\\.]*\\w+[\\w \\(\\)&\\.]*")

So you understand what the regular expression is saying... anything within the square brackets ("[]") indicates a set of characters. So, where "a*" means 0 or more a's, [abc]* means 0 or more characters, all of which being a's, b's, or c's.

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5  
Good, but you should mention that this allows the empty string, which may not be his intent. –  Michael Myers Apr 22 '09 at 16:06
    
It's okay, it only gets to the regex test if the string isn't empty. –  John Topley Apr 22 '09 at 16:17
1  
Well I expanded the answer anyway to include a few other alternatives, and explain how it works a little. –  Illandril Apr 22 '09 at 16:18
    
Excellent, thanks. –  John Topley Apr 22 '09 at 16:22

Maybe I'm misunderstanding your description, but aren't you essentially defining a class of characters without an order rather than a specific sequence? Shouldn't your regexp have a structure of [xxxx]+, where xxxx are the actual characters you want ?

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The difference between your Java code snippet and the Test tab in RegexBuddy is that the matches() method in Java requires the regular expression to match the whole string, while the Test tab in RegexBuddy allows partial matches. If you use your original regex in RegexBuddy, you'll see multiple blocks of yellow and blue highlighting. That indicates RegexBuddy found multiple partial matches in your string. To get a regex that works as intended with matches(), you need to edit it until the whole test subject is highlighted in yellow, or if you turn off highlighting, until the Find First button selects the whole text.

Alternatively, you can use the anchors \A and \Z at the start and the end of your regex to force it to match the whole string. When you do that, your regex always behaves in the same way, whether you test it in RegexBuddy, or whether you use matches() or another method in Java. Only matches() requires a full string match. All other Matcher methods in Java allow partial matches.

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Great tip - thanks! –  John Topley Apr 23 '09 at 13:11

the regex

\w* *\(*\)*&*\.*

will give you the items you described, but only in the order you described, and each one can be as many as wanted. So "skjhsklasdkjgsh((((())))))&&&&&....." works, but not mixing the characters.

You want a regex like this:

\[\w\(\)\&\.]+\

which will allow a mix of all characters.

edit: my regex knowledge is limited, so the above syntax may not be perfect.

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1  
Escaping the square brackets is not right. Inside the square brackets, no escaping is necessary for parentheses, the ampersand or the dot: "[\w()&.]" –  Tomalak Apr 22 '09 at 16:32
    
the square brackets are not escaped, the regex is contained in backslashes. Other than that, thanks for the info. Im not sure what needs to be escaped and what doesnt, so thanks. –  Scott M. Apr 22 '09 at 17:22
    
Why on Earth would anybody want to contain a regular expression in backslashes? Nothing in your regex needs to be escaped. –  Jan Goyvaerts Apr 23 '09 at 12:31
    
You're probably thinking of forward slashes, the traditional regex delimiter in languages that feature regex literals. In JavaScript, for example, your regex would be /[\w ()&.]+/. But in Java regexes are just strings, so you would have to write it as "[\\w ()&.]+". –  Alan Moore Apr 23 '09 at 12:50
    
well at least every day is a learning experience at stackoverflow :). Like i said im just trying to help, but i do realize my regex knowledge is limited. Thanks for clearing those issues up. –  Scott M. Apr 23 '09 at 13:09

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