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I have this regular expression:

[^0-9!a-zA-z#\\$%&'\\*\\+\\-/=\\?\\^_`\\{\\|\\}~@\\.]+

and I am trying to split the email address using

[Email]info@emerycommunications.com

But the following code in java:

String fileStr = "[Email]info@emerycommunications.com";

String invalidCharacters = "[^0-9!a-zA-z#\\$%&'\\*\\+\\-/=\\?\\^_`\\{\\|\\}~@\\.]+";

String[] tokens = fileStr.split(invalidCharacters);

for (String token:tokens) {
    if (token.contains("@")) {
        System.out.println(token);
    }
}

is giving this output:

[Email]info@emerycommunications.com

I am completely clueless as invalidCharacters variable covers [ and ] also.

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2 Answers 2

up vote 7 down vote accepted

You have A-z in your character class, and the square bracket characters come between upper case Z and lower case a in ASCII (and Unicode) order. Thus ] is being considered a valid rather than invalid character - presumably you meant A-Z instead.

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Seems to be working now after I replaced A-z with A-Z. Thanks a lot. –  Md. Reazul Karim Nov 25 '12 at 22:54
1  
@Md.ReazulKarim glad it helped, and welcome to StackOverflow. Please consider marking the answer as accepted using the tick mark to the left. –  Ian Roberts Nov 25 '12 at 23:00

This regular expression:

[^0-9!a-zA-z#\$%&'\*\+\-/=\?\^_`\{\|\}~@\.]+

Matches at least one but as many as there are of any character except the ones between the square brackets. The square brackets themselves are not part of the set of characters. And most of those backslashes are unnecessary; none of the backslashed characters besides the hyphen is special within a character class.

However, since you have the range A-z, which is uppercase A through lowercase z, not only do you have the lowercase letters in there twice, but you also have all the characters that come between Z and a, namely [, \, ], ^, _, and `. So that's how the brackets are getting into the negated character class.

If that's not what you intend, this regex may be what you're looking for:

[^0-9!a-zA-Z#$%&'*+=?^_`{|}~@.-]+

(Moving the hyphen to the end means it doesn't need to be backslashed)

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The backslashes do not add a literal backslash to the character class. –  Jan Dvorak Nov 25 '12 at 22:51
    
@m.buettner I assume this regex is already string-unescaped, so they do get to the regex engine (and escape the punctuation). –  Jan Dvorak Nov 25 '12 at 22:53
    
Look at the code; the backslashes are doubled in the actual string, so they do get to the regex engine. –  Mark Reed Nov 25 '12 at 22:55
    
Also, making a set of unmatched (rather than matched) characters was the askers's intention. –  Jan Dvorak Nov 25 '12 at 22:55
    
No, my regex is as seen after String processing. String invalidCharacters = "[^0-9!a-zA-z#\\$%&'\\*\\+\\-/=\\?\\^_\\{\\|\\}~@\\.]+";`n - all the backslashes are doubled, so they are making it through to the regex engine, where - since they're inside a character class - they include backslash in the character class (or exclude it, since it's negated). –  Mark Reed Nov 25 '12 at 22:58

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