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I want to split a String at the word boundaries using Scanner. Normally, this would be done like this:

Scanner scanner = new Scanner(...).useDelimiter("\\b");

The problem is that my definition of "word" character is a tiny bit different from the standard [a-zA-Z_0-9] as I want to include some more characters and exclude the _: [a-zA-Z0-9#/]. Therefore, I can't use the \b pattern.

So I tried to do the same thing using look-ahead and look-behind, but what I came up with didn't work:

(<?=[A-Za-z0-9#/])(?![A-Za-z0-9#/])|(<?![A-Za-z0-9#/])(?=[A-Za-z0-9#/])

The scanner doesn't split anywhere using this.

Is it possible to do this using look-ahead and look-behind and how?

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Just a minor point, but your "standard" definition of \b is also wrong. –  Mark Byers Oct 22 '12 at 14:07
    
I didn't give one, but I assume it is something like (?<=\w)(?!\w)|(?<!\w)(?=\w). –  rolve Oct 22 '12 at 14:26
1  
That's how it's supposed to be defined, and if you use Java 7 and its new UNICODE_CHARACTER_CLASS mode, it is. But Java's legacy \b is a bit more...creative. See this question for details, especially @tchrist's answer. –  Alan Moore Oct 22 '12 at 15:36
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3 Answers

up vote 3 down vote accepted

There's an error in your syntax. The ? comes first:

(?<=[A-Za-z0-9#/])(?![A-Za-z0-9#/])|(?<![A-Za-z0-9#/])(?=[A-Za-z0-9#/])
 ^^                                  ^^
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I don't believe it... Thanks man. –  rolve Oct 22 '12 at 14:13
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new Scanner(...).useDelimiter(
  "(?<=[a-zA-Z0-9#/])(?=[^a-zA-Z0-9#/])|(?<=[^a-zA-Z0-9#/])(?=[a-zA-Z0-9#/])");
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No, that requires a character in front and a character behind, so it won't match a word boundary at the beginning or end of the string. The OP has the right formula, he just made a slight error with the syntax. –  Alan Moore Oct 22 '12 at 14:33
    
@AlanMoore - Delimiter is something between "words". Think again... –  Ωmega Oct 22 '12 at 14:35
    
He's trying to create an equivalent for \b that conforms to his definition of word characters. His corrected regex works exactly the same as yours when they're used with Scanner's useDelimiter() method--which, I admit, I hadn't realized when I wrote my comment. But I think my point is still valid: your answer may solve his problem, but it doesn't answer his question. –  Alan Moore Oct 22 '12 at 15:16
    
@AlanMoore - Read his question again - it says: I want to split a string... –  Ωmega Oct 22 '12 at 15:25
    
Okay, the question he should have been asking. :P The problem with his own solution was in the syntax, not the semantics. –  Alan Moore Oct 22 '12 at 15:41
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what is wrong with:

[^A-Za-z0-9#/]+

in other words any run of at least one character in the set that is not your word set

or if you need the spaces

[^A-Za-z0-9#/ ]+

and then strip the spaces out for special processing after the scanner (if needed)

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I need the spaces between the words as well. The scanner would swallow them using your regex. –  rolve Oct 22 '12 at 14:12
1  
I think OP wants spaces as separate "words"/tokens or whatever we will call it :) –  Pshemo Oct 22 '12 at 14:16
    
As separate tokens, yes. –  rolve Oct 22 '12 at 14:16
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