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I have a rather peculiar problem. I'm trying to find a pattern like [some string][word boundary]. Simplified, my code is:

final Pattern pattern = Pattern.compile(Pattern.quote(someString) + "\\b");
final String value = someString + " ";
System.out.println(pattern.matcher(value).find());

My logic tells me this should always output true, regardless of what someString is. However:

  • if someString ends with a word character (e.g. "abc"), true is outputted;
  • if someString ends with a word boundary (e.g. "abc."), false is outputted.

Any ideas what is happening? My current workaround is to use \W instead of \b, but I'm not sure of the implications.

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2 Answers 2

up vote 6 down vote accepted

A dot then a space is not a word boundary.

A word boundary is between a word character, then a non-word character, or visa versa.
ie between [a-zA-Z0-9_][^a-zA-Z0-9_] or [^a-zA-Z0-9_][a-zA-Z0-9_]

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A word boundary is a non-word character that is preceded by a word character or vice versa. The space preceded by a period (2 non-word characters) does not meet this requirement.

The effect of using \W is that any non-word characters will be matched (the same as \b, but without the condition that the character is preceded by a word character), which seems correct for your example.

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Yes, but the period in abc. should become part of the regex (via Pattern.quote("abc."). So the pattern should become "abc. followed by a word boundary", which should match abc. followed by a space. –  Felix Jul 4 '12 at 13:22
1  
@Felix for a character to be a word boundary it must be a non-word character that is preceded by a word character. A space preceded by a period does not meet this requirement. –  rich.okelly Jul 4 '12 at 13:25
    
Thanks! I was under the impression it was just a character class shortcut, like \W. –  Felix Jul 4 '12 at 13:28

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