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I'm trying to match this string:

Text 18 19 Text

With this regex:

\s+\d\d\s+

The string has two digits, each of them are surrounded by a leading and a trailing space.

So I'm thinking - this should give me 18 and 19 right? It doesn't, it only gives me only 18.

I'm testing with this tester here: http://java-regex-tester.appspot.com/

Thanks!

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3 Answers 3

up vote 8 down vote accepted

The reason that you do not match the second item is that the space between 18 and 19 is consumed by the trailing \s+ of the first match. You should make a non-consuming zero-width regexp for the trailing blank, for example by using the lookahead syntax or a token for zero-width boundary:

\s+\d\d(?=\s+)
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Nice explaination +1 for the post. –  Bhavik Ambani Nov 11 '12 at 11:45
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Use this instead:

\b\d\d\b

Your regex isn't matching the second number because the first match has already "eaten up" all the spaces.

Meanwhile, \b is a "word boundary," and what is known as a zero-width (meta-)character: it doesn't "eat up" anything while it matches.

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Awesome. I'm curious though, why does \b not eat up the spaces whereas \s does? –  David Nov 11 '12 at 11:11
    
@David - See edit. It's one of several regex constructs that are designed to be zero-width. Another notable one would be lookaheads, which you could have used as well: \s+\d\d(?=\s). –  Andrew Cheong Nov 11 '12 at 11:13
    
beware that this would also capture the two digit at the end if there is any –  Anirudha Nov 11 '12 at 11:29
    
@Fake.It.Til.U.Make.It - Yes, \b\d\d\b would capture at the end, as well as the beginning, which I imagine is a good thing. On the other hand, \s+\d\d(?=\s) would fail to capture two digits at the beginning or end, which is probably not intended. –  Andrew Cheong Nov 11 '12 at 12:22
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Because first parsing outputs to " 18 " and remaining string is "19 Text" which is not a match.

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