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I have a long RegEx that is working, but I have a section at the end that is perplexing me. I have a scenario where I am parsing some HTML and one of two scenarios can happen. Either the pattern I am searching for ends with a X followed immediately by a single digit or it's a  . Here's the RegEx fragment:

(X(\d+)| )

As you might have noticed, I don't care about the X or the  , I just want to capture the digit if it's there. It appears that in order to use the |, I have to use a capture group. So now I get BOTH X5 AND 5 if that pattern exists. I really just want the digit captured if it's there.

Thanks!

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4 Answers 4

up vote 4 down vote accepted

To get the effect of grouping, without the effect of capturing, use the (?:...) notation:

(?:X(\d+)| )

This is equivalent to what you wrote, except that it doesn't create a capture group for X5, only for 5.

(By the way, you say "a single digit", but your regex has \d+ rather than \d, so it can actually match multiple digits.)

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+1 for the \d+ notification –  dave Dec 1 '11 at 1:25
    
+1 I was about to point out the \d+ when I saw this –  Ben Swinburne Dec 1 '11 at 1:44
    
The \d+ was intentional. I was simply making sure that if the pattern suddenly had more than one digit, I was covered. Thanks for the answer! –  Moebius Dec 1 '11 at 2:04
    
@Moebius: You're welcome! –  ruakh Dec 1 '11 at 2:05

Can you use a non-capturing group?

(?:X(\d+)| )
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try

(?:X(\d+)| )

adding ?: you actually disable the backreference while grouping.

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Use a non-capturing group:

(?:X(\d+)| )
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