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I have this regex to identify if the line contains two underscores:

\s*_{2}(\w+)

Any space, two underscores and then a word. It turns out, I need to know also for no underscore at all, so I have:

\s*(\w+)

Optional spaces followed by a word. Then I get the group 1 which is my word. So far so good.

The problem is the action taken when two underscores are used, is almost identical to the code when no underscore are use ( except that I raise a flag )

if( s =~ uderscore ) { 
   takeGroup( 1 )
   yada yada 
   flag = true
} else if( s =~ noUnderscore { 
  takeGroup( 1 ) 
  yada yada 
   flag = false 
}

I think there must be a better way instead of duplicating the whole regexp and test with and with out.

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\s*_{2}?(\w+) Ought to do it for you. –  Byron Whitlock Jan 11 '11 at 21:24
    
I think the problem here will to to know if I need to raise the flag or not. –  OscarRyz Jan 11 '11 at 21:53
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2 Answers

up vote 5 down vote accepted

Use this regex instead:

\s*(_{2})?(\w+)

Then simply test for the presence of the first group -- if it's there, the underscores were present. What was group 1 will then become group 2.

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Correction ( at least in my test ) if not present the first group is null. –  OscarRyz Jan 11 '11 at 21:55
    
@OscarRyz: Of course -- that's what I meant by "present." –  cdhowie Jan 11 '11 at 23:00
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\s*(__)?(\w+)

(__)? is an optional group of two underscores. Note that the word will be in group 2 now instead of 1. You could use a non-capturing group (?:__) instead if you wanted to not change the group numbering.

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Ahh yeap, thata was my other problem ( I forgot to mention ) when I group it, the number changed. So I have to add extra check to know if there is 2 or 3 groups and slide accordingly? What's what "non-capturing group" all about? Because I need to know ( to raise the flag ) but I don't want to change all the numbers ( if I can help it ) :P –  OscarRyz Jan 11 '11 at 21:31
    
What's the difference between using a non-capturing group and not setting the group at all? –  OscarRyz Jan 11 '11 at 21:40
    
The group is to be able to make the underscores optional together (if you just did __?, then only the second underscore would be optional). –  Amber Jan 11 '11 at 22:10
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