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I have a regexp of the form:

/(something complex and boring)?(something complex and interesting)/

I'm interested in the contents of the second parenthesis; the first ones are there only to ensure a correct match (since the boring part might or might not be present but if it is, I'll match it by accident with the regexp for the interesting part).

So I can access the second match using $2. However, for uniformity with other regexps I'm using I want that somehow $1 will contain the contents of the second parethesis. Is it possible?

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Thanks everyone for the quick and enlightening answer! –  Gadi A May 13 '11 at 13:50

5 Answers 5

up vote 14 down vote accepted

Use a non-capturing group:

r = /(?:ab)?(cd)/
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This is a non-ruby regexp feature. Use /(?:something complex and boring)?(something complex and interesting)/ (note the ?:) to achieve this.

By the way, in Ruby 1.9, you can do /(something complex and boring)?(?<interesting>something complex and interesting)/ and access the group with $~[:interesting] ;)

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Yup, use the ?: syntax:

/(?:something complex and boring)?(something complex and interesting)/
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I'm not a ruby developer however I know other regex flavors. So I bet you can use a non capturing group

/(?:something complex and boring)?(something complex and interesting)/

There is only one capturing group, hence $1

HTH

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Not really, no. But you can use a named group for uniformity, like this:

/(?<group1>something complex and boring)?(?<group2>something complex and interesting)/

You can change the names (the text in the angle brackets) for the uniformity that you want to achieve. You can then access the groups like this:

string.match(/(?<group1>something complex and boring)?(?<group2>something complex and interesting)/) do |m|
    # Do something with the match, m['group'] can be used to access the group
end
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