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I have the following string:

Eclipse Developments (Scotland) Ltd t/a Martin & Co (Glasgow South)

I need to get the last (always the last, however sometimes the only) brackets value, so in this case "Glasgow South".

I know I should use .sub but can't work out the correct regex.

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2 Answers 2

up vote 9 down vote accepted

Usually sub is used for sub-stitutions. What you need is scan:

test = "Eclipse Developments (Scotland) Ltd t/a Martin & Co (Glasgow South)"

test.scan(/\(([^\)]+)\)/).last.first
# => "Glasgow South"

The reason for the odd .last.first call is scan returns an array of arrays by default. You want the first (and only) element of the last match.

Translating that regexp, which can be prickly for the uninitiated:

\(     # A literal bracket followed by...
(      # (Memorize this)
[^)]+  # One or more (+) characters not in the set of: closing-bracket [^)]
)      # (End of memorization point)
\)     # ...and a literal closing bracket.
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Great, this works fine on 2 instances. I forgot to mention but sometimes, the string will only contain 1 set of parenthesis (which will need to be selected). Sorry! –  rickyduck Jun 12 '12 at 16:29
1  
If you look at the output of the scan method, which is something best done inside irb, you can pick out whatever bits you want. This just extracts things inside brackets, so [0][0] would be the contents of the first brackets, [1][0] for the second set, and so forth. Remember that last will pull the last set, which for a single set is the first as well. –  tadman Jun 12 '12 at 20:21
    
Sorry, it was me being a muppet. Thanks very much –  rickyduck Jun 13 '12 at 8:29

Regexps are greedy; if you ask for .* it will match as much as possible. For that reason, the following will work:

test = "Eclipse Developments (Scotland) Ltd t/a Martin & Co (Glasgow South)"
test =~ /.*\((.*)\)/
answer = $1
# => "Glasgow South"
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