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I've got confused about using non-greedy regex in Ruby when the matching should be done from the end of the string.

Assuming that my string:

s = "Some words (some nonsense) and more words (target group)"

And I want to get "(target group)" in result. How can I do that? Was trying the following:

greedy:

s.match(/\(.*\)$/)[0]
=> "(some nonsense) and more words (target group)"

s.match(/\(.*\)/)[0]
=> "(some nonsense) and more words (target group)"

non-greedy:

s.match(/\(.*?\)/)[0]
=> "(some nonsense)"

s.match(/\(.*?\)$/)[0]
=> "(some nonsense) and more words (target group)"

Please note, that initial string may or may not include any number of groups in "()".

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1  
Keep in mind that a pattern is used by the regex engine from the left to the right, thus, using greedy or lazy quantifiers doesn't change anything. pobrelkey gave you a way to avoid the problem using a negated character class. –  Casimir et Hippolyte Nov 15 '13 at 1:01
    
Thanks @CasimiretHippolyte, I realize that's what I was struggling with. No way to enforce regex engine to work in opposite direction, I guess?\ –  Alex F Nov 15 '13 at 1:25

3 Answers 3

up vote 2 down vote accepted

Not sure I understand your question. So my apologies if I get this wrong:

Are you sure you need .*? when [^)]* will do?

s.match(/\([^)]*\)$/)[0]
=> "(target group)"

If you insist on using .*? anyway, precede your reluctant match with a greedy match:

s.match(/^.*(\(.*?\))$/)[1]
=> "(target group)"
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Thanks, it looks to be working as I wanted. I don't insist on using non-greedy mode at all, that was just my first thought. So do I get your solution right - search for any chars surrounded by ( and ) in the end of the string, that does not include ')' –  Alex F Nov 15 '13 at 1:18
    
Correct - [^)] matches any character other than a right parenthesis. –  pobrelkey Nov 15 '13 at 7:33

non-greedy regex approach using scan

s.scan(/\(.*?\)/).last
=>"(target group)"
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Perhaps you want s.scan(/\(.*?\)/).last? The OP says (clumsily) that there may be any number of parentheses before the final pair that we want to match. –  pobrelkey Nov 15 '13 at 1:03
    
Yes, you're right. I've edited it to reflect what is being asked for –  MxyL Nov 15 '13 at 1:05
    
It looks to be working fine as well, but would be hard to use if I decide to utilize this match for replacement in sub() method, for example. –  Alex F Nov 15 '13 at 1:23

And here is a non-regexp version:

s = "Some words (some nonsense) and more words (target group)"

p s[(s.rindex('(')+1)...s.rindex(')')] #=> target group
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