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I wrote a piece of ruby code like below

  #! /usr/bin/ruby
    s = "[[abc]]"  
    if(s =~ /\[(.+)*?\]/)
        puts $1
    end
    if(s =~ /\[(.+?)\]/)
        puts $1
    end

its output is:

[abc
[abc

then I change variable s

  s = "[[abc]]]"

and the rest part remains the same, but now the result is

[abc]
[abc

Why this happens? Could anyone explain to me about this?

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I think this may have something to do with the difference between +? and *? these two non-greedy quantifiers? –  fabregaszy May 10 '12 at 10:00
    
I have never used ruby, but your regex is not non greedy. The .+ is still eventually greedy. –  npinti May 10 '12 at 10:04
    
@npinti then why in case 2 it didn't match [abc]] as what it would do in a greedy case? –  fabregaszy May 10 '12 at 10:07

1 Answer 1

up vote 3 down vote accepted

I am not sure if someone here will be able to explain this behaviour. I checked with Regexr and there the regex behaves like you are expecting it.

But

\[(.+)*?\]

is just a horribly bad designed expression. What should (.+)* match? Thats nesting quantifiers and it could find a valid match in many variations. Now worse, making the outer quantifier lazy, what should happen?

If you want to have greedy matching use

\[(.+)\]

if you want to have lazy matching, use

\[(.+?)\]

But never nest quantifiers, so that they can find many possible solutions, this leads to catastrophic backtracking, or see here a blog post by Jeff Atwood on Coding Horror about Regex Performance

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