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Can anybody explain how exactly the back reference works in ruby regular expression? I particularly want to know exactly how (..) grouping works. For example:

s = /(..) [cs]\1/.match("The cat sat in the hat")

puts s 

for the code snippet above, the output is: at sat. Why/How is it getting this output ?

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2 Answers 2

up vote 10 down vote accepted

Here is what this regular expression means:

regex = /(..) [cs]\1/
#        ├──┘ ├──┘├┘
#        │    │   └─ A reference to whatever was in the first matching group.
#        │    └─ A "character class" matching either "c" or "s".
#        └─ A "matching group" referenced by "\1" containing any two characters.

Note that after matching a regular expression with a matching group, the special variables $1 ($2, etc) will contain what matched.

/(..) [cs]\1/.match('The cat sat in the hat') # => #<MatchData...>
$1 # => "at"

Note also that the Regexp#match method returns a MatchData object, which contains the string which caused the entire match ("at sat", aka $&) and then each matching group ("at", aka $1):

/(..) [cs]\1/.match('The cat sat in the hat')
=> #<MatchData "at sat" 1:"at"> 
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1  
This is exactly what I was looking for. Superb :) +1 ! –  Keen Learner Oct 30 '12 at 4:26
4  
@K.M.RakibulIslam: then you should accept this answer. –  pje Oct 30 '12 at 4:30
    
ofcourse I do. Actually, I am new here so did not know about the "Accept" thing. This answer is more than accepted :) Accepted ! –  Keen Learner Oct 30 '12 at 14:27
    
@K.M.RakibulIslam: Yay! (And welcome.) –  pje Oct 30 '12 at 19:44

Firstly, the output of puts s isn't the capture groups:

s = /(..) [cs]\1/.match("The cat sat in the hat")
puts s
# at sat

If you want to access its capture groups, you should be using MatchData.captures:

s = /(..) [cs]\1/.match("The cat sat in the hat")
s.captures
# => ["at"]
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thanks for your answer. Actually, I want to know (..) this grouping means what exactly? –  Keen Learner Oct 30 '12 at 4:24

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