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I would like to get the parameter (without parantheses) of a function call with a regular expression.

I am using egrep in a bash script with cygwin.

This is what I got so far (with parantheses):

$ echo "require(catch.me)" | egrep -o '\((.*?)\)'
(catch.me)

What would be the right regex here?

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3 Answers 3

up vote 4 down vote accepted

http://www.greenend.org.uk/rjk/2002/06/regexp.html

What are you looking for - is a lookbehind and lookahead regular expressions.

Egrep cannot do that. grep with perl support can do that.

from man grep:

 -P, --perl-regexp
          Interpret PATTERN as a Perl regular expression.  This is highly experimental and grep -P may warn of unimplemented features.

So

$> echo "require(catch.me)" | grep -o -P '(?<=\().*?(?=\))'
catch.me
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Thanks! But wouldn't this be enough? (removed the ? after .*) echo "require(catch.me)" | grep -o -P '(?<=\().*(?=\))' –  Matthias Nov 24 '11 at 12:50
    
In that case - yes. But it depends on context of your problem. ? - is for non-greedy regular expression. –  ДМИТРИЙ МАЛИКОВ Nov 24 '11 at 12:58

If you can use sed then the following would work -

echo "require(catch.me)" | sed 's/.*[^(](\(.*\))/\1/'

You can modify your existing regex to this

echo "require(catch.me)" | egrep -o 'c.*e'

Even though egrep offers this (from the man page)

-o, --only-matching
              Show only the part of a matching line that matches PATTERN.

It isn't really the correct utility. SED and AWK are masters at this. You will have much more control using either SED or AWK. :)

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Just to tag onto this; greps don't print the capture group, they print the entire match. I don't know of way to tell grep to do that. I'd usually bust out another tool. –  Al G Nov 23 '11 at 18:49

From the manual :

   grep, egrep, fgrep - print lines matching a pattern

Basically, grep is used to print the complete line, so you won't do anything more.

What you should do is using another tool, maybe perl, for such operations.

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