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I want to use regular expressions (Perl compatible) to be able to find a pattern surrounded by two other patterns, but not include the strings matching the surrounding patterns in the match.

For example, I want to be able to find occurrences of strings like:

Foo Bar Baz

But only have the match include the middle part:

Bar

I know this is possible, but I can't remember how to do it.

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up vote 4 down vote accepted

In the general case, you probably can't. The simplest approach is to match everything and use backreferences to capture the portion of interest:

Foo\s+(Bar)\s+Baz

This isn't the same as not including the surrounding text in the match though. That probably doesn't matter if all you want to do is extract "Bar" but would matter if you're matching against the same string multiple times and need to continue from where the previous match left off.

Look-around will work in some cases. Tomalak's suggestion:

(?<=Foo\s)Bar(?=\sBaz)

only works for fixed width look-behind (at least in Perl). As of Perl 5.10, the \K assertion can be used to effectively provide variable width look-behind:

Foo\s+\KBar(?=\s+Baz)

which should be capable of doing what you asked for in all cases, but would require that you're implementing this in Perl 5.10.

While it would be convenient, there's no equivalent of \K for ending the matched text, so you have to use a look-ahead.

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Excellent. I'd give +2 if I could :) – Vinko Vrsalovic Oct 11 '08 at 7:36
    
I'd also give it +2, because of the references to the new features in Perl 5.10. – Brad Gilbert Oct 16 '08 at 4:27

Parentheses define the groupings.

"Foo (Bar) Baz"

Example

~> cat test.pl
$a = "The Foo Bar Baz was lass";

$a =~ m/Foo (Bar) Baz/;

print $1,"\n";
~> perl test.pl
Bar
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Wow you actually gave an entire script I have to vote this one up. – Cervo Oct 10 '08 at 15:12

Use lookaround:

(?<=Foo\s)Bar(?=\sBaz)

This would match any "Bar" that is preceded by "Foo" and followed by "Baz", separated through a single white space. "Foo" and "Baz" would not be part of the final match.

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this won't work...from the perl regular expression manual perlre: (?<=pattern) A zero-width positive lookbehind assertion. For example, /(?<=\t)\w+/ matches a word following a tab, without including the tab in $&. Works only for fixed-width lookbehind. Basically (?<=Foo\s*) won't work – Cervo Oct 10 '08 at 15:01
    
Oops, I did not think of that. Pattern adapted. – Tomalak Oct 10 '08 at 15:07
    
Your regex return the spaces before and after Bar. (?<=Foo\s)Bar(?=\sBaz) should do the job if there is only one space before and after Bar. – Julien Hoarau Oct 10 '08 at 15:11
    
Done already. Clicked "post" too early, you saw an intermediate version. ;-) – Tomalak Oct 10 '08 at 15:12

$string =~ m/Foo (Bar) Baz/

$1

This may not be exactly what you want as the match is still "Foo Bar Baz". But it shows you how to just get the part that you are interested in. Otherwise you can use lookahead and lookbehind to get the match without consuming characters...

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