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I'm attempting to extract shortest content between 2 words using a regular expression

my code is:

my $text="Learn from yesterday, live for today, hope for tomorrow. The important thing is not to stop questioning";
$text=~ m/(from.*for)/g;
print $1;

I need contents between "from" and first "for" in above text. But perl return content up to last "for".

Result:

from yesterday, live for today, hope for

How can I write the expression so that it finds appropriate content between special repeat of a words.

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1  
Have you read perlretut? It is explained in the section Basics, subsection Matching Repetition with a nice example. –  amon Sep 18 '13 at 12:36
    
I read that. There is not my answer there. –  Morteza Sep 18 '13 at 13:11
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3 Answers

up vote 4 down vote accepted

Use ? to make * quantifier non-greedy.

my $text="Learn from yesterday, live for today, hope for tomorrow. The important thing is not to stop questioning";
my ($str) = $text=~ /(from.*?for)/;

print "$str\n";
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Thanks. One more question: Is there a way to define which repeat of second keyword will be use by perl. for example rather first and last, second, third ,... –  Morteza Sep 18 '13 at 12:50
    
@user2533997 this would be for second, my ($str) = $text=~ /(from (?: .*?for){2} )/x; –  mpapec Sep 18 '13 at 13:14
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In Perl, to get the shortest possible match, add the non-greedy modifier ? after any variable length modifier + or * (or ?):

m/(from.*?for)/g
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Excellent! thanks Dan. –  Morteza Sep 18 '13 at 12:41
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The previously given answers fail for

from from abc for for

As seen in the following:

>perl -E"say 'from from abc for for' =~ /(from.*?for)/;"
from from abc for

Knowing that (?:(?!STRING).)* is to STRING as [^CHAR]* is to CHAR, you can use

>perl -E"say 'from from abc for for' =~ /(from(?:(?!from|for).)*?for)/;"
from abc for
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