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I have a variable containing a string.

$name="mak -o create.pl -n create.txt";

Now I want to match a pattern in which I can get the value as create.pl which will always be followed by -o. That is , this is mandatory that this will occur always like this "-o create.pl" But instead of "create" there could be any name like this but the extension will always be ".pl"

$name="mak -o string.pl -n create.txt"; # or it could be
$name="mak -o name.pl -n create.txt";
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4 Answers 4

up vote 1 down vote accepted
`/-o ([^\s]*)\s/`

Above will do :

> echo "mak -o create.pl -n create.txt" | perl -lne 'm/-o ([^\s]*)\s/;print $1'
create.pl
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Thanks Vijay !! You always give good replies so quickly. I had asked before also, at that time you were the person to give answer very quickly. Thanks for your support always !!! :) –  Mak_Thareja May 23 '13 at 12:20

Try splitting the variable by space.

my $name="mak -o name.pl -n create.txt";

my @cmd = split (/\s+/, $name);

for (my $i = 0; $i <@cmd; $i++) {
    if ($cmd[$i] eq "-o") {
        print $cmd[$i+1];
        last;
    }
}
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+1 for suggesting split. –  Nikhil Jain May 23 '13 at 7:02
    
Thanks. Liked ur ans using split. –  Mak_Thareja May 23 '13 at 15:36

Try this regular expression:

/-o\s(.*?)\.pl/

$1 will have the matched name.

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Thanks for your support !!! –  Mak_Thareja May 23 '13 at 12:20

Using split :Dont need to worried about script name, split will take care of it.

use strict;

my $name="mak -o name.pl -n create.txt";

my $test = join( " ", (split /\s+/, $name)[1,2] );

print $test;

output:

-o name.pl   
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Hi, I think you didn't get my question, because it could be placed anywhere in the string, the only thing which will be stable is that pattern "-o name.pl". But according to this it would take particular values at those positions. Thanks for your support. –  Mak_Thareja May 23 '13 at 12:18
    
right, i didnt get this, but now got it. –  Nikhil Jain May 23 '13 at 12:27

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