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I want to use a variable as the substitution text in perl (s//)? Apparently, the following code does not work. Is there a way to do what I want?

~$  ./subsuffix.pl 
xxx_$1_outsuffix.txt

subsuffix.pl :

#!/usr/bin/env perl

use strict;
use warnings;

my $filename="xxx_5p_insuffix.txt";
my $insuffix="_((5|3)p)_insuffix.txt";
my $outsuffix = '_$1_outsuffix.txt';

#result of the following is what I expect
#$filename =~ s/$insuffix$/_$1_outsuffix.txt/;
#But I want used a variable as the substitution text. 
#Unfortunately, the following do not work.
$filename =~ s/$insuffix$/$outsuffix/;
print "$filename\n";
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Side note: You can also declare $insuffix as my $insuffix= qr{_((5|3)p)_insuffix.txt$};. Note that the ending $ anchor is already in here instead of being in the regex later. This would help if you are going to use the regex several times. –  imran Apr 4 '13 at 16:26

3 Answers 3

You can use the /e modifier to treat the substitution pattern as code to be evaluated:

$filename =~ s/$insuffix$/ "_" . $1 . "_outsuffix.txt" /e;
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The replacement is normally not evaluated. You have to add a couple of /e's at the end of the substitution and add some quotes to keep it a valid expression after the 1st evaluation:

$filename =~ s/$insuffix$/qq("$outsuffix")/ee;
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1  
Note: This can be used to run arbitrary code. –  ikegami Apr 4 '13 at 17:59

What you have in $outsuffix is a template. Templates don't magically process themselves. You'll need to invoke a processor. String::Interpolate understands templates such as yours.

use String::Interpolate qw( interpolate );

my $filename="xxx_5p_insuffix.txt";
my $insuffix="_((5|3)p)_insuffix.txt";
my $outsuffix = '_$1_outsuffix.txt';

$filename =~ s/$insuffix$/interpolate($outsuffix)/e;
print "$filename\n";
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