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How do I perform a Perl substitution on a string while keeping the original?

How do I do one line replacements in Perl without modifying the string itself? I also want it to be usable inside expressions, much like I can do p s.gsub(/from/, 'to') in Ruby.

All I can think of is

do {my $r = $s; $r =~ s/from/to/; $r}

but sure there is a better way?

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marked as duplicate by ephemient, toolic, Ether, the Tin Man, daxim Feb 9 '11 at 7:08

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
@ephemient => the linked question does not cover using the substitution as a subexpression –  Eric Strom Feb 9 '11 at 2:21
2  
@Eric: Sure it does. One of the answers mentions the new /r option in Perl 5.13.2 (which will make it into Perl 5.14). –  ephemient Feb 9 '11 at 4:25

3 Answers 3

up vote 4 down vote accepted

The solution you found with do is not bad, but you can shorten it a little:

do {(my $r = $s) =~ s/from/to/; $r}

It still reveals the mechanics though. You can hide the implementation, and also apply substitutions to lists by writing a subroutine. In most implementations, this function is called apply which you could import from List::Gen or List::MoreUtils or a number of other modules. Or since it is so short, just write it yourself:

sub apply (&@) {                  # takes code block `&` and list `@`
    my ($sub, @ret) = @_;         # shallow copy of argument list 
    $sub->() for @ret;            # apply code to each copy
    wantarray ? @ret : pop @ret   # list in list context, last elem in scalar
}

apply creates a shallow copy of the argument list, and then calls its code block, which is expected to modify $_. The block's return value is not used. apply behaves like the comma , operator. In list context, it returns the list. In scalar context, it returns the last item in the list.

To use it:

my $new = apply {s/foo/bar/} $old;

my @new = apply {s/foo/bar/} qw( foot fool fooz );
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3  
And, Perl 5.14 adds the /r substitution modifier to work on a copy and return the result so the original stays the same: effectiveperlprogramming.com/blog/659 –  brian d foy Feb 9 '11 at 7:17

Starting on the day you feel comfortable writing use 5.14.0 at the top of all of your programs, you can use the s/foo/bar/r variant of the s/// operator, which returns the changed string instead of modifying the original in place (added in perl 5.13.2).

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Unfortunately we stuck in middle ages with 5.8.8. Big companies do not like to move forward. –  vava Feb 9 '11 at 2:59
    
Wait, what? I thought it was supposed to modify and return? –  ysth Feb 9 '11 at 3:39
    
@ysth not unless the delta and the 5.13 perlrequick are both lying :) –  hobbs Feb 9 '11 at 3:54
    
As always: The Effective Perler effectiveperlprogramming.com/blog/659 –  Joel Berger Feb 9 '11 at 4:16

From Perl's docs: Regexp-like operators:

($foo = $bar) =~ s/this/that/g; # copy first, then change would match gsub, while $bar =~ s/this/that/g; # change would match gsub!

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it won't give me string back so it can't be used inside expressions. –  vava Feb 9 '11 at 1:46
    
if used in a scalar context, then a comma followed by the var: ...,$foo will do that –  typo.pl Feb 9 '11 at 1:51

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