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Is it possible to replace parts of a string without having to create a whole new variable?

Right now I do it like this:

$someString = "how do you do this";
$someString = s/how do/this is how/;

What I am trying to do is keep the original string ($someString) and be able to substitute a few characters without modifying the original string. Im more familiar with Javascript and I can do it like this in your code without having to create/modify a variable.

someString.replace(/how do/, "this is how")

Any help is appreciated, thanks alot

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1  
possible duplicate of Perl: Use s/ (replace) and return new string –  daxim Jan 8 '11 at 19:48

2 Answers 2

up vote 6 down vote accepted

Note quite sure I understand the question. If you want to leave the original string unchanged, you need to create a new variable.

$newstring = $someString ;
$newstring =~ s/how do/this is how/;

Note that the operator is =~ not =

addition I think I now see what you want - to return the changed string rather than modify a variable. There will be a way to do this in Perl 5.14 but I am not aware of a way at present. See http://www.effectiveperlprogramming.com/blog/659

Update The s/ / /r functionallity has been in released Perl for some time. you can do

use 5.14.0 ;
my $someString = "how do you do this";
say ($someString =~ s/how do/this is how/r) ;
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I think he might want something like print $someString =~ s/how do/this is how/; but without touching $someString. –  marcog Jan 8 '11 at 19:42
    
Good job on mentioning the new /r flag, I think thats going to be an even better addition to Perl5 than the smart match ~~ –  Joel Berger Jan 8 '11 at 19:52
    
Yea, I was just looking to return the changed string rather than modify a variable. Good to see this is going to be capable soon. –  bryan sammon Jan 8 '11 at 20:24
2  
You can write that in one line with (my $newstring = $someString) =~ s/how do/this is how/; –  Ether Jan 9 '11 at 17:48

you may also use lambda, i.e. :

sub { local $_ = shift; s/how do/this is how/; $_ }->($someString)

this also preserves $_ in case you call the lambda as sub { }->($_)

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