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In Perl 5.10.1:

#!/usr/bin/perl

my @a = (1, 2, 3);
my $b = \@a;
print join('', @{$b}) . "\n";
@a = (6, 7, 8);
print join('', @{$b}) . "\n";

This prints 123 then 678. However, I'd like to get 123 both times (i.e. reassigning the value of @a will not change the array that $b references). How can I do this?

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Obligatory warning: Do not use variables named $a or $b in general Perl code. $a and $b are globals used by the sort function and they will be overwritten if sort gets called by your code or by any module it uses. (Yes, I realize that declaring them lexically (with my) sidesteps that because you're not using the global version then, but it's still asking for trouble to use $a or $b.) –  Dave Sherohman Jun 25 '10 at 10:22

2 Answers 2

up vote 3 down vote accepted

Make a reference to a copy of @a.

my $b = [ @a ];
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Great, thanks. Similarly, my $b = { %a }; works with hashes. I notice that no similar trick is needed for code references though - why is that? –  jnylen Jun 24 '10 at 15:57
    
Are you trying to modify the coderef? –  Daenyth Jun 24 '10 at 16:04
    
I'm basically doing my $a = sub { ... }; my $b = $a;. Then when I reassign $a to a different coderef, $b doesn't change (which is the behavior I want; I was just wondering why that happens). –  jnylen Jun 24 '10 at 16:05
3  
Because $b isn't a reference to $a. When you do $a = sub { ... } later on, you're creating a new coderef and putting it in $a -- which doesn't replace the thing that $b points to. The difference here is that a coderef is always a ref -- you never work with non-ref "code values". –  hobbs Jun 24 '10 at 16:16
3  
Note that if @a contains references, this will still have a reference to the original data in $b. For complex data structures you should use something like Storable's clone. –  Oesor Jun 24 '10 at 16:29

Bretter use dclone for deep cloning of references pointing to anonymous data structures.

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