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Editorial Team
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Asked: 2026-05-26T22:51:12+00:00

I am facing difficulty understanding references in perl. Here is a short perl script

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I am facing difficulty understanding references in perl. Here is a short perl script to explain my problem [I ran this code using perl-5.8.3]:

#!/usr/bin/perl -w
use strict;
use Data::Dumper;

my %a = ("a" => 1, "b" => 2);
my %b = ();
print Dumper(\%a, \%b);
foo(\%a, \%b);
print "+==After fn call==+\n";
print Dumper(\%a, \%b);
print "+-----------------------+\n";
bar(\%a, \%b);
print "+==After fn call==+\n";
print Dumper(\%a, \%b);

sub foo {
    my($h1, $h2) = @_;
    $h2 = $h1;
    print Dumper($h2);
}

sub bar {
    my($h1, $h2) = @_;
    %{$h2} = %{$h1};
}

I guess in both subroutines, $h1 and $h2 are local vars. Still, bar() actually changes value of original %b, while foo() does not. Why is that?

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1 Answer

  1. Editorial Team
    sub foo {
    my($h1, $h2) = @_;  # copy two hash references into lexicals
    $h2 = $h1;          # copy the value in lexical $h1 into $h2
                        # $h2 looses its binding to the hash ref
    print Dumper($h2);
}

    this is the same exact behavior you would get if the values contained strings or any other simple value.

    sub bar {
    my($h1, $h2) = @_;  # copy two hash references into lexicals
    %{$h2} = %{$h1};    # the hash referred to by $h1 is unpacked into a list
                        # the hash referred to by $h2 is exposed as an lvalue
                        # the assignment operator installs the rhs list into 
                        # the lvalue, replacing any previous content
}

    So basically, in the first example, you are just dealing with values, and normal value semantics apply. In the second case, you are dereferencing the values, which turns them back into their advanced types (in this case a HASH).

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