2

I want to modify an array which is located inside a hash in perl. However, I can't seem to pass by reference here. If the array is not inside a hash, it works fine. Here is my code:

%hash = (
    array1 => ['foo', 2, 'bar']

);
print @{$hash{array1}}, "\n";
changeArray($hash{array1});
print @{$hash{array1}}, "\n";


sub changeArray
{
    @array = @{$_[0]};
    $array[0] = "not foo";
}

Output:

$ ./scrap.pl
foo2bar
foo2bar

Isn't $hash{array1} the reference to the anonymous array ['foo',2,'bar']?

  • “If the array is not inside a hash, it works fine” No, it doesn't. Your subroutine just modifies a local copy of the array that is passed. It doesn't alter the external array no matter where it came from – Borodin Sep 26 '15 at 4:55
  • @Borodin Yep, my mistake. I had called the local variable the same name as outside the subroutine, so it appeared like the function was changing it. – tgun926 Sep 26 '15 at 5:36
  • You must always use strict and use warnings at the top of every Perl program you write, and declare every variable with my. That will protect you from the most simple mistakes and would have revealed the error here – Borodin Sep 26 '15 at 6:23
5

In your changeArray sub, you are making an array @array, from the arrayref contained in the hash, so all changes will be for @array, which is going out of scope when changeArray is done.

try

sub changeArray {
   my $arrayref = $_[0];
   $arrayref->[0] = "not foo";
}
  • What's the -> called? – tgun926 Sep 26 '15 at 4:51
  • 3
    -> is the infix dereference operator. You can find the documentation on the perlop manpage. – friedo Sep 26 '15 at 5:18
  • Of course, the out of scope part was not entirely accurate here, see comments above, that was assuming sub changeArray { my @array = @{$_[0]}; ... }. Which would seem the normal thing to do. – bytepusher Sep 26 '15 at 15:05

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