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How do you return the value of a local variable array (or any variable for that matter) in perl. For instance. Must I return a reference to the array. That seems like it wouldn't work as well.

sub routine 
{
my @array = ("foo", "bar");  
return @array;  
}  

But this doesn't seem to work. How do you return values from local variables in perl?

My second related question is, how do I access a nested array as an array For instance. The previous question creates the need for this solution as well.

@nestedArray = ("hello", "there");  
@array = ("the", \@nestedArray);  

($variable1, $variable2) = values @array;  

This is what I've tried

($variable3, $variable4) values $$variable2; ## This doesn't seem to work?  

:-/

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6  
How does your first example not work? What's it not doing that you expect it to do? –  Jim Davis Apr 14 '11 at 1:53
    
I must have typed it differently :-( –  rubixibuc Apr 22 '11 at 6:43

5 Answers 5

up vote 3 down vote accepted

To your second question, you should read perlreftut to clear up your understanding of references.

Also, while keys and values will technically work on arrays, they're not really meant to be used on them. It's a red herring.

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What is the correct way to extract each value of an array into a list of scalars? –  rubixibuc Apr 14 '11 at 3:26
3  
The correct way to extract each value of an array into a list of scalars is with a straightforward "list assignment", eg ($variable1, $variable2) = @array; –  tadmc Apr 14 '11 at 3:32
    
Thank you :-), I read the reference it was very helpful as well. –  rubixibuc Apr 14 '11 at 3:42
    
why won't this work then :-/ @animal = ("a", "b", "c"); @array = ("c", \@animal); ($a, $b, $in) = @array; ($c, $d, $e) = @{$in}; print "HERE $a, $b, $c, $d, $e"; –  rubixibuc Apr 14 '11 at 3:52
    
Sorry, I see my error –  rubixibuc Apr 14 '11 at 3:55
sub routine {
    my @array = ( "foo", "bar" );
    return @array;
}

print join "\n", routine();

The above indeed returns a list.

@nested_array = ( "hello", "there" );  
@array = ( "the", \@nested_array );  

print join "\n", ( $array[0], @{ $array[1] } );

Here, the first element of @array is the and the second element is an array reference. Therefore you have to dereference the second element as an array.

However, for ease, you could flatten the second array into a list:

@array = ( "the", @nested_array );
print join "\n", @array;
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For the second one, this works:

($variable3, $variable4) = @$variable2;

Your first example seems to work like you have it.

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You typically return references to non-scalar variables, or scalar values directly.

return $var
or 
return \@var
or 
return \%var

then dereference them as %$var or @$var or use arrow notation

$var->[0] or $var->{hash_key}

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Why not just return the list the array holds? –  tchrist Apr 14 '11 at 2:47
    
Perhaps because the conversion to a list is not the same as returning an array? Not entirely sure, but it's such a common idiom in perl programming I've grown quite accustomed to it. –  Devin Ceartas Apr 14 '11 at 3:14
    
In list context, it is the same. In scalar context, it is different. –  tchrist Apr 14 '11 at 4:23

For first, you did the right thing. But I think you invoke the function in a scalar context, so you only got the number of elements in the list/array.

sub routine 
{
  my @array = ("foo", "bar");  
  return @array;  
}  

my $a = routine(); # a will be **2** instead of an array ("foo", "bar")
my @a = routine(); # a will be an array ("foo", "bar")

If you really need to return an array, and want to make sure the sub was invoked properly. You can use wantarray() function.

sub routine 
{
  my @array = ("foo", "bar");  

  return @array if wantarray;  

  die "Wrong invoking context";
}  

For second, you could use push;

@nestedArray = ("hello", "there");  
@narray = ("the", "world");

push @narray, @nestedArray; # @narray is ("the", "world", "hello", "there")
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