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there - just started learning Perl.

This is what I'm doing to get an array into a subfunction - can it be done simpler in 1 line?

sub my_sub {
    my $ref_array = shift;
    my @array = @$ref_array;
}
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4  
Can what be done simpler? What are you trying to do? Why copy the array in the first place?? –  tchrist Jan 28 '11 at 23:13
1  
Why are you using pass by reference on a single array, and then going to the trouble to make a completely new copy of it? Why not just use @_ in situ? –  tchrist Jan 28 '11 at 23:28
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5 Answers 5

up vote 3 down vote accepted

If you want the effect of the shift as well,

sub my_sub {
    my @array = @{+shift};
}

The unary + operator forces shift to be treated as an expression, not a variable name. (Otherwise @{shift} means the same as @shift.)

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5  
This is pretty useless. I don’t believe the poster explained what he needs done well enough. Also, I despise tricksy +shift for people who can't be bothered to write the infinitely clearer shift(). –  tchrist Jan 29 '11 at 0:01
2  
TMTOWTDI; I like +shift better than shift(). Honestly, this is closer to OP's original than other answers are, and I don't think there's enough context to say that this isn't the right thing to do. –  ephemient Jan 29 '11 at 0:12
    
IMHO "+shift" is a lot less readable and maintainable. And as tchrist noted in a separate comment, there's no seeming point to passing an array by reference only to turn it into a non-referenced array by copying. –  DVK Jan 31 '11 at 21:39
    
Lately, I've been writing @{shift @_} in situations where I need to disambiguate from a bareword. Does the job and uses the extra characters to actually explain what is going on. –  Eric Strom Jan 31 '11 at 22:11
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If you're just looking for a one liner version of your example:

sub my_sub {
    my @array = @{$_[0]};
}

Presuming my_sub is called thus:

my_sub($some_array_ref)

Why create another array from the reference passed in, though? Pardon the gratuitous error checking…

sub my_sub {
    my $array_ref = shift @_;
    unless (defined($array_ref)) {
        # use Carp;
        croak 'undefined argument';
    }

    unless (ref($array_ref) eq 'ARRAY') {
        croak 'not an array ref';
    }

    # iterate over it
    foreach my $element (@{$array_ref}) {
        ⋮
    }

    # how big is it?
    $count = @{$array_ref}

    # create a hash from it
    my %hash = map { $_ => 1 } @{$array_ref}
}
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You could simplify just as

sub my_sub { 
  my @array = @{$_[0]};
}

Where @_ is the default array/list, used in parameter passing.

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Another approach is to not worry about it being an arrayref -- just leave it that way and use it in the rest of your sub as-is.

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This is a heck of a lot cheaper:

local *array = shift();
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2  
And not the least bit equivalent. –  hobbs Jan 28 '11 at 23:52
    
In trying to learn the mid-level Perl magic, can I ask, what is it that you are setting to what here? Are you setting a reference to @array to the arrayref that has been passed in? How do you know that you create @array and not %array or $array? Where can I learn more about this * operator (perlop?). Thanks! –  Joel Berger Jan 29 '11 at 0:37
4  
@tchrist: Why the hostility? It would make your posts better if you provided a little more explanation. If you think his example is "nonsense", it would be useful to explain why in your own answer and then explain why your alternative is better. There is an art to giving good answers, and getting upset in the comments is not a sign you're on that path. –  Cody Gray Jan 29 '11 at 5:37
    
@Cody - leaving aside communications issues (I am eminently less qualified to argue writing styles that tchrist, independently of which of you I agree with), he is correct on substance. The OP basically asked an ambiguous question that doesn't HAVE an answer as asked: –  DVK Feb 1 '11 at 1:41
    
@Cody,@hobbs - 1. if he asked "how do I pass array to a method by reference" and access it, the answer is "use $arr->[$i] without bothering to stuff arrayref into array"; 2. If he asked "how do I pass an array by VALUE", the answer is "just pass the bleeding array in without a reference in the first place"; 3. If he asked "how to pass an array by reference and then make a copy of it", the answer is "unless there's a good reason to do it just this way, it's a bad idea to do so - either pass by value OR by reference; and if you DO have a reason, the code you have is the most readable possible" –  DVK Feb 1 '11 at 1:46
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