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I have once again forgotten how to get $_ to represent an array when it is in a loop of a two dimensional array.

foreach(@TWO_DIM_ARRAY){
   my @ARRAY = $_;
}

That's the intention, but that doesn't work. What's the correct way to do this?

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Can you show the data you are starting with and what you want to end up with, even if in pseudocode? –  brian d foy Oct 14 '10 at 21:44
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3 Answers

up vote 5 down vote accepted

The line my @ARRAY = @$_; (instead of = $_;) is what you're looking for, but unless you explicitly want to make a copy of the referenced array, I would use @$_ directly.

Well, actually I wouldn't use $_ at all, especially since you're likely to want to iterate through @$_, and then you use implicit $_ in the inner loop too, and then you could have a mess figuring out which $_ is which, or if that's even legal. Which may have been why you were copying into @ARRAY in the first place.

Anyway, here's what I would do:

for my $array_ref (@TWO_DIM_ARRAY) {

    # You can iterate through the array:
    for my $element (@$array_ref) {
        # do whatever to $element
    }

    # Or you can access the array directly using arrow notation:
    $array_ref->[0] = 1;
}
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+1 for the for my $var syntax. Seems like a lot of people don't bother with this, though it improves readability quite a lot. –  Sorpigal Oct 14 '10 at 10:27
    
Still, why doesn't this work: foreach(@TWO_DIM_ARRAY){ print join ',',@{$_}; } After all, $_ is an array reference, and @{$_} should be an array. –  Michael Goldshteyn Oct 23 '10 at 16:57
    
@Michael Goldshteyn: That will work too. @{$_} is the same as @$_. For example, I just tried this: my @A=([1,2,3],[4,5,6],[7,8,9]); foreach(@A) { print join(",", @{$_}), "\n"; } –  Jander Oct 23 '10 at 19:27
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for (@TWO_DIM_ARRAY) {
    my @arr = @$_;
}
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The $_ will be array references (not arrays), so you need to dereference it as:

my @ARRAY = @$_;
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