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What's the easiest way to flatten a multidimensional array ?

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up vote 13 down vote accepted

Using List::Flatten seems like the easiest:

use List::Flatten;

my @foo = (1, 2, [3, 4, 5], 6, [7, 8], 9);
# @foo contains 6 elements, 2 of them are array references

my @bar = flat @foo;
# @bar contains 9 elements, same as (1 .. 9)

Use List::Flatten::Recursive to do it recursively.

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One level of flattening using map

$ref = [[1,2,3,4],[5,6,7,8]]; # AoA

@a = map {@$_} @$ref;         # flattens it

print "@a";                   # 1 2 3 4 5 6 7 8
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I love it! Very elegant! – Younes Apr 23 '13 at 19:40
    
+1: No libraries, terse, works. – OmarOthman Feb 26 '14 at 15:13
    
Worth nothing this only works if $ref is filled with arrayrefs. Won't work if it's a mix of scalars and arrayrefs. – Asmor Oct 28 '15 at 18:57

The easiest and most natural way, is to iterate over the values and use the @ operator to "dereference" / "unpack" any existing nested values to get the constituent parts. Then repeat the process for every reference value encountered.

This is similar to Viajayenders solution, but works for values not already in an array reference and for any level of nesting:

sub flatten {
  map { ref $_ ? flatten(@{$_}) : $_ } @_;
}

Try testing it like so:

my @l1 = [ 1, [ 2, 3 ], [[[4]]], 5, [6], [[7]], [[8,9]] ];
my @l2 = [ [1,2,3,4,5], [6,7,8,9] ];
my @l3 = (1, 2, [3, 4, 5], 6, [7, 8], 9);  # Example from List::Flatten

my @r1 = flatten(@l1);
my @r2 = flatten(@l1);
my @r3 = flatten(@l3);

if (@r1 ~~ @r2 && @r2 ~~ @r3) { say "All list values equal"; }
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Along the same lines, but iterative instead of recursive: @array=map { ref $_ eq 'ARRAY' ? @$_ : $_ } @array while grep ref $_ eq 'ARRAY', @array – hobbs Dec 3 '13 at 19:26

Something along the lines of:

my $i = 0;

while ($i < scalar(@array)) {
    if (ref @array[$i] eq 'ARRAY') {
        splice @array, $i, 1, @$array[$i];
    } else {
        $i++;
    }
}

I wrote it blindly, no idea if it actually works but you should get the idea.

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