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If I have a hash in Perl that contains complete and sequential integer mappings (ie, all keys from from 0 to n are mapped to something, no keys outside of this), is there a means of converting this to an Array?

I know I could iterate over the key/value pairs and place them into a new array, but something tells me there should be a built-in means of doing this.

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3  
RANT WARNING! Why is everyone wanting to sort the keys? There is no need to and it makes the algorithm so much slower! Sorting is slow! runrig's answer is the best one here. It will work if the hash is sparse. Arrays maintain order but they are random access structures. We aren't working with linked lists, people! –  daotoad May 25 '10 at 20:24
    
You're right: there is a way to do it built in. See Ether's answer. :) This question is another reason why there's a difference between list context and arrays. Coupled with slices, it lets you do conversions between lists and hashes without any special magic or iteration, and imho is one of the most powerful features of Perl. –  Robert P May 25 '10 at 20:32

9 Answers 9

up vote 10 down vote accepted

If your original data source is a hash:

# first find the max key value, if you don't already know it:
use List::Util 'max';
my $maxkey = max keys %hash;

# get all the values, in order
my @array = @hash{0 .. $maxkey};

Or if your original data source is a hashref:

my $maxkey = max keys %$hashref;
my @array = @{$hashref}{0 .. $maxkey};

This is easy to test using this example:

my %hash;
@hash{0 .. 9} = ('a' .. 'j');

# insert code from above, and then print the result...
use Data::Dumper;
print Dumper(\%hash);
print Dumper(\@array);

$VAR1 = {
          '6' => 'g',
          '3' => 'd',
          '7' => 'h',
          '9' => 'j',
          '2' => 'c',
          '8' => 'i',
          '1' => 'b',
          '4' => 'e',
          '0' => 'a',
          '5' => 'f'
        };
$VAR1 = [
          'a',
          'b',
          'c',
          'd',
          'e',
          'f',
          'g',
          'h',
          'i',
          'j'
        ];
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No -> operator for the hashref? –  Zaid May 25 '10 at 18:53
    
@Zaid: nope, that's not how you use slices in hashrefs. –  Ether May 25 '10 at 19:10
1  
Silly me, it's getting cast as an array, which is why the arrow operator isn't needed. –  Zaid May 25 '10 at 19:19
    
No casting or arrays are involved. The hash slice returns a list. –  ikegami Dec 17 '11 at 8:50
    
@ikegami : Thanks for the correction. –  Zaid Dec 17 '11 at 10:03

OK, this is not very "built in" but works. It's also IMHO preferrable to any solution involving "sort" as it's faster.

map { $array[$_] = $hash{$_} } keys %hash; # Or use foreach instead of map

Otherwise, less efficient:

my @array = map { $hash{$_} } sort { $a<=>$b } keys %hash;
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5  
or to avoid map in void context: $array[$_] = $hash{$_} for keys %hash; –  runrig May 25 '10 at 18:16
3  
That'd have to be a sort { $a <=> $b }. Remember that sort defaults to string comparisons. –  Zaid May 25 '10 at 18:45

You can extract all the values from a hash with the values function:

my @vals = values %hash;

If you want them in a particular order, then you can put the keys in the desired order and then take a hash slice from that:

my @sorted_vals = @hash{sort { a <=> b } keys %hash};
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Perl does not provide a built-in to solve your problem.

If you know that the keys cover a particular range 0..N, you can leverage that fact:

my $n = keys(%hash) - 1;
my @keys_and_values = map { $_ => $hash{$_} } 0 .. $n;
my @just_values     = @hash{0 .. $n};
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Or my $n = $#{[keys %hash]} if you have an aversion to constant-substraction... –  Zaid May 25 '10 at 18:50

This will leave keys not defined in %hashed_keys as undef:

# if we're being nitpicky about when and how much memory
# is allocated for the array (for run-time optimization):
my @keys_arr = (undef) x scalar %hashed_keys;

@keys_arr[(keys %hashed_keys)] =
    @hashed_keys{(keys %hashed_keys)};

And, if you're using references:

@{$keys_arr}[(keys %{$hashed_keys})] = 
    @{$hashed_keys}{(keys %{$hashed_keys})};

Or, more dangerously, as it assumes what you said is true (it may not always be true … Just sayin'!):

@keys_arr = @hashed_keys{(sort {$a <=> $b} keys %hashed_keys)};

But this is sort of beside the point. If they were integer-indexed to begin with, why are they in a hash now?

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Good use of slices. Also good point about initial choice of data structure. Too bad you brought up sort, sort is slow (see my rant above) and error prone and is not desireable. –  daotoad May 25 '10 at 20:31
    
@daotoad - The first (and recommended) solution does not use sort. But, I completely agree about sort; it generates up to n-squared arbitrary function calls per invocation [hint: this is terrible]. –  amphetamachine May 26 '10 at 12:33
$Hash_value = 
{
'54' => 'abc',
'55' => 'def',
'56' => 'test',
};
while (my ($key,$value) = each %{$Hash_value})
{
 print "\n $key > $value";
}
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As DVK said, there is no built in way, but this will do the trick:

my @array = map {$hash{$_}} sort {$a <=> $b} keys %hash;

or this:

my @array;

keys %hash;

while (my ($k, $v) = each %hash) {
    $array[$k] = $v
}

benchmark to see which is faster, my guess would be the second.

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Well the first is going to be O(NlogN) on average, but up to O(N^2). The second method is simply O(N). No need for benchmarks. –  daotoad May 25 '10 at 20:20
@a = @h{sort { $a <=> $b } keys %h};
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Combining FM's and Ether's answers allows one to avoid defining an otherwise unnecessary scalar:

my @array = @hash{ 0 .. $#{[ keys %hash ]} };

The neat thing is that unlike with the scalar approach, $# works above even in the unlikely event that the default index of the first element, $[, is non-zero.

Of course, that would mean writing something silly and obfuscated like so:

my @array = @hash{ $[ .. $#{[ keys %hash ]} };   # Not recommended

But then there is always the remote chance that someone needs it somewhere (wince)...

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