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Assume a nested hash structure %old_hash ..

my %old_hash;
$old_hash{"foo"}{"bar"}{"zonk"} = "hello";

.. which we want to "flatten" (sorry if that's the wrong terminology!) to a non-nested hash using the sub &flatten(...) so that ..

my %h = &flatten(\%old_hash);
die unless($h{"zonk"} eq "hello");

The following definition of &flatten(...) does the trick:

sub flatten {
  my $hashref = shift;
  my %hash;
  my %i = %{$hashref};
  foreach my $ii (keys(%i)) {
    my %j = %{$i{$ii}};
    foreach my $jj (keys(%j)) {
      my %k = %{$j{$jj}};
      foreach my $kk (keys(%k)) {
        my $value = $k{$kk};
        $hash{$kk} = $value;
      }
    }
  }
  return %hash;
}

While the code given works it is not very readable or clean.

My question is two-fold:

  • In what ways does the given code not correspond to modern Perl best practices? Be harsh! :-)
  • How would you clean it up?
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2  
Please give an example of what you mean by 'flatten'. I do not understand what your code is trying to do. –  Sinan Ünür Mar 22 '10 at 20:59
    
Sinan: Thanks for your feedback. I've added an usage example in the beginning of the question. Hope that clear things up! –  knorv Mar 22 '10 at 21:13
    
You example helps a little : What happens if the hash is ( a => { b => 1 }, c => { b => 2 })? –  Sinan Ünür Mar 22 '10 at 21:19
    
Good question! As the code currently works that would give an empty hash. However, ideally it would return (b => 1). So that the "deepest key level" becomes the new top level key (sorry about the absurd terminology!). And the first value is choosen if any duplicates as present (as the two "b":s in your example. –  knorv Mar 22 '10 at 21:30

4 Answers 4

up vote 9 down vote accepted

Your method is not best practices because it doesn't scale. What if the nested hash is six, ten levels deep? The repetition should tell you that a recursive routine is probably what you need.

sub flatten {
    my ($in, $out) = @_;
    for my $key (keys %$in) {
        my $value = $in->{$key};
        if ( defined $value && ref $value eq 'HASH' ) {
            flatten($value, $out);
        }
        else {
            $out->{$key} = $value;
        }
    }
}

Alternatively, good modern Perl style is to use CPAN wherever possible. Data::Traverse would do what you need:

use Data::Traverse;
sub flatten {
    my %hash = @_;
    my %flattened;
    traverse { $flattened{$a} = $b } \%hash;
    return %flattened;
}

As a final note, it is usually more efficient to pass hashes by reference to avoid them being expanded out into lists and then turned into hashes again.

share|improve this answer
1  
I'm a big fan of Data::Traverse. –  friedo Mar 22 '10 at 21:36
    
No suprise here, you are its principal author ;) –  willert Mar 22 '10 at 21:54
    
-1 your first block of code contains a number of typos, $values is never declared and you have mixed hash and reference to hash syntax –  Eric Strom Mar 22 '10 at 21:55
1  
Data::Traverse was exactly what I was looking for. Thanks a lot! –  knorv Mar 22 '10 at 21:55
1  
+1 for the general idea behind the second example. But this won't work: my %hash = shift. I assume the intent was to have the function receive a hash ref rather than a hash. –  FMc Mar 22 '10 at 23:54

First, I would use perl -c to make sure it compiles cleanly, which it does not. So, I'd add a trailing } to make it compile.

Then, I'd run it through perltidy to improve the code layout (indentation, etc.).

Then, I'd run perlcritic (in "harsh" mode) to automatically tell me what it thinks are bad practices. It complains that:

Subroutine does not end with "return"

Update: the OP essentially changed every line of code after I posted my Answer above, but I believe it still applies. It's not easy shooting at a moving target :)

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Is it your intent to end up with a copy of the original hash or just a reordered result?

Your code starts with one hash (the original hash that is used by reference) and makes two copies %i and %hash.

The statement my %i=%{hashref} is not necessary. You are copying the entire hash to a new hash. In either case (whether you want a copy of not) you can use references to the original hash.

You are also losing data if your hash in the hash has the same value as the parent hash. Is this intended?

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There are a few problems with your approach that you need to figure out. First off, what happens in the event that there are two leaf nodes with the same key? Does the second clobber the first, is the second ignored, should the output contain a list of them? Here is one approach. First we construct a flat list of key value pairs using a recursive function to deal with other hash depths:

my %data = (
    foo  => {bar  => {baz  => 'hello'}},
    fizz => {buzz => {bing => 'world'}},
    fad  => {bad  => {baz  => 'clobber'}},
);


sub flatten {
    my $hash = shift;
    map {
        my  $value = $$hash{$_};
        ref $value eq 'HASH' 
            ? flatten($value) 
            : ($_ =>  $value)
    } keys %$hash
}

print join( ", " => flatten \%data), "\n";
# baz, clobber, bing, world, baz, hello

my %flat = flatten \%data;

print join( ", " => %flat ), "\n";
# baz, hello, bing, world          # lost (baz => clobber)

A fix could be something like this, which will create a hash of array refs containing all the values:

sub merge {
    my %out;
    while (@_) {
        my ($key, $value) = splice @_, 0, 2;
        push @{ $out{$key} }, $value
    }
    %out
}

my %better_flat = merge flatten \%data;

In production code, it would be faster to pass references between the functions, but I have omitted that here for clarity.

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