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I have a $map{k1}{k2}{k3}{k4}.

How can I write the loop correctly to print all values? The following does not work.

for my $k1 (sort keys %tripletsCountMap) {
    for my $k2 (sort keys %$tripletsCountMap{k1}){
    	for my $k3 (sort keys %$tripletsCountMap{k1}{k2}) {
    		for my $k4 (sort keys %$tripletsCountMap{k1}{k3}{k3}){
    			print "$k1 $k2 $k3 $k4\n";
    		}
    	}
    }
}
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1  
You would never do this. IRL you would use Data::Dumper (displays native perl structure that will work in an eval), or XXX.pm (uses YAML for output). This is what we call a recursive data structure.. Keep in mind your code only supports 4-depth, rather than n-depth an arbitrary limit on depth is uncommon in a recursive structure. You might want to look up tree-recursion for how this should be done. –  Evan Carroll Nov 30 '09 at 2:08
    
You have a typo. You use {k1}{k3}{k3} -- did you mean {k1}{k 2 }{k3}? (Additionally, as others have pointed out, you actually want $k1 not k1 etc.) –  vladr Feb 27 '10 at 20:30

8 Answers 8

up vote 12 down vote accepted

Note that there is a difference between k1 and $k1.

for my $k1 (sort keys %tripletsCountMap) {
    for my $k2 (sort keys %{ $tripletsCountMap{$k1} }){
        for my $k3 (sort keys %{ $tripletsCountMap{$k1}{$k2} }) {
            for my $k4 (sort keys %{ $tripletsCountMap{$k1}{$k2}{$k3} }){
                printf "$k1 $k2 $k3 $k4: $tripletsCountMap{$k1}{$k2}{$k3}{$k4}\n";
            }
        }
    }
}

Better yet:

use Data::Dumper;
print Dumper \%tripletsCountMap;

And, why are you sorting the keys? I understand the point @ysth in the comments below. I am just not in the habit of sorting the keys of a hash when I iterate over them unless there is some explicit output related requirement.

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+1 for data::dumper –  ennuikiller Nov 30 '09 at 0:17
3  
unless there are huge performance implications (usually not the case), looping over sorted keys is a very good idea. it frees you from a whole class of perl version/platform/data dependent bugs where the loop body somehow depends on one key being processed before another. –  ysth Nov 30 '09 at 0:39
2  
Sorting (extra-work) to remove a possible user-dependency that was /never/ supported sounds silly. I would suggest removing the sort if this was your logic. –  Evan Carroll Nov 30 '09 at 2:03

If this is for debugging or similar purposes, it's probably better to use Data::Dumper to do this sort of thing. It's intelligent enough to follow through the data structure and get it right.

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When using % to dereference an expression, the expression must be enclosed in {} unless it's a simple scalar (e.g. %$href).

I recommend you read http://perlmonks.org/?node=References+quick+reference.

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Poor man's Dumper:

sub trace {
    my ( $val, $path ) = @_;
    my $ref = ref $val;
    if ( $ref eq '' ) {
    	print "$path = $val\n";
    }
    elsif ( $ref eq 'HASH' ) {
    	trace( $val->{$_}, $path . "{$_}" ) for keys %$val;
    }
    elsif ( $ref eq 'ARRAY' ) {
    	trace( $val->[$_], $path . "[$_]" ) for 0 .. $#$val;
    }
    else {
    	warn "I don't know what to do with $ref at $path\n";
    }
}

trace($map, '$map->');
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$k1 is the variable, k1 is a bareword.

perl -e '%h = (1 => 2, "k1" => 3); $k1 = 1; printf "%d %d\n", $h{$k1}, $h{k1}'

2 3

Then if you use hash reference be cautious to use scalar variables to store them.

perl -e '$h = {1 => 2, "k1" => 3}; $k1 = 1; printf "%d %d\n", $h->{$k1}, $h->{k1}'

2 3

If you happened to write something like nothing will work as expected:

perl -e '%h = {1 => 2, "k1" => 3}; $k1 = 1; printf "%d %d\n", $h->{$k1}, $h->{k1}'

0 0

If the bareword is not the problem (it probably is), then you should carefully check how you built your map.

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You're printing all the keys but not the final value.

In the most inner loop add:


my $val = $map{$k1}{$k2}{$k3}{$k4};
print "$val\n"; 
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Actually nothing is printed. In my code at least $1 ... $4 must be printed right, even though the value is not printed. –  user855 Nov 30 '09 at 0:09
    
Have you added use strict; to the top of your program? –  PP. Nov 30 '09 at 0:10
    
@ajay: There is a difference between $1 and $k1 and k1. –  Sinan Ünür Nov 30 '09 at 0:16

you can use following code: this will work

while(my($key1,$value1)=each(%hash_hash)){
  while(my($key2,$value2)=each(%$value1)){
       print $key1."=".$key2."=".$value2."\n";
  }

}

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yet another way:

 while (my ($first,$second) = each (%hash_hash_hash_hash)) {
    while (my ($second, $third) = each (%$second)) {
        while (my ($third, $fourth) = each (%$third)) {
            while (my ($fourth, $value) = each (%$fourth)) {
                print "$first\t$second\t$third\t$fourth\t$value\n";
            }
        }
    }
}
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