Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am wondering if the following is possible to do in perl. It will save 40-50 lines of code.

I have a hash data structure like following:

hash_Ref->{a}->{b}->{c}->{d}->{e}->{'count'}=30

I am wondering is there a way I can do the following:

my $hash_ref_1 = ash_Ref->{a}->{b}->{c}->{d};

and then use:

$hash_ref_2->{e}. 

So in summary I want to store hash reference till a point "x" in the hierarchy in a variable and then access the reference which the point "x" points to. I think this is more clear in the example above.

More details

I tried couple of things but doesnt seem to work for me. I am copying the code but not all the things I tried to copy hash. Also the output I am getting is something like this

 $VAR1 = {
          'e' => {
                   'count' => 2
                 },
          'c' => {
                   'count' => 2
                 },
          'a' => {
                   'count' => 2
                 },
          'b' => {
                   'count' => 2
                 },
          'd' => {
                   'count' => 2
                 }
        };

where I would expect something like this:

'a' => { 'count' => 2, 'b' => { 'count' => 2, 'c' => ......} }  

Here's some code I used:

use strict;
use Data::Dumper;

my @array1 = ('a','b','c','d','e');
my @array2 = ('a','b','c','d','e');
my $hash;

 build_hash(\@array1);
 build_hash(\@array2);


sub build_hash {

    my @array = @{shift @_};

    my $hash_ref;

    for ( my $i =0 ;  $i < scalar @array ; $i++ ){

        print "$i \t $array[$i] \n";
         if ( exists $hash->{$array[$i]} ){

            $hash->{$array[$i]}->{'count'}++;
        }

        else{

            $hash->{$array[$i]}->{'count'}=1;
        }
    }
    print Dumper($hash);

}

I want to build a hierarchy of hash references based on the elements in the perl in the sequential order and possibly using one loop like I have tried to do in the sample code.

Thanks! -Abhi

share|improve this question
3  
What have you tried? Does it work? If not, why not? perllol and perldsc are must-reads –  user166390 May 31 '11 at 21:40
2  
Just a comment on style: from perldoc perlreftut (p3rl.org/reftut) the "arrow rule" hash_Ref->{a}->{b}->{c}->{d}->{e}->{'count'} can be written as hash_Ref->{a}{b}{c}{d}{e}{'count'} –  Joel Berger May 31 '11 at 22:59
    
why should $hash_ref_2 contain anything? –  Joel Berger May 31 '11 at 23:06

2 Answers 2

up vote 2 down vote accepted
# 'a' => { 'count' => 2, 'b' => { 'count' => 2, 'c' => ......} }

sub build_hash {
    $_[0] ||= {};
    my $hash = shift;
    for (@_) {
        $hash = $hash->{$_} ||= {};
        ++$hash->{count};
    }
}

build_hash($hash, @array1);
build_hash($hash, @array2);

If you wanted to use autovivification, you could write it as follows:

sub build_hash {
    my $p = \shift;
    for (@_) {
        $p = \( $$p->{$_} );
        ++$$p->{count};
    }
}

build_hash($hash, @array1);
build_hash($hash, @array2);

See also: Data::Diver

share|improve this answer
    
@ikegami : Thanks a lot. Just wondering if you would recommend any good resource/s to get a good grip on these techniques in perl. –  Abhi May 31 '11 at 23:22
    
@Ahbi, You were always modifying the same hash. You wanted to modify other hashes. Those hashes didn't exist. Therefore, you needed to create them. Your problem had nothing to do with Perl, so no book of Perl techniques would help. –  ikegami May 31 '11 at 23:32
    
@ikegami : I should have been more explicit. I wanted to ask about a good resource on complex data structures in perl. Also could you tell me the rationale behind $_[0] ||= {}; in the first program. I am surely missing something. –  Abhi May 31 '11 at 23:38
    
@Abhi, In my version, $hash is not a global. If you create a hash reference in local var $hash (say through autovivification), it won't affect the variable in the caller. On the other hand, modifying $_[0] will change the variable in the caller. –  ikegami Jun 1 '11 at 3:49
    
@ikegami : thanks a lot for your help so far. you are definitely helping me learn new things that I dint know about perl. I have another follow up question about program. Could you please explain how the line $hash = $hash->{$_} ||= {} will work. So each time there is a new entry an annonymous hash is created but how does it get mereged into the main big hash with the hierarchy. I am still confused on this part. –  Abhi Jun 1 '11 at 21:47

This should work pretty much like you think it should work. As a side note, sometimes when you have hash of hash of hash of...what you really wanted in the first place was one hash with a compund key, like $h{"$a,$b,$c"} instead of $h{$a}{$b}{$c}. Just something to keep in mind. I don't know if it is applicable here.

share|improve this answer
    
@frankc : I have put some more details + full code in my original question. –  Abhi May 31 '11 at 22:26
1  
@frankc: I don't have the details to prove it, but that sounds like a scary and unnecessary wrench to though into the mix. No downvote, but I wouldn't use that! –  Joel Berger May 31 '11 at 22:56
    
You think a compound key is harder to understand than a 6 layer deep data structure? I have never measured it, but i bet the compound key is more efficient as well. –  frankc Jun 1 '11 at 1:51
    
In fact I think that the compound is harder to read than the nested personally, but lets accept your premise. Are you going to promise me that you are never going to use a "," in your hash keys. I know its not common, but what if you make a large system based on it and someone breaks that commitment, your whole data structure breaks. Further to use it, you need to split keys on commas: extra unnecessary work. What if you wanted to add some data to one of the keys; that used to be a hash, easy to tuck more info into it, now its part of a comma separated list, not an individual unit! –  Joel Berger Jun 1 '11 at 2:04
    
In the end, its not necessary and does not help here anyway. Since he is new, lets not confuse him with ill advised tricks and teach him to use proper Perl. He can screw it up later if he wants, when he knows what hes doing. –  Joel Berger Jun 1 '11 at 2:05

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.