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 want to sort a hash which actually has a hash as a value. For instance:

my %hash1=(
   field1=>"",
   field2=>"",
   count=>0,
);
my %hash2;
$hash2{"asd"}={%hash1};

and I inserted lots of hashes to %hash2 with different count values of %hash2.

How can I sort the %hash1 according to a count value of hash1?

Is there a way of doing this without implementing quicksort manually, for instance with the sort function of Perl?

share|improve this question
    
Do you mean that you want to get the list of hashes (like hash1) sorted by the count from the values in hash2? –  Jagmal Apr 13 '09 at 6:24
    
yes Jagmal that means I want to sort with respect to $hash2{"asd"}{count}. –  systemsfault Apr 13 '09 at 6:29
add comment

5 Answers

up vote 10 down vote accepted
my @hash1s = sort {$a->{count} <=> $b->{count}} values %hash2;
share|improve this answer
    
I tried that way but get the following warning: [warning]: Use of uninitialized value in numeric comparison (<=>) at –  systemsfault Apr 13 '09 at 6:48
    
The code snippet both for my answer, and for my comment to your answer, work for me when tested (even with -w and "use strict"). –  Chris Jester-Young Apr 13 '09 at 7:01
    
you are getting that warning because one or more of your hashes has no value for the 'count' key. If you want to count those as 0, you could do sort {($a->{count} || 0) <=> ($b->{count} ||0)} values %hash2; –  nohat Apr 13 '09 at 7:04
    
no all my count values have 0 as a default value. But in my production code the key's name wasn't count it was total_cnt, but sort algorithm sorts in ascending order i need to sort in descending order. –  systemsfault Apr 13 '09 at 7:16
1  
@holydiver: Use $b->{count} <=> $a->{count} for descending order (i.e., swap a and b). –  Chris Jester-Young Apr 13 '09 at 7:18
show 1 more comment

From perlfaq4, the answer to "http://faq.perl.org/perlfaq4.html#How_do_I_sort_a_hash" has most of the information you need to put together your code.

You might also want to see the chapter on Sorting in Learning Perl.

Chris has a completely fine answer, although I hate using values like that. A more familiar way to do the same thing is to go through the keys of the top-level hash but sort by the second-level key:

my @sorted_hashes = 
    sort { $hash2->{$a}{count} <=> $hash2->{$b}{count} } 
    keys %hash2;

I do it this way because it's a little less mind-bending.


How do I sort a hash (optionally by value instead of key)?

(contributed by brian d foy)

To sort a hash, start with the keys. In this example, we give the list of keys to the sort function which then compares them ASCIIbetically (which might be affected by your locale settings). The output list has the keys in ASCIIbetical order. Once we have the keys, we can go through them to create a report which lists the keys in ASCIIbetical order.

my @keys = sort { $a cmp $b } keys %hash;

foreach my $key ( @keys )
	{
	printf "%-20s %6d\n", $key, $hash{$key};
	}

We could get more fancy in the sort() block though. Instead of comparing the keys, we can compute a value with them and use that value as the comparison.

For instance, to make our report order case-insensitive, we use the \L sequence in a double-quoted string to make everything lowercase. The sort() block then compares the lowercased values to determine in which order to put the keys.

my @keys = sort { "\L$a" cmp "\L$b" } keys %hash;

Note: if the computation is expensive or the hash has many elements, you may want to look at the Schwartzian Transform to cache the computation results.

If we want to sort by the hash value instead, we use the hash key to look it up. We still get out a list of keys, but this time they are ordered by their value.

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

From there we can get more complex. If the hash values are the same, we can provide a secondary sort on the hash key.

my @keys = sort {
	$hash{$a} <=> $hash{$b}
		or
	"\L$a" cmp "\L$b"
	} keys %hash;
share|improve this answer
    
wow great explanation thanx. –  systemsfault Apr 14 '09 at 8:09
add comment

If you want to get the list of hashes (like hash1) sorted by the count from the values in hash2, this may help:

@sorted_hash1_list = sort sort_hash_by_count_key($a, $b) (values (%hash2);


# This method can have any logic you want
sub sort_hash_by_count_key {
    my ($a, $b) = @_;
    return $a->{count} <=> $b->{count};
}
share|improve this answer
    
Do you mean to say "sort \&sort_hash_by_count_key, values %hash2" instead of what you currently have? –  Chris Jester-Young Apr 13 '09 at 6:37
    
I assume this will work this way also, won't it? –  Jagmal Apr 13 '09 at 10:23
add comment

See http://perldoc.perl.org/functions/sort.html for lot's of context how sort works in Perl.

And here's an example .. trying to be readable, not perlish.

#!/usr/bin/perl
# Sort Hash of Hashes by sub-hash's element count.
use warnings;
use strict;


my $hash= {
            A=>{C=>"D",0=>"r",T=>"q"}
           ,B=>{}
           ,C=>{E=>"F",G=>"H"}
          };

sub compareHashKeys {0+(keys %{$hash->{$a}}) <=> 0+(keys %{$hash->{$b}}) }

my @SortedKeys = sort compareHashKeys keys %{$hash};
print join ("," , @SortedKeys) ."\n";
share|improve this answer
    
what is '0+' for? –  systemsfault Apr 13 '09 at 7:02
    
The 0+ is supposed to coerce the value to a numeric, however, <=> already does that, so the 0+ really is redundant. :-P –  Chris Jester-Young Apr 13 '09 at 7:16
    
Well, the value that comes out of cmp or <=> are already numeric, being -1, 0, or 1. It doesn't matter what the data is. sort() needs -1, 0, or 1 to decide how to order things. –  brian d foy Apr 13 '09 at 17:44
    
As Chris points out, I put the 0+ there to coerce the keys array into a scalar (thus holding the length of the array). Apparently <=> already does that .. I will continue to do so, since it makes it obvious to me, when re-reading the code, what is expected to happen. YMMD –  lexu Apr 14 '09 at 6:21
add comment

To sort by numeric use <=> and for string use cmp.

# sort by the numeric count field on inner hash
#
foreach my $key (sort {$hash2{$a}->{'count'} <=> $hash2{$b}->{'count'}} keys %hash2) {
   print $key,$hash2{$key}->{'count'},"\n";
}

# sort by the string field1 (or field2) on the inner hash
#
foreach my $key (sort {$hash2{$a}->{'field1'} cmp $hash2{$b}->{'field1'}} keys %hash2) {
   print $key,$hash2{$key}->{'field1'},"\n";
}

To reverse order simply swap $a and $b:

# sort by the numeric count field on inner hash
#
foreach my $key (sort {$hash2{$a}->{'count'} <=> $hash2{$b}->{'count'}} keys %hash2) {
   print $key,$hash2{$key}->{'count'},"\n";
}

# sort by the string field1 (or field2) on the inner hash
#
foreach my $key (sort {$hash2{$a}->{'field1'} cmp $hash2{$b}->{'field1'}} keys %hash2) {
   print $key,$hash2{$key}->{'field1'},"\n";
}
share|improve this answer
add comment

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.