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I need to check if a scalar exists in a set of scalars. What is the best way of storing this set of scalars?

Walking through an array would yield linear check time. The check time for a hash would be constant, but it feels inefficient since I wouldn't be using the value part of the hash.

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Best in terms of time, space, complexity or ? Life is full of trade-offs. –  Mark Johnson Apr 22 '11 at 19:13
    
@Mark: I figure there should be a structure that is strictly better than using a hash, probably with the same time complexity but better space complexity. –  Tim Apr 22 '11 at 19:16
    
How big is your set of scalars? Is it static or dynamic? –  Mark Johnson Apr 22 '11 at 19:22
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@Tim Sorry, I should have been more explicit. By complexity I also meant programming complexity. Hashes are a convenient built in language feature. For a 10000 element static list, I suspect it will be hard to beat the built in hash in terms of space without sacrificing time. You might want to use Devel::Size to see just how much memory a hash would use with your keys and dummy values. –  Mark Johnson Apr 22 '11 at 19:41
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Why are you interested in asymptotic complexity (how something scales) if the number of elements never changes. –  ikegami Apr 22 '11 at 23:30

7 Answers 7

up vote 9 down vote accepted

Use a hash, but don't use the values. There really isn't a better way.

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Is this true for Perl or for data structures in general? –  Tim Apr 22 '11 at 18:45
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For Perl; I'm sure at least some languages provide a type more customized to this purpose. –  ysth Apr 23 '11 at 1:37
    
In the case of a language like Java, you would utilize a HashSet. However, in Perl you could just not use the values, or store how many times the value has appeared (if it could appear more than once that is). –  Cooper Apr 25 '11 at 14:41

The memory overhead for using a hash to test for set membership is minimal, and greatly outweighs the cost of repeated sequential searches through an array. There are many ways to make a set membership style hash:

my %set = map {$_ => 1} ...;

my %set; $set{$_}++ for ...;

my %set; @set{...} = (1) x num_of_items;

Each of these allows you to use the hash lookup directly in a conditional without any additional syntax.

If your hash is going to be huge, and you are worried about the memory usage, you can store undef as the value for each key. But in that case you will have to use exists $set{...} in your conditionals.

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in modern perls, an integer or a reference is just as cheap as undef –  ysth Apr 27 '11 at 4:12

A hash should do fine. You could use undef for the value and use exists($h{$k}) or you could use 1 and use $h{$k}.

Judy::HS should be a bit more efficient, but there's no value-less version of that structure either.

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There is Set::Scalar, but it uses hashes under the hood. Bloom::Filter would possibly be more memory efficient, but you have to worry about false positives. Tree::AVL? You can use Devel::Size to compare various solutions in terms of memory usage. The theoretical time complexity you can look up, the practical time complexity you can measure yourself.

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You may find this section of the FAQ useful:

How can I tell whether a certain element is contained in a list or array?

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I read it already, and it doesn't seem to contain any suggestions other than looping through an array or checking a hash (or even looping through a hash!). –  Tim Apr 22 '11 at 18:58

Iterating through an array could be done:

my @arr = ( $list, $of, $scalars );
push @arr, $any, $other, $ones;

It's expensive to look through, but not that expensive unless you have a massive list:

grep { $_ eq $what_youre_looking_for } @arr;

The hash method also works:

my %hash = ( $list => 1, $of => 1, $scalars => 1 );
$hash{$another} = 1;

if ( exists $hash{$what_youre_looking_for} ) {
    ...
}

You could implement a binary search and a list sorter, but those are the two most used methods.

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Yes, those are the methods I mentioned in my question. I was wondering if there is a better way. –  Tim Apr 22 '11 at 19:00

HashTable is the best option.

Note:- As you said it is a set, I hope there are no duplicate elements.

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