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I recently had to write the following algorithim:

Given a group of tags, and a group of blog posts, where a blog post may contain zero-to-many tags, return the tags common to all posts.

This comparison is being done in-memory - accessing either collection does not cause a trip across the network (ie., to a database, etc).

Also, the Tags collection does not have a reference to BlogPosts that contain it. BlogPosts have a collection of Tags they contain.

Below is my implementation. It performs just fine, but I'm curious if there was a better way to implement it.

My implementation is in Actionscript, but I'm curious more from a algorithim perspective, so examples in any language is fine. (But if I don't know the language, I may ask you to clarify some aspects)

Any examples of improvements would be greatly received.

    private function getCommonTags(blogPosts:Vector.<BlogPost>):Vector.<Tag>
    {
        var commonTags:Vector.<Tag> = new Vector.<Tag>();
        if (!blogPosts || blogPosts.length == 0)
            return commonTags;

        var blogPost:BlogPost = blogPosts[0];
        if (!blogPost.tags || blogPost.tags.length == 0)
            return commonTags;

        commonTags = Vector.<Tag>(blogPosts[0].tags);

        for each (var blogPost:BlogPost in blogPosts)
        {
            if (!blogPost.tags || blogPost.tags.length == 0 || commonTags.length == 0)
                // Updated to fix bug mentioned below
                // Optomized exit - there are no common tags
                return new Vector.<Tag>();

            for each (var tag:Tag in commonTags)
            {
                if (!blogPost.containsTagId(tag.id))
                {
                    commonTags.splice(commonTags.indexOf(tag),1);
                }
            }
        }
        return commonTags;
    }
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I don't know Actionscript, but this code will run faster if you can cheaply order the blogposts by blogPost.tags.length. Also I think there's a bug when the first post has 2 tags and the second 0, it will return the 2 tags of the first post. –  krusty.ar Dec 2 '10 at 20:28
    
@krusty.ar Thanks! Sorting by the number of tags is a great idea. I think the bug you mention is from some poor variable renaming on my behalf - I've edit the code, let me know if you still see the bug (I don't). –  Marty Pitt Dec 2 '10 at 21:29
1  
Ok, suppose blogPosts[0].tags.lenght == 2 and blogPosts[0].tags.lenght == 0, the first pass of the for each loop will compare the 2 tags of the first post with the 2 tags of the first post, wich are identical, so commonTags.lenght == 2, in the second pass of the loop, blogPost.tags.length == 0, so the "optimized exit" is used, but still commonTags.lenght == 2, so you are returning the tags of the first post, wich the second post doesn't have, the correct version would be something like return new Vector.<Tag>(); –  krusty.ar Dec 3 '10 at 1:14
    
You're absolutely correct. Thanks - I'll fix that. –  Marty Pitt Dec 3 '10 at 1:41
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2 Answers

Well, you just need an efficient algorithm for computing the intersection of two sets because you can just repeatedly invoke the algorithm for more than two sets.

A quick algorithm is to add the items of the first set to a hash table and then iterate through the second set checking the hash table to see if it is present; if it is you add it to the list of items to be returned in the intersection.

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I can state this program in an English sentence: "Return all tags that occur uniformly among the posts."

Giving the name all_tags to the list of tags and post_tags to the list of tags-associated-to-posts, I can say the same thing with this sentence in the J programming language

   all_tags #~ (#=+/) all_tags e.&>"_ 0 post_tags

Looking at this in some detail:

  • #~ means "copy where"

  • (# = +/) means "tally equals sum"

  • e. means "exists in"

  • &>"_ 0 modifies e. so the entirety of all_tags is compared with each of the tag-sets in post_tags

If we want to make this a program that takes two arguments, rather than a program that is specific to these named lists, the corresponding program could be:

   common_to=:  [ #~ [:(#=+/) [ e.&>"_ 0 ]

Running that program with the same data names would look like this:

   all_tags common_to post_tags

It seems worth noting that we don't actually need the comprehensive list of tags, as that can be derived. (The calculation is ~. ; post_tags.) That means we could write the program to take only a single argument. But since the problem presumes we already have the all_tags list computed, there's no need to compute it again.

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