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Spark Cookbook

You're reading from  Spark Cookbook

Product type Book
Published in Jul 2015
Publisher
ISBN-13 9781783987061
Pages 226 pages
Edition 1st Edition
Languages
Author (1):
Rishi Yadav Rishi Yadav
Profile icon Rishi Yadav
Toc

Table of Contents (19) Chapters close

Spark Cookbook
Credits
About the Author
About the Reviewers
www.PacktPub.com
Preface
1. Getting Started with Apache Spark 2. Developing Applications with Spark 3. External Data Sources 4. Spark SQL 5. Spark Streaming 6. Getting Started with Machine Learning Using MLlib 7. Supervised Learning with MLlib – Regression 8. Supervised Learning with MLlib – Classification 9. Unsupervised Learning with MLlib 10. Recommender Systems 11. Graph Processing Using GraphX 12. Optimizations and Performance Tuning Index

Collaborative filtering using explicit feedback


Collaborative filtering is the most commonly used technique for recommender systems. It has an interesting property—it learns the features on its own. So, in the case of movie ratings, we do not need to provide actual human feedback on whether the movie is romantic or action.

As we saw in the Introduction section that movies have some latent features, such as genre, in the same way users have some latent features, such as age, gender, and more. Collaborative filtering does not need them, and figures out latent features on its own.

We are going to use an algorithm called Alternating Least Squares (ALS) in this example. This algorithm explains the association between a movie and a user based on a small number of latent features. It uses three training parameters: rank, number of iterations, and lambda (explained later in the chapter). The best way to figure out the optimum values of these three parameters is to try different values and see which...

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