Back to Recommender Systems: Evaluation and Metrics
University of Minnesota

Recommender Systems: Evaluation and Metrics

In this course you will learn how to evaluate recommender systems. You will gain familiarity with several families of metrics, including ones to measure prediction accuracy, rank accuracy, decision-support, and other factors such as diversity, product coverage, and serendipity. You will learn how different metrics relate to different user goals and business goals. You will also learn how to rigorously conduct offline evaluations (i.e., how to prepare and sample data, and how to aggregate results). And you will learn about online (experimental) evaluation. At the completion of this course you will have the tools you need to compare different recommender system alternatives for a wide variety of uses.

Status: Test Data
Status: Decision Support Systems
Course7 hours

Featured reviews

MB

Reviewed Dec 4, 2022

It was a great course! Everyone from variety of backgrounds like MS/PhD students or industry professionals that has basic Information Retrieval and ML knowledge could understand the course content.

LL

Reviewed Jul 18, 2017

wonderful!!! They teach a lot what I did not expect!

CS

Reviewed Jul 15, 2017

A lot of very in detail theories and metrics. I wish it could have more hands on experience.

SS

Reviewed Jun 12, 2017

Very good. But left out 1 star because one honors assignment did not have the material(base code) to download. Repeated questions were not answered in forum.

NS

Reviewed Dec 13, 2019

Wonderful course provide realtime examples of the pros and cons of each approach and metric, very useful and enjoyable

AC

Reviewed Jul 30, 2024

Great course. They have taught me a lot about metrics and case studies to use metrics.

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