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Evaluating collaborative filtering recommender systems

Jonathan L. Herlocker; Joseph A. Konstan; Loren Terveen; John Riedl · ACM Transactions on Information Systems · 2004

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Recommender systems have been evaluated in many, often incomparable, ways. In this article, we review the key decisions in evaluating collaborative filtering recommender systems: the user tasks being evaluated, the types of analysis and datasets being used, the ways in which prediction quality is measured, the evaluation of prediction attributes other than quality, and the user-based evaluation of the system as a whole. In addition to reviewing the evaluation strategies used by prior researchers, we present empirical results from the analysis of various accuracy metrics on one content domain where all the tested metrics collapsed roughly into three equivalence classes. Metrics within each equivalency class were strongly correlated, while metrics from different equivalency classes were uncorrelated.

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APA 7

Herlocker, J. L, Konstan, J. A, Terveen, L, & Riedl, J. (2004). Evaluating collaborative filtering recommender systems. https://doi.org/10.1145/963770.963772

MLA

Herlocker, Jonathan L, et al. "Evaluating collaborative filtering recommender systems." 2004. https://doi.org/10.1145/963770.963772.

Chicago

Herlocker, Jonathan L, Joseph A. Konstan, Loren Terveen, and John Riedl. 2004. "Evaluating collaborative filtering recommender systems.". https://doi.org/10.1145/963770.963772.

Harvard

Herlocker, J. L. et al. 2004, Evaluating collaborative filtering recommender systems, ACM Transactions on Information Systems, available at: https://doi.org/10.1145/963770.963772 [Accessed 7 Aug. 2026].

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Title
Evaluating collaborative filtering recommender systems
Author / contributors
Jonathan L. Herlocker; Joseph A. Konstan; Loren Terveen; John Riedl
Publisher
ACM Transactions on Information Systems
Publication year
2004
Language
English

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