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Recommender systems

Physics ReportsPublished 6 March 2012Open access
Linyuan Lü, Matúš Medo, Chi Ho Yeung, Yicheng Zhang, Zi‐Ke Zhang, Tao Zhou
Citations951
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TL;DR

This article compares and evaluate available algorithms and examine their roles in the future developments and emphasizes that recommendation has a great scientific depth and combines diverse research fields which makes it of interests for physicists as well as interdisciplinary researchers.

Abstract

The ongoing rapid expansion of the Internet greatly increases the necessity of effective recommender systems for filtering the abundant information. Extensive research for recommender systems is conducted by a broad range of communities including social and computer scientists, physicists, and interdisciplinary researchers. Despite substantial theoretical and practical achievements, unification and comparison of different approaches are lacking, which impedes further advances. In this article, we review recent developments in recommender systems and discuss the major challenges. We compare and evaluate available algorithms and examine their roles in the future developments. In addition to algorithms, physical aspects are described to illustrate macroscopic behavior of recommender systems. Potential impacts and future directions are discussed. We emphasize that recommendation has a great scientific depth and combines diverse research fields which makes it of interests for physicists as well as interdisciplinary researchers.

Keywords

Computer SciencePhysics and Astronomy