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Beyond Algorithmic Fairness in Recommender Systems

Mehdi Elahi, Himan Abdollahpouri, Masoud Mansoury, Helma Torkamaan

202121 citationsDOI

Abstract

Fairness is one of the crucial aspects of modern Recommender Systems which has recently drawn substantial attention from the community. Many recent works have addressed this aspect by studying the fairness of the recommendation through different forms of evaluation methodologies and metrics. However, the majority of these works have mainly concentrated on the recommendation algorithms and hence measured the fairness from the algorithmic viewpoint. While such viewpoint may still play an important role, it does not necessarily project a comprehensive picture of how the users may perceive the overall fairness of a recommender system.

Topics & Concepts

Recommender systemComputer scienceInformation retrievalRecommender Systems and TechniquesAdvanced Bandit Algorithms ResearchPrivacy-Preserving Technologies in Data