A flexible framework for evaluating user and item fairness in recommender systems

One common characteristic of research works focused on fairness evaluation (in machine learning) is that they call for some form of parity (equality) either in treatment—meaning they ignore the information about users’ memberships in protected classes during training—or in impact—by enforcing propor...

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Bibliographic Details
Published in:User modeling and user-adapted interaction Vol. 31; no. 3; pp. 457 - 511
Main Authors: Deldjoo, Yashar, Anelli, Vito Walter, Zamani, Hamed, Bellogín, Alejandro, Di Noia, Tommaso
Format: Journal Article
Language:English
Published: Dordrecht Springer Netherlands 01.07.2021
Springer Nature B.V
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ISSN:0924-1868, 1573-1391
Online Access:Get full text
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