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Fairness Vs. Personalization: Towards Equity in Epistemic Utility

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arxiv 2309.11503 v1 pith:NNA4X5K2 submitted 2023-09-05 cs.IR cs.LG

classification cs.IRcs.LG
keywords fairnesssystemspersonalizedepistemicequityimplementationspersonalizationtowards
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The applications of personalized recommender systems are rapidly expanding: encompassing social media, online shopping, search engine results, and more. These systems offer a more efficient way to navigate the vast array of items available. However, alongside this growth, there has been increased recognition of the potential for algorithmic systems to exhibit and perpetuate biases, risking unfairness in personalized domains. In this work, we explicate the inherent tension between personalization and conventional implementations of fairness. As an alternative, we propose equity to achieve fairness in the context of epistemic utility. We provide a mapping between goals and practical implementations and detail policy recommendations across key stakeholders to forge a path towards achieving fairness in personalized systems.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. PARK: Personalized academic retrieval with knowledge-graphs

    cs.IR 2025-07 conditional novelty 6.0 of 10

    PARK personalizes academic search by embedding a citation-derived knowledge graph into the same vector space as a neural retrieval model, beating baselines in three of four domains.

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