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Disparate Impact in Item Recommendation: A Case of Geographic Imbalance

机译:在项目建议中的不同影响:一个地理不平衡的案例

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Recommender systems are key tools to push items' consumption. Imbalances in the data distribution can affect the exposure given to providers, thus affecting their experience in online platforms. To study this phenomenon, we enrich two datasets and characterize data imbalance w.r.t. the country of production of an item (geographic imbalance). We focus on movie and book recommendation, and divide items into two classes based on their country of production, in a majority-versus-rest setting. To assess if recommender systems generate a disparate impact and (dis)advantage a group, we introduce metrics to characterize the visibility and exposure a group receives in the recommendations. Then, we run state-of-the-art recommender systems and measure the visibility and exposure given to each group. Results show the presence of a disparate impact that mostly favors the majority; however, factorization approaches are still capable of capturing the preferences for the minority items, thus creating a positive impact for the group. To mitigate disparities, we propose an approach to reach the target visibility and exposure for the disadvantaged group, with a negligible loss in effectiveness.
机译:推荐系统是推动项目消耗的关键工具。数据分发中的不平衡可能会影响提供商给提供商的曝光,从而影​​响他们在网上平台中的经验。为了研究这种现象,我们丰富了两个数据集,并表征了数据不平衡w.r.t.项目的生产国家(地理失衡)。我们专注于电影和书籍推荐,并根据其生产国家分为两堂课,在多数与休息环境中,将物品分为两类。为了评估推荐系统生成不同影响和(DIS)优势的组,我们介绍了指标,以表征集团在建议中获得的可见性和曝光。然后,我们运行最先进的推荐系统,并测量每个组给出的可见性和曝光。结果表明存在主要影响大多数的不同影响;然而,分解方法仍然能够捕获对少数项目的偏好,从而为该组产生积极影响。为了减轻差异,我们提出了一种达到弱势群体的目标可见性和暴露的方法,有效损失可忽略不计。

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