Reciprocity in Machine Learning

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Tác giả: Walid Krichene, Mukund Sundararajan

Ngôn ngữ: eng

Ký hiệu phân loại: 337.9 International economics

Thông tin xuất bản: 2022

Mô tả vật lý:

Bộ sưu tập: Báo, Tạp chí

ID: 194466

Machine learning is pervasive. It powers recommender systems such as Spotify, Instagram and YouTube, and health-care systems via models that predict sleep patterns, or the risk of disease. Individuals contribute data to these models and benefit from them. Are these contributions (outflows of influence) and benefits (inflows of influence) reciprocal? We propose measures of outflows, inflows and reciprocity building on previously proposed measures of training data influence. Our initial theoretical and empirical results indicate that under certain distributional assumptions, some classes of models are approximately reciprocal. We conclude with several open directions.
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