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首页> 外文期刊>LIPIcs : Leibniz International Proceedings in Informatics >Inherent Trade-Offs in the Fair Determination of Risk Scores
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Inherent Trade-Offs in the Fair Determination of Risk Scores

机译:公平确定风险分数的内在取舍

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摘要

Recent discussion in the public sphere about algorithmic classification has involved tension between competing notions of what it means for a probabilistic classification to be fair to different groups. We formalize three fairness conditions that lie at the heart of these debates, and we prove that except in highly constrained special cases, there is no method that can satisfy these three conditions simultaneously. Moreover, even satisfying all three conditions approximately requires that the data lie in an approximate version of one of the constrained special cases identified by our theorem. These results suggest some of the ways in which key notions of fairness are incompatible with each other, and hence provide a framework for thinking about the trade-offs between them.
机译:在公共领域,关于算法分类的最新讨论涉及到相互竞争的观念之间的紧张关系,即概率分类对不同群体公平意味着什么。我们正式确定了这些辩论的核心三个公平条件,并且我们证明,除了在高度受限的特殊情况下,没有其他方法可以同时满足这三个条件。而且,即使满足所有三个条件,大约也需要数据位于我们定理确定的受约束特殊情况之一的近似版本中。这些结果表明了公平的关键概念彼此不兼容的某些方式,因此为思考两者之间的取舍提供了框架。

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