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A Left Realist Critique of the Political Value of Adopting Machine Learning Systems in Criminal Justice

机译:在刑事司法中采用机器学习系统的政治价值的左现实主义批判

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In this paper we discuss the political value of the decision to adopt machine learning in the field of criminal justice. While a lively discussion in the community focuses on the issue of the social fairness of machine learning systems, we suggest that another relevant aspect of this debate concerns the political implications of the decision of using machine learning systems. Relying on the theory of Left realism, we argue that, from several points of view, modern supervised learning systems, broadly defined as functional learned systems for decision making, fit into an approach to crime that is close to the law and order stance. Far from offering a political judgment of value, the aim of the paper is to raise awareness about the potential implicit, and often overlooked, political assumptions and political values that may be undergirding a decision that is apparently purely technical.
机译:在本文中,我们讨论了在刑事司法领域采用机器学习的决定的政治价值。 虽然社会中的热闹讨论侧重于机器学习系统的社会公平的问题,但我们建议这场辩论的另一个相关方面涉及使用机器学习系统的决定的政治影响。 依靠左现实主义理论,我们认为,从几个观点来看,经过现代监督学习系统,广泛地定义为决策制定的功能学习系统,适应犯罪的方法,即靠近法律和秩序立场。 远非提供政治判断价值,本文的目的是提高对潜在隐含的认识,经常被忽视,政治假设和政治价值观可能是一个明显纯粹技术的决定。

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