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Argument Based Machine Learning Applied to Law

机译:基于参数的机器学习应用于法律

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In this paper we discuss the application of a new machine learning approach - Argument Based Machine Learning - to the legal domain. An experiment using a dataset which has also been used in previous experiments with other learning techniques is described, and comparison with previous experiments made. We also tested this method for its robustness to noise in learning data. Argumentation based machine learning is particularly suited to the legal domain as it makes use of the justifications of decisions which are available. Importantly, where a large number of decided cases are available, it provides a way of identifying which need to be considered. Using this technique, only decisions which will have an influence on the rules being learned are examined.
机译:在本文中,我们讨论了一种新的机器学习方法-基于参数的机器学习-在法律领域中的应用。描述了使用数据集进行的实验,该数据集也已在先前的实验中与其他学习技术一起使用,并与先前的实验进行了比较。我们还测试了该方法对学习数据中噪声的鲁棒性。基于争论的机器学习特别适合法律领域,因为它利用了可用决策的依据。重要的是,在有大量已决案件的情况下,它提供了一种识别需要考虑的方式。使用这种技术,仅检查将影响正在学习的规则的决策。

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