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The Good, the Bad and the Incorrectly Classified: Profiling Cases for Case-Base Editing

机译:好的,坏的和分类错误的案例:基于案例的编辑案例

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摘要

Case-based approaches to classification, as instance-based learning techniques, have a particular reliance on training examples that other supervised learning techniques do not have. In this paper we present the RDCL case profiling technique that categorises each case in a case-base based on its classification by the case-base, the benefit it has and/or the damage it causes by its inclusion in the case-base. We show how these case profiles can identify the cases that should be removed from a case-base in order to improve generalisation accuracy and we show what aspects of existing noise reduction algorithms contribute to good performance and what do not.
机译:作为基于实例的学习技术,基于案例的分类方法特别依赖于其他有监督的学习技术所没有的训练示例。在本文中,我们介绍了RDCL案例分析技术,该技术基于案例库对每个案例的分类,包括案例库,案例库所具有的收益和/或造成的损害。我们展示了这些案例档案如何识别应从案例库中删除的案例,以提高泛化精度,并展示了现有降噪算法的哪些方面有助于提高性能,而哪些方面不起作用。

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