Efficient Search for Diverse Coherent Explanations

Chris Russell
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引用次数: 187

Abstract

This paper proposes new search algorithms for counterfactual explanations based upon mixed integer programming. We are concerned with complex data in which variables may take any value from a contiguous range or an additional set of discrete states. We propose a novel set of constraints that we refer to as a "mixed polytope" and show how this can be used with an integer programming solver to efficiently find coherent counterfactual explanations i.e. solutions that are guaranteed to map back onto the underlying data structure, while avoiding the need for brute-force enumeration. We also look at the problem of diverse explanations and show how these can be generated within our framework.
有效地寻找各种连贯的解释
提出了一种基于混合整数规划的反事实解释搜索算法。我们关心的是复杂数据,其中变量可以取连续范围内的任意值,也可以取一组额外的离散状态。我们提出了一组新的约束,我们称之为“混合多面体”,并展示了如何将其与整数规划求解器一起使用,以有效地找到连贯的反事实解释,即保证映射回底层数据结构的解决方案,同时避免了对暴力枚举的需要。我们还研究了各种解释的问题,并展示了如何在我们的框架内生成这些解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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