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Causal Explanations for Image Classifiers
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本文提出一种基于实际因果理论的图像分类解释算法,通过证明相关理论结果,实现近似解释的提取。该算法在工具ReX中实现,实验结果表明其在效率和解释质量上优于现有工具。

arXiv:2411.08875v2 Announce Type: replace Abstract: Existing algorithms for explaining the output of image classifiers use different definitions of explanations and a variety of techniques to extract them. However, none of the existing tools use a principled approach based on formal definitions of causes and explanations for the explanation extraction. In this paper we present a novel black-box approach to computing explanations grounded in the theory of actual causality. We prove relevant theoretical results and present an algorithm for computing approximate explanations based on these definitions. We prove termination of our algorithm and discuss its complexity and the amount of approximation compared to the precise definition. We implemented the framework in a tool ReX and we present experimental results and a comparison with state-of-the-art tools. We demonstrate that \rex is the most efficient tool and produces the smallest explanations, in addition to outperforming other black-box tools on standard quality measures.

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相关标签

图像分类 因果理论 解释算法 ReX工具 黑盒方法
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