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KLEOR: A Knowledge Lite Approach to Explanation Oriented Retrieval

机译:KLEOR:一种知识精简的面向解释的检索方法

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In this paper, we describe precedent-based explanations for case-based classification systems. Previous work has shown that explanation cases that are more marginal than the query case, in the sense of lying between the query case and the decision boundary, are more convincing explanations. We show how to retrieve such explanation cases in a way that requires lower knowledge engineering overheads than previously. We evaluate our approaches empirically, finding that the explanations that our systems retrieve are often more convincing than those found by the previous approach. The paper ends with a thorough discussion of a range of factors that affect precedent-based explanations, many of which warrant further research.
机译:在本文中,我们描述了基于案例的分类系统的基于先例的解释。先前的工作表明,在查询案例和决策边界之间的意义上,比查询案例边缘得多的解释案例更具说服力。我们展示了如何以比以前更低的知识工程开销来检索这种解释案例。我们通过经验评估我们的方法,发现我们的系统检索到的解释通常比以前的方法更有说服力。本文最后全面讨论了影响基于先例的解释的一系列因素,其中许多因素有待进一步研究。

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