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A Case-Based Approach to Explore Validation Experience

机译:基于案例的探索验证经验的方法

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摘要

The success of Turing Test technologies for system validation depends on the quality of the human expertise behind the system. As an additional source of human experts' validation knowledge a Validation Knowledge base (VKB) and so called Validation Expert Software Agents (VESAs) revealed to be useful. Both concepts aim at using collective (VKB) and individual (VESA) experience gained in former validation sessions. However, a drawback of these concepts were their disability to provide a reply to cases, which have never been considered before. The paper proposes a case-based data mining approach to cluster the entries of VKB and VESA and derive a reply to unknown cases by considering a number of most similar known cases and coming to a "weighted majority" decision. The approach has been derived from the k Nearest-Neighbor approach.
机译:用于系统验证的图灵测试技术的成功取决于系统背后人员的专业素质。作为人类专家的验证知识的附加来源,验证知识库(VKB)和所谓的验证专家软件代理(VESA)被证明是有用的。这两个概念均旨在利用在先前验证会议中获得的集体(VKB)和个人(VESA)经验。但是,这些概念的缺点是它们无法提供对案件的答复,这是以前从未考虑过的。本文提出了一种基于案例的数据挖掘方法,以对VKB和VESA的条目进行聚类,并通过考虑一些最相似的已知案例并做出“加权多数”决策来得出对未知案例的答复。该方法是从k最近邻居方法派生的。

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