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Formal Concept Analysis Enhances Fault Localization in Software

机译:形式化概念分析可增强软件中的故障定位

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Recent work in fault localization crosschecks traces of correct and failing execution traces. The implicit underlying technique is to search for association rules which indicate that executing a particular source line will cause the whole execution to fail. This technique, however, has limitations. In this article, we first propose to consider more expressive association rules where several lines imply failure. We then propose to use Formal Concept Analysis (FCA) to analyze the resulting numerous rules in order to improve the readability of the information contained in the rules. The main contribution of this article is to show that applying two data mining techniques, association rules and FCA, produces better results than existing fault localization techniques.
机译:故障定位中的最新工作会对正确和失败的执行跟踪进行交叉检查。隐式底层技术是搜索关联规则,该规则指示执行特定的源代码行将导致整个执行失败。但是,该技术具有局限性。在本文中,我们首先建议考虑更具表现力的关联规则,其中几行表示失败。然后,我们建议使用形式概念分析(FCA)来分析由此产生的众多规则,以提高规则中包含的信息的可读性。本文的主要贡献是表明,与现有的故障定位技术相比,应用两种数据挖掘技术(关联规则和FCA)可获得更好的结果。

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