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Empirical Evaluation of Similarity Coefficients for Multiagent Fault Localization

机译:多主体故障定位相似系数的实证评估

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摘要

Detecting and diagnosing unwanted behavior in multiagent systems (MASs) are crucial to ascertain correct operation of agents. Current techniques assume a priori knowledge to identify unexpected behavior. However, generation of MAS models is both error-prone and time-consuming, as it exponentially increases with the number of agents and their interactions. In this paper, we describe a light-weight, automatic debugging-based technique, coined extended spectrum-based fault localization for MAS (ESFL-MAS), that shortens the diagnostic process, while only relying on minimal information about the system. ESFL-MAS uses a heuristic that quantifies the suspiciousness of an agent to be faulty. Different heuristics may have a different impact on the diagnostic quality of ESFL-MAS. Our experimental evaluation shows that 10 out of 42 heuristics (namely accuracy, coverage, Jaccard, Laplace, least contradiction, Ochiai, Rogers and Tanimoto, simple-matching, Sorensen-dice, and support) yield the best diagnostic accuracy (96.26% on average) in the context of the MAS used in our experiments.
机译:在多代理系统(MAS)中检测和诊断有害行为对于确定代理的正确操作至关重要。当前的技术假设先验知识以识别意外行为。但是,MAS模型的生成既容易出错又很耗时,因为它随着代理程序及其交互的数量呈指数增长。在本文中,我们描述了一种轻量级的,基于自动调试的技术,即针对MAS(ESFL-MAS)产生的基于扩展频谱的故障定位,它缩短了诊断过程,同时仅依赖于有关系统的最少信息。 ESFL-MAS使用一种启发式方法来量化代理故障的可疑性。不同的启发式方法可能会对ESFL-MAS的诊断质量产生不同的影响。我们的实验评估表明,在42种启发式方法(即准确性,覆盖率,Jaccard,Laplace,最不矛盾,Ochiai,Rogers和Tanimoto,简单匹配,Sorensen-dice和支持)中,有10种产生了最高的诊断准确性(平均96.26% ),以在我们的实验中使用的MAS为背景。

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