Diagnosis and diagnosability analysis of labeled Petri nets using reduction rules

P. Li, M. Khlif-Bouassida, A. Toguyéni
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引用次数: 5

Abstract

This paper addresses the combinatorial explosion problem for diagnosability analysis of discrete event systems (DESs). Some reduction rules are given to simplify a priori the labeled Petri net (LPN) model before analyzing the diagnosability. When the conditions of these reduction rules are satisfied, some regular unobservable transitions and some places, that do not contain necessary information for the diagnosability analysis, are removed. It is proved the diagnosability of the initial LPN is preserved by using these reduction rules. In this paper, the “diagnoser” approach is used to compare the diagnosability analysis of the initial LPN model and that of the reduced LPN model. By using reduction rules, the memory cost for diagnosability analysis is reduced.
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基于约简规则的标记Petri网诊断与可诊断性分析
研究离散事件系统可诊断性分析中的组合爆炸问题。在分析可诊断性之前,给出了一些简化规则来先验地简化标记Petri网(LPN)模型。当这些约简规则的条件满足时,一些规则的不可观测跃迁和一些不包含可诊断性分析所需信息的地方被删除。证明了利用这些约简规则可以保持初始LPN的可诊断性。本文采用“诊断器”方法比较了初始LPN模型和简化LPN模型的可诊断性分析。通过使用约简规则,降低了可诊断性分析的内存开销。
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