Fair diagnosability in PN-based DES models

K. Ajoy, Kush Misra, S. Biswas, J. Deka, H. Kapoor
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引用次数: 2

Abstract

Failure diagnosability has been widely studied for discrete event system (DES) models because of modeling simplicity and computational efficiency due to abstraction. Frameworks based on FSMs, process algebra, Petri nets (PN) etc. have been used for modeling and diagnosability analysis of DES. DES failure diagnosability algorithms work successfully for systems where fairness is not a part of the model. They are based on detecting cycles in the normal and the failure model that look identical. However, there exist systems with all transitions fair where the diagnosability condition that hinges upon this feature renders many failures non-diagnosable although they may actually be diagnosable by transitions out of a cycle. Hence, the diagnosability conditions based on cycle detection need to be modified to hold for many real-world systems where all transitions are fair. In this paper a new failure diagnosability mechanism is proposed for PN based DES models with fair transitions
基于pn的DES模型的可诊断性
离散事件系统(DES)模型的故障诊断由于建模简单和抽象的计算效率而得到了广泛的研究。基于fsm、过程代数、Petri网(PN)等框架已被用于DES的建模和可诊断性分析。DES故障可诊断性算法在公平性不是模型一部分的系统中成功工作。它们是基于正常和故障模型中看起来相同的检测周期。然而,存在具有所有转换公平的系统,其中依赖于此特性的可诊断性条件使得许多故障无法诊断,尽管它们实际上可以通过循环外的转换进行诊断。因此,需要修改基于周期检测的可诊断性条件,以适用于许多所有转换都是公平的真实系统。本文提出了一种基于PN的具有公平转换的DES模型的故障诊断机制
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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