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Online Fault Diagnosis in Discrete Event Systems with Partially Observed Petri Nets

机译:具有部分观察到Petri网的离散事件系统中的在线故障诊断

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AbstractThis paper investigates the fault detection problem for Discrete Event Systems (DES) which can be modeled by Partially Observed Petri Nets (POPN). To overcome the problem of low diagnosability in the POPN online fault diagnoser in current use, we propose an improved online fault diagnosis algorithm that integrates Generalized Mutual Exclusion Constraints (GMEC) and Integer Linear Programming (ILP).We assume that the POPN structure and its initial markings are known, and the faults are modeled as unobservable transitions. First, the event sequence is observed and recorded. We use GMEC for elementary diagnosis of the system behavior,then the ILP problem of POPN is solved for further diagnosis. Finally, we modeled and analyzed an example of a real DES to test the new fault diagnoser. The proposed algorithm increased the diagnosability of the DES remarkably, and the effectiveness of the new algorithm integrating GMEC and ILP was verified.]]>
机译:<![CDATA [ <标题>抽象 ara>本文调查了可以通过部分观察到的离散事件系统(DES)的故障检测问题Petri网(Popn)。为了克服当前使用中POPN在线故障诊断器中低诊断问题的问题,我们提出了一种改进的在线故障诊断算法,其集成了广义互斥约束(GMEC)和整数线性编程(ILP).we假设POPN结构及其初始标记是已知的,并且故障被建模为不可观察的转换。首先,观察和记录事件序列。我们使用GMEC进行基本诊断系统行为,然后解决了POPN的ILP问题以进一步诊断。最后,我们建模并分析了真实DES的示例来测试新的故障诊断器。该算法显着增加了DES的诊断,验证了GMEC和ILP的新算法的有效性。 ]]>

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