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Fault diagnosis in DESs modeled by partially observed Petri nets

机译:用部分观测Petri网建模的DES中的故障诊断

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In this paper, we focus on fault diagnosis in discrete event systems (DESs) which are modeled by partially observed Petri nets. We consider not only the case where faults occur either on transitions or places, but also a more general case where faults occur on both transitions and places at the same time. Some faults cannot be diagnosed directly due to the unobservability of some transitions and places in a partially observed Petri net. We propose an approach to diagnose the faults that cannot be diagnosed directly using by an algebraic decoding technique. More specifically, we employ Nearest Neighbour Decoding (NND) to determine event occurrences in a Petri net based on the observations from sensors in places and transitions, and then the expected marking can be calculated. Fault diagnosis is based on the difference between the expected marking and the observed marking.
机译:在本文中,我们专注于离散事件系统(DES)中的故障诊断,该系统由部分观察到的Petri网建模。我们不仅考虑在过渡或位置都发生故障的情况,而且还要考虑在过渡和位置都同时发生故障的更一般的情况。由于无法部分观察到Petri网中的某些过渡和位置,无法直接诊断某些故障。我们提出了一种无法通过代数解码技术直接诊断的故障的诊断方法。更具体地说,我们根据来自位置和过渡的传感器的观察结果,采用最近邻解码(NND)来确定Petri网中的事件发生,然后可以计算出预期的标记。故障诊断基于预期标记和观察标记之间的差异。

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