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Robust diagnosis of discrete-event systems against permanent loss of observations

机译:针对离散事件系统的稳健诊断,以防止观测值永久丢失

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摘要

We consider the problem of diagnosing the occurrence of a certain unobservable event of interest, the fault event, in the operation of a partially-observed discrete-event system subject to permanent loss of observations modeled by a finite-state automaton. Specifically, it is assumed that certain sensors for events that would a priori be observable may fail at the outset, thereby resulting in a loss of observable events; the diagnostic engine is not directly aware of such sensor failures. We explore a previous definition of robust diagnosability of a given fault event despite the possibility of permanent (and unknown a priori) loss of observations and present a polynomial time verification algorithm to verify robust diagnosability and a methodology to perform online diagnosis in this scenario using a set of partial diagnosers.
机译:我们考虑在部分观测的离散事件系统的操作中诊断某些不可观察到的感兴趣事件(故障事件)的问题,该系统会受到有限状态自动机建模的观测值的永久丢失。具体来说,假设某些先验可观察事件的传感器可能在一开始就失效,从而导致可观察事件的损失;诊断引擎不会直接知道此类传感器故障。我们探索了既定故障事件的鲁棒性可诊断性的先前定义,尽管可能会永久丢失(和未知的先验)观测值,并提出了多项式时间验证算法来验证鲁棒性的可诊断性,以及在这种情况下使用在线诊断的方法部分诊断程序集。

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