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Fault detection and diagnosis in distributed systems: An approach by partially stochastic Petri nets

机译:分布式系统中的故障检测和诊断:部分随机Petri网的方法

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摘要

We address the problem of alarm correlation in large distributed systems. The key idea is to make use of the concurrence of events in order to separate and simplify the state estimation in a faulty system. Petri nets and their causality semantics are used to model concurrency. Special partially stochastic Petri nets are developed, that establish some kind of equivalence between concurrence and independence. The diagnosis problem is defined as the computation of the most likely history of the net given a sequence of observed alarms. Solutions are provided in four contexts, with a gradual complexity on the structure of observations. [References: 10]
机译:我们解决了大型分布式系统中警报关联的问题。关键思想是利用事件的并发性,以分离和简化故障系统中的状态估计。 Petri网及其因果关系语义用于建模并发。开发了特殊的部分随机Petri网,在并发性和独立性之间建立了某种等价关系。诊断问题定义为给定一系列观察到的警报时对网络最可能的历史记录的计算。在四种情况下提供了解决方案,并且观察结构逐渐复杂。 [参考:10]

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