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首页> 外文期刊>Systems, Man and Cybernetics, Part A: Systems and Humans, IEEE Transactions on >Fault Diagnosis of Discrete-Event Systems Using Continuous Petri Nets
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Fault Diagnosis of Discrete-Event Systems Using Continuous Petri Nets

机译:连续Petri网的离散事件系统故障诊断

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When discrete-event systems are used to model systems with a large number of possible (reachable) states, many problems such as simulation, optimization, and control, may become computationally prohibitive because they require some enumeration of such states. A common way to effectively address this issue is fluidization. The goal of this paper is that of studying the effect of fluidization on fault diagnosis. In particular, we focus on the purely logic Petri net (PN) model that results in the untimed continuous PN model after fluidization. In accordance to most of the literature on discrete-event systems, we define three diagnosis states, namely $N$, $U$ , and $F$, corresponding respectively to no fault, uncertain, and fault state. We prove that, given an observation, the resulting diagnosis state can be computed solving linear programming problems rather than integer programming problems as in the discrete case. The main advantage of fluidization is that it enables to deal with much more general PN structures. In particular, the unobservable subnet needs not be acyclic as in the discrete case. Moreover, the compact representation of the set of consistent markings using convex polytopes can be seen in some cases as an improvement in terms of computational complexity.
机译:当离散事件系统用于对具有大量可能(可达)状态的系统进行建模时,许多问题(例如仿真,优化和控制)可能会在计算上变得过时,因为它们需要对这些状态进行一些枚举。有效解决此问题的常用方法是流态化。本文的目的是研究流化对故障诊断的影响。特别是,我们专注于纯逻辑Petri网(PN)模型,该模型会在流化后产生不定时的连续PN模型。根据有关离散事件系统的大多数文献,我们定义了三种诊断状态,分别是$ N $,$ U $和$ F $,分别对应于无故障,不确定和故障状态。我们证明,给定一个观察结果,可以计算出最终的诊断状态,从而解决线性规划问题,而不是像离散情况那样解决整数规划问题。流化的主要优点是它可以处理更通用的PN结构。特别地,不可观察的子网不必像离散情况那样是非循环的。此外,在某些情况下,可以将使用凸多面体的一组一致标记的紧凑表示形式看作是计算复杂度的提高。

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