基于标记Petri网的DES可诊断性分析方法研究

Baisi Liu, M. Ghazel, A. Toguyéni
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引用次数: 27

摘要

研究了用标记Petri网(lpn)建模的离散事件系统的可诊断性问题。讨论了一个附加参数K∈∈,它是在不可观测故障之后确保可诊断性的可观测事件的数量。利用K的增量搜索,将可诊断性问题转化为一系列K-可诊断性问题。对于有界可诊断系统,最终可以求出保证可诊断性的最小K值Kmin。状态空间是动态生成的,不需要调查不必要的状态。与一些现有的方法相比,这是一个显著的优势,因为仅仅一部分状态空间通常就足以评估可诊断性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Toward an efficient approach for diagnosability analysis of DES modeled by labeled Petri nets
This paper deals with the diagnosability of discrete event systems (DES) modeled by labeled Petri nets (LPNs). An additional parameter K ∈ ℕ, which is the number of observable events after an unobservable fault to ensure diagnosability, is discussed. With the incremental search of K, we transform the diagnosability problem into a series of K-diagnosability problems. For bounded diagnosable systems, Kmin, the minimum value of K to ensure diagnosability, can be eventually found. The state space is generated on the fly, without investigation of unnecessary states. This is a notable advantage compared with some existing methods, since just a part of the state space can often be sufficient to assess diagnosability.
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