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Online Fault Diagnosis of Discrete Event Systems. A Petri Net-Based Approach

机译:离散事件系统的在线故障诊断。基于Petri网的方法

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This paper is concerned with an online model-based fault diagnosis of discrete event systems. The model of the system is built using the interpreted Petri nets (IPN) formalism. The model includes the normal system states as well as all possible faulty states. Moreover, it assumes the general case when events and states are partially observed. One of the contributions of this work is a bottom-up modeling methodology. It describes the behavior of system elements using the required states variables and assigning a range to each state variable. Then, each state variable is represented by an IPN model, herein named module. Afterwards, using two composition operators over all the modules, a monolithic model for the whole system is derived. It is a very general modeling methodology that avoids tuning phases and the state combinatory found in finite state automata (FSA) approaches. Another contribution is a definition of diagnosability for IPN models built with the above methodology and a structural characterization of this property; polynomial algorithms for checking diagnosability of IPN are proposed, avoiding the reachability analysis of other approaches. The last contribution is a scheme for online diagnosis; it is based on the IPN model of the system and an efficient algorithm to detect and locate the faulty state. Note to Practitioners-The results proposed in this paper allow: 1) building discrete event system models in which faults may arise; 2) testing the diagnosability of the model; and 3) implementing an online diagnoser. The modeling methodology helps to conceive in a natural way the model from the description of the system's components leading to modules that are easily interconnected. The diagnosability test is stated as a linear programming problem which can be straightforward programmed. Finally, the algorithm for online diagnosis leads to an efficient procedure that monitors the system's outputs and handles the normal behavior model. This provides an oppo- rtune detection and location of faults occurring within the system
机译:本文涉及离散事件系统基于在线模型的故障诊断。系统模型是使用解释的Petri网(IPN)形式主义构建的。该模型包括正常系统状态以及所有可能的故障状态。此外,它假定了部分观察到事件和状态的一般情况。这项工作的贡献之一是自下而上的建模方法。它使用所需的状态变量并为每个状态变量分配范围来描述系统元素的行为。然后,每个状态变量由IPN模型(在此称为模块)表示。然后,在所有模块上使用两个合成运算符,得出整个系统的整体模型。这是一种非常通用的建模方法,可以避免调整阶段和有限状态自动机(FSA)方法中的状态组合。另一个贡献是定义了使用上述方法构建的IPN模型的可诊断性,并对此属性进行了结构表征;提出了用于检查IPN可诊断性的多项式算法,避免了其他方法的可达性分析。最后的贡献是一种在线诊断方案;它基于系统的IPN模型和一种有效的算法来检测和定位故障状态。给从业者的注意-本文提出的结果允许:1)建立可能会出现故障的离散事件系统模型; 2)测试模型的可诊断性; 3)实施在线诊断程序。建模方法论以一种自然的方式帮助从系统组件的描述中构思出导致容易互连的模块的模型。可诊断性测试被认为是线性编程问题,可以直接编程。最后,用于在线诊断的算法导致了一个有效的过程,该过程可以监视系统的输出并处理正常的行为模型。这样可以对系统中发生的故障进行故障检测和定位

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