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Enhanced discrete event model for system identification with the aim of fault detection ?

机译:用于故障识别的增强型离散事件模型,用于系统识别

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In this paper, we present a new model for discrete-event system identification that is suitable for fault detection, called Deterministic Automaton with Outputs and Conditional Transitions (DAOCT). The model is computed from observed fault-free paths, and represents the fault-free system behavior. In practice, a trade-off between size and accuracy of the identified automaton has to be found. In order to obtain compact models, loops are introduced in the model, which implies that sequences that are not observed can be generated by the model leading to an exceeding language. This exceeding language is associated with possible non-detectable faults, and must be reduced in order to use the model for fault detection. We show, in this paper, that the exceeding language generated by the DAOCT is smaller than the exceeding language generated by other models proposed in the literature, reducing, therefore, the number of possible non-detectable faults. We also show that if the identified DAOCT does not have cyclic paths, then the exceeding language is empty, and the model represents all and only all observed fault-free sequences generated by the system. A practical example is used to illustrate the results of the paper.
机译:在本文中,我们提出了一种适用于故障检测的离散事件系统识别新模型,称为具有输出和条件转移的确定性自动机(DAOCT)。该模型是根据观察到的无故障路径计算的,代表了无故障系统行为。在实践中,必须在所识别的自动机的尺寸和精度之间进行权衡。为了获得紧凑的模型,在模型中引入了循环,这意味着模型可以生成未观察到的序列,从而导致语言过多。超出的语言与可能的不可检测的故障相关联,必须加以减少才能使用该模型进行故障检测。在本文中,我们表明DAOCT生成的超出语言比文献中提出的其他模型生成的超出语言要小,因此减少了可能的不可检测故障的数量。我们还表明,如果识别出的DAOCT没有循环路径,则超出的语言为空,并且该模型表示系统生成的所有且仅观察到的所有无故障序列。一个实际的例子用来说明本文的结果。

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