Model and Fault Inference with the Framework of Probabilistic SDG

Fan Yang, D. Xiao
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引用次数: 17

Abstract

As the scale of systems increases, traditional models and fault diagnosis methods are not applicable. Qualitative signed directed graphs (QSDG) are used to model the variables and relationships among them in large-scale complex systems. However, they have distinct limitations of resulting spurious solutions due to the lack of utilization of knowledge or information. This article proposes a kind of probabilistic SDG (PSDG) model to describe the propagation of faults among variables. The fault diagnosis method is also investigated, where Bayesian network has been employed. Finally, examples are given and the future topics are listed
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概率SDG框架下的模型与故障推理
随着系统规模的扩大,传统的模型和故障诊断方法已不再适用。定性符号有向图(QSDG)用于大规模复杂系统中变量及其相互关系的建模。然而,由于缺乏对知识或信息的利用,它们在产生虚假解决方案方面存在明显的局限性。本文提出了一种描述故障在变量间传播的概率SDG (PSDG)模型。研究了采用贝叶斯网络进行故障诊断的方法。最后给出了实例,并对今后的研究方向进行了展望
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