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Complex network application in fault diagnosis of analog circuits

机译:复杂网络在模拟电路故障诊断中的应用

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Fault diagnosis has played an important role in the identification of fault mechanisms and the subsequent successful isolation of faults in electronic circuits. In this paper, we propose a novel procedure for fault diagnosis in analog circuits. We first generate a set of fault patterns from fault simulation, and our main task is to develop a practical description of the way in which these fault patterns interact. Our approach is based on the construction of a complex network that describes the inter-dependence of the various fault patterns. Analysis of this complex network shows that the degree distribution is scalefree-like and the connectivity is small-world. We henceforth identify a small number of fault patterns that are most highly connected (of highest degrees) with other fault patterns. Furthermore, we study the connection between this network of fault patterns and the original circuit, the purpose being to relate the information of the high-degree fault patterns with the physical circuit topology, thus allowing the physical fault locations and circuit elements to be identified. Our proposed approach will find applications in automatic fault diagnosis of large-scale electronic circuits.
机译:故障诊断在确定故障机制以及随后成功隔离电子电路中的故障中起着重要作用。在本文中,我们提出了一种用于模拟电路故障诊断的新方法。我们首先从故障仿真中生成一组故障模式,我们的主要任务是对这些故障模式的交互方式进行实用描述。我们的方法基于一个复杂的网络的构建,该网络描述了各种故障模式的相互依赖性。对这个复杂网络的分析表明,度分布是无标度的,连通性很小。此后,我们将确定少数与其他故障模式关联度最高(最高程度)的故障模式。此外,我们研究了故障模式网络与原始电路之间的联系,目的是将高级故障模式的信息与物理电路拓扑相关联,从而可以识别物理故障位置和电路元件。我们提出的方法将在大型电子电路的自动故障诊断中找到应用。

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