首页> 外文会议>Proceedings of 2007 8th International Conference on Electronic Measurement Instruments >A Fault Diagnosis Expert System Base on Artificial Neural Network for Mixed-Signal Circuits
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A Fault Diagnosis Expert System Base on Artificial Neural Network for Mixed-Signal Circuits

机译:基于人工神经网络的混合信号电路故障诊断专家系统

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This paper investigates a fault diagnosis expert system base on artificial neural network (ANN-FD-ES) for mixed-signal circuits. We built this system by given a faulty circuit. Based on the transient response testing (TRT) on the mixed-signal circuits, both analog and digital signal characteristics are unified. The system includes knowledge base,reasoning machine, explanatory, and interface. The diagnostic portion of the system is based on neural-calculation approach, which is used to establish the knowledge base composed of the weigh values and threshold values. With this approach, conclusions are developed directly from the outputs of the net, rather than the domain knowledge in traditional expert system. Compared with the traditional expert system, this system is good at processing data. The experimental results show that the system not only improves the shortcoming of the traditional expert system such as the deficiency on knowledge acquisition and self-learning capability, but also achieves a satisfied fault diagnosis efficiency.
机译:本文研究了基于人工神经网络(ANN-FD-ES)的混合信号电路故障诊断专家系统。我们通过给出故障电路来构建该系统。基于混合信号电路上的瞬态响应测试(TRT),模拟和数字信号特性都得到了统一。该系统包括知识库,推理机,说明和界面。系统的诊断部分基于神经计算方法,该方法用于建立由称重值和阈值组成的知识库。通过这种方法,结论是直接从网络的输出中得出的,而不是传统专家系统中的领域知识。与传统专家系统相比,该系统擅长数据处理。实验结果表明,该系统不仅弥补了传统专家系统在知识获取和自我学习能力上的不足,而且还具有令人满意的故障诊断效率。

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