σ - δ变换器数字部分故障诊断

M. Andrejević, V. Litovski
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引用次数: 9

摘要

本文将人工神经网络(ANN)应用于非线性混模电路数字部分缺陷的诊断。同时考虑了突变缺陷和延迟缺陷。该方法以一个相对复杂的σ - δ调制器为例进行了验证。本例中的延迟缺陷是数字信号上升沿和下降沿的延迟,灾难性缺陷被认为是卡开关。通过仿真,利用电路对输入斜坡信号的响应来创建故障字典。它以查询表的形式表示。然后训练人工神经网络建模(记忆)查找表。进行诊断,使人工神经网络受到错误响应的激励,以便在其输出中呈现故障代码。在诊断过程中,对故障的识别没有错误
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fault Diagnosis in Digital Part of Sigma-Delta Converter
In this paper the artificial neural network (ANN) is applied to diagnosis of defects in the digital part of a nonlinear mixed-mode circuit. Both catastrophic and delay defects are considered. The approach is demonstrated on the example of a relatively complex sigma-delta modulator. Delay defects in this example are delays of rising and falling edge of digital signals and catastrophic defects are considered as stuck switches. Fault dictionary is created, by simulation, using the response of the circuit to an input ramp signal. It is represented in a form of a look-up table. Artificial neural network is then trained for modeling (memorizing) the look-up table. The diagnosis is performed so that the ANN is excited by faulty responses in order to present the fault codes at its output. There were no errors in identifying the faults during diagnosis
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