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Analogue electronic circuit diagnosis based on ANNs

机译:基于人工神经网络的模拟电路诊断

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Feed-forward artificial neural networks (ANNs) have been applied to the diagnosis of nonlinear dynamic analogue electronic circuits. Using the simulation-before-test (SBT) approach, a fault dictionary was first created containing responses observed at all inputs and outputs of the circuit. The ANN was considered as an approximation algorithm to capture mapping enclosed within the fault dictionary and, in addition, as an algorithm for searching the fault dictionary in the diagnostic phase. In the example given DC and small signal frequency domain measurements were taken as these data are usually given in device's data-sheets. A reduced set of data per fault (DC output values, the nominal gain and the 3 dB cut-off frequency, measured at one output terminal) was recorded. Soft (parametric) and catastrophic (shorts and opens) defects were introduced and diagnosed simultaneously and successfully. Large representative set of faults was considered, i.e., all possible catastrophic transistor faults and qualified representatives of soft transistor faults were diagnosed in an integrated circuit. The generalization property of the ANNs was exploited to handle noisy measurement signals.
机译:前馈人工神经网络(ANN)已应用于非线性动态模拟电子电路的诊断。使用测试前仿真(SBT)方法,首先创建故障字典,其中包含在电路的所有输入和输出处观察到的响应。 ANN被认为是捕获故障词典中包含的映射的近似算法,此外,还被认为是在诊断阶段搜索故障词典的算法。在给出的示例中,进行了直流和小信号频域测量,因为这些数据通常在设备的数据表中给出。记录了每个故障的简化数据集(DC输出值,标称增益和3 dB截止频率,在一个输出端子上测得)。引入了软(参数)和灾难性(短路和断路)缺陷,并同时成功进行了诊断。考虑了大的代表性故障集,即,在集成电路中诊断了所有可能的灾难性晶体管故障和软晶体管故障的合格代表。人工神经网络的泛化特性被用于处理嘈杂的测量信号。

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