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The Study Of Test Stimulus Optimization Of Analog Circuit Based On AS-PSO Hybrid Algorithm

机译:基于AS-PSO杂交算法的模拟电路试验刺激优化研究

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This paper proposes a novel approach to diagnosis the faults in analog circuits based on Volterra kernel and ant colony-particle swarm algorithms. In the analog circuit fault diagnosis, we use the Volterra kernel as the feature vector which makes the characteristic vector lumped Euclidean distance in serials of fault states under the same excitation signals as the fitness function. And the optimized the parameters are used to stimulate the multi-frequency sinusoidal signal. The AS-PSO hybrid algorithm is performed to find the best excitation signal parameters. Experimental results show that the proposed approach can achieve good faults diagnosis results.
机译:本文提出了一种基于Volterra kernel和蚁群粒子群算法诊断模拟电路故障的新方法。在模拟电路故障诊断中,我们使用Volterra内核作为特征向量,该特征向量使得在与健身功能相同的激励信号下的故障状态串行中的特征矢量集成的欧几里德距离。并且优化参数用于刺激多频正弦信号。执行AS-PSO混合算法以找到最佳激励信号参数。实验结果表明,该方法可以实现良好的诊断结果。

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