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Genetic Integration Of Different Diagnosis Methods And/or Fault Features For Improvement Of Diagnosis Accuracy

机译:不同诊断方法和/或故障特征的遗传整合,以提高诊断准确性

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Genetic integration of different diagnosis methods and/or fault features is proposed in this paper for improvement of diagnosis accuracy, and a weighted matrix is established by integrating neural network and artificial immune diagnoses, wavelet packet energy, and bispectrum features using genetic algorithm for the diagnosis of a rotating machinery to prove the validity of this approach. Experimental results indicate that both diagnosis accuracy and robustness of diagnosis system can be improved by integrating different diagnosis methods and/or fault features. It is therefore concluded that integration of different diagnosis methods and/or fault features is one of the ways to achieve more accurate diagnosis of machinery.
机译:为了提高诊断的准确性,本文提出了不同诊断方法和/或故障特征的遗传集成,并通过遗传算法将神经网络与人工免疫诊断,小波包能量和双谱特征相结合,建立了加权矩阵。证明了这种方法的有效性。实验结果表明,通过集成不同的诊断方法和/或故障特征,可以提高诊断系统的诊断准确性和鲁棒性。因此得出结论,不同诊断方法和/或故障特征的集成是实现更准确的机械诊断的方法之一。

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