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Intelligent Built-in Test Fault Diagnosis and Prediction for Mechatronics Equipment

机译:机电一体化设备智能内置试验故障诊断和预测

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摘要

This paper proposes an intelligent Built-in Test (BIT) technology based on wavelet packet analysis and gray neural network. The aim is to improve the fault diagnosis and prediction capability of intelligent BIT. Firstly, the energy of each frequency-band was computed to form the eigenvectors by using the wavelet packet decomposition, then the energy eigenvectors were used as samples to the forecasting model, which were based on wavelet packet analysis and gray neural network. Finally, the proposed method was applied to the BIT system of the airborne mechatronics, and the results have shown that the proposed method could improve the performance of the intelligent BIT system.
机译:本文提出了基于小波包分析和灰色神经网络的智能内置测试(位)技术。目的是提高智能钻头的故障诊断和预测能力。首先,计算每个频带的能量以通过使用小波分组分解来形成特征向量,然后将能量特征向量用作预测模型的样本,其基于小波分组分析和灰色神经网络。最后,将所提出的方法应用于空气传播机电一体化的比特系统,结果表明,该方法可以提高智能比特系统的性能。

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