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基于小波包的频带能量特征提取及智能诊断
引用本文:曾芸,武和雷.基于小波包的频带能量特征提取及智能诊断[J].计算技术与自动化,2008,27(4):115-117.
作者姓名:曾芸  武和雷
作者单位:南昌大学信息工程学院,江西南昌,310031
基金项目:江西省自然科学基金资助项目(0650099)
摘    要:提出一种基于小波包和BRF神经网络的智能故障诊断方法。对滚动轴承故障信号进行小波包分解,选择合适的小波基函数和尺度,将故障信号分解到八个不同的频段上,提取这八个频段上的能量信息,组成特征问量,作为RBF神经网络的输入;建立RBF神经网络模型并进行训练,对三种滚动轴承故障信号进行智能分类与识别。实验结果表明这种智能诊断方法有效可行。

关 键 词:小波包  特征向量  RBF  智能分类

The Energy Characteristics on the Frequency Bands Extracted Eased on the Wavelet Packet and Intelligent Diagnosis
ZENG Yun,WU He-lei.The Energy Characteristics on the Frequency Bands Extracted Eased on the Wavelet Packet and Intelligent Diagnosis[J].Computing Technology and Automation,2008,27(4):115-117.
Authors:ZENG Yun  WU He-lei
Affiliation:(School of Information and Engineering, Nanchang University,Nanchang 310031,China)
Abstract:A method of fault intelligent diagnosis based on the wavelet packet and the RBF neural network was proposed in the paper.First,the signal of the roll bearing was decompesed on the eight different frequency bands by the wavelet packet adopting a selected wavelet basis fanction and covel.The energy information on the eight frequency bands was extracted as the characteristic vectors which were the input of the RBF Neural Network.Finally,the RBF neural network model was established and trained,three kinds of fa...
Keywords:the wavelet packet  characteristic vector  RBF  intelligent classify  
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