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首页> 外文期刊>IEEE Transactions on Consumer Electronics >Motion-Pattern Recognition System Using a Wavelet-Neural Network
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Motion-Pattern Recognition System Using a Wavelet-Neural Network

机译:小波神经网络的运动模式识别系统

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This paper presents a wavelet-neural network recognition system for personal fitness assistance and elderly daily activity monitoring applications. This discrete wavelet transform radial basis neural network (DWT-RBNN) analyzes vibration induced by human motions, and identifies motion status automatically. The 3-D vibration signals are measured by integrated accelerometer chip, and then DWT extracts vibration features. Local energy of extracted feature is calculated and used by RBNN. A multi-channel RBNN is designed and used for recognition. The computation burden is reduced because of the DWT pre-processing. From experiment results, RBNN shows successful recognition capability. This paper also presents flow diagram to determine engineering parameters for the present and future product developments.
机译:本文提出了一种用于个人健身辅助和老年人日常活动监测应用的小波神经网络识别系统。这种离散小波变换径向基神经网络(DWT-RBNN)分析人体运动引起的振动,并自动识别运动状态。通过集成的加速度计芯片测量3-D振动信号,然后DWT提取振动特征。提取的特征的局部能量由RBNN计算和使用。设计了多通道RBNN并将其用于识别。由于进行了DWT预处理,减轻了计算负担。从实验结果来看,RBNN具有成功的识别能力。本文还介绍了确定当前和未来产品开发的工程参数的流程图。

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