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Evaluation of the forearm EMG signal features for the control of a prosthetic hand

机译:评估前臂肌电信号特征以控制假手

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摘要

The purpose of this research is to select the best features to have a high rate of motion classification for controlling an artificial hand. Here, 19 EMG signal features have been taken into account. Some of the features suggested in this study include combining wavelet transform with other signal processing techniques. An assessment is performed with respect to three points of view: (i) classification of motion, (ii) noise tolerance and (iii) calculation complexity. The energy of wavelet coefficients of EMG signals in nine scales, and the cepstrum coefficients were found to produce the best features in these views.
机译:这项研究的目的是选择最佳特征,以具有较高的运动分类率来控制人造手。在此,已考虑了19个EMG信号特征。本研究中建议的一些功能包括将小波变换与其他信号处理技术相结合。从三个角度进行评估:(i)运动分类,(ii)噪声容限和(iii)计算复杂度。 EMG信号的小波系数具有9个尺度的能量,并且倒频谱系数在这些视图中产生了最佳的特征。

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