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Channel and feature selection for a surface electromyographic pattern recognition task

机译:表面肌电图模式识别任务的通道和特征选择

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摘要

The objective of this research is to select a reduced group of surface electromyographic (sEMG) channels and signal-features that is able to provide an accurate classification rate in a myoelectric control system for any user. To that end, the location of 32 sEMG electrodes placed around-along the forearm and 86 signal-features are evaluated simultaneously in a static-hand gesture classification task (14 different gestures). A novel multivariate variable selection filter method named mRMR-FCO is presented as part of the selection process. This process finds the most informative and least redundant combination of sEMG channels and signal-features among all the possible ones. The performance of the selected set of channels and signal-features is evaluated with a Support Vector Machine classifier.
机译:这项研究的目的是选择一组减少的表面肌电图(sEMG)通道和信号特征,它们能够在肌电控制系统中为任何用户提供准确的分类率。为此,在静态手势分类任务(14个不同手势)中,同时评估了沿前臂放置的32个sEMG电极的位置和86个信号特征。作为选择过程的一部分,提出了一种称为mRMR-FCO的新型多元变量选择过滤方法。此过程在所有可能的信号中找到sEMG信道和信号特征的信息最丰富,冗余最少。使用支持向量机分类器评估所选通道和信号功能集的性能。

著录项

  • 来源
    《Expert Systems with Application》 |2014年第11期|5190-5200|共11页
  • 作者单位

    CEIT, Parque Tecnologico de San Sebastian, Paseo Mikeletegi N 48, 20009 Donostia - San Sebastian, Spain;

    CEIT, Parque Tecnologico de San Sebastian, Paseo Mikeletegi N 48, 20009 Donostia - San Sebastian, Spain,TECNUN, University of Navarra, Paseo de Manuel Lardizabal N 13, 20018 San Sebastian, Spain;

    TECNUN, University of Navarra, Paseo de Manuel Lardizabal N 13, 20018 San Sebastian, Spain;

    TECNUN, University of Navarra, Paseo de Manuel Lardizabal N 13, 20018 San Sebastian, Spain;

    CEIT, Parque Tecnologico de San Sebastian, Paseo Mikeletegi N 48, 20009 Donostia - San Sebastian, Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Electromyography; EMG; Feature selection; Variable selection; Pattern recognition;

    机译:肌电图肌电图;功能选择;变量选择;模式识别;

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