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用于康复手套的基于表面肌电信号的手势分类器

sEMG-Based Gesture Classifier for a Rehabilitation Glove.

作者信息

Copaci Dorin, Arias Janeth, Gómez-Tomé Marcos, Moreno Luis, Blanco Dolores

机构信息

Department of Systems Engineering and Automation, Carlos III University of Madrid, Madrid, Spain.

出版信息

Front Neurorobot. 2022 May 30;16:750482. doi: 10.3389/fnbot.2022.750482. eCollection 2022.

Abstract

Human hand gesture recognition from surface electromyography (sEMG) signals is one of the main paradigms for prosthetic and rehabilitation device control. The accuracy of gesture recognition is correlated with the control mechanism. In this work, a new classifier based on the Bayesian neural network, pattern recognition networks, and layer recurrent network is presented. The online results obtained with this architecture represent a promising solution for hand gesture recognition (98.7% accuracy) in sEMG signal classification. For real time classification performance with rehabilitation devices, a new simple and efficient interface is developed in which users can re-train the classification algorithm with their own sEMG gesture data in a few minutes while enables shape memory alloy-based rehabilitation device connection and control. The position of reference for the rehabilitation device is generated by the algorithm based on the classifier, which is capable of detecting user movement intention in real time. The main aim of this study is to prove that the device control algorithm is adapted to the characteristics and necessities of the user through the proposed classifier with high accuracy in hand gesture recognition.

摘要

基于表面肌电(sEMG)信号的人类手势识别是假肢和康复设备控制的主要范例之一。手势识别的准确性与控制机制相关。在这项工作中,提出了一种基于贝叶斯神经网络、模式识别网络和层递归网络的新型分类器。使用该架构获得的在线结果代表了sEMG信号分类中手势识别的一种有前景的解决方案(准确率98.7%)。为了实现康复设备的实时分类性能,开发了一种新的简单高效接口,用户可以在几分钟内使用自己的sEMG手势数据重新训练分类算法,同时实现基于形状记忆合金的康复设备连接和控制。康复设备的参考位置由基于分类器的算法生成,该算法能够实时检测用户的运动意图。本研究的主要目的是证明通过所提出的在手势识别中具有高精度的分类器,设备控制算法能够适应用户的特征和需求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/791d/9190783/9c0374ad7a76/fnbot-16-750482-g0001.jpg

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