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为脑机接口区分同一关节的三种运动想象状态。

Discriminating three motor imagery states of the same joint for brain-computer interface.

作者信息

Guan Shan, Li Jixian, Wang Fuwang, Yuan Zhen, Kang Xiaogang, Lu Bin

机构信息

School of Mechanical Engineering, Northeast Electric Power University, Jilin, China.

出版信息

PeerJ. 2021 Aug 24;9:e12027. doi: 10.7717/peerj.12027. eCollection 2021.

Abstract

The classification of electroencephalography (EEG) induced by the same joint is one of the major challenges for brain-computer interface (BCI) systems. In this paper, we propose a new framework, which includes two parts, feature extraction and classification. Based on local mean decomposition (LMD), cloud model, and common spatial pattern (CSP), a feature extraction method called LMD-CSP is proposed to extract distinguishable features. In order to improve the classification results multi-objective grey wolf optimization twin support vector machine (MOGWO-TWSVM) is applied to discriminate the extracted features. We evaluated the performance of the proposed framework on our laboratory data sets with three motor imagery (MI) tasks of the same joint (shoulder abduction, extension, and flexion), and the average classification accuracy was 91.27%. Further comparison with several widely used methods showed that the proposed method had better performance in feature extraction and pattern classification. Overall, this study can be used for developing high-performance BCI systems, enabling individuals to control external devices intuitively and naturally.

摘要

由同一关节诱发的脑电图(EEG)分类是脑机接口(BCI)系统面临的主要挑战之一。在本文中,我们提出了一个新框架,它包括特征提取和分类两个部分。基于局部均值分解(LMD)、云模型和共同空间模式(CSP),提出了一种名为LMD-CSP的特征提取方法来提取可区分的特征。为了提高分类结果,应用多目标灰狼优化双支持向量机(MOGWO-TWSVM)来区分提取的特征。我们在实验室数据集上评估了所提出框架在同一关节的三个运动想象(MI)任务(肩部外展、伸展和屈曲)中的性能,平均分类准确率为91.27%。与几种广泛使用的方法的进一步比较表明,所提出的方法在特征提取和模式分类方面具有更好的性能。总体而言,本研究可用于开发高性能BCI系统,使个体能够直观自然地控制外部设备。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e04b/8395581/f41b03ec8097/peerj-09-12027-g001.jpg

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