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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Combining Spatial Filters for the Classification of Single-Trial EEG in a Finger Movement Task
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Combining Spatial Filters for the Classification of Single-Trial EEG in a Finger Movement Task

机译:组合空间滤波器对手指运动任务中的单次EEG进行分类

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摘要

Brain-computer interface (BCI) is to provide a communication channel that translates human intention reflected by a brain signal such as electroencephalogram (EEG) into a control signal for an output device. In recent years, the event-related desynchronization (ERD) and movement-related potentials (MRPs) are utilized as important features in motor related BCI system, and the common spatial patterns (CSP) algorithm has shown to be very useful for ERD-based classification. However, as MRPs are slow nonoscillatory EEG potential shifts, CSP is not an appropriate approach for MRPs-based classification. Here, another spatial filtering algorithm, discriminative spatial patterns (DSP), is newly introduced for better extraction of the difference in the amplitudes of MRPs, and it is integrated with CSP to extract the features from the EEG signals recorded during voluntary left versus right finger movement tasks. A support vector machines (SVM) based framework is designed as the classifier for the features. The results show that, for MRPs and ERD features, the combined spatial filters can realize the single-trial EEG classification better than anyone of DSP and CSP alone does. Thus, we propose an EEG-based BCI system with the two feature sets, one based on CSP (ERD) and the other based on DSP (MRPs), classified by SVM.
机译:脑计算机接口(BCI)用于提供一种通信通道,该通道将诸如脑电图(EEG)之类的大脑信号反射的人类意图转换为用于输出设备的控制信号。近年来,与事件相关的失步(ERD)和与运动相关的电位(MRP)被用作与运动相关的BCI系统的重要功能,并且常见的空间模式(CSP)算法对于基于ERD的方法非常有用分类。但是,由于MRP是缓慢的非振荡性EEG电位变化,因此CSP不适用于基于MRP的分类。在这里,为了更好地提取MRP幅度差异,新引入了另一种空间滤波算法,即辨别性空间模式(DSP),并将其与CSP集成以从自愿左手和右手手指记录的脑电信号中提取特征运动任务。基于支持向量机(SVM)的框架被设计为功能的分类器。结果表明,对于MRP和ERD功能,组合的空间滤波器可以比单独使用DSP和CSP更好地实现单次EEG分类。因此,我们提出了一种基于EEG的BCI系统,该系统具有两个功能集,一个基于CSP(ERD),另一个基于DSP(MRP),由SVM分类。

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