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Performance of common spatial pattern under a smaller set of EEG electrodes in brain-computer interface on chronic stroke patients: A multi-session dataset study

机译:慢性脑卒中患者脑电脑界面较小的EEG电极下常见空间模式的性能:多次数据集研究

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Brain-computer interface (BCI) uses non-muscular channel of the nervous system for communication. Common Spatial Pattern (CSP) is a popular spatial filtering method used to reduce the effect of volume conduction on EEG signals. It is thought that CSP requires a large number of electrodes to be effective. Using a 20-session dataset of motor imagery BCI usage by 5 stroke patients, we demonstrated that after channel selection, CSP can still maintain a high accuracy with low number of electrodes using a newly proposed channel selection method called CSP-rank (higher than 90% with 8 electrodes). The results showed that using only the first session for channel selection, a high accuracy can be maintained in subsequent sessions. CSP-rank has been compared to the popular support vector machine recursive feature elimination (SVM-RFE). The results showed that the CSP-rank required less electrodes to maintain accuracy higher than 90% (a minimum of 8 compared to 12 of SVM-RFE) and it attained a higher maximum accuracy (91.7% compared with 90.7% of SVM-RFE). This could support clinicians to apply more BCI in routine rehabilitation.
机译:脑电脑界面(BCI)使用神经系统的非肌肉通道进行通信。常见的空间模式(CSP)是一种流行的空间过滤方法,用于降低EEG信号对体积传导的影响。据认为,CSP需要大量电极有效。使用电机图像的20次数据集BCI使用5中风患者,我们证明,在频道选择后,使用名为CSP级别的新提出的渠道选择方法,CSP仍然可以保持高精度,使用新的渠道选择方法(高于90 8个电极的百分比)。结果表明,仅使用第一会话进行频道选择,可以在后续会话中保持高精度。已将CSP排名与流行的支持向量机递归功能消除(SVM-RFE)进行比较。结果表明,CSP等级需要较少的电极,以保持高于90%的精度(至少8〜12的SVM-RFE相比),并且其最高精度(91.7%,而91.7%,而91.7%,则为90.7%的SVM-RFE) 。这可以支持临床医生在常规康复中申请更多BCI。

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