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Channel Selection Based on Phase Measurement in P300-Based Brain-Computer Interface

机译:基于P300的脑机接口中基于相位测量的通道选择

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摘要

Most EEG-based brain-computer interface (BCI) paradigms include specific electrode positions. As the structures and activities of the brain vary with each individual, contributing channels should be chosen based on original records of BCIs. Phase measurement is an important approach in EEG analyses, but seldom used for channel selections. In this paper, the phase locking and concentrating value-based recursive feature elimination approach (PLCV-RFE) is proposed to produce robust-EEG channel selections in a P300 speller. The PLCV-RFE, deriving from the phase resetting mechanism, measures the phase relation between EEGs and ranks channels by the recursive strategy. Data recorded from 32 electrodes on 9 subjects are used to evaluate the proposed method. The results show that the PLCV-RFE substantially reduces channel sets and improves recognition accuracies significantly. Moreover, compared with other state-of-the-art feature selection methods (SSNRSF and SVM-RFE), the PLCV-RFE achieves better performance. Thus the phase measurement is available in the channel selection of BCI and it may be an evidence to indirectly support that phase resetting is at least one reason for ERP generations.
机译:大多数基于EEG的脑机接口(BCI)范例都包含特定的电极位置。由于每个人的大脑结构和活动各不相同,因此应根据BCI的原始记录选择贡献途径。相位测量是EEG分析中的一种重要方法,但很少用于通道选择。本文提出了一种基于锁相和集中值的递归特征消除方法(PLCV-RFE),以在P300拼写器中生成健壮的EEG通道选择。源自相位重置机制的PLCV-RFE通过递归策略测量EEG之间的相位关系,并对通道进行排序。从9位受试者的32个电极上记录的数据用于评估所提出的方法。结果表明,PLCV-RFE大大减少了频道集并显着提高了识别准确性。而且,与其他最新的特征选择方法(SSNRSF和SVM-RFE)相比,PLCV-RFE具有更好的性能。因此,在BCI的通道选择中可以使用相位测量,这可能间接证明相位重置是产生ERP的至少一个原因。

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