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Subject-specific time-frequency selection for multi-class motor imagery-based BCIs using few Laplacian EEG channels

机译:使用很少的Laplacian EEG通道针对基于多类运动图像的BCI进行主题特定的时频选择

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The essential task of a motor imagery brain-computer interface (BCI) is to extract the motor imagery related features from electroencephalogram (EEG) signals for classifying motor intentions. However, the optimal frequency band and time segment for extracting such features differ from subject to subject. In this work, we aim to improve the multi-class classification and to reduce the required EEG channel in motor imagery-based BCI by subject-specific time-frequency selection. Our method is based on a criterion namely Fisher discriminant analysis-type F-score to simultaneously select the optimal frequency band and time segment for multi-class classification. The proposed method uses only few Laplacian EEG channels (C3, Cz and C4) located around the sensorimotor area for classification. Applied to a standard multi-class BCI dataset (BCI competition III dataset Ilia), our method leads to better classification performance and smaller standard deviation across subjects compared to the state-of-art methods. Moreover, adding artifacts contaminated trials to the training dataset does not necessarily deteriorate our classification results, indicating that our method is tolerant to artifacts. (C) 2017 Elsevier Ltd. All rights reserved.
机译:运动图像脑机接口(BCI)的基本任务是从脑电图(EEG)信号中提取运动图像相关特征,以对运动意图进行分类。但是,提取这种特征的最佳频带和时间段因主体而异。在这项工作中,我们旨在通过特定对象的时频选择来改善多类分类并减少基于运动图像的BCI中所需的EEG通道。我们的方法基于Fisher判别分析型F分数标准,以同时选择最佳频带和时间段以进行多类别分类。所提出的方法仅使用位于感觉运动区域周围的几个拉普拉斯脑电图通道(C3,Cz和C4)进行分类。与最新方法相比,将这种方法应用于标准的多类BCI数据集(BCI竞赛III数据集Ilia),可以实现更好的分类性能和较小的标准偏差。此外,在训练数据集中添加受污染工件的试验并不一定会使我们的分类结果恶化,这表明我们的方法可以耐受工件。 (C)2017 Elsevier Ltd.保留所有权利。

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