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Robust EEG channel selection across sessions in brain-computer interface involving stroke patients

机译:在涉及中风患者的脑机界面中跨会话进行可靠的EEG通道选择

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Brain-computer interface (BCI) technology has shown the capability of improving the quality of life for people with severe motor disabilities. To improve the portability and practicability of BCI systems, it is crucial to reduce the number of EEG channels as well as to have a good reliability. However, a relatively neglected issue in the EEG channel selection studies is the robustness of selected channels across sessions. This paper investigates whether the selected channels from first session is also useful for subsequent sessions on other days for a stroke patient. For this purpose, a new robust sparse common spatial pattern (RSCSP) algorithm is proposed for optimal EEG channel selection. Thereafter, the robustness of the proposed algorithm as well as 5 existing channel selection algorithms is investigated across 12 sessions data from 11 stroke patients who performed motor imagery based-BCI rehabilitation. The experimental results show that the proposed RSCSP channel selection algorithm significantly outperforms the other channel selection algorithms, when the 8 channels selected from the first session are evaluated on the 11 subsequent sessions. Moreover, there is no significant difference between the classification results of 8 channels selected by the proposed RSCSP algorithm from the first session and the classification results of 8 optimal channels selected from the same session as the test session.
机译:脑机接口(BCI)技术已显示出改善患有严重运动障碍者的生活质量的能力。为了提高BCI系统的可移植性和实用性,减少EEG通道的数量以及具有良好的可靠性至关重要。但是,EEG频道选择研究中一个相对被忽略的问题是跨会话选择频道的鲁棒性。本文调查了从第一届会议中选择的渠道是否也对中风患者其他几天的后续会议有用。为此,提出了一种新的鲁棒的稀疏公共空间模式(RSCSP)算法,用于最优EEG信道选择。此后,在来自11位执行了基于运动图像的BCI康复的卒中患者的12个会话数据中,研究了所提出算法以及5种现有渠道选择算法的鲁棒性。实验结果表明,当从第一个会话中选择的8个信道在随后的11个会话中进行评估时,提出的RSCSP信道选择​​算法明显优于其他信道选择算法。而且,由提出的RSCSP算法从第一会话中选择的8个信道的分类结果与从与测试会话相同的会话中选择的8个最佳信道的分类结果之间没有显着差异。

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