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基于经颅交流电刺激的运动想象和 SSVEP 混合脑-机接口系统性能的提升。

Enhancement of Hybrid BCI System Performance Based on Motor Imagery and SSVEP by Transcranial Alternating Current Stimulation.

出版信息

IEEE Trans Neural Syst Rehabil Eng. 2024;32:3222-3230. doi: 10.1109/TNSRE.2024.3451015. Epub 2024 Sep 6.

DOI:10.1109/TNSRE.2024.3451015
PMID:39196738
Abstract

The hybrid brain-computer interface (BCI) is verified to reduce disadvantages of conventional BCI systems. Transcranial electrical stimulation (tES) can also improve the performance and applicability of BCI. However, enhancement in BCI performance attained solely from the perspective of users or solely from the angle of BCI system design is limited. In this study, a hybrid BCI system combining MI and SSVEP was proposed. Furthermore, transcranial alternating current stimulation (tACS) was utilized to enhance the performance of the proposed hybrid BCI system. The stimulation interface presented a depiction of grabbing a ball with both of hands, with left-hand and right-hand flickering at frequencies of 34 Hz and 35 Hz. Subjects watched the interface and imagined grabbing a ball with either left hand or right hand to perform SSVEP and MI task. The MI and SSVEP signals were processed separately using filter bank common spatial patterns (FBCSP) and filter bank canonical correlation analysis (FBCCA) algorithms, respectively. A fusion method was proposed to fuse the features extracted from MI and SSVEP. Twenty healthy subjects took part in the online experiment and underwent tACS sequentially. The fusion accuracy post-tACS reached 90.25% ± 11.40%, which was significantly different from pre-tACS. The fusion accuracy also surpassed MI accuracy and SSVEP accuracy respectively. These results indicated the superior performance of the hybrid BCI system and tACS would improve the performance of the hybrid BCI system.

摘要

混合脑机接口 (BCI) 被证明可以减少传统 BCI 系统的缺点。经颅电刺激 (tES) 也可以提高 BCI 的性能和适用性。然而,仅从用户角度或仅从 BCI 系统设计角度提高 BCI 性能的效果是有限的。在这项研究中,提出了一种结合 MI 和 SSVEP 的混合 BCI 系统。此外,还利用经颅交流电刺激 (tACS) 来增强所提出的混合 BCI 系统的性能。刺激界面呈现出双手抓球的画面,左手和右手以 34 Hz 和 35 Hz 的频率闪烁。被试观看界面并想象用左手或右手抓球,以执行 SSVEP 和 MI 任务。MI 和 SSVEP 信号分别使用滤波器组共空间模式 (FBCSP) 和滤波器组典型相关分析 (FBCCA) 算法进行处理。提出了一种融合方法,用于融合从 MI 和 SSVEP 中提取的特征。20 名健康受试者参加了在线实验,并依次接受 tACS。tACS 后的融合精度达到 90.25%±11.40%,与 tACS 前相比有显著差异。融合精度也分别超过了 MI 精度和 SSVEP 精度。这些结果表明混合 BCI 系统的性能优越,tACS 可以提高混合 BCI 系统的性能。

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