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Optimizing SSVEP-Based BCI System towards Practical High-Speed Spelling

机译:优化基于SSVEP的BCI系统实现实用高速拼写

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摘要

The brain–computer interface (BCI) spellers based on steady-state visual evoked potentials (SSVEPs) have recently been widely investigated for their high information transfer rates (ITRs). This paper aims to improve the practicability of the SSVEP-BCIs for high-speed spelling. The system acquired the electroencephalogram (EEG) data from a self-developed dedicated EEG device and the stimulation was arranged as a keyboard. The task-related component analysis (TRCA) spatial filter was modified (mTRCA) for target classification and showed significantly higher performance compared with the original TRCA in the offline analysis. In the online system, the dynamic stopping (DS) strategy based on Bayesian posterior probability was utilized to realize alterable stimulating time. In addition, the temporal filtering process and the programs were optimized to facilitate the online DS operation. Notably, the online ITR reached 330.4 ± 45.4 bits/min on average, which is significantly higher than that of fixed stopping (FS) strategy, and the peak value of 420.2 bits/min is the highest online spelling ITR with a SSVEP-BCI up to now. The proposed system with portable EEG acquisition, friendly interaction, and alterable time of command output provides more flexibility for SSVEP-based BCIs and is promising for practical high-speed spelling.
机译:最近,基于稳态视觉诱发电位(SSVEPS)的大脑 - 计算机接口(BCI)拼写被广泛研究了他们的高信息传输速率(ITRS)。本文旨在提高SSVEP-BCIS的实用性,用于高速拼写。系统获取了来自自发专用EEG器件的脑电图(EEG)数据,并且刺激被布置为键盘。任务相关的组件分析(TRCA)空间滤波器被修改(MTRCA),用于目标分类,与离线分析中的原始TRCA相比显示出显着更高的性能。在在线系统中,利用基于贝叶斯后概率的动态停止(DS)策略来实现可变的刺激时间。此外,优化时间过滤过程和程序以促进在线DS操作。值得注意的是,在线ITR平均达到330.4±45.4位/分钟,这显着高于固定停止(FS)策略,420.2位/ min的峰值是用SSVEP-BCI拼写的最高在线拼写ITR到现在。具有便携式EEG采集,友好交互和可变的命令输出的所提出的系统为基于SSVEP的BCIS提供了更大的灵活性,并且很有希望用于实用高速拼写。

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