Graduate Program in Bioengineering, Seoul National University, Seoul 110-799, Korea.
J Neural Eng. 2013 Apr;10(2):024001. doi: 10.1088/1741-2560/10/2/024001. Epub 2013 Feb 28.
Brain-computer interface (BCI) technologies have been intensely studied to provide alternative communication tools entirely independent of neuromuscular activities. Current BCI technologies use electroencephalogram (EEG) acquisition methods that require unpleasant gel injections, impractical preparations and clean-up procedures. The next generation of BCI technologies requires practical, user-friendly, nonintrusive EEG platforms in order to facilitate the application of laboratory work in real-world settings.
A capacitive electrode that does not require an electrolytic gel or direct electrode-scalp contact is a potential alternative to the conventional wet electrode in future BCI systems. We have proposed a new capacitive EEG electrode that contains a conductive polymer-sensing surface, which enhances electrode performance. This paper presents results from five subjects who exhibited visual or auditory steady-state responses according to BCI using these new capacitive electrodes. The steady-state visual evoked potential (SSVEP) spelling system and the auditory steady-state response (ASSR) binary decision system were employed.
Offline tests demonstrated BCI performance high enough to be used in a BCI system (accuracy: 95.2%, ITR: 19.91 bpm for SSVEP BCI (6 s), accuracy: 82.6%, ITR: 1.48 bpm for ASSR BCI (14 s)) with the analysis time being slightly longer than that when wet electrodes were employed with the same BCI system (accuracy: 91.2%, ITR: 25.79 bpm for SSVEP BCI (4 s), accuracy: 81.3%, ITR: 1.57 bpm for ASSR BCI (12 s)). Subjects performed online BCI under the SSVEP paradigm in copy spelling mode and under the ASSR paradigm in selective attention mode with a mean information transfer rate (ITR) of 17.78 ± 2.08 and 0.7 ± 0.24 bpm, respectively.
The results of these experiments demonstrate the feasibility of using our capacitive EEG electrode in BCI systems. This capacitive electrode may become a flexible and non-intrusive tool fit for various applications in the next generation of BCI technologies.
脑-机接口 (BCI) 技术已经被深入研究,以提供完全独立于神经肌肉活动的替代通信工具。当前的 BCI 技术使用脑电图 (EEG) 采集方法,需要使用不舒适的凝胶注射、不切实际的准备和清洁程序。下一代 BCI 技术需要实用、用户友好、非侵入性的 EEG 平台,以便促进实验室工作在现实环境中的应用。
一种不需要电解质凝胶或直接电极-头皮接触的电容电极,是未来 BCI 系统中传统湿电极的潜在替代品。我们提出了一种新的电容 EEG 电极,它包含一个导电聚合物感应表面,可增强电极性能。本文介绍了 5 名受试者的结果,他们根据 BCI 使用这些新的电容电极显示出视觉或听觉稳态反应。使用稳态视觉诱发电位 (SSVEP) 拼写系统和听觉稳态响应 (ASSR) 二进制决策系统。
离线测试表明 BCI 性能足以用于 BCI 系统(准确率:95.2%,ITR:用于 SSVEP BCI 的 19.91 bpm(6 s),准确率:82.6%,用于 ASSR BCI 的 1.48 bpm(14 s)),分析时间略长于使用相同 BCI 系统时使用湿电极的时间(准确率:91.2%,用于 SSVEP BCI 的 25.79 bpm(4 s),准确率:81.3%,用于 ASSR BCI 的 1.57 bpm(12 s))。受试者在 SSVEP 范式下的复制拼写模式下进行在线 BCI,并在 ASSR 范式下进行选择性注意模式下的在线 BCI,平均信息传输率 (ITR) 分别为 17.78 ± 2.08 和 0.7 ± 0.24 bpm。
这些实验的结果证明了使用我们的电容 EEG 电极在 BCI 系统中的可行性。这种电容电极可能成为一种灵活的非侵入性工具,适用于下一代 BCI 技术中的各种应用。