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基于实时脑电的脑机接口(BCI)能否通过枕部 alpha 节律来加快视觉检测?

Can the occipital alpha-phase speed up visual detection through a real-time EEG-based brain-computer interface (BCI)?

机构信息

Departament de Tecnologies de la Informació i les Comunicacions, Center for Brain and Cognition, Universitat Pompeu Fabra, Barcelona, Spain.

Departamento de Psicología Básica, Universidad Autónoma de Madrid, Madrid, Spain.

出版信息

Eur J Neurosci. 2022 Jun;55(11-12):3224-3240. doi: 10.1111/ejn.14931. Epub 2020 Nov 3.

DOI:10.1111/ejn.14931
PMID:32745332
Abstract

Electrical brain oscillations reflect fluctuations in neural excitability. Fluctuations in the alpha band (α, 8-12 Hz) in the occipito-parietal cortex are thought to regulate sensory responses, leading to cyclic variations in visual perception. Inspired by this theory, some past and recent studies have addressed the relationship between α-phase from extra-cranial EEG and behavioural responses to visual stimuli in humans. The latest studies have used offline approaches to confirm α-gated cyclic patterns. However, a particularly relevant implication is the possibility to use this principle online, whereby stimuli are time-locked to specific α-phases leading to predictable outcomes in performance. Here, we aimed at providing a proof of concept for such real-time neurotechnology. Participants performed a speeded response task to visual targets that were presented upon a real-time estimation of the α-phase via an EEG closed-loop brain-computer interface (BCI). According to the theory, we predicted a modulation of reaction times (RTs) along the α-cycle. Our BCI system achieved reliable trial-to-trial phase locking of stimuli to the phase of individual occipito-parietal α-oscillations. Yet, the behavioural results did not support a consistent relation between RTs and the phase of the α-cycle neither at group nor at single participant levels. We must conclude that although the α-phase might play a role in perceptual decisions from a theoretical perspective, its impact on EEG-based BCI application appears negligible.

摘要

脑电振荡反映了神经兴奋性的波动。顶枕部皮质的α 频段(α,8-12 Hz)的波动被认为可以调节感觉反应,导致视觉感知的周期性变化。受此理论启发,过去和最近的一些研究已经探讨了颅外 EEG 的α 相位与人类对视觉刺激的行为反应之间的关系。最新的研究使用离线方法来确认α门控循环模式。然而,一个特别相关的含义是有可能在线使用这一原理,即通过 EEG 闭环脑机接口(BCI)将刺激与特定的α 相位进行时间锁定,从而在性能上产生可预测的结果。在这里,我们旨在为这种实时神经技术提供一个概念验证。参与者执行一项快速反应任务,视觉目标在 EEG 闭环脑机接口 (BCI) 实时估计的 α 相位的基础上呈现。根据该理论,我们预测反应时间(RTs)会沿着 α 周期发生调制。我们的 BCI 系统实现了刺激与个体顶枕部 α 振荡相位的可靠试验到试验的相位锁定。然而,行为结果既不支持在组水平也不支持在单个参与者水平上 RTs 与α 周期相位之间的一致关系。我们必须得出结论,尽管从理论角度来看,α 相位可能在知觉决策中起作用,但它对基于 EEG 的 BCI 应用的影响似乎可以忽略不计。

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