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A multi-day and multi-band dataset for a steady-state visual-evoked potential–based brain-computer interface

机译:一个多天,多波段的数据集,用于稳态视觉诱发电位的人机界面

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Background A steady-state visual-evoked potential (SSVEP) is a brain response to visual stimuli modulated at certain frequencies; it has been widely used in electroencephalography (EEG)-based brain–computer interface research. However, there are few published SSVEP datasets for brain–computer interface. In this study, we obtained a new SSVEP dataset based on measurements from 30 participants, performed on 2 days; our dataset complements existing SSVEP datasets: (i) multi-band SSVEP datasets are provided, and all 3 possible frequency bands (low, middle, and high) were used for SSVEP stimulation; (ii) multi-day datasets are included; and (iii) the EEG datasets include simultaneously obtained physiological measurements, such as respiration, electrocardiography, electromyography, and head motion (accelerator). Findings To validate our dataset, we estimated the spectral powers and classification performance for the EEG (SSVEP) datasets and created an example plot to visualize the physiological time-series data. Strong SSVEP responses were observed at stimulation frequencies, and the mean classification performance of the middle frequency band was significantly higher than the low- and high-frequency bands. Other physiological data also showed reasonable results. Conclusions Our multi-band, multi-day SSVEP datasets can be used to optimize stimulation frequencies because they enable simultaneous investigation of the characteristics of the SSVEPs evoked in each of the 3 frequency bands, and solve session-to-session (day-to-day) transfer problems by enabling investigation of the non-stationarity of SSVEPs measured on different days. Additionally, auxiliary physiological data can be used to explore the relationship between SSVEP characteristics and physiological conditions, providing useful information for optimizing experimental paradigms to achieve high performance.
机译:背景技术稳态视觉诱发电位(SSVEP)是大脑对以特定频率调制的视觉刺激的反应。它已被广泛用于基于脑电图(EEG)的脑机接口研究。但是,很少有公开的关于脑机接口的SSVEP数据集。在这项研究中,我们基于2天进行的30名参与者的测量,获得了一个新的SSVEP数据集;我们的数据集是对现有SSVEP数据集的补充:(i)提供了多频段SSVEP数据集,并且将所有3个可能的频带(低,中和高)用于SSVEP刺激; (ii)包括多日数据集; (iii)脑电数据集包括同时获得的生理测量值,例如呼吸,心电图,肌电图和头部运动(加速器)。结果为了验证我们的数据集,我们估算了EEG(SSVEP)数据集的光谱功率和分类性能,并创建了一个示例图来可视化生理时间序列数据。在刺激频率处观察到强烈的SSVEP响应,并且中频带的平均分类性能显着高于低频带和高频带。其他生理数据也显示出合理的结果。结论我们的多频段,多天SSVEP数据集可用于优化刺激频率,因为它们可以同时调查3个频段中每个频段引起的SSVEP的特性,并解决会话之间的问题(日常问题,天)可以通过调查在不同日期测得的SSVEP的非平稳性来转移问题。此外,辅助生理数据可用于探索SSVEP特征与生理条件之间的关系,为优化实验范式以实现高性能提供有用的信息。

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