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Subject-adaptive steady-state visual evoked potential detection for brain-computer interface

机译:人机界面的对象自适应稳态视觉诱发电位检测

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We report on the development of a four command Brain-Computer Interface (BCI) based on steady-state visual evoked potential (SSVEP) responses detected from human electroencephalograms (EEGs). The proposed system combines spatial filtering, feature extraction and selection, and a classifier. Two types of classifiers were compared: one based on equal treatment of all harmonics in all EEG channels and the second based on preliminary training resulting in a weighted treatment of the harmonics. Results from six healthy subjects are evaluated.
机译:我们报告了从人类脑电图(EEGs)检测到的基于稳态视觉诱发电位(SSVEP)响应的四个命令脑机接口(BCI)的发展情况。所提出的系统结合了空间滤波,特征提取和选择以及分类器。比较了两种类型的分类器:一种基于对所有EEG通道中所有谐波的均等处理,另一种基于对谐波进行加权处理的初步训练。对六个健康受试者的结果进行了评估。

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