Feasibility of using single-channel EEG waveforms for single-trial classification of viewed characters

M. Nakayama, H. Abe
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引用次数: 4

Abstract

Electroencephalograms (EEGs) and Event-related potentials (ERP) have long been used to observe the human visual perception process, such as the human response to letters, Kanji characters and symbols. This paper examines the possibility of classifying characters when viewed by subjects in single trials using single-channel EEG waveforms of the frontal area (Fz) and the occipital area (Oz) of the brain. All EEG data were smoothened, the first 20 trials for each character were used for calibration, and the remaining trials were assigned to the test data set. Feature vectors for each trial were created as EEG waveforms from 100 up to 800 msec. after the stimuli was shown. To extract features of waveforms, the regression relationship between EEG and ERP waveforms was used to transform observed signals. As a result, the performance of cross validation rates of the test data set increased incrementally during the perceptual process, for both Fz and Oz, when the predicted waveforms were measured using the regression relationship. Also, the effectiveness of the prediction using the regression relationship for the classification performance of viewed characters was determined during the perceptual process. This provides evidence that a procedure using the relationship between EEG and ERP is effective in predicting viewed characters.
用单通道脑电图波形对所见字符进行单次分类的可行性
脑电图(eeg)和事件相关电位(ERP)长期以来被用于观察人类的视觉感知过程,如人类对字母、汉字和符号的反应。本文研究了当受试者在单次试验中使用大脑额叶区(Fz)和枕叶区(Oz)的单通道脑电图波形时对字符进行分类的可能性。对所有脑电数据进行平滑处理,每个字符的前20次试验用于校准,其余试验分配到测试数据集。每个试验的特征向量被创建为100到800毫秒的脑电图波形。在刺激物显示之后。利用脑电和ERP波形之间的回归关系对观测信号进行变换,提取波形特征。结果,当使用回归关系测量预测波形时,Fz和Oz的测试数据集的交叉验证率的性能在感知过程中逐渐增加。在感知过程中,利用回归关系对所观察字符的分类性能进行预测的有效性。这证明了利用EEG和ERP之间的关系来预测所看到的字符是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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