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Classification of emotion primitives from EEG signals using visual and audio stimuli

机译:使用视觉和听觉刺激从EEG信号分类情绪原始语

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Emotion recognition from EEG signals has an important role in designing Brain-Computer Interface. This paper compares effects of audio and visual stimuli, used for collecting emotional EEG signals, on emotion classification performance. For this purpose EEG data from 25 subjects are collected and binary classification (low/high) for valence and activation emotion dimensions are performed. Wavelet transform is used for feature extraction and 3 classifiers are used for classification. True positive rates of 71.7% and 78.5% are obtained using audio and video stimuli for valence dimension 71% and 82% are obtained using audio and video stimuli for arousal dimension, respectively.
机译:脑电信号的情感识别在设计脑机接口中起着重要的作用。本文比较了用于收集情绪脑电信号的音频和视觉刺激对情绪分类性能的影响。为此,收集了来自25个受试者的EEG数据,并进行了价和激活情绪维度的二元分类(低/高)。小波变换用于特征提取,3个分类器用于分类。使用针对价位维度的音频和视频刺激,分别获得71.7%和78.5%的真实阳性率使用针对维度维度的音频和视频刺激,分别获得71%和82%的真实阳性率。

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