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Emotion Recognition Using Frontal EEG in VR Affective Scenes

机译:在VR情感场景中使用额度脑电图的情感识别

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摘要

Frontal EEG has been widely used for human emotion recognition since its convenience. However, many relevant studies used traditional wet electrodes to collect EEG signals and the stimulation ways were restricted as music, videos and pictures. This paper provides a new framework for emotion recognition using frontal EEG and VR affective scenes. An experiment about VR stimuli EEG data collection was conducted among 19 subjects. The EEG data were collected using textile dry electrodes. EEG features were extracted from time, frequency and space domain in the collected data. Model stacking method were applied in the experiment to ensemble 3 models including GBDT, RF and SVM. The mean accuracy of our framework achieved about 81.30%, which exhibited better performance compared with relevant studies. The framework proposed in this work can be well applied to wearable device for EEG emotion recognition in VR scenes.
机译:自方便起见,正面脑电图已被广泛用于人类情感识别。然而,许多相关研究使用传统的湿电极来收集EEG信号,并且刺激方式被限制为音乐,视频和图片。本文提供了使用额外脑电图和VR情感场景的新框架。关于VR刺激EEG数据收集的实验是在19个受试者中进行的。使用纺织干电极收集EEG数据。从收集数据中的时间,频率和空间域中提取EEG特征。在实验中应用模型堆叠方法,包括GBDT,RF和SVM的集合3型号。我们框架的平均准确性约为81.30%,与相关研究相比表现出更好的性能。本作工作中提出的框架可以很好地应用于VR场景中的EEG情绪识别的可穿戴设备。

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