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Research and Implementation of Online Learning System Based on Electroencephalogram Emotion Computing

机译:基于脑电图情感计算的在线学习系统的研究与实现

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The lack of emotion is the bottleneck to improve the efficiency of online learning. In this paper, an online learning system based on EEG emotion computing is developed by using Python and PHP mixed programming method. The original EEG data are collected by Emotive EPOC, PSD is extracted as EEG features, and SVM classifier is used to classify emotional states. The system can analyze the emotional state of online learners in real time and accurately. It has the characteristics of humanized interface and modular algorithm. It can enhance the emotional interaction in online learning environment, and has reference significance for the development of educational application based on BCI.
机译:情绪缺乏是提高在线学习效率的瓶颈。 本文通过使用Python和PHP混合编程方法开发了一种基于EEG情绪计算的在线学习系统。 原始EEG数据由情感ePOC收集,PSD被提取为EEG功能,SVM分类器用于分类情绪状态。 该系统可以实时分析在线学习者的情绪状态,准确。 它具有人性化接口和模块化算法的特征。 它可以增强在线学习环境中的情感互动,并对基于BCI的教育申请的发展具有参考意义。

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