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A recurrence quantification analysis-based channel-frequency convolutional neural network for emotion recognition from EEG

机译:基于复发量化分析的渠道频率卷积神经网络,用于脑电图识别

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摘要

Constructing a reliable and stable emotion recognition system is a critical but challenging issue for realizing an intelligent human-machine interaction. In this study, we contribute a novel channel-frequency convolutional neural network (CFCNN), combined with recurrence quantification analysis (RQA), for the robust recognition of electroencephalogram (EEG) signals collected from different emotion states. We employ movie clips as the stimuli to induce happiness, sadness, and fear emotions and simultaneously measure the corresponding EEG signals. Then the entropy measures, obtained from the RQA operation on EEG signals of different frequency bands, are fed into the novel CFCNN. The results indicate that our system can provide a high emotion recognition accuracy of 92.24% and a relatively excellent stability as well as a satisfactory Kappa value of 0.884, rendering our system particularly useful for the emotion recognition task. Meanwhile, we compare the performance of the entropy measures, extracted from each frequency band, in distinguishing the three emotion states. We mainly find that emotional features extracted from the gamma band present a considerably higher classification accuracy of 90.51% and a Kappa value of 0.858, proving the high relation between emotional process and gamma frequency band. Published by AIP Publishing.
机译:构建可靠稳定的情感识别系统是实现智能人机互动的关键但具有挑战性的问题。在这项研究中,我们贡献了一种新颖的频率卷积神经网络(CFCNN),结合复制量化分析(RQA),用于从不同情绪状态收集的脑电图(EEG)信号的鲁棒识别。我们使用电影剪辑作为刺激幸福,悲伤和恐惧情绪的刺激,并同时测量相应的EEG信号。然后,从不同频带的EEG信号上的RQA操作获得的熵措施被馈送到新型CFCNN中。结果表明,我们的系统可以提供92.24%的高情绪识别准确度,稳定性相对优异,令人满意的κ值为0.884,使我们的系统对情感识别任务特别有用。同时,我们比较从每个频带提取的熵措施的性能,以区分三种情绪状态。我们主要发现,从伽马带中提取的情绪特征具有相当高的分类精度为90.51%,kappa值为0.858,证明了情绪过程和伽马频带之间的高关系。通过AIP发布发布。

著录项

  • 来源
    《Chaos》 |2018年第1期|共8页
  • 作者单位

    Tianjin Univ Sch Elect &

    Informat Engn Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Elect &

    Informat Engn Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Elect &

    Informat Engn Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Elect &

    Informat Engn Tianjin 300072 Peoples R China;

    Tianjin Univ Sch Elect &

    Informat Engn Tianjin 300072 Peoples R China;

    Potsdam Inst Climate Impact Res Telegraphenberg A31 D-14473 Potsdam Germany;

    Potsdam Inst Climate Impact Res Telegraphenberg A31 D-14473 Potsdam Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自然科学总论;
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