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Prediction of subjective ratings of emotional pictures by EEG features

机译:通过EEG功能预测情感图片的主观评分

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摘要

Objective. Emotion dysregulation is an important aspect of many psychiatric disorders. Brain-computer interface (BCI) technology could be a powerful new approach to facilitating therapeutic self-regulation of emotions. One possible BCI method would be to provide stimulus-specific feedback based on subject-specific electroencephalographic (EEG) responses to emotion-eliciting stimuli. Approach. To assess the feasibility of this approach, we studied the relationships between emotional valence/arousal and three EEG features: amplitude of alpha activity over frontal cortex; amplitude of theta activity over frontal midline cortex; and the late positive potential over central and posterior mid-line areas. For each feature, we evaluated its ability to predict emotional valence/arousal on both an individual and a group basis. Twenty healthy participants (9 men, 11 women; ages 22-68) rated each of 192 pictures from the IAPS collection in terms of valence and arousal twice (96 pictures on each of 4 d over 2 weeks). EEG was collected simultaneously and used to develop models based on canonical correlation to predict subject-specific single-trial ratings. Separate models were evaluated for the three EEG features: frontal alpha activity; frontal midline theta; and the late positive potential. In each case, these features were used to simultaneously predict both the normed ratings and the subject-specific ratings. Main results. Models using each of the three EEG features with data from individual subjects were generally successful at predicting subjective ratings on training data, but generalization to test data was less successful. Sparse models performed better than models without regularization. Significance. The results suggest that the frontal midline theta is a better candidate than frontal alpha activity or the late positive potential for use in a BCI-based paradigm designed to modify emotional reactions.
机译:目的。情绪失调是许多精神疾病的重要方面。脑机接口(BCI)技术可能是促进情绪的治疗性自我调节的强大新方法。一种可能的BCI方法是基于对象特定的脑电图(EEG)对引发情绪的刺激来提供特定于刺激的反馈。方法。为了评估这种方法的可行性,我们研究了情绪价/情绪与三个脑电图特征之间的关系:额叶皮层上的阿尔法活动幅度;额叶中线皮层的θ活动幅度;以及中线和后中线区域的后期正电位。对于每个功能,我们评估了其在个人和群体基础上预测情绪价/情绪的能力。二十名健康参与者(9名男性,11名女性; 22-68岁)对IAPS集合中的192张图片的价和唤起进行了两次评估(两周内每4 d拍摄96张图​​片)。同时收集脑电图,并将其用于基于典范相关性开发模型以预测特定受试者的单项试验等级。对三个脑电图特征的单独模型进行了评估:额叶阿尔法活动;额中线theta;和后期的积极潜力。在每种情况下,这些功能都可用于同时预测标准评分和特定对象评分。主要结果。使用三个EEG特征中的每一个特征与来自单个受试者的数据的模型通常可以成功地预测训练数据的主观评分,但是对测试数据的泛化则不太成功。稀疏模型的性能优于没有正则化的模型。意义。结果表明,额叶中线theta是比额叶alpha活动或晚期正电位更好的候选者,后者可用于基于BCI的范式来修饰情绪反应。

著录项

  • 来源
    《Journal of neural engineering》 |2017年第1期|016009.1-016009.9|共9页
  • 作者单位

    National Center for Adaptive Neurotechnologies, Wadsworth Center, New York State Department of Health, Albany, NY 12201-0509, USA;

    Departments of Psychiatry and Neuroscience, Icahn School of Medicine at Mount Sinai, New York, NY 10029-6574, USA;

    National Center for Adaptive Neurotechnologies, Wadsworth Center, New York State Department of Health, Albany, NY 12201-0509, USA;

    Departments of Psychiatry and Neuroscience, Icahn School of Medicine at Mount Sinai, New York, NY 10029-6574, USA;

    National Center for Adaptive Neurotechnologies, Wadsworth Center, New York State Department of Health, Albany, NY 12201-0509, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    EEG; emotion; rehabilitation;

    机译:脑电图;情感;复原;

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