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Application of EEMD-HHT Method on EEG Analysis for Speech Evoked Emotion Recognition

机译:EEMD-HHT方法在脑电信号分析中的应用

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Electroencephalograph (EEG) is widely used to study human brain activities. However, the interpretation of EEG signals is still a challenging computational task. Emerging evidence has shown that the non-stationary traits of EEG signals hinder the way of informative interpretation. Compared to the classical Welch frequency analysis method (short-time Fourier transform), Hilbert Huang Transform(HHT) is more suitable for non-linear and non-stationary signals. This paper proposes a band energy extraction method based on EEMD-HHT for time-frequency analysis of EEG signals. We evaluate the method on an EEG database obtained through the emotional cognitive experiment. The auditory stimulus in this paper are selected from CHEAVD2 which is a speech emotion database of the Chinese Academy of Sciences. The correlation coefficients between the predict and target values reach 0.51 and 0.43 for arousal and valence dimension, respectively. This method shows great potentials in applications of computational neuroscience and cognition of art creation.
机译:脑电图仪(EEG)被广泛用于研究人脑活动。但是,脑电信号的解释仍然是一项艰巨的计算任务。新兴证据表明,脑电信号的非平稳性阻碍了信息解释的方式。与经典的Welch频率分析方法(短时傅立叶变换)相比,希尔伯特·黄变换(HHT)更适合于非线性和非平稳信号。提出了一种基于EEMD-HHT的频带能量提取方法,用于EEG信号的时频分析。我们在通过情感认知实验获得的EEG数据库上评估该方法。本文的听觉刺激选自中国科学院言语情感数据库CHEAVD2。唤醒和化合价的预测值和目标值之间的相关系数分别达到0.51和0.43。这种方法在计算神经科学的应用和艺术创作的认知方面显示出巨大的潜力。

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