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Discovering EEG Signals Response to Musical Signal Stimuli by Time-frequency analysis and Independent Component Analysis

机译:通过时频分析和独立分量分析发现对音乐信号刺激的脑电信号响应

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In recent years, a lot of research has focus on the physiological effect of music. The electroencephalographic (EEG) is often used to verify the influence of music on human brain activity. In this study, we used frequency distribution analysis and the independent component analysis (ICA) to analyze to discover the EEG responses of subjects with different musical signal stimuli. It is expected that some features on EEG can be demonstrated to reflect the different musical signal stimuli. The EEG of six healthy volunteers listening different music was recorded. We used International 10-20 System to get 19 channels of EEG signal. Musical signal stimuli are metal music, sonata music and the favorite music selected by subjects. Spectra analyses based on Fourier transform were applied to obtain the alpha, beta, gamma and thetas band power of EEG signal under different music stimuli. We used the power at each band of each channel as the features of EEG. The correlation of the features between different situations and subjects was used to show which channel display the difference of EEG signals. Besides, ICA was applied to assist us in the process of isolating noise components and to provide cues to explain the functions of different brain areas in point of neurology. The result showed that some independent components obtained from ICA can demonstrate more significant difference for different music. The features composed of spectral power of each band are very similar in listening metal music, but showed less similarity in listening sonata music. Hence, the response of EEG to sonata is more meaningful and metal music may induce same effect for different subjects. T3 and Pz are the channels with relatively lower correlation under different music stimuli. Therefore, the locations of T3 and Pz of brain may play an important role in feeling music
机译:近年来,许多研究集中在音乐的生理效果上。脑电图(EEG)通常用于验证音乐对人脑活动的影响。在这项研究中,我们使用频率分布分析和独立成分分析(ICA)来分析发现具有不同音乐信号刺激的对象的脑电图反应。预期可以证明EEG上的某些功能可以反映出不同的音乐信号刺激。记录了六名健康志愿者的脑电图,他们听了不同的音乐。我们使用国际10-20系统获得19个EEG信号通道。音乐信号刺激包括金属音乐,奏鸣曲音乐和受选对象喜欢的音乐。应用基于傅立叶变换的频谱分析获得不同音乐刺激下脑电信号的α,β,γ和θ带功率。我们将每个通道每个频段的功率用作EEG的功能。不同情况和受试者之间特征的相关性用于显示哪个通道显示了脑电信号的差异。此外,ICA被用于协助我们隔离噪声成分的过程,并提供线索来解释神经学方面不同大脑区域的功能。结果表明,从ICA获得的一些独立成分对于不同的音乐表现出更大的差异。由每个频段的频谱功率组成的特征在聆听金属音乐时非常相似,但在聆听奏鸣曲音乐中却表现出较少的相似性。因此,脑电图对奏鸣曲的反应更有意义,金属音乐可能对不同主体产生相同的效果。 T3和Pz是在不同音乐刺激下具有相对较低相关性的通道。因此,大脑中T3和Pz的位置可能在感觉音乐中起重要作用

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