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首页> 外文期刊>Journal of circuits, systems and computers >EMD APPROACH TO MULTICHANNEL EEG DATA - THE AMPLITUDE AND PHASE COMPONENTS CLUSTERING ANALYSIS
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EMD APPROACH TO MULTICHANNEL EEG DATA - THE AMPLITUDE AND PHASE COMPONENTS CLUSTERING ANALYSIS

机译:多通道脑电数据的EMD方法-幅度和相位分量聚类分析

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摘要

Human brains exhibit a possibility to control directly the intelligent computing applications in form of brain computer/machine interfacing (BCI/BMI) technologies. Neurophysiological signals and especially electroencephalogram (EEG) are the forms of brain electrical activity which can be easily captured and utilized for BCI/BMI applications. Those signals are unfortunately usually very highly contaminated by external noise caused by the presence of different devices in the environment creating electromagnetic interference. In this paper, we first decompose each of the recorded channels, in multichannel EEG recording environment, into intrinsic mode functions (IMF) which are a result of empirical mode decomposition (EMD) extended to multichannel analysis. We present novel and interesting results on human mental and cognitive states estimation based on analysis of the above-mentioned stimuli-related IMF components. The IMF components are further clustered for their spectral similarity in order to identify only those carrying responses to present stimuli to the subjects. The resulting targets only reconstruction allows us to identify when and to which stimuli intelligent application user is tuning at a time.
机译:人脑展示了以脑计算机/机器接口(BCI / BMI)技术形式直接控制智能计算应用程序的可能性。神经生理信号,尤其是脑电图(EEG)是脑电活动的形式,可以很容易地捕获并用于BCI / BMI应用。不幸的是,这些信号通常会受到环境中不同设备的存在所引起的外部噪声的严重污染,从而产生电磁干扰。在本文中,我们首先在多通道EEG记录环境中将每个记录的通道分解为固有模式函数(IMF),这是扩展到多通道分析的经验模式分解(EMD)的结果。基于上述与刺​​激有关的IMF成分的分析,我们提出了关于人类心理和认知状态估计的新颖有趣的结果。 IMF组件因其频谱相似性而进一步聚类,以便仅识别那些带有对受试者进行刺激的响应的组件。最终的目标重建仅使我们能够识别智能应用程序用户何时以及何时调整到哪个刺激。

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