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EEG analysis for understanding stress based on affective model basis function

机译:基于情感模型基函数的用于理解压力的EEG分析

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Coping with stress has shown to be able to avoid many complications in medical condition. In this paper we present an alternative method in analyzing and understanding stress using the four basic emotions of happy, calm, sad and fear as our basis function. Electroencephalogram (EEG) signals were captured from the scalp of the brain and measured in responds to various stimuli from the four basic emotions to stimulating stress base on the IAPS emotion stimuli. Features from the EEG signals were extracted using the Kernel Density Estimation (KDE) and classified using the Multilayer Perceptron (MLP), a neural network classifier to obtain accuracy of the subject's emotion leading to stress. Results have shown the potential of using the basic emotion basis function to visualize the stress perception as an alternative tool for engineers and psychologist.
机译:事实证明,应付压力可以避免医疗条件下的许多并发症。在本文中,我们提出了一种替代方法,该方法以幸福,平静,悲伤和恐惧的四种基本情绪作为我们的基本功能来分析和理解压力。脑电图(EEG)信号是从大脑的头皮捕获的,并根据IAPS情绪刺激对从四种基本情绪到刺激压力的各种刺激做出响应进行测量。使用核密度估计(KDE)提取脑电信号的特征,并使用神经网络分类器多层感知器(MLP)进行分类,以获取导致压力的受试者情感的准确性。结果表明,使用基本的情感基础功能可视化压力感知作为工程师和心理学家的替代工具的潜力。

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