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Classification of emotional states from electrocardiogram signals: a non-linear approach based on hurst

机译:心电图信号对情绪状态的分类:基于赫斯特的非线性方法

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摘要

BackgroundIdentifying the emotional state is helpful in applications involving patients with autism and other intellectual disabilities; computer-based training, human computer interaction etc. Electrocardiogram (ECG) signals, being an activity of the autonomous nervous system (ANS), reflect the underlying true emotional state of a person. However, the performance of various methods developed so far lacks accuracy, and more robust methods need to be developed to identify the emotional pattern associated with ECG signals.
机译:背景识别情绪状态有助于涉及自闭症和其他智力障碍患者的应用。基于计算机的训练,人机交互等。心电图(ECG)信号是自主神经系统(ANS)的活动,反映了人的内在真实情感状态。然而,迄今为止开发的各种方法的性能缺乏准确性,并且需要开发更鲁棒的方法来识别与ECG信号相关的情绪模式。

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