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BrainNets: Human Emotion Recognition Using an Internet of Brian Things Platform

机译:Brainnets:使用Brian互联网平台的人类情感识别

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Human wearable helmet is a useful tool for monitoring the status of miners in the mining industry. However, there is little research regarding human emotion recognition in an extreme environment. In this paper, an emotional state evoked paradigm is designed to identify the brain area where the emotion feature is most evident. Next, the correct electrode position is determined for the collection of the negative emotion by the electroencephalograph (EEG) based on the international 10-20 system of electrode placement. And then, a fusion algorithm of the anxiety level is proposed to evaluate the person's mental state using the θ, α, and β rhythms of an EEG. Experiments demonstrate that the position Fp2 is the best electrode position for obtaining the anxiety level parameter. The most visible EEG changes appear within the first two seconds following stimulation. The amplitudes of the θ rhythm increase most significantly in the negative emotional state.
机译:人体可佩带的头盔是监测采矿业中矿工现状的有用工具。然而,在极端环境中对人类情感认可几乎没有研究。在本文中,诱发范式的情绪状态旨在识别情感特征最明显的大脑区域。接下来,基于International 10-20系统的电极放置系统确定脑电图(EEG)的正确情绪收集正确的电极位置。然后,提出了一种焦虑水平的融合算法,用于使用脑电图的θ,α和β节律评估人的精神状态。实验表明,位置FP2是获得焦虑水平参数的最佳电极位置。刺激后的前两秒内,最可见的EEG变化会出现。 θ节奏的幅度在负情绪状态下最显着增加。

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