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EEG classification of emotions using emotion-specific brain functional network

机译:使用特定于情绪的大脑功能网络对情绪进行脑电分类

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The brain functional network perspective forms the basis to relate mechanisms of brain functions. This work analyzes the network mechanisms related to human emotion based on synchronization measure - phase-locking value in EEG to formulate the emotion specific brain functional network. Based on network dissimilarities between emotion and rest tasks, most reactive channel pairs and the reactive band corresponding to emotions are identified. With the identified most reactive pairs, the subject-specific functional network is formed. The identified subject-specific and emotion-specific dynamic network pattern show significant synchrony variation in line with the experiment protocol. The same network pattern are then employed for classification of emotions. With the study conducted on the 4 subjects, an average classification accuracy of 62 % was obtained with the proposed technique.
机译:大脑功能网络的观点构成了与大脑功能机制相关的基础。这项工作基于同步测量-脑电图中的锁相值,分析了与人类情感有关的网络机制,从而建立了特定于情感的大脑功能网络。基于情绪任务和休息任务之间的网络差异,可以识别大多数反应性通道对和对应于情绪的反应性带。通过识别出的大多数反应对,形成了特定于受试者的功能网络。所识别的特定于对象和特定于情感的动态网络模式显示出与实验方案一致的显着同步变化。然后将相同的网络模式用于情感分类。通过对4个主题的研究,提出的技术获得了62%的平均分类准确率。

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