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Phase Synchrony in Subject-specific reactive band of EEG for Classification of Motor Imagery Tasks

机译:脑电图脑电图专用电响频段的相位转型,用于电动机图像任务分类

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Recent works on brain functional analysis have highlighted the importance of distributed functional networks and synchronized activity between networks in mediating cognitive functions. The network perspective is fundamental to relate mechanisms of brain functions and the basis for classifying brain states. This work analyzes the network mechanisms related to motor imagery tasks based on synchronization measure (PLV (phase-locking value)) in EEG alpha-band for the BCI Competition IV Data Set. Based on network dissimilarities between motor imagery and rest tasks, important nodes and important channel pairs corresponding to tasks for all subjects are identified. The identified important channel pairs corresponding to tasks demonstrate significant PLV variation in line with the experiment protocol. With the selection of subject-specific reactive band, these channel pairs provide even more higher variation corresponding to tasks. This paper demonstrates the potential of these identified channel pairs in task classification for future BCI applications.
机译:最近对脑功能分析的作品突出了在调解认知功能中网络之间分布式功能网络和同步活动的重要性。网络透视是基本的,以与大脑功能的机制和分类脑状态的基础有影响。这项工作分析了基于BCI竞赛IV数据集的EEG alpha-Band中的同步测量(PLV(锁相值))与电机图像任务相关的网络机制。基于电动机图像和休息任务之间的网络异化,识别对应于所有受试者的任务的重要节点和重要通道对。对应于任务的识别的重要通道对具有符合实验协议的显着的PLV变化。通过选择对象特异性的反应频带,这些信道对提供了与任务相对应的更高变化。本文展示了未来BCI应用程序任务分类中这些识别的通道对的潜力。

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