Tracking and Visualizing Dynamic Structures in Multichannel EEG Coherence Networks

Chengtao Ji, J. V. D. Gronde, N. Maurits, J. Roerdink
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引用次数: 1

Abstract

An electroencephalography (EEG) coherence network represents functional brain connectivity, and is constructed by calculating the coherence between pairs of electrode signals as a function of frequency. Visualization of coherence networks can provide insight into unexpected patterns of cognitive processing and help neuroscientists understand brain mechanisms. However, most studies have been limited to static EEG coherence networks or were focused on individual network nodes. In this poster, we consider groups of nodes for visualizing the evolution of network communities and their corresponding spatial location. We use a timeline-based representation to provide an overview of the evolution of functional units (FUs) and their corresponding spatial location over time. This representation can help the viewer identify functional units across the whole time window, as well as to identify relations between functional units and brain regions. In addition, a time-annotated FU map is provided to facilitate comparison of the behavior of the nodes between consecutive FU maps. This time-annotated FU map provides more detail about how the classification of electrodes into FUs changes over time. Our method is proposed as a first step towards a complete analysis of EEG coherence networks.
多通道脑电相干网络动态结构跟踪与可视化
脑电图(EEG)相干网络是通过计算电极信号对之间的相干性作为频率的函数来构建的。相干网络的可视化可以提供对认知处理的意外模式的洞察,并帮助神经科学家了解大脑机制。然而,大多数研究都局限于静态脑电相干网络或集中在单个网络节点上。在这张海报中,我们考虑节点组来可视化网络社区的演变及其相应的空间位置。我们使用基于时间轴的表示来概述功能单元(FUs)及其相应的空间位置随时间的演变。这种表现可以帮助观看者在整个时间窗口中识别功能单元,以及识别功能单元和大脑区域之间的关系。此外,还提供了一个带时间注释的FU映射,以方便对连续FU映射之间的节点行为进行比较。这张时间标注的傅里叶图提供了更多关于电极分类成傅里叶如何随时间变化的细节。我们的方法是迈向完整分析脑电相干网络的第一步。
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