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Mapping Multiplex Hubs in Human Functional Brain Networks

机译:映射人类功能性大脑网络中的多重集线器

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摘要

Typical brain networks consist of many peripheral regions and a few highly central ones, i.e., hubs, playing key functional roles in cerebral inter-regional interactions. Studies have shown that networks, obtained from the analysis of specific frequency components of brain activity, present peculiar architectures with unique profiles of region centrality. However, the identification of hubs in networks built from different frequency bands simultaneously is still a challenging problem, remaining largely unexplored. Here we identify each frequency component with one layer of a multiplex network and face this challenge by exploiting the recent advances in the analysis of multiplex topologies. First, we show that each frequency band carries unique topological information, fundamental to accurately model brain functional networks. We then demonstrate that hubs in the multiplex network, in general different from those ones obtained after discarding or aggregating the measured signals as usual, provide a more accurate map of brain's most important functional regions, allowing to distinguish between healthy and schizophrenic populations better than conventional network approaches.
机译:典型的大脑网络由许多外围区域和一些高度中心的区域组成,即集线器,它们在大脑区域间的交互作用中起着关键的作用。研究表明,通过对大脑活动的特定频率成分进行分析而获得的网络,呈现出具有独特的区域中心特征的独特结构。但是,同时识别从不同频带构建的网络中的集线器仍然是一个具有挑战性的问题,在很大程度上尚待探索。在这里,我们通过多层网络的每一层来识别每个频率分量,并通过利用多层拓扑分析的最新进展来面对这一挑战。首先,我们显示每个频带都携带独特的拓扑信息,这是准确建模大脑功能网络的基础。然后,我们证明,与通常丢弃或汇总测量信号后获得的枢纽不同,复用网络中的枢纽可提供更准确的大脑最重要的功能区图,从而比传统的枢纽更好地区分健康人群和精神分裂症人群网络方法。

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