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A Physarum Centrality Measure of the Human Brain Network

机译:人脑网络的Physarum中心度度量

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The most important goals of brain network analyses are to (a) detect pivotal regions and connections that contribute to disproportionate communication flow, (b) integrate global information, and (c) increase the brain network efficiency. Most centrality measures assume that information propagates in networks with the shortest connection paths, but this assumption is not true for most real networks given that information in the brain propagates through all possible paths. This study presents a methodological pipeline for identifying influential nodes and edges in human brain networks based on the self-regulating biological concept adopted from the Physarum model, thereby allowing the identification of optimal paths that are independent of the stated assumption. Network hubs and bridges were investigated in structural brain networks using the Physarum model. The optimal paths and fluid flow were used to formulate the Physarum centrality measure. Most network hubs and bridges are overlapped to some extent, but those based on Physarum centrality contain local and global information in the superior frontal, anterior cingulate, middle temporal gyrus, and precuneus regions. This approach also reduced individual variation. Our results suggest that the Physarum centrality presents a trade-off between the degree and betweenness centrality measures.
机译:脑网络分析的最重要目标是(a)检测导致不均衡通信流的关键区域和连接;(b)整合全局信息;(c)提高脑网络效率。大多数集中度度量假设信息在具有最短连接路径的网络中传播,但是对于大多数真实网络,这种假设是不正确的,因为大脑中的信息会通过所有可能的路径传播。这项研究提出了一种方法流水线,用于基于Physarum模型采用的自我调节生物学概念来识别人脑网络中有影响的节点和边缘,从而允许确定独立于所述假设的最佳路径。使用Physarum模型在结构性大脑网络中研究了网络中心和网桥。使用最佳路径和流体流动来制定Physarum中心度度量。大多数网络集线器和网桥在某种程度上是重叠的,但是基于Physarum中心性的网络集线器和网桥在上额额叶,前扣带回,颞中回和早突区包含局部和全局信息。这种方法还减少了个体差异。我们的结果表明,Physarum中心性在程度和中间性中心性度量之间存在折衷。

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