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首页> 外文期刊>International Journal of Modern Physics, B. Condensed Matter Physics, Statistical Physics, Applied Physics >A weighted local-world evolving network model based on the edge weights preferential selection
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A weighted local-world evolving network model based on the edge weights preferential selection

机译:基于边缘权重优先选择的加权演化世界网络模型

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In this paper, we use the edge weights preferential attachment mechanism to build a new local-world evolutionary model for weighted networks. It is different from previous papers that the local-world of our model consists of edges instead of nodes. Each time step, we connect a new node to two existing nodes in the local-world through the edge weights preferential selection. Theoretical analysis and numerical simulations show that the scale of the local-world affect on the weight distribution, the strength distribution and the degree distribution. We give the simulations about the clustering coefficient and the dynamics of infectious diseases spreading. The weight dynamics of our network model can portray the structure of realistic networks such as neural network of the nematode C. elegans and Online Social Network.
机译:在本文中,我们使用边缘权重优先附着机制为加权网络建立了一个新的局部世界演化模型。与以前的论文不同,我们的模型的局部世界由边而不是节点组成。每个时间步,我们都通过边缘权重优先选择将新节点连接到本地世界中的两个现有节点。理论分析和数值模拟表明,局部世界的规模影响着重量分布,强度分布和程度分布。我们给出了聚类系数和传染病传播动态的模拟。我们网络模型的权重动力学可以描绘现实网络的结构,例如线虫线虫的神经网络和在线社交网络。

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