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From unweighted to weighted networks with local information

机译:从具有本地信息的未加权网络到加权网络

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In this paper, we analyze an evolving model with local information which can generate a class of networks by choosing different values of the parameter p. The model introduced exhibits the transition from unweighted networks to weighted networks because the distribution of the edge weight can be widely tuned. With the increase in the local information, the degree correlation of the network transforms from assortative to disassortative. We also study the distribution of the degree, strength and edge weight, which all show crossover between exponential and scale-free. Finally, an application of the proposed model to the study of the synchronization is considered. It is concluded that the synchronizability is enhanced when the heterogeneity of the edge weight is reduced. (C) 2007 Elsevier B.V. All rights reserved.
机译:在本文中,我们分析了具有局部信息的演化模型,该模型可以通过选择参数p的不同值来生成一类网络。引入的模型展示了从未加权网络到加权网络的过渡,因为可以广泛地调整边缘权重的分布。随着本地信息的增加,网络的相关度从分类转换为分类。我们还研究了度,强度和边缘权重的分布,所有这些都显示出指数和无标度之间的交叉。最后,考虑了该模型在同步研究中的应用。结论是,当边缘权重的异质性降低时,同步性得到增强。 (C)2007 Elsevier B.V.保留所有权利。

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