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Influence of weight heterogeneity on random walks in scale-free networks

机译:权重异质性对无标度网络中随机游动的影响

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摘要

Many systems are best described by weighted networks, in which the weights of the edges are heterogeneous. In this paper, we focus on random walks in weighted network, investigating the impacts of weight heterogeneity on the behavior of random walks. We study random walks in a family of weighted scale-free tree-like networks with power-law weight distribution. We concentrate on three cases of random walk problems: with a trap located at a hub node, a leaf adjacent to a hub node, and a farthest leaf node from a hub. For all these cases, we calculate analytically the global mean first passage time (GMFPT) measuring the efficiency of random walk, as well as the leading scaling of GMFPT. We find a significant decrease in the dominating scaling of GMFPT compared with the corresponding binary networks in all three random walk problems, which implies that weight heterogeneity has a significant influence on random walks in scale-free networks.
机译:加权网络可以最好地描述许多系统,其中边缘的权重是异构的。在本文中,我们重点研究加权网络中的随机游动,研究权重异质性对随机游动行为的影响。我们研究具有幂律权重分布的加权无标树状网络家族中的随机游动。我们集中讨论三种随机游走问题的情况:陷阱位于中心节点,与中心节点相邻的叶子以及距中心最远的叶子节点。对于所有这些情况,我们通过分析计算得出衡量随机游走效率以及GMFPT的领先比例的全球平均首次通过时间(GMFPT)。我们发现,在所有三个随机游走问题中,与相应的二元网络相比,GMFPT的主导缩放显着降低,这意味着权重异构对无尺度网络中的随机游走具有重大影响。

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