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无标度网络中的结构转变。

Structural transitions in scale-free networks.

作者信息

Szabó Gábor, Alava Mikko, Kertész János

机构信息

Department of Theoretical Physics, Institute of Physics, Budapest University of Technology, 8 Budafoki út, H-1111 Budapest, Hungary.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2003 May;67(5 Pt 2):056102. doi: 10.1103/PhysRevE.67.056102. Epub 2003 May 6.

Abstract

Real growing networks such as the World Wide Web or personal connection based networks are characterized by a high degree of clustering, in addition to the small-world property and the absence of a characteristic scale. Appropriate modifications of the (Barabási-Albert) preferential attachment network growth capture all these aspects. We present a scaling theory to describe the behavior of the generalized models and the mean-field rate equation for clustering. This is solved for a specific case with the result C(k) approximately 1/k for the clustering of a node of degree k. This mean-field exponent agrees with simulations, and reproduces the clustering of many real networks.

摘要

诸如万维网或基于个人联系的网络等实际增长的网络,除了具有小世界特性和缺乏特征尺度外,还具有高度的聚类性。对(巴拉巴西 - 阿尔伯特)偏好依附网络增长进行适当修改可以捕捉到所有这些方面。我们提出一种标度理论来描述广义模型的行为以及聚类的平均场速率方程。针对一个特定情况求解该方程,得到度为k的节点聚类的结果C(k)约为1/k。这个平均场指数与模拟结果一致,并再现了许多实际网络的聚类情况。

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