Computer Engineering and Applications ›› 2010, Vol. 46 ›› Issue (11): 77-80.DOI: 10.3778/j.issn.1002-8331.2010.11.023

• 网络、通信、安全 • Previous Articles     Next Articles

Methods to model and estimate scaling exponents of power-law for Internet autonomous system

XU Hua-lan1,2,DENG Xiao-heng1,ZHANG Lian-ming2   

  1. 1.School of Software,Central South University,Changsha 410086,China
    2.College of Physics and Information Science,Hunan Normal University,Changsha 410081,China
  • Received:2009-05-07 Revised:2009-06-19 Online:2010-04-11 Published:2010-04-11
  • Contact: XU Hua-lan

Internet AS幂律建模及其参数估计

许华岚1,2,邓晓衡1,张连明2   

  1. 1.中南大学 软件学院,长沙 410086
    2.湖南师范大学 物理与信息科学学院,长沙 410081
  • 通讯作者: 许华岚

Abstract: In order to accurately model Internet topology on autonomous system(AS) level,a power-law model is improved based on the smallest and the largest node-degree,and a new algorithm of parameters estimation for the power-law model is developed.The smallest and the largest node-degree,the power-law parameter are estimated by the use of a new algorithm for the actual measurement data form Internet autonomous system.The experimental results show that the smallest node-degree is 1,the largest node-degree increases by the network size increasing,and the scaling exponent of power-law is 2.25,the error of the new algorithm is very small as the maximum likelihood estimation.

Key words: Internet autonomous system, power-law model, least square, maximum likelihood estimation

摘要: 为了精确建模Internet自治系统层面上的拓扑结构,提出了基于最小节点度和最大节点度的拓扑幂律模型及其参数估计新算法。针对Internet自治系统层拓扑实际测量数据,利用新算法对拓扑幂律模型中的最小节点度、最大节点度以及标度参数进行计算。实验结果表明,由新算法估计的Internet自治系统层拓扑幂律模型的最小节点度为1,最大节点度随网络规模的增大而增大,标度参数的误差与使用最大然似估计法误差一样均非常小,约为2.25。

关键词: Internet自治系统, 幂律模型, 最小二乘法, 最大似然估计法

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