Publication | Closed Access
GENERATING AN ASSORTATIVE NETWORK WITH A GIVEN DEGREE DISTRIBUTION
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Citations
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References
2008
Year
EngineeringNetwork AnalysisNetwork ModelScale-free NetworkNetwork DynamicNetwork EvolutionRandom GraphData ScienceDegree DistributionProbabilistic Graph TheoryCombinatorial OptimizationStatisticsSocial Network AnalysisMonte CarloComputer ScienceNetwork TheoryNetwork ScienceGraph TheoryBusinessAssortative Mixing
Recently, the assortative mixing of complex networks has received much attention partly because of its significance in various social networks. In this paper, a new scheme to generate an assortative growth network with given degree distribution is presented using a Monte Carlo sampling method. Since the degrees of a great number of real-life networks obey either power-law or Poisson distribution, we employ these two distributions to grow our models. The models generated by this method exhibit interesting characteristics such as high average path length, high clustering coefficient and strong rich-club effects.
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