Publication | Closed Access
The method of moments and degree distributions for network models
201
Citations
21
References
2011
Year
Unknown Venue
EngineeringNetwork AnalysisNetwork ModelScale-free NetworkRandom GraphData ScienceStructural Graph TheoryProbabilistic Graph TheoryDegree DistributionsStatisticsSocial Network AnalysisNetwork Theory (Organizational Economics)Network EstimationGraphical ModelEmpirical Graph MomentsProbability TheoryNetwork TheoryNetwork ScienceGraph TheoryNetwork BiologyProbability ModelsBusinessGraph Analysis
Probability models on graphs are becoming increasingly important in many applications, but statistical tools for fitting such models are not yet well developed. Here we propose a general method of moments approach that can be used to fit a large class of probability models through empirical counts of certain patterns in a graph. We establish some general asymptotic properties of empirical graph moments and prove consistency of the estimates as the graph size grows for all ranges of the average degree including Ω(1). Additional results are obtained for the important special case of degree distributions.
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