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Nonparametric graphon estimation

We propose a nonparametric framework for the analysis of networks, based on a natural limit object termed a graphon. We prove consistency of graphon estimation under general conditions, giving rates which include the important practical setting of sparse networks. Our results cover dense and sparse stochastic blockmodels with a growing number of classes, under model misspecification. We use profile likelihood methods, and connect our results to approximation theory, nonparametric function estimation, and the theory of graph limits.

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Related contextCo-authorshipAuthorshipAuthorshipTopic signalTopic signalTopic signalTopic signalRelated contextWNonparametric graphon estimationpreprint / 2013APatrick J. WolfeResearcherASofia C. OlhedeResearcherTmath.CO8936 worksTmath.PR7239 worksTmath.ST3384 worksTStatistics Theory3281 works
PaperSignal 106 links

Nonparametric graphon estimation

preprint / 2013

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