Monte Carlo goodness-of-fit tests for degree corrected and related stochastic blockmodels
Vishesh Karwa,
Debdeep Pati,
Sonja Petrović
et al.
Abstract:We construct Bayesian and frequentist finite-sample goodness-of-fit tests for three different variants of the stochastic blockmodel for network data. Since all of the stochastic blockmodel variants are log-linear in form when block assignments are known, the tests for the latent block model versions combine a block membership estimator with the algebraic statistics machinery for testing goodness-of-fit in log-linear models. We describe Markov bases and marginal polytopes of the variants of the stochastic block… Show more
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