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Fast Variational Inference of Latent Space Models for Dynamic Networks Using Bayesian P-Splines

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arxiv 2401.09715 v1 pith:Y6JEM3HT submitted 2024-01-18 stat.ME stat.CO

classification stat.MEstat.CO
keywords bayesianlatentdynamicinferencelsmsmodelsnetworksspace
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Latent space models (LSMs) are often used to analyze dynamic (time-varying) networks that evolve in continuous time. Existing approaches to Bayesian inference for these models rely on Markov chain Monte Carlo algorithms, which cannot handle modern large-scale networks. To overcome this limitation, we introduce a new prior for continuous-time LSMs based on Bayesian P-splines that allows the posterior to adapt to the dimension of the latent space and the temporal variation in each latent position. We propose a stochastic variational inference algorithm to estimate the model parameters. We use stochastic optimization to subsample both dyads and observed time points to design a fast algorithm that is linear in the number of edges in the dynamic network. Furthermore, we establish non-asymptotic error bounds for point estimates derived from the variational posterior. To our knowledge, this is the first such result for Bayesian estimators of continuous-time LSMs. Lastly, we use the method to analyze a large data set of international conflicts consisting of 4,456,095 relations from 2018 to 2022.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. SANVI: A Fast Spectral-Assisted Network Variational Inference Method with an Extended Surrogate Likelihood Function

    stat.CO 2025-08 conditional novelty 6.0 of 10

    SANVI uses an extended surrogate likelihood and Gaussian variational inference to estimate latent positions in GRDPGs asymptotically efficiently and much faster than MCMC.

  2. Robust High-Dimensional Covariate-Assisted Network Modeling

    stat.ME 2025-05 conditional novelty 6.0 of 10

    A covariate-assisted latent space model with horseshoe shrinkage on both covariate loadings and network-covariate mismatches achieves adaptive posterior contraction and improved community detection rates.

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