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[Submitted on 25 Jan 2024 (v1), last revised 23 Feb 2024 (this version, v3)]

Title:Estimation of partially known Gaussian graphical models with score-based structural priors

Authors:Martín Sevilla, Antonio García Marques, Santiago Segarra
Download a PDF of the paper titled Estimation of partially known Gaussian graphical models with score-based structural priors, by Mart\'in Sevilla and 2 other authors
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Abstract:We propose a novel algorithm for the support estimation of partially known Gaussian graphical models that incorporates prior information about the underlying graph. In contrast to classical approaches that provide a point estimate based on a maximum likelihood or a maximum a posteriori criterion using (simple) priors on the precision matrix, we consider a prior on the graph and rely on annealed Langevin diffusion to generate samples from the posterior distribution. Since the Langevin sampler requires access to the score function of the underlying graph prior, we use graph neural networks to effectively estimate the score from a graph dataset (either available beforehand or generated from a known distribution). Numerical experiments demonstrate the benefits of our approach.
Comments: 17 pages, 7 figures, AISTATS 2024
Subjects: Machine Learning (stat.ML); Machine Learning (cs.LG)
Cite as: arXiv:2401.14340 [stat.ML]
  (or arXiv:2401.14340v3 [stat.ML] for this version)
  https://doi.org/10.48550/arXiv.2401.14340
arXiv-issued DOI via DataCite

Submission history

From: Martín Sevilla [view email]
[v1] Thu, 25 Jan 2024 17:39:47 UTC (896 KB)
[v2] Sun, 28 Jan 2024 17:40:06 UTC (896 KB)
[v3] Fri, 23 Feb 2024 06:38:35 UTC (951 KB)
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