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The geometry of Gaussian double Markovian distributions

Published 30 Jun 2021 in math.ST, math.AG, and stat.TH | (2107.00134v4)

Abstract: Gaussian double Markovian models consist of covariance matrices constrained by a pair of graphs specifying zeros simultaneously in the covariance matrix and its inverse. We study the semi-algebraic geometry of these models, in particular their dimension, smoothness and connectedness as well as algebraic and combinatorial properties.

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