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Vector copulas

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arxiv 2009.06558 v2 pith:BFML5KBW submitted 2020-09-14 econ.EM math.PRmath.STstat.TH

classification econ.EMmath.PRmath.STstat.TH
keywords vectorcopulasmultivariateconstructdependencedistributionsgivenmarginals
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This paper introduces vector copulas associated with multivariate distributions with given multivariate marginals, based on the theory of measure transportation, and establishes a vector version of Sklar's theorem. The latter provides a theoretical justification for the use of vector copulas to characterize nonlinear or rank dependence between a finite number of random vectors (robust to within vector dependence), and to construct multivariate distributions with any given non overlapping multivariate marginals. We construct Elliptical and Kendall families of vector copulas, derive their densities, and present algorithms to generate data from them. The use of vector copulas is illustrated with a stylized analysis of international financial contagion.

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  1. Towards Diverse and Comprehensive Benchmarks for Mutual Information Estimation

    cs.LG 2026-07 accept novelty 6.5 of 10

    A copula-theoretic benchmark suite reveals that non-parametric, discriminative and generative MI estimators each dominate only in specific regimes, with no universal winner.

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