Learning linear non-Gaussian graphical models with multidirected edges

Author:

Liu Yiheng1,Robeva Elina1,Wang Huanqing1

Affiliation:

1. Department of Mathematics, The University of British Columbia , BC V6T 1Z2 , Vancouver , Canada

Abstract

Abstract In this article, we propose a new method to learn the underlying acyclic mixed graph of a linear non-Gaussian structural equation model with given observational data. We build on an algorithm proposed by Wang and Drton, and we show that one can augment the hidden variable structure of the recovered model by learning multidirected edges rather than only directed and bidirected ones. Multidirected edges appear when more than two of the observed variables have a hidden common cause. We detect the presence of such hidden causes by looking at higher order cumulants and exploiting the multi-trek rule. Our method recovers the correct structure when the underlying graph is a bow-free acyclic mixed graph with potential multidirected edges.

Publisher

Walter de Gruyter GmbH

Subject

Statistics, Probability and Uncertainty,Statistics and Probability

Reference15 articles.

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3. Shimizu S, Hoyer PO, Hyvärinen A, Kerminen A. A linear non-Gaussian acyclic model for causal discovery. J Machine Learn Res. 2006;7:2003–30.

4. Shimizu S, Inazumi T, Sogawa Y, Hyvärinen A, Kawahara Y, Washio T, et al. DirectLiNGAM: a direct method for learning a linear non-Gaussian structural equation model. J Machine Learn Res. 2011;12:1225–48.

5. Hyvärinen A, Smith SM. Pairwise likelihood ratios for estimation of non-Gaussian structural equation models. J Machine Learn Res. 2013;14:111–52.

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