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Virtual LANS Seminar: Rebecca Morrison
May 20, 2020 @ 10:30 CDT
Seminar Title: Learning Sparse Non-Gaussian Graphical Models
Speaker: Rebecca Morrison, Assistant Professor, University of Colorado
Date/Time: 2020-05-20 10:30
Location: Virtual
Description:
Identification and exploitation of a sparse undirected graphical model (UGM) can simplify inference and prediction processes, illuminate previously unknown variable relationships, and even decouple multi-domain computational models. In the continuous realm, the UGM corresponding to a Gaussian data set is equivalent to the non-zero entries of the inverse covariance matrix. However, this correspondence no longer holds when the data is non-Gaussian. In this talk, we explore a recently developed algorithm called SING (Sparsity Identification of Non-Gaussian distributions), which identifies edges using Hessian information of the log density. Various data sets are examined, with sometimes surprising results about the nature of non-Gaussianity.