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Title:

High-Dimensional Undirected Graphical Models for Arbitrary Mixed Data

Document type:
Zeitschriftenaufsatz
Author(s):
Göbler, Konstantin; Miloschewski, Anne; Drton, Mathias; Mukherjee, Sach
Abstract:
Graphical models are an important tool in exploring relationships between variables in complex, multivariate data. Methods for learning such graphical models are well developed in the case where all variables are either continuous or discrete, including in high-dimensions. However, in many applications data span variables of different types (e.g. continuous, count, binary, ordinal, etc.), whose principled joint analysis is nontrivial. Latent Gaussian copula models, in which all variables are mod...     »
Dewey Decimal Classification:
510 Mathematik
Journal title:
Preprint
Year:
2022
Language:
en
Fulltext / DOI:
doi:10.48550/ARXIV.2211.11700
Publisher:
arXiv
Status:
Preprint / submitted
Date of publication:
21.11.2022
Semester:
WS 22-23
TUM Institution:
Lehrstuhl für Mathematische Statistik
Format:
Text
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