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Title:

Causal Structural Learning via Local Graphs

Document type:
Zeitschriftenaufsatz
Author(s):
Chen, Wenyu; Drton, Mathias; Shojaie, Ali
Abstract:
We consider the problem of learning causal structures in sparse high-dimensional settings that may be subject to the presence of (potentially many) unmeasured confounders, as well as selection bias. Based on structure found in common families of large random networks, we propose a new local notion of sparsity for structure learning in the presence of latent and selection variables, and develop a new version of the fast causal inference (FCI) algorithm, which we refer to as local FCI (lFCI). Unde...     »
Keywords:
causal inference; structural learning; graphical models; latent variable; high dimensional; algorithm
Dewey Decimal Classification:
510 Mathematik
Journal title:
SIAM Journal on Mathematics of Data Science
Year:
2023
Journal volume:
5
Year / month:
2023-05
Quarter:
2. Quartal
Month:
May
Journal issue:
2
Pages contribution:
280-305
Language:
en
Fulltext / DOI:
doi:10.1137/20m1362796
Publisher:
Society for Industrial & Applied Mathematics (SIAM)
E-ISSN:
2577-0187
Date of publication:
12.05.2023
Semester:
SS 23
TUM Institution:
Lehrstuhl für Mathematische Statistik
Format:
Text
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