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Estimation of directed subnetworks in ultra high dimensional data for gene network problems

Authors
Han, Sung WonKim, SungHwanSeok, JunheeYoon, JeewhanZhong, Hua
Issue Date
2017
Publisher
INT PRESS BOSTON, INC
Keywords
Bayesian network; Directed acyclic graph; Penalized likelihood; High dimension; Subnetworks
Citation
STATISTICS AND ITS INTERFACE, v.10, no.4, pp.657 - 676
Indexed
SCIE
SCOPUS
Journal Title
STATISTICS AND ITS INTERFACE
Volume
10
Number
4
Start Page
657
End Page
676
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/86401
DOI
10.4310/SII.2017.v10.n4.a10
ISSN
1938-7989
Abstract
The next generation sequencing technology generates ultra high dimensional data. However, it is computationally impractical to estimate an entire Directed Acyclic Graph (DAG) under such high dimensionality. In this paper, we discuss two different types of problems to estimate subnetworks in ultra high dimensional data. The first problem is to estimate DAGs of a subnetwork adjacent to a target gene, and the second problem is to estimate DAGs of multiple subnetworks without information about a target gene. To address each problem, we propose efficient methods to estimate subnetworks by using layer-dependent weights with BIC criteria or by using community detection approaches to identify clusters as subnetworks. We apply such approaches to the gene expression data of breast cancer in TCGA as a practical example.
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College of Engineering > School of Industrial and Management Engineering > 1. Journal Articles
College of Engineering > School of Electrical Engineering > 1. Journal Articles
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