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Cited 2 time in webofscience Cited 2 time in scopus
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Bayesian curve fitting and clustering with Dirichlet process mixture models for microarray data

Authors
Park, Ju-HyunKyung, Minjung
Issue Date
Jun-2019
Publisher
KOREAN STATISTICAL SOC
Keywords
Temporal cyclic gene expression profiles; Dirichlet process mixture; Fourier series; Variable selection; Label-switching; Adjusted Rand index
Citation
JOURNAL OF THE KOREAN STATISTICAL SOCIETY, v.48, no.2, pp 207 - 220
Pages
14
Indexed
SCIE
SCOPUS
KCI
Journal Title
JOURNAL OF THE KOREAN STATISTICAL SOCIETY
Volume
48
Number
2
Start Page
207
End Page
220
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/8068
DOI
10.1016/j.jkss.2018.11.002
ISSN
1226-3192
1876-4231
Abstract
In the field of molecular biology, it is often of interest to analyze microarray data for clustering genes based on similar profiles of gene expression to identify genes that are differentially expressed under multiple biological conditions. One of the notable characteristics of a gene expression profile is that it shows a cyclic curve over a course of time. To group sequences of similar molecular functions, we propose a Bayesian Dirichlet process mixture of linear regression models with a Fourier series for the regression coefficients, for each of which a spike and slab prior is assumed. A full Gibbs-sampling algorithm is developed for an efficient Markov chain Monte Carlo (MCMC) posterior computation. Due to the so-called "label-switching" problem and different numbers of clusters during the MCMC computation, a post-process approach of Fritsch and Ickstadt (2009) is additionally applied to MCMC samples for an optimal single clustering estimate by maximizing the posterior expected adjusted Rand index with the posterior probabilities of two observations being clustered together. The proposed method is illustrated with two simulated data and one real data of the physiological response of fibroblasts to serum of lyer et al. (1999). (C) 2018 The Korean Statistical Society. Published by Elsevier B.V. All rights reserved.
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