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Bayesian Semiparametric Model for Pathway-Based Analysis with Zero-Inflated Clinical Outcomes

Publication ,  Journal Article
Cheng, L; Kim, I; Pang, H
Published in: Journal of Agricultural Biological and Environmental Statistics
December 1, 2016

In this paper, we propose a semiparametric regression approach for identifying pathways related to zero-inflated clinical outcomes, where a pathway is a gene set derived from prior biological knowledge. Our approach is developed by using a Bayesian hierarchical framework. We model the pathway effect nonparametrically into a zero-inflated Poisson hierarchical regression model with an unknown link function. Nonparametric pathway effect was estimated via a kernel machine, and the unknown link function was estimated by transforming a mixture of the beta cumulative density function. Our approach provides flexible nonparametric settings to describe the complicated association between gene expressions and zero-inflated clinical outcomes. The Metropolis-within-Gibbs sampling algorithm and Bayes factor were adopted to make statistical inferences. Our simulation results support that our semiparametric approach is more accurate and flexible than zero-inflated Poisson regression with the canonical link function, which is especially true when the number of genes is large. The usefulness of our approach is demonstrated through its applications to the Canine data set from Enerson et al. (Toxicol Pathol 34:27–32, 2006). Our approach can also be applied to other settings where a large number of highly correlated predictors are present. Supplementary materials accompanying this paper appear on-line.

Duke Scholars

Published In

Journal of Agricultural Biological and Environmental Statistics

DOI

EISSN

1537-2693

ISSN

1085-7117

Publication Date

December 1, 2016

Volume

21

Issue

4

Start / End Page

641 / 662

Related Subject Headings

  • Statistics & Probability
  • 49 Mathematical sciences
  • 41 Environmental sciences
  • 31 Biological sciences
  • 06 Biological Sciences
  • 05 Environmental Sciences
  • 01 Mathematical Sciences
 

Citation

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Cheng, L., Kim, I., & Pang, H. (2016). Bayesian Semiparametric Model for Pathway-Based Analysis with Zero-Inflated Clinical Outcomes. Journal of Agricultural Biological and Environmental Statistics, 21(4), 641–662. https://doi.org/10.1007/s13253-016-0264-3
Cheng, L., I. Kim, and H. Pang. “Bayesian Semiparametric Model for Pathway-Based Analysis with Zero-Inflated Clinical Outcomes.” Journal of Agricultural Biological and Environmental Statistics 21, no. 4 (December 1, 2016): 641–62. https://doi.org/10.1007/s13253-016-0264-3.
Cheng L, Kim I, Pang H. Bayesian Semiparametric Model for Pathway-Based Analysis with Zero-Inflated Clinical Outcomes. Journal of Agricultural Biological and Environmental Statistics. 2016 Dec 1;21(4):641–62.
Cheng, L., et al. “Bayesian Semiparametric Model for Pathway-Based Analysis with Zero-Inflated Clinical Outcomes.” Journal of Agricultural Biological and Environmental Statistics, vol. 21, no. 4, Dec. 2016, pp. 641–62. Scopus, doi:10.1007/s13253-016-0264-3.
Cheng L, Kim I, Pang H. Bayesian Semiparametric Model for Pathway-Based Analysis with Zero-Inflated Clinical Outcomes. Journal of Agricultural Biological and Environmental Statistics. 2016 Dec 1;21(4):641–662.
Journal cover image

Published In

Journal of Agricultural Biological and Environmental Statistics

DOI

EISSN

1537-2693

ISSN

1085-7117

Publication Date

December 1, 2016

Volume

21

Issue

4

Start / End Page

641 / 662

Related Subject Headings

  • Statistics & Probability
  • 49 Mathematical sciences
  • 41 Environmental sciences
  • 31 Biological sciences
  • 06 Biological Sciences
  • 05 Environmental Sciences
  • 01 Mathematical Sciences