作者
Jiang Gui, Angeline S Andrew, Peter Andrews, Heather M Nelson, Karl T Kelsey, Margaret R Karagas, Jason H Moore
发表日期
2011/1
期刊
Annals of human genetics
卷号
75
期号
1
页码范围
20-28
出版商
Blackwell Publishing Ltd
简介
A central goal of human genetics is to identify susceptibility genes for common human diseases. An important challenge is modelling gene–gene interaction or epistasis that can result in nonadditivity of genetic effects. The multifactor dimensionality reduction (MDR) method was developed as a machine learning alternative to parametric logistic regression for detecting interactions in the absence of significant marginal effects. The goal of MDR is to reduce the dimensionality inherent in modelling combinations of polymorphisms using a computational approach called constructive induction. Here, we propose a Robust Multifactor Dimensionality Reduction (RMDR) method that performs constructive induction using a Fisher's Exact Test rather than a predetermined threshold. The advantage of this approach is that only statistically significant genotype combinations are considered in the MDR analysis. We use simulation …
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