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Asymptotic test of mixture model and its applications to QTL interval mapping
Authors:Dong-Yun Kim  Yuehua Cui  Ou Zhao
Institution:1. Department of Statistics, Virginia Tech, Blacksburg, VA, USA;2. Department of Psychiatry and Behavioral Medicine, Virginia Tech Carilion School of Medicine, Roanok, VA, USA;3. Department of Statistics and Probability, Michigan State University, East Lansing, MI48824, USA;4. School of Economics, Wuh an University of Technology, Wuhan Hubei 430070, China;5. Department of Statistics, University of South Carolina, Columbia, SC 29208, USA
Abstract:Quantitative trait loci (QTL) mapping has been a standard means in identifying genetic regions harboring potential genes underlying complex traits. Likelihood ratio test (LRT) has been commonly applied to assess the significance of a genetic locus in a mixture model content. Given the time constraint in commonly used permutation tests to assess the significance of LRT in QTL mapping, we study the behavior of the LRT statistic in mixture model when the proportions of the distributions are unknown. We found that the asymptotic null distribution is stationary Gaussian process after suitable transformation. The result can be applied to one-parameter exponential family mixture model. Under certain condition, such as in a backcross mapping model, the tail probability of the supremum of the process is calculated and the threshold values can be determined by solving the distribution function. Simulation studies were performed to evaluate the asymptotic results.
Keywords:QTL interval mapping  Likelihood ratio test  Mixture model  Local asymptotic normality  Gaussian process
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