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贝叶斯方法在 Haseman-Elston 方法中的应用。

A Bayesian approach for applying Haseman-Elston methods.

机构信息

Department of Applied Mathematics and Statistics, State University of New York at Stony Brook, Stony Brook, NY 11794, USA.

出版信息

BMC Genet. 2005 Dec 30;6 Suppl 1(Suppl 1):S39. doi: 10.1186/1471-2156-6-S1-S39.

Abstract

The main goal of this paper is to couple the Haseman-Elston method with a simple yet effective Bayesian factor-screening approach. This approach selects markers by considering a set of multigenic models that include epistasis effects. The markers are ranked based on their marginal posterior probability. A significant improvement over our previously proposed Bayesian variable selection methodology is a simple Metropolis-Hasting algorithm that requires minimum tuning on the prior settings. The algorithm, however, is also flexible enough for us to easily incorporate our hypotheses and avoid computational pitfalls. We apply our approach to the microsatellite data of Collaborative Studies on Genetics of Alcoholism using the coded values for the ALDX1 variable as our response.

摘要

本文的主要目标是将 Haseman-Elston 方法与一种简单而有效的贝叶斯因子筛选方法相结合。该方法通过考虑包含上位效应的多基因模型集来选择标记。根据边际后验概率对标记进行排序。与我们之前提出的贝叶斯变量选择方法相比,这是一个显著的改进,它在先验设置上需要最小的调整。然而,该算法也足够灵活,我们可以轻松地将我们的假设纳入其中,并避免计算上的陷阱。我们将我们的方法应用于酒精中毒遗传学合作研究的微卫星数据,使用 ALDX1 变量的编码值作为我们的响应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1143/1866746/ab5d70db6c07/1471-2156-6-S1-S39-1.jpg

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