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参数加速失效时间模型的统计优化及其在生存特征基因座定位中的应用。

Statistical optimization of parametric accelerated failure time model for mapping survival trait loci.

机构信息

Crop Breeding and Cultivation Research Institute, Shanghai Academy of Agricultural Sciences, Shanghai, People's Republic of China.

出版信息

Theor Appl Genet. 2011 Mar;122(5):855-63. doi: 10.1007/s00122-010-1491-6. Epub 2010 Nov 25.

Abstract

Most existing statistical methods for mapping quantitative trait loci (QTL) are not suitable for analyzing survival traits with a skewed distribution and censoring mechanism. As a result, researchers incorporate parametric and semi-parametric models of survival analysis into the framework of the interval mapping for QTL controlling survival traits. In survival analysis, accelerated failure time (AFT) model is considered as a de facto standard and fundamental model for data analysis. Based on AFT model, we propose a parametric approach for mapping survival traits using the EM algorithm to obtain the maximum likelihood estimates of the parameters. Also, with Bayesian information criterion (BIC) as a model selection criterion, an optimal mapping model is constructed by choosing specific error distributions with maximum likelihood and parsimonious parameters. Two real datasets were analyzed by our proposed method for illustration. The results show that among the five commonly used survival distributions, Weibull distribution is the optimal survival function for mapping of heading time in rice, while Log-logistic distribution is the optimal one for hyperoxic acute lung injury.

摘要

大多数现有的定位数量性状基因座 (QTL) 的统计方法并不适用于分析具有偏态分布和删失机制的生存性状。因此,研究人员将生存分析的参数和半参数模型纳入到控制生存性状的区间作图框架中。在生存分析中,加速失效时间 (AFT) 模型被认为是数据分析的事实上的标准和基本模型。基于 AFT 模型,我们提出了一种使用 EM 算法进行生存性状映射的参数方法,以获得参数的最大似然估计。此外,我们还以贝叶斯信息准则 (BIC) 作为模型选择标准,通过选择具有最大似然和简约参数的特定误差分布来构建最优的映射模型。通过我们提出的方法对两个真实数据集进行了分析。结果表明,在五种常用的生存分布中,Weibull 分布是用于水稻抽穗期映射的最优生存函数,而 Log-logistic 分布是用于高氧性急性肺损伤映射的最优分布。

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