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首页> 外文期刊>Biometrics: Journal of the Biometric Society : An International Society Devoted to the Mathematical and Statistical Aspects of Biology >Nonparametric modeling of longitudinal covariance structure in functional mapping of quantitative trait loci.
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Nonparametric modeling of longitudinal covariance structure in functional mapping of quantitative trait loci.

机译:数量性状基因座功能映射中纵向协方差结构的非参数建模。

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摘要

Estimation of the covariance structure of longitudinal processes is a fundamental prerequisite for the practical deployment of functional mapping designed to study the genetic regulation and network of quantitative variation in dynamic complex traits. We present a nonparametric approach for estimating the covariance structure of a quantitative trait measured repeatedly at a series of time points. Specifically, we adopt Huang et al.'s (2006, Biometrika 93, 85-98) approach of invoking the modified Cholesky decomposition and converting the problem into modeling a sequence of regressions of responses. A regularized covariance estimator is obtained using a normal penalized likelihood with an L(2) penalty. This approach, embedded within a mixture likelihood framework, leads to enhanced accuracy, precision, and flexibility of functional mapping while preserving its biological relevance. Simulation studies are performed to reveal the statistical properties and advantages of the proposed method. A real example from a mouse genome project is analyzed to illustrate the utilization of the methodology. The new method will provide a useful tool for genome-wide scanning for the existence and distribution of quantitative trait loci underlying a dynamic trait important to agriculture, biology, and health sciences.
机译:纵向过程的协方差结构的估计是功能图谱实际部署的基本前提,该功能图谱旨在研究动态复杂性状的遗传调控和数量变异的网络。我们提出了一种非参数方法,用于估计在一系列时间点重复测量的定量性状的协方差结构。具体而言,我们采用Huang等人(2006,Biometrika 93,85-98)的方法,该方法调用了改进的Cholesky分解并将问题转换为对响应回归序列进行建模的方法。使用具有L(2)罚分的正常惩罚似然性来获得正则化协方差估计量。嵌入混合可能性框架中的此方法可提高功能映射的准确性,准确性和灵活性,同时保留其生物学相关性。仿真研究表明了该方法的统计特性和优点。分析了一个来自小鼠基因组计划的真实示例,以说明该方法的利用。该新方法将为全基因组扫描提供定量特征基因座的存在和分布的有用工具,该定量特征基因座是对农业,生物学和健康科学重要的动态特征。

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