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Weighted Score Tests Implementing Model-Averaging Schemes in Detection of Rare Variants in Case-Control Studies

机译:在案例对照研究中实施分数平均测试的加权平均分测试用于检测稀有变异

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摘要

Multi-locus effect modeling is a powerful approach for detection of genes influencing a complex disease. Especially for rare variants, we need to analyze multiple variants together to achieve adequate power for detection. In this paper, we propose several parsimonious branching model techniques to assess the joint effect of a group of rare variants in a case-control study. These models implement a data reduction strategy within a likelihood framework and use a weighted score test to assess the statistical significance of the effect of the group of variants on the disease. The primary advantage of the proposed approach is that it performs model-averaging over a substantially smaller set of models supported by the data and thus gains power to detect multi-locus effects. We illustrate these proposed approaches on simulated and real data and study their performance compared to several existing rare variant detection approaches. The primary goal of this paper is to assess if there is any gain in power to detect association by averaging over a number of models instead of selecting the best model. Extensive simulations and real data application demonstrate the advantage the proposed approach in presence of causal variants with opposite directional effects along with a moderate number of null variants in linkage disequilibrium.
机译:多位点效应建模是检测影响复杂疾病的基因的强大方法。特别是对于稀有变体,我们需要一起分析多个变体,以实现足够的检测能力。在本文中,我们提出了几种简约的分支模型技术,以评估病例对照研究中一组罕见变体的联合作用。这些模型在可能性框架内实施数据减少策略,并使用加权得分检验来评估该变体组对疾病的影响的统计学意义。所提出的方法的主要优点是,它对数据支持的实质上较小的一组模型执行模型平均,从而获得检测多位点效应的能力。我们用模拟和真实数据说明了这些提议的方法,并与几种现有的稀有变异检测方法相比,研究了它们的性能。本文的主要目标是通过对多个模型求平均值而不是选择最佳模型来评估检测关联的能力是否有所提高。大量的仿真和实际数据应用证明了所提出的方法在存在具有相反方向效应的因果变体以及连锁不平衡中存在中等数量的空变体的情况下所提出的方法的优势。

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