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Exploration and comparison of methods for combining population- and family-based genetic association using the Genetic Analysis Workshop 17 mini-exome

机译:探索和比较使用遗传分析研讨会17小型外显子组结合基于人口和家庭的遗传关联的方法

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We examine the performance of various methods for combining family- and population-based genetic association data. Several approaches have been proposed for situations in which information is collected from both a subset of unrelated subjects and a subset of family members. Analyzing these samples separately is known to be inefficient, and it is important to determine the scenarios for which differing methods perform well. Others have investigated this question; however, no extensive simulations have been conducted, nor have these methods been applied to mini-exome-style data such as that provided by Genetic Analysis Workshop 17. We quantify the empirical power and false-positive rates for three existing methods applied to the Genetic Analysis Workshop 17 mini-exome data and compare relative performance. We use knowledge of the underlying data simulation model to make these assessments.
机译:我们研究了各种基于家庭和群体的遗传关联数据相结合的方法的性能。对于从不相关主题的子集和家庭成员的子集中收集信息的情况,已经提出了几种方法。众所周知,分别分析这些样本效率不高,因此,确定不同方法效果良好的方案非常重要。其他人已经调查了这个问题。但是,没有进行广泛的模拟,也没有将这些方法应用于小型外显子形式的数据,例如遗传分析研讨会17提供的数据。我们量化了应用于遗传学的三种现有方法的经验能力和假阳性率Analysis Workshop 17个微型外显子组数据并比较相对性能。我们使用基础数据模拟模型的知识来进行这些评估。

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