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An Efficient and Scalable Implementation of SNP-Pair Interaction Testing for Genetic Association Studies

机译:遗传关联研究的SNP对交互测试的高效和可扩展性实现

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This paper describes a scalable approach to one of the most computationally intensive problems in molecular plant breeding, that of associating quantitative traits with genetic markers. The fundamental problem is to build statistical correlations between particular loci in the genome of an individual plant and the expressed characteristics of that individual. While applied to plants in this paper, the problem generalizes to mapping genotypes to phenotypes across all biology. In this work, a formulation of a statistical approach for identifying pairwise interactions is presented. The implementation, optimization and parallelization of this approach are then presented, with scalability results.
机译:本文介绍了分子植物育种中最具计算密集型问题之一的可扩展方法,即将定量性状与遗传标记相关联。基本问题是在个体植物基因组中构建特定基因座之间的统计相关性和该个体的表达特征。在本文应用于植物的同时,问题推广以将基因型映射到所有生物学的表型。在这项工作中,提出了一种用于识别用于识别成对交互的统计方法的制定。然后呈现这种方法的实现,优化和并行化,具有可伸缩性结果。

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