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A New Model of Multi-Marker Correlation for Genome-Wide Tag SNP Selection

机译:基因组标签SNP选择的多标记相关模型

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Tag SNP selection is an important problem in computational biology and genetics because a small set of tag SNP markers may help reduce the cost of genotyping and thus genome-wide association studies. Several methods for selecting a smallest possible set of tag SNPs based on different formulations of tag SNP selection (block-based or genome-wide) and mathematical models of marker correlation have been investigated in the literature. In this paper, we propose a new model of multi-marker correlation for genome-wide tag SNP selection, and a simple greedy algorithm to select a smallest possible set of tag SNPs according to the model. Our experimental results on several real datasets from the HapMap project demonstrate that the new model yields more succinct tag SNP sets than the previous methods.
机译:标签SNP选择是计算生物学和遗传学中的重要问题,因为一小组标签SNP标记可能有助于降低基因分型的成本,从而降低基因组 - 范围的协会研究。在文献中研究了基于标签SNP选择(基于嵌段或基因组)和标记相关的数学模型的不同配方选择最小可能的标记SNP的方法。在本文中,我们提出了一种新的基因组标签SNP选择的多标记相关模型,以及简单的贪婪算法,根据模型选择最小可能的标签SNP。我们的实验结果来自HAPMAP项目的几个真实数据集表明,新模型会产生比以前的方法更加简洁的标记SNP组。

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