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Enhancements to the ADMIXTURE algorithm for individual ancestry estimation

机译:ADMIXTURE算法的增强,用于单个祖先估计

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Background The estimation of individual ancestry from genetic data has become essential to applied population genetics and genetic epidemiology. Software programs for calculating ancestry estimates have become essential tools in the geneticist's analytic arsenal. Results Here we describe four enhancements to ADMIXTURE, a high-performance tool for estimating individual ancestries and population allele frequencies from SNP (single nucleotide polymorphism) data. First, ADMIXTURE can be used to estimate the number of underlying populations through cross-validation. Second, individuals of known ancestry can be exploited in supervised learning to yield more precise ancestry estimates. Third, by penalizing small admixture coefficients for each individual, one can encourage model parsimony, often yielding more interpretable results for small datasets or datasets with large numbers of ancestral populations. Finally, by exploiting multiple processors, large datasets can be analyzed even more rapidly. Conclusions The enhancements we have described make ADMIXTURE a more accurate, efficient, and versatile tool for ancestry estimation.
机译:背景技术从遗传数据估计个人血统已经成为应用人群遗传学和遗传流行病学的必要条件。用于计算血统估计值的软件程序已成为遗传学家分析武库中必不可少的工具。结果在这里,我们描述了ADMIXTURE的四项增强功能,这是一种用于从SNP(单核苷酸多态性)数据估算个体祖先和种群等位基因频率的高性能工具。首先,可以使用ADMIXTURE通过交叉验证来估计基础群体的数量。第二,可以在有监督的学习中利用已知血统的个人来获得更精确的血统估计。第三,通过惩罚每个人小的混合系数,可以鼓励模型简约,对于小型数据集或具有大量祖先种群的数据集,通常会产生更多可解释的结果。最后,通过利用多个处理器,可以更快地分析大型数据集。结论我们所描述的增强功能使ADMIXTURE成为了更加准确,有效和通用的祖先估计工具。

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