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Discriminant analysis of principal components: a new method for the analysis of genetically structured populations

机译:主成分判别分析:一种分析遗传结构种群的新方法

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摘要

BackgroundThe dramatic progress in sequencing technologies offers unprecedented prospects for deciphering the organization of natural populations in space and time. However, the size of the datasets generated also poses some daunting challenges. In particular, Bayesian clustering algorithms based on pre-defined population genetics models such as the STRUCTURE or BAPS software may not be able to cope with this unprecedented amount of data. Thus, there is a need for less computer-intensive approaches. Multivariate analyses seem particularly appealing as they are specifically devoted to extracting information from large datasets. Unfortunately, currently available multivariate methods still lack some essential features needed to study the genetic structure of natural populations.
机译:背景技术测序技术的巨大进步为破译时空中自然种群的组织提供了空前的前景。但是,生成的数据集的大小也带来了一些艰巨的挑战。尤其是,基于预定义的种群遗传模型(例如STRUCTURE或BAPS软件)的贝叶斯聚类算法可能无法应对这种空前的数据量。因此,需要较少计算机密集型方法。多元分析似乎特别吸引人,因为它们专门用于从大型数据集中提取信息。不幸的是,当前可用的多元方法仍然缺乏研究自然种群遗传结构所需的一些基本特征。

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