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GIGI-Quick: a fast approach to impute missing genotypes in genome-wide association family data

机译:GIGI-Quick:一种在全基因组关联家族数据中估算缺失基因型的快速方法

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摘要

SummaryGenome-wide association studies have become common over the last ten years, with a shift towards targeting rare variants, especially in pedigree-data. Despite lower costs, sequencing for rare variants still remains expensive. To have a relatively large sample with acceptable cost, imputation approaches may be used, such as GIGI for pedigree data. GIGI is an imputation method that handles large pedigrees and is particularly good for rare variant imputation. GIGI requires a subset of individuals in a pedigree to be fully sequenced, while other individuals are sequenced only at relevant markers. The imputation will infer the missing genotypes at untyped markers. Running GIGI on large pedigrees for large numbers of markers can be very time consuming. We present GIGI-Quick as a method to efficiently split GIGI’s input, run GIGI in parallel and efficiently merge the output to reduce the runtime with the number of cores. This allows obtaining imputation results faster, and therefore all subsequent association analyses.
机译:总结在过去的十年中,全基因组关联研究变得很普遍,并且已经转向针对稀有变体的研究,尤其是在系谱数据中。尽管成本较低,但罕见变体的测序仍然很昂贵。为了以可接受的成本获得相对较大的样本,可以使用插补方法,例如GIGI用于谱系数据。 GIGI是一种处理方法,可处理较大的谱系,尤其适用于稀有变异插补。 GIGI要求谱系中的一部分个体被完全测序,而其他个体仅在相关标记处进行测序。推算将推断出未分型标记缺失的基因型。在大型谱系上运行GIGI来获取大量标记可能非常耗时。我们将GIGI-Quick作为一种有效分割GIGI输入,并行运行GIGI并有效合并输出以减少运行时间和内核数量的方法。这允许更快地获得插补结果,因此可以进行所有后续关联分析。

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