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Use of direct and iterative solvers for estimation of SNP effects in genome-wide selection

机译:使用直接和迭代求解器估算全基因组选择中的SNP效应

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摘要

The aim of this study was to compare iterative and direct solvers for estimation of marker effects in genomic selection. One iterative and two direct methods were used: Gauss-Seidel with Residual Update, Cholesky Decomposition and Gentleman-Givens rotations. For resembling different scenarios with respect to number of markers and of genotyped animals, a simulated data set divided into 25 subsets was used. Number of markers ranged from 1,200 to 5,925 and number of animals ranged from 1,200 to 5,865. Methods were also applied to real data comprising 3081 individuals genotyped for 45181 SNPs. Results from simulated data showed that the iterative solver was substantially faster than direct methods for larger numbers of markers. Use of a direct solver may allow for computing (co)variances of SNP effects. When applied to real data, performance of the iterative method varied substantially, depending on the level of ill-conditioning of the coefficient matrix. From results with real data, Gentleman-Givens rotations would be the method of choice in this particular application as it provided an exact solution within a fairly reasonable time frame (less than two hours). It would indeed be the preferred method whenever computer resources allow its use.
机译:这项研究的目的是比较迭代求解器和直接求解器,以评估基因组选择中的标记效应。使用了一种迭代方法和两种直接方法:具有残差更新的Gauss-Seidel,Cholesky分解和Gentleman-Givens旋转。为了类似于标记物和基因型动物数量的不同情况,使用了分为25个子集的模拟数据集。标记物的数量为1200至5,925,动物数量为1,200至5,865。方法也应用于包含30181个个体的45181个SNP基因型的真实数据。模拟数据的结果表明,对于大量标记,迭代求解器比直接方法要快得多。使用直接求解器可以计算SNP效应的(协)方差。当应用于实际数据时,迭代方法的性能会发生很大变化,具体取决于系数矩阵的不良状态。从实际数据的结果来看,Gentleman-Givens旋转将是此特定应用程序的首选方法,因为它在相当合理的时间范围内(不到两个小时)提供了精确的解决方案。只要计算机资源允许使用它,它的确是首选方法。

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