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Advanced Complex Trait Analysis

机译:高级复杂特征分析

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Motivation: The Genome-wide Complex Trait Analysis (GCTA) software package can quantify the contribution of genetic variation to phenotypic variation for complex traits. However, as those datasets of interest continue to increase in size, GCTA becomes increasingly computationally prohibitive. We present an adapted version, Advanced Complex Trait Analysis (ACTA), demonstrating dramatically improved performance. Results: We restructure the genetic relationship matrix (GRM) estimation phase of the code and introduce the highly optimized parallel Basic Linear Algebra Subprograms (BLAS) library combined with manual parallelization and optimization. We introduce the Linear Algebra PACKage (LAPACK) library into the restricted maximum likelihood (REML) analysis stage. For a test case with 8999 individuals and 279 435 single nucleotide polymorphisms (SNPs), we reduce the total runtime, using a compute node with two multi-core Intel Nehalem CPUs, from ~17 h to ~11 min.
机译:动机:全基因组复杂性状分析(GCTA)软件包可以量化复杂性状的遗传变异对表型变异的贡献。但是,随着那些感兴趣的数据集的大小不断增加,GCTA在计算上变得越来越禁止。我们提出了一种改进版本,即高级复杂性状分析(ACTA),展示了性能的显着提高。结果:我们重组了代码的遗传关系矩阵(GRM)估计阶段,并引入了高度优化的并行基本线性代数子程序(BLAS)库,并结合了手动并行化和优化。我们将线性代数包(LAPACK)库引入受限最大似然(REML)分析阶段。对于具有8999个个体和279435个单核苷酸多态性(SNP)的测试用例,我们使用带有两个多核Intel Nehalem CPU的计算节点将总运行时间从大约17小时减少到大约11分钟。

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