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A domain decomposition method of stochastic PDEs: An iterative solution techniques using a two-level scalable preconditioner

机译:随机PDE的域分解方法:使用两级可伸缩预处理器的迭代求解技术

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摘要

Recent advances in high performance computing systems and sensing technologies motivate computational simulations with extremely high resolution models with capa- bilities to quantify uncertainties for credible numerical predictions. A two-level domain decomposition method is reported in this investigation to devise a linear solver for the large-scale system in the Galerkin spectral stochastic finite element method (SSFEM). In particular, a two-level scalable preconditioner is introduced in order to iteratively solve the large-scale linear system in the intrusive SSFEM using an iterative substructuring based domain decomposition solver. The implementation of the algorithm involves solving a local problem on each subdomain that constructs the local part of the preconditioner and a coarse problem that propagates information globally among the subdomains. The numerical and parallel scalabilities of the two-level preconditioner are contrasted with the previously developed one-level preconditioner for two-dimensional flow through porous media and elasticity problems with spatially varying non-Gaussian material properties. A distributed implementation of the parallel algorithm is carried out using MPI and PETSc parallel libraries. The scalabilities of the algorithm are investigated in a Linux cluster.
机译:高性能计算系统和传感技术的最新进展推动了具有超高分辨率模型的计算仿真,该模型具有对可靠的数值预测进行量化的能力。本研究报告了一种两级域分解方法,旨在为Galerkin谱随机有限元方法(SSFEM)设计大型系统的线性求解器。尤其是,引入了两级可伸缩预处理器,以便使用基于迭代子结构的域分解求解器来迭代求解SSFEM中的大规模线性系统。该算法的实现涉及解决构造预调节器的本地部分的每个子域上的局部问题以及在子域之间全局传播信息的粗糙问题。两级预处理器的数值和并行可扩展性与先前开发的用于通过多孔介质的二维流动和具有空间变化的非高斯材料特性的弹性问题的一级预处理器形成对比。并行算法的分布式实现是使用MPI和PETSc并行库进行的。在Linux集群中研究了该算法的可扩展性。

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