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Optimization of Geometric Multigrid for Emerging Multi- and Manycore Processors

机译:用于新兴多核和多功能处理器的几何多重资源优化

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Multigrid methods are widely used to accelerate the convergence of iterative solvers for linear systems used in a number of different application areas. In this paper, we explore optimization techniques for geometric multigrid on existing and emerging multicore systems including the Opteron-based Cray XE6, Intel Xeon E5-2670 and X5550 processor-based Infiniband clusters, as well as the new Intel Xeon TM Phi coprocessor (Knights Corner). Our work examines a variety of novel techniques including communication-aggregation, threaded wavefront-based DRAM communication-avoiding, dynamic threading decisions, SIMDization, and fusion of operators. We quantify performance through each phase of the V-cycle for both single-node and distributed-memory experiments and provide detailed analysis for each class of optimization. Results show our optimizations yield significant speedups across a variety of subdomain sizes while simultaneously demonstrating the potential of multi- and manycore processors to dramatically accelerate single-node performance. However, our analysis also indicates that improvements in networks and communication will be essential to reap the potential of manycore processors in large-scale multigrid calculations.
机译:多型方法广泛用于加速迭代溶剂的收敛,用于多种不同应用领域的线性系统。在本文中,我们探索了现有和新兴的多核系统上的几何Multicorig资源,包括Opteron的Cray XE6,英特尔Xeon E5-2670和X5550基于处理器的Infiniband集群,以及新英特尔Xeon TM Phi Coprocessor(骑士角落)。我们的工作检查了各种新颖的技术,包括通信聚合,基于线程的波前的DRAM通信 - 避免动态线程决策,叠加和运营商的融合。我们通过V-循环的每个阶段来量化性能,用于单节点和分布式存储器实验,并为每种优化提供详细分析。结果表明我们的优化在各种子域大小上产生了显着的加速,同时展示了多核和多核处理器的潜力,以大大加速单节点性能。但是,我们的分析还表明网络和通信的改进将在大规模多重资源计算中获得多核处理器的潜力至关重要。

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