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Impact of Quad-Core Cray XT4 System and Software Stack on Scientific Computation

机译:四核Cray XT4系统和软件堆栈对科学计算的影响

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An upgrade from dual-core to quad-core AMD processor on the Cray XT system at the Oak Ridge National Laboratory (ORNL) Leadership Computing Facility (LCF) has resulted in significant changes in the hardware and software stack, including a deeper memory hierarchy, SIMD instructions and a multi-core aware MPI library. In this paper, we evaluate impact of a subset of these key changes on large-scale scientific applications. We will provide insights into application tuning and optimization process and report on how different strategies yield varying rates of successes and failures across different application domains. For instance, we demonstrate that the vectorization instructions (SSE) provide a performance boost of as much as 50% on fusion and combustion applications. Moreover, we reveal how the resource contentions could limit the achievable performance and provide insights into how application could exploit Petascale XT5 system's hierarchical parallelism.
机译:在橡树岭国家实验室(ORNL)领导计算设施(LCF)的Cray XT系统上从双核到四核AMD处理器的升级导致硬件和软件堆栈中的显着变化,包括更深的内存层次结构, SIMD指令和多核感知MPI库。在本文中,我们评估了这些关键变化的子集对大规模科学应用的影响。我们将向应用调整和优化过程提供见解,并报告不同的策略如何产生不同应用领域的不同成功和失败率。例如,我们证明了矢量化指令(SSE)在融合和燃烧应用上提供了多达50%的性能提升。此外,我们揭示了资源争议如何限制可实现的性能,并提供申请如何利用PetaScale XT5系统的分层并行性的洞察。

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