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High Order Seismic Simulations on the Intel Xeon Phi Processor (Knights Landing)

机译:英特尔至强融核处理器上的高阶地震模拟(骑士降落)

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We present a holistic optimization of the ADER-DG finite element software SeisSol targeting the Intel~® Xeon Phi™ x200 processor, codenamed Knights Landing (KNL). SeisSol is a multi-physics software package performing earthquake simulations by coupling seismic wave propagation and the rupture process. The code was shown to scale beyond 1.5 million cores and achieved petascale performance when using local time stepping for the computationally heavy seismic wave propagation. Advancing further along these lines, we discuss the utilization of KNL's core features, the exploitation of its two-level memory subsystem (which allows for efficient out-of-core implementations), and optimizations targeting at KNL's 2D mesh on-die interconnect. Our performance comparisons demonstrate that KNL is able to outperform its previous generation, the Intel~® Xeon Phi™ coprocessor x100 family, by more than 2.9× in time-to-solution. Additionally, our results show a 3.4× speedup compared to latest Intel~® Xeon~® E5v3 CPUs.
机译:我们针对代号为Knights Landing(KNL)的英特尔®至强融核™x200处理器,对ADER-DG有限元软件SeisSol进行了全面的优化。 SeisSol是一个多物理软件包,通过耦合地震波传播和破裂过程来执行地震模拟。当使用本地时间步长进行计算繁重的地震波传播时,该代码可扩展到超过150万个内核,并达到PB级性能。沿着这些思路进一步发展,我们讨论了KNL核心功能的利用,其两级内存子系统的利用(允许有效的内核外实现)以及针对KNL的2D网格上管芯互连的优化。我们的性能比较表明,KNL的解决时间要比前一代产品Intel®Xeon Phi™协处理器x100家族高出2.9倍以上。此外,我们的结果表明,与最新的英特尔®至强®E5v3 CPU相比,速度提高了3.4倍。

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