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Optimizing Purdue-Lin Microphysics Scheme for Intel Xeon Phi Coprocessor

机译:优化英特尔至强融核协处理器的Purdue-Lin微物理方案

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Due to severe weather events, there is a growing need for more accurate weather predictions. Climate change has increased both frequency and severity of such events. Optimizing weather model source code would result in reduced run times or more accurate weather predictions. One such weather model is the weather research and forecasting (WRF) model, which is designed for both numerical weather prediction (NWP) and atmospheric research. The WRF software infrastructure consists of several components such as dynamic solvers and physics schemes. Purdue-Lin scheme is a relatively sophisticated microphysics scheme in the WRF model. The scheme includes six classes of hydro meteors: 1) water vapor; 2) cloud water; 3) raid; 4) cloud ice; 5) snow; and 6) graupel. The scheme is very suitable for massively parallel computation as there are no interactions among horizontal grid points. Thus, we present our optimization results for the Purdue-Lin microphysics scheme. Those optimizations included improved vectorization of the code to utilize multiple vector units inside each processor code better. Performed optimizations improved the performance of the original unmodified Purdue-Lin microphysics code running natively on Xeon Phi 7120P by a factor of . Similarly, the same optimizations improved the performance of the Purdue-Lin microphysics scheme on a dual socket configuration of eight core Intel Xeon E5-2670 CPUs by a factor of compared to the original code.
机译:由于严重的天气事件,越来越需要更准确的天气预报。气候变化增加了此类事件的发生频率和严重性。优化天气模型源代码将减少运行时间或更准确的天气预报。一种这样的天气模型是天气研究和预报(WRF)模型,其设计用于数值天气预报(NWP)和大气研究。 WRF软件基础结构由几个组件组成,例如动态求解器和物理方案。 Purdue-Lin方案是WRF模型中相对复杂的微物理方案。该计划包括六类水流星:1)水蒸气; 2)云水; 3) 4)云冰; 5)雪;和6)graupel。该方案非常适合大规模并行计算,因为水平网格点之间没有交互。因此,我们提出了普渡-林微物理方案的优化结果。这些优化包括改进的代码矢量化,以更好地利用每个处理器代码内的多个矢量单元。执行的优化将在Xeon Phi 7120P上本地运行的原始未经修改的Purdue-Lin微物理学代码的性能提高了1/3倍。同样,相同的优化方法在八核Intel Xeon E5-2670 CPU的双插槽配置上提高了Purdue-Lin微物理方案的性能,与原始代码相比提高了一个系数。

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