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Development of the GPU-based Stony-Brook University 5-class Microphysics Scheme in the Weather Research and Forecasting Model

机译:基于GPU的石质石 - Brook大学5级微神科方案的发展在天气研究和预测模型中

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Several bulk water microphysics schemes are available within the Weather Research and Forecasting (WRF) model, with different numbers of simulated hydrometeor classes and methods for estimating their size fall speeds, distributions and densities. Stony-Brook University (SBU-YLIN) microphysics scheme is a 5-class scheme with riming intensity predicted to account for mixed-phase processes. In this paper, we develop an efficient graphics processing unit (GPU) based SBU-YLIN scheme. The GPU-based SBU-YLIN scheme will be compared to a CPU-based single-threaded counterpart. The implementation achieves 213x speedup with I/O compared to a Fortran implementation running on a CPU. Without I/O the speedup is 896x.
机译:在天气研究和预测(WRF)模型中提供了几种散装水分微型药物方法,具有不同数量的模拟水流仪表和估算其大小的落速,分布和密度的方法。 Stony-Brook University(SBU-Ylin)微妙的方案是一个5级方案,预测混合阶段的灵感强度。在本文中,我们开发了基于SBU-Ylin方案的高效图形处理单元(GPU)。将与基于GPU的SBU-Ylin方案进行比较,将与基于CPU的单线程对应物进行比较。与CPU上运行的FORTRAN实现相比,该实现与I / O相比,实现了213倍的加速。没有I / O的加速是896x。

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