Comparing scalable programming techniques for weather prediction

B. Rodriguez, L. Hart, T. Henderson
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引用次数: 3

Abstract

In this paper we study the of issues of programmability and performance in the parallelization of weather prediction models. We compare parallelization using a high level library (the Nearest Neighbor Tool: NNT) and a high level language/directive approach (High Performance Fortran: HPF). We report on the performance of a complete weather prediction model (the Rapid Update Cycle, which is currently run operationally at the National Meteorological Center at Washington) coded using NNT. We quantify the performance effects of optimizations possible with NNT that must be performed by an HPF compiler.
比较可扩展的天气预报编程技术
本文研究了天气预报模型并行化中的可编程性和性能问题。我们比较了使用高级库(最近邻工具:NNT)和高级语言/指令方法(高性能Fortran: HPF)的并行化。我们报告了使用NNT编码的完整天气预报模型(快速更新周期,目前在华盛顿国家气象中心运行)的性能。我们量化了必须由HPF编译器执行的NNT可能的优化的性能影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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