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The UCLA AGCM in High Performance Computing Environments

机译:高性能计算环境中的UCLA AGCM

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General Circulation Models (GCMs) are at the top of the hierarchy of numerical models that are used to study the Earth's climate. To increase the significance of predictions using GCMs requires ensembles of integrations that in turn demand large amounts of computing resources. GCMs codes are particularly difficult to optimize in view of their heterogeneity. In this paper we focus on code optimization for GCMs of the atmosphere (AGCMs), one of the major components of the climate system. In this paper, we present our efforts in optimizing the parallel UCLA AGCM code. The UCLA AGCM is a state-of-the-art finite-difference model of the global atmosphere. Our optimization efforts include the implementation of load balancing schemes, new physical parameterizations of atmospheric processes, code restructuring and use of special mathematical functions. At the beginning of this work, the overall execution time of the code was 459 seconds per simulated day in 256 nodes of a CRAY T3D. At present, the same model configuration requires 51 seconds per simulated day in 256 nodes of a CRAY T3E-900, which is approximately 9 times faster. The peak model performance is about 40 GFLOPs on 512 T3E-900 nodes. We present results in support of our conclusion that major advances in our ability to carry out longer and more detailed climate simulations depend primarily upon development of more powerful supercomputers and that code optimization, for a particular computer architecture, and development of more efficient algorithms can be nearly as important.
机译:通用循环模型(GCM)位于用于研究地球气候的数值模型层次结构的顶部。为了增加使用GCM进行预测的重要性,需要集成的集成,而集成又需要大量的计算资源。鉴于其异质性,GCM代码特别难于优化。在本文中,我们专注于针对大气GCM(AGCM)的代码优化,AGCM是气候系统的主要组成部分之一。在本文中,我们介绍了我们在优化并行UCLA AGCM代码方面的工作。 UCLA AGCM是全球大气的最新有限差分模型。我们的优化工作包括实施负载平衡方案,对大气过程进行新的物理参数设置,代码重组以及使用特殊的数学函数。在这项工作的开始,在CRAY T3D的256个节点中,代码的总体执行时间为每个模拟日459秒。目前,相同模型配置的CRAY T3E-900的256个节点中的每个模拟日需要51秒,这大约快了9倍。在512个T3E-900节点上,模型的最高性能约为40 GFLOP。我们提供的结果证明了我们得出的结论,即进行更长时间和更详细的气候模拟的能力的重大进步主要取决于功能更强大的超级计算机的开发,并且对于特定的计算机体系结构和更有效的算法,可以进行代码优化。几乎一样重要。

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