Processing Mesoscale Climatology in a Grid Environment

R. Souto, R. Ávila, P. Navaux, M. X. Py, T. A. Diverio, H. Velho, S. Stephany, A. J. Preto, J. Panetta, E. Rodrigues, E. Almeida, P. Dias, A. W. Gandu
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引用次数: 15

Abstract

Enhancing the quality of weather and climate forecasts are central scientific research objectives worldwide. However, simulations of the atmosphere, usually demand high processing power and large storage resources. In this context, we present the GBRAMS project, that applies grid computing to speed up the generation of a regional model climatology for Brazil. A grid infrastructure was built to perform long-term integrations of a mesoscale numerical model (BRAMS), managing a queue of up to nine independent jobs submitted to three clusters spread over Brazil- Three distinct middlewares, Globus Toolkit, OurGrid and OAR/CIGRI, were compared in their ability to manage these jobs, and results on the usage of each node of the grid are provided. We analyze the impact of the resulted climatology in the accuracy of climate forecast, showing model bias removal which indicates correctness of the generated climatology. Our central contribution are how to use grid computing to speed-up climatology generation and the middleware impact on this enterprise.
网格环境中尺度气候学处理
提高天气和气候预报的质量是全球科学研究的中心目标。然而,大气模拟通常需要高处理能力和大存储资源。在这种情况下,我们提出了GBRAMS项目,该项目应用网格计算来加速巴西区域气候学模式的生成。建立了一个网格基础设施,用于执行中尺度数值模型(BRAMS)的长期集成,管理多达9个独立作业的队列,这些作业提交给分布在巴西的三个集群。三种不同的中间件,Globus Toolkit, OurGrid和OAR/CIGRI,在管理这些作业的能力方面进行了比较,并提供了网格每个节点的使用结果。我们分析了结果的气候学对气候预报精度的影响,显示了模型偏差的消除,这表明生成的气候学是正确的。我们的主要贡献是如何使用网格计算来加速气候学的生成以及中间件对该企业的影响。
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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