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Improving the performance scalability of the community atmosphere model

机译:改善社区氛围模型的性能可伸缩性

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The Community Atmosphere Model (CAM), which serves as the atmosphere component of the Community Climate System Model (CCSM), is the most computationally expensive CCSM component in typical configurations. On current and next-generation leadership class computing systems, the performance of CAM is tied to its parallel scalability. Improving performance scalability in CAM has been a challenge, due largely to algorithmic restrictions necessitated by the polar singularities in its latitude-longitude computational grid. Nevertheless, through a combination of exploiting additional parallelism, implementing improved communication protocols, and eliminating scalability bottlenecks, we have been able to more than double the maximum throughput rate of CAM on production platforms. We describe these improvements and present results on the Cray XT5 and IBM BG/P. The approaches taken are not specific to CAM and may inform similar scalability enhancement activities for other codes.
机译:作为社区气候系统模型(CCSM)的大气成分的社区大气模型(CAM),在典型配置中是计算上最昂贵的CCSM组件。在当前和下一代领导层计算系统上,CAM的性能与其并行可伸缩性息息相关。改善CAM中的性能可伸缩性一直是一个挑战,这主要是由于其纬度-经度计算网格中的极点奇异性需要算法限制。但是,通过综合利用其他并行性,实施改进的通信协议以及消除可伸缩性瓶颈,我们已经能够将生产平台上CAM的最大吞吐率提高一倍以上。我们描述了这些改进,并在Cray XT5和IBM BG / P上展示了结果。所采用的方法并不特定于CAM,并且可以为其他代码提供类似的可伸缩性增强活动。

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