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Earth system modelling on system-level heterogeneous architectures: EMAC (version 2.42) on the Dynamical Exascale Entry Platform (DEEP)

机译:系统级异构架构上的地球系统建模:动态Exascale入口平台(DEEp)上的EmaC(版本2.42)

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摘要

We examine an alternative approach to heterogeneous cluster-computing in the many-core era for Earth system models, using the European Centre for Medium-Range Weather Forecasts Hamburg (ECHAM)/Modular Earth Sub-model System (MESSy) Atmospheric Chemistry (EMAC) model as a pilot application on the Dynamical Exascale Entry Platform (DEEP). A set of autonomous coprocessors interconnected together, called Booster, complements a conventional HPC Cluster and increases its computing performance, offering extra flexibility to expose multiple levels of parallelism and achieve better scalability. The EMAC model atmospheric chemistry code (Module Efficiently Calculating the Chemistry of the Atmosphere (MECCA)) was taskified with an offload mechanism implemented using OmpSs directives. The model was ported to the MareNostrum 3 supercomputer to allow testing with Intel Xeon Phi accelerators on a production-size machine. The changes proposed in this paper are expected to contribute to the eventual adoption of Cluster-Booster division and Many Integrated Core (MIC) accelerated architectures in presently available implementations of Earth system models, towards exploiting the potential of a fully Exascale-capable platform.
机译:我们使用欧洲中型天气预报汉堡中心(ECHAM)/模块化地球子模型系统(MESSy)大气化学(EMAC),研究了多核时代地球系统模型中异构集群计算的替代方法。模型作为动态百亿级入门平台(DEEP)上的试点应用程序。一组相互连接在一起的自治协处理器,称为Booster,是对传统HPC集群的补充,并提高了其计算性能,提供了额外的灵活性,可以显示多个并行级别并实现更好的可伸缩性。 EMAC模型大气化学代码(有效计算大气化学的模块(MECCA))的任务是使用OmpSs指令实现的卸载机制。该模型已移植到MareNostrum 3超级计算机上,可以在生产规模的计算机上使用Intel Xeon Phi加速器进行测试。预期本文提出的更改将有助于最终在当前可用的地球系统模型实现中采用Cluster-Booster部门和许多集成核心(MIC)加速的体系结构,以充分利用具有Exascale功能的平台的潜力。

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