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Reducing Static Energy in Supercomputer Interconnection Networks Using Topology-Aware Partitioning

机译:使用拓扑感知分区减少超级计算机互连网络中的静态能量

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The key to reducing static energy in supercomputers is switching off their unused components. Routers are the major components of a supercomputer. Whether routers can be effectively switched off or not has become the key to static energy management for supercomputers. For many typical applications, the routers in a supercomputer exhibit low utilization. However, there is no effective method to switch the routers off when they are idle. By analyzing the router occupancy in time and space, for the first time, we present a routing-policy guided topology partitioning methodology to solve this problem. We propose topology partitioning methods for three kinds of commonly used topologies (mesh, torus and fat-tree) equipped with the three most popular routing policies (deterministic routing, directionally adaptive routing and fully adaptive routing). Based on the above methods, we propose the key techniques required in this topology partitioning based static energy management in supercomputer interconnection networks to switch off unused routers in both time and space dimensions. Three topology-aware resource allocation algorithms have been developed to handle effectively different job-mixes running on a supercomputer. We validate the effectiveness of our methodology by using Tianhe-2 and a simulator for the aforementioned topologies and routing policies. The energy savings achieved on a subsystem of Tianhe-2 range from 3.8 to 79.7 percent. This translates into a yearly energy cost reduction of up to half a million US dollars for Tianhe-2.
机译:减少超级计算机中静态能量的关键是关闭其未使用的组件。路由器是超级计算机的主要组件。路由器能否有效关闭已成为超级计算机静态能源管理的关键。对于许多典型的应用程序,超级计算机中的路由器显示出较低的利用率。但是,没有有效的方法可以在路由器空闲时关闭它们。通过分析路由器在时间和空间上的占用情况,我们首次提出了一种由路由策略指导的拓扑划分方法来解决此问题。我们为三种最常用的拓扑(确定性路由,方向自适应路由和完全自适应路由)配备的三种常用拓扑(网格,圆环和胖树)提出了拓扑分区方法。基于以上方法,我们提出了在超级计算机互连网络中基于此拓扑分区的静态能量管理所需的关键技术,以在时间和空间维度上关闭未使用的路由器。已经开发了三种可感知拓扑的资源分配算法,以有效处理超级计算机上运行的不同作业组合。我们通过使用Tianhe-2和用于上述拓扑和路由策略的模拟器来验证我们方法论的有效性。在天河2号子系统上实现的节能量在3.8%到79.7%之间。这意味着天河2号每年可节省多达100万美元的能源成本。

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