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APHiD: Hierarchical Task Placement to Enable a Tapered Fat Tree Topology for Lower Power and Cost in HPC Networks

机译:蚜虫:分层任务放置,以使锥形脂肪树拓扑以较低的功率和成本在HPC网络中实现

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The power and procurement cost of bandwidth in system-wide networks has forced a steady drop in the byte/flop ratio. This trend of computation becoming faster relative to the network is expected to hold. In this paper, we explore how cost-oriented task placement enables reducing the cost of system-wide networks by enabling high performance even on tapered topologies where more bandwidth is provisioned at lower levels. We describe APHiD, an efficient hierarchical placement algorithm that uses new techniques to improve the quality of heuristic solutions and reduces the demand on high-level, expensive bandwidth in hierarchical topologies. We apply APHiD to a tapered fat-tree, demonstrating that APHiD maintains application scalability even for severely tapered network configurations. Using simulation, we show that for tapered networks APHiD improves performance by more than 50% over random placement and even 15% in some cases over costlier, state-of-the-art placement algorithms.
机译:系统范围内的带宽的电源和采购成本在字节/跳法比中强制稳定下降。预计这种计算趋势相对于网络的速度变得更快。在本文中,我们探讨了成本导向的任务放置如何通过实现高性能即使在较低级别的锥形拓扑上实现高性能,降低了系统范围的网络的成本。我们描述了一种高效的分层放置算法,它使用新技术来提高启发式解决方案的质量,并降低了层次拓扑中的高级昂贵带宽的需求。我们将蚜虫应用于锥形脂肪树,展示蚜虫即使对于严重逐渐变细的网络配置,蚜虫也保持了应用可扩展性。使用仿真,我们表明,对于锥形网络,蚜虫在随机放置中提高了50多个以上的性能,在某些情况下,甚至在昂贵的地位的放置算法中的某些情况下甚至15 %。

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