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On the trade-off of mixing scientific applications on capacity high-performance computing systems

机译:在容量高性能计算系统上混合科学应用程序的权衡

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Network contention is seen as a major hurdle to achieve higher throughput in today's large-scale high-performance computing systems. Even more so with the current trend of employing blocking networks driven by the need of reducing cost. Additionally, the effect is aggravated by current system schedulers that allocate jobs as soon as nodes become available, thus producing job fragmentation, that is, the tasks of one job might be spread throughout the system instead of being allocated contiguously. This fragmentation increases the probability of sharing network resources with other applications, which produces higher inter-application network contention. In this study, the authors perform a broad analysis of diverse applications?? performance variability because of the topology connectivity and fragmentation and a classification of applications based on their sensitiveness to these two factors. Once they understood the inherent characteristics of applications, the authors analysed the applications performance in a shared environment, that is, when mixing with other applications. They show that inter-application contention might be a significant factor of degradation even in the networks with high connectivity. Their results suggest different strategies on task allocation policies: grouping sensitive and insensitive applications, reducing the number of applications sharing the first level switch or isolation of sensitive applications.
机译:在当今的大型高性能计算系统中,网络争用被视为实现更高吞吐量的主要障碍。在由降低成本的需求驱动的采用阻塞网络的当前趋势中,这一点尤其如此。此外,当前的系统调度程序会在节点可用时立即分配作业,从而加剧这种影响,从而产生作业碎片,即,一项作业的任务可能会散布在整个系统中,而不是连续分配。这种碎片化增加了与其他应用程序共享网络资源的可能性,从而产生了更高的应用程序间网络竞争。在这项研究中,作者对各种应用进行了广泛的分析?由于拓扑结构的连通性和碎片性,以及基于对这两个因素的敏感性对应用程序进行分类,导致性能变化。一旦他们了解了应用程序的固有特性,作者便在共享环境中(即与其他应用程序混合使用时)分析了应用程序的性能。他们表明,即使在具有高连接性的网络中,应用程序间竞争也可能是降级的重要因素。他们的结果提出了有关任务分配策略的不同策略:将敏感和不敏感应用程序分组,减少共享第一级切换或隔离敏感应用程序的应用程序数量。

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