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A Value-Oriented Job Scheduling Approach for Power-Constrained and Oversubscribed HPC Systems

机译:用于功耗和超额订立HPC系统的值取向的作业调度方法

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In this article, we investigate limitations in the traditional value-based algorithms for a power-constrained HPC system and evaluate their impact on HPC productivity. We expose the trade-off between allocating system-wide power budget uniformly and greedily under different system-wide power constraints in an oversubscribed system. We experimentally demonstrate that, under the tightest power constraint, the mean productivity of the greedy allocation is 38 percent higher than the uniform allocation whereas, under the intermediate power constraint, the uniform allocation has a mean productivity of 6 percent higher than the greedy allocation. We then propose a new algorithm that adapts its behavior to deliver the combined benefits of the two allocation strategies. We design a methodology with online retraining capability to create application-specific power-execution time models for a class of HPC applications. These models are used in predicting the execution time of an application on the available resources at the time of making scheduling decisions in the power-aware algorithms. We evaluate the proposed algorithm using emulation and simulation environments, and show that our adaptive strategy results in improving HPC resource utilization while delivering a mean productivity that is almost the same as the best performing algorithm across various system-wide power constraints.
机译:在本文中,我们调查了用于功率约束的HPC系统的传统价值的算法中的限制,并评估它们对HPC生产率的影响。我们在超额认购系统中的不同系统范围的功率限制下均匀地和贪婪地均匀地分配系统范围的功率预算之间的权衡。我们通过实验证明,在最紧密的功率约束下,贪婪分配的平均生产率比均匀分配高38%,而在中间功率约束下,均匀的分配的平均生产率高于贪婪分配的6%。然后,我们提出了一种新的算法,可以使其行为能够提供两种分配策略的综合效益。我们设计了在线再培训能力的方法,以为一类HPC应用程序创建特定于应用的功率执行时间模型。这些模型用于预测在功率感知算法中的调度决策时可用资源的应用程序的执行时间。我们使用仿真和仿真环境评估所提出的算法,并表明我们的自适应策略导致HPC资源利用率提高,同时提供了几乎与各种系统宽的功率约束的最佳执行算法几乎相同的算法。

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