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Improving and Stabilizing Parallel Computer Performance Using Adaptive Backfilling

机译:使用自适应回填改进和稳定并行计算机性能

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The scheduler is a key component in determining the overall performance of a parallel computer, and as we show here, the schedulers in wide use today exhibit large unexplained gaps in performance during their operation. Also, different scheduling algorithms often vary in the gaps they show, suggesting that choosing the correct scheduler for each time frame can improve overall performance. We present two adaptive algorithms that achieve this: One chooses by recent past performance, and the other by the recent average degree of parallelism, which is shown to be correlated to algorithmic superiority. Simulation results for the algorithms on production workloads are analyzed, and illustrate unique features of the chaotic temporal structure of parallel workloads. We provide best parameter configurations for each algorithm, which both achieve average improvements of 10% in performance and 35% in stability for the tested workloads.
机译:调度程序是确定并行计算机的整体性能的关键组件,并且在这里显示,广泛使用的调度仪在其操作期间表现出大量的无法解释的差距。此外,不同的调度算法通常在它们所示的间隙中变化,建议为每个时间帧选择正确的调度器可以提高整体性能。我们展示了两个自适应算法,实现了这一点:最近过去的性能选择,而另一个受到最近的平均平行度,其被认为与算法优势相关。分析了生产工作负载算法的仿真结果,并说明了并行工作负载的混沌时间结构的独特特征。我们为每种算法提供最佳参数配置,这两种算法都达到了性能的平均改善,并且测试工作负载的稳定性达到35%。

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