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Analyzing and mitigating the impact of manufacturing variability in power-constrained supercomputing

机译:在功耗受限的超级计算中分析并减轻制造变异性的影响

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A key challenge in next-generation supercomputing is to effectively schedule limited power resources. Modern processors suffer from increasingly large power variations due to the chip manufacturing process. These variations lead to power inhomogeneity in current systems and manifest into performance inhomogeneity in power constrained environments, drastically limiting supercomputing performance. We present a first-of-its-kind study on manufacturing variability on four production HPC systems spanning four microarchitectures, analyze its impact on HPC applications, and propose a novel variation-aware power budgeting scheme to maximize effective application performance. Our low-cost and scalable budgeting algorithm strives to achieve performance homogeneity under a power constraint by deriving application-specific, module-level power allocations. Experimental results using a 1,920 socket system show up to 5.4X speedup, with an average speedup of 1.8X across all benchmarks when compared to a variation-unaware power allocation scheme.
机译:下一代超级计算的关键挑战是有效地调度有限的电源。由于芯片制造工艺,现代处理器的功率变化越来越大。这些变化会导致当前系统中的电源不均匀,并在电源受限的环境中表现为性能不均匀,从而极大地限制了超级计算性能。我们提供了关于跨四个微体系结构的四个生产HPC系统的制造可变性的同类研究,分析了其对HPC应用程序的影响,并提出了一种新颖的变体感知功率预算方案,以最大化有效的应用程序性能。我们的低成本且可扩展的预算算法致力于通过得出特定于应用程序的模块级功率分配,在功率约束下实现性能均匀性。使用1920插座系统的实验结果表明,与无变化功率分配方案相比,所有基准测试的平均速度提高了5.4倍,达到了1.8倍。

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