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Thermal-aware frequency scaling for adaptive workloads on heterogeneous MPSoCs

机译:热感知频率缩放,可用于异构MPSoC上的自适应工作负载

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For applications featuring adaptive workloads, the quality of their task execution can be dynamically adjusted given the runtime constraints. When mapping them to heterogeneous MPSoCs, it is expected not only to achieve the highest possible execution quality, but also meet the critical thermal challenges from the continuously increasing chip density. Prior thermal management techniques, such as Dynamic Voltage/Frequency Scaling (DVFS) and thread migration, do not take into account the trade-off possibility between execution quality and temperature control. In this paper, we explore the capability of adaptive workloads for effective temperature control, while maximally ensuring the execution Quality-of-Service (QoS). We present a thermal-aware dynamic frequency scaling (DFS) algorithm on heterogeneous MPSoCs, where judicious frequency selection achieves QoS maximization under the temperature threshold, which is converted to the thermal-timing deadline as an additional execution constraint. Results show that our frequency scaling algorithm achieves as large as 31.5% execution cycle/QoS improvement under thermal constraints.
机译:对于具有自适应工作负载的应用程序,可以在运行时限制的情况下动态调整其任务执行质量。当将它们映射到异构MPSoC时,不仅有望实现最高的执行质量,而且还将满足芯片密度不断提高带来的关键热挑战。现有的热管理技术,例如动态电压/频率缩放(DVFS)和线程迁移,没有考虑执行质量和温度控制之间的折衷可能性。在本文中,我们探索了自适应工作负载进行有效温度控制的能力,同时最大程度地确保了执行服务质量(QoS)。我们提出了一种在异构MPSoC上的热感知动态频率缩放(DFS)算法,其中明智的频率选择可在温度阈值以下实现QoS最大化,并将其转换为热定时截止期限作为附加执行约束。结果表明,在热约束下,我们的频率缩放算法可实现高达31.5%的执行周期/ QoS改善。

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