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Minimizing energy by thermal-aware task assignment and speed scaling in heterogeneous MPSoC systems

机译:在异构MPSOC系统中通过热感知任务分配和速度缩放最小化能量

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The ever-increasing power density has caused severe energy and thermal issues in real-time embedded systems with limited energy capacity and cooling capability. Due to the strong inter-dependency, the temperature and energy consumption of the systems should be minimized together. However, existing work either only minimizes the dynamic power consumption while considering temperature as a constraint or only minimizes the temperature within the limited optimization room remained after the minimization of dynamic power consumption, both of which fail to fully explore the optimization space for the two issues. To this end, this work aims at minimizing both the temperature and energy consumption of heterogeneous MPSoC systems at the same time. Different with the commonly used energy-aware scheduling approaches, this work proposes a thermal/energy aware two-phase task scheduling approach: in the first phase assigns tasks to processors by taking both the thermal and power dissipation factors into consideration so as to balance the thermal/energy loads of processors; in the second phase deduces the thermal/energy optimal speed assignment for tasks by considering the heterogeneity of both processors and tasks, based on which designing an approximate fluid scheduling algorithm that can reduce the task switching overhead while guaranteeing the tasks’ timing constraints. Extensive experiments validate the efficiency and superiority of the proposed approach.
机译:由于能量容量和冷却能力有限的实时嵌入式系统,不断增长的功率密度引起了严重的能量和热问题。由于强大的依赖性相互作用,系统的温度和能量消耗应在一起。然而,现有的工作只需尽量减少动态功耗,同时考虑温度作为约束,或者仅在最小化动态功耗之后最小化限定优化室内的温度,这两者都无法完全探索两个问题的优化空间。为此,这项工作旨在尽量减少异构MPSOC系统的同时的温度和能耗。与常用的能量感知调度方法不同,这项工作提出了一种热/能量感知的两相任务调度方法:在第一阶段通过考虑热量和功耗因素来分配给处理器的任务,以便平衡热/能量负荷处理器;在第二阶段,通过考虑处理器和任务的异质性,推导出任务的热/能量最佳速度分配,基于该方法,基于该方法的异质性,基于该方法,该方法设计了一种可以减少任务切换开销的近似流体调度算法,同时保证任务的定时约束。广泛的实验验证了所提出的方法的效率和优越性。

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