Energy-optimal dynamic voltage scaling in multicore platforms with reconfigurable power distribution network

Juyeon Kim, Taewhan Kim
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Abstract

This work addresses a new problem of dynamic voltage scaling (DVS) in multicore platforms. We solve the multicore DVS problem, i.e., simultaneously scheduling execution of tasks assigned to cores and determining dynamically-varying voltage levels, with the objective of minimizing total energy consumption of the cores and voltage regulators (VRs) in the reconfigurable VR-to-core power distribution network (PDN) of platform while meeting the arrival/deadline constraint of tasks. Here, the key factors to be exploited for energy saving are (1) available voltage levels, (2) power conversion efficiency curve of VRs, and (3) turning on/off VRs. Specifically, we formulate the problem of task scheduling with the relation between factors 1, 2, and 3 into a linear programming problem and solve optimally in polynomial time.
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基于可重构配电网的多核平台能量最优动态电压缩放
这项工作解决了多核平台中动态电压缩放(DVS)的新问题。我们解决了多核分布式交换机问题,即同时调度分配给核心的任务的执行并确定动态变化的电压水平,目的是在满足任务到达/截止时间约束的情况下,在可重构的平台VR-to-core配电网络(PDN)中最小化核心和稳压器(VRs)的总能耗。在这里,节能的关键因素是(1)可用电压水平,(2)vr的功率转换效率曲线,(3)打开/关闭vr。具体来说,我们将具有因子1、2、3之间关系的任务调度问题化为一个线性规划问题,并在多项式时间内得到最优解。
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