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Thermal-constrained energy efficient real-time scheduling on multi-core platforms

机译:多核平台的热受限节能实时调度

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As the power density of Integrated Circuit chips continues to grow, energy minimization and temperature reduction are two of the most critical design issues in today's computer system design. Although energy minimization is closely related to temperature reduction, the most energy-efficient method may not be the most effective one to meet the temperature constraints and vice versa. In this paper, we study the problem of how to partition periodic hard real-time tasks on a multi-core platform to maximize the overall energy efficiency under a peak temperature constraint. Differing from the traditional load-balancing approach, i.e., evenly distributing the workload across the chip, we propose a thermal-balancing strategy, i.e. minimizing the thermal gradient across the active cores, to improve the overall system energy efficiency, especially when the temperature constraints are tight. We first identify the lower bound for energy consumption with this approach, and then transform the task partitioning problem to a variable-sized bin packing problem. We further propose an enhanced algorithm to optimize the task partitioning results. Our simulation results show that the proposed thermal-balancing approach can significantly improve the energy efficiency and task partitioning feasibility for real-time systems with high system utilization and tight temperature constraints. (C) 2019 Elsevier B.V. All rights reserved.
机译:由于集成电路芯片的功率密度继续增长,因此能源最小化和降温是当今计算机系统设计中最关键的设计问题中的两个。尽管能量最小化与降温密切相关,但最节能的方法可能不是满足温度约束的最有效的方法,反之亦然。在本文中,我们研究了如何在多核平台上分区定期硬实时任务的问题,以最大化峰值温度约束下的整体能效。与传统的负载平衡方法不同,即均匀地将工作负载分布在芯片上,我们提出了一种热平衡策略,即最小化积极核心的热梯度,以提高整体系统能效,特别是当温度约束时紧张。我们首先用这种方法识别能量消耗的下限,然后将任务分区问题转换为可变大小的垃圾包装问题。我们进一步提出了一种增强的算法来优化任务分区结果。我们的仿真结果表明,该拟议的热平衡方法可以显着提高具有高系统利用率和严格温度约束的实时系统的能效和任务分区可行性。 (c)2019 Elsevier B.v.保留所有权利。

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