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Adaptive energy-efficient task partitioning for heterogeneous multi-core multiprocessor real-time systems

机译:异构多核多核多处理器实时系统的自适应节能任务分区

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The designs of heterogeneous multi-core multiprocessor real-time systems are evolving for higher energy efficiency at the cost of increased heat density. This adversely effects the reliability and performance of the real-time systems. Moreover, the partitioning of periodic real-time tasks based on their worst case execution time can lead to significant energy wastage. In this paper, we investigate adaptive energy-efficient task partitioning for heterogeneous multi-core multiprocessor realtime systems. We use a power model which incorporates the impact of temperature and voltage of a processor on its static power consumption. Two different thermal models are used to estimate the peak temperature of a processor. We develop two feedback-based optimization and control approaches for adaptively partitioning real-time tasks according to their actual utilizations. Simulation results show that the proposed approaches are effective in minimizing the energy consumption and reducing the number of task migrations.
机译:异形多核多核多处理器实时系统的设计在增加的热密度的成本下,在更高的能量效率方便。这对实时系统的可靠性和性能产生了不利影响。此外,基于其最坏情况执行时间的周期性实时任务的分区可能导致显着的能量浪费。在本文中,我们调查了异构多核多核多处理器实时系统的自适应节能任务分区。我们使用电源模型,该功率模型包括处理器的温度和电压的影响在其静态功耗上。两种不同的热模型用于估计处理器的峰值温度。我们开发了两个基于反馈的优化和控制方法,可根据其实际利用自适应分区实时任务。仿真结果表明,该拟议方法在最大限度地减少能耗和减少任务迁移数量方面有效。

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