最大限度地减少对芯片多处理器线性依赖的流应用程序的预期能耗

Ahmed Abousamra, R. Melhem, D. Mossé
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引用次数: 3

摘要

动态电压缩放(DVS)是一种广泛应用于实时系统的电源管理机制。我们提出了一种算法,用于调度具有线性依赖关系和已知概率分布的周期性硬实时流应用程序在芯片多处理器(CMP)上的计算需求。调度的目标是在满足两个服务质量(QoS)需求:吞吐量和响应时间的同时最小化预期的能源消耗。我们的实验表明,当只知道最坏情况下的计算需求时,调度可以显著节省能源(高达55%)。此外,当调度基于计算需求的概率分布时,跨多个处理器动态回收处理器空闲时间带来的好处很小,但当调度最坏情况时,特别是对于截止日期较短的应用程序时,它会显著节省能源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Minimizing expected energy consumption for streaming applications with linear dependencies on chip multiprocessors
Dynamic voltage scaling (DVS) is a widely applied power management mechanism in real-time systems. We propose an algorithm for scheduling periodic hard real-time streaming applications with linear dependencies and known probability distributions of computational requirements on chip multiprocessors (CMP). The goal of the scheduling is to minimize the expected energy consumption while satisfying two quality of service (QoS) requirements: throughput and response time. Our experiments show significant energy savings (up to 55%) over scheduling when only the worst case computational requirements are known. In addition, while dynamically reclaiming processor idle time across multiple processors yields small benefit when scheduling is based on the probability distribution of computational requirements, it results in significant energy savings when scheduling for the worst case, especially for applications with short deadlines.
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