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A genetic algorithm-based method for optimizing the energy consumption and performance of multiprocessor systems

机译:一种基于遗传算法,用于优化多处理器系统的能耗和性能的方法

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摘要

In a multiprocessor system, scheduling is an NP-hard problem, and solving it using conventional techniques demands the support of evolutionary algorithms such as genetic algorithms (GAs). Handling the energy consumption issues, while delivering the desired performance for a system, is also a challenging task. In order to achieve these goals, this paper proposes a GA-based method for optimizing the energy consumption and performance of multiprocessor systems using a weighted-sum approach. A performance optimization algorithm with two different selection operators, namely the proportional roulette wheel selection (PRWS) and the rank-based roulette wheel selection (RRWS), is proposed, and the impact of adding elitism in the GA is investigated. Simulation results show that for a specific task graph, using the considered selection operators with elitism yields, respectively, 16.80, 17.11 and 17.82% reduction in energy consumption with a deviation in finish time of 2.08, 2.01 and 1.76?ms when an equal weight factor of 0.5 is considered. This confirms that the selection operator RRWS is superior to PRWS. It is also seen that using elitism enhances the optimization procedure. For a given specific workload, the average percentage reduction in energy consumption with varying weight vector is in the range 12.57–19.51%, with a deviation in finish time of the schedule varying between 1.01 and 2.77?ms.
机译:在多处理器系统中,调度是NP难题,并使用传统技术解决其要求支持进化算法,例如遗传算法(气体)。处理能源消耗问题,同时提供系统的所需性能,也是一个具有挑战性的任务。为了实现这些目标,本文提出了一种基于GA的方法,用于使用加权方法优化多处理器系统的能量消耗和性能。提出了一种具有两个不同选择运算符的性能优化算法,即比例轮盘赌轮选择(PRWS)和基于秩的轮盘赌轮选择(RRW),并研究了GA中添加精英的影响。仿真结果表明,对于特定的任务图,使用所考虑的选择操作员分别在0.08,2.01和1.76的完成时间的偏差中的偏差为16.80,17.11和17.82%的能量消耗。考虑0.5。这证实了选择操作员RRWS优于PRWS。还可以看出,使用精才主义增强了优化程序。对于给定的特定工作负载,具有不同重量载体的能量消耗的平均百分比下降在12.57-19.51%的范围内,在1.01和2.77之间的时间表的完成时间偏差。

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