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首页> 外文期刊>ScientificWorldJournal >Efficient Scheduling of Scientific Workflows with Energy Reduction Using Novel Discrete Particle Swarm Optimization and Dynamic Voltage Scaling for Computational Grids
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Efficient Scheduling of Scientific Workflows with Energy Reduction Using Novel Discrete Particle Swarm Optimization and Dynamic Voltage Scaling for Computational Grids

机译:利用新颖的离散粒子群优化和动态电压缩放进行能量减少的科学工作流程的高效调度

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摘要

One of the most significant and the topmost parameters in the real world computing environment is energy. Minimizing energy imposes benefits like reduction in power consumption, decrease in cooling rates of the computing processors, provision of a green environment, and so forth. In fact, computation time and energy are directly proportional to each other and the minimization of computation time may yield a cost effective energy consumption. Proficient scheduling of Bag-of-Tasks in the grid environment ravages in minimum computation time. In this paper, a novel discrete particle swarm optimization (DPSO) algorithm based on the particle’s best position (pbDPSO) and global best position (gbDPSO) is adopted to find the global optimal solution for higher dimensions. This novel DPSO yields better schedule with minimum computation time compared to Earliest Deadline First (EDF) and First Come First Serve (FCFS) algorithms which comparably reduces energy. Other scheduling parameters, such as job completion ratio and lateness, are also calculated and compared with EDF and FCFS. An energy improvement of up to 28% was obtained when Makespan Conservative Energy Reduction (MCER) and Dynamic Voltage Scaling (DVS) were used in the proposed DPSO algorithm.
机译:现实世界计算环境中最重要的和最顶层参数之一是能量。最小化能量施加益处,如降低功耗,计算处理器的冷却速度降低,提供绿色环境等。实际上,计算时间和能量彼此直接成比例,并且计算时间的最小化可以产生成本有效的能量消耗。熟练在网格环境中的任务袋中的调度在最小计算时间中。本文采用了一种基于粒子最佳位置(PBDPSO)和全球最佳位置(GBDPSO)的新型离散粒子群优化(DPSO)算法,以找到更高尺寸的全局最佳解决方案。与最早的截止日期(EDF)相比,这种新的DPSO具有最小计算时间的更好的时间表,并且首先将第一服务(FCFS)算法相当降低能量。还计算其他调度参数,例如作业完成比和迟到,并与EDF和FCF进行比较。当在所提出的DPSO算法中使用Makespan保守能量减少(MCOR)和动态电压缩放(DVS)时,获得了高达28%的能量提高。

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