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A Heuristic Task Scheduling Algorithm for Heterogeneous Virtual Clusters

机译:异构虚拟群集的启发式任务调度算法

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摘要

Cloud computing provides on-demand computing and storage services with high performance and high scalability. However, the rising energy consumption of cloud data centers has become a prominent problem. In this paper, we first introduce an energy-aware framework for task scheduling in virtual clusters. The framework consists of a task resource requirements prediction module, an energy estimate module, and a scheduler with a task buffer. Secondly, based on this framework, we propose a virtual machine power efficiency-aware greedy scheduling algorithm (VPEGS). As a heuristic algorithm, VPEGS estimates task energy by considering factors including task resource demands, VM power efficiency, and server workload before scheduling tasks in a greedy manner. We simulated a heterogeneous VM cluster and conducted experiment to evaluate the effectiveness of VPEGS. Simulation results show that VPEGS effectively reduced total energy consumption by more than 20% without producing large scheduling overheads. With the similar heuristic ideology, it outperformed Min-Min and RASA with respect to energy saving by about 29% and 28%, respectively.
机译:云计算提供了具有高性能和高可扩展性的按需计算和存储服务。然而,云数据中心的能耗上升已成为一个突出的问题。在本文中,我们首先介绍虚拟群集中的任务调度的能量感知框架。该框架由任务资源要求预测模块,能量估计模块和具有任务缓冲区的调度程序组成。其次,基于此框架,我们提出了一种虚拟机功率效率感知贪婪调度算法(VPEG)。作为启发式算法,VPEGS通过考虑包括任务资源需求,VM功率效率和服务器工作量的因素来估计任务能量,并且在以贪婪的方式调度任务。我们模拟了异质VM集群,并进行了实验,以评估VPEG的有效性。仿真结果表明,VPEG在不产生大量调度开销的情况下将总能耗降低了20%以上。具有类似的启发式意识形态,它分别优于最小闽和RAS,分别为节能约29%和28%。

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