An Approximation for Job Scheduling on Cloud with Synchronization and Slowdown Constraints

Dejun Kong, Zhongrui Zhang, Yangguang Shi, Xiaofeng Gao
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Abstract

Cloud computing develops rapidly in recent years and provides service to many applications, in which job scheduling becomes more and more important to improve the quality of service. Parallel processing on cloud requires different machines starting simultaneously on the same job and brings processing slowdown due to communications overhead, defined as synchronization constraint and parallel slowdown. This paper investigates a new job scheduling problem of makespan minimization on uniform machines and identical machines with synchronization constraint and parallel slowdown. We first conduct complexity analysis proving that the problem is difficult in the face of adversarial job allocation. Then we propose a novel job scheduling algorithm, United Wrapping Scheduling (UWS), and prove that UWS admits an O(logm)-approximation for makespan minimization over m uniform machines. For the special case of identical machines, UWS is simplified to Sequential Allocation, Refilling and Immigration algorithm (SARI), proved to have a constant approximation ratio of 8 (tight up to a factor of 4). Performance evaluation implies that UWS and SARI have better makespan and realistic approximation ratio of 2 compared to baseline methods United-LPT and FIFO, and lower bounds.
具有同步和减速约束的云上作业调度的近似方法
云计算近年来发展迅速,为许多应用提供服务,其中作业调度对于提高服务质量变得越来越重要。云上的并行处理需要不同的机器同时启动同一作业,并且由于通信开销导致处理速度减慢,定义为同步约束和并行速度减慢。研究了具有同步约束和并行减速的均匀机和相同机上最大作业时间最小化的作业调度问题。我们首先进行了复杂性分析,证明了该问题在面对对抗性工作分配时是困难的。然后,我们提出了一种新的作业调度算法,联合包裹调度(UWS),并证明了UWS在m台均匀机器上允许O(logm)逼近最小化最大作业时间。对于相同机器的特殊情况,将UWS简化为顺序分配,重新填充和移民算法(SARI),证明其具有常数近似比为8(紧达4倍)。性能评估表明,与基线方法United-LPT和FIFO相比,UWS和SARI具有更好的makespan和现实近似比为2,并且有下限。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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