Performance Analysis of Grid DAG Scheduling Algorithms using MONARC Simulation Tool

Florin Pop, C. Dobre, V. Cristea
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引用次数: 31

Abstract

This paper presents a solution to analyze the performance of grid scheduling algorithms for tasks with dependencies. Finding the optimal procedures for DAG scheduling in Grid systems is important due to the latest computing necessities: large scale distributed computing and complex applications for different research areas. We propose a solution to evaluate DAG scheduling algorithms using simulation, an approach suitable to evaluate different scheduling algorithms using various task dependencies and considering a wide range of Grid system architectures. Our proposed solution is based on MONARC, a generic simulation framework designed for modeling large scale distributed systems. We present our research results in extending the simulation platform to accommodate various DAG scheduling procedures and, as a case study, we present a critical analysis of four well known DAG scheduling strategies: CCF (Cluster ready Children First), ETF (Earliest Time First), HLFET (Highest Level First with Estimated Times) and Hybrid Remapper. The obtained results show that the proposed solution is a very good instrument for evaluating performance in case of a wide range of DAG scheduling algorithms.
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基于MONARC仿真工具的网格DAG调度算法性能分析
本文提出了一种分析具有依赖性任务的网格调度算法性能的解决方案。由于最新的计算需求:大规模分布式计算和不同研究领域的复杂应用,寻找网格系统中DAG调度的最佳过程是很重要的。我们提出了一种使用仿真来评估DAG调度算法的解决方案,该方法适用于使用各种任务依赖关系并考虑各种网格系统架构来评估不同的调度算法。我们提出的解决方案是基于MONARC,这是一个为大规模分布式系统建模而设计的通用仿真框架。我们介绍了我们在扩展仿真平台以适应各种DAG调度程序方面的研究成果,并作为案例研究,我们对四种著名的DAG调度策略进行了批判性分析:CCF(集群准备儿童优先),ETF(最早时间优先),HLFET(估计时间的最高级别优先)和Hybrid Remapper。结果表明,在各种DAG调度算法的情况下,该方法是一种很好的性能评估工具。
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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