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首页> 外文期刊>IEEE Transactions on Parallel and Distributed Systems >Dynamic Load Balancing and Job Replication in a Global-Scale Grid Environment: A Comparison
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Dynamic Load Balancing and Job Replication in a Global-Scale Grid Environment: A Comparison

机译:全局网格环境中的动态负载平衡和作业复制:比较

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摘要

Global-scale grids provide a massive source of processing power, providing the means to support processor intensive parallel applications. The strong burstiness and unpredictability of the available processing and network resources raise the strong need to make applications robust against the dynamics of grid environments. The two main techniques that are most suitable to cope with the dynamic nature of the grid are dynamic load balancing (DLB) and job replication (JR). In this paper, we analyze and compare the effectiveness of these two approaches by means of trace-driven simulations. We observe that there exists an easy-to-measure statistic Y and a corresponding threshold value Y*, such that DLB consistently outperforms JR when Y > Y*, whereas the reverse is true for Y < Y*. Based on this observation, we propose a simple and easy-to-implement approach, throughout referred to as the DLB/JR method, that can make dynamic decisions about whether to use DLB or JR. Extensive simulations based on a large set of real data monitored in a global-scale grid show that our DLB/JR method consistently performs at least as good as both DLB and JR in all circumstances, which makes our DLB/JR method highly robust against the unpredictable nature of global-scale grids.
机译:全球规模的网格提供了巨大的处理能力,提供了支持处理器密集型并行应用程序的手段。可用的处理和网络资源的突发性和不可预测性强烈提出了使应用程序能够抵抗网格环境动态变化的强大需求。最适合应付网格动态特性的两种主要技术是动态负载平衡(DLB)和作业复制(JR)。在本文中,我们通过跟踪驱动的仿真来分析和比较这两种方法的有效性。我们观察到,存在易于测量的统计量Y和相应的阈值Y *,使得当Y> Y *时DLB始终优于JR,而对于Y

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