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首页> 外文期刊>International Journal of Grid Computing & Applications >Two Level Job Scheduling and Data Replication in Data Grid
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Two Level Job Scheduling and Data Replication in Data Grid

机译:数据网格中的二级作业调度和数据复制

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Data Grid environment is a geographically distributed that deal with date-intensive application in scientific and enterprise computing. In data-intensive applications data transfer is a primary cause of job execution delay. Data access time depends on bandwidth, especially when hierarchy of bandwidth appears in network. Effective job scheduling can reduce data transfer time by considering hierarchy of bandwidth and also dispatching a job to where the needed data are present. Additionally, replication of data from primary repositories to other locations can be an important optimization step to reduce the frequency of remote data access. Objective of dynamic replica strategies is reducing file access time which leads to reducing job runtime. In this paper we develop a job scheduling policy, called TLSS (Two level Scheduling strategy), and a dynamic data replication strategy, called TLRS (Two level Replication Strategy), to improve the data access efficiencies in a cluster grid. We study our approach and evaluate it through simulation. The results show that combination of TLSS and TLRS has improved 17% over other combinations
机译:数据网格环境是一个地理分布的环境,用于处理科学和企业计算中的数据密集型应用。在数据密集型应用程序中,数据传输是作业执行延迟的主要原因。数据访问时间取决于带宽,尤其是当带宽层次结构出现在网络中时。有效的作业调度可以通过考虑带宽层次结构并将作业分配到需要的数据所在的位置来减少数据传输时间。此外,将数据从主存储库复制到其他位置可能是减少远程数据访问频率的重要优化步骤。动态副本策略的目标是减少文件访问时间,从而减少作业运行时间。在本文中,我们开发了一种作业调度策略,称为TLSS(两级调度策略),以及一种动态数据复制策略,称为TLRS(两级复制策略),以提高集群网格中的数据访问效率。我们研究我们的方法,并通过仿真对其进行评估。结果表明,TLSS和TLRS的组合比其他组合提高了17%

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