使用网格计算的动态算法复制

Khadiga Omer, G. Abdalla
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引用次数: 5

摘要

数据网格是涉及数据管理系统和数据复制技术的最流行的网格计算实现之一。数据复制的目的是提高可用性、容错性、负载平衡和可伸缩性,同时减少带宽消耗和作业执行时间。在本文中,我们研究了数据网格作为喀土穆大学内部网络流量瓶颈的解决方案,该解决方案是通过复制大学的内部系统来接近用户。利用OptorSim网格模拟器研究了各种动态复制算法的行为,并对其性能指标进行了评估。结果表明,预测算法在优化计算资源和存储资源方面是最有效的,它们提供了最有效的网络使用。还评估了其他指标,例如每个计算元素上的线程数和特定站点的带宽范围与执行的作业数量的比较。研究发现,线程数与平均作业时间成反比,而特定站点的链接带宽与该站点上执行的作业数量成比例相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamic Algorithms Replication Using Grid Computing
Data grid is one of the most popular grid computing implementations concerning data management system and data replication technologies. The aim of data replication is to increase availability, fault tolerance, load balancing and scalability while reducing bandwidth consumption, and job execution time. In this paper we investigate Data grid as a solution for the internal network traffic bottleneck at the University of Khartoum due to high numbers of users by replicating the internal systems of the University closer to the users. OptorSim Grid simulator was used to study the behavior of the various dynamic replication algorithms and to evaluate their performance metrics. The results showed that the predictive algorithms are the most effective at optimizing computing and storage resources and they offer the best effective network usage. Other metrics such as the thread numbers at each computing element and the bandwidth range to particular site in comparison to the number of executed jobs were also evaluated. It was found that the thread number was inversely related to the mean job time while the link bandwidth of a particular site was proportionally related to the number of jobs been executed on that site.
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