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SAHA: A Scheduling Algorithm for Security-Sensitive Jobs on Data Grids

机译:SAHA:一种用于数据网格上的安全敏感作业的调度算法

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Security-sensitive applications that access and generate large data sets are emerging in various areas such as bioinformatics and high energy physics. Data grids provide data-intensive applications with a large virtual storage framework with unlimited power. However, conventional scheduling algorithms for data grids are inadequate to meet the security needs of data-intensive applications. To remedy this deficiency, we address in this paper the problem of scheduling data-intensive jobs on data grids subject to security constraints. Using a security- and data-aware technique, SAHA (Security-Aware and Heterogeneity-Aware scheduling strategy) is proposed to improve quality of security for data-intensive applications running on data grids. Results based on real-world traces show that the proposed scheduling scheme dramatically improves security and performance over two existing scheduling algorithms
机译:访问和生成大数据集的对安全敏感的应用程序正在诸如生物信息学和高能物理等各个领域出现。数据网格为数据密集型应用程序提供了具有无限功能的大型虚拟存储框架。但是,用于数据网格的常规调度算法不足以满足数据密集型应用程序的安全需求。为了弥补这一缺陷,我们在本文中解决了在受安全性约束的数据网格上调度数据密集型作业的问题。使用安全和数据感知技术,提出了SAHA(安全感知和异构感知调度策略),以提高在数据网格上运行的数据密集型应用程序的安全性。基于真实世界的跟踪结果表明,与现有的两种调度算法相比,所提出的调度方案显着提高了安全性和性能。

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