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BigDataSDNSim: A simulator for analyzing big data applications in software-defined cloud data centers

机译:BigDataSDNSIM:用于分析软件定义云数据中心的大数据应用的模拟器

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摘要

The integration and crosscoordination of big data processing and software-defined networking (SDN) are vital for improving the performance of big data applications. Various approaches for combining big data and SDN have been investigated by both industry and academia. However, empirical evaluations of solutions that combine big data processing and SDN are extremely costly and complicated. To address the problem of effective evaluation of solutions that combine big data processing with SDN, we present a new, self-contained simulation tool named BigDataSDNSim that enables the modeling and simulation of the big data management system YARN, its related programming models MapReduce, and SDN-enabled networks in a cloud computing environment. BigDataSDNSim supports cost-effective and easy to conduct experimentation in a controllable, repeatable, and configurable manner. The article illustrates the simulation accuracy and correctness of BigDataSDNSim by comparing the behavior and results of a real environment that combines big data processing and SDN with an equivalent simulated environment. Finally, the article presents two uses cases of BigDataSDNSim, which exhibit its practicality and features, illustrate the impact of data replication mechanisms of MapReduce in Hadoop YARN, and show the superiority of SDN over traditional networks to improve the performance of MapReduce applications.
机译:大数据处理和软件定义网络(SDN)的集成和交叉对提高大数据应用的性能至关重要。两种行业和学术界都研究了组合大数据和SDN的各种方法。但是,将大数据处理和SDN结合的解决方案的实证评估非常昂贵和复杂。为了解决与SDN组合大数据处理的解决方案的有效评估问题,我们展示了一个名为BigDataSDNSIM的新的自包含模拟工具,可以实现大数据管理系统纱线的建模和仿真,其相关的编程模型MapReduce,以及在云计算环境中启用了SDN的网络。 BigDataSDNSIM支持以可控,可重复和可配置的方式进行成本效益且易于进行实验。本文通过比较了将大数据处理和SDN的实际环境的行为和结果进行了比较了具有等效模拟环境的实际环境的行为和结果来说明BigDataSDNSIM的模拟精度和正确性。最后,文章呈现了两种使用的BigDataSDNSIM,它展示了其实用性和特征,说明了MapReduce在Hadoop纱中的数据复制机制的影响,并显示了SDN在传统网络上的优越性,以提高MapReduce应用的性能。

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