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On the Energy (In)efficiency of Hadoop Clusters

机译:关于Hadoop集群的能源效率

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Distributed processing frameworks, such as Yahool's Hadoop and Google's MapReduce, have been successful at harnessing expansive datacenter resources for large-scale data analysis. However, their effect on datacenter energy efficiency has not been scrutinized. Moreover, the filesystem component of these frameworks effectively precludes scale-down of clusters deploying these frameworks (i.e. operating at reduced capacity). This paper presents our early work on modifying Hadoop to allow scale-down of operational clusters. We find that running Hadoop clusters in fractional configurations can save between 9% and 50% of energy consumption, and that there is a tradeoff between performance energy consumption. We also outline further research into the energy-efficiency of these frameworks.
机译:分布式处理框架,例如Yahool的Hadoop和Google的MapReduce,已成功地利用扩展的数据中心资源进行大规模数据分析。但是,它们对数据中心能效的影响尚未得到仔细研究。此外,这些框架的文件系统组件有效地防止了部署这些框架的集群的缩减(即以降低的容量运行)。本文介绍了我们在修改Hadoop以允许缩减操作集群方面的早期工作。我们发现以分数配置运行Hadoop集群可以节省9%至50%的能耗,并且在性能能耗之间进行权衡。我们还将概述对这些框架的能源效率的进一步研究。

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