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GreenDB: Energy-Efficient Prefetching and Caching in Database Clusters

机译:GreenDB:数据库集群中的节能预取和缓存

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In this study, we propose an energy-efficient database system called GreenDB running on clusters. GreenDB applies a workload-skewness strategy by managing hot nodes coupled with a set of cold nodes in a database cluster. GreenDB fetches popular data tables to hot nodes, aiming to keep cold nodes in the low-power mode in increased time periods. GreenDB is conducive to reducing the number of power-state transitions, thereby lowering energy-saving overhead. A prefetching model and an energy saving model are seamlessly integrated into GreenDB to facilitate the power management in database clusters. We quantitatively evaluate GreenDB's energy efficiency in terms of managing, fetching, and storing data. We compare GreenDB's prefetching strategy with the one implemented in Postgresql. Experimental results indicate that GreenDB conserves the energy consumption of the existing solution by up to 98.4 percent. The findings show that the energy efficiency of GreenDB can be optimized by tuning system parameters, including table size, hit rates, number of nodes, number of disks, and inter-arrival delays.
机译:在这项研究中,我们提出了一个在集群上运行的节能数据库系统,称为GreenDB。 GreenDB通过管理数据库群集中的热节点和一组冷节点来应用工作负载偏斜策略。 GreenDB将流行的数据表提取到热节点,旨在使冷节点在增加的时间段内保持在低功耗模式。 GreenDB有助于减少电源状态转换的次数,从而降低节能开销。预取模型和节能模型无缝集成到GreenDB中,以促进数据库集群中的电源管理。我们从管理,获取和存储数据的角度定量评估GreenDB的能源效率。我们将GreenDB的预取策略与Postgresql中实现的策略进行了比较。实验结果表明,GreenDB可以将现有解决方案的能耗降低多达98.4%。研究结果表明,可以通过调整系统参数(包括表大小,命中率,节点数,磁盘数和到达间隔延迟)来优化GreenDB的能源效率。

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