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首页> 外文期刊>IEICE transactions on information and systems >Avoiding Performance Impacts by Re-Replication Workload Shifting in HDFS Based Cloud Storage
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Avoiding Performance Impacts by Re-Replication Workload Shifting in HDFS Based Cloud Storage

机译:通过基于HDFS的云存储中的重复复制工作负载转移来避免性能影响

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Data replication in cloud storage systems brings a lot of benefits, such as fault tolerance, data availability, data locality and load balancing both from reliability and performance perspectives. However, each time a datanode fails, data blocks stored on the failed datanode must be restored to maintain replication level. This may be a large burden for the system in which resources are highly utilized with users' application workloads. Although there have been many proposals for replication, the approach of re-replication has not been properly addressed yet. In this paper, we present a deferred re-replication algorithm to dynamically shift the re-replication workload based on current resource utilization status of the system. As workload pattern varies depending on the time of the day, simulation results from synthetic workload demonstrate a large opportunity for minimizing impacts on users' application workloads with the simple algorithm that adjusts re-replication based on current resource utilization. Our approach can reduce performance impacts on users' application workloads while ensuring the same reliability level as default HDFS can provide.
机译:从可靠性和性能的角度来看,云存储系统中的数据复制带来了很多好处,例如容错能力,数据可用性,数据局部性和负载平衡。但是,每次数据节点发生故障时,必须还原存储在故障数据节点上的数据块以维持复制级别。对于其中资源与用户的应用程序工作负荷充分利用的系统而言,这可能是一个沉重的负担。尽管有很多关于复制的建议,但是复制的方法尚未得到适当解决。在本文中,我们提出了一种延迟重复制算法,该算法可根据系统当前的资源利用状况动态转移重复制工作负载。由于工作负载模式随一天中的时间而变化,来自合成工作负载的模拟结果显示出很大的机会,可以使用简单的算法根据当前资源利用来调整重复,从而最大程度地减少对用户应用程序工作负载的影响。我们的方法可以减少对用户应用程序工作负载的性能影响,同时确保与默认HDFS可以提供​​的可靠性级别相同。

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