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Optimizing Data Placement of MapReduce on Ceph-Based Framework under Load-Balancing Constraint

机译:负载均衡约束下基于Ceph的框架上MapReduce的数据放置优化

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Ceph has been widely used as a distributed object store and file system due to its high availability, reliability and scalability. Strategies of data placements in Ceph composed of heterogeneous clusters can greatly affect the system performance and load balancing. For a given application, it is critical to find the optimal data placement in Ceph, such that the completion time of the application can be minimized under the load-balancing constraint. This paper presents a novel Ceph-based framework that integrally considers the load balancing and the heterogeneities, including the computational capacity and the network bandwidth. The presented framework is suitable for the applications based on the principle of moving computation rather than data across clusters, such as MapReduce. According to the Ceph-based framework and the properties of MapReduce, we formulate the Mixed Integer Linear Programming (MILP) to obtain the optimal data placement. However, because of the large computational complexity of MILP, we devise an efficient algorithm to obtain the near-optimal solutions. The experimental results show that the proposed algorithm can achieve up to 25.6% improvement on system performance, compared with the original strategy implemented in Ceph.
机译:由于Ceph的高可用性,可靠性和可伸缩性,它已被广泛用作分布式对象存储和文件系统。由异构集群组成的Ceph中的数据放置策略会极大地影响系统性能和负载平衡。对于给定的应用程序,至关重要的是在Ceph中找到最佳的数据放置,以使应用程序的完成时间可以在负载平衡约束下最小化。本文提出了一个新颖的基于Ceph的框架,该框架综合考虑了负载平衡和异构性,包括计算能力和网络带宽。提出的框架适用于基于移动计算原理而不是跨集群数据的应用程序,例如MapReduce。根据基于Ceph的框架和MapReduce的属性,我们制定了混合整数线性规划(MILP)以获得最佳数据放置。但是,由于MILP的计算复杂性大,我们设计了一种有效的算法来获得近似最优的解。实验结果表明,与Ceph中实现的原始策略相比,该算法可以将系统性能提高25.6%。

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