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Dynamic Load Balancing in Data Grids by Global Load Estimation

机译:通过全局负载估计在数据网格中的动态负载平衡

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Peer-to-Peer (P2P) technology can be utilized to combine remote resources and build distributed, high performance database systems, called data grids, which help to handle the rapidly increasing volumes of data produced by disciplines like astrophysics, biology, or geology. One major challenge of data grids are skewed query patterns which cause load imbalances and heavily diminish performance and availability. To avoid hot spots, sophisticated load balancing techniques are required. We present a dynamic replication strategy which prevents hot spots by dynamically replicating the hot data on different locations. The main questions of such a strategy are when to copy which data to what receivers and when to delete the copies. To answer these questions we propose a low-overhead, decentralized method which is able to deliver a highly accurate estimate of the global load and the single peer loads to all clients. We use that information in an optimization problem to determine the data to be replicated and the optimal replica receivers. A simulated performance evaluation based on a real-world scenario demonstrates the effectiveness of the approach.
机译:对等网络(P2P)技术可用于远程资源和构建分布式,高性能数据库系统,称为数据网格相结合,这有助于处理由像天体物理学,生物学或地质学学科产生的数据的迅速增加体积。数据网格的一个主要挑战是偏斜的查询模式,导致负载不平衡和严重减少性能和可用性。为避免热点,需要复杂的负载平衡技术。我们提出了一种动态复制策略,它通过动态复制不同位置的热数据来防止热点。这种策略的主要问题是何时将哪些数据复制到哪些接收器以及何时删除副本。要回答这些问题,我们提出了一个低开销的分散方法,该方法能够提供对所有客户端的全局负载和单个对等负载的高度准确估计。我们在优化问题中使用该信息来确定要复制的数据和最佳副本接收器。基于真实情景的模拟性能评估证明了该方法的有效性。

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