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A Load Balancing Strategy for Computations on Large, Read-Only Data Sets

机译:用于大型只读数据集的计算的负载平衡策略

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摘要

As data repositories grow larger, it becomes increasingly difficult to transmit a large volume of data and handle several simultaneous data requests. One solution is to use a cluster of workstations for data storage. The challenge, however, is to balance the system load, since these requests may appear and change continuously. In this paper, a new method for load balancing requests on such large data sets is developed. The motivation for our method is systems where large geological data sets are rendered in real-time by a homogeneous computational cluster. The goal is to expand this system to accommodate multiple simultaneous clients. Our method assumes that the large input sets may be examined in advance, and uses simple, continuous functions to approximate the discrete costs associated with each data element. Finally, we show that partitioning a data set using our method involves very little overhead.
机译:随着数据存储库的增大,传输大量数据和处理多个同时发生的数据请求变得越来越困难。一种解决方案是使用工作站集群进行数据存储。但是,挑战在于平衡系统负载,因为这些请求可能会出现并不断变化。在本文中,开发了一种用于在如此大的数据集上进行负载平衡请求的新方法。我们的方法的动机是通过同类计算集群实时绘制大型地质数据集的系统。目标是扩展该系统以容纳多个同时的客户端。我们的方法假定可以预先检查较大的输入集,并使用简单的连续函数来估算与每个数据元素相关的离散成本。最后,我们证明了使用我们的方法对数据集进行分区的开销很小。

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