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Iteration aware prefetching for remote data access

机译:用于远程数据访问的迭代意识预取

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Although processing speed, storage capacity and network bandwidth are steadily increasing, network latency remains a bottleneck for scientists accessing large remote data sets. This problem is most acute with n-dimensional data. Grid researchers have only recently begun to develop tools for efficient remote access to n-dimensional data sets. Within the context of the Granite Scientific Database system, we show that latency penalties can be dramatically reduced using explicit knowledge of a user's access pattern represented as an iterator. The iterator not only performs an n-dimensional iteration for the user, but also communicates the access pattern to Granite so that a prefetching cache can be constructed that is tuned to the user's access pattern. We experimentally evaluate a scenario for incorporating Granite's prefetching mechanism into the grid, demonstrating extraordinary performance gains. In light of these results, we describe planned additions to existing grid services to allow selection of datasets according to the user access pattern.
机译:尽管处理速度,存储容量和网络带宽正在稳步增加,网络延迟仍然是科学家访问大型远程数据集的瓶颈。这个问题是最严重的与n维数据。网格的研究人员最近才开始制定到n维数据集的高效的远程访问工具。在花岗岩科学数据库系统的情况下,我们表明,延迟罚款可以使用用户的访问模式的显性知识表示为一个迭代急剧下降。迭代器不仅执行用户的n维迭代,而且还进行通信的存取模式到花岗岩,使得预取高速缓冲存储器可被构成,即是调谐到用户的访问模式。我们通过实验评估纳入花岗岩的预取机制并入电网,展示非凡的性能提升的情况。在这些结果来看,我们描述的计划增补现有网格服务允许根据用户访问模式数据集的选择。

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