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A Forecasting Capability Study of Empirical Mode Decomposition for the Arrival Time of a Parallel Batch System

机译:并行批处理系统到达时间的经验模式分解预测能力研究

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This paper demonstrates the feasibility and potential of applying empirical mode decomposition (EMD) to forecast the arrival time behaviors in a parallel batch system. An analysis of the workload records shows the existence of daily and weekly patterns within the workload. Results show that the intrinsic mode functions (IMF), products of the sifting/decomposition process of EMD, produce a better prediction than the original arrival histogram when used in a simple weight-matching prediction technique. Promising applications include the implementation of an EMDeural network combination.
机译:本文演示了应用经验模式分解(EMD)预测并行批处理系统中到达时间行为的可行性和潜力。对工作负载记录的分析表明,工作负载中存在每日和每周模式。结果表明,在简单的权重匹配预测技术中,EMD的筛选/分解过程的乘积固有模式函数(IMF)产生比原始到达直方图更好的预测。有希望的应用包括EMD /神经网络组合的实现。

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