企业计算系统到达数据分解预测的实证研究

Linh Ngo, A. Apon, D. Hoffman
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引用次数: 2

摘要

本研究利用几种众所周知的预测技术,结合经验模式分解(EMD)来研究EMD的分解(筛选)步骤在预测企业集群到达工作量方面的权衡。这项研究是基于早期关于EMD预测潜力的工作。结果表明,EMD有助于提高预测结果。并行化用于在整个数据范围内执行广泛的调查。未来的研究是增加统计信心,当EMD被用作预测的分解方法时,可能的改进水平。
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An Empirical Study on Forecasting Using Decomposed Arrival Data of an Enterprise Computing System
This research utilizes several well known forecasting techniques in combination with Empirical Mode Decomposition (EMD) to investigate the trade-offs of EMD's decomposition (sifting) step for forecasting the arrival workload of an enterprise cluster. The research is based on earlier work on the forecasting potential of EMD. Results show that EMD helps to improve forecasting results. Parallelization is used to perform extensive investigation across the full range of data. Future research is to increase the statistical confidence in the level of improvements possible when EMD is used as a decomposition method for forecasting.
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