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A wavelet-based nonparametric CUSUM control chart for autocorrelated processes with applications to network surveillance

机译:基于小波的非参数CUSUM控制图,用于自相关过程及其在网络监控中的应用

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摘要

Statistical process control (SPC) has natural applications in data network surveillance. However, network data are commonly autocorrelated, which presents challenges to the basic SPC methods. Most existing SPC methods for correlated data assume parametric models to account for the correlation structure within the data. Those model assumptions can be difficult to justify in practice. In this paper, we propose a nonparametric cumulative sum (CUSUM) control chart for autocorrelated processes. In our proposed approach, we incorporate a wavelet decomposition and a nonparametric multivariate CUSUM control chart to obtain a robust procedure for autocorrelated processes without distribution assumptions. Extensive simulations show that the procedure appropriately controls the in-control average run length and also has good sensitivity for detecting location shifts.
机译:统计过程控制(SPC)在数据网络监视中具有自然的应用。但是,网络数据通常是自相关的,这给基本的SPC方法提出了挑战。大多数用于关联数据的现有SPC方法都采用参数模型来说明数据中的关联结构。这些模型假设在实践中可能难以证明。在本文中,我们提出了一种用于自相关过程的非参数累积和(CUSUM)控制图。在我们提出的方法中,我们结合了小波分解和非参数多元CUSUM控制图,以在没有分布假设的情况下获得自相关过程的鲁棒过程。大量的仿真表明,该程序可以适当控制控制中的平均行程长度,并且对于检测位置偏移也具有良好的灵敏度。

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