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Real-Time Change Point Detection with Application to Smart Home Time Series Data

机译:使用应用于智能家庭时间序列数据的实时更改点检测

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摘要

Change Point Detection (CPD) is the problem of discovering time points at which the behavior of a time series changes abruptly. In this paper, we present a novel real-time nonparametric change point detection algorithm called SEP, which uses Separation distance as a divergence measure to detect change points in high-dimensional time series. Through experiments on artificial and real-world datasets, we demonstrate the usefulness of the proposed method in comparison with existing methods.
机译:更改点检测(CPD)是发现时间序列的行为突然变化的时间点的问题。在本文中,我们介绍了一种名为SEP的新型实时非参数改变点检测算法,其使用分离距离作为发散度量来检测高维时间序列中的变化点。通过对人工和现实世界数据集的实验,我们展示了与现有方法相比所提出的方法的有用性。

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