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Detecting structural breaks in time series via genetic algorithms

机译:通过遗传算法检测时间序列中的结构断裂

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Detecting structural breaks is an essential task for the statistical analysis of time series, for example, for fitting parametric models to it. In short, structural breaks are points in time at which the behaviour of the time series substantially changes. Typically, no solid background knowledge of the time series under consideration is available. Therefore, a black-box optimization approach is our method of choice for detecting structural breaks. We describe a genetic algorithm framework which easily adapts to a large number of statistical settings. To evaluate the usefulness of different crossover and mutation operations for this problem, we conduct extensive experiments to determine good choices for the parameters and operators of the genetic algorithm. One surprising observation is that use of uniform and one-point crossover together gave significantly better results than using either crossover operator alone. Moreover, we present a specific fitness function which exploits the sparse structure of the break points and which can be evaluated particularly efficiently. The experiments on artificial and real-world time series show that the resulting algorithm detects break points with high precision and is computationally very efficient. A reference implementation with the data used in this paper is available as an applet at the following address: http://www.imm.dtu.dk/similar to pafi/TSX/. It has also been implemented as package SBRect for the statistics language R.
机译:检测结构中断是时间序列统计分析的重要任务,例如,用于拟合参数模型。简而言之,结构断裂是时间序列的行为大大改变的时间点。通常,可提供所考虑的时间序列的实体背景知识。因此,黑匣子优化方法是我们检测结构突破的首选方法。我们描述了一种遗传算法框架,可容易地适应大量统计设置。为了评估不同交叉和突变操作的有用性,我们进行了广泛的实验,以确定遗传算法的参数和运营商的良好选择。一个令人惊讶的观察是,使用均匀和单点交叉的使用比使用单独的交叉操作者在一起的结果显着更好。此外,我们介绍了一种特定的健身功能,其利用断点的稀疏结构,并且可以特别有效地评估该特定的健身功能。人工和实世界时间序列的实验表明,所得算法检测高精度的断点,并且计算地非常有效。本文中使用的数据的参考实现可用作以下地址的applet:http://www.imm.dtu.dk/similar与pafi / tsx /。它也被实施为统计语言R的包攻击。

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