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Iterative multiscale dynamic time warping (IMs-DTW): a tool for rainfall time series comparison

机译:迭代多尺度动态时间翘曲(IMS-DTW):降雨时间序列比较的工具

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摘要

In many domains, such as weather forecasting, hydrology or civil protection, it is an important issue to characterize rainfall variability and intermittency in, either or both, a given time period or area. A variety of sensors, for instance, rain gauges, weather radars and satellites, are widely used for this purpose. Techniques to establish the similarity between rainfall time series are commonly based on the comparison of some extracted characteristic parameters (cumulative rainfall height, extreme values, rain occurrence, mean rain rate, etc.). The present study focuses on the development of a tool allowing to compare directly rainfall time series at a fine temporal scale. It allows quantifying the dissimilarity between the time series and determining a nonlinear relationship between their time axes. This study presents an algorithm based on a multiscale dynamic time warping approach, and it is based on the DTW algorithm applied on an iterative multiscale framework called IMs-DTW. This proposed algorithm is well suited for rain time series allowing point-to-point pairing between pairs of rainfall time. It takes the intermittency and the non-stationarity of the precipitation process into account. An application to measurements observed by four pluviometers located in the Paris area makes it possible to interpret the obtained results and to compare the IMs-DTW with more usual statistical features.
机译:在许多域名,例如天气预报,水文或民用保护,它是在给定的时间段或地区的降雨变异性和间歇性的一个重要问题。例如,雨量仪,气象雷达和卫星的各种传感器被广泛用于此目的。建立降雨时间序列之间的相似性的技术通常是基于一些提取的特征参数的比较(累积降雨高度,极端值,雨量,平均雨率等)。本研究侧重于开发工具,允许以精细的时间尺度进行比较直接降雨时间序列。它允许量化时间序列之间的不相似性并确定其时轴之间的非线性关系。本研究介绍了一种基于多尺度动态时间翘曲方法的算法,它基于应用于IMS-DTW的迭代多尺度框架的DTW算法。这一提出的算法非常适合雨水时间序列,允许点对点配对在降雨量的成对之间。考虑到降水过程的间歇性和非公平性。对位于巴黎区域中的四个Pluviometers观察到的测量的应用使得可以解释所获得的结果并将IMS-DTW与更常见的统计特征进行比较。

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