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Spatially weighted functional clustering of river network data

机译:河网数据的空间加权功能聚类

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摘要

Incorporating spatial covariance into clustering has previously been considered for functional data to identify groups of functions which are similar across space. However, in the majority of situations that have been considered until now the most appropriate metric has been Euclidean distance. Directed networks present additional challenges in terms of estimating spatial covariance due to their complex structure. Although suitable river network covariance models have been proposed for use with stream distance, where distance is computed along the stream network, these models have not been extended for contexts where the data are functional, as is often the case with environmental data. The paper develops a method of calculating spatial covariance between functions from sites along a river network and applies the measure as a weight within functional hierarchical clustering. Levels of nitrate pollution on the River Tweed in Scotland are considered with the aim of identifying groups of monitoring stations which display similar spatiotemporal characteristics.
机译:以前已经考虑过将空间协方差纳入聚类中以获取功能数据,以识别跨空间相似的功能组。但是,到目前为止,在大多数情况下,最合适的度量标准是欧几里得距离。定向网络由于其复杂的结构而在估计空间协方差方面提出了其他挑战。尽管已经提出了适用于河流距离的河网协方差模型,其中距离是沿着河流网络计算的,但这些模型尚未扩展到数据正常运行的环境,如环境数据通常如此。本文提出了一种计算沿河网站点功能之间空间协方差的方法,并将该度量作为权重在功能层次聚类中应用。考虑确定苏格兰特威德河上硝酸盐的污染水平,目的是确定显示相似时空特征的监测站组。

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