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首页> 外文期刊>Journal of Climate >Clustering of maxima: spatial dependencies among heavy rainfall in France.
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Clustering of maxima: spatial dependencies among heavy rainfall in France.

机译:最大值的聚类:法国强降雨之间的空间依赖性。

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摘要

One of the main objectives of statistical climatology is to extract relevant information hidden in complex spatial-temporal climatological datasets. To identify spatial patterns, most well-known statistical techniques are based on the concept of intra- and intercluster variances (like the k-means algorithm or EOFs). As analyzing quantitative extremes like heavy rainfall has become more and more prevalent for climatologists and hydrologists during these last decades, finding spatial patterns with methods based on deviations from the mean (i.e., variances) may not be the most appropriate strategy in this context of studying such extremes. For practitioners, simple and fast clustering tools tailored for extremes have been lacking. A possible avenue to bridging this methodological gap resides in taking advantage of multivariate extreme value theory, a well-developed research field in probability, and to adapt it to the context of spatial clustering. In this paper, a novel algorithm based on this plan is proposed and studied. The approach is compared and discussed with respect to the classical k-means algorithm throughout the analysis of weekly maxima of hourly precipitation recorded in France (fall season, 92 stations, 1993-2011).Digital Object Identifier http://dx.doi.org/10.1175/JCLI-D-12-00836.1
机译:统计气候学的主要目标之一是提取隐藏在复杂的时空气候数据集中的相关信息。为了识别空间模式,最著名的统计技术都基于集群内和集群间方差的概念(例如k均值算法或EOF)。在过去的几十年中,随着诸如降雨之类的定量极端现象在气候学家和水文学家中变得越来越普遍,在这种研究背景下,采用基于均值偏差(即方差)的方法寻找空间格局可能不是最合适的策略这样的极端。对于从业者,缺乏针对极端情况量身定制的简单快速的聚类工具。弥合这种方法学鸿沟的一种可能途径是利用多元极值理论(概率论的一个发达领域)并使之适应空间聚类的环境。本文提出并研究了一种基于该方案的新算法。通过对法国记录的每小时每小时最大降水量的分析(秋季,92站,1993-2011),对经典k-均值算法进行了比较和讨论。组织/10.1175/JCLI-D-12-00836.1

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