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Mapping rainfall hazard based on rain gauge data: an objective cross-validation framework for model selection

机译:基于雨量计数据的映射降雨危害:用于模型选择的客观交叉验证框架

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摘要

We propose an objective framework for selecting rainfall hazard mapping models in a region starting from rain gauge data. Our methodology is based on the evaluation of several goodness-of-fit scores at regional scale in a cross-validation framework, allowing us to assess the goodness-of- fit of the rainfall cumulative distribution functions within the region but with a particular focus on their tail. Cross-validation is applied both to select the most appropriate statistical distribution at station locations and to validate the mapping of these distributions. To illustrate the framework, we consider daily rainfall in the Ardeche catchment in the south of France, a 2260 km(2) catchment with strong inhomogeneity in rainfall distribution. We compare several classical marginal distributions that are possibly mixed over seasons and weather patterns to account for the variety of climato-logical processes triggering precipitation, and several classical mapping methods. Among those tested, results show a preference for a mixture of Gamma distribution over seasons and weather patterns, with parameters interpolated with thin plate spline across the region.
机译:我们提出了一个客观框架,用于从雨量仪数据开始的区域中选择降雨危险映射模型。我们的方法基于在交叉验证框架中评估区域规模的若干拟合评分,允许我们评估该地区内降雨累计分布函数的良好,但特别关注他们的尾巴。应用交叉验证,以便在站点找到最合适的统计分布,并验证这些分布的映射。为了说明该框架,我们考虑在法国南部的Ardeche集水区中的每日降雨,2260公里(2)个集水区,在降雨分布中具有强烈的不均匀性。我们比较了几种可能混合在季节和天气模式的经典边缘分布,以考虑触发降水的多样化逻辑过程,以及几种古典映射方法。在那些测试中,结果表明,伽马分布在季节和天气模式的混合物偏好,参数与该地区的薄板样条插值。

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