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首页> 外文期刊>Journal of Hydrology >A modular class of multisite monthly rainfall generators for water resource management and impact studies
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A modular class of multisite monthly rainfall generators for water resource management and impact studies

机译:用于水资源管理和影响研究的模块化多站点每月降雨产生器类

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This study introduces a class of stochastic multisite monthly rainfall generators devised for application in water resources management problems, such as the sensitivity analysis of droughts and extreme rainfall scenarios under external climatic and non-climatic forcing mechanisms. The modelling framework relies on three elements: (1) a classical deseasonalisation scheme based on log-transformed observations, (2) the nonparametric bootstrap resampling approach and (3) parametric Generalized Additive Models for Location, Scale and Shape (GAMLSS). As the bootstrap and GAMLSS modules are alternative techniques for simulating each month, the free choice between them makes the structure of the model modular and flexible, so that it can be easily adapted to different climatic conditions, and can be customized based on the specific water resource problem. The model was set up and calibrated to simulate monthly rainfall from six locations in England and Wales to produce a suitable input for drought analysis. The results of the case study point out that the model can capture several characteristics of the rainfall series. In particular, it enables the simulation of low and high rainfall scenarios more extreme than those observed as well as the reproduction of the distribution of the annual accumulated rainfall, and of the relationship between the rainfall and circulation indices such as North Atlantic Oscillation (NAO) and Sea Surface Temperature (SST), thus making the framework well-suited for sensitivity analysis under alternative climate scenarios and additional forcing variables.
机译:本研究介绍了一类用于在水资源管理问题中应用的随机多站点月度降雨生成器,例如在外部气候和非气候强迫机制下的干旱敏感性和极端降雨情景。建模框架依赖于三个要素:(1)基于对数转换的观察结果的经典反季节化方案;(2)非参数自举重采样方法;(3)位置,尺度和形状的参数化通用加性模型(GAMLSS)。由于bootstrap和GAMLSS模块是每月模拟的替代技术,因此它们之间的自由选择使模型的结构模块化和灵活,因此可以轻松地适应不同的气候条件,并可以根据特定的水量进行定制资源问题。该模型的建立和校准可以模拟英格兰和威尔士六个地方的每月降雨量,从而为干旱分析提供合适的输入。案例研究结果表明,该模型可以捕获降雨序列的几个特征。尤其是,它使模拟高低压情景比观测到的更加极端,并且可以再现年累积降水量的分布以及诸如北大西洋涛动(NAO)之类的降雨与环流指数之间的关系。和海表温度(SST),因此使该框架非常适合在替代气候情景和其他强迫变量下进行敏感性分析。

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