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A new region-aware bias-correction method for simulated precipitation in areas of complex orography

机译:复杂地形区模拟降水的一种新的区域感知偏差校正方法

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Regional climate modelling is used to simulate the hydrological cycle, which is fundamental for climate impact investigations. However, the output of these models is affected by biases that hamper its direct use in impact modelling. Here, we present two high-resolution (2?km) climate simulations of precipitation in the Alpine region, evaluate their performance over Switzerland and develop a new bias-correction technique for precipitation suitable for complex topography. The latter is based on quantile mapping, which is applied separately across a number of non-overlapping regions defined through cluster analysis. This technique allows removing prominent biases while it aims at minimising the disturbances to the physical consistency inherent in all statistical corrections of simulated data. The simulations span the period 1979–2005 and are carried out with the Weather Research and Forecasting model (WRF), driven by the ERA-Interim reanalysis (hereafter WRF-ERA), and the Community Earth System Model (hereafter WRF-CESM). The simulated precipitation is in both cases validated against observations in Switzerland. In a first step, the area is classified into regions of similar temporal variability of precipitation. Similar spatial patterns emerge in all datasets, with a clear northwest–southeast separation following the main orographic features of this region. The daily evolution and the annual cycle of precipitation in WRF-ERA closely reproduces the observations. Conversely, WRF-CESM shows a different seasonality with peak precipitation in winter and not in summer as in the observations or in WRF-ERA. The application of the new bias-correction technique minimises systematic biases in the WRF-CESM simulation and substantially improves the seasonality, while the temporal and physical consistency of simulated precipitation is greatly preserved.
机译:区域气候模型用于模拟水文循环,这是进行气候影响调查的基础。但是,这些模型的输出会受到一些偏见的影响,这些偏见会妨碍其直接在影响建模中使用。在这里,我们介绍了两个高分辨率(2公里)的高山地区降水气候模拟,评估了它们在瑞士的表现,并开发了一种适用于复杂地形的降水校正新技术。后者基于分位数映射,该分位数映射分别应用于通过聚类分析定义的多个非重叠区域。该技术可以消除明显的偏差,同时旨在最大程度地减少对模拟数据的所有统计校正中固有的物理一致性造成的干扰。这些模拟跨越1979-2005年,并通过ERA临时再分析(以下简称WRF-ERA)和社区地球系统模型(以下简称WRF-CESM)驱动的天气研究和预报模型(WRF)进行。两种情况下的模拟降水都对照瑞士的观测进行了验证。第一步,将该区域分类为降水时间变化类似的区域。在所有数据集中都出现了类似的空间格局,并遵循该地区的主要地形特征,形成了明显的西北向东南分离。 WRF-ERA的每日演变和年降水周期与观测值密切相关。相反,WRF-CESM表现出不同的季节变化,在冬季而不是在夏季或在WRF-ERA中出现峰值降水。新的偏差校正技术的应用最大程度地减少了WRF-CESM模拟中的系统偏差,并大大改善了季节性,同时极大地保留了模拟降水的时间和物理一致性。

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