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Conditioning model output statistics of regional climate model precipitation on circulation patterns

机译:环流模式下区域气候模式降水的条件模型输出统计

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Dynamical downscaling of Global Climate Models (GCMs) through regional climate models (RCMs) potentially improves the usability of the output for hydrological impact studies. However, a further downscaling or interpolation of precipitation from RCMs is often needed to match the precipitation characteristics at the local scale. This study analysed three Model Output Statistics (MOS) techniques to adjust RCM precipitation; (1) a simple direct method (DM), (2) quantile-quantile mapping (QM) and (3) a distribution-based scaling (DBS) approach. The modelled precipitation was daily means from 16 RCMs driven by ERA40 reanalysis data over the 1961–2000 provided by the ENSEMBLES (ENSEMBLE-based Predictions of Climate Changes and their Impacts) project over a small catchment located in the Midlands, UK. All methods were conditioned on the entire time series, separate months and using an objective classification of Lamb's weather types. The performance of the MOS techniques were assessed regarding temporal and spatial characteristics of the precipitation fields, as well as modelled runoff using the HBV rainfall-runoff model. The results indicate that the DBS conditioned on classification patterns performed better than the other methods, however an ensemble approach in terms of both climate models and downscaling methods is recommended to account for uncertainties in the MOS methods.
机译:通过区域气候模型(RCM)动态缩小全球气候模型(GCM)的规模可能会改善水文影响研究结果的可用性。但是,通常需要对RCM的降水进行进一步缩减或内插,以匹配当地尺度的降水特征。这项研究分析了三种用于调整RCM降水的模型输出统计(MOS)技术; (1)简单直接方法(DM),(2)分位数-分位数映射(QM)和(3)基于分布的缩放(DBS)方法。建模的降水量是由ENSEMBLES(基于ENSEMBLE的气候变化及其影响预测)项目提供的1961-2000年ERA40再分析数据驱动的16个RCM的日均值,该项目位于英国中部地区的一个小流域。所有方法均以整个时间序列,不同月份以及使用Lamb的天气类型的客观分类为条件。对MOS技术的性能进行了评估,涉及降水场的时空特征,以及使用HBV降雨径流模型对径流进行建模。结果表明,以分类模式为条件的星展银行比其他方法表现更好,但是,建议在气候模型和降尺度方法方面采用整体方法来解决MOS方法的不确定性。

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