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首页> 外文期刊>Hydrology and Earth System Sciences >How does bias correction of regional climate model precipitation affect modelled runoff?
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How does bias correction of regional climate model precipitation affect modelled runoff?

机译:区域气候模型降水的偏差如何影响建模径流?

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摘要

Many studies bias correct daily precipitation from climate models to match the observed precipitation statistics, and the bias corrected data are then used for various modelling applications. This paper presents a review of recent methods used to bias correct precipitation from regional climate models (RCMs). The paper then assesses four bias correction methods applied to the weather research and forecasting (WRF) model simulated precipitation, and the follow-on impact on modelled runoff for eight catchments in southeast Australia. Overall, the best results are produced by either quantile mapping or a newly proposed two-state gamma distribution mapping method. However, the differences between the methods are small in the modelling experiments here (and as reported in the literature), mainly due to the substantial corrections required and inconsistent errors over time (non-stationarity). The errors in bias corrected precipitation are typically amplified in modelled runoff. The tested methods cannot overcome limitations of the RCM in simulating precipitation sequence, which affects runoff generation. Results further show that whereas bias correction does not seem to alter change signals in precipitation means, it can introduce additional uncertainty to change signals in high precipitation amounts and, consequently, in runoff. Future climate change impact studies need to take this into account when deciding whether to use raw or bias corrected RCM results. Nevertheless, RCMs will continue to improve and will become increasingly useful for hydrological applications as the bias in RCM simulations reduces.
机译:许多研究偏见了从气候模型中的每日降水,以匹配观察到的降水统计,然后将偏置校正数据用于各种建模应用。本文介绍了最近用于偏离区域气候模型(RCMS)的偏差沉淀的方法的审查。然后,该论文评估了应用于天气研究和预测(WRF)模型模拟​​降水的四种偏压校正方法,以及对澳大利亚东南部八个集水区建模径流的后续影响。总体而言,最佳结果是通过量子映射或新提出的两个状态伽马分布映射方法产生的。然而,在这里的建模实验中,方法之间的差异(并且在文献中报告),主要是由于所需的实质性校正和随时间的不一致误差(非公平性)。偏置校正降水中的误差通常在建模的径流中放大。测试方法不能克服rcm在模拟降水序列中的限制,这影响了径流生成。结果进一步表明,较偏置校正似乎没有改变降水装置中的变化信号,它可以引入额外的不确定度,以改变高降水量的信号,并且因此在径流中。在决定是否使用原始或偏见纠正的RCM结果时,将来需要考虑到这一点。然而,RCMS将继续改进,并且对于水文应用越来越有用,因为RCM模拟中的偏差减少。

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