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首页> 外文期刊>Hydrological sciences journal >Real-time assimilation of streamflow observations into a hydrological routing model: effects of model structures and updating methods
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Real-time assimilation of streamflow observations into a hydrological routing model: effects of model structures and updating methods

机译:实时将水流观测值同化到水文路径模型中:模型结构和更新方法的影响

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This paper comparatively assesses the performance of five data assimilation techniques for three-parameter Muskingum routing with a spatially lumped or distributed model structure. The assimilation techniques used include direct insertion (DI), nudging scheme (NS), Kalman filter (KF), ensemble Kalman filter (EnKF) and asynchronous ensemble Kalman filter (AEnKF), which are applied to river reaches in Texas and Louisiana, USA. For both lumped and distributed routing, results from KF, EnKF and AEnKF are sensitive to the error specification. As expected, DI outperformed the other models in the case of lumped modelling, while in distributed routing, KF approaches, particularly AEnKF and EnKF, performed better than DI or nudging, reflecting the benefit of updating distributed states through error covariance modelling in KF approaches. The results of this work would be useful in setting up data assimilation systems that employ increasingly abundant real-time observations using distributed hydrological routing models.
机译:本文比较性地评估了具有空间集总或分布式模型结构的三参数Muskingum路由的五种数据同化技术的性能。使用的同化技术包括直接插入(DI),微调方案(NS),卡尔曼滤波器(KF),集成卡尔曼滤波器(EnKF)和异步集成卡尔曼滤波器(AEnKF),这些技术应用于美国得克萨斯州和路易斯安那州的河段。对于集中式路由和分布式路由,KF,EnKF和AEnKF的结果对错误规范都很敏感。不出所料,在集总建模的情况下,DI优于其他模型,而在分布式路由中,KF方法(尤其是AEnKF和EnKF)的性能要优于DI或轻推,这反映出通过KF方法中的误差协方差建模更新分布式状态的好处。这项工作的结果对于建立数据同化系统很有用,该系统利用分布式水文航路模型利用越来越丰富的实时观测数据。

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