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Variational data assimilation with the YAO platform for hydrological forecasting

机译:与瑶族水文预报平台的变分数据同化

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In this study data assimilation based on variational assimilation was implemented with the HBV hydrological model using the YAO platform of University Pierre and Marie Curie (France). The principle of the variational assimilation is to consider the model state variables as control variables and optimise them by minimizing a cost function measuring the disagreement between observations and model simulations. The variational assimilation is used for the hydrological forecasting. In this case four state variables of the rainfall-runoff model HBV (those related to soil water content in the water balance tank and to water contents in rooting tanks) are considered as control variables. They were updated through the 4D-VAR procedure using daily discharge incoming information. The Serein basin in France was studied and a high level of forecasting accuracy was obtained with variational assimilation allowing flood anticipation.
机译:在这项研究中,使用大学皮埃尔和玛丽居里(法国)的姚平台,利用HBV水文模型实施了基于分析同化的数据同化。变分同化的原理是将模型状态变量视为控制变量,并通过最小化测量观察和模型模拟之间分歧的成本函数来优化它们。变分同化用于水文预报。在这种情况下,降雨径流模型HBV的四种状态变量(与水平衡箱中的土壤水含量和生根罐中的水含量有关)被认为是控制变量。它们使用每日排放传入信息通过4D-VAR程序更新。研究了法国的Serein盆地,并获得了高水平的预测精度,随变分同化允许洪水预期。

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