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The importance of topography-controlled sub-grid process heterogeneity and semi-quantitative prior constraints in distributed hydrological models

机译:分布式水文模型中地形控制的子网格过程异质性和半定量先验约束的重要性

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Heterogeneity of landscape features like terrain, soil, and vegetation properties affects the partitioning of water and energy. However, it remains unclear to what extent an explicit representation of this heterogeneity at the sub-grid scale of distributed hydrological models can improve the hydrological consistency and the robustness of such models. In this study, hydrological process complexity arising from sub-grid topography heterogeneity was incorporated into the distributed mesoscale Hydrologic Model (mHM). Seven study catchments across Europe were used to test whether (1)?the incorporation of additional sub-grid variability on the basis of landscape-derived response units improves model internal dynamics, (2)?the application of semi-quantitative, expert-knowledge-based model constraints reduces model uncertainty, and whether (3)?the combined use of sub-grid response units and model constraints improves the spatial transferability of the model. brbr Unconstrained and constrained versions of both the original mHM and mHMtopo, which allows for topography-based sub-grid heterogeneity, were calibrated for each catchment individually following a multi-objective calibration strategy. In addition, four of the study catchments were simultaneously calibrated and their feasible parameter sets were transferred to the remaining three receiver catchments. In a post-calibration evaluation procedure the probabilities of model and transferability improvement, when accounting for sub-grid variability and/or applying expert-knowledge-based model constraints, were assessed on the basis of a set of hydrological signatures. In terms of the Euclidian distance to the optimal model, used as an overall measure of model performance with respect to the individual signatures, the model improvement achieved by introducing sub-grid heterogeneity to mHM in mHMtopo was on average 13?%. The addition of semi-quantitative constraints to mHM and mHMtopo resulted in improvements of 13 and 19?%, respectively, compared to the base case of the unconstrained mHM. Most significant improvements in signature representations were, in particular, achieved for low flow statistics. The application of prior semi-quantitative constraints further improved the partitioning between runoff and evaporative fluxes. In addition, it was shown that suitable semi-quantitative prior constraints in combination with the transfer-function-based regularization approach of mHM can be beneficial for spatial model transferability as the Euclidian distances for the signatures improved on average by 2?%. The effect of semi-quantitative prior constraints combined with topography-guided sub-grid heterogeneity on transferability showed a more variable picture of improvements and deteriorations, but most improvements were observed for low flow statistics.
机译:地形特征(如地形,土壤和植被)的异质性会影响水和能量的分配。但是,尚不清楚在分布式水文模型的子网格规模上这种异质性的显式表示能在多大程度上改善这种模型的水文一致性和鲁棒性。在这项研究中,由子网格地形异质性引起的水文过程复杂性被纳入分布式中尺度水文模型(mHM)。欧洲范围内的七个研究流域用于测试(1)是否在基于景观的响应单元的基础上合并其他子电网变异性改善了模型内部动力学,(2)半定量专家知识的应用基于模型的约束条件可以减少模型的不确定性,并且(3)组合使用子网格响应单元和模型约束条件是否可以提高模型的空间可传递性。 原始mHM和mHMtopo的无约束版本和受约束版本都允许基于地形的子网格异质性,并按照多目标校准策略分别对每个流域进行了校准。此外,同时对四个研究流域进行了校准,并将它们的可行参数集转移到了其余三个接收器流域。在校准后评估程序中,在考虑子电网变异性和/或应用基于专家知识的模型约束时,会基于一组水文特征来评估模型和可转移性改进的概率。就与最佳模型的欧几里得距离(作为针对各个特征的模型性能的整体度量)而言,通过将子网格异质性引入mHMtopo中的mHM所实现的模型改进平均为13%。与无约束的mHM的基本情况相比,向mHM和mHMtopo添加半定量约束分别提高了13%和19%。特别是对于低流量统计,实现了签名表示的最重大改进。先前的半定量约束的应用进一步改善了径流和蒸发通量之间的分配。另外,已经表明,合适的半定量先验约束与基于传递函数的mHM正则化方法相结合,对于空间模型的可传递性是有益的,因为签名的欧几里得距离平均提高了2%。半定量先验约束与地形引导的子网格异质性相结合对可传递性的影响显示出改善和恶化的变化情况更多,但在低流量统计中观察到了大多数改善。

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