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首页> 外文期刊>Catena: An Interdisciplinary Journal of Soil Science Hydrology-Geomorphology Focusing on Geoecology and Landscape Evolution >Spatially distributed data for erosion model calibration and validation: the Ganspoel and Kinderveld datasets.
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Spatially distributed data for erosion model calibration and validation: the Ganspoel and Kinderveld datasets.

机译:用于侵蚀模型校准和验证的空间分布数据:Ganspoel和Kinderveld数据集。

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Recent experience in distributed modelling has revealed that the performance of process-based erosion and hydrological models are extremely sensitive to parameter estimations and that predictions are often poor. It is also observed that quite different parameter sets may lead to very similar results and that no 'best' parameter set can be identified. In this study, we describe a dataset that offers possibilities for improved evaluation and parameterisation of spatially distributed soil erosion models. The dataset combines rainfall, runoff and sediment discharge data collected at the outlet and field surveys within the catchments that describe soil surface characteristics and soil erosion features. This offers clear advantages over traditional model evaluation as not only the simulated overall system response, integrated over time and space, but also the simulated internal system dynamics can be compared with measured data. The paper discusses and illustrates the use of the dataset to narrow uncertainties associated with model predictions..
机译:分布式建模的最新经验表明,基于过程的侵蚀和水文模型的性能对参数估计极为敏感,并且预测通常很差。还观察到,完全不同的参数集可能会导致非常相似的结果,并且无法确定“最佳”参数集。在这项研究中,我们描述了一个数据集,它为改进空间分布的土壤侵蚀模型的评估和参数化提供了可能性。该数据集结合了在流域的出口和实地调查中收集的降雨,径流和沉积物排放数据,这些数据描述了土壤表面特征和土壤侵蚀特征。与传统的模型评估相比,这具有明显的优势,因为不仅可以将模拟的整个系统响应随时间和空间进行积分,而且还可以将模拟的内部系统动力学与测量数据进行比较。本文讨论并说明了使用数据集来缩小与模型预测相关的不确定性。

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