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Application of the generalized likelihood uncertainty estimation (GLUE) approach for assessing uncertainty in hydrological models: A review

机译:广义似然不确定性估计(GLUE)方法在水文模型不确定性评估中的应用

摘要

The generalized likelihood uncertainty estimation (GLUE) technique is an innovative uncertainty method that is often employed with environmental simulation models. Over the past years, hydrological literature has seen a large increase in the number of papers dealing with uncertainty. There are now a lot of citations to their original paper which illustrates GLUE tremendous impact. GLUE's popularity can be attributed to its simplicity and its applicability to nonlinear systems, including those for which a unique calibration is not apparent. The GLUE was introduced for use in uncertainty analysis of watershed models has now been extended well beyond rainfall-runoff watershed models. Given the widespread adoption of GLUE analyses for a broad range or problems, it is appropriate that the validity of the approach be examined with care. In this article, we present an overview of the application of GLUE for assessing uncertainty distribution in hydrological models particularly surface and subsurface hydrology and briefly describe algorithms for sampling of the prior parameter in hydrologic simulation models.
机译:广义似然不确定性估计(GLUE)技术是一种创新的不确定性方法,通常与环境仿真模型一起使用。在过去的几年中,水文文献已经发现有关不确定性的论文数量大大增加。现在,他们的原始论文被大量引用,这说明了GLUE的巨大影响。 GLUE的受欢迎程度可以归因于其简单性及其对非线性系统的适用性,包括那些没有明显校准的系统。引入GLUE用于分水岭模型的不确定性分析,现在已经远远超出了降雨径流分水岭模型。鉴于GLUE分析已广泛应用于广泛的问题,因此,应仔细检查该方法的有效性。在本文中,我们概述了GLUE在评估水文模型(尤其是地表和地下水文)中的不确定性分布方面的应用,并简要介绍了水文模拟模型中先验参数采样的算法。

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