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Hydrological post-processing based on approximate Bayesian computation (ABC)

机译:基于近似贝叶斯计算的水文后处理(ABC)

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摘要

This study introduces a method to quantify the conditional predictive uncertainty in hydrological post-processing contexts when it is cumbersome to calculate the likelihood (intractable likelihood). Sometimes, it can be difficult to calculate the likelihood itself in hydrological modelling, specially working with complex models or with ungauged catchments. Therefore, we propose the ABC post-processor that exchanges the requirement of calculating the likelihood function by the use of some sufficient summary statistics and synthetic datasets. The aim is to show that the conditional predictive distribution is qualitatively similar produced by the exact predictive (MCMC post-processor) or the approximate predictive (ABC post-processor). We also use MCMC post-processor as a benchmark to make results more comparable with the proposed method. We test the ABC post-processor in two scenarios: (1) the Aipe catchment with tropical climate and a spatially-lumped hydrological model (Colombia) and (2) the Oria catchment with oceanic climate and a spatially-distributed hydrological model (Spain). The main finding of the study is that the approximate (ABC post-processor) conditional predictive uncertainty is almost equivalent to the exact predictive (MCMC post-processor) in both scenarios.
机译:本研究介绍了一种方法,用于计算水文后处理背景下的条件预测性不确定性,当计算可能性(顽固似然性)时是繁琐的。有时,可以难以计算水文建模中的可能性本身,专门使用复杂的模型或与未凝固的集水区一起使用。因此,我们提出了通过使用一些充分的摘要统计和合成数据集来交换计算似然函数的ABC后处理器。目的是表明,通过精确的预测性(MCMC后处理器)或近似预测性(ABC后处理器)产生了条件预测分布。我们还使用MCMC后处理器作为基准,以使结果与所提出的方法相当。我们在两种情况下测试ABC后处理器:(1)具有热带气候的AIPE集水和空间 - 集失水文模型(哥伦比亚)和(2)与海洋气候的奥利亚集水区和空间分布的水文模型(西班牙) 。研究的主要发现是,近似(ABC后处理器)条件预测性不确定性几乎相当于这两种情况中的精确预测性(MCMC后处理器)。

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