首页> 外文期刊>International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences >HYBRID MODELING: FUSION OF A DEEP LEARNING APPROACH AND A PHYSICS-BASED MODEL FOR GLOBAL HYDROLOGICAL MODELING
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HYBRID MODELING: FUSION OF A DEEP LEARNING APPROACH AND A PHYSICS-BASED MODEL FOR GLOBAL HYDROLOGICAL MODELING

机译:混合建模:深入学习方法的融合与全球水文建模的基于物理学模型

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Process-based models of complex environmental systems incorporate expert knowledge which is often incomplete and uncertain. With the growing amount of Earth observation data and advances in machine learning, a new paradigm is promising to synergize the advantages of deep learning in terms of data adaptiveness and performance for poorly understood processes with the advantages of process-based modeling in terms of interpretability and theoretical foundations: hybrid modeling. Here, we present such an end-to-end hybrid modeling approach that learns and predicts spatial-temporal variations of observed and unobserved (latent) hydrological variables globally. The model combines a dynamic neural network and a conceptual water balance model, constrained by the water cycle observational products of evapotranspiration, runoff, snow-water equivalent, and terrestrial water storage variations. We show that the model reproduces observed water cycle variations very well and that the emergent relations of runoff-generating processes are qualitatively consistent with our understanding. The presented model is – to our knowledge – the first of its kind and may contribute new insights about the dynamics of the global hydrological system.
机译:基于过程的复杂环境系统模型包括专家知识,这些知识通常不完全和不确定。随着机器学习的越来越多的地球观测数据和进步,新的范式很有希望能够协同数据适应性和性能方面的优势,以便在可解释性方面的基于过程的建模的优势,并且理论基础:混合建模。在这里,我们介绍这种端到端的混合建模方法,其学习和预测全球观察和未观察的(潜在)水文变量的空间时间变化。该模型结合了动态神经网络和概念水平衡模型,受到蒸散,径流,雪水等效和地面储水变化的水循环观测产物的约束。我们表明,该模型再现了观察到的水循环变化,并且径流生成过程的紧急关系与我们的理解有质疑符合。呈现的模型是 - 我们的知识 - 它的第一个,可能有助于全球水文系统动态的新见解。

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