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首页> 外文期刊>Journal of hydrologic engineering >Probabilistic Graphical Modeling Method for Inferring Hydraulic Conductivity Maps from Hydraulic Head Maps
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Probabilistic Graphical Modeling Method for Inferring Hydraulic Conductivity Maps from Hydraulic Head Maps

机译:从水力水头图推断水力电导率图的概率图形建模方法

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摘要

The ability to design and employ groundwater distribution models plays an important role in the development and application of regional water management policies and resource exploration. This paper presents a probabilistic reasoning approach for estimating ground-water levels over a geological map based on a limited number of available observations of hydraulic head and conductivity levels. The approach adapts, expands, and combines non-Euclidean distance kriging, probabilistic graphical modeling, and expectation maximization to provide a viable alternative to the currently existing, simulation-based methods of spatial interpolation. Upon outlining a conceptual framework for the proposed approach, this paper investigates the feasibility of using its key component, the Markov random field, with a flexible (learned) structure that recovers hydraulic conductivity maps from the knowledge of hydraulic head on those maps. The model is trained on a medium-sized data set of simulated hydraulic maps, and returns promising results. The paper also motivates future work in the area, pointing out several research directions.
机译:设计和采用地下水分布模型的能力在区域水管理政策和资源勘探的开发和应用中起着重要作用。本文基于有限数量的可用水头和电导率观测资料,提出了一种概率推理方法,用于估算地质图上的地下水位。该方法适应,扩展和结合了非欧几里德距离克里金法,概率图形建模和期望最大化,为当前现有的基于模拟的空间插值方法提供了可行的替代方法。在概述了提出的方法的概念框架后,本文研究了使用其关键组件马尔可夫随机场以及具有灵活(学习)结构的可行性,该结构可以从那些图上的液压头知识中恢复出液压传导率图。该模型在模拟水力图的中等大小的数据集上训练,并返回有希望的结果。该论文还激励了该领域的未来工作,指出了一些研究方向。

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