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Applications of Bayesian belief networks in water resource management: A systematic review

机译:贝叶斯信念网络在水资源管理中的应用:系统综述

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摘要

Bayesian belief networks (BBNs) are probabilistic graphical models that can capture and integrate both quantitative and qualitative data, thus accommodating data-limited conditions. This paper systematically reviews applications of BBNs with respect to spatial factors, water domains, and the consideration of climate change impacts. The methods used for constructing and validating BBN models, and their applications in different forms of decision-making support are examined. Most reviewed publications originate from developed countries (70%), in temperate climate zones (42%), and focus mainly on water quality (42%). In 60% of the reviewed applications model validation was based on the expert or stakeholder evaluation and sensitivity analysis, and whilst in 27% model performance was not discussed. Most reviewed articles applied BBNs in strategic decision-making contexts (52%). Integrated modelling tools for addressing challenges of dynamically complex systems were also reviewed by analysing the strengths and weaknesses of BBNs, and integration of BBNs with other modelling tools. (C) 2016 Elsevier Ltd. All rights reserved.
机译:贝叶斯信念网络(BBN)是概率图形模型,可以捕获和整合定量和定性数据,从而适应数据受限的条件。本文系统地回顾了BBN在空间因素,水域以及对气候变化影响的考虑方面的应用。研究了用于构造和验证BBN模型的方法,以及它们在不同形式的决策支持中的应用。审查最多的出版物来自发达国家(70%),温带气候区(42%),并且主要关注水质(42%)。在审查的应用程序中,有60%的模型验证是基于专家或利益相关者的评估和敏感性分析,而在27%的模型中,没有讨论模型性能。多数评论文章将BBN应用于战略决策环境(52%)。通过分析BBN的优缺点,以及将BBN与其他建模工具集成,还审查了用于解决动态复杂系统挑战的集成建模工具。 (C)2016 Elsevier Ltd.保留所有权利。

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