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A review of assessment methods for cellular automata models of land-use change and urban growth

机译:土地利用变化与城市增长的蜂窝自动机模型评估方法综述

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摘要

Cellular automata (CA) models are in growing use for land-use change simulation and future scenario prediction. It is necessary to conduct model assessment that reports the quality of simulation results and how well the models reproduce reliable spatial patterns. Here, we review 347 CA articles published during 1999-2018 identified by a Scholar Google search using 'cellular automata', 'land' and 'urban' as keywords. Our review demonstrates that, during the past two decades, 89% of the publications include model assessment related to dataset, procedure and result using more than ten different methods. Among all methods, cell-by-cell comparison and landscape analysis were most frequently applied in the CA model assessment; specifically, overall accuracy and standard Kappa coefficient respectively rank first and second among all metrics. The end-state assessment is often criticized by modelers because it cannot adequately reflect the modeling ability of CA models. We provide five suggestions to the method selection, aiming to offer a background framework for future method choices as well as urging to focus on the assessment of input data and error propagation, procedure, quantitative and spatial change, and the impact of driving factors.
机译:蜂窝自动机(CA)模型正在越来越多的土地利用变化模拟和未来情景预测。有必要进行模型评估,报告模拟结果的质量以及模型重现可靠的空间模式的程度如何。在这里,我们回顾了1999 - 2018年发表的347篇文章,由学者谷歌搜索使用“蜂窝自动机”,“土地”和“城市”作为关键词。我们的评论显示,在过去的二十年中,89%的出版物包括与数据集,程序和结果相关的模型评估,使用十多种不同的方法。在所有方法中,逐细胞比较和景观分析最常应用于CA模型评估;具体而言,整体准确性和标准的Kappa系数分别在所有度量中排名第一和第二。最终状态评估通常由建模者批评,因为它不能充分反映CA模型的建模能力。我们为方法选择提供了五个建议,旨在为未来的方法选择提供背景框架,并促请重点关注输入数据和误差传播,程序,定量和空间变化以及驱动因子的影响。

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