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Assessing cellular automata model behaviour using a sensitivity analysis approach

机译:使用敏感性分析方法评估细胞自动机模型行为

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Rapid advances in computer and geospatial technology have made it increasingly possible to design and develop urban models to efficiently simulate spatial growth patterns. An approach commonly used in geography and urban growth modelling is based on cellular automata theory and the GIS framework. However, the behaviour of cellular automaton (CA) models is affected by uncertainties arising from the interaction between model elements, structures, and the quality of data sources used as model input. The uncertainty of CA models has not been sufficiently addressed in the research literature. The objective of this study is to analyze the behaviour of a GIS-based CA urban growth model using sensitivity analysis (SA). The proposed SA approach has both qualitative and quantitative components. These components were operationalized using the cross-tabulation map, KAPPA index with coincidence matrices, and spatial metrics. The research focus was on the impacts of CA neighbourhood size and type on the model outcomes. A total of 432 simulations were generated and the results suggest that CA neighbourhood size and type configurations have a significant influence on the CA model output. This study provides insights about the limitations of CA model behaviour and contributes to enhancing existing spatial urban growth modelling procedures.
机译:计算机和地理空间技术的飞速发展使得设计和开发城市模型以有效模拟空间增长模式的可能性越来越大。地理和城市增长建模中常用的方法是基于元胞自动机理论和GIS框架。但是,元胞自动机(CA)模型的行为受到模型元素,结构和用作模型输入的数据源质量之间的相互作用所产生的不确定性的影响。研究文献中尚未充分解决CA模型的不确定性问题。本研究的目的是使用敏感性分析(SA)分析基于GIS的CA城市增长模型的行为。拟议的SA方法同时具有定性和定量成分。这些组件使用交叉列表图,具有重合矩阵的KAPPA索引和空间指标进行了操作。研究重点是CA邻域大小和类型对模型结果的影响。总共进行了432次仿真,结果表明CA邻域的大小和类型配置对CA模型输出有重大影响。这项研究提供了关于CA模型行为局限性的见解,并有助于增强现有的空间城市增长建模程序。

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