Simulation of urban expansion based on cellular automata and maximum entropy model

被引:2
|
作者
Yihan ZHANG [1 ]
Xiaoping LIU [2 ]
Guangliang CHEN [2 ]
Guohua HU [3 ]
机构
[1] School of Geography and Tourism, Guangdong University of Finance and Economics
[2] Guangdong Key Laboratory for Urbanization and Geo-simulation, School of Geography and Planning, Sun Yat-sen University
[3] School of Geographic Sciences, East China Normal University
基金
中国国家自然科学基金;
关键词
Land use/land cover change(LUCC); Cellular automata(CA); Urban expansion; Maximum entropy model;
D O I
暂无
中图分类号
TU98 [区域规划、城乡规划];
学科分类号
0814 ; 082803 ; 0833 ;
摘要
Urban expansion is a hot topic in land use/land cover change(LUCC) researches. In this paper, maximum entropy model and cellular automata(CA) model are coupled into a new CA model(Maxent-CA) for urban expansion. This model can help to obtain transition rules from single-period dataset. Moreover, it can be constructed and calibrated easily with several steps.Firstly, Maxent-CA model was built by using remote sensing data of China in 2000(basic data) and spatial variables(such as population density and Euclidean distance to cities). Secondly, the proposed model was calibrated by analyzing training samples,neighborhood structure and spatial scale. Finally, this model was verified by comparing logistic regression CA model and their simulation results. Experiments showed that suitable sampling ratio(sampling ratio equals the proportion of urban land in the whole region) and von Neumann neighborhood structure will help to yield better results. Spatial structure of simulation results becomes simple as spatial resolution decreases. Besides, simulation accuracy is significantly affected by spatial resolution.Compared to simulation results of logistic regression CA model, Maxent-CA model can avoid clusters phenomenon and obtain better results matching actual situation. It is found that the proposed model performs well in simulating urban expansion of China. It will be helpful for simulating even larger study area in the background of global environment changes.
引用
收藏
页码:701 / 712
页数:12
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