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Integrating GIS, Cellular Automata and Genetic Algorithm in Urban Spatial Optimization—A Case Study of Lanzhou

机译:城市空间优化中整合GIS,蜂窝自动机和遗传算法 - 以兰州为例

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This paper presents a model integrating GIS, cellular automata (CA) and genetic algorithm (GA) in urban spatial optimization. The model involves three objectives of the maximization of land-use efficiency, the maximization of urban spatial harmony and appropriate proportion of each land-use type. CA submodel is designed with standard Moore neighbor and three transition rules to maximize the land-use efficiency and urban spatial harmony, according to the land-use suitability and spatial harmony index. GA submodel is designed with four constraints and seven steps for the maximization of urban spatial harmony and appropriate proportion of each land-use type, including encoding, initializing, calculating fitness, selection, crossover, mutation and elitism. GIS is used to prepare for the input data sets for the model and perform spatial analysis on the results, while CA and GA are integrated to optimize urban spatial structure, programmed with Matlab 7 and coupled with GIS loosely. Lanzhou, a typical valley-basin city with fast urban development, is chosen as the case study. At the end, a detail analysis and evaluation of the spatial optimization with the model are made, and it proves to be a powerful tool in optimizing urban spatial structure and make supplement for urban planning and policy-makers.
机译:本文介绍了城市空间优化中集成GIS,蜂窝自动机(CA)和遗传算法(GA)的模型。该模型涉及土地利用效率最大化的三个目标,城市空间和谐的最大化和每种土地使用类型的适当比例。根据土地使用适用性和空间和谐指数,CA子模型设计有标准摩尔邻居和三个过渡规则,以最大限度地提高土地利用效率和城市空间和谐。 GA Subsodel设计有四个约束和七个步骤,可实现城市空间和谐的最大化和每个土地使用类型的适当比例,包括编码,初始化,计算健身,选择,交叉,突变和精英主义。 GIS用于准备模型的输入数据集,并对结果进行空间分析,而CA和GA集成以优化与MATLAB 7编程的城市空间结构,并松散地与GIS连接。兰州是一家典型的山谷 - 盆地城市开发,被选为案例研究。最后,制造了对模型的空间优化的详细分析和评估,证明是优化城市空间结构的强大工具,为城市规划和政策制定者提供补充。

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