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The impact of interactions in spatial simulation of the dynamics of urban sprawl

机译:交互作用对城市扩张动力学空间模拟的影响

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This study investigated the modeling process for simulating the spatial dynamics of an urban ecosystem. Logistic regression is a common method for empirically modeling and analyzing land use and land use change. In most conventional applications of logistic regression, only the individual factors of the system are considered in the development of the logistic regression functions. However, this does not consider the relationships among factors that potentially occur within most ecosystems. Factors in a system, especially an urban system, are usually not fixed and not independent of each other, but rather are influenced by each other. Based on this point of view, the interactions of factors are introduced into a logistic regression in this study. This technique has been tested with a case study using historical land use maps and a spatially explicit dynamic cellular automata urban sprawl model. Using historical land use data, a logistic regression was used to analytically weight the scores of the driving factors of an urban sprawl model for predicting probability maps of land use change. The results of the case study have verified that interactions of factors can significantly improve the prediction of spatial dynamics of urban sprawl, and can provide a means to improve cellular automata models for simulation of the dynamics of urban and other ecosystems. (c) 2004 Elsevier B.V. All rights reserved.
机译:这项研究调查了模拟城市生态系统空间动态的建模过程。 Logistic回归是用于对土地利用和土地利用变化进行经验建模和分析的常用方法。在Logistic回归的大多数常规应用中,在开发Logistic回归函数时仅考虑系统的各个因素。但是,这并未考虑大多数生态系统中可能发生的因素之间的关系。一个系统(尤其是城市系统)中的因素通常不是固定的,也不是彼此独立的,而是相互影响的。基于这种观点,在本研究中将因素的相互作用引入到逻辑回归中。该技术已通过使用历史土地使用图和空间显式动态元胞自动机城市蔓延模型的案例研究进行了测试。使用历史土地使用数据,使用逻辑回归分析权重分析城市扩张模型的驱动因素得分,以预测土地使用变化的概率图。案例研究的结果证明,因素之间的相互作用可以显着改善城市扩张空间动态的预测,并可以提供一种方法来改善用于模拟城市及其他生态系统动态的元胞自动机模型。 (c)2004 Elsevier B.V.保留所有权利。

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