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Monitoring and modeling urban expansion-A spatially explicit and multi-scale perspective

机译:监测和建模城市扩展-空间明确和多尺度的视角

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摘要

In the context of promoting new urbanization in China, urban expansion has been the subject of a consolidated line of research in the past two decades. In this study, we integrate remote sensing, a geographical information system, and spatial analysis techniques to monitor and model urban expansion with a spatially explicit and multi-scale perspective in Wuhan, the megacity in central China. We first extract urban built-up land from medium to high resolution images from 1995 to 2010 and analyze the expansion dynamics at the parcel level. For the exploration of the driving mechanisms underlying urban expansion, 20 explanatory variables are then categorized into three groups: characteristics, density, and proximity. A kernel window is then utilized to filter the extracted urban built-up land map at multiple scales. Moran's 1 is later used to test the spatial autocorrelation in the percentage of urban built-up land area and the residuals. Finally, a spatial lag model and a spatial error model are applied to explore the causal factors of urban built-up land. It is revealed that the area of transportation land in Wuhan has increased tremendously, and urban built-up land is less scattered at the micro-scales. Regardless of the scale or model, housing density and gross domestic product (GDP) are positively correlated with the urban built-up land area, whereas the influence of other factors is shown to vary along with the scale or model. The results also confirm the superiority of the spatial regression models, and better fitting is produced with the increase in the scale. In the future, it is anticipated that the interpretation of remote sensing images and spatial analysis techniques will be optimized for better manifestation of intra-urban spatial interaction. In this process, the scale effect is an issue that should not be neglected in future studies of urban expansion.
机译:在促进中国新型城市化的背景下,过去二十年来,城市扩张一直是研究的重点。在这项研究中,我们结合了遥感,地理信息系统和空间分析技术,以具有空间明确性和多尺度视角的中国中部特大城市武汉,对城市扩张进行监测和建模。我们首先从1995年至2010年从中分辨率图像到高分辨率图像中提取城市建成区,然后分析地块级别的扩展动态。为了探索推动城市扩张的驱动机制,我们将20个解释变量分为三类:特征,密度和邻近度。然后利用内核窗口以多个比例过滤提取的城市建成土地图。 Moran's 1随后用于检验城市建成区面积百分比和残差中的空间自相关。最后,应用空间滞后模型和空间误差模型来探讨城市建成区土地使用的成因。据了解,武汉市的交通用地面积已大大增加,城市建成区在微观上的分散较少。无论规模或模型如何,住房密度和国内生产总值(GDP)与城市建成土地面积均呈正相关,而其他因素的影响则随规模或模型而变化。结果还证实了空间回归模型的优越性,并且随着规模的增加可以产生更好的拟合。预计未来将优化遥感图像的解释和空间分析技术,以更好地体现城市内部空间的相互作用。在这个过程中,规模效应是未来城市扩展研究中不容忽视的问题。

著录项

  • 来源
    《Cities》 |2015年第3期|92-103|共12页
  • 作者单位

    Huazhong Agricultural University, Wuhan 430070, China;

    Faculty of Civil, Geo and Environmental Engineering, Technical University of Munich, Arcisstrasse 21, 80333 Munich, Germany,Wuhan University, Wuhan 430079, China;

    Wuhan University, Wuhan 430079, China;

    The Chinese University of Hong Kong, Hong Kong, China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Urban expansion; Remote sensing; Parcel; Spatial regression; Multi-scale;

    机译:城市扩张;遥感;包;空间回归;多尺度;

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