Quantitative analysis of urban development and changes around urban airports based on high-resolution remote sensing images

Xufei Wang, Yanyi Li
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Abstract

Given the difficulties in the statistics and investigation of the development and change of the surrounding area of the metropolitan airport, this paper proposes a method based on L-U-NET deep learning network to extract and analyze the objective elements of urban development in the surrounding urban area of Tianjin Binhai International Airport by processing high-resolution remote sensing images. This paper examines the local remote sensing image data for a continuous period through quantitative indicators, counts the specific values of relevant indicators, and gives the analysis of the development of cities around Tianjin Binhai International Airport, which provides a reference for the quantification of the development of regions around airports in following cities of the same type.
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基于高分辨率遥感影像的城市机场周边城市发展变化定量分析
针对大都市机场周边区域发展变化统计调查存在的困难,本文提出了一种基于L-U-NET深度学习网络的方法,通过对高分辨率遥感影像的处理,提取并分析天津滨海国际机场周边区域城市发展的客观要素。本文通过量化指标对连续一段时期的当地遥感影像数据进行检验,统计相关指标的具体数值,并对天津滨海国际机场周边城市的发展进行分析,为后续同类型城市机场周边区域发展的量化提供参考。
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