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基于高分一号卫星遥感数据提取城市建设用地方法研究 被引量:1
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作者 殷博灵 余阳 +2 位作者 苏玲 刘宇航 张炼 《地球科学前沿(汉斯)》 2019年第5期334-340,共7页
大城市城市蔓延与收缩现象严重制约区域协调发展。通过遥感方法提取城市建筑物边界进而辅助政府政策决议、协调区域发展刻不容缓。本文选取监督分类、支持向量机分类和植被指数分类,基于高分一号卫星遥感影像提取城市建设用地,通过精度... 大城市城市蔓延与收缩现象严重制约区域协调发展。通过遥感方法提取城市建筑物边界进而辅助政府政策决议、协调区域发展刻不容缓。本文选取监督分类、支持向量机分类和植被指数分类,基于高分一号卫星遥感影像提取城市建设用地,通过精度检验探讨适合高分一号遥感影像的建设用地提取方法。结果表明,支持向量机分类对高分一号影像提取建设用地的效果最佳,监督分类的提取效果一般,植被指数分类的提取效果较差。 展开更多
关键词 高分一号卫星 建设用地提取 影像分类
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How to accurately extract large-scale urban land?Establishment of an improved fully convolutional neural network model
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作者 boling yin Dongjie GUAN +4 位作者 Yuxiang ZHANG He XIAO Lidan CHENG Jiameng CAO Xiangyuan SU 《Frontiers of Earth Science》 SCIE CSCD 2022年第4期1061-1076,共16页
Realizing accurate perception of urban boundary changes is conducive to the formulation of regional development planning and researches of urban sustainable development.In this paper,an improved fully convolution neur... Realizing accurate perception of urban boundary changes is conducive to the formulation of regional development planning and researches of urban sustainable development.In this paper,an improved fully convolution neural network was provided for perceiving large-scale urban change,by modifying network structure and updating network strategy to extract richer feature information,and to meet the requirement of urban construction land extraction under the background of large-scale low-resolution image.This paper takes the Yangtze River Economic Belt of China as an empirical object to verify the practicability of the network,the results show the extraction results of the improved fully convolutional neural network model reached a precision of kappa coefficient of 0.88,which is better than traditional fully convolutional neural networks,it performs well in the construction land extraction at the scale of small and medium-sized cities. 展开更多
关键词 improved fully convolutional neural network remote sensing image classification city boundary precision evaluation
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