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面向对象的城市绿地信息提取方法研究
引用本文:熊轶群,吴健平.面向对象的城市绿地信息提取方法研究[J].华东师范大学学报(自然科学版),2006,2006(4):84-90.
作者姓名:熊轶群  吴健平
作者单位:华东师范大学地理信息科学教育部重点实验室,上海200062
摘    要:在比较传统的城市绿地提取方法的基础上,采用了面向对象的图像分类技术,对QuickBird卫星图像进行上海市区绿地信息提取实验,得到了令人满意的结果,总体分类精度达到84.4%,较传统的监督分类方法提高了24.4%,具有明显的优越性和应用前景.

关 键 词:面向对象的图像分类  城市绿地  QuickBird图像  面向对象的图像分类  城市绿地  QuickBird图像
文章编号:1000-5641(2006)04-0084-07
收稿时间:2005-04
修稿时间:2005-04

Research on Detection of Urban Vegetation by Object-Oriented Classification(Chinese)
XIONG Yi-qun,WU Jian-ping.Research on Detection of Urban Vegetation by Object-Oriented Classification(Chinese)[J].Journal of East China Normal University(Natural Science),2006,2006(4):84-90.
Authors:XIONG Yi-qun  WU Jian-ping
Institution:Key Laboratory of Geographic Information Science, Ministry of Education, East China Normal University, Shanghai 200062, China
Abstract:The method of object-oriented classification for remote sensing images,based on im- age segmentation which could create objects sets of homogeneous pixels,provides a way to ana- lyze object's features,such as spectral,shape,topology,texture and so on,and to realize the functions of discriminating various species and automatic classification.The traditional way of analyzing and extracting urban vegetation community was taken as a reference,a new classifica- tion method has been developed using QuickBird satellite image in Shanghai.With the new meth- od,the total precision is 84.4%,24.4% higher than conventional supervised classification.The principle of the new approach mentioned may be useful as a new algorithm joined with existing classifiers.
Keywords:object-oriented image classification  urban green  QuickBird image
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