城市不透水面信息提取方法研究

Guangjie Liu, Jinliang Wang, Lichi Ma, Wenjie Gao
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引用次数: 2

摘要

不透水地表是城市地区的一个特征。其覆盖条件随城市发展而变化,对当地气候、水文和城市地表能量通量有很大影响。在分析主成分分析(PCA)原理的基础上,通过建立面积指数、线性光谱分解、分类回归树等方法,对Landsat OLI_TIRS影像中河北省唐山市不透水面进行了提取。并利用随机采样点结合高分辨率遥感影像,采用以上四种提取方法提取不透水面精度评价结果。结果表明,采用分类与回归树模型相结合的方法提取不透水面结果的精度比其他分类精度提高3% ~ 10%。
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Research on extraction method of urban impervious surface information
Impervious surface is a character of urban areas. Its cover conditions, changing with urban development, have a great impact on the local climate, hydrology, and the surface energy flux of the city. Based on analyzing the theory of the principal component analysis (PCA), built up area index, linear spectral unmixing, and classification and regression tree to extract impervious surface of Tangshan city, Hebei Province, from Landsat OLI_TIRS image. And by using random sampling points combined with the high resolution remote sensing image, the above four extraction methods are used to extract the impervious surface precision evaluation results. The results show that using the method of classification and regression tree model to extract the impervious surface result accuracy of other classification precision is increased by 3% to 10%.
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