首页> 外文会议>2011 IEEE International Geoscience Remote Sensing Symposium >Improving the support vector machine-based method to map urban land of China using DMSP/OLS and SPOT VGT data
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Improving the support vector machine-based method to map urban land of China using DMSP/OLS and SPOT VGT data

机译:利用DMSP / OLS和SPOT VGT数据改进基于支持向量机的中国城市土地图制图方法

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Extracting urban land of China timely and accurately is essential for recognizing and understanding the urban pattern and urbanization process in China. Stable nighttime light data obtained by the Defense Meteorological Satellite Program/Operational Linescan System (DMSP/OLS) provides an economical and straightforward way to map the distribution of urban land. However, all the current methods of extracting urban land from DMSP/OLS data are difficult to effectively apply in the whole of China due to their inapplicability in large area with obvious regional variation. To address this problem, we proposed a stratified support vector machine-based method (SSVM). The urban land of China in 2008 extracted from DMSP/OLS and SPOT VGT NDVI data using SSVM showed that SSVM could extract urban land more effectively than the original support vector machine-based method (OSVM) in the nation where imbalance in economic development and regional variation were extremely obvious. The correlation coefficients between statistical data and urban land derived using SSVM (R>0.90, p<0.0001) were almost twice as much as those from OSVM (R<0.48, p<0.05). Meanwhile, the accuracy assessment using the Landsat ETM+ data with higher resolution also showed that SSVM effectively decreased the omission error and commission error of OSVM. The overall accuracy and Kappa of SSVM achieved 0.90 and 0.69, which were 0.09 and 0.17 higher than those of OSVM, respectively.
机译:及时准确地提取中国的城市土地对于认识和理解中国的城市格局和城市化进程至关重要。国防气象卫星计划/运行线扫描系统(DMSP / OLS)获得的稳定的夜间光照数据为绘制城市土地分布图提供了一种经济而直接的方法。然而,由于DMSP / OLS数据在大面积区域不适用的大范围适用性不足,因此目前所有从DMSP / OLS数据中提取城市土地的方法都难以在全国范围内有效地应用。为了解决这个问题,我们提出了一种基于分层支持向量机的方法(SSVM)。使用SSVM从DMSP / OLS和SPOT VGT NDVI数据中提取的2008年中国城市土地表明,在经济发展和地区不平衡的国家,SSVM可以比原始的基于支持向量机的方法更有效地提取城市土地。变化非常明显。使用SSVM得出的统计数据与城市土地之间的相关系数(R> 0.90,p <0.0001)几乎是来自OSVM的相关系数(R <0.48,p <0.05)。同时,使用具有更高分辨率的Landsat ETM +数据进行的准确性评估还表明,SSVM有效地减少了OSVM的遗漏误差和委托误差。 SSVM的整体精度和Kappa分别达到0.90和0.69,分别比OSVM的精度高0.09和0.17。

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