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Texture Analysis and Land Cover Classification of Tehran Using Polarimetric Synthetic Aperture Radar Imagery

机译:利用极化合成孔径雷达图像对德黑兰进行质地分析和土地覆盖分类

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Land cover classification of built-up and bare land areas in arid or semi-arid regions from multi-spectral optical images is not simple, due to the similarity of the spectral characteristics of the ground and building materials. However, synthetic aperture radar (SAR) images could overcome this issue because of the backscattering dependency on the material and the geometry of different surface objects. Therefore, in this paper, dual-polarized data from ALOS-2 PALSAR-2 (HH, HV) and Sentinel-1 C-SAR (VV, VH) were used to classify the land cover of Tehran city, Iran, which has grown rapidly in recent years. In addition, texture analysis was adopted to improve the land cover classification accuracy. In total, eight texture measures were calculated from SAR data. Then, principal component analysis was applied, and the first three components were selected for combination with the backscattering polarized images. Additionally, two supervised classification algorithms, support vector machine and maximum likelihood, were used to detect bare land, vegetation, and three different built-up classes. The results indicate that land cover classification obtained from backscatter values has better performance than that obtained from optical images. Furthermore, the layer stacking of texture features and backscatter values significantly increases the overall accuracy.
机译:由于地面和建筑材料的光谱特性相似,从多光谱光学图像中对干旱或半干旱地区的建成区和裸地区进行土地覆盖分类并不简单。但是,合成孔径雷达(SAR)图像可以克服此问题,因为后向散射取决于不同表面物体的材料和几何形状。因此,在本文中,使用来自ALOS-2 PALSAR-2(HH,HV)和Sentinel-1 C-SAR(VV,VH)的双极化数据对已增长的伊朗德黑兰市的土地覆盖进行分类。近年来发展迅速。另外,通过纹理分析提高了土地覆被分类的准确性。总共从SAR数据计算出八个纹理量度。然后,应用主成分分析,并选择前三个成分与反向散射偏振图像组合。此外,还使用了两种监督分类算法,即支持向量机和最大似然法,来检测裸地,植被和三种不同的建筑物类别。结果表明,从后向散射值获得的土地覆盖分类比从光学图像获得的土地覆盖分类具有更好的性能。此外,纹理特征和反向散射值的层堆叠显着提高了整体精度。

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