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Urban area structuring mapping using an airborne polarimetric SARimage

机译:城市地区结构修剪使用空中偏振纹理

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For several years, image classification and pattern recognition algorithms have been developed for the land coverage mapping using radar and multispectral imagery with medium to large pixel size. As several satellites now distribute submetric-pixel and metric-pixel images (for example QUICKBIRD,TERRASAR-X), the research turns to the study of the structure of cities: building structuring, grassy areas, road networks, etc, and the physical description of the urban surfaces. In that context, we propose to underline new potentialities of submetric-pixel polarimetric SAR images. We deal with the characterization of roofs and the mapping of trees. For that purpose, a first analysis based on photo-interpretation and the assessement of several polarimetric descriptors is carried out. Then, an image classification scheme is built using the polarimetric H/alpha-Wishart algorithm, followed by a decision tree. This one is based on the most pertinent polarimetric descriptors and aims at reducing the classification errors. The result proves the potential of such data. Our work relies on an image of a suburban area, acquired by the airborne RAMSES SAR sensor of ONERA
机译:几年来,已经为使用雷达和多光谱图像的土地覆盖范围开发了图像分类和模式识别算法,其中具有媒介到大像素尺寸。作为几个卫星现在分布了子像素和公制像素图像(例如Quickbird,Terrasar-X),研究转向城市结构的研究:建筑结构,草地,道路网络等,以及物理描述城市表面。在这种情况下,我们建议强调潜艇像素偏振SAR图像的新潜力。我们处理屋顶的特征和树木的映射。为此目的,执行基于照片解释和几个偏振描述符的评估的第一次分析。然后,使用Polarimetric H / Alpha-Wellart算法构建图像分类方案,然后是决策树。这一个基于最相关的偏振描述符,并旨在减少分类错误。结果证明了这些数据的潜力。我们的工作依赖于郊区地区的形象,由Inera的机载Ramses SAR传感器获得

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