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Building Change Detection from Uniform Regions

机译:从统一区域检测建筑物变化

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This paper deals with building change detection by supervised classification of image regions into 'built' and 'non-built' areas. Regions are the connected components of low gradient values in a multi-spectral aerial image. Classes are learnt from spectral (colour, vegetation index) and elevation cues relatively to building polygons and non building areas as defined in the existing database. Possible candidate building regions are then filtered by geometrical features. Inconsistencies in the database with the recent image are automatically detected. Tests in cooperation with the Belgian National Geographical Institute on an area with sufficient buildings and landscape variety have shown that the system allows for the effective verification of unchanged buildings, and detection of destructions and new candidate buildings.
机译:本文通过有监督地将图像区域分为“已构建”和“未构建”区域来处理建筑物变化检测。区域是多光谱航拍图像中低梯度值的连接分量。从光谱(颜色,植被指数)和海拔提示(相对于现有数据库中定义的建筑物多边形和非建筑物区域)中学习类。然后通过几何特征过滤可能的候选建筑物区域。自动检测到数据库中与最近映像的不一致。与比利时国家地理学院合作在具有足够建筑物和景观多样性的区域上进行的测试表明,该系统可以有效验证未改动的建筑物,并检测破坏和新的候选建筑物。

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