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Building height extraction from overlapping airborne images in urban environment using computer vision approach

机译:利用计算机视觉方法建立高度提取从城市环境中的重叠空气图像

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Estimating and measuring building height has become one of the significant factors in urban planning, legal and illegal construction inspection, urban disaster warning and assessing, as well as providing initial mapping data for creating three dimensional (3D) digital city models. In this paper we examine the feasibility of extracting building height information using computer vision algorithms with Structure from Motion procedures (SfM) from overlapping airborne images in urban environment. 3D land surface models can be generated from airborne images, and then DTM is subtracted from the DSM to form the nDSM layer. Using object-based image analysis, building height can be differentiated from bush, trees, and others by rulesets of spectral features, geometric features and contextual information. The accuracy of the building height based on orthorectified images and nDSM from airborne imagery was at a similar level to those based on airborne LiDAR data from the same study area.
机译:估算和测量建筑高度已成为城市规划,法律和非法建筑检查,城市灾害警告和评估的重要因素之一,以及为创建三维(3D)数字城市模型提供初始映射数据。在本文中,我们研究了使用计算机视觉算法提取建筑物高度信息的可行性,该计算机视觉算法从城市环境中重叠的空气传播图像中的运动程序(SFM)。 3D陆地表面模型可以从机载图像产生,然后从DSM中减去DTM以形成NDSM层。使用基于对象的图像分析,建筑物高度可以通过光谱特征,几何特征和上下文信息的规则来区分布什,树木和其他人。基于矫正图像和空气传播图像的基于矫正图像和NDSM的建筑物高度的准确性在来自来自同一研究区域的空中激光雷达数据的那些具有类似的水平。

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