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COMPARISON BETWEEN TWO GENERIC 3D BUILDING RECONSTRUCTION APPROACHES - POINT CLOUD BASED VS. IMAGE PROCESSING BASED

机译:两个通用3D构建重建方法 - 基于Point云的比较。基于图像处理

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This paper compares two generic approaches for the reconstruction of buildings. Synthesized and real oblique and vertical aerial imagery is transformed on the one hand into a dense photogrammetric 3D point cloud and on the other hand into photogrammetric 2.5D surface models depicting a scene from different cardinal directions. One approach evaluates the 3D point cloud statistically in order to extract the hull of structures, while the other approach makes use of salient line segments in 2.5D surface models, so that the hull of 3D structures can be recovered. With orders of magnitudes more analyzed 3D points, the point cloud based approach is an order of magnitude more accurate for the synthetic dataset compared to the lower dimensioned, but therefor orders of magnitude faster, image processing based approach. For real world data the difference in accuracy between both approaches is not significant anymore. In both cases the reconstructed polyhedra supply information about their inherent semantic and can be used for subsequent and more differentiated semantic annotations through exploitation of texture information.
机译:本文比较了两个仿制建筑物的一般方法。综合和实际倾斜和垂直的空中图像被一方面转变为密集的摄影测量3D点云,另一方面转变为光摄影测量2.5D表面模型,描绘了来自不同基调方向的场景。一种方法统计评估3D点云以便提取结构的船体,而其他方法利用2.5D表面模型中的突出线段,从而可以恢复3D结构的船体。具有更多分析的3D点的序列,基于点云的方法是合成数据集比较低尺寸相比的幅度更准确,但是基于图像处理的图像处理的数量级。对于现实世界数据,两种方法之间的准确性差异不再意识到。在这两种情况下,重建的Polyhedra提供有关其固有语义的信息,并且可以通过利用纹理信息来用于随后和更分散的语义注释。

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