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Planar building facade segmentation and mapping using appearance and geometric constraints

机译:使用外观和几何约束的平面建筑物立面分割和映射

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Segmentation and mapping of planar building facades (PBFs) can increase a robot's ability of scene understanding and localization in urban environments which are often quasi-rectilinear and GPS-challenged. PBFs are basic components of the quasi-rectilinear environment. We propose a passive vision-based PBF segmentation and mapping algorithm by combining both appearance and geometric constraints. We propose a rectilinear index which allows us to segment out planar regions using appearance data. Then we combine geometric constraints such as reprojection errors, orientation constraints, and coplanarity constraints in an optimization process to improve the mapping of PBFs. We have implemented the algorithm and tested it in comparison with state-of-the-art. The results show that our method can reduce the angular error of scene structure by an average of 82.82%.
机译:平面建筑物外墙(PBF)的分割和制图可以提高机器人在城市环境中的场景理解和定位能力,而城市环境通常是准直线和GPS挑战的。 PBF是准直线环境的基本组成部分。通过结合外观和几何约束,我们提出了一种基于被动视觉的PBF分割和映射算法。我们提出了一个直线索引,该索引允许我们使用外观数据来分割出平面区域。然后,我们在优化过程中结合了几何约束,例如重投影误差,方向约束和共面约束,以改善PBF的映射。我们已经实现了该算法,并与最新技术进行了比较。结果表明,该方法可将场景结构的角度误差平均降低82.82%。

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