4.7 Article

Relation-Constrained 3D Reconstruction of Buildings in Metropolitan Areas from Photogrammetric Point Clouds

期刊

REMOTE SENSING
卷 13, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/rs13010129

关键词

3D building reconstruction; photogrammetric point clouds; CSG-BRep trees; CityGML

资金

  1. Hong Kong Polytechnic University [1-ZVN6]
  2. National Natural Science Foundation of China [41671426]

向作者/读者索取更多资源

This paper presents a method for automatic 3D building reconstruction from photogrammetric point clouds in urban areas, which embeds multiple relations into a procedural modeling process. The proposed method outperformed existing methods in terms of robustness, regularity, and topological correctness. The CityGML building models generated by this method showed high consistency with manually digitized ground truth, indicating their potential usefulness in smart city applications.
The complexity and variety of buildings and the defects of point cloud data are the main challenges faced by 3D urban reconstruction from point clouds, especially in metropolitan areas. In this paper, we developed a method that embeds multiple relations into a procedural modelling process for the automatic 3D reconstruction of buildings from photogrammetric point clouds. First, a hybrid tree of constructive solid geometry and boundary representation (CSG-BRep) was built to decompose the building bounding space into multiple polyhedral cells based on geometric-relation constraints. The cells that approximate the shapes of buildings were then selected based on topological-relation constraints and geometric building models were generated using a reconstructing CSG-BRep tree. Finally, different parts of buildings were retrieved from the CSG-BRep trees, and specific surface types were recognized to convert the building models into the City Geography Markup Language (CityGML) format. The point clouds of 105 buildings in a metropolitan area in Hong Kong were used to evaluate the performance of the proposed method. Compared with two existing methods, the proposed method performed the best in terms of robustness, regularity, and topological correctness. The CityGML building models enriched with semantic information were also compared with the manually digitized ground truth, and the high level of consistency between the results suggested that the produced models will be useful in smart city applications.

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