Automatic construction of geometric digital twins of existing buildings from point cloud datasets

Viktor Drobnyi, Shuyan Li, I. Brilakis
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Abstract

Digitising the geometry of existing buildings remains expensive due to the high amount of manual work necessary to process raw data. This indicates the demand for automatic solutions for geometry digitisation. This paper presents a few methods to detect and model structural objects and relations between objects and surfaces in large-scale occluded point clouds. We show that these methods give promising results and manage to capture the majority of the target entities.
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基于点云数据集的现有建筑几何数字孪生的自动构建
由于处理原始数据需要大量的手工工作,因此将现有建筑的几何图形数字化仍然是昂贵的。这表明了对几何数字化自动化解决方案的需求。本文介绍了在大尺度遮挡点云中对结构物体以及物体与表面之间的关系进行检测和建模的几种方法。我们表明,这些方法给出了有希望的结果,并设法捕获大多数目标实体。
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