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3D as-built modeling from incomplete point clouds using connectivity relations

机译:3D使用连接关系从不完整点云的建模

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摘要

As-built building information models (BIMs) based on the 3D point clouds of built environments need to be able to completely and automatically model building elements for various applications (e.g., structural analysis, fa-cility maintenance, and environmental analysis). However, missing data during data acquisition can result in an inaccurate as-built BIM. This study thus proposes an automated as-built model generation method with complete geometry information extraction by exploiting the connectivity between the structural elements in a point cloud with missing data. We used a deep learning model to classify and segment the elements at the point level and employed a neighbor network to extract and model the exact geometry of elements. The experimental results demonstrate that the proposed method can automatically develop an as-built BIM from a point cloud with missing data by recognizing and modeling 99% of the individual elements from the structural elements. As a result, a complete BIM can be produced automatically by overcoming the limitations of missing data.
机译:基于建筑环境的3D点云的竣工建筑信息模型(BIMS)需要能够完全和自动地模拟各种应用的建筑元素(例如,结构分析,FA-Cial维护和环境分析)。但是,数据采集期间的缺失数据可能导致不准确的BIM。因此,本研究提出了一种通过利用缺失数据的点云中的结构元素之间的连接来提出具有完整几何信息提取的自动构建模型生成方法。我们使用深度学习模型来分类和分段点级别的元素,并采用邻居网络来提取和模拟元素的确切几何形状。实验结果表明,所提出的方法可以通过识别和建模来自结构元素的各个元素的99%来自动从点云开始与缺失数据的缺失的云。结果,通过克服缺失数据的限制,可以自动生成完整的BIM。

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