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Space Classification from Point Clouds of Indoor Environments Based on Reconstructed Topology

机译:基于重构拓扑的室内环境点云空间分类

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Reconstruction of as-built building models from point cloud data is a challenging problem with promising applications in the construction industry. In this paper, we outline the general concept of a data processing pipeline that produces fully three-dimensional, semantically rich and topologically valid as-built building models. Point cloud data is processed with a combination of histogram, voxel-based and RANSAC-based methods to detect surfaces of spaces and building components. Topological relations between building components (walls, slabs) are derived from a space partitioning that is generated from detected surfaces. The output from topology reconstruction is used as input for a space classification procedure which involves assigning functional properties to spaces. Each step in the data processing pipeline is illustrated with examples. Limitations of the proposed approach are discussed and an outlook of future development in this area is given.
机译:从点云数据重建竣工建筑模型是一个具有挑战性的问题,在建筑业中的应用前景广阔。在本文中,我们概述了数据处理管道的一般概念,该管道可生成完全三维的,语义丰富的和拓扑有效的竣工建筑模型。通过结合直方图,基于体素和基于RANSAC的方法处理点云数据,以检测空间和建筑物组件的表面。建筑组件(墙壁,楼板)之间的拓扑关系是根据从检测到的表面生成的空间划分得出的。拓扑重构的输出用作空间分类过程的输入,该过程涉及将功能属性分配给空间。数据处理管道中的每个步骤均通过示例进行说明。讨论了所提出方法的局限性,并给出了该领域的未来发展前景。

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