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Indoor building structure segmentation in unorganized point clouds based on corner feature

点云 分割 计算机科学 计算机视觉 人工智能 特征(语言学) 尺度空间分割 建筑模型 稳健性(进化) 图像分割 外观 仰角(弹道) 光学(聚焦) 边界(拓扑) 基于分割的对象分类 天花板(云) 钥匙(锁) 数字高程模型 线段 点(几何) 转化(遗传学) 市场细分 过程(计算) 对象(语法) 测距 特征提取 工作流程 目标检测 模式识别(心理学)
作者
Xiaoli Liang,Zhiqiang Qin,Jiayao Wang,Yuanwei Yang,Jia Bao,Haoxue Jia,Yunxiang Liu
出处
期刊:Engineering, Construction and Architectural Management [Emerald Publishing Limited]
卷期号:: 1-25
标识
DOI:10.1108/ecam-10-2024-1433
摘要

Purpose Indoor structure segmentation is a key step in the scan-to-BIM, but current point cloud segmentation methods focus on point cloud geometry or semantic segmentation. Therefore, this study proposes a point cloud segmentation method specifically for indoor building structures, identifying and segmenting indoor structures from indoor point clouds without segmenting indoor objects, which reduces the waste of computational resources, improves the degree of automation, and the efficiency and accuracy of scan-to-BIM. Design/methodology/approach This study proposes a geometry-driven segmentation framework specifically designed for indoor structural point clouds. The method introduces a novel corner feature (CF) to capture critical geometric transitions, enabling robust segment of vertical structures such as walls. Instead of relying on object semantics, the approach leverages ceiling geometry and elevation cues to differentiate structural elements (walls, floors, ceilings) from non-structural clutter. The overall design emphasizes lightweight computation, spatial reasoning and generalizability across diverse indoor environments. Findings Experimental results on the Stanford Large-Scale 3D Indoor Spaces (S3DIS) and Matterport3D datasets confirm that ceiling boundary geometry, combined with elevation-based filtering, can robustly delineate architectural structures in cluttered indoor environments. The CF proves effective in detecting corner points and enabling the segmentation of both planar and curved vertical surfaces with high accuracy. Originality/value This study focuses on the structural segmentation step within the scan-to-BIM process and proposes a lightweight, generalizable method based on contour features (CF) and elevation data. The method simplifies the workflow of indoor structural segmentation, enhances accuracy, improves BIM generation automation and supports the digital transformation of indoor building practices.

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