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首页> 外文期刊>ISPRS Journal of Photogrammetry and Remote Sensing >Indoor scene reconstruction using feature sensitive primitive extraction and graph-cut
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Indoor scene reconstruction using feature sensitive primitive extraction and graph-cut

机译:使用特征敏感基元提取和图割的室内场景重建

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摘要

We present a method for automatic reconstruction of permanent structures, such as walls, floors and ceilings, given a raw point cloud of an indoor scene. The main idea behind our approach is a graph-cut formulation to solve an inside/outside labeling of a space partitioning. We first partition the space in order to align the reconstructed models with permanent structures. The horizontal structures are located through analysis of the vertical point distribution, while vertical wall structures are detected through feature preserving multi-scale line fitting, followed by clustering in a Hough transform space. The final surface is extracted through a graph-cut formulation that trades faithfulness to measurement data for geometric complexity. A series of experiments show watertight surface meshes reconstructed from point clouds measured on multi-level buildings.
机译:给定室内场景的原始点云,我们提出了一种自动重建永久结构(如墙壁,地板和天花板)的方法。我们方法背后的主要思想是图形切割公式,用于解决空间分区的内部/外部标签。我们首先划分空间,以使重建的模型与永久性结构对齐。通过分析垂直点分布来定位水平结构,而通过保留特征的多尺度线拟合来检测垂直墙结构,然后在霍夫变换空间中进行聚类。通过图形切割公式提取最终表面,该公式将忠实度与测量数据进行了几何复杂性交换。一系列实验表明,水密表面网格是根据在多层建筑物上测量的点云重建而成的。

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