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Automatic Indoor Reconstruction from Point Clouds in Multi-room Environments with Curved Walls

机译:从弯曲墙壁的多房间环境中的点云自动室内重建

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Recent developments in laser scanning systems have inspired substantial interest in indoor modeling. Semantically rich indoor models are required in many fields. Despite the rapid development of 3D indoor reconstruction methods for building interiors from point clouds, the indoor reconstruction of multi-room environments with curved walls is still not resolved. This study proposed a novel straight and curved line tracking method followed by a straight line test. Robust parameters are used, and a novel straight line regularization method is achieved using constrained least squares. The method constructs a cell complex with both straight lines and curved lines, and the indoor reconstruction is transformed into a labeling problem that is solved based on a novel Markov Random Field formulation. The optimal labeling is found by minimizing an energy function by applying a minimum graph cut approach. Detailed experiments were conducted, and the results indicate that the proposed method is well suited for 3D indoor modeling in multi-room indoor environments with curved walls.
机译:激光扫描系统的最新进程激发了对室内建模的大量兴趣。许多领域都需要使用语义较丰富的室内型号。尽管3D室内重建方法的快速发展,用于从点云层建筑内部建设内部,但仍未解决弯曲墙的多房间环境的室内重建。本研究提出了一种新型的直线和曲线跟踪方法,然后是直线试验。使用稳健的参数,并且使用约束最小二乘来实现新的直线正则化方法。该方法构造具有直线和弯曲线的电池复合物,并且室内重建被转换为基于新颖的马尔可夫随机场制剂解决的标记问题。通过施加最小图形切割方法,通过最小化能量功能来找到最佳标记。进行了详细的实验,结果表明,该方法非常适合在具有弯曲墙壁的多房间室内环境中的3D室内建模。

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