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Deep Learning based Classification of Color Point Cloud for 3D Reconstruction of Interior Elements of Buildings

机译:建筑物内部元素三维重建色点云的深度学习分类

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In architecture and engineering, the production of 3D models of various objects that are both simple and most closely related to reality is of particular importance. In this article, we are going to model different aspects of the interior of a building, which is performed in three general steps. In the first step, the existing point clouds of a room are semantically segmented using the PointNet Deep Learning Network. Each class of objects is then reconstructed using three methods including: Poisson, ball-pivoting and combined volumetric triangulation method and marching cubes. In the last step, each model is simplified by the methods of vertex clustering and edge collapse with quadratic error. Results are quantitatively and qualitatively evaluated for two types of objects, one with simple geometry and one with complex geometry. After selecting the optimal surface reconstruction method and simplifying it, all the objects are modeled. According to the results, the Poisson surface reconstruction method with a simplified edge collapse method provides better geometric accuracy of 0.1 mm for simpler geometry classes. In addition, for more complex geometry problems, the model produced by combined volumetric triangulation method and marching cubes with simplified edge collapse method was more suitable due to a higher accuracy of 0.022 mm.
机译:在建筑与工程中,既有简单又与现实密切相关的各种物体的3D模型的生产是特别重要的。在本文中,我们将建模建筑物内部的不同方面,这是三个一般步骤执行的。在第一步中,使用注意深度学习网络进行语义分割的空间的现有点云。然后使用三种方法重建每种对象,包括:泊松,球枢转和组合的体积三角测量方法和行进立方体。在最后一步中,通过顶点群集和边缘崩溃的方法简化了每个模型,具有二次误差。结果是定量和定性地评估两种类型的物体,一个具有简单的几何形状和具有复杂几何形状的物体。选择最佳表面重建方法并简化它后,所有对象都被建模。根据结果​​,具有简化边缘塌陷方法的泊松表面重建方法为更简单的几何类提供了更好的几何精度为0.1毫米。另外,对于更复杂的几何问题,由于更高的精度为0.022 mm,通过组合体积三角测量方法和简化边缘塌陷方法生产的模型更适合。

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