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首页> 外文期刊>Procedia Computer Science >Detection of holes in 3D architectural models using shape classification based Bubblegum algorithm
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Detection of holes in 3D architectural models using shape classification based Bubblegum algorithm

机译:基于形状分类的泡沫算法的3D架构模型中的孔检测

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Global digitalization with connectivity and smart devices have added an extra dimension to virtual experiences of heritage sites. However usage of crowd-sourced images may not be appropriate for optimized 3D reconstruction leading to holes. We propose a hole detection algorithm that detects holes at the point cloud phase of the 3D reconstruction pipeline. Most of the research work reported for hole detection uses meshes of the 3D models. In our algorithm, we detect holes and shapes using point clouds giving optimization in terms of computational time. Further on, the shape classification leads to specific structure based geometry which can be used to suggest an appropriate hole filling methodology. We tested our results on point clouds of Banashankari and Kalmeshwar temples on a system with 128 GB RAM, Intel Xeon running Ubuntu 16.04.
机译:具有连接和智能设备的全局数字化为遗产站点的虚拟体验添加了额外的维度。然而,人群源图像的使用可能不适合于优化的3D重建导致孔。我们提出了一种孔检测算法,其检测3D重建管道的点云阶段的孔。据报道,孔检测的大多数研究工作都使用3D模型的网格。在我们的算法中,我们使用点云检测孔和形状,在计算时间方面提供优化。此外,形状分类导致基于特定的结构几何形状,其可用于提出适当的孔填充方法。我们在一个带有128 GB RAM的系统上的Banashankari和Kalmeshwar寺庙的点云测试了我们的结果,Intel Xeon运行Ubuntu 16.04。

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