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3D Model Retrieval and Assessment for Point Cloud Modeling

机译:点云建模的3D模型检索和评估

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Based on the concept of data reuse and data sharing, a 3D model retrieval and assessment approach is proposed to reconstruct point clouds for cyber city modeling and updating. The main idea is to build a gigantic database containing great diversity of 3D building models. The models in database are collected from model-sharing www applications. All the models in the database are encoded by a small set of low-frequency spherical harmonic functions (SHFs). A point cloud obtained by airborne LiDAR is inputted as query to search the similar models from the database. By means of matching the SHFs coefficients between point clouds and 3D models, the most similar model can be efficiently extracted. The extracted model can be used as a template model to fit the point cloud. The experiment results show that the proposed approach can efficiently extract the fittest model from a huge database. This makes the proposed approach feasible to efficiently construct and update 3D city models.
机译:基于数据重用和数据共享的概念,提出了一种3D模型检索和评估方法来重构点云,以进行网络城市建模和更新。主要思想是建立一个巨大的数据库,其中包含3D建筑物模型的多样性。数据库中的模型是从模型共享www应用程序中收集的。数据库中的所有模型均由少量的低频球谐函数(SHF)进行编码。输入机载LiDAR获得的点云作为查询,以从数据库中搜索相似模型。通过在点云和3D模型之间匹配SHF系数,可以有效地提取最相似的模型。提取的模型可以用作适合点云的模板模型。实验结果表明,该方法可以有效地从一个庞大的数据库中提取出最适合的模型。这使得所提出的方法对于有效地构建和更新3D城市模型是可行的。

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