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CONSTRAINT-BASE LIDAR POINT CLOUD FITTING

机译:基于约束的激光点云拟合

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Airborne Light Detection and Ranging (LiDAR) has the ability of acquiring high-resolution and high-accuracy point clouds. The processing on point clouds has thus become an important research topic and has drawn increasing attention in the fields of remote sensing. An increasing number of 3D building models have been available in the Internet with the development of Web 2.0 techniques and scanning equipment. Many web-based data-sharing platforms, such as Google 3D Warehouse and MakerBot Thingiverse, provide functions for users to upload and share their models. Therefore, a fitting approach is proposed to construct building models using airborne LiDAR data. An iterative approach consists of three main parts, geometric analysis, point cloud segmentation, and model refinement, in proposed the experimental result shows that the proposed approach can generate 3D building models efficiently.
机译:机载光检测和测距(LiDAR)具有获取高分辨率和高精度点云的能力。因此,对点云的处理已成为重要的研究课题,并在遥感领域引起了越来越多的关注。随着Web 2.0技术和扫描设备的发展,互联网上越来越多的3D建筑模型可用。许多基于Web的数据共享平台,例如Google 3D Warehouse和MakerBot Thingiverse,都为用户提供了上传和共享其模型的功能。因此,提出了一种拟合方法,以使用机载LiDAR数据构建建筑模型。迭代方法由几何分析,点云分割和模型细化三个主要部分组成,实验结果表明,该方法可以高效地生成3D建筑模型。

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