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Reconstruction of 3D Models for Complex Buildings from Airborne and Ground-based Lidar Point Cloud Data

机译:从机载和地面激光雷达点云数据重建复杂建筑物的3D模型

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Modeling from point cloud data can usually achieve high level of detail. However, the procedure to reconstruct a highly accurate model is usually complex. This paper presents a systematic approach to reconstruct building models conforming to OGC CityGML LOD3 standard from airborne and ground-based Lidar point clouds. The proposed method is divided into three main parts: "data registration", "point cloud partitioning" and "surface reconstruction". First, after acquiring point cloud data, they are merged to a single point cloud dataset through scaling and translation transformation. Error analysis is performed on the merged point cloud model to minimize registration errors. Then, the point cloud data are partitioned into several groups based on different conditions such as coplanarity etc. For each point group, a three-dimensional surface (or plane) is reconstructed with Least Squares Method. Finally all surfaces are combined to a complete 3D model and the accuracy is evaluated.
机译:从点云数据进行建模通常可以实现较高的详细程度。但是,重建高精度模型的过程通常很复杂。本文提出了一种从机载和地面激光雷达点云中重建符合OGC CityGML LOD3标准的建筑模型的系统方法。所提出的方法分为三个主要部分:“数据注册”,“点云分区”和“表面重建”。首先,在获取点云数据后,通过缩放和转换转换将它们合并到单个点云数据集中。对合并点云模型执行错误分析,以最大程度减少注册错误。然后,根据不同的条件(例如共面性等)将点云数据分为几组。对于每个点组,使用最小二乘法重建三维表面(或平面)。最后,将所有曲面组合成一个完整的3D模型并评估精度。

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