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City-Scale Point Cloud Stitching Using 2D/3D Registration for Large Geographical Coverage

机译:城市规模点云缝合使用2D / 3D注册进行大地理覆盖

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3D city-scale point cloud stitching is a critical component for large data collection, environment change detection, in which massive amounts of 3D data are captured under different times and conditions. This paper proposes a novel point cloud stitching approach, that automatically and accurately stitches multiple city-scale point clouds, which only share relatively small overlapping areas, into one single model for a larger geographical coverage. The proposed method firstly employs 2D image mosaicking techniques to estimate 3D overlapping areas among multiple point clouds, then applies 3D point cloud registration techniques to estimate the most accurate transformation matrix for 3D stitching. The proposed method is quantitatively evaluated on city-scale reconstructed point cloud dataset and real-world city LiDAR dataset, in which, our method outperforms other competing methods with significant margins and achieved the highest precision score, recall score, and F-score. Our method makes an important step towards automatic and accurate city-scale point cloud data stitching, which could be used in a variety of applications.
机译:3D城市规模点云缝合是大数据收集的关键组件,环境变化检测,其中在不同的时间和条件下捕获大量的3D数据。本文提出了一种新型点云拼接方法,自动和准确地缝合多个城市比分点云,该点云仅分享相对较小的重叠区域,以实现更大的地理覆盖的单一模型。该方法首先采用2D图像拼接技术来估计多个点云之间的3D重叠区域,然后应用3D点云登记技术来估计用于3D拼接的最准确的变换矩阵。所提出的方法在城市规模重建点云数据集和现实世界城市LIDAR数据集中定量评估,其中,我们的方法优于其他具有重要利润的竞争方法,并实现了最高精度得分,召回得​​分和F分数。我们的方法对自动和准确的城市刻度点云数据拼接进行了重要一步,可用于各种应用。

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