三维激光雷达视觉图像的低复杂度配准

Prakash Duraisamy, B. Yassine, Ye Yu, S. Jackson, K. Namuduri, B. Buckles
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摘要

一个强大的三维模型重建在城市规划、建筑设计和制图等许多现实应用中起着至关重要的作用。在本文中,我们开发了一种低复杂度的鲁棒混合模型算法,用于将倾斜航空图像配准到由机载光探测和测距数据生成的3D模型上。我们提出的算法包括两个步骤。在第一步中,我们使用智能搜索过程来粗略估计校准相机的外部参数,而不需要任何先验知识。估计的相机参数用于将数字表面模型(DSM)转换为接近视觉图像拍摄视图的视图。第二步是调整过程,在此过程中,我们确定将视觉图像映射到DSM的转换。实验是在真实世界的数据集上进行的。
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Low-complexity registration of visual imagery with 3-D LiDAR
A robust 3-D model reconstruction plays vital role in many real world applications like city planning, architecture design and cartography. In this paper, we develop a low complexity robust hybrid model-based algorithm for registering oblique aerial images onto a 3D model generated from airborne Light Detection and Ranging data. Our proposed algorithm consists of two steps. In the first step, we use an intelligent search process to roughly estimate the extrinsic parameters of a calibrated camera without any apriori knowledge. The estimated camera parameters are used to transform the Digital Surface Model (DSM) to a view close to the view from which the visual image is taken. The second step is an adjustment process, in which we determine the transformation that maps the visual image onto DSM. Experiments were conducted on a real world datasets.
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