从倾斜航拍图像中提取三维城市模型

N. Haala, M. Rothermel, S. Cavegn
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引用次数: 52

摘要

斜向机载摄像机越来越多地用于城市环境中建筑立面的区域覆盖图像采集。直到最近,这些图像主要用于通过提供合适的立面纹理来改善相对简单的3D建筑模型的视觉外观。同时,利用最先进的基于像素的多立体图像匹配技术,斜向航空图像也可以生成密集的三维点云。随后,这些点云可以增强3D城市模型的几何和语义细节,特别是对于所描绘的建筑立面。然而,在复杂的城市环境中,在密集图像匹配过程中,对遮挡和大视点变化的要求特别高,这对倾斜图像来说是非常具有挑战性的。如本文所述,我们的匹配管道通过对SGM方法进行从粗到精的修改来解决这些问题。此外,在后续步骤中,对原始的三维点云进行有效的分析和过滤,从而在以提取三维城市模型为目标的同时,从倾斜航空图像中获取三维数据变得可行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extracting 3D urban models from oblique aerial images
Oblique airborne cameras are increasingly used for area covering image collection of building facades in urban environments. Until recently, these images were mainly used to improve the visual appearance of relatively simple 3D building models by providing suitable facade texture. Meanwhile, oblique airborne images are also used to generate dense 3D point clouds using state-of-the-art pixel-based multi-stereo image matching. Subsequently, these point clouds can then enhance the amount of geometric and semantic detail of 3D urban models especially for the depicted building facades. However, occlusions and large view-point changes are especially demanding during dense image matching can be very challenging for oblique imagery in complex urban environment. As described in the paper, our matching pipeline tackles these problems by a coarse-to-fine modification of the SGM method. Furthermore the raw 3D point clouds are efficiently analyzed and filtered in subsequent steps, thus 3D data capture from oblique airborne imagery while aiming at the extraction of 3D urban models becomes feasible.
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