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Robust 3D street-view reconstruction using sky motion estimation

机译:使用天空运动估计进行稳健的3D街景重建

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We introduce a robust 3D reconstruction system that uses a combination of the structure-from-motion (SfM) filter and the bundle adjustment. The local bundle adjustment provides an initial depth of a newly introduced feature to the SfM filter, and the filter enables to predict the motion of the camera while performing the reconstruction process. In addition, we increase the robustness of the rotation estimation by estimating the motion of the sky from cylindrical panoramas of street views. The sky region is segmented by a robust estimating algorithm based on a translational motion model in the cylindrical panoramas. We show that the combination of the SfM filter and the bundle adjustment with sky motion estimation algorithms produces a robust 3D reconstruction from the street view images, compared to running each method separately.
机译:我们介绍了一个强大的3D重建系统,该系统结合了“运动结构”(SfM)滤波器和束调整功能。局部束调整为SfM滤镜提供了新引入功能的初始深度,并且滤镜能够在执行重建过程时预测相机的运动。此外,我们通过从街道景观的圆柱全景图中估算天空的运动来提高旋转估算的鲁棒性。通过基于圆柱全景图中的平移运动模型的鲁棒估计算法对天空区域进行分割。我们显示,与分别运行每种方法相比,SfM滤波器和束调整与天空运动估计算法的结合可从街景图像中生成可靠的3D重建。

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