Vanishing Point Estimation in Uncalibrated Images with Prior Gravity Direction
Rémi Pautrat, Shaohui Liu, Petr Hruby, Marc Pollefeys, Daniel Barath
摘要
We tackle the problem of estimating a Manhattan frame, i.e. three orthogonal vanishing points, and the unknown focal length of the camera, leveraging a prior vertical direction. The direction can come from an Inertial Measurement Unit that is a standard component of recent consumer devices, e.g., smartphones. We provide an exhaustive analysis of minimal line configurations and derive two new 2-line solvers, one of which does not suffer from singularities affecting existing solvers. Additionally, we design a new non-minimal method, running on an arbitrary number of lines, to boost the performance in local optimization. Combining all solvers in a hybrid robust estimator, our method achieves increased accuracy even with a rough prior. Experiments on synthetic and real-world datasets demonstrate the superior accuracy of our method compared to the state of the art, while having comparable runtimes. We further demonstrate the applicability of our solvers for relative rotation estimation. The code is available at https://github.com/cvg/VP-Estimation-with-Prior-Gravity.
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引用它的顶会 Paper4
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它引用的顶会 Paper9
- Learning to Reconstruct 3D Manhattan Wireframes From a Single ImageYichao Zhou, Haozhi Qi, Yuexiang Zhai, Qi Sun 等ICCV 2019 · 被引用 74 次
- Quasi-Globally Optimal and Efficient Vanishing Point Estimation in Manhattan WorldHaoang Li, Ji Zhao, Jean-Charles Bazin, Wen Chen 等ICCV 2019 · 被引用 34 次
- VaPiD: A Rapid Vanishing Point Detector via Learned OptimizersShichen Liu, Yichao Zhou, Yajie ZhaoICCV 2021 · 被引用 19 次
- Transformer Based Line Segment Classifier with Image Context for Real-Time Vanishing Point Detection in Manhattan WorldXin Tong, Xianghua Ying, Yongjie Shi, Ruibin Wang 等CVPR 2022 · 被引用 17 次
- Globally Optimal Relative Pose Estimation With Gravity PriorYaqing Ding, Daniel Barath, Jian Yang, Hui Kong 等CVPR 2021
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