Height and Uprightness Invariance for 3D Prediction From a Single View
Manel Baradad, Antonio Torralba
摘要
Current state-of-the-art methods that predict 3D from single images ignore the fact that the height of objects and their upright orientation is invariant to the camera pose and intrinsic parameters. To account for this, we propose a system that directly regresses 3D world coordinates for each pixel. First, our system predicts the camera position with respect to the ground plane and its intrinsic parameters. Followed by that, it predicts the 3D position for each pixel along the rays spanned by the camera. The predicted 3D coordinates and normals are invariant to a change in the camera position or its model, and we can directly impose a regression loss on these world coordinates. Our approach yields competitive results for depth and camera pose estimation (while not being explicitly trained to predict any of these) and improves across-dataset generalization performance over existing state-of-the-art methods.
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引用它的顶会 Paper2
- Depth Pro: Sharp Monocular Metric Depth in Less Than a SecondAlexey Bochkovskiy, Amaël Delaunoy, Hugo Germain, Marcel Santos 等ICLR 2025 · 被引用 15 次
- Camera Pose Matters: Improving Depth Prediction by Mitigating Pose Distribution BiasYunhan Zhao, Shu Kong, Charless C. FowlkesCVPR 2021
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- Enforcing Geometric Constraints of Virtual Normal for Depth PredictionWei Yin, Yifan Liu, Chunhua Shen, Youliang YanICCV 2019 · 被引用 487 次
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- How Do Neural Networks See Depth in Single Images?Tom van Dijk, Guido de CroonICCV 2019 · 被引用 210 次
- Visualization of Convolutional Neural Networks for Monocular Depth EstimationJunjie Hu, Yan Zhang, Takayuki OkataniICCV 2019 · 被引用 91 次
- UprightNet: Geometry-Aware Camera Orientation Estimation From Single ImagesWenqi Xian, Zhengqi Li, Noah Snavely, Matthew Fisher 等ICCV 2019 · 被引用 52 次
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