Learning a Depth Covariance Function
Eric Dexheimer, Andrew J. Davison
2023Year
6Top-tier citations
Abstract
We propose learning a depth covariance function with applications to geometric vision tasks. Given RGB images as input, the covariance function can be flexibly used to define priors over depth functions, predictive distributions given observations, and methods for active point selection. We leverage these techniques for a selection of downstream tasks: depth completion, bundle adjustment, and monocular dense visual odometry.
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Cited by top-tier papers6
- Gaussian Splatting SLAMHidenobu Matsuki, Riku Murai, Paul H. J. Kelly, Andrew J. DavisonCVPR 2024 · 328 citations
- AMB3R: Accurate Feed-forward Metric-scale 3D Reconstruction with BackendHengyi Wang, Lourdes AgapitoCVPR 2026 · 17 citations
- Monocular Online Reconstruction with Enhanced Detail PreservationSongyin Wu, Zhaoyang Lv, Yufeng Zhu, Duncan P. Frost et al.SIGGRAPH 2025 · 1 citation
- SuperPrimitive: Scene Reconstruction at a Primitive LevelKirill Mazur, Gwangbin Bae, Andrew J. DavisonCVPR 2024 · 1 citation
- MASt3R-SLAM: Real-Time Dense SLAM with 3D Reconstruction PriorsRiku Murai, Eric Dexheimer, Andrew J. DavisonCVPR 2025
Builds on6
- Digging Into Self-Supervised Monocular Depth EstimationClément Godard, Oisin Mac Aodha, Michael Firman, Gabriel J. BrostowICCV 2019 · 2,416 citations
- DROID-SLAM: Deep Visual SLAM for Monocular, Stereo, and RGB-D CamerasZachary Teed, Jia DengNeurIPS 2021 · 1,248 citations
- DeepV2D: Video to Depth with Differentiable Structure from MotionZachary Teed, Jia DengICLR 2020 · 314 citations
- Bayesian Meta-Learning for the Few-Shot Setting via Deep KernelsMassimiliano Patacchiola, Jack Turner, Elliot J. Crowley, Michael F. P. O'Boyle et al.NeurIPS 2020 · 167 citations
- Learning Meshes for Dense Visual SLAMMichael Bloesch, Tristan Laidlow, Ronald Clark, Stefan Leutenegger et al.ICCV 2019 · 23 citations
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