Averaging Essential and Fundamental Matrices in Collinear Camera Settings
Amnon Geifman, Yoni Kasten, Meirav Galun, Ronen Basri
Abstract
Global methods to Structure from Motion have gained popularity in recent years. A significant drawback of global methods is their sensitivity to collinear camera settings. In this paper, we introduce an analysis and algorithms for averaging bifocal tensors (essential or fundamental matrices) when either subsets or all of the camera centers are collinear. We provide a complete spectral characterization of bifocal tensors in collinear scenarios and further propose two averaging algorithms. The first algorithm uses rank constrained minimization to recover camera matrices in fully collinear settings. The second algorithm enriches the set of possibly mixed collinear and non-collinear cameras with additional, "virtual cameras," which are placed in general position, enabling the application of existing averaging methods to the enriched set of bifocal tensors. Our algorithms are shown to achieve state of the art results on various benchmarks that include autonomous car datasets and unordered image collections in both calibrated and unclibrated settings.
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Install the CLIlune papers fulltext be4284f6-8f09-4184-a03d-75c9686e853fCited by top-tier papers5
- Deep Permutation Equivariant Structure from MotionDror Moran, Hodaya Koslowsky, Yoni Kasten, Haggai Maron et al.ICCV 2021 · 21 citations
- Compatibility of Fundamental Matrices for Complete Viewing GraphsMartin Bråtelund, Felix RydellICCV 2023 · 10 citations
- RESfM: Robust Deep Equivariant Structure from MotionFadi Khatib, Yoni Kasten, Dror Moran, Meirav Galun et al.ICLR 2025
- QuadSync: Quadrifocal Tensor Synchronization via Tucker DecompositionDaniel Miao, Gilad Lerman, Joe KileelCVPR 2026
- Minimal Perspective AutocalibrationAndrea Porfiri Dal Cin, Timothy Duff, Luca Magri, Tomás PajdlaCVPR 2024
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