Robust Homography Estimation via Dual Principal Component Pursuit
Tianjiao Ding, Yunchen Yang, Zhihui Zhu, Daniel P. Robinson, René Vidal, Laurent Kneip, Manolis C. Tsakiris
Abstract
We revisit robust estimation of homographies over point correspondences between two or three views, a fundamental problem in geometric vision. The analysis serves as a platform to support a rigorous investigation of Dual Principal Component Pursuit (DPCP) as a valid and powerful alternative to RANSAC for robust model fitting in multipleview geometry. Homography fitting is cast as a robust nullspace estimation problem over either homographic or epipolar/trifocal embeddings. We prove that the nullspace of epipolar or trifocal embeddings in the homographic scenario, of dimension 3 and 6 for two and three views respectively, is defined by unique, computable homographies. Experiments show that DPCP performs on par with USAC with local optimization, while requiring an order of magnitude less computing time, and it also outperforms a recent deep learning implementation for homography estimation.
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Install the CLIlune papers fulltext fead0e0b-dd65-4676-a6ad-e20fe919d59cCited by top-tier papers7
- Iterative Deep Homography EstimationSi-Yuan Cao, Jianxin Hu, Ze-Hua Sheng, Hui-Liang ShenCVPR 2022 · 65 citations
- Global Linear and Local Superlinear Convergence of IRLS for Non-Smooth Robust RegressionLiangzu Peng, Christian Kümmerle, René VidalNeurIPS 2022 · 18 citations
- Supervised Homography Learning with Realistic Dataset GenerationHai Jiang, Haipeng Li, Songchen Han, Haoqiang Fan et al.ICCV 2023 · 12 citations
- Dual Principal Component Pursuit for Robust Subspace Learning: Theory and Algorithms for a Holistic ApproachTianyu Ding, Zhihui Zhu, René Vidal, Daniel P. RobinsonICML 2021 · 6 citations
- Robust Model Reasoning and Fitting via Dual Sparsity PursuitXingyu Jiang, Jiayi MaNeurIPS 2023 · 5 citations
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