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AffineGlue: Joint Matching and Robust Estimation (2307.15381v1)

Published 28 Jul 2023 in cs.CV

Abstract: We propose AffineGlue, a method for joint two-view feature matching and robust estimation that reduces the combinatorial complexity of the problem by employing single-point minimal solvers. AffineGlue selects potential matches from one-to-many correspondences to estimate minimal models. Guided matching is then used to find matches consistent with the model, suffering less from the ambiguities of one-to-one matches. Moreover, we derive a new minimal solver for homography estimation, requiring only a single affine correspondence (AC) and a gravity prior. Furthermore, we train a neural network to reject ACs that are unlikely to lead to a good model. AffineGlue is superior to the SOTA on real-world datasets, even when assuming that the gravity direction points downwards. On PhotoTourism, the AUC@10{\deg} score is improved by 6.6 points compared to the SOTA. On ScanNet, AffineGlue makes SuperPoint and SuperGlue achieve similar accuracy as the detector-free LoFTR.

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Authors (6)
  1. Daniel Barath (71 papers)
  2. Dmytro Mishkin (23 papers)
  3. Luca Cavalli (10 papers)
  4. Paul-Edouard Sarlin (13 papers)
  5. Petr Hruby (7 papers)
  6. Marc Pollefeys (230 papers)
Citations (3)

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