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Extreme Rotation Estimation in the Wild

About

We present a technique and benchmark dataset for estimating the relative 3D orientation between a pair of Internet images captured in an extreme setting, where the images have limited or non-overlapping field of views. Prior work targeting extreme rotation estimation assume constrained 3D environments and emulate perspective images by cropping regions from panoramic views. However, real images captured in the wild are highly diverse, exhibiting variation in both appearance and camera intrinsics. In this work, we propose a Transformer-based method for estimating relative rotations in extreme real-world settings, and contribute the ExtremeLandmarkPairs dataset, assembled from scene-level Internet photo collections. Our evaluation demonstrates that our approach succeeds in estimating the relative rotations in a wide variety of extreme-view Internet image pairs, outperforming various baselines, including dedicated rotation estimation techniques and contemporary 3D reconstruction methods.

Hana Bezalel, Dotan Ankri, Ruojin Cai, Hadar Averbuch-Elor• 2024

Related benchmarks

TaskDatasetResultRank
Rotation EstimationSUN360 Large Overlap
Geodesic Error (Mean)2.45
13
Relative Rotation EstimationsELP
MRE13.23
7
Rotation EstimationsELP Small overlap (test)
MGE4.35
7
Relative Rotation EstimationUnScenePairs
MRE28.48
7
Relative Rotation EstimationUnScenePairs (t)
MRE42.45
7
Rotation EstimationwELP Non-overlapping (test)
MGE26.97
6
Rotation EstimationwELP Small overlap (test)
MGE4.47
6
Rotation EstimationwELP Large overlap (test)
MGE2.41
6
Rotation EstimationsELP Non-overlapping (test)
MGE13.62
5
Relative Rotation EstimationStreetLearn panoramas Large overlap (test)
MGE1.06
4
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