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Radiation, Rotation and Scale Invariant Feature Descriptor for Multimodal Image Matching

arXiv · AI, language, vision and robotics · article · Sep 6, 2026 · UTC

Multimodal image matching is a fundamental task for multi-source information fusion. However, geometric distortions and nonlinear radiometric differences (NRD) severely limit performance, especially under radiometric, rotation, and scale variations. To address this issue, we propose a radiation, rotation, and scale invariant (RRSI) feature descriptor. First, a dual-head regional sampling (DHRS) module simultaneously performs Cartesian and Log-Polar sampling on keypoint neighborhoods, retaining spatial structural properties while enhancing robustness to rotation and scale variations. We then jo

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First collected: 2026-09-20T21:12:06.801Z. This is not the publication date.