Scale-Free Image Keypoints Using Differentiable Persistent Homology
Giovanni Barbarani, Francesco Vaccarino, Gabriele Trivigno, Marco Guerra, Gabriele Moreno Berton, Carlo Masone
摘要
In computer vision, keypoint detection is a fundamental task, with applications spanning from robotics to image retrieval; however, existing learning-based methods suffer from scale dependency, and lack flexibility. This paper introduces a novel approach that leverages Morse theory and persistent homology, powerful tools rooted in algebraic topology. We propose a novel loss function based on the recent introduction of a notion of subgradient in persistent homology, paving the way toward topological learning. Our detector, MorseDet, is the first topology-based learning model for feature detection, which achieves competitive performance in keypoint repeatability and introduces a principled and theoretically robust approach to the problem.
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- Topological AutoencodersMichael Moor, Max Horn, Bastian Rieck, Karsten M. BorgwardtICML 2020 · 被引用 192 次
- Topology-Aware Segmentation Using Discrete Morse TheoryXiaoling Hu, Yusu Wang, Fuxin Li, Dimitris Samaras 等ICLR 2021 · 被引用 115 次
- SiLK: Simple Learned KeypointsPierre Gleize, Weiyao Wang, Matt FeiszliICCV 2023 · 被引用 87 次
- Optimizing persistent homology based functionsMathieu Carrière, Frédéric Chazal, Marc Glisse, Yuichi Ike 等ICML 2021 · 被引用 73 次
- Topology-Aware Uncertainty for Image SegmentationSaumya Gupta, Yikai Zhang, Xiaoling Hu, Prateek Prasanna 等NeurIPS 2023 · 被引用 69 次
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