Deformable Surface Tracking by Graph Matching
Tao Wang, Haibin Ling, Congyan Lang, Songhe Feng, Xiaohui Hou
摘要
This paper addresses the problem of deformable surface tracking from monocular images. Specifically, we propose a graph-based approach that effectively explores the structure information of the surface to enhance tracking performance. Our approach solves simultaneously for feature correspondence, outlier rejection and shape reconstruction by optimizing a single objective function, which is defined by means of pairwise projection errors between graph structures instead of unary projection errors between matched points. Furthermore, an efficient matching algorithm is developed based on soft matching relaxation. For evaluation, our approach is extensively compared to state-of-the-art algorithms on a standard dataset of occluded surfaces, as well as a newly compiled dataset of different surfaces with rich, weak or repetitive texture. Experimental results reveal that our approach achieves robust tracking results for surfaces with different types of texture, and outperforms other algorithms in both accuracy and efficiency.
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引用它的顶会 Paper5
- Extracting Deformation-Aware Local Features by Learning to DeformGuilherme A. Potje, Renato Martins, Felipe C. Chamone, Erickson R. NascimentoNeurIPS 2021 · 被引用 12 次
- Enhancing Deformable Local Features by Jointly Learning to Detect and Describe KeypointsGuilherme A. Potje, Felipe Cadar, André Araújo, Renato Martins 等CVPR 2023
- Graph Alignment via Dual-Pass Spectral Encoding and Latent Space CommunicationMaysam Behmanesh, Erkan Turan, Maks OvsjanikovICML 2026
- Learning Combinatorial Solver for Graph MatchingTao Wang, He Liu, Yidong Li, Yi Jin 等CVPR 2020
- Unsupervised Contour Tracking of Live Cells by Mechanical and Cycle Consistency LossesJunbong Jang, Kwonmoo Lee, Tae-Kyun KimCVPR 2023
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