Robust Multi-Object Matching via Iterative Reweighting of the Graph Connection Laplacian
Yunpeng Shi, Shaohan Li, Gilad Lerman
Abstract
We propose an efficient and robust iterative solution to the multi-object matching problem. We first clarify serious limitations of current methods as well as the inappropriateness of the standard iteratively reweighted least squares procedure. In view of these limitations, we suggest a novel and more reliable iterative reweighting strategy that incorporates information from higher-order neighborhoods by exploiting the graph connection Laplacian. We demonstrate the superior performance of our procedure over state-of-the-art methods using both synthetic and real datasets. 34th Conference on Neural Information Processing Systems (NeurIPS 2020),
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Install the CLIlune papers fulltext 7a941f4a-4174-4678-bd16-78b613ac2ccaCited by top-tier papers5
- Message Passing Least Squares Framework and its Application to Rotation SynchronizationYunpeng Shi, Gilad LermanICML 2020 · 45 citations
- Tensor-Based Synchronization and the Low-Rankness of the Block Trifocal TensorDaniel Miao, Gilad Lerman, Joe KileelNeurIPS 2024 · 6 citations
- Cycle-Sync: Robust Global Camera Pose Estimation through Enhanced Cycle-Consistent SynchronizationShaohan Li, Yunpeng Shi, Gilad LermanNeurIPS 2025 · 4 citations
- Fast, Accurate and Memory-Efficient Partial Permutation SynchronizationShaohan Li, Yunpeng Shi, Gilad LermanCVPR 2022 · 4 citations
- Efficient Detection of Long Consistent Cycles and its Application to Distributed SynchronizationShaohan Li, Yunpeng Shi, Gilad LermanCVPR 2024
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