Hypergraph Neural Networks for Hypergraph Matching
Xiaowei Liao, Yong Xu, Haibin Ling
摘要
Hypergraph matching is a useful tool to find feature correspondence by considering higher-order structural information. Recently, the employment of deep learning has made great progress in the matching of graphs, suggesting its potential for hypergraphs. Hence, in this paper, we present the first, to our best knowledge, unified hypergraph neural network (HNN) solution for hypergraph matching. Specifically, given two hypergraphs to be matched, we first construct an association hypergraph over them and convert the hypergraph matching problem into a node classification problem on the association hypergraph. Then, we design a novel hypergraph neural network to effectively solve the node classification problem. Being end-to-end trainable, our proposed method, named HNN-HM, jointly learns all its components with improved optimization. For evaluation, HNN-HM is tested on various benchmarks and shows a clear advantage over state-of-the-arts.
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引用它的顶会 Paper3
- Factor Graph Neural NetworksZhen Zhang, Fan Wu, Wee Sun LeeNeurIPS 2020 · 被引用 48 次
- Hypergraph Clustering Network with Partial Attribute ImputationQianqian Wang, Bowen Zhao, Zhengming Ding, Wei Feng 等ICCV 2025 · 被引用 1 次
- CURSOR: Scalable Mixed-Order Hypergraph Matching with CUR DecompositionQixuan Zheng, Ming Zhang, Hong YanCVPR 2024
它引用的顶会 Paper5
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- Learning Combinatorial Embedding Networks for Deep Graph MatchingRunzhong Wang, Junchi Yan, Xiaokang YangICCV 2019 · 被引用 268 次
- Deep Graph Matching ConsensusMatthias Fey, Jan Eric Lenssen, Christopher Morris, Jonathan Masci 等ICLR 2020 · 被引用 227 次
- Learning deep graph matching with channel-independent embedding and Hungarian attentionTianshu Yu, Runzhong Wang, Junchi Yan, Baoxin LiICLR 2020 · 被引用 113 次
- Learning Combinatorial Solver for Graph MatchingTao Wang, He Liu, Yidong Li, Yi Jin 等CVPR 2020
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