Nonlinear Higher-Order Label Spreading
Francesco Tudisco, Austin R. Benson, Konstantin Prokopchik
摘要
Label spreading is a general technique for semi-supervised learning with point cloud or network data, which can be interpreted as a diffusion of labels on a graph. While there are many variants of label spreading, nearly all of them are linear models, where the incoming information to a node is a weighted sum of information from neighboring nodes. Here, we add nonlinearity to label spreading through nonlinear functions of higher-order structure in the graph, namely triangles in the graph. For a broad class of nonlinear functions, we prove convergence of our nonlinear higher-order label spreading algorithm to the global solution of a constrained semi-supervised loss function. We demonstrate the efficiency and efficacy of our approach on a variety of point cloud and network datasets, where the nonlinear higher-order model compares favorably to classical label spreading, as well as hypergraph models and graph neural networks.
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- Combining Label Propagation and Simple Models out-performs Graph Neural NetworksQian Huang, Horace He, Abhay Singh, Ser-Nam Lim 等ICLR 2021 · 被引用 322 次
- You are AllSet: A Multiset Function Framework for Hypergraph Neural NetworksEli Chien, Chao Pan, Jianhao Peng, Olgica MilenkovicICLR 2022 · 被引用 209 次
- Sheaf Hypergraph NetworksIulia Duta, Giulia Cassarà, Fabrizio Silvestri, Pietro LióNeurIPS 2023 · 被引用 68 次
- Topological Relational Learning on GraphsYuzhou Chen, Baris Coskunuzer, Yulia R. GelNeurIPS 2021 · 被引用 58 次
- Nonlinear Feature Diffusion on HypergraphsKonstantin Prokopchik, Austin R. Benson, Francesco TudiscoICML 2022 · 被引用 25 次
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