Reimagining Graph Classification from a Prototype View with Optimal Transport: Algorithm and Theorem
Chen Qian, Huayi Tang, Hong Liang, Yong Liu
2024Year
2Citations
3Top-tier citations
Abstract
Recently, Graph Neural Networks (GNNs) have achieved inspiring performances in graph classification tasks. However, the message passing mechanism in GNNs implicitly utilizes the topological information of the graph, which may lead to a potential loss of structural information. Furthermore, the graph classification decision process based on GNNs resembles a black box and lacks sufficient transparency. The non-linear classifier following the GNNs also defaults to the assumption that each class is represented by a single vector, thereby limiting the diversity of intra-class representations.
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Cited by top-tier papers3
- Joint Optimal Transport and Embedding for Network AlignmentQi Yu, Zhichen Zeng, Yuchen Yan, Lei Ying et al.WWW 2025 · 17 citations
- TopoFormer: Topology Meets Attention for Graph LearningMd Joshem Uddin, Astrit Tola, Cuneyt Gurcan Akcora, Baris CoskunuzerICLR 2026 · 2 citations
- TopER: Topological Embeddings in Graph Representation LearningAstrit Tola, Funmilola Mary Taiwo, Cuneyt Gurcan Akcora, Baris CoskunuzerNeurIPS 2025 · 1 citation
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