HC2-GNN: Hierarchical Graph Representation Learning for Efficient Text Classification
Jiejie Fan, Xiaojuan Ban, Zhiyan Zhang, Xi Sun
摘要
Graph Neural Networks (GNNs) offer superior modeling capabilities for text classification by capturing complex spatial features within semantic representations. However, existing graph-based approaches often suffer from computational inefficiency and limited ability to model both fine-grained local structures and the sequential nature of text. To address these challenges, we propose HC2-GNN, a Hierarchical Clustering and Coarsening Graph Neural Network, which introduces a novel lightweight graph clustering algorithm called Compromise Conductance Graph Clustering (C2GC). C2GC enables efficient graph clustering while simultaneously preserving both the textual order and the topological coherence of subgraphs. Furthermore, it incorporates a virtue cluster mechanism that expands each subgraph with semantically relevant neighbors, explicitly enabling cross-cluster information propagation without compromising local structural integrity. HC2-GNN aggregates local and global features by combining subgraph-level and full-graph representations, enhancing semantic discriminability for classification. Extensive experiments on benchmark datasets demonstrate that HC2-GNN consistently outperforms existing state-of-the-art text classification methods.
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它引用的顶会 Paper4
- Simple Spectral Graph ConvolutionHao Zhu, Piotr KoniuszICLR 2021 · 被引用 352 次
- Tensor Graph Convolutional Networks for Text ClassificationXien Liu, Xinxin You, Xiao Zhang, Ji Wu 等AAAI 2020 · 被引用 284 次
- Message Passing Attention Networks for Document UnderstandingGiannis Nikolentzos, Antoine J.-P. Tixier, Michalis VazirgiannisAAAI 2020 · 被引用 80 次
- Scalable and Effective Conductance-Based Graph ClusteringLonglong Lin, Ronghua Li, Tao JiaAAAI 2023 · 被引用 22 次
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