Be More with Less: Hypergraph Attention Networks for Inductive Text Classification
Kaize Ding, Jianling Wang, Jundong Li, Dingcheng Li, Huan Liu
摘要
Text classification is a critical research topic with broad applications in natural language processing. Recently, graph neural networks (GNNs) have received increasing attention in the research community and demonstrated their promising results on this canonical task. Despite the success, their performance could be largely jeopardized in practice since they are: (1) unable to capture high-order interaction between words; (2) inefficient to handle large datasets and new documents. To address those issues, in this paper, we propose a principled model -hypergraph attention networks (HyperGAT), which can obtain more expressive power with less computational consumption for text representation learning. Extensive experiments on various benchmark datasets demonstrate the efficacy of the proposed approach on the text classification task.
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- You are AllSet: A Multiset Function Framework for Hypergraph Neural NetworksEli Chien, Chao Pan, Jianhao Peng, Olgica MilenkovicICLR 2022 · 被引用 209 次
- MS-HGAT: Memory-Enhanced Sequential Hypergraph Attention Network for Information Diffusion PredictionLing Sun, Yuan Rao, Xiangbo Zhang, Yuqian Lan 等AAAI 2022 · 被引用 86 次
- Deep Attention Diffusion Graph Neural Networks for Text ClassificationYonghao Liu, Renchu Guan, Fausto Giunchiglia, Yanchun Liang 等EMNLP 2021 · 被引用 67 次
- Learning Causal Effects on HypergraphsJing Ma, Mengting Wan, Longqi Yang, Jundong Li 等KDD 2022 · 被引用 61 次
- Sparse Structure Learning via Graph Neural Networks for Inductive Document ClassificationYinhua Piao, Sangseon Lee, Dohoon Lee, Sun KimAAAI 2022 · 被引用 46 次
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