Towards Propagation Uncertainty: Edge-enhanced Bayesian Graph Convolutional Networks for Rumor Detection
Lingwei Wei, Dou Hu, Wei Zhou, Zhaojuan Yue, Songlin Hu
摘要
Detecting rumors on social media is a very critical task with significant implications to the economy, public health, etc. Previous works generally capture effective features from texts and the propagation structure. However, the uncertainty caused by unreliable relations in the propagation structure is common and inevitable due to wily rumor producers and the limited collection of spread data. Most approaches neglect it and may seriously limit the learning of features. Towards this issue, this paper makes the first attempt to explore propagation uncertainty for rumor detection. Specifically, we propose a novel Edge-enhanced Bayesian Graph Convolutional Network (EBGCN) to capture robust structural features. The model adaptively rethinks the reliability of latent relations by adopting a Bayesian approach. Besides, we design a new edge-wise consistency training framework to optimize the model by enforcing consistency on relations. Experiments on three public benchmark datasets demonstrate that the proposed model achieves better performance than baseline methods on both rumor detection and early rumor detection tasks.
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引用它的顶会 Paper9
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它引用的顶会 Paper4
- Rumor Detection on Social Media with Bi-Directional Graph Convolutional NetworksTian Bian, Xi Xiao, Tingyang Xu, Peilin Zhao 等AAAI 2020 · 被引用 773 次
- GCAN: Graph-aware Co-Attention Networks for Explainable Fake News Detection on Social MediaYi-Ju Lu, Cheng-Te LiACL 2020 · 被引用 387 次
- Interpretable Rumor Detection in Microblogs by Attending to User InteractionsLing Min Serena Khoo, Hai Leong Chieu, Zhong Qian, Jing JiangAAAI 2020 · 被引用 231 次
- Learning from the Past: Continual Meta-Learning with Bayesian Graph Neural NetworksYadan Luo, Zi Huang, Zheng Zhang, Ziwei Wang 等AAAI 2020 · 被引用 27 次
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