Interpretable Rumor Detection in Microblogs by Attending to User Interactions
Ling Min Serena Khoo, Hai Leong Chieu, Zhong Qian, Jing Jiang
摘要
We address rumor detection by learning to differentiate between the community's response to real and fake claims in microblogs. Existing state-of-the-art models are based on tree models that model conversational trees. However, in social media, a user posting a reply might be replying to the entire thread rather than to a specific user. We propose a post-level attention model (PLAN) to model long distance interactions between tweets with the multi-head attention mechanism in a transformer network. We investigated variants of this model: (1) a structure aware self-attention model (StA-PLAN) that incorporates tree structure information in the transformer network, and (2) a hierarchical token and post-level attention model (StA-HiTPLAN) that learns a sentence representation with token-level self-attention. To the best of our knowledge, we are the first to evaluate our models on two rumor detection data sets: the PHEME data set as well as the Twitter15 and Twitter16 data sets. We show that our best models outperform current state-of-the-art models for both data sets. Moreover, the attention mechanism allows us to explain rumor detection predictions at both token-level and post-level.
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引用它的顶会 Paper24
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- Towards Fine-Grained Reasoning for Fake News DetectionYiqiao Jin, Xiting Wang, Ruichao Yang, Yizhou Sun 等AAAI 2022 · 被引用 89 次
- Zero-Shot Rumor Detection with Propagation Structure via Prompt LearningHongzhan Lin, Pengyao Yi, Jing Ma, Haiyun Jiang 等AAAI 2023 · 被引用 84 次
- Divide-and-Conquer: Post-User Interaction Network for Fake News Detection on Social MediaErxue Min, Yu Rong, Yatao Bian, Tingyang Xu 等WWW 2022 · 被引用 82 次
- Reinforcement Subgraph Reasoning for Fake News DetectionRuichao Yang, Xiting Wang, Yiqiao Jin, Chaozhuo Li 等KDD 2022 · 被引用 57 次
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