Sandeep Polisetty
2021
InfoSurgeon: Cross-Media Fine-grained Information Consistency Checking for Fake News Detection
Yi Fung
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Christopher Thomas
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Revanth Gangi Reddy
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Sandeep Polisetty
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Heng Ji
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Shih-Fu Chang
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Kathleen McKeown
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Mohit Bansal
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Avi Sil
Proceedings of the 59th Annual Meeting of the Association for Computational Linguistics and the 11th International Joint Conference on Natural Language Processing (Volume 1: Long Papers)
To defend against machine-generated fake news, an effective mechanism is urgently needed. We contribute a novel benchmark for fake news detection at the knowledge element level, as well as a solution for this task which incorporates cross-media consistency checking to detect the fine-grained knowledge elements making news articles misinformative. Due to training data scarcity, we also formulate a novel data synthesis method by manipulating knowledge elements within the knowledge graph to generate noisy training data with specific, hard to detect, known inconsistencies. Our detection approach outperforms the state-of-the-art (up to 16.8% accuracy gain), and more critically, yields fine-grained explanations.
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Co-authors
- Yi Fung 1
- Christopher Thomas 1
- Revanth Gangi Reddy 1
- Heng Ji 1
- Shih-Fu Chang 1
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