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A Coarse-to-fine Cascaded Evidence-Distillation Neural Network for Explainable Fake News Detection

About

Existing fake news detection methods aim to classify a piece of news as true or false and provide veracity explanations, achieving remarkable performances. However, they often tailor automated solutions on manual fact-checked reports, suffering from limited news coverage and debunking delays. When a piece of news has not yet been fact-checked or debunked, certain amounts of relevant raw reports are usually disseminated on various media outlets, containing the wisdom of crowds to verify the news claim and explain its verdict. In this paper, we propose a novel Coarse-to-fine Cascaded Evidence-Distillation (CofCED) neural network for explainable fake news detection based on such raw reports, alleviating the dependency on fact-checked ones. Specifically, we first utilize a hierarchical encoder for web text representation, and then develop two cascaded selectors to select the most explainable sentences for verdicts on top of the selected top-K reports in a coarse-to-fine manner. Besides, we construct two explainable fake news datasets, which are publicly available. Experimental results demonstrate that our model significantly outperforms state-of-the-art baselines and generates high-quality explanations from diverse evaluation perspectives.

Zhiwei Yang, Jing Ma, Hechang Chen, Hongzhan Lin, Ziyang Luo, Yi Chang• 2022

Related benchmarks

TaskDatasetResultRank
Fact VerificationRAWFC
Precision53
30
Veracity PredictionRAWFC (test)
Precision53
28
Fact CheckingLIAR RAW
Precision29.48
20
Fake News DetectionANTiVax
Precision73.1
19
Fact VerificationLIAR
F1 Score29.5
18
Veracity Explanation RankingRAWFC
Readability (MAR)2.07
15
Veracity PredictionLIAR-RAW (test)
Precision29.48
12
Claim VerificationLIAR (test)
Precision29.5
12
Veracity Explanation RankingLIAR RAW
Informativeness (MAR)1.82
12
Explanation GenerationLIAR-RAW (test)
ROU-117.96
11
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