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On fake news detection with LLM enhanced semantics mining

Xiaoxiao Ma, Yuchen Zhang, Kaize Ding, Jian Yang, Jia Wu, Hao Fan

Research output: Chapter in Book/Report/Conference proceedingConference proceeding contributionpeer-review

Abstract

Large language models (LLMs) have emerged as valuable tools for enhancing textual features in various text-related tasks. Despite their superiority in capturing the lexical semantics between tokens for text analysis, our preliminary study on two popular LLMs, i.e., GPT-3.5 and Llama2, shows that simply applying news embeddings from LLMs is ineffective for fake news detection. Such embeddings only encapsulate the language styles between tokens. Meanwhile, the high-level semantics among named entities and topics, which reveal the deviating patterns of fake news, have been ignored. Therefore, we propose a topic model together with a set of specially designed prompts to extract topics and real entities from LLMs and model the relations among news, entities, and topics as a heterogeneous graph to facilitate investigating news semantics. We then propose a Generalized Page-Rank model and a consistent learning criterion for mining the local and global semantics centered on each news piece through the adaptive propagation of features across the graph. Our model shows superior performance on five benchmark datasets over seven baseline methods and the efficacy of the key ingredients has been thoroughly validated.

Original languageEnglish
Title of host publicationEMNLP 2024
Subtitle of host publicationProceedings of the 2024 Conference on Empirical Methods in Natural Language Processing
EditorsYaser Al-Onaizan, Mohit Bansal, Yun-Nung Chen
Place of PublicationKerrville, TX
PublisherAssociation for Computational Linguistics (ACL)
Pages508-521
Number of pages14
ISBN (Electronic)9798891761643
DOIs
Publication statusPublished - 2024
Event2024 Conference on Empirical Methods in Natural Language Processing - Miami, United States
Duration: 12 Nov 202416 Nov 2024

Conference

Conference2024 Conference on Empirical Methods in Natural Language Processing
Abbreviated title EMNLP 2024
Country/TerritoryUnited States
CityMiami
Period12/11/2416/11/24

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