E-FreeM2: Efficient Training-Free Multi-Scale and Cross-Modal News Verification via MLLMs
June 26, 2025 Β· Declared Dead Β· π Proceedings of the 2nd Workshop on Security-Centric Strategies for Combating Information Disorder
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Authors
Van-Hoang Phan, Long-Khanh Pham, Dang Vu, Anh-Duy Tran, Minh-Son Dao
arXiv ID
2506.20944
Category
cs.MM: Multimedia
Cross-listed
cs.CR
Citations
2
Venue
Proceedings of the 2nd Workshop on Security-Centric Strategies for Combating Information Disorder
Last Checked
3 months ago
Abstract
The rapid spread of misinformation in mobile and wireless networks presents critical security challenges. This study introduces a training-free, retrieval-based multimodal fact verification system that leverages pretrained vision-language models and large language models for credibility assessment. By dynamically retrieving and cross-referencing trusted data sources, our approach mitigates vulnerabilities of traditional training-based models, such as adversarial attacks and data poisoning. Additionally, its lightweight design enables seamless edge device integration without extensive on-device processing. Experiments on two fact-checking benchmarks achieve SOTA results, confirming its effectiveness in misinformation detection and its robustness against various attack vectors, highlighting its potential to enhance security in mobile and wireless communication environments.
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