Fact-Checking at Scale: Multimodal AI for Authenticity and Context Verification in Online Media

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Main Authors: Phan, Van-Hoang, Le-Duc, Tung-Duong, Pham, Long-Khanh, Le, Anh-Thu, Dinh-Nguyen, Quynh-Huong, Vo, Dang-Quan, Nguyen-Son, Hoang-Quoc, Tran, Anh-Duy, Vu, Dang, Dao, Minh-Son
Format: Preprint
Published: 2025
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author Phan, Van-Hoang
Le-Duc, Tung-Duong
Pham, Long-Khanh
Le, Anh-Thu
Dinh-Nguyen, Quynh-Huong
Vo, Dang-Quan
Nguyen-Son, Hoang-Quoc
Tran, Anh-Duy
Vu, Dang
Dao, Minh-Son
author_facet Phan, Van-Hoang
Le-Duc, Tung-Duong
Pham, Long-Khanh
Le, Anh-Thu
Dinh-Nguyen, Quynh-Huong
Vo, Dang-Quan
Nguyen-Son, Hoang-Quoc
Tran, Anh-Duy
Vu, Dang
Dao, Minh-Son
contents The proliferation of multimedia content on social media platforms has dramatically transformed how information is consumed and disseminated. While this shift enables real-time coverage of global events, it also facilitates the rapid spread of misinformation and disinformation, especially during crises such as wars, natural disasters, or elections. The rise of synthetic media and the reuse of authentic content in misleading contexts have intensified the need for robust multimedia verification tools. In this paper, we present a comprehensive system developed for the ACM Multimedia 2025 Grand Challenge on Multimedia Verification. Our system assesses the authenticity and contextual accuracy of multimedia content in multilingual settings and generates both expert-oriented verification reports and accessible summaries for the general public. We introduce a unified verification pipeline that integrates visual forensics, textual analysis, and multimodal reasoning, and propose a hybrid approach to detect out-of-context (OOC) media through semantic similarity, temporal alignment, and geolocation cues. Extensive evaluations on the Grand Challenge benchmark demonstrate the system's effectiveness across diverse real-world scenarios. Our contributions advance the state of the art in multimedia verification and offer practical tools for journalists, fact-checkers, and researchers confronting information integrity challenges in the digital age.
format Preprint
id arxiv_https___arxiv_org_abs_2508_08592
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Fact-Checking at Scale: Multimodal AI for Authenticity and Context Verification in Online Media
Phan, Van-Hoang
Le-Duc, Tung-Duong
Pham, Long-Khanh
Le, Anh-Thu
Dinh-Nguyen, Quynh-Huong
Vo, Dang-Quan
Nguyen-Son, Hoang-Quoc
Tran, Anh-Duy
Vu, Dang
Dao, Minh-Son
Multimedia
The proliferation of multimedia content on social media platforms has dramatically transformed how information is consumed and disseminated. While this shift enables real-time coverage of global events, it also facilitates the rapid spread of misinformation and disinformation, especially during crises such as wars, natural disasters, or elections. The rise of synthetic media and the reuse of authentic content in misleading contexts have intensified the need for robust multimedia verification tools. In this paper, we present a comprehensive system developed for the ACM Multimedia 2025 Grand Challenge on Multimedia Verification. Our system assesses the authenticity and contextual accuracy of multimedia content in multilingual settings and generates both expert-oriented verification reports and accessible summaries for the general public. We introduce a unified verification pipeline that integrates visual forensics, textual analysis, and multimodal reasoning, and propose a hybrid approach to detect out-of-context (OOC) media through semantic similarity, temporal alignment, and geolocation cues. Extensive evaluations on the Grand Challenge benchmark demonstrate the system's effectiveness across diverse real-world scenarios. Our contributions advance the state of the art in multimedia verification and offer practical tools for journalists, fact-checkers, and researchers confronting information integrity challenges in the digital age.
title Fact-Checking at Scale: Multimodal AI for Authenticity and Context Verification in Online Media
topic Multimedia
url https://arxiv.org/abs/2508.08592