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TSR Desk · science · 1 October 2026, 01:00 UTC

Can Multimodal Large Language Models Generate and Detect Multimodal Social Media Fake News?

What
Can Multimodal Large Language Models Generate and Detect Multimodal Social Media Fake News?
Who
arxiv.org
When
30 September 2026, 04:00 UTC
Category
Science
Primary source
https://arxiv.org/abs/2609.35809
What is not known
This brief does not claim independent replication. Claims that appear only on X and not in the primary source stay unknown.

We apply the framework to generate over 9,000 paired multimodal news posts across science, health, and entertainment domains, and benchmark 16 open- and closed-source MLLMs for automated detection. It comes from a paper posted to arXiv on 30 September 2026. The rapid advancement of generative AI raises concerns about the misuse of Multimodal LLMs (MLLMs) for large-scale disinformation campaigns on social media. Despite existing research on textual disinformation, a fundamental question remains unanswered: can MLLMs be exploited to fabricate realistic multimodal fake news, and can they reliably detect it? We introduce a multi-agent framework in which a story agent, an image agent, and a critic agent collaborate to produce fake social media posts that plausibly counter true news. We find that most models fall substantially short of human-level accuracy and fail critically on identifying image authenticity. Our research provides a foundation for developing robust defenses against social media fake news. Code and data are available at https: //github.com/xiuzhenzhang/Multimodal.

Why it counts

We apply the framework to generate over 9,000 paired multimodal news posts across science, health, and entertainment domains, and benchmark 16 open- and closed-source MLLMs for automated detection.

Sources

Primary source: primary source

What is not known

This brief does not claim independent replication. Claims that appear only on X and not in the primary source stay unknown.

No clip. The article still stands.