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20232026
most citedTowards Explainable Harmful Meme Detection through Multimodal Debate between Large Language Models

1 citations · 1 across the 7 of their papers we have counts for

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cs.CL2026

A Graph-Enhanced Defense Framework for Explainable Fake News Detection with LLM

Bo Wang, Jing Ma, Hongzhan Lin +4

Explainable fake news detection aims to assess the veracity of news claims while providing human-friendly explanations. Existing methods incorporating investigative journalism are…

cs.CL2025

LLM-Enhanced Multiple Instance Learning for Joint Rumor and Stance Detection with Social Context Information

Ruichao Yang, Jing Ma, Wei Gao +1

The proliferation of misinformation, such as rumors on social media, has drawn significant attention, prompting various expressions of stance among users. Although rumor detection…

cs.CL2024

Reinforcement Tuning for Detecting Stances and Debunking Rumors Jointly with Large Language Models

Ruichao Yang, Wei Gao, Jing Ma +2

Learning multi-task models for jointly detecting stance and verifying rumors poses challenges due to the need for training data of stance at post level and rumor veracity at claim…

cs.CL2024

Explainable Fake News Detection With Large Language Model via Defense Among Competing Wisdom

Bo Wang, Jing Ma, Hongzhan Lin +4

Most fake news detection methods learn latent feature representations based on neural networks, which makes them black boxes to classify a piece of news without giving any justific…

cs.CL20241 cited

Towards Explainable Harmful Meme Detection through Multimodal Debate between Large Language Models

Hongzhan Lin, Ziyang Luo, Wei Gao +3

The age of social media is flooded with Internet memes, necessitating a clear grasp and effective identification of harmful ones. This task presents a significant challenge due to…

cs.CL2024

GOAT-Bench: Safety Insights to Large Multimodal Models through Meme-Based Social Abuse

Hongzhan Lin, Ziyang Luo, Bo Wang +2

The exponential growth of social media has profoundly transformed how information is created, disseminated, and absorbed, exceeding any precedent in the digital age. Regrettably, t…