cs.AI updates on arXiv.org 07月15日 12:26
KEN: Knowledge Augmentation and Emotion Guidance Network for Multimodal Fake News Detection
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本文提出一种名为KEN的新型网络,通过知识增强和情感引导,有效识别社交媒体上的多模态假新闻,实验证明其在实际数据集上表现优异。

arXiv:2507.09647v1 Announce Type: cross Abstract: In recent years, the rampant spread of misinformation on social media has made accurate detection of multimodal fake news a critical research focus. However, previous research has not adequately understood the semantics of images, and models struggle to discern news authenticity with limited textual information. Meanwhile, treating all emotional types of news uniformly without tailored approaches further leads to performance degradation. Therefore, we propose a novel Knowledge Augmentation and Emotion Guidance Network (KEN). On the one hand, we effectively leverage LVLM's powerful semantic understanding and extensive world knowledge. For images, the generated captions provide a comprehensive understanding of image content and scenes, while for text, the retrieved evidence helps break the information silos caused by the closed and limited text and context. On the other hand, we consider inter-class differences between different emotional types of news through balanced learning, achieving fine-grained modeling of the relationship between emotional types and authenticity. Extensive experiments on two real-world datasets demonstrate the superiority of our KEN.

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多模态假新闻 知识增强 情感引导 网络识别 社交媒体
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