Text Over Image: Auditing Multimodal Robustness in Synthetic Medical Image Detection 文章

ArXiv CS.CV2026-07-02PAPERen作者: Ching-Hao Chiu, Hao-Wei Chung, Gelei Xu, Xueyang Li, Pin-Yu Chen, John Kheir, Meysam Ghaffari, Carlos Morato, Ahmed Abbasi, Yiyu Shi

详细信息

来源站点
ArXiv CS.CV
作者
Ching-Hao Chiu, Hao-Wei Chung, Gelei Xu, Xueyang Li, Pin-Yu Chen, John Kheir, Meysam Ghaffari, Carlos Morato, Ahmed Abbasi, Yiyu Shi
文章类型
PAPER
语言
en
发布日期
2026-07-02

别名

Text Over Image: Auditing Multimodal Robustness in Synthetic Medical Image Detection

摘要

arXiv:2606.25375v2 Announce Type: replace Abstract: With the rapid adoption of generative AI, synthetic medical images pose growing risks, including diagnostic deception and insurance fraud. Although prior work has explored vision-language model (VLM)-based synthetic image detection, these evaluations typically consider images in isolation. In clinical practice, however, images are interpreted alongside structured records and metadata, and VLMs are increasingly deployed under joint image-record inputs. We uncover a previously underexamined multimodal vulnerability: when given both modalities, VLMs may overweight record context in authenticity judgments, such that the same image receives different predictions solely due to changes in its accompanying text. This raises concerns about robustness in real-world deployment.

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