Break the Visual Perception: Adversarial Attacks Targeting Encoded Visual Tokens of Large Vision-Language Models
Yubo Wang, Chaohu Liu, Yanqiu Qu, Haoyu Cao, Deqiang Jiang, Linli Xu
摘要
Large vision-language models (LVLMs) integrate visual information into large language models, showcasing remarkable multi-modal conversational capabilities. However, the visual modules introduces new challenges in terms of robustness for LVLMs, as attackers can craft adversarial images that are visually clean but may mislead the model to generate incorrect answers. In general, LVLMs rely on vision encoders to transform images into visual tokens, which are crucial for the language models to perceive image contents effectively. Therefore, we are curious about one question: Can LVLMs still generate correct responses when the encoded visual tokens are attacked and disrupting the visual information? To this end, we propose a non-targeted attack method referred to as VT-Attack (Visual Tokens Attack), which constructs adversarial examples from multiple perspectives, with the goal of comprehensively disrupting feature representations and inherent relationships as well as the semantic properties of visual tokens output by image encoders. Using only access to the image encoder in the proposed attack, the generated adversarial examples exhibit transferability across diverse LVLMs utilizing the same image encoder and generality across different tasks. Extensive experiments validate the superior attack performance of the VT-Attack over baseline methods, demonstrating its effectiveness in attacking LVLMs with image encoders, which in turn can provide guidance on the robustness of LVLMs, particularly in terms of the stability of the visual feature space.
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引用它的顶会 Paper13
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- AdPO: Enhancing the Adversarial Robustness of Large Vision-Language Models with Preference OptimizationChaohu Liu, Tianyi Gui, Yu Liu, Linli XuICLR 2026 · 被引用 9 次
- VEAttack: Downstream-agnostic Vision Encoder Attack against Large Vision Language ModelsHefei Mei, Zirui Wang, Shen You, Minjing Dong 等ICLR 2026 · 被引用 9 次
- On Epistemic Uncertainty of Visual Tokens for Object Hallucinations in Large Vision-Language ModelsHoigi Seo, Dong Un Kang, Hyunjin Cho, Joohoon Lee 等NeurIPS 2025 · 被引用 4 次
- PA-Attack: Guiding Gray-Box Attacks on LVLM Vision Encoders with Prototypes and AttentionHefei Mei, Zirui Wang, Chang Xu, Jianyuan Guo 等CVPR 2026 · 被引用 3 次
它引用的顶会 Paper19
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