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20232026
most citedMemory Injection Attacks on LLM Agents via Query-Only Interaction

1 citations · 4 across the 30 of their papers we have counts for

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cs.LG2026

Toward Universal and Transferable Jailbreak Attacks on Vision-Language Models

Kaiyuan Cui, Yige Li, Yutao Wu +4

Vision-language models (VLMs) extend large language models (LLMs) with vision encoders, enabling text generation conditioned on both images and text. However, this multimodal integ…

cs.LG20251 cited

Memory Injection Attacks on LLM Agents via Query-Only Interaction

Shen Dong, Shaochen Xu, Pengfei He +5

Agents powered by large language models (LLMs) have demonstrated strong capabilities in a wide range of complex, real-world applications. However, LLM agents with a compromised mem…

cs.LG2025

Detecting Backdoor Samples in Contrastive Language Image Pretraining

Hanxun Huang, Sarah Erfani, Yige Li +2

Contrastive language-image pretraining (CLIP) has been found to be vulnerable to poisoning backdoor attacks where the adversary can achieve an almost perfect attack success rate on…

cs.LG2024

AnyAttack: Towards Large-scale Self-supervised Adversarial Attacks on Vision-language Models

Jiaming Zhang, Junhong Ye, Xingjun Ma +5

Due to their multimodal capabilities, Vision-Language Models (VLMs) have found numerous impactful applications in real-world scenarios. However, recent studies have revealed that V…

cs.LG2024

End-to-End Anti-Backdoor Learning on Images and Time Series

Yujing Jiang, Xingjun Ma, Sarah Monazam Erfani +2

Backdoor attacks present a substantial security concern for deep learning models, especially those utilized in applications critical to safety and security. These attacks manipulat…

cs.LG2024

Shortcuts Everywhere and Nowhere: Exploring Multi-Trigger Backdoor Attacks

Yige Li, Jiabo He, Hanxun Huang +3

Backdoor attacks have become a significant threat to the pre-training and deployment of deep neural networks (DNNs). Although numerous methods for detecting and mitigating backdoor…