TrojDRL: Evaluation of Backdoor Attacks on Deep Reinforcement Learning
Panagiota Kiourti, Kacper Wardega, Susmit Jha, Wenchao Li
摘要
We present TrojDRL, a tool for exploring and evaluating backdoor attacks on deep reinforcement learning agents. TrojDRL exploits the sequential nature of deep reinforcement learning (DRL) and considers different gradations of threat models. We show that untargeted attacks on state-of-the-art actor-critic algorithms can circumvent existing defenses built on the assumption of backdoors being targeted. We evaluated TrojDRL on a broad set of DRL benchmarks and showed that the attacks require only poisoning as little as 0.025% of the training data. Compared with existing works of backdoor attacks on classification models, TrojDRL provides a first step towards understanding the vulnerability of DRL agents.
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引用它的顶会 Paper28
- Watch Out for Your Agents! Investigating Backdoor Threats to LLM-Based AgentsWenkai Yang, Xiaohan Bi, Yankai Lin, Sishuo Chen 等NeurIPS 2024 · 被引用 195 次
- Rethinking the Reverse-engineering of Trojan TriggersZhenting Wang, Kai Mei, Hailun Ding, Juan Zhai 等NeurIPS 2022 · 被引用 75 次
- Physical Backdoor Attacks to Lane Detection Systems in Autonomous DrivingXingshuo Han, Guowen Xu, Yuan Zhou, Xuehuan Yang 等ACM MM 2022 · 被引用 48 次
- COPA: Certifying Robust Policies for Offline Reinforcement Learning against Poisoning AttacksFan Wu, Linyi Li, Huan Zhang, Bhavya Kailkhura 等ICLR 2022 · 被引用 38 次
- Provable Defense against Backdoor Policies in Reinforcement LearningShubham Kumar Bharti, Xuezhou Zhang, Adish Singla, Jerry ZhuNeurIPS 2022 · 被引用 37 次
它引用的顶会 Paper3
- Towards Evaluating the Robustness of Neural NetworksNicholas Carlini, David A. WagnerS&P 2017 · 被引用 9,786 次
- Neural Cleanse: Identifying and Mitigating Backdoor Attacks in Neural NetworksBolun Wang, Yuanshun Yao, Shawn Shan, Huiying Li 等S&P 2019 · 被引用 1,801 次
- Trojaning Attack on Neural NetworksYingqi Liu, Shiqing Ma, Yousra Aafer, Wen-Chuan Lee 等NDSS 2018 · 被引用 1,377 次
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