Stealthy Adversarial Attacks on Stochastic Multi-Armed Bandits
Zhiwei Wang, Huazheng Wang, Hongning Wang
摘要
Adversarial attacks against stochastic multi-armed bandit (MAB) algorithms have been extensively studied in the literature. In this work, we focus on reward poisoning attacks and find most existing attacks can be easily detected by our proposed detection method based on the test of homogeneity, due to their aggressive nature in reward manipulations. This motivates us to study the notion of stealthy attack against stochastic MABs and investigate the resulting attackability. Our analysis shows that against two popularly employed MAB algorithms, UCB1 and -greedy, the success of a stealthy attack depends on the environmental conditions and the realized reward of the arm pulled in the first round. We also analyze the situation for general MAB algorithms equipped with our attack detection method and find that it is possible to have a stealthy attack that almost always succeeds. This brings new insights into the security risks of MAB algorithms.
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- Adaptive Reward-Poisoning Attacks against Reinforcement LearningXuezhou Zhang, Yuzhe Ma, Adish Singla, Xiaojin ZhuICML 2020 · 被引用 154 次
- Adversarial Attacks on Linear Contextual BanditsEvrard Garcelon, Baptiste Rozière, Laurent Meunier, Jean Tarbouriech 等NeurIPS 2020 · 被引用 60 次
- Vulnerability-Aware Poisoning Mechanism for Online RL with Unknown DynamicsYanchao Sun, Da Huo, Furong HuangICLR 2021 · 被引用 57 次
- Provably Efficient Black-Box Action Poisoning Attacks Against Reinforcement LearningGuanlin Liu, Lifeng LaiNeurIPS 2021 · 被引用 55 次
- The Intrinsic Robustness of Stochastic Bandits to Strategic ManipulationZhe Feng, David C. Parkes, Haifeng XuICML 2020 · 被引用 31 次
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