Data Poisoning Attacks in Contextual Bandits
August 17, 2018 ยท Declared Dead ยท ๐ Decision and Game Theory for Security
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Authors
Yuzhe Ma, Kwang-Sung Jun, Lihong Li, Xiaojin Zhu
arXiv ID
1808.05760
Category
cs.LG: Machine Learning
Cross-listed
cs.CR,
stat.ML
Citations
70
Venue
Decision and Game Theory for Security
Last Checked
5 months ago
Abstract
We study offline data poisoning attacks in contextual bandits, a class of reinforcement learning problems with important applications in online recommendation and adaptive medical treatment, among others. We provide a general attack framework based on convex optimization and show that by slightly manipulating rewards in the data, an attacker can force the bandit algorithm to pull a target arm for a target contextual vector. The target arm and target contextual vector are both chosen by the attacker. That is, the attacker can hijack the behavior of a contextual bandit. We also investigate the feasibility and the side effects of such attacks, and identify future directions for defense. Experiments on both synthetic and real-world data demonstrate the efficiency of the attack algorithm.
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