Graphical Models Meet Bandits: A Variational Thompson Sampling Approach
Tong Yu, Branislav Kveton, Zheng Wen, Ruiyi Zhang, Ole J. Mengshoel
摘要
We propose a novel framework for structured bandits, which we call an influence diagram bandit. Our framework uses a graphical model to capture complex statistical dependencies between actions, latent variables, and observations; and thus unifies and extends many existing models, such as combinatorial semi-bandits, cascading bandits, and low-rank bandits. We develop novel online learning algorithms that learn to act efficiently in our models. The key idea is to track a structured posterior distribution of model parameters, either exactly or approximately. To act, we sample model parameters from their posterior and then use the structure of the influence diagram to find the most optimistic action under the sampled parameters. We empirically evaluate our algorithms in three structured bandit problems, and show that they perform as well as or better than problem-specific state-of-the-art baselines.
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引用它的顶会 Paper5
- An Analysis of Ensemble SamplingChao Qin, Zheng Wen, Xiuyuan Lu, Benjamin Van RoyNeurIPS 2022 · 被引用 30 次
- Differentiable Meta-Learning of Bandit PoliciesCraig Boutilier, Chih-Wei Hsu, Branislav Kveton, Martin Mladenov 等NeurIPS 2020 · 被引用 23 次
- Deep Hierarchy in BanditsJoey Hong, Branislav Kveton, Sumeet Katariya, Manzil Zaheer 等ICML 2022 · 被引用 21 次
- VITS : Variational Inference Thompson Sampling for contextual banditsPierre Clavier, Tom Huix, Alain Oliviero DurmusICML 2024 · 被引用 6 次
- Diffusion Models Meet Contextual BanditsImad AoualiNeurIPS 2025
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