Graph Neural Bandits
Yunzhe Qi, Yikun Ban, Jingrui He
摘要
Contextual bandits algorithms aim to choose the optimal arm with the highest reward out of a set of candidates based on the contextual information. Various bandit algorithms have been applied to real-world applications due to their ability of tackling the exploitation-exploration dilemma. Motivated by online recommendation scenarios, in this paper, we propose a framework named Graph Neural Bandits (GNB) to leverage the collaborative nature among users empowered by graph neural networks (GNNs). Instead of estimating rigid user clusters as in existing works, we model the "fine-grained" collaborative effects through estimated user graphs in terms of exploitation and exploration respectively. Then, to refine the recommendation strategy, we utilize separate GNN-based models on estimated user graphs for exploitation and adaptive exploration. Theoretical analysis and experimental results on multiple real data sets in comparison with state-of-the-art baselines are provided to demonstrate the effectiveness of our proposed framework.
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引用它的顶会 Paper23
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它引用的顶会 Paper9
- LightGCN: Simplifying and Powering Graph Convolution Network for RecommendationXiangnan He, Kuan Deng, Xiang Wang, Yan Li 等SIGIR 2020 · 被引用 4,448 次
- Neural Contextual Bandits with UCB-based ExplorationDongruo Zhou, Lihong Li, Quanquan GuICML 2020 · 被引用 329 次
- Neural Thompson SamplingWeitong Zhang, Dongruo Zhou, Lihong Li, Quanquan GuICLR 2021 · 被引用 152 次
- Optimization of Graph Neural Networks: Implicit Acceleration by Skip Connections and More DepthKeyulu Xu, Mozhi Zhang, Stefanie Jegelka, Kenji KawaguchiICML 2021 · 被引用 87 次
- EE-Net: Exploitation-Exploration Neural Networks in Contextual BanditsYikun Ban, Yuchen Yan, Arindam Banerjee, Jingrui HeICLR 2022 · 被引用 62 次
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