Zero-Inflated Bandits
December 25, 2023 ยท Declared Dead ยท ๐ International Conference on Machine Learning
"No code URL or promise found in abstract"
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Authors
Haoyu Wei, Runzhe Wan, Lei Shi, Rui Song
arXiv ID
2312.15595
Category
stat.ML: Machine Learning (Stat)
Cross-listed
cs.LG,
econ.EM
Citations
1
Venue
International Conference on Machine Learning
Last Checked
4 months ago
Abstract
Many real-world bandit applications are characterized by sparse rewards, which can significantly hinder learning efficiency. Leveraging problem-specific structures for careful distribution modeling is recognized as essential for improving estimation efficiency in statistics. However, this approach remains under-explored in the context of bandits. To address this gap, we initiate the study of zero-inflated bandits, where the reward is modeled using a classic semi-parametric distribution known as the zero-inflated distribution. We develop algorithms based on the Upper Confidence Bound and Thompson Sampling frameworks for this specific structure. The superior empirical performance of these methods is demonstrated through extensive numerical studies.
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