Online PAC-Bayes Learning
Maxime Haddouche, Benjamin Guedj
2022年份
33被引次数
11顶会引用
摘要
Most PAC-Bayesian bounds hold in the batch learning setting where data is collected at once, prior to inference or prediction. This somewhat departs from many contemporary learning problems where data streams are collected and the algorithms must dynamically adjust. We prove new PAC-Bayesian bounds in this online learning framework, leveraging an updated definition of regret, and we revisit classical PAC-Bayesian results with a batch-to-online conversion, extending their remit to the case of dependent data. Our results hold for bounded losses, potentially non-convex, paving the way to promising developments in online learning.
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引用它的顶会 Paper11
- MMD-Fuse: Learning and Combining Kernels for Two-Sample Testing Without Data SplittingFelix Biggs, Antonin Schrab, Arthur GrettonNeurIPS 2023 · 被引用 49 次
- Statistical Guarantees for Variational Autoencoders using PAC-Bayesian TheorySokhna Diarra Mbacke, Florence Clerc, Pascal GermainNeurIPS 2023 · 被引用 22 次
- Forgetting, Ignorance or Myopia: Revisiting Key Challenges in Online Continual LearningXinrui Wang, Chuanxing Geng, Wenhai Wan, Shao-Yuan Li 等NeurIPS 2024 · 被引用 16 次
- Learning via Wasserstein-Based High Probability Generalisation BoundsPaul Viallard, Maxime Haddouche, Umut Simsekli, Benjamin GuedjNeurIPS 2023 · 被引用 16 次
- Improved Algorithms for Stochastic Linear Bandits Using Tail Bounds for Martingale MixturesHamish Flynn, David Reeb, Melih Kandemir, Jan R. PetersNeurIPS 2023 · 被引用 14 次
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