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Regret Analysis of Stochastic and Nonstochastic Multi-armed Bandit Problems - Foundations and Trends (R) in Machine Learning Sebastien Bubeck
Regret Analysis of Stochastic and Nonstochastic Multi-armed Bandit Problems - Foundations and Trends (R) in Machine Learning
Sebastien Bubeck
Mathematically, a multi-armed bandit is defined by the payoff process associated with each option. In this book, the focus is on two extreme cases in which the analysis of regret is particularly simple and elegant: independent and identically distributed payoffs and adversarial payoffs.
138 pages
| Media | Books Paperback Book (Book with soft cover and glued back) |
| Released | December 12, 2012 |
| ISBN13 | 9781601986269 |
| Publishers | now publishers Inc |
| Pages | 138 |
| Dimensions | 234 × 159 × 8 mm · 204 g |
| Language | English |
See all of Sebastien Bubeck ( e.g. Paperback Book )
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