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Stochastic Bandits with Delay-Dependent Payoffs

Contributo in Atti di convegno
Data di Pubblicazione:
2020
Citazione:
Stochastic Bandits with Delay-Dependent Payoffs / L. Cella, N. Cesa Bianchi (PROCEEDINGS OF MACHINE LEARNING RESEARCH). - In: International Conference on Artificial Intelligence and Statistics / [a cura di] S. Chiappa, R. Calandra. - [s.l] : PMLR, 2020. - pp. 1168-1177 (( Intervento presentato al 23. convegno International Conference on Artificial Intelligence and Statistics tenutosi a online nel 2020.
Abstract:
Motivated by recommendation problems in music streaming platforms, we propose a nonstationary stochastic bandit model in which the expected reward of an arm depends on the number of rounds that have passed since the arm was last pulled. After proving that finding an optimal policy is NP-hard even when all model parameters are known, we introduce a class of ranking policies provably approximating, to within a constant factor, the expected reward of the optimal policy. We show an algorithm whose regret with respect to the best ranking policy is bounded by Oe √ kT , where k is the number of arms and T is time. Our algorithm uses only O k ln ln T) switches, which helps when switching between policies is costly. As constructing the class of learning policies requires ordering the arms according to their expectations, we also bound the number of pulls required to do so. Finally, we run experiments to compare our algorithm against UCB on different problem instance.
Tipologia IRIS:
03 - Contributo in volume
Elenco autori:
L. Cella, N. Cesa Bianchi
Autori di Ateneo:
CESA BIANCHI NICOLO' ANTONIO ( autore )
Link alla scheda completa:
https://air.unimi.it/handle/2434/741070
Link al Full Text:
https://air.unimi.it/retrieve/handle/2434/741070/1491827/cella20a.pdf
Titolo del libro:
International Conference on Artificial Intelligence and Statistics
Progetto:
Algorithms, Games, and Digital Markets (ALGADIMAR)
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