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Consistency of fuzzy model-based reinforcement learning
Busoniu, Lucian; Ernst, Damien; Babuska, Robert et al.
2008In Proceedings of the 2008 IEEE International Conference on Fuzzy Systems (FUZZ-IEEE-08)
Peer reviewed
 

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Keywords :
reinforcement learning; value iteration; fuzzy approximators
Abstract :
[en] Reinforcement learning (RL) is a widely used paradigm for learning control. Computing exact RL solutions is generally only possible when process states and control actions take values in a small discrete set. In practice, approximate algorithms are necessary. In this paper, we propose an approximate, model-based Q-iteration algorithm that relies on a fuzzy partition of the state space, and a discretization of the action space. Using assumptions on the continuity of the dynamics and of the reward function, we show that the resulting algorithm is consistent, i.e., that the optimal solution is obtained asymptotically as the approximation accuracy increases. An experimental study indicates that a continuous reward function is also important for a predictable improvement in performance as the approximation accuracy increases.
Disciplines :
Computer science
Author, co-author :
Busoniu, Lucian
Ernst, Damien  ;  Université de Liège - ULiège > Dép. d'électric., électron. et informat. (Inst.Montefiore) > Systèmes et modélisation
Babuska, Robert
De Schutter, Bart
Language :
English
Title :
Consistency of fuzzy model-based reinforcement learning
Publication date :
2008
Event name :
2008 IEEE International Conference on Fuzzy Systems (FUZZ-IEEE-08)
Event place :
Hong-Kong, China
Event date :
1-6 June 2008
Audience :
International
Main work title :
Proceedings of the 2008 IEEE International Conference on Fuzzy Systems (FUZZ-IEEE-08)
ISBN/EAN :
978-1-4244-1818-3
Pages :
518-524
Peer reviewed :
Peer reviewed
Funders :
F.R.S.-FNRS - Fonds de la Recherche Scientifique [BE]
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