Apprentissage par renforcement avec borne de confiance supérieure
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Reinforcement Learning with the Upper Confidence Bound
Recall the general setup for reinforcement learning: we have well-defined actions that we can take, so we let the machine figure out how to maximize its reward based on the consequences of those actions.
The Upper Confidence Bound algorithm is a formalization of this idea, where the machine attempts to determine a single action it can take that will maximize its expected return.
Contributeurs: Evan Brach, Claude Coulombe, Gérard Pelletier, Jacques Barolet, wiki