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Practical kernel-based reinforcement learning

Published in Europe PMC (PubMed Central) • Jan 1, 2016
NobleIDNI1P41W64R63S86
Authors:
André M. S. Barreto
,
Doina Precup
,
Joëlle Pineau

Abstract

Kernel-based reinforcement learning (KBRL) stands out among approximate reinforcement learning algorithms for its strong theoretical guarantees. By casting the learning problem as a local kernel approximation, KBRL provides a way of computing a decision policy which converges to a unique solution an...

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