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Q-learning as a monotone scheme

Published 30 May 2024 in cs.LG | (2405.20538v1)

Abstract: Stability issues with reinforcement learning methods persist. To better understand some of these stability and convergence issues involving deep reinforcement learning methods, we examine a simple linear quadratic example. We interpret the convergence criterion of exact Q-learning in the sense of a monotone scheme and discuss consequences of function approximation on monotonicity properties.

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