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Full Gradient DQN Reinforcement Learning: A Provably Convergent Scheme (2103.05981v3)

Published 10 Mar 2021 in cs.LG, math.OC, and math.PR

Abstract: We analyze the DQN reinforcement learning algorithm as a stochastic approximation scheme using the o.d.e. (for 'ordinary differential equation') approach and point out certain theoretical issues. We then propose a modified scheme called Full Gradient DQN (FG-DQN, for short) that has a sound theoretical basis and compare it with the original scheme on sample problems. We observe a better performance for FG-DQN.

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