A finite time analysis of distributed Q-learning

Lim, Han-Dong, Lee, Donghwan

arXiv.org Artificial Intelligence 

Multi-agent reinforcement learning (MARL) has witnessed a remarkable surge in interest, fueled by the empirical success achieved in applications of single-agent reinforcement learning (RL). In this study, we consider a distributed Q-learning scenario, wherein a number of agents cooperatively solve a sequential decision making problem without access to the central reward function which is an average of the local rewards.

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