Papers › Weakly Coupled Deep Q-Networks

Weakly Coupled Deep Q-Networks

28 Oct 2023NeurIPS 2023 11arXiv:2310.18803archive 2025-07-28

We propose weakly coupled deep Q-networks (WCDQN), a novel deep reinforcement learning algorithm that enhances performance in a class of structured problems called weakly coupled Markov decision processes (WCMDP). WCMDPs consist of multiple independent subproblems connected by an action space constraint, which is a structural property that frequently emerges in practice. Despite this appealing structure, WCMDPs quickly become intractable as the number of subproblems grows. WCDQN employs a single network to train multiple DQN "subagents", one for each subproblem, and then combine their solutions to establish an upper bound on the optimal action value. This guides the main DQN agent towards optimality. We show that the tabular version, weakly coupled Q-learning (WCQL), converges almost surely to the optimal action value. Numerical experiments show faster convergence compared to DQN and related techniques in settings with as many as 10 subproblems, 3¹⁰ total actions, and a continuous state space.

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1ran · honoured contract
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ReplayBuffer ibrahim-elshar/WCDQN_NeurIPS/src/Inv_control/WCDQN.py found in paper text by Syntology ran no licence file found · pointer only · 0a34c84d33066fee · report
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DQN ibrahim-elshar/WCDQN_NeurIPS/src/Inv_control/WCDQN.py found in paper text by Syntology unverified no licence file found · pointer only · 10469ffead06c867 · report
Network ibrahim-elshar/WCDQN_NeurIPS/src/Inv_control/WCDQN.py found in paper text by Syntology unverified no licence file found · pointer only · 19137150e1814247 · report
WCDQN ibrahim-elshar/WCDQN_NeurIPS/src/Inv_control/WCDQN.py found in paper text by Syntology unverified no licence file found · pointer only · b9b37008c249ac44 · report
plot_rewards ibrahim-elshar/WCDQN_NeurIPS/src/Inv_control/WCDQN.py found in paper text by Syntology unverified no licence file found · pointer only · b7d66014ebd70e13 · report

Tasks

Deep Reinforcement LearningQ-Learning

Results from the paper archive 2025-07-28

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Methods

ConvolutionDQNDense ConnectionsQ-Learning

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