Macro-Action-Based Deep Multi-Agent Reinforcement Learning
April 18, 2020 ยท Declared Dead ยท ๐ Conference on Robot Learning
"No code URL or promise found in abstract"
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Authors
Yuchen Xiao, Joshua Hoffman, Christopher Amato
arXiv ID
2004.08646
Category
cs.LG: Machine Learning
Cross-listed
cs.AI,
cs.RO
Citations
37
Venue
Conference on Robot Learning
Last Checked
3 months ago
Abstract
In real-world multi-robot systems, performing high-quality, collaborative behaviors requires robots to asynchronously reason about high-level action selection at varying time durations. Macro-Action Decentralized Partially Observable Markov Decision Processes (MacDec-POMDPs) provide a general framework for asynchronous decision making under uncertainty in fully cooperative multi-agent tasks. However, multi-agent deep reinforcement learning methods have only been developed for (synchronous) primitive-action problems. This paper proposes two Deep Q-Network (DQN) based methods for learning decentralized and centralized macro-action-value functions with novel macro-action trajectory replay buffers introduced for each case. Evaluations on benchmark problems and a larger domain demonstrate the advantage of learning with macro-actions over primitive-actions and the scalability of our approaches.
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