Papers › Off-Policy Correction For Multi-Agent Reinforcement Learning

Off-Policy Correction For Multi-Agent Reinforcement Learning

22 Nov 2021arXiv:2111.11229archive 2025-07-28

Michał Zawalski, Błażej Osiński, Henryk Michalewski, Piotr Miłoś

Multi-agent reinforcement learning (MARL) provides a framework for problems involving multiple interacting agents. Despite apparent similarity to the single-agent case, multi-agent problems are often harder to train and analyze theoretically. In this work, we propose MA-Trace, a new on-policy actor-critic algorithm, which extends V-Trace to the MARL setting. The key advantage of our algorithm is its high scalability in a multi-worker setting. To this end, MA-Trace utilizes importance sampling as an off-policy correction method, which allows distributing the computations with no impact on the quality of training. Furthermore, our algorithm is theoretically grounded - we prove a fixed-point theorem that guarantees convergence. We evaluate the algorithm extensively on the StarCraft Multi-Agent Challenge, a standard benchmark for multi-agent algorithms. MA-Trace achieves high performance on all its tasks and exceeds state-of-the-art results on some of them.

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create_mlp awarelab/seed_rl/agents/sac/networks.py official repository unverified Apache-2.0 (permissive) · 4a1477f42fca643a · report
initial_frame_stacking_state awarelab/seed_rl/atari/networks.py official repository unverified Apache-2.0 (permissive) · 8de5cad377fd4152 · report
stack_frames awarelab/seed_rl/atari/networks.py official repository unverified Apache-2.0 (permissive) · bfc70838af9ecd54 · report

Tasks

Multi-agent Reinforcement LearningReinforcement LearningReinforcement Learning (RL)Starcraftreinforcement-learning

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