Transformer Guided Coevolution: Improved Team Selection in Multiagent Adversarial Team Games
October 17, 2024 Β· Declared Dead Β· + Add venue
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Authors
Pranav Rajbhandari, Prithviraj Dasgupta, Donald Sofge
arXiv ID
2410.13769
Category
cs.AI: Artificial Intelligence
Cross-listed
cs.MA,
cs.NE
Citations
1
Last Checked
4 months ago
Abstract
We consider the problem of team selection within multiagent adversarial team games. We propose BERTeam, a novel algorithm that uses a transformer-based deep neural network with Masked Language Model training to select the best team of players from a trained population. We integrate this with coevolutionary deep reinforcement learning, which trains a diverse set of individual players to choose from. We test our algorithm in the multiagent adversarial game Marine Capture-The-Flag, and find that BERTeam learns non-trivial team compositions that perform well against unseen opponents. For this game, we find that BERTeam outperforms MCAA, an algorithm that similarly optimizes team selection.
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