aamas-experiments

SKILLWorkflowcommunity
v0.0.0brycewang-stanfordMITUpdated 7d agoSource →

Use when designing or auditing AAMAS experiments - self-play and population-based training, opponent selection, equilibrium and regret metrics, game-theoretic simulations, ablations, seeds, hyperparameters, compute, and claim-to-evidence fit - with emphasis on experiments that probe the interaction

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7d agoLast update
Skill
Authorbrycewang-stanford
Version0.0.0
LicenseMIT
CategoryWorkflow
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Use when designing or auditing AAMAS experiments - self-play and population-based training, opponent selection, equilibrium and regret metrics, game-theoretic simulations, ablations, seeds, hyperparameters, compute, and claim-to-evidence fit - with emphasis on experiments that probe the interaction rather than chase a single-agent leaderboard.

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