Stable Baselines3

Production-ready reinforcement learning algorithms (PPO, SAC, DQN, TD3, DDPG, A2C) with scikit-learn-like API. Use for standard RL experiments, quick prototyping, and well-documented algorithm implementations. Best for single-agent RL with Gymnasium environments. For high-performance parallel training, multi-agent systems, or custom vectorized environments, use pufferlib instead.

synthetic-sciences b8cc528 8 files · 83.5 KB Updated

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synthetic-sciences/openscience/tree/main/backend/cli/skills/ml-training/stable-baselines3 commit b8cc528705

Frequently asked questions

npx skillmds@latest add synthetic-sciences/stable-baselines3