RLLTE: Long-Term Evolution Project of Reinforcement Learning

Yuan, Mingqi, Zhang, Zequn, Xu, Yang, Luo, Shihao, Li, Bo, Jin, Xin, Zeng, Wenjun

arXiv.org Artificial Intelligence 

We present RLLTE: a long-term evolution, extremely modular, and open-source framework for reinforcement learning (RL) research and application. Beyond delivering top-notch algorithm implementations, RLLTE also serves as a toolkit for developing algorithms. More specifically, RLLTE decouples the RL algorithms completely from the exploitation-exploration perspective, providing a large number of components to accelerate algorithm development and evolution. In particular, RLLTE is the first RL framework to build a complete and luxuriant ecosystem, which includes model training, evaluation, deployment, benchmark hub, and large language model (LLM)-empowered copilot. RLLTE is expected to set standards for RL engineering practice and be highly stimulative for industry and academia.

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