Papers › XLand-MiniGrid: Scalable Meta-Reinforcement Learning Environments in JAX

XLand-MiniGrid: Scalable Meta-Reinforcement Learning Environments in JAX

19 Dec 2023arXiv:2312.12044archive 2025-07-28

Alexander Nikulin, Vladislav Kurenkov, Ilya Zisman, Artem Agarkov, Viacheslav Sinii, Sergey Kolesnikov

Inspired by the diversity and depth of XLand and the simplicity and minimalism of MiniGrid, we present XLand-MiniGrid, a suite of tools and grid-world environments for meta-reinforcement learning research. Written in JAX, XLand-MiniGrid is designed to be highly scalable and can potentially run on GPU or TPU accelerators, democratizing large-scale experimentation with limited resources. Along with the environments, XLand-MiniGrid provides pre-sampled benchmarks with millions of unique tasks of varying difficulty and easy-to-use baselines that allow users to quickly start training adaptive agents. In addition, we have conducted a preliminary analysis of scaling and generalization, showing that our baselines are capable of reaching millions of steps per second during training and validating that the proposed benchmarks are challenging. XLand-MiniGrid is open-source and available at https://github.com/dunnolab/xland-minigrid.

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corl-team/xland-minigrid officialmentioned in papermentioned on GitHubjaxApache-2.0 report
dunnolab/xland-minigrid officialmentioned in papermentioned on GitHubjaxApache-2.0 report

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DiversityMeta Reinforcement LearningMeta-LearningReinforcement Learningreinforcement-learning

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