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Yu Murata

1 accepted papers

2023

Pgx: Hardware-Accelerated Parallel Game Simulators for Reinforcement Learning

NeurIPS 2023poster

We propose Pgx, a suite of board game reinforcement learning (RL) environments written in JAX and optimized for GPU/TPU accelerators. By leveraging JAX's auto-vectorization and parallelization over accelerators, Pgx can efficiently scale to thousands of simultaneous simulations over accelerators. In…