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Stephen Chung

8 accepted papers

2025

Handling Delay in Real-Time Reinforcement Learning

ICLR 2025poster

Real-time reinforcement learning (RL) introduces several challenges. First, policies are constrained to a fixed number of actions per second due to hardware limitations. Second, the environment may change while the network is still computing an action, leading to observational delay. The first issue…

2025

Interpreting Emergent Planning in Model-Free Reinforcement Learning

ICLR 2025oral

We present the first mechanistic evidence that model-free reinforcement learning agents can learn to plan. This is achieved by applying a methodology based on concept-based interpretability to a model-free agent in Sokoban -- a commonly used benchmark for studying planning. Specifically, we demonstr…

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