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Anton Pollak

1 accepted papers

2026

Safe Exploration via Policy Priors

ICLR 2026poster

Safe exploration is a key requirement for reinforcement learning agents to learn and adapt online, beyond controlled (e.g. simulated) environments. In this work, we tackle this challenge by utilizing suboptimal yet conservative policies (e.g., obtained from offline data or simulators) as priors. Our…

Cited by 0SourceScholar