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Kristian Hartikainen

ورقة واحدة في مجموعة PaperMetrix

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  1. Exploration in Approximate Hyper-State Space for Meta Reinforcement\n Learning

    2020 · arXiv (Cornell University)

    To rapidly learn a new task, it is often essential for agents to explore\nefficiently -- especially when performance matters from the first timestep. One\nway to learn such behaviour is via meta-learning. Many existing methods however\nrely …