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arxiv: 1808.10552 · v1 · submitted 2018-08-31 · 💻 cs.LG · stat.ML

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Directed Exploration in PAC Model-Free Reinforcement Learning

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classification 💻 cs.LG stat.ML
keywords explorationmethodmodel-freebonusproposedaccountactionsalgorithm
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We study an exploration method for model-free RL that generalizes the counter-based exploration bonus methods and takes into account long term exploratory value of actions rather than a single step look-ahead. We propose a model-free RL method that modifies Delayed Q-learning and utilizes the long-term exploration bonus with provable efficiency. We show that our proposed method finds a near-optimal policy in polynomial time (PAC-MDP), and also provide experimental evidence that our proposed algorithm is an efficient exploration method.

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