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Towards Tractable Optimism in Model-Based Reinforcement Learning

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arxiv 2006.11911 v2 pith:KBRFZ5E7 submitted 2020-06-21 cs.LG stat.ML

classification cs.LGstat.ML
keywords optimismerrormathcalmodel-basedoptimisticalgorithmsdeepestimation
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abstract

The principle of optimism in the face of uncertainty is prevalent throughout sequential decision making problems such as multi-armed bandits and reinforcement learning (RL). To be successful, an optimistic RL algorithm must over-estimate the true value function (optimism) but not by so much that it is inaccurate (estimation error). In the tabular setting, many state-of-the-art methods produce the required optimism through approaches which are intractable when scaling to deep RL. We re-interpret these scalable optimistic model-based algorithms as solving a tractable noise augmented MDP. This formulation achieves a competitive regret bound: $\tilde{\mathcal{O}}( |\mathcal{S}|H\sqrt{|\mathcal{A}| T } )$ when augmenting using Gaussian noise, where $T$ is the total number of environment steps. We also explore how this trade-off changes in the deep RL setting, where we show empirically that estimation error is significantly more troublesome. However, we also show that if this error is reduced, optimistic model-based RL algorithms can match state-of-the-art performance in continuous control problems.

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Cited by 2 Pith papers

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  1. Robust Average-Reward Markov Decision Processes: Minimax-Optimal Learning via Plug-in Reductions

    cs.LG 2026-08 accept novelty 8.0 of 10

    For average-reward MDPs with total-variation uncertainty, the minimax sample complexity is SA/epsilon^2 times min{H0,Hsigma}, with an extra SA sigma Hsigma^2/epsilon^2 term in the low-tolerance regime, and the paper p...

  2. Asymptotically Optimal Regret for Reinforcement Learning without Horizon Dependence

    cs.LG 2026-07 conditional novelty 8.0 of 10

    A new algorithm achieves the first horizon-free regret bound for tabular MDPs whose leading term matches the lower bound √(SAK) up to logarithmic factors.

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