情景约束下强化学习的近最优保守探索

Donghao Li, Ruiquan Huang, Cong Shen, Jing Yang
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引用次数: 1

摘要

本文研究了强化学习中的保守探索,在强化学习中,学习代理的性能在整个学习过程中保证在一定的阈值以上。它侧重于具有有限状态和动作的表格情景马尔可夫决策过程(MDP)设置。在了解现有的安全基线策略的基础上,提出了一种称为StepMix的算法来平衡开发和探索,同时确保在每个大概率事件中都不会违反保守约束。StepMix具有独特的混合策略设计,可以自适应地平滑地在基线策略和乐观策略之间进行插值。理论分析表明,StepMix在无约束条件下达到了近似最优的后悔顺序,表明服从严格的情节保守约束并不影响学习性能。此外,本文还提出了一种基于随机化的EpsMix算法,该算法与StepMix算法的性能相当。将算法设计和理论分析进一步扩展到基线策略没有先验而必须从离线数据集中学习的情况,并证明了当离线数据集足够大时,可以实现类似的保守保证和遗憾。实验结果证实了理论分析,并证明了所提出的保守勘探策略的有效性。
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Near-optimal Conservative Exploration in Reinforcement Learning under Episode-wise Constraints
This paper investigates conservative exploration in reinforcement learning where the performance of the learning agent is guaranteed to be above a certain threshold throughout the learning process. It focuses on the tabular episodic Markov Decision Process (MDP) setting that has finite states and actions. With the knowledge of an existing safe baseline policy, an algorithm termed as StepMix is proposed to balance the exploitation and exploration while ensuring that the conservative constraint is never violated in each episode with high probability. StepMix features a unique design of a mixture policy that adaptively and smoothly interpolates between the baseline policy and the optimistic policy. Theoretical analysis shows that StepMix achieves near-optimal regret order as in the constraint-free setting, indicating that obeying the stringent episode-wise conservative constraint does not compromise the learning performance. Besides, a randomization-based EpsMix algorithm is also proposed and shown to achieve the same performance as StepMix. The algorithm design and theoretical analysis are further extended to the setting where the baseline policy is not given a priori but must be learned from an offline dataset, and it is proved that similar conservative guarantee and regret can be achieved if the offline dataset is sufficiently large. Experiment results corroborate the theoretical analysis and demonstrate the effectiveness of the proposed conservative exploration strategies.
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