A Sample-Efficient Algorithm for Episodic Finite-Horizon MDP with Constraints

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Authors Krishna C. Kalagarla, Rahul Jain, Pierluigi Nuzzo arXiv ID 2009.11348 Category cs.LG: Machine Learning Cross-listed cs.AI, eess.SY, stat.ML Citations 56 Venue AAAI Conference on Artificial Intelligence Last Checked 5 months ago
Abstract
Constrained Markov Decision Processes (CMDPs) formalize sequential decision-making problems whose objective is to minimize a cost function while satisfying constraints on various cost functions. In this paper, we consider the setting of episodic fixed-horizon CMDPs. We propose an online algorithm which leverages the linear programming formulation of finite-horizon CMDP for repeated optimistic planning to provide a probably approximately correct (PAC) guarantee on the number of episodes needed to ensure an $ฮต$-optimal policy, i.e., with resulting objective value within $ฮต$ of the optimal value and satisfying the constraints within $ฮต$-tolerance, with probability at least $1-ฮด$. The number of episodes needed is shown to be of the order $\tilde{\mathcal{O}}\big(\frac{|S||A|C^{2}H^{2}}{ฮต^{2}}\log\frac{1}ฮด\big)$, where $C$ is the upper bound on the number of possible successor states for a state-action pair. Therefore, if $C \ll |S|$, the number of episodes needed have a linear dependence on the state and action space sizes $|S|$ and $|A|$, respectively, and quadratic dependence on the time horizon $H$.
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