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On Bellman equations for continuous-time policy evaluation I: discretization and approximation
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We study the problem of computing the value function from a discretely-observed trajectory of a continuous-time diffusion process. We develop a new class of algorithms based on easily implementable numerical schemes that are compatible with discrete-time reinforcement learning (RL) with function approximation. We establish high-order numerical accuracy as well as the approximation error guarantees for the proposed approach. In contrast to discrete-time RL problems where the approximation factor depends on the effective horizon, we obtain a bounded approximation factor using the underlying elliptic structures, even if the effective horizon diverges to infinity.
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Statistical guarantees for continuous-time policy evaluation: blessing of ellipticity and new tradeoffs
For continuous-time policy evaluation, the LSTD estimator's H1 error scales as the square root of (approximation error plus m/T), with a trajectory length that can be nearly linear in the number of basis functions whe...
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