2021
DOI: 10.48550/arxiv.2112.12338
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On the Detection of Markov Decision Processes

Abstract: We study the detection problem for a finite set of Markov decision processes (MDPs) where the MDPs have the same state and action spaces but possibly different probabilistic transition functions. Any one of these MDPs could be the model for some underlying controlled stochastic process, but it is unknown a priori which MDP is the ground truth. We investigate whether it is possible to asymptotically detect the ground truth MDP model perfectly based on a single observed history (stateaction sequence). Since the … Show more

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