2016
DOI: 10.1609/aaai.v30i1.10126
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Target Surveillance in Adversarial Environments Using POMDPs

Abstract: This paper introduces an extension of the target surveillance problem in which the surveillance agent is exposed to an adversarial ballistic threat. The problem is formulated as a mixed observability Markov decision process (MOMDP), which is a factored variant of the partially observable Markov decision process, to account for state and dynamic uncertainties. The control policy resulting from solving the MOMDP aims to optimize the frequency of target observations and minimize exposure to the ballistic threat. … Show more

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Cited by 4 publications
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