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An axiomatic approach to Markov decision processes

Published 11 Jan 2017 in math.OC | (1701.02879v6)

Abstract: This paper presents an axiomatic approach to finite Markov decision processes where the discount rate is zero. One of the principal difficulties in the no discounting case is that, even if attention is restricted to stationary policies, a strong overtaking optimal policy need not exists. We provide preference foundations for two criteria that do admit optimal policies: $0$-discount optimality and average overtaking optimality. As a corollary of our results, we obtain conditions on a decision maker's preferences which ensure that an optimal policy exists. These results have implications for disciplines where stochastic dynamic programming problems arise, including automatic control, dynamic games, and economic development.

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