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On-Line Optimization of Simulated Markovian Processes

G. Ch. Pflug

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Source: Crossref

Published: Aug 1, 1990

DOI: 10.1287/moor.15.3.381

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Source abstract

Let {Z n } be a Markovian process, the transition of which depends on a control parameter x. Let μ x be its invariant law. It is shown that the solution of the optimization problem F(x) := ∫ H(z, x) dμ x (z) = min!, x ∈ S can be found with a recursive estimation procedure of the stochastic approximation-type. The method consists in finding a stochastic quasigradient of F(x) and in adapting the parameter x in the direction of descent. An a.s. convergence is proved and a practical example is given.

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