Published January 1, 2009
| Version v1
Conference paper
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Evolving Parameterised Policies for Stochastic Constraint Programming
- 1. Natl Univ Ireland Univ Coll Cork, Cork Constraint Computat Ctr, Cork, Ireland
- 2. Univ Nottingham, Operat Management Div, Nottingham, England
- 3. Wageningen Univ, Logist Decis & Informat Sci Grp, Wageningen, Netherlands
- 4. Izmir Univ Econom, Fac Comp Sci, Izmir, Turkey
Description
Stochastic Constraint Programming is an extension of Constraint Programming for modelling and solving combinatorial problems involving uncertainty. A solution to such a problem is a policy tree that specifies decision variable assignments in each scenario. Several Solution methods have been proposed but none seems practical for large multi-stage problems. We propose all incomplete approach: specifying a policy tree indirectly by a parameterised function, whose parameter values are found by evolutionary search. On some problems this method is orders of magnitude faster than a state-of-the-art scenario-based approach, and it also provides a very compact representation of policy trees.
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