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Zero duality gap in surrogate constraint optimization: A concise review of models
Authors:Bahram Alidaee
Institution:School of Business Administration, The University of Mississippi, University, MS 38677, United States
Abstract:Surrogate constraint relaxation was proposed in the 1960s as an alternative to the Lagrangian relaxation for solving difficult optimization problems. The duality gap in the surrogate relaxation is always as good as the duality gap in the Lagrangian relaxation. Over the years researchers have proposed procedures to reduce the gap in the surrogate constraint. Our aim is to review models that close the surrogate duality gap. Five research streams that provide procedures with zero duality gap are identified and discussed. In each research stream, we will review major results, discuss limitations, and suggest possible future research opportunities. In addition, relationships between models if they exist, are also discussed.
Keywords:Surrogate constraint relaxation  Mathematical programming optimization  Duality gap
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