Robust optimization of large-scale systems

Robust optimization of large-scale systems

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Article ID: iaor19982403
Country: United States
Volume: 43
Issue: 2
Start Page Number: 264
End Page Number: 281
Publication Date: Mar 1995
Journal: Operations Research
Authors: ,
Keywords: finance & banking, simulation: applications
Abstract:

Mathematical programming models with noisy, erroneous, or incomplete data are common in operations research applications. Difficulties with such data are typically dealt with reactively – through sensitivity analysis – or proactively – through stochastic programming formulations. In this paper, we characterize the desirable properties of a solution to models, when the problem data are described by a set of scenarios for their value, instead of using point estimates. A solution to an optimization model is defined as: solution robust if it remains ‘close’ to optimal for all scenarios of the input data, and model robust if it remains ‘almost’ feasible for all data scenarios. We then develop a general model formulation, called robust optimization (RO), that explicitly incorporates the conflicting objectives of solution and model robustness. Robust optimization is compared with the traditional approaches of sensitivity analysis and stochastic linear programming. The classical diet problem illustrates the issues. Robust optimization models are then developed for several real-world applications: power capacity expansion; matrix balancing and image reconstruction; air-force airline scheduling; scenario immunization for financial planning; and minimum weight structural design. We also comment on the suitability of parallel and distributed computer architectures for the solution of robust optimization models.

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