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기원 연도1961 (GP); 1990s (robust extension)1999–2004
창시자Charnes, A. & Cooper, W. W. (goal programming); Mulvey, J. M. et al. (robust optimization framework)Ben-Tal, A. and Nemirovski, A.; further developed by Bertsimas, D. and Sim, M.
유형Mathematical programming under uncertaintyUncertainty-robust linear optimization
원전Charnes, A., Cooper, W. W. (1961). Management Models and Industrial Applications of Linear Programming. Wiley, New York. ISBN: 9780471155041Bertsimas, D., Sim, M. (2004). The price of robustness. Operations Research, 52(1), 35–53. DOI ↗
별칭RGP, Goal Programming under Uncertainty, Robust GP, Uncertainty-Aware Goal ProgrammingRLP, Robust LP, Tractable Robust LP, Uncertainty-Set LP
관련55
요약Robust Goal Programming (RGP) extends classical goal programming to handle uncertain or ambiguous model parameters. Instead of minimizing deviations from crisp targets, it seeks solutions that remain feasible and near-optimal across a range of plausible scenarios or uncertain data realizations. RGP is particularly valuable in planning problems where goals are aspirational and input data carries inherent variability or estimation error.Robust Linear Programming (RLP) extends classical linear programming to handle uncertainty in problem data — cost coefficients, constraint coefficients, or right-hand sides — by requiring solutions to remain feasible and near-optimal across all realizations of uncertain parameters within a defined uncertainty set. It replaces probabilistic assumptions with worst-case guarantees, making it practical when distributional knowledge is limited.
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ScholarGate방법 비교: Robust goal programming · Robust Linear Programming. 2026-06-15에 다음에서 검색함: https://scholargate.app/ko/compare