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Pemrograman Linier Bilangan Bulat Deterministik×Pemrograman Campuran-Integer Stokastik×
BidangSimulasiSimulasi
KeluargaProcess / pipelineProcess / pipeline
Tahun asal1958–19601990s–2000s
PencetusGomory, R. E.; Dantzig, G. B.; Land, A. H.; Doig, A. G.Birge, J. R.; Louveaux, F.; Sen, S.
TipeMathematical programming / combinatorial optimizationStochastic optimization model
Sumber perintisNemhauser, G. L., Wolsey, L. A. (1988). Integer and Combinatorial Optimization. John Wiley & Sons, New York. ISBN: 9780471359432Birge, J. R., & Louveaux, F. (1997). Introduction to Stochastic Programming. Springer Series in Operations Research. New York: Springer. ISBN: 9780387982175
AliasDeterministic MIP, Deterministic MILP/MIQP, Classical Mixed-Integer Programming, Deterministic MIP OptimizationSMIP, Stochastic MIP, Mixed-Integer Stochastic Programming, SMILP
Terkait65
RingkasanDeterministic Mixed-Integer Programming (MIP) is a mathematical optimization framework that finds the provably optimal solution to problems involving both continuous and integer decision variables under fully known, fixed coefficients and constraints. It is the foundational workhorse of operations research when all data are treated as certain.Stochastic Mixed-Integer Programming (SMIP) is an optimization framework that finds the best mix of binary, integer, and continuous decisions when key parameters — costs, demands, capacities — are uncertain and modeled as probability distributions over a set of scenarios. It extends classical MIP by embedding scenario trees or expected-value objectives that hedge against uncertainty while respecting combinatorial constraints.
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ScholarGateBandingkan metode: Deterministic Mixed-Integer Programming · Stochastic Mixed-Integer Programming. Diakses 2026-06-15 dari https://scholargate.app/id/compare