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Compară metode

Examinează metodele selectate una lângă alta; rândurile care diferă sunt evidențiate.

Stochastic NSGA-II×Algoritm Genetic Multi-Obiectiv (MOGA)×
DomeniuSimulareSimulare
FamilieProcess / pipelineProcess / pipeline
Anul apariției2001–20021984
Autorul originalDeb, K. et al. (NSGA-II base); Hughes, E. J. and subsequent researchers for stochastic extensionsSchaffer, J. D. (early MOGA); Goldberg, D. E. (GA foundations)
TipEvolutionary multi-objective optimization under uncertaintyPopulation-based evolutionary optimizer
Sursa seminalăDeb, K., Pratap, A., Agarwal, S., & Meyarivan, T. (2002). A fast and elitist multiobjective genetic algorithm: NSGA-II. IEEE Transactions on Evolutionary Computation, 6(2), 182–197. DOI ↗Goldberg, D. E. (1989). Genetic algorithms in search, optimization, and machine learning. Addison-Wesley. ISBN: 9780201157673
Denumiri alternativeS-NSGA-II, NSGA-II under Uncertainty, Stochastic Multi-Objective NSGA-II, Robust NSGA-IIMOGA, Multi-objective GA, Evolutionary multi-objective optimization, EMO
Înrudite54
RezumatStochastic NSGA-II extends the NSGA-II evolutionary algorithm to handle objective functions that are noisy, uncertain, or probabilistic. By averaging or sampling stochastic objectives across multiple evaluations, it identifies Pareto-optimal solutions that are robust to uncertainty, making it suitable for engineering design, supply chain, and policy optimization problems where real-world variability matters.A Multi-Objective Genetic Algorithm (MOGA) is an evolutionary computation method that evolves a population of candidate solutions toward a Pareto-optimal front, simultaneously optimizing two or more conflicting objective functions. It avoids collapsing trade-offs into a single score, instead producing a set of non-dominated solutions for the decision-maker to choose among.
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  3. PUBLISHED

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ScholarGateCompară metode: Stochastic NSGA-II · Multi-objective genetic algorithm. Preluat la 2026-06-17 de pe https://scholargate.app/ro/compare