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Krahasoni metodat

Shqyrtoni metodat e zgjedhura krah për krah; rreshtat që ndryshojnë janë të theksuar.

Algoritmi Gjenetik Stokastik×Optimizimi Stokastik me shumë objektivë×
FushaSimulimiSimulimi
FamiljaProcess / pipelineProcess / pipeline
Viti i origjinës19751990s–2000s
KrijuesiHolland, J. H.Various (Fonseca, Fleming, Deb, Zitzler, and others)
LlojiStochastic evolutionary metaheuristicStochastic metaheuristic optimization
Burimi themeluesHolland, J. H. (1975). Adaptation in Natural and Artificial Systems. University of Michigan Press, Ann Arbor. ISBN: 978-0262581110Deb, K. (2001). Multi-Objective Optimization Using Evolutionary Algorithms. Wiley, Chichester. ISBN: 9780471873396
Emërtime të tjeraSGA, Canonical Genetic Algorithm, Simple Genetic Algorithm, Evolutionary AlgorithmSMOO, Stochastic MOO, Multi-objective optimization under uncertainty, Robust multi-objective optimization
Të lidhura55
PërmbledhjaThe Stochastic Genetic Algorithm (SGA) is a population-based metaheuristic that mimics biological evolution — selection, crossover, and mutation — to search for near-optimal solutions in complex, nonlinear, or combinatorial spaces. Its randomized operators make it robust to local optima and broadly applicable across engineering, scheduling, machine learning, and operations research.Stochastic Multi-Objective Optimization (SMOO) is a class of methods that simultaneously optimizes two or more conflicting objectives when parameters, costs, or constraints are uncertain or random. Rather than a single optimal solution, it produces a Pareto front of non-dominated solutions, each representing a different balance among objectives under the modeled uncertainty.
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ScholarGateKrahasoni metodat: Stochastic Genetic Algorithm · Stochastic Multi-Objective Optimization. Marrë më 2026-06-15 nga https://scholargate.app/sq/compare