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क्षेत्रअनुकरणअनुकूलन
परिवारProcess / pipelineProcess / pipeline
उद्भव वर्ष1975 (GA); 2000s (policy scenario application)1975
प्रवर्तकHolland, J. H. (GA foundation); Lempert, Popper & Bankes (policy scenario search)John Henry Holland
प्रकारEvolutionary metaheuristic for policy scenario explorationPopulation-based metaheuristic
मौलिक स्रोतHolland, J. H. (1975). Adaptation in Natural and Artificial Systems. University of Michigan Press, Ann Arbor, MI. ISBN: 9780262581110Holland, J.H. (1975). Adaptation in Natural and Artificial Systems. University of Michigan Press. link ↗
उपनामPSGA, Policy-GA, Policy Optimization Genetic Algorithm, Evolutionary Policy Scenario SearchGA, evolutionary algorithm, Genetik Algoritma — Evrimsel Optimizasyon
संबंधित45
सारांशThe Policy Scenario Genetic Algorithm applies evolutionary search to systematically explore large, combinatorial policy alternative spaces under multiple future scenarios. Rather than exhaustively enumerating options, it breeds successive generations of candidate policies, retaining those that perform well across scenario conditions, yielding robust, high-performing policy recommendations.A genetic algorithm (GA) is a population-based metaheuristic optimization method introduced by John Henry Holland (1975) that mimics the principles of natural selection. It maintains a population of candidate solutions and iteratively improves them through selection, crossover, and mutation operators, making it especially powerful on discontinuous, non-convex, and multi-modal search spaces where classical gradient-based methods fail.
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  3. PUBLISHED

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ScholarGateविधियों की तुलना करें: Policy Scenario Genetic Algorithm · Genetic Algorithm. 2026-06-15 को यहाँ से प्राप्त https://scholargate.app/hi/compare