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| Байесов Табу Търсене× | Байесовски генетичен алгоритъм× | |
|---|---|---|
| Област | Симулационно моделиране | Симулационно моделиране |
| Семейство | Process / pipeline | Process / pipeline |
| Година на възникване≠ | 1989 (tabu search); hybrid formulations ~2005–2015 | 1999 |
| Създател≠ | Glover, F. (tabu search); Bayesian integration developed by multiple researchers in the 2000s–2010s | Pelikan, M., Goldberg, D. E., & Cantu-Paz, E. |
| Тип≠ | Hybrid metaheuristic — memory-based local search with Bayesian probabilistic guidance | Evolutionary metaheuristic with Bayesian probabilistic model |
| Основополагащ източник≠ | Glover, F. (1989). Tabu search — Part I. ORSA Journal on Computing, 1(3), 190–206. DOI ↗ | Pelikan, M., Goldberg, D. E., & Cantu-Paz, E. (1999). BOA: The Bayesian optimization algorithm. In Proceedings of the Genetic and Evolutionary Computation Conference (GECCO-1999), pp. 525–532. Morgan Kaufmann. link ↗ |
| Други названия | BTS, Bayesian-guided tabu search, probabilistic tabu search, Bayes-TS | BGA, Bayesian-guided GA, Probabilistic GA, EDA-GA |
| Свързани≠ | 6 | 5 |
| Резюме≠ | Bayesian Tabu Search (BTS) is a hybrid metaheuristic that couples the memory-based forbidden-move mechanism of classic Tabu Search with a Bayesian probabilistic model. The Bayesian component learns from past evaluations to score candidate moves, focusing the search on promising regions while the tabu list prevents cycling. This combination reduces wasted function evaluations in expensive combinatorial and continuous optimization problems. | A Bayesian Genetic Algorithm (BGA) replaces traditional crossover and mutation operators with a probabilistic Bayesian network learned from selected high-fitness individuals. At each generation the algorithm builds a graphical model of promising solution structure, then samples new offspring from that model, enabling the search to capture and exploit variable dependencies that standard GAs miss. |
| ScholarGateНабор от данни ↗ |
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