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Esamina i metodi selezionati fianco a fianco; le righe che differiscono sono evidenziate.
| Simulated Annealing Robusto× | Robust Tabu Search× | |
|---|---|---|
| Campo | Simulazione | Simulazione |
| Famiglia | Process / pipeline | Process / pipeline |
| Anno di origine≠ | 1983 (SA); robust variant emerged 1990s–2000s | 1989 (TS); robust variant ~2000s |
| Ideatore≠ | Kirkpatrick, Gelatt & Vecchi (SA basis); robust formulation developed across the operations research community | Glover, F. (Tabu Search); robustness extensions by various authors |
| Tipo≠ | Metaheuristic with robustness evaluation | Metaheuristic with robustness mechanism |
| Fonte seminale≠ | Kirkpatrick, S., Gelatt, C. D., Vecchi, M. P. (1983). Optimization by simulated annealing. Science, 220(4598), 671-680. DOI ↗ | Glover, F. (1989). Tabu search — Part I. ORSA Journal on Computing, 1(3), 190–206. DOI ↗ |
| Alias | RSA, Robust SA, Uncertainty-robust simulated annealing, Worst-case simulated annealing | RTS, Robust TS, Uncertainty-aware Tabu Search, Tabu Search under Uncertainty |
| Correlati≠ | 5 | 6 |
| Sintesi≠ | Robust Simulated Annealing (RSA) adapts the classical simulated annealing metaheuristic to seek solutions that perform well not just under nominal conditions but across the full range of uncertain or adversarial parameter values. By embedding a robustness evaluation — worst-case, expected-case, or regret-based — into the SA acceptance step, RSA trades some nominal optimality for resilience, making it valuable when problem parameters are imprecisely known or subject to environmental variation. | Robust Tabu Search (RTS) extends the classical Tabu Search metaheuristic by evaluating candidate solutions not only on their nominal objective value but also on their performance under uncertainty. Instead of seeking the best solution for a single scenario, RTS seeks solutions that perform well across a range of scenarios or realizations, trading peak optimality for reliability. |
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