Stochastic Optimization Methods
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| 販売者 | Product price | Delivery | 合計 | 在庫状況 | Updated | |
|---|---|---|---|---|---|---|
| SP SpringerNatureLink Shop INT | 108,50 EUR | 19,00 EUR | 127,50 EUR | 在庫あり | 16時間前 | View offer |
| SP Springer Nature Author | 108,50 EUR | 15,00 EUR | 123,50 EUR | 在庫あり | 8時間前 | View offer |
価格や在庫状況は変更される場合があります。 最終更新: 08.08.2026 14:15.
EAN
9783540794585
Springer Nature
0,0
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Optimization problems arising in practice involve random model parameters. For the computation of robust optimal solutions, i.e., optimal solutions being insenistive with respect to random parameter variations, appropriate deterministic substitute problems are needed. Based on the probability distribution of the random data, and using decision theoretical concepts, optimization problems under stochastic uncertainty are converted into appropriate deterministic substitute problems. Due to the occurring probabilities and expectations, approximative solution techniques must be applied. Several deterministic and stochastic approximation methods are provided: Taylor expansion methods, regression and response surface methods (RSM), probability inequalities, multiple linearization of survival/failure domains, discretization methods, convex approximation/deterministic descent directions/efficient points, stochastic approximation and gradient procedures, differentiation formulas for probabilities and expectations.