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Nonlinear Interval Optimization for Uncertain Problems (Hardcover, 1st ed. 2021): Chao Jiang, Xu Han, Huichao Xie Nonlinear Interval Optimization for Uncertain Problems (Hardcover, 1st ed. 2021)
Chao Jiang, Xu Han, Huichao Xie
R3,806 Discovery Miles 38 060 Ships in 12 - 17 working days

This book systematically discusses nonlinear interval optimization design theory and methods. Firstly, adopting a mathematical programming theory perspective, it develops an innovative mathematical transformation model to deal with general nonlinear interval uncertain optimization problems, which is able to equivalently convert complex interval uncertain optimization problems to simple deterministic optimization problems. This model is then used as the basis for various interval uncertain optimization algorithms for engineering applications, which address the low efficiency caused by double-layer nested optimization. Further, the book extends the nonlinear interval optimization theory to design problems associated with multiple optimization objectives, multiple disciplines, and parameter dependence, and establishes the corresponding interval optimization models and solution algorithms. Lastly, it uses the proposed interval uncertain optimization models and methods to deal with practical problems in mechanical engineering and related fields, demonstrating the effectiveness of the models and methods.

Nonlinear Interval Optimization for Uncertain Problems (Paperback, 1st ed. 2021): Chao Jiang, Xu Han, Huichao Xie Nonlinear Interval Optimization for Uncertain Problems (Paperback, 1st ed. 2021)
Chao Jiang, Xu Han, Huichao Xie
R4,189 Discovery Miles 41 890 Ships in 10 - 15 working days

This book systematically discusses nonlinear interval optimization design theory and methods. Firstly, adopting a mathematical programming theory perspective, it develops an innovative mathematical transformation model to deal with general nonlinear interval uncertain optimization problems, which is able to equivalently convert complex interval uncertain optimization problems to simple deterministic optimization problems. This model is then used as the basis for various interval uncertain optimization algorithms for engineering applications, which address the low efficiency caused by double-layer nested optimization. Further, the book extends the nonlinear interval optimization theory to design problems associated with multiple optimization objectives, multiple disciplines, and parameter dependence, and establishes the corresponding interval optimization models and solution algorithms. Lastly, it uses the proposed interval uncertain optimization models and methods to deal with practical problems in mechanical engineering and related fields, demonstrating the effectiveness of the models and methods.

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