Flexible and generalized uncertainty optimization : theory and methods / Weldon A. Lodwick, Phantipa Thipwiwatpotjana.
By: Lodwick, Weldon A.,, autor
Contributor(s): Thipwiwatpotjana, Phantipa,, autor
Material type:
E-bookSeries: (Studies in computational intelligence, 1860-949X ; volume 696).Publisher: Cham, Switzerland : Springer, 2017Description: 1 recurso en línea (x, 190 páginas) : ilustraciones (algunas a color).ISBN: 3319511076; 9783319511078.Subject: Conjuntos difusos
| Item type | Current library | Collection | Call number | Status | Date due | Barcode | Item holds | |
|---|---|---|---|---|---|---|---|---|
LIBRO-E NO PRÉSTAMO
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Madrid Digital Acceso Electrónico (UEM) | Ciencias e Ingeniería | QA402.5 L639 2017 EB (Browse shelf(Opens below)) | Acceso electrónico | eBook.20022881 |
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| QA402.5 G674 2018 EB Optimization and Control of Dynamic Systems Foundations, Main Developments, Examples and Challenges | QA402.5 .H333 2018 EB Control Engineering and Finance | QA402.5 K736 2017 EB Genetic algorithm essentials | QA402.5 L639 2017 EB Flexible and generalized uncertainty optimization : theory and methods | QA402.5 M493 2017 EB Controller tuning with evolutionary multiobjective optimization : a holistic multiobjective optimization design procedure | QA402.5 M634 2018 EB Modeling, Simulation, and Optimization | QA402.5 N46 2018 EB NEO 2016 Results of the Numerical and Evolutionary Optimization Workshop NEO 2016 and the NEO Cities 2016 Workshop held on September 20-24, 2016 in Tlalnepantla, Mexico |
SpringerLink Springer Engineering eBooks 2017 English+International
Incluye referencias bibliográficas
1 An Introduction to Generalized Uncertainty Optimization -- 2 Generalized Uncertainty Theory: A Language for Information Deficiency -- 3 The Construction of Flexible and Generalized Uncertainty Optimization Input Data -- 4 An Overview of Flexible and Generalized Uncertainty Optimization -- 5 Flexible Optimization -- 6 Generalized Uncertainty Optimization -- References.
This book presents the theory and methods of flexible and generalized uncertainty optimization. Particularly, it describes the theory of generalized uncertainty in the context of optimization modeling. The book starts with an overview of flexible and generalized uncertainty optimization. It covers uncertainties that are both associated with lack of information and that more general than stochastic theory, where well-defined distributions are assumed. Starting from families of distributions that are enclosed by upper and lower functions, the book presents construction methods for obtaining flexible and generalized uncertainty input data that can be used in a flexible and generalized uncertainty optimization model. It then describes the development of such a model in detail. All in all, the book provides the readers with the necessary background to understand flexible and generalized uncertainty optimization and develop their own optimization model.
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