Derivative-Free and Blackbox Optimization

Derivative-Free and Blackbox Optimization

EnglishHardback
Audet Charles
Springer, Berlin
EAN: 9783319689128
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Detailed information

This book is designed as a textbook, suitable for self-learning or for teaching an upper-year university course on derivative-free and blackbox optimization. 

The book is split into 5 parts and is designed to be modular; any individual part depends only on the material in Part I.  Part I of the book discusses what is meant by Derivative-Free and Blackbox Optimization, provides background material, and early basics while Part II focuses on heuristic methods (Genetic Algorithms and Nelder-Mead).  Part III presents direct search methods (Generalized Pattern Search and Mesh Adaptive Direct Search) and Part IV focuses on model-based methods (Simplex Gradient and Trust Region).  Part V discusses dealing with constraints, using surrogates, and bi-objective optimization.

End of chapter exercises are included throughout as well as 15 end of chapter projects and over 40 figures.  Benchmarking techniques are also presented in the appendix.

EAN 9783319689128
ISBN 3319689126
Binding Hardback
Publisher Springer, Berlin
Publication date December 13, 2017
Pages 302
Language English
Dimensions 235 x 155
Country Switzerland
Readership Postgraduate, Research & Scholarly
Authors Audet Charles; Hare, Warren
Illustrations XVIII, 302 p. 38 illus.
Edition 1st ed. 2017
Series Springer Series in Operations Research and Financial Engineering
Manufacturer information
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