Fr. 261.00

Convexification and Global Optimization in Continuous and Mixed-Integer Nonlinear Programming - Theory, Algorithms, Software, and Applications

English · Hardback

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Description

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This book provides an insightful and comprehensive treatment of convexification and global optimization of continuous and mixed-integer nonlinear programs. Developed for students, researchers, and practitioners, the book covers theory, algorithms, software, and applications.

List of contents

Preface. Acknowledgements. List of Figures. List of Tables. 1. Introduction. 2. Convex Extensions. 3. Project Disaggregation. 4. Relaxations of Factorable Programs. 5. Domain Reduction. 6. Node Partitioning. 7. Implementation. 8. Refrigerant Design Problem. 9. The Pooling Problem. 10. Miscellaneous Problems. 11. GAMS/BARON: A Tutorial. A: GAMS Model for Pooling Problems. Bibliography. Index. Author Index.

Summary

Interest in constrained optimization originated with the simple linear pro­ gramming model since it was practical and perhaps the only computationally tractable model at the time. Constrained linear optimization models were soon adopted in numerous application areas and are perhaps the most widely used mathematical models in operations research and management science at the time of this writing. Modelers have, however, found the assumption of linearity to be overly restrictive in expressing the real-world phenomena and problems in economics, finance, business, communication, engineering design, computational biology, and other areas that frequently demand the use of nonlinear expressions and discrete variables in optimization models. Both of these extensions of the linear programming model are NP-hard, thus representing very challenging problems. On the brighter side, recent advances in algorithmic and computing technology make it possible to re­ visit these problems with the hope of solving practically relevant problems in reasonable amounts of computational time. Initial attempts at solving nonlinear programs concentrated on the de­ velopment of local optimization methods guaranteeing globality under the assumption of convexity. On the other hand, the integer programming liter­ ature has concentrated on the development of methods that ensure global optima. The aim of this book is to marry the advancements in solving nonlinear and integer programming models and to develop new results in the more general framework of mixed-integer nonlinear programs (MINLPs) with the goal of devising practically efficient global optimization algorithms for MINLPs.

Product details

Authors Nikolaos Sahinidis, Nikolaos V Sahinidis, Nikolaos V. Sahinidis, M. Tawarmalani, Mohi Tawarmalani, Mohit Tawarmalani
Publisher Springer Netherlands
 
Languages English
Product format Hardback
Released 01.01.2002
 
EAN 9781402010316
ISBN 978-1-4020-1031-6
No. of pages 478
Weight 1035 g
Illustrations XXV, 478 p.
Series Nonconvex Optimization and Its Applications
Nonconvex Optimization and Its Applications
Nonconvex Optimization and Its
Subject Natural sciences, medicine, IT, technology > Mathematics > Miscellaneous

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