Introduction to Applied Optimization

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This text presents amulti-disciplined view of optimization, providing students and researchers with a thorough examination of algorithms, methods, and tools from diverse areas of optimization without introducing excessive theoretical detail. This second edition includes additional topics, including global optimization and a real-world case study using important concepts from each chapter.

Key Features:

  • Provides well-written self-contained chapters, including problem sets and exercises, making it ideal for the classroom setting;
  • Introduces applied optimization to the hazardous waste blending problem;
  • Explores linear programming, nonlinear programming, discrete optimization, global optimization, optimization under uncertainty, multi-objective optimization, optimal control and stochastic optimal control;
  • Includes an extensive bibliography at the end of each chapter and an index;
  • GAMS files of case studies for Chapters 2, 3, 4, 5, and 7 are linked to http://www.springer.com/math/book/978-0-387-76634-8;
  • Solutions manual available upon adoptions.

Introduction to Applied Optimization is intended for advanced undergraduate and graduate students and will benefit scientists from diverse areas, including engineers.

Author(s): Urmila Diwekar (auth.)
Series: Springer Optimization and Its Applications 22
Edition: 2
Publisher: Springer US
Year: 2008

Language: English
Pages: 291
Tags: Calculus of Variations and Optimal Control; Optimization; Industrial Chemistry/Chemical Engineering; Appl.Mathematics/Computational Methods of Engineering; Systems Theory, Control; Business/Management Science, general

Front Matter....Pages 1-20
Introduction....Pages 1-10
Linear Programming....Pages 1-29
Nonlinear Programming....Pages 1-36
Discrete Optimization....Pages 1-48
Optimization Under Uncertainty....Pages 1-54
Multiobjective Optimization....Pages 1-36
Optimal Control and Dynamic Optimization....Pages 1-63
Back Matter....Pages 1-13