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Modern Numerical Nonlinear Optimization - (Springer Optimization and Its Applications) by  Neculai Andrei (Paperback) - 1 of 1

Modern Numerical Nonlinear Optimization - (Springer Optimization and Its Applications) by Neculai Andrei (Paperback)

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Highlights

  • This book includes a thorough theoretical and computational analysis of unconstrained and constrained optimization algorithms and combines and integrates the most recent techniques and advanced computational linear algebra methods.
  • About the Author: Neculai Andrei holds a position at the Center for Advanced Modeling and Optimization at the Academy of Romanian Scientists in Bucharest, Romania.
  • 807 Pages
  • Mathematics, Applied
  • Series Name: Springer Optimization and Its Applications

Description



Book Synopsis



This book includes a thorough theoretical and computational analysis of unconstrained and constrained optimization algorithms and combines and integrates the most recent techniques and advanced computational linear algebra methods. Nonlinear optimization methods and techniques have reached their maturity and an abundance of optimization algorithms are available for which both the convergence properties and the numerical performances are known. This clear, friendly, and rigorous exposition discusses the theory behind the nonlinear optimization algorithms for understanding their properties and their convergence, enabling the reader to prove the convergence of his/her own algorithms. It covers cases and computational performances of the most known modern nonlinear optimization algorithms that solve collections of unconstrained and constrained optimization test problems with different structures, complexities, as well as those with large-scale real applications.

The book is addressed to all those interested in developing and using new advanced techniques for solving large-scale unconstrained or constrained complex optimization problems. Mathematical programming researchers, theoreticians and practitioners in operations research, practitioners in engineering and industry researchers, as well as graduate students in mathematics, Ph.D. and master in mathematical programming will find plenty of recent information and practical approaches for solving real large-scale optimization problems and applications.



From the Back Cover



This book includes a thorough theoretical and computational analysis of unconstrained and constrained optimization algorithms and combines and integrates the most recent techniques and advanced computational linear algebra methods. Nonlinear optimization methods and techniques have reached their maturity and an abundance of optimization algorithms are available for which both the convergence properties and the numerical performances are known. This clear, friendly, and rigorous exposition discusses the theory behind the nonlinear optimization algorithms for understanding their properties and their convergence, enabling the reader to prove the convergence of his/her own algorithms. It covers cases and computational performances of the most known modern nonlinear optimization algorithms that solve collections of unconstrained and constrained optimization test problems with different structures, complexities, as well as those with large-scale real applications.

The book is addressed to all those interested in developing and using new advanced techniques for solving large-scale unconstrained or constrained complex optimization problems. Mathematical programming researchers, theoreticians and practitioners in operations research, practitioners in engineering and industry researchers, as well as graduate students in mathematics, Ph.D. and master in mathematical programming will find plenty of recent information and practical approaches for solving real large-scale optimization problems and applications.



Review Quotes




"This book gives a comprehensive description of the theoretical details and the computational performance of the modern optimization algorithms for solving ... different areas of activity. ... I think this book has the following two features. First, it emphasizes and illustrates a number of reliable and robust packages for solving ... nonlinear optimization problems and applications. Second, the text is well illustrated with drawings and numerical studies of many large-scale test problems, which significantly increase the readability of the book." (Xiaoliang Dong, Mathematical Reviews, September, 2023)



About the Author



Neculai Andrei holds a position at the Center for Advanced Modeling and Optimization at the Academy of Romanian Scientists in Bucharest, Romania. Dr. Andrei's areas of interest include mathematical modeling, linear programming, nonlinear optimization, high performance computing, and numerical methods in mathematical programming. In addition to this present volume, Neculai Andrei has published several books with Springer including A Derivative-free Two Level Random Search Method for Unconstrained Optimization (2021), Nonlinear Conjugate Gradient Methods for Unconstrained Optimization (2020), Continuous Nonlinear Optimization for Engineering Applications in GAMS Technology (2017), and Nonlinear Optimization Applications Using the GAMS Technology (2013).
Dimensions (Overall): 10.0 Inches (H) x 7.0 Inches (W) x 1.67 Inches (D)
Weight: 3.16 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 807
Genre: Mathematics
Sub-Genre: Applied
Series Title: Springer Optimization and Its Applications
Publisher: Springer
Format: Paperback
Author: Neculai Andrei
Language: English
Street Date: October 19, 2023
TCIN: 1007642515
UPC: 9783031087226
Item Number (DPCI): 247-22-3329
Origin: Made in the USA or Imported
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Shipping details

Estimated ship dimensions: 1.67 inches length x 7 inches width x 10 inches height
Estimated ship weight: 3.16 pounds
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