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Linear and Nonlinear Optimization (Hardcover, 1st ed. 2017)
Loot Price: R3,668
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Linear and Nonlinear Optimization (Hardcover, 1st ed. 2017)
Series: International Series in Operations Research & Management Science, 253
Expected to ship within 12 - 17 working days
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This textbook on Linear and Nonlinear Optimization is intended for
graduate and advanced undergraduate students in operations research
and related fields. It is both literate and mathematically strong,
yet requires no prior course in optimization. As suggested by its
title, the book is divided into two parts covering in their
individual chapters LP Models and Applications; Linear Equations
and Inequalities; The Simplex Algorithm; Simplex Algorithm
Continued; Duality and the Dual Simplex Algorithm; Postoptimality
Analyses; Computational Considerations; Nonlinear (NLP) Models and
Applications; Unconstrained Optimization; Descent Methods;
Optimality Conditions; Problems with Linear Constraints; Problems
with Nonlinear Constraints; Interior-Point Methods; and an Appendix
covering Mathematical Concepts. Each chapter ends with a set of
exercises. The book is based on lecture notes the authors have used
in numerous optimization courses the authors have taught at
Stanford University. It emphasizes modeling and numerical
algorithms for optimization with continuous (not integer)
variables. The discussion presents the underlying theory without
always focusing on formal mathematical proofs (which can be found
in cited references). Another feature of this book is its inclusion
of cultural and historical matters, most often appearing among the
footnotes. "This book is a real gem. The authors do a masterful job
of rigorously presenting all of the relevant theory clearly and
concisely while managing to avoid unnecessary tedious mathematical
details. This is an ideal book for teaching a one or two semester
masters-level course in optimization - it broadly covers linear and
nonlinear programming effectively balancing modeling, algorithmic
theory, computation, implementation, illuminating historical facts,
and numerous interesting examples and exercises. Due to the clarity
of the exposition, this book also serves as a valuable reference
for self-study." Professor Ilan Adler, IEOR Department, UC Berkeley
"A carefully crafted introduction to the main elements and
applications of mathematical optimization. This volume presents the
essential concepts of linear and nonlinear programming in an
accessible format filled with anecdotes, examples, and exercises
that bring the topic to life. The authors plumb their decades of
experience in optimization to provide an enriching layer of
historical context. Suitable for advanced undergraduates and
masters students in management science, operations research, and
related fields."Michael P. Friedlander, IBM Professor of Computer
Science, Professor of Mathematics, University of British Columbia
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