First-Order Methods in Optimization

First-Order Methods in Optimization

Paperback (30 Nov 2017)

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Publisher's Synopsis

The primary goal of this book is to provide a self-contained, comprehensive study of the main ?rst-order methods that are frequently used in solving large-scale problems. First-order methods exploit information on values and gradients/subgradients (but not Hessians) of the functions composing the model under consideration. With the increase in the number of applications that can be modeled as large or even huge-scale optimization problems, there has been a revived interest in using simple methods that require low iteration cost as well as low memory storage.

The author has gathered, reorganized, and synthesized (in a unified manner) many results that are currently scattered throughout the literature, many of which cannot be typically found in optimization books.

First-Order Methods in Optimization offers comprehensive study of first-order methods with the theoretical foundations; provides plentiful examples and illustrations; emphasizes rates of convergence and complexity analysis of the main first-order methods used to solve large-scale problems; and covers both variables and functional decomposition methods.

Book information

ISBN: 9781611974980
Publisher: SIAM - Society for Industrial and Applied Mathematics
Imprint: Society for Industrial and Applied Mathematics
Pub date:
DEWEY: 519.6
DEWEY edition: 23
Language: English
Number of pages: xii, 475
Weight: 1024g
Height: 178mm
Width: 260mm
Spine width: 34mm