Practical Optimization: Algorithms and Engineering Applications
Andreas Antoniou, Wu-Sheng Lu
- 出版商: Springer
- 出版日期: 2007-03-01
- 售價: $5,140
- 貴賓價: 9.5 折 $4,883
- 語言: 英文
- 頁數: 670
- 裝訂: Hardcover
- ISBN: 0387711066
- ISBN-13: 9780387711065
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相關分類:
Algorithms-data-structures
海外代購書籍(需單獨結帳)
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相關主題
商品描述
Description
Practical Optimization: Algorithms and Engineering Applications provides a hands-on treatment of the subject of optimization. A comprehensive set of problems and exercises makes the book suitable for use in one or two semesters of a first-year graduate course or an advanced undergraduate course. Each half of the book contains a full semester’s worth of complementary yet stand-alone material. The practical orientation of the topics chosen and a wealth of useful examples also make the book suitable as a reference work for practitioners in the field.
Advancements in the efficiency of digital computers and the evolution of reliable software for numerical computation during the past three decades have led to a rapid growth in the theory, methods, and algorithms of numerical optimization. This body of knowledge has motivated widespread applications of optimization methods in many disciplines, e.g., engineering, business, and science, and has subsequently led to problem solutions that were considered intractable not too long ago.
Key Features:
- extensively class-tested
- provides a complete teaching package with MATLAB exercises and online solutions to end-of-chapter problems
- includes recent methods of emerging interest such as semidefinite programming and second-order cone programming
- presents a unified treatment of unconstrained and constrained optimization
- uses a practical treatment of optimization accessible to broad audience, from college students to scientists and industry professionals
- provides a thorough appendix with background theory so non-experts can understand how applications are solved from point of view of optimization
Table of contents
The Optimization Problem.- Basic Principles.- General Properties of Algorithms.- One-Dimensional Optimization.- Basic Multidimensional Gradient Methods.- Conjugate-Direction Methods.- Quasi-Newton Methods.- Minimax Methods.- Applications of Unconstrained Optimization.- Fundamentals of Constrained Optimization.- Linear Programming Part I: The Simplex Method.- Linear Programming Part II: Interior-Point Methods.- Quadratic and Convex Programming.- Semidefinite and Second-Order Cone Programming.- General Nonlinear Optimization Problems.- Applications of Constrained Optimization.
商品描述(中文翻譯)
描述
《實用優化:演算法與工程應用》提供了優化主題的實務處理。全面的問題和練習集使本書適合用於一或兩個學期的研究生第一年課程或高級本科課程。書籍的每一半都包含一整個學期的互補但獨立的材料。所選主題的實務導向以及大量有用的範例也使本書適合作為該領域從業者的參考書。
在過去三十年中,數位電腦效率的提升和可靠數值計算軟體的演進,促使數值優化的理論、方法和演算法迅速增長。這一知識體系激發了優化方法在許多學科中的廣泛應用,例如工程、商業和科學,並隨之解決了不久前被認為無法處理的問題。
主要特點:
- 廣泛的課堂測試
- 提供完整的教學套件,包括 MATLAB 練習和章節末問題的線上解答
- 包含最近興起的興趣方法,如半正定規劃和二階錐規劃
- 提供無約束和有約束優化的統一處理
- 使用實務導向的優化處理,適合從大學生到科學家和業界專業人士的廣泛受眾
- 提供詳細的附錄,包含背景理論,以便非專家能理解如何從優化的角度解決應用問題
目錄
優化問題.- 基本原則.- 演算法的一般特性.- 一維優化.- 基本多維梯度方法.- 共軛方向法.- 擬牛頓法.- 最小最大法.- 無約束優化的應用.- 有約束優化的基本原理.- 線性規劃第一部分:單純形法.- 線性規劃第二部分:內點法.- 二次和凸規劃.- 半正定和二階錐規劃.- 一般非線性優化問題.- 有約束優化的應用。