Optimization Techniques in Statistics

Author:   Jagdish S Rustagi
Publisher:   Elsevier Science
ISBN:  

9781322480329


Pages:   376
Publication Date:   17 December 2014
Format:   Electronic book text
Availability:   Available To Order   Availability explained
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Optimization Techniques in Statistics


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Overview

Statistics help guide us to optimal decisions under uncertainty. A large variety of statistical problems are essentially solutions to optimization problems. The mathematical techniques of optimization are fundamentalto statistical theory and practice. In this book, Jagdish Rustagi provides full-spectrum coverage of these methods, ranging from classical optimization and Lagrange multipliers, to numerical techniques using gradients or direct search, to linear, nonlinear, and dynamic programming using the Kuhn-Tucker conditions or the Pontryagin maximal principle. Variational methods and optimization in function spaces are also discussed, as are stochastic optimization in simulation, including annealing methods.The text features numerous applications, including: Finding maximum likelihood estimatesMarkov decision processesProgramming methods used to optimize monitoring of patients in hospitalsDerivation of the Neyman-Pearson lemmaThe search for optimal designsSimulation of a steel millSuitable as both a reference and a text, this book will be of interest to advanced undergraduate or beginning graduate students in statistics, operations research, management and engineering sciences, and related fields. Most of the material can be covered in one semester by students with a basic background in probability and statistics. Key Features* Covers optimization from traditional methods to recent developments such as Karmarkars algorithm and simulated annealing* Develops a wide range of statistical techniques in the unified context of optimization* Discusses applications such as optimizing monitoring of patients and simulating steel mill operations* Treats numerical methods and applicationsIncludes exercises and references for each chapter* Covers topics such as linear, nonlinear, and dynamic programming, variational methods, and stochastic optimization

Full Product Details

Author:   Jagdish S Rustagi
Publisher:   Elsevier Science
Imprint:   Elsevier Science
ISBN:  

9781322480329


ISBN 10:   132248032
Pages:   376
Publication Date:   17 December 2014
Audience:   General/trade ,  General
Format:   Electronic book text
Publisher's Status:   Active
Availability:   Available To Order   Availability explained
We have confirmation that this item is in stock with the supplier. It will be ordered in for you and dispatched immediately.

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