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Branch-and-Bound Applications in Combinatorial Data Analysis

Branch-and-Bound Applications in Combinatorial Data Analysis

Branch-and-Bound Applications in Combinatorial Data Analysis
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Branch-and-Bound Applications in Combinatorial Data Analysis Hardback - 2005

by Brusco, Michael J. And Stephanie Stahl

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Description

New York: Springer Verlag, 2005. Hardcover. Fine/No Jacket. 221 pp. Hardcover. A Fine copy, like New. 2005.
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Details

  • Title Branch-and-Bound Applications in Combinatorial Data Analysis
  • Author Brusco, Michael J. And Stephanie Stahl
  • Binding Hardback
  • Edition INTERNATIONAL ED
  • Condition Used - Fine
  • Pages 222
  • Volumes 1
  • Language ENG
  • Publisher Springer Verlag, New York
  • Publication date 2005
  • Illustrated Yes
  • Features Bibliography, Illustrated, Index, Table of Contents
  • Bookseller's Inventory # 0069432
  • ISBN 9780387250373 / 0387250379
  • Weight 1.02 lbs (0.46 kg)
  • Dimensions 9.56 x 6.14 x 0.63 in (24.28 x 15.60 x 1.60 cm)
  • Category Mathematics
  • Library of Congress subjects Combinatorial analysis, Branch and bound algorithms
  • Library of Congress Catalogue Number 2005924426
  • Dewey Decimal Code 511.6
  • Quantity available 1

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Reader reviews for Branch-and-Bound Applications in Combinatorial Data Analysis

From the publisher

This book provides explanatory text, illustrative mathematics and algorithms, demonstrations of the iterative process, pseudocode, and well-developed examples for (familiar as well as novel) applications of the branch-and-bound paradigm to relevant problems in combinatorial data analysis.

From the rear cover

There are a variety of combinatorial optimization problems that are relevant to the examination of statistical data. Combinatorial problems arise in the clustering of a collection of objects, the seriation (sequencing or ordering) of objects, and the selection of variables for subsequent multivariate statistical analysis such as regression. The options for choosing a solution strategy in combinatorial data analysis can be overwhelming. Because some problems are too large or intractable for an optimal solution strategy, many researchers develop an over-reliance on heuristic methods to solve all combinatorial problems. However, with increasingly accessible computer power and ever-improving methodologies, optimal solution strategies have gained popularity for their ability to reduce unnecessary uncertainty. In this monograph, optimality is attained for nontrivially sized problems via the branch-and-bound paradigm.

For many combinatorial problems, branch-and-bound approaches have been proposed and/or developed. However, until now, there has not been a single resource in statistical data analysis to summarize and illustrate available methods for applying the branch-and-bound process. This monograph provides clear explanatory text, illustrative mathematics and algorithms, demonstrations of the iterative process, psuedocode, and well-developed examples for applications of the branch-and-bound paradigm to important problems in combinatorial data analysis. Supplementary material, such as computer programs, are provided on the world wide web.

Dr. Brusco is a Professor of Marketing and Operations Research at Florida State University, an editorial board member for the Journal of Classification, and a member of the Board of Directors for the Classification Society of North America. Stephanie Stahl is an author and researcher with years of experience in writing, editing, and quantitative psychology research.

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