Introduction to Global Optimization Exploiting Space-Filling Curves

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Introduction to Global Optimization Exploiting Space-Filling Curves provides an overview of classical and new results pertaining to the usage of space-filling curves in global optimization. The authors look at a family of derivative-free numerical algorithms applying space-filling curves to reduce the dimensionality of the global optimization problem; along with a number of unconventional ideas, such as adaptive strategies for estimating Lipschitz constant, balancing global and local information to accelerate the search. Convergence conditions of the described algorithms are studied in depth and theoretical considerations are illustrated through numerical examples. This work also contains a code for implementing space-filling curves that can be used for constructing new global optimization algorithms. Basic ideas from this text can be applied to a number of problems including problems with multiextremal and partially defined constraints and non-redundant parallel computations can be organized. Professors, students, researchers, engineers, and other professionals in the fields of pure mathematics, nonlinear sciences studying fractals, operations research, management science, industrial and applied mathematics, computer science, engineering, economics, and the environmental sciences will find this title useful .

Presents new efficient methods for solving an important practical problem in the field of space-filling curves Starting point for developing new methods Contains a code for implementing space-filling curves that can be used in global optimization algorithms Describes both stochastic and deterministic methods? Includes supplementary material: sn.pub/extras

Klappentext

Introduction to Global Optimization Exploiting Space-Filling Curves provides an overview of classical and new results pertaining to the usage of space-filling curves in global optimization. The authors look at a family of derivative-free numerical algorithms applying space-filling curves to reduce the dimensionality of the global optimization problem; along with a number of unconventional ideas, such as adaptive strategies for estimating Lipschitz constant, balancing global and local information to accelerate the search. Convergence conditions of the described algorithms are studied in depth and theoretical considerations are illustrated through numerical examples. This work also contains a code for implementing space-filling curves that can be used for constructing new global optimization algorithms. Basic ideas from this text can be applied to a number of problems including problems with multiextremal and partially defined constraints and non-redundant parallel computations can be organized. Professors, students, researchers, engineers, and other professionals in the fields of pure mathematics, nonlinear sciences studying fractals, operations research, management science, industrial and applied mathematics, computer science, engineering, economics, and the environmental sciences will find this title useful .


Inhalt

  1. Introduction.- 2. Approximations to Peano curves.- 3. Global optimization algorithms using curves to reduce dimensionality of the problem.- 4. Ideas for acceleration.- 5. A brief conclusion.- References.

Weitere Informationen

  • Allgemeine Informationen
    • Sprache Englisch
    • Anzahl Seiten 136
    • Herausgeber Springer New York
    • Gewicht 219g
    • Untertitel SpringerBriefs in Optimization
    • Autor Yaroslav D. Sergeyev , Daniela Lera , Roman G. Strongin
    • Titel Introduction to Global Optimization Exploiting Space-Filling Curves
    • Veröffentlichung 06.08.2013
    • ISBN 1461480418
    • Format Kartonierter Einband
    • EAN 9781461480419
    • Jahr 2013
    • Größe H235mm x B155mm x T8mm
    • Lesemotiv Verstehen
    • Auflage 2013
    • GTIN 09781461480419

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