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      Bayesian and High-Dimensional Global Optimization

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      SKU 9783030647117 Categories ,
      Accessible to a variety of readers, this book is of interest to specialists, graduate students and researchers in mathematics, optimization, computer science, operations research, management science, engineering and other applied areas interested in solving optimization problems.

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      Description

      Product ID:9783030647117
      Product Form:Paperback / softback
      Country of Manufacture:GB
      Series:SpringerBriefs in Optimization
      Title:Bayesian and High-Dimensional Global Optimization
      Authors:Author: Anatoly Zhigljavsky, Antanas Zilinskas
      Page Count:118
      Subjects:Algebra, Algebra, Probability and statistics, Optimization, Stochastics, Production and industrial engineering, Probability & statistics, Optimization, Stochastics, Production engineering
      Description:Accessible to a variety of readers, this book is of interest to specialists, graduate students and researchers in mathematics, optimization, computer science, operations research, management science, engineering and other applied areas interested in solving optimization problems.

      Accessible to a variety of readers, this book is of interest to specialists, graduate students and researchers in mathematics, optimization, computer science, operations research, management science, engineering and other applied areas interested in solving optimization problems. Basic principles, potential and boundaries of applicability of stochastic global optimization techniques are examined in this book. A variety of issues that face specialists in global optimization are explored, such as multidimensional spaces which are frequently ignored by researchers. The importance of precise interpretation of the mathematical results in assessments of optimization methods is demonstrated through examples of convergence in probability of random search. Methodological issues concerning construction and applicability of stochastic global optimization methods are discussed, including the one-step optimal average improvement method based on a statistical model of the objective function. A significant portion of this book is devoted to an analysis of high-dimensional global optimization problems and the so-called ''curse of dimensionality''. An examination of the three different classes of high-dimensional optimization problems, the geometry of high-dimensional balls and cubes, very slow convergence of global random search algorithms in large-dimensional problems , and poor uniformity of the uniformly distributed sequences of points are included in this book. 


      Imprint Name:Springer Nature Switzerland AG
      Publisher Name:Springer Nature Switzerland AG
      Country of Publication:GB
      Publishing Date:2021-03-03

      Additional information

      Weight138 g
      Dimensions152 × 235 × 11 mm