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Derivative-free hybrid methods in global optimization and applications

Derivative-free hybrid methods in global optimization and applications

von Jiapu Zhang
Softcover - 9783845435800
79,00 €
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Beschreibung

In recent years large-scale global optimization (GO) problems have drawn considerable attention. These problems have many applications, in particular in data mining, computational biology, computational chemistry, and medicine.Numerical methods for GO are often very time consuming and could not be applied for high-dimensional non-convex and/or non-smooth optimization problems. This is the reason of this book why to develop and study new algorithms for solving large-scale GO problems.The existing local/global optimization techniques effectively solve many problems when the number of variables is not very large and, as a rule, fail to solve many large-scale problems. The study of new algorithms which allow one to solve large-scale GO problem is very important. One technique is to use hybrid of global and local/global search algorithms. When the gradient (or its generalizations) of theobjective functions and the constraint functions are very complex in form or they are not known, the derivative-free methods benefit the large-scale GO problems. This book presents several derivative-free hybrid methods for large-scale GOproblems, & applied to data mining, biochemstry, biomedicine.

in December 2010

Details

Verlag LAP LAMBERT Academic Publishing
Ersterscheinung 18. August 2011
Maße 22 cm x 15 cm x 1.6 cm
Gewicht 387 Gramm
Format Softcover
ISBN-13 9783845435800
Seiten 248