Generalized Convexity and Vector Optimization

Generalized Convexity and Vector Optimization

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2010 · Английский · Мягкая обложка · 2 editions
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Описание

This work delves into the intricate fields of generalized convexity and vector optimization, examining their unique properties and applications in nonconvex optimization. The authors, Shouyang Wang, Shashi K. Mishra, and Kin Keung Lai, present a comprehensive exploration of these concepts, offering theoretical insights while addressing practical implications in optimization problems. Through clear explanations and rigorous analyses, the text aims to bridge the gap between abstract mathematical theory and real-world optimization challenges.

The book not only emphasizes the mathematical foundations of convexity but also extends its discussion to the complexities of vector optimization in nonconvex settings. With a blend of theory and practical examples, the authors illustrate how these concepts can be applied to various domains, thereby enriching the understanding of optimization in modern contexts. It serves as a valuable resource for researchers and practitioners looking to deepen their knowledge in ever-evolving optimization landscapes.

Детали книги

Формат Мягкая обложка
Страницы 304 страниц
Язык Английский
Опубликовано Nov 23, 2010
Издатель Springer
Издание Softcover reprint of hardcover 1st ed. 2009
Издания 2 editions
ISBN-10 3642099300
ISBN-13 9783642099304
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