Archiving Strategies for Evolutionary Multi-objective Optimization Algorithms

Archiving Strategies for Evolutionary Multi-objective Optimization Algorithms

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2022 · Inglese · Brossura · 2 editions
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Descrizione

This work offers a comprehensive exploration of innovative archiving strategies tailored for evolutionary multi-objective optimization algorithms. The authors, Oliver Schütze and Carlos Hernandez, delve into various methodologies that support the efficiency and effectiveness of decision-making processes in complex optimization landscapes.

Through detailed analyses and case studies, the book provides valuable insights into how these strategies enhance the performance of optimization algorithms, addressing key challenges faced in the field. Readers will find practical applications and theoretical discussions that underscore the significance of robust archiving techniques in achieving superior outcomes in multi-objective optimization tasks.

Dettagli del libro

Formato Brossura
Pagine 248 pagine
Lingua Inglese
Pubblicato Jan 6, 2022
Editore Springer
Edizioni 2 editions
ISBN-10 3030637751
ISBN-13 9783030637750
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