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Chaotic Meta-heuristic Algorithms for Optimal Design of Structures: Studies in Computational Intelligence, cartea 1129

Autor Ali Kaveh, Hossein Yousefpoor
en Limba Engleză Hardback – 30 ian 2024
In this book, various chaos maps are embedded in eleven efficient and well-known metaheuristics and a significant improvement in the optimization results is achieved. The two basic steps of metaheuristic algorithms consist of exploration and exploitation. The imbalance between these stages causes serious problems for metaheuristic algorithms, which are immature convergence and stopping in local optima. Chaos maps with chaotic jumps can save algorithms from being trapped in local optima and lead to convergence toward global optima. Embedding these maps in the exploration phase, exploitation phase, or both simultaneously corresponds to three efficient and useful scenarios. By creating competition between different modes and increasing diversity in the search space and creating sudden jumps in the search phase, improvements are achieved for chaotic algorithms. Four Chaotic Algorithms, including Chaotic Cyclical Parthenogenesis Algorithm, Chaotic Water Evaporation Optimization, Chaotic Tug-of-War Optimization, and Chaotic Thermal Exchange Optimization are developed.

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Specificații

ISBN-13: 9783031489174
ISBN-10: 3031489179
Pagini: 342
Ilustrații: XII, 342 p. 153 illus., 149 illus. in color.
Dimensiuni: 155 x 235 mm
Greutate: 0.79 kg
Ediția:1st ed. 2024
Editura: Springer Nature Switzerland
Colecția Springer
Seria Studies in Computational Intelligence

Locul publicării:Cham, Switzerland

Cuprins

Introduction.- Chaotic Maps and Meta-Heuristic Algorithms.- Chaotic Cyclical Parthenogenesis Algorithm.- Chaotic Teaching Learning-Based Optimization.- Chaotic Biogeography Based Optimization.- Chaotic Differential Evolution.- Chaotic Water Evaporation Optimization.- Chaotic Artificial Bees Colony.- Chaotic Imperialist Competitive Algorithm.


Textul de pe ultima copertă

In this book, various chaos maps are embedded in eleven efficient and well-known metaheuristics and a significant improvement in the optimization results is achieved. The two basic steps of metaheuristic algorithms consist of exploration and exploitation. The imbalance between these stages causes serious problems for metaheuristic algorithms, which are immature convergence and stopping in local optima. Chaos maps with chaotic jumps can save algorithms from being trapped in local optima and lead to convergence toward global optima. Embedding these maps in the exploration phase, exploitation phase, or both simultaneously corresponds to three efficient and useful scenarios. By creating competition between different modes and increasing diversity in the search space and creating sudden jumps in the search phase, improvements are achieved for chaotic algorithms. Four Chaotic Algorithms, including Chaotic Cyclical Parthenogenesis Algorithm, Chaotic Water Evaporation Optimization, Chaotic Tug-of-War Optimization, and Chaotic Thermal Exchange Optimization are developed.

Caracteristici

Demonstrates how to increase the speed of operation in problems with frequency limitation, nonlinear, and non-convex Introduces the best chaos function of each algorithm Presents formation of operator models for chaos functions and expands on other metaheuristics algorithms