Constraint Handling in Cohort Intelligence Algorithm: Advances in Metaheuristics
Autor Ishaan R. Kale, Anand J. Kulkarnien Limba Engleză Hardback – 27 dec 2021
Socio-inspired is one of the subdomains of bio-inspired algorithms, and Cohort Intelligence (CI) models the social tendencies of learning candidates with an inherent goal to achieve the best possible position. In this book, CI is investigated by solving ten discrete variable truss structural problems, eleven mixed variable design engineering problems, seventeen linear and nonlinear constrained test problems and two real-world applications from manufacturing domain. Static Penalty Function (SPF) is also adopted to handle the linear and nonlinear constraints, and limitations in CI and SPF approaches are examined.
Constraint Handling in Cohort Intelligence Algorithm is a valuable reference to practitioners working in the industry as well as to students and researchers in the area of optimization methods.
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Specificații
ISBN-13: 9781032150758
ISBN-10: 1032150750
Pagini: 206
Ilustrații: 64 Tables, black and white; 75 Line drawings, black and white; 75 Illustrations, black and white; 64 Tables, black and white; 75 Line drawings, black and white; 75 Illustrations, black and white
Dimensiuni: 156 x 234 x 13 mm
Greutate: 0.42 kg
Ediția:1
Editura: CRC Press
Colecția CRC Press
Seria Advances in Metaheuristics
ISBN-10: 1032150750
Pagini: 206
Ilustrații: 64 Tables, black and white; 75 Line drawings, black and white; 75 Illustrations, black and white; 64 Tables, black and white; 75 Line drawings, black and white; 75 Illustrations, black and white
Dimensiuni: 156 x 234 x 13 mm
Greutate: 0.42 kg
Ediția:1
Editura: CRC Press
Colecția CRC Press
Seria Advances in Metaheuristics
Public țintă
Postgraduate, Professional, and Undergraduate AdvancedCuprins
Chapter 1: Introduction to Metaheuristic Algorithms
Chapter 2: Literature Survey on Nature Inspired Optimisation Methodologies and Constraint Handling
Chapter 3: Cohort Intelligence (CI) Using the Static Penalty Function (SPF) Approach
Chapter 4: Constraint Handling Using the Self-Adaptive Penalty Function (SAPF) Approach
Chapter 5: Hybridization of Cohort Intelligence with Colliding Bodies Optimisation
Chapter 6: Validation of CI-SPF, CI-SAPF and CI-SAPF-CBO for Solving Discrete/Integer and Mixed Variable Problems
Chapter 7: Solution to Real-World Applications
Chapter 8: Conclusions and Recommendations
Appendix: Problem Statements for the Truss Structure, Design Engineering, Linear and Nonlinear Programming and Manufacturing Problems
Index
Chapter 2: Literature Survey on Nature Inspired Optimisation Methodologies and Constraint Handling
Chapter 3: Cohort Intelligence (CI) Using the Static Penalty Function (SPF) Approach
Chapter 4: Constraint Handling Using the Self-Adaptive Penalty Function (SAPF) Approach
Chapter 5: Hybridization of Cohort Intelligence with Colliding Bodies Optimisation
Chapter 6: Validation of CI-SPF, CI-SAPF and CI-SAPF-CBO for Solving Discrete/Integer and Mixed Variable Problems
Chapter 7: Solution to Real-World Applications
Chapter 8: Conclusions and Recommendations
Appendix: Problem Statements for the Truss Structure, Design Engineering, Linear and Nonlinear Programming and Manufacturing Problems
Index
Notă biografică
Ishaan R. Kale is a researcher for the Optimization and Agent Technology Research (OAT Research) Lab.
Anand J. Kulkarni is an Associate Professor at the Institute of Artificial Intelligence, MIT World Peace University, India.
Anand J. Kulkarni is an Associate Professor at the Institute of Artificial Intelligence, MIT World Peace University, India.
Descriere
This is a valuable reference to practitioners, students and researchers in the area of optimization methods. CI is investigated by solving discrete variable truss structural problems, mixed variable design engineering problems, linear and nonlinear constrained test problems and real-world applications from the manufacturing domain.