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Black Box Optimization, Machine Learning, and No-Free Lunch Theorems

Edited by Panos M. Pardalos (), Varvara Rasskazova () and Michael N. Vrahatis ()

in Springer Optimization and Its Applications from Springer, currently edited by Pardalos, Panos, Thai, My T. and Du, Ding-Zhu

Date: 2021
ISBN: 978-3-030-66515-9
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Chapters in this book:

Learning Enabled Constrained Black-Box Optimization
F. Archetti, A. Candelieri, B. G. Galuzzi and R. Perego
Black-Box Optimization: Methods and Applications
Ishan Bajaj, Akhil Arora and M. M. Faruque Hasan
Tuning Algorithms for Stochastic Black-Box Optimization: State of the Art and Future Perspectives
Thomas Bartz-Beielstein, Frederik Rehbach and Margarita Rebolledo
Quality-Diversity Optimization: A Novel Branch of Stochastic Optimization
Konstantinos Chatzilygeroudis, Antoine Cully, Vassilis Vassiliades and Jean-Baptiste Mouret
Multi-Objective Evolutionary Algorithms: Past, Present, and Future
Carlos A. Coello Coello, Silvia González Brambila, Josué Figueroa Gamboa and Ma. Guadalupe Castillo Tapia
Black-Box and Data-Driven Computation
Rong Jin, Weili Wu, My T. Thai and Ding-Zhu Du
Mathematically Rigorous Global Optimization and Fuzzy Optimization
Ralph Baker Kearfott
Optimization Under Uncertainty Explains Empirical Success of Deep Learning Heuristics
Vladik Kreinovich and Olga Kosheleva
Variable Neighborhood Programming as a Tool of Machine Learning
Nenad Mladenovic, Bassem Jarboui, Souhir Elleuch, Rustam Mussabayev and Olga Rusetskaya
Non-lattice Covering and Quantization of High Dimensional Sets
Jack Noonan and Anatoly Zhigljavsky
Finding Effective SAT Partitionings Via Black-Box Optimization
Alexander Semenov, Oleg Zaikin and Stepan Kochemazov
The No Free Lunch Theorem: What Are its Main Implications for the Optimization Practice?
Loris Serafino
What Is Important About the No Free Lunch Theorems?
David H. Wolpert

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Persistent link: https://EconPapers.repec.org/RePEc:spr:spopap:978-3-030-66515-9

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DOI: 10.1007/978-3-030-66515-9

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