Machine Learning for Evolution Strategies: 20 (Studies in Big Data)
Language: English
Published by Springer, 2018
- Softcover
- New

Seller: Biblios, frankfurt am main, hessen, GermanyBiblios
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Condition: New
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PRINT ON DEMAND pp. IX, 124 38 illus. in color.
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- Title
- Machine Learning for Evolution Strategies: 20 (Studies in Big Data)
- Author
- Kramer, Oliver
- Publisher
- Springer
- Publication year
- 2018
- Condition
- New
- Binding
- Soft cover
- Language
- English
- ISBN 10
- 3319815008
- ISBN 13
- 9783319815008
- Series
- Book 14 of 95: Studies in Big Data
This book introduces numerous algorithmic hybridizations between both worlds that show how machine learning can improve and support evolution strategies. The set of methods comprises covariance matrix estimation, meta-modeling of fitness and constraint functions, dimensionality reduction for search and visualization of high-dimensional optimization processes, and clustering-based niching. After giving an introduction to evolution strategies and machine learning, the book builds the bridge between both worlds with an algorithmic and experimental perspective. Experiments mostly employ a (1+1)-ES and are implemented in Python using the machine learning library scikit-learn. The examples are conducted on typical benchmark problems illustrating algorithmic concepts and their experimental behavior. The book closes with a discussion of related lines of research.
"Synopsis" may belong to another edition of this title.
From the Back Cover
This book introduces numerous algorithmic hybridizations between both worlds that show how machine learning can improve and support evolution strategies. The set of methods comprises covariance matrix estimation, meta-modeling of fitness and constraint functions, dimensionality reduction for search and visualization of high-dimensional optimization processes, and clustering-based niching. After giving an introduction to evolution strategies and machine learning, the book builds the bridge between both worlds with an algorithmic and experimental perspective. Experiments mostly employ a (1+1)-ES and are implemented in Python using the machine learning library scikit-learn. The examples are conducted on typical benchmark problems illustrating algorithmic concepts and their experimental behavior. The book closes with a discussion of related lines of research.
"About the title" may belong to another edition of this title.
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