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Advanced Machine Learning with Evolutionary and Metaheuristic Techniques (2024)

Contributor(s): Valadi, Jayaraman (Editor), Singh, Krishna Pratap (Editor), Ojha, Muneendra (Editor), Siarry, Patrick (Editor)

ISBN: 9789819997176

Publisher: Springer

Hardcover
$249.99
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Pub Date: April 23, 2024

Lexile Code: 0000

Target Age Group: NA to NA

Physical Info: 0.98" H x 9.33" L x 6.47" W ( 1.51 lbs) 362 pages

Series: Computational Intelligence Methods and Applications

Descriptions, Reviews, etc.

Description: This book delves into practical implementation of evolutionary and metaheuristic algorithms to advance the capacity of machine learning. The readers can gain insight into the capabilities of data-driven evolutionary optimization in materials mechanics, and optimize your learning algorithms for maximum efficiency. Or unlock the strategies behind hyperparameter optimization to enhance your transfer learning algorithms, yielding remarkable outcomes. Or embark on an illuminating journey through evolutionary techniques designed for constructing deep-learning frameworks. The book also introduces an intelligent RPL attack detection system tailored for IoT networks. Explore a promising avenue of optimization by fusing Particle Swarm Optimization with Reinforcement Learning.

It uncovers the indispensable role of metaheuristics in supervised machine learning algorithms. Ultimately, this book bridges the realms of evolutionary dynamic optimization andmachine learning, paving the way for pioneering innovations in the field.

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