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    Intelligent Energy Systems using the Barnacles Mating Optimizer and Evolutionary Mating Algorithm

    Foundations, Methods, and Applications

    AvMohd Herwan Sulaiman,Zuriani Mustaffa

    Häftad, Engelska, 2025

    Del i serien Advances in Intelligent Energy Systems

    1 983 kr

    Beställningsvara. Skickas inom 10-15 vardagar. Fri frakt över 249 kr.

    Beskrivning

    Intelligent Energy Systems using the Barnacles Mating Optimizer and Evolutionary Mating Algorithm: Foundations, Methods, and Applications reveals the potential of innovative optimization algorithms to support sustainability in modern energy systems. This book provides a multidisciplinary foundation for the reader, with Part I breaking down fundamentals including the challenges to be addressed in renewable energy systems and detailed methodologies including swarm-, physics-, and human-based algorithms, before introducing the Barnacles Mating Optimizer and Evolutionary Mating Algorithm themselves. Part II drills deeper into examples, case studies, and applications for energy systems, offering comparative analysis with alternative tools, and providing complimentary MATLAB code using the latest Toolbox. A sandbox for readers to learn, skill-build, and develop in, ‘Intelligent Energy Systems using BMO and EMA’ provides an indispensable guide to these cutting-edge AI tools for new and experienced readers.

    • Builds step-by-step from foundational principles to complex applications in sustainable energy systems
    • Includes case studies, tools, and complimentary MATLAB code to try out, rework, and apply to new problems
    • Guides readers through these innovative methods, as part of the ground-breaking Advances in Intelligent Energy Systems

    Produktinformation

    • Utgivningsdatum:2025-11-07
    • Mått:152 x 229 x 19 mm
    • Vikt:560 g
    • Format:Häftad
    • Språk:Engelska
    • Serie:Advances in Intelligent Energy Systems
    • Antal sidor:348
    • Förlag:Elsevier Science
    • ISBN:9780443337758

    Utforska kategorier

    • Energiteknik inom Naturvetenskap och teknik

    Mer om författaren

    Mohamed Herwan Sulaiman currently serves as an Associate Professor in the Faculty of Electrical and Electronics Engineering Technology at the Universiti Malaysia Pahang Al-Sultan Abdullah (UMPSA), Malaysia. His research interests lie in power system optimization and swarm intelligence applications to power system studies. He has authored and co-authored more than 150 technical papers in the international journals and conferences and has been invited as a Journal reviewer for several international impact journals in the field of power systems and soft computing applications and many more. Zuriani Mustaffa is a Senior Lecturer in the Faculty of Computing, Universiti Malaysia Pahang Al-Sultan Abdullah (UMPSA), Malaysia. She holds a PhD in Computer Science from the Universiti Utara Malaysia. Her research interests include Computational Intelligence (CI) algorithm and machine learning techniques. Her research area focuses on hybrid algorithms which involves optimization and machine learning techniques with particular attention for time series predictive analysis

    Innehållsförteckning

    • Part I: Modern Energy System Challenges: Fundamental Methodologies, Opportunities, and Solutions1. Challenges of renewable energy systems and the artificial intelligence opportunity2. Fundamentals of swarm-based algorithms3. Fundamentals of evolution-based algorithms4. Fundamentals of physics- and human-based algorithms5. Fundamentals of the Barnacles Mating Optimizer6. The Evolutionary Mating Algorithm: principles and applications7. Deep learning approaches7.i. Supervised learning with feedforward neural networks (FFNN)7.ii. Other deep learning familiesPart II: Applications for Renewable Energy Systems8. State of charge (SOC) estimation in electric vehicles using deep learning feedforward neural networks9. Hybrid of metaheuristic learning with deep learning in battery management of electric vehicles10. Optimal reactive power dispatch using the Barnacle Mating Optimizer11. Optimal power flow solutions enhanced by the Evolutionary Mating Algorithm12. Renewable energy power forecasting, enhanced by hybrid Barnacle Mating Optimizer-Evolutionary Mating Algorithm deep learning12.i. Solar power12.ii. Wind power