Artificial Intelligence for Smarter Power Systems
Autor Marcelo Godoy Simõesen Limba Engleză Hardback – 13 sep 2021
Fuzzy logic uses variables that may be any real number between 0 and 1, rather than either 0 or 1. It has obvious advantages when used for optimization of alternative and renewable energy systems. The parametric fuzzy algorithm is inherently adaptive because the coefficients can be altered to accommodate requirements and data availability.
This book will focus on the use of fuzzy logic and neural networks to control power grids and adapt them to changing requirements. Chapters cover fuzzy inference, fuzzy logic-based control, feedback and feedforward neural networks, competitive and associate neural networks, and applications of fuzzy logic, deep learning and big data in power electronics and systems.
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Specificații
ISBN-13: 9781839530005
ISBN-10: 1839530006
Pagini: 274
Dimensiuni: 160 x 241 x 20 mm
Greutate: 0.59 kg
Editura: Institution of Engineering and Technology
ISBN-10: 1839530006
Pagini: 274
Dimensiuni: 160 x 241 x 20 mm
Greutate: 0.59 kg
Editura: Institution of Engineering and Technology
Notă biografică
Marcelo Godoy Simões is a Professor in Electrical Power Engineering, in Smart and Flexible Power Systems, at the University of Vaasa (Finland), in the School of Technology and Innovations, with the Electrical Engineering Department. He received a National Science Foundation (USA) CAREER Award, a very prestigious award for new faculty members in 2002. He was an US Fulbright Fellow at Aalborg University (Denmark) and worked as a visiting professor in several international institutions. He is an IEEE Fellow, published hundreds of journal papers and conference articles, and authored 12 books. He has pioneered the application of neural networks and fuzzy logic in renewable energy systems, his credential and publications are authority and relevant for advanced wind turbine control, photovoltaics, fuel cells modelling, smart-grid management and power electronics enabled power systems control for integration of renewable energy sources.