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Advanced Technology for Smart Environment and Energy

  • Book
  • © 2023

Overview

  • Presents smart energy management in the context of energy transition
  • Provides the motivation, impacts and challenges related to this hot topic
  • Focuses on the use of techniques and tools based on artificial intelligence (AI) to solve the challenges

Part of the book series: Environmental Science and Engineering (ESE)

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About this book

This book presents smart energy management in the context of energy transition. It presents the motivation, impacts and challenges related to this hot topic. Then, it focuses on the use of techniques and tools based on artificial intelligence (AI) to solve the challenges related to this problem. A global diagram presenting the general principle of these techniques is presented. Then, these techniques are compared according to a set of criteria in order to show their advantages and disadvantages with respect to the conditions and constraints of intelligent energy management applications in the context of energy transition. Several examples are used throughout the white paper to illustrate the concepts and methods presented. 

An intelligent electrical network (smart grid—SG) includes heterogeneous and distributed electricity production, transmission, distribution and consumption components. It is the next generation of electricity network able to manage electricity demand (consumption/production/distribution) in a sustainable, reliable and economical way taking into account the penetration of renewable energies (solar, wind, etc.). Therefore, a (SG) smart grid also includes an intelligent layer that analyzes the data provided by consumers as well as that collected from the production side in order to optimize consumption and production according to weather conditions, the profile and habits of the consumer. In addition, this system can improve the use of green energy through renewable energy penetration and demand response.

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Table of contents (26 chapters)

Editors and Affiliations

  • Faculty of Sciences, Mohammed V University, Rabat, Morocco

    Jamal Mabrouki

  • Department of Computer, Faculty of Sciences and Technologies, Moulay Ismail University of Meknès, Errachidia, Morocco

    Azrour Mourade

  • Higher Education Department, Govt. Asghar Mall College Rawalpindi, Rawalpindi, Pakistan

    Azeem  Irshad 

  • Department of Computer Science and Information Technology, College of Engineering, Abu Dhabi University, Abu Dhabi, United Arab Emirates

    Shehzad Ashraf  Chaudhry

About the editors

Jamal MABROUKI received his Ph.D. in Process and Environmental Engineering at Mohammed V University in Rabat, specializing in artificial intelligence and smart automatic systems. He completed the Bachelor of Science in Physics and Chemistry with honors from Hassan II University in Casablanca, Morocco, and the engineer in environment and smart system from Ibn Zohr University. His research is on intelligent monitoring, control and management systems and more particularly on sensing and supervising remote intoxication systems, smart self-supervised systems and recurrent neural networks. He has published several papers in conferences and indexed journals, most of them related to artificial intelligent systems, Internet of Things or big data and mining. Jamal will currently work in environment, energy and smart system professor at Mohammed V University in Rabat, Faculty of Science. Jamal is scientific committee member of numerous national and international conferences. He is also a reviewerof Modeling Earth Systems and Environment; International Journal of Environmental Analytical Chemistry; International Journal of Modeling, Simulation, and Scientific Computing; The Journal of Supercomputing and Big Data Mining and Analytics.

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