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The future policing ought to cover the identification of new
assaults, the disclosure of new ill-disposed patterns and forecast
of any future vindictive patters from the accessible authentic
information. Such keen information will bring about building clever
advanced proof handling frameworks that will help cops investigate
violations. Artificial Intelligence for Cyber Defence and Smart
Policing will describe the best way of practising artificial
intelligence for cyber defence and smart policing. Key Features:
• Combines both AI for cyber defence and smart policing in one
place • Covers novel strategies in future to help cybercrime
examinations and police. • Discusses different AI models to
fabricate more exact techniques • Elaborates on problematization
and international issues. • Includes case studies and real-life
examples. This book is primarily aimed at graduates, researchers
and IT professionals. Business executives will also find this book
helpful. S Vijayalakshmi is currently working as an Associate
Professor in the Data Science Department in CHRIST (Deemed to be
University), Pune, Lavasa Campus. She is having many academic
portfolios associated with the current position. Her research area
is on Image Processing and IoT. P Durgadevi is working as an
Assistant Professor in the department of Computer Science and
Engineering, GITAM University, Bengaluru. Her research interest is
in medical image processing, Machine Learning and IoT. Lija Jacob
is an Assistant Professor at the Dept. of Data Science, Christ
[Deemed to be University],Pune Lavasa. She has more than 17 years
of teaching experience and 8 years of research experience. Her
research interests are Computer Vision, Machine learning, Deep
Learning, etc. Balamurugan Balusamy is currently working as
Professor in the School of Computing Sciences and Engineering at
Galgotias University, Greater Noida, India. He has published 30+
books on various technologies and visited 15 plus countries for his
technical course. He has several top-notch conferences in his
resume and has published over 150 of quality journal, conference
and book chapters combined.
AI-Powered IoT in the Energy Industry: Digital Technology and
Sustainable Energy Systems looks at opportunities to employ
cutting-edge applications of artificial intelligence (AI), the
Internet of Things (IoT), and Machine Learning (ML) in designing
and modeling energy and renewable energy systems. The book's main
objectives are to demonstrate how big data can help with energy
efficiency and demand reduction, increase the usage of renewable
energy sources, and assist in transitioning from a centralized
system to a distributed, efficient, and embedded energy system.
Contributions cover the fundamentals of the renewable energy
sector, including solar, wind, biomass, and hydrogen, as well as
building services and power generation systems. Chapters also
examine renewable energy property prediction methods and discuss AI
and IoT prediction models for biomass thermal properties. Covers
renewable energy sector fundamentals; Explains the application of
big data in distributed energy domains; Discusses AI and IoT
prediction methods and models.
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