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Data-Driven Mining, Learning and Analytics for Secured Smart Cities (eBook)

Trends and Advances
eBook Download: PDF
2021 | 1st ed. 2021
X, 383 Seiten
Springer International Publishing (Verlag)
978-3-030-72139-8 (ISBN)

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Data-Driven Mining, Learning and Analytics for Secured Smart Cities -
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This book provides information on data-driven infrastructure design, analytical approaches, and technological solutions with case studies for smart cities. This book aims to attract works on multidisciplinary research spanning across the computer science and engineering, environmental studies, services, urban planning and development, social sciences and industrial engineering on technologies, case studies, novel approaches, and visionary ideas related to data-driven innovative solutions and big data-powered applications to cope with the real world challenges for building smart cities.


Chinmay Chakraborty is working as an Assistant Professor (Sr.) in the Dept. of Electronics and Communication Engineering, Birla Institute of Technology, Mesra, India. His main research interests include the Internet of Medical Things, Wireless Body Area Network, Wireless Networks, Telemedicine, m-Health/e-health, and Medical Imaging. Dr. Chakraborty has published 75 papers at reputed international journals, conferences, book chapters, and books. He is an Editorial Board Member in the different Journals and Conferences. He is serving as a Guest Editor of MDPI, Wiley, CRC, Springer, IGI, Inderscience, TechScience, BenthamScience Journals. Dr. Chakraborty is co-editing Eight books on Smart IoMT, Healthcare Technology, and Sensor Data Analytics with CRC Press, IET, Pan Stanford, and Springer. He received a Best Session Runner-up Award, Young Research Excellence Award, Global Peer Review Award, Young Faculty Award, and Outstanding Researcher Award.

Jerry Chun-Wei Lin received his Ph.D. from the Department of Computer Science and Information Engineering, National Cheng Kung University, Tainan, Taiwan, in 2010. He is currently a full Professor with the Department of Computer Science, Electrical Engineering and Mathematical Sciences, Western Norway University of Applied Sciences, Bergen, Norway. He has published more than 400 research articles in refereed journals, 11 edited books, as well as 33 patents (held and filed, 3 US patents). His research interests include data mining, soft computing, artificial intelligence and machine learning, and privacy-preserving and security technologies. He is the Editor-in-Chief of the International Journal of Data Science and Pattern Recognition, the Guest Editor/Associate Editor for several IEEE/ACM journals such as IEEE TFS, IEEE TII, ACM TMIS, ACM TOIT, and IEEE Access. He has recognized as the most cited Chinese Researcher respectively in 2018 and 2019 by Scopus/Elsevier. He is the Fellow of IET (FIET), senior member for both IEEE and ACM.


Mamoun Alazab is an Associate Professor at the College of Engineering, IT and Environment at Charles Darwin University, Australia. He received his PhD degree in Computer Science from the Federation University of Australia, School of Science, Information Technology and Engineering. He is a cyber security researcher and practitioner with industry and academic experience. Dr Alazab's research is multidisciplinary that focuses on cyber security and digital forensics of computer systems including current and emerging issues in the cyber environment like cyber-physical systems and internet of things, by taking into consideration the unique challenges present in these environments, with a focus on cybercrime detection and prevention. He looks into the intersection use of Artificial Intelligence and Machine Learning as essential tools for cybersecurity, for example, detecting attacks, analyzing malicious code or uncovering vulnerabilities in software and hardware. 

 

Erscheint lt. Verlag 28.4.2021
Reihe/Serie Advanced Sciences and Technologies for Security Applications
Advanced Sciences and Technologies for Security Applications
Zusatzinfo X, 383 p. 93 illus., 74 illus. in color.
Sprache englisch
Themenwelt Mathematik / Informatik Informatik Datenbanken
Mathematik / Informatik Informatik Netzwerke
Informatik Theorie / Studium Künstliche Intelligenz / Robotik
Sozialwissenschaften Politik / Verwaltung Staat / Verwaltung
Technik Bauwesen
Schlagworte Artificial Intelligence • Big Data • Blockchain for smart cities • Computer Engineering • Cyber Physical Systems • data analytics • Intelligent Urbanism • internet of things • machine learning • Security and Privacy • technological innovations • Ubiquitous Computing in Digital Cities
ISBN-10 3-030-72139-6 / 3030721396
ISBN-13 978-3-030-72139-8 / 9783030721398
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