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Wireless Sensor Networks and the Internet of Things: Future
Directions and Applications explores a wide range of important and
real-time issues and applications in this ever-advancing field.
Different types of WSN and IoT technologies are discussed in order
to provide a strong framework of reference, and the volume places
an emphasis on solutions to the challenges of protection,
conservation, evaluation, and implementation of WSN and IoT that
lead to low-cost products, energy savings, low carbon usage, higher
quality, and global competitiveness. The volume is divided into
four sections that cover: Wireless sensor networks and their
relevant applications Smart monitoring and control systems with the
Internet of Things Attacks, threats, vulnerabilities, and defensive
measures for smart systems Research challenges and opportunities
This collection of chapters on an important and diverse range of
issues presents case studies and applications of cutting-edge
technologies of WSN and IoT that will be valuable for academic
communities in computer science, information technology, and
electronics, including cyber security, monitoring, and data
collection. The informative material presented here can be applied
to many sectors, including agriculture, energy and power, resource
management, biomedical and health care, business management, and
others.
Understand the introductory concepts and design principles of
algorithms and their complexities. Demonstrate the programming
implementations of all the algorithms using C-Language. Be an
excellent handbook on algorithms with self-explanatory chapters
enriched with problems and solutions.
Wireless Sensor Networks and the Internet of Things: Future
Directions and Applications explores a wide range of important and
real-time issues and applications in this ever-advancing field.
Different types of WSN and IoT technologies are discussed in order
to provide a strong framework of reference, and the volume places
an emphasis on solutions to the challenges of protection,
conservation, evaluation, and implementation of WSN and IoT that
lead to low-cost products, energy savings, low carbon usage, higher
quality, and global competitiveness. The volume is divided into
four sections that cover: Wireless sensor networks and their
relevant applications Smart monitoring and control systems with the
Internet of Things Attacks, threats, vulnerabilities, and defensive
measures for smart systems Research challenges and opportunities
This collection of chapters on an important and diverse range of
issues presents case studies and applications of cutting-edge
technologies of WSN and IoT that will be valuable for academic
communities in computer science, information technology, and
electronics, including cyber security, monitoring, and data
collection. The informative material presented here can be applied
to many sectors, including agriculture, energy and power, resource
management, biomedical and health care, business management, and
others.
The book examines the role of artificial intelligence during the
COVID-19 pandemic, including its application in i) early warnings
and alerts, ii) tracking and prediction, iii) data dashboards, iv)
diagnosis and prognosis, v) treatments, and cures, and vi) social
control. It explores the use of artificial intelligence in the
context of population screening and assessing infection risks, and
presents mathematical models for epidemic prediction of COVID-19.
Furthermore, the book discusses artificial intelligence-mediated
diagnosis, and how machine learning can help in the development of
drugs to treat the disease. Lastly, it analyzes various artificial
intelligence-based models to improve the critical care of COVID-19
patients.
Digital forensics has recently gained a notable development and
become the most demanding area in today's information security
requirement. This book investigates the areas of digital forensics,
digital investigation and data analysis procedures as they apply to
computer fraud and cybercrime, with the main objective of
describing a variety of digital crimes and retrieving potential
digital evidence. Big Data Analytics and Computing for Digital
Forensic Investigations gives a contemporary view on the problems
of information security. It presents the idea that protective
mechanisms and software must be integrated along with forensic
capabilities into existing forensic software using big data
computing tools and techniques. Features Describes trends of
digital forensics served for big data and the challenges of
evidence acquisition Enables digital forensic investigators and law
enforcement agencies to enhance their digital investigation
capabilities with the application of data science analytics,
algorithms and fusion technique This book is focused on helping
professionals as well as researchers to get ready with
next-generation security systems to mount the rising challenges of
computer fraud and cybercrimes as well as with digital forensic
investigations. Dr Suneeta Satpathy has more than ten years of
teaching experience in different subjects of the Computer Science
and Engineering discipline. She is currently working as an
associate professor in the Department of Computer Science and
Engineering, College of Bhubaneswar, affiliated with Biju Patnaik
University and Technology, Odisha. Her research interests include
computer forensics, cybersecurity, data fusion, data mining, big
data analysis and decision mining. Dr Sachi Nandan Mohanty is an
associate professor in the Department of Computer Science and
Engineering at ICFAI Tech, ICFAI Foundation for Higher Education,
Hyderabad, India. His research interests include data mining, big
data analysis, cognitive science, fuzzy decision-making,
brain-computer interface, cognition and computational intelligence.
This book offers a holistic approach to the Internet of Things
(IoT) model, covering both the technologies and their applications,
focusing on uniquely identifiable objects and their virtual
representations in an Internet-like structure. The authors add to
the rapid growth in research on IoT communications and networks,
confirming the scalability and broad reach of the core concepts.
The book is filled with examples of innovative applications and
real-world case studies. The authors also address the business,
social, and legal aspects of the Internet of Things and explore the
critical topics of security and privacy and their challenges for
both individuals and organizations. The contributions are from
international experts in academia, industry, and research.
The book examines the role of artificial intelligence during the
COVID-19 pandemic, including its application in i) early warnings
and alerts, ii) tracking and prediction, iii) data dashboards, iv)
diagnosis and prognosis, v) treatments, and cures, and vi) social
control. It explores the use of artificial intelligence in the
context of population screening and assessing infection risks, and
presents mathematical models for epidemic prediction of COVID-19.
Furthermore, the book discusses artificial intelligence-mediated
diagnosis, and how machine learning can help in the development of
drugs to treat the disease. Lastly, it analyzes various artificial
intelligence-based models to improve the critical care of COVID-19
patients.
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