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Examines the fundamental concepts and analysis of machine learning
algorithms Reviews the methods to apply the Machine learning
algorithm to diagnose various disease Provides innovative, new
approaches for Machine learning in medical healthcare with its
future direction Incorporates healthcare monitoring devices to
overcome the healthcare problem Discusses the research challenges
and future work directions for researchers in healthcare
In today’s era, there is a need for a system that can automate
the process of treatment for the patient if medical facilities are
out of reach. Smart healthcare can step in to make the patient more
self-dependent. 6G with its features can be taken as the future of
smart healthcare with IoT and AI. 6G-enabled IoT and AI for Smart
Healthcare: Challenges, Impact, and Analysis offers the
fundamentals, history, reality, and challenges faced in the smart
healthcare industry today. It discusses the concepts, tools, and
techniques of smart healthcare as well as the analysis used. The
book details the role that Machine Learning-based Deep Learning and
6G-enabled IoT concepts play in the automation of smart healthcare
systems. The book goes on to presents applications of smart
healthcare through various real-world examples and includes
chapters on security and privacy in the 6G-enabled and IoT
environment, as well as research on the future prospects of the
smart healthcare industry. This book: Offers the fundamentals,
history, reality, and the challenges faced in the smart healthcare
industry Discusses the concepts, tools, and techniques of smart
healthcare as well as the analysis used Details the role that
Machine Learning-based Deep Learning and 6G enabled IoT concepts
play in the automation of smart healthcare systems Presents
applications of smart healthcare through various real-world
examples Includes topics on security and privacy in 6G enabled IoT,
as well as research and future prospectus of the smart healthcare
industry Interested readers of this book will include anyone
working in or involved in smart healthcare research which includes,
but is not limited to healthcare specialists, Computer Science
Engineers, Electronics Engineers, Systems Engineers, and
Pharmaceutical practitioners.
Since Computational Intelligence is a latest technological aspect,
the book is likely to be adopted in almost all leading
Universities. This book aims to provide state-of-art research in
the context of Computational Intelligence related with Healthcare
its applications, challenges and management and it would promote
how optimization or intelligent techniques envisage the role of
Artificial Intelligence-Machine/Deep Learning (AI-ML/DL) in
Healthcare.
Although some IoT systems are built for simple event control where
a sensor signal triggers a corresponding reaction, many events are
far more complex, requiring applications to interpret the event
using analytical techniques to initiate proper actions. Artificial
intelligence of things (AIoT) applies intelligence to the edge and
gives devices the ability to understand the data, observe the
environment around them, and decide what to do best with minimum
human intervention. With the power of AI, AIoT devices are not just
messengers feeding information to control centers. They have
evolved into intelligent machines capable of performing self-driven
analytics and acting independently. A smart environment uses
technologies such as wearable devices, IoT, and mobile internet to
dynamically access information, connect people, materials and
institutions, and then actively manages and responds to the
ecosystem's needs in an intelligent manner. In this edited book,
the authors present challenges, technologies, applications and
future trends of AI-enabled IoT (AIoT) in realizing smart and
intelligent environments, including frameworks and methodologies to
apply AIoT in monitoring devices and environments, tools and
practices most applicable to product or service development to
solve innovation problems, advanced and innovative techniques and
practical implementations to enhance future smart environment
systems as. They plan to cover a broad range of applications
including smart cities, smart transportation and smart agriculture.
This book is a valuable resource for industry and academic
researchers, scientists, engineers and advanced students in the
fields of ICTs and networking, IoT, AI and machine and deep
learning, data science, sensing, robotics, automation and smart
technologies and smart environments.
Includes innovative and new approaches for IoT in medical
healthcare monitoring with 5G along with future directions
Discusses the fundamental concepts and analysis of IoT and 5G in
smart healthcare Focuses on methods used to apply IoT in monitoring
devices for diagnosing diseases and transferring data using a 5G
network. Presents new points of security and privacy concerns with
expectations of IoT devices in 2030 where 91 billion devices will
exist with over 10 connected devices per person Provides case
studies depicting applications, best practices, as well as future
predictions of IoT in everyday life Illustrates user focused
wearable devices such as Fitbit health monitors and smartwatches
where consumers are self-managing and self-monitoring their own
health and providers are able to improve the experience of care
1) Discusses technical details of the Machine Learning tools and
techniques in the different types of cancers 2) Machine learning
and data mining in healthcare is a very important topic and hence
there would be a demand for such a book 3) As compared to other
titles, the proposed book focuses on different types of cancer
disease and their prediction strategy using machine leaning and
data mining.
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