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An Interdisciplinary Approach to Modern Network Security presents
the latest methodologies and trends in detecting and preventing
network threats. Investigating the potential of current and
emerging security technologies, this publication is an
all-inclusive reference source for academicians, researchers,
students, professionals, practitioners, network analysts and
technology specialists interested in the simulation and application
of computer network protection. It presents theoretical frameworks
and the latest research findings in network security technologies,
while analyzing malicious threats which can compromise network
integrity. It discusses the security and optimization of computer
networks for use in a variety of disciplines and fields. Touching
on such matters as mobile and VPN security, IP spoofing and
intrusion detection, this edited collection emboldens the efforts
of researchers, academics and network administrators working in
both the public and private sectors. This edited compilation
includes chapters covering topics such as attacks and
countermeasures, mobile wireless networking, intrusion detection
systems, next-generation firewalls, web security and much more.
Information and communication systems are an essential component of
our society, forcing us to become dependent on these
infrastructures. At the same time, these systems are undergoing a
convergence and interconnection process that has its benefits, but
also raises specific threats to user interests. Citizens and
organizations must feel safe when using cyberspace facilities in
order to benefit from its advantages. This book is
interdisciplinary in the sense that it covers a wide range of
topics like network security threats, attacks, tools and procedures
to mitigate the effects of malware and common network attacks,
network security architecture and deep learning methods of
intrusion detection.
Highlights the importance and applications of Swarm Intelligence
and Machine learning in Healthcare industry. Elaborates Swarm
Intelligence and Machine Learning for Cancer Detection. Focuses on
applying Swarm Intelligence and Machine Learning for Heart Disease
detection and diagnosis. Explores of the concepts of machine
learning along with swarm intelligence techniques, along with
recent research developments in healthcare sectors. Investigates
how healthcare companies can leverage the tapestry of big data to
discover new business values. Provides a strong foundation for
Diabetic Retinopathy detection using Swarm and Evolutionary
algorithms.
The bright future of green IoT will change our tomorrow environment
to become healthier and green, with very high quality of service
that is socially, environmentally, and economically sustainable.
This book covers the most recent advances in IoT, it discusses
Smart City implementation, and offers both quantitative and
qualitative research. It focuses on greening things such as green
communication and networking, green design and implementations,
green IoT services and applications, energy saving strategies,
integrated RFIDs and sensor networks, mobility and network
management, the cooperation of homogeneous and heterogeneous
networks, smart objects, and green localization. This book with its
wide range of related topics in IoT and Smart City, will be useful
for graduate students, researchers, academicians, institutions, and
professionals that are interested in exploring the areas of IoT and
Smart City.
Machine Learning for Healthcare: Handling and Managing Data
provides in-depth information about handling and managing
healthcare data through machine learning methods. This book
expresses the long-standing challenges in healthcare informatics
and provides rational explanations of how to deal with them.
Machine Learning for Healthcare: Handling and Managing Data
provides techniques on how to apply machine learning within your
organization and evaluate the efficacy, suitability, and efficiency
of machine learning applications. These are illustrated in a case
study which examines how chronic disease is being redefined through
patient-led data learning and the Internet of Things. This text
offers a guided tour of machine learning algorithms, architecture
design, and applications of learning in healthcare. Readers will
discover the ethical implications of machine learning in healthcare
and the future of machine learning in population and patient health
optimization. This book can also help assist in the creation of a
machine learning model, performance evaluation, and the
operationalization of its outcomes within organizations. It may
appeal to computer science/information technology professionals and
researchers working in the area of machine learning, and is
especially applicable to the healthcare sector. The features of
this book include: A unique and complete focus on applications of
machine learning in the healthcare sector. An examination of how
data analysis can be done using healthcare data and bioinformatics.
An investigation of how healthcare companies can leverage the
tapestry of big data to discover new business values. An
exploration of the concepts of machine learning, along with recent
research developments in healthcare sectors.
IOT: Security and Privacy Paradigm covers the evolution of security
and privacy issues in the Internet of Things (IoT). It focuses on
bringing all security and privacy related technologies into one
source, so that students, researchers, and practitioners can refer
to this book for easy understanding of IoT security and privacy
issues. This edited book uses Security Engineering and
Privacy-by-Design principles to design a secure IoT ecosystem and
to implement cyber-security solutions. This book takes the readers
on a journey that begins with understanding the security issues in
IoT-enabled technologies and how it can be applied in various
aspects. It walks readers through engaging with security challenges
and builds a safe infrastructure for IoT devices. The book helps
readers gain an understand of security architecture through IoT and
describes the state of the art of IoT countermeasures. It also
differentiates security threats in IoT-enabled infrastructure from
traditional ad hoc or infrastructural networks, and provides a
comprehensive discussion on the security challenges and solutions
in RFID, WSNs, in IoT. This book aims to provide the concepts of
related technologies and novel findings of the researchers through
its chapter organization. The primary audience includes
specialists, researchers, graduate students, designers, experts and
engineers who are focused on research and security related issues.
Souvik Pal, PhD, has worked as Assistant Professor in Nalanda
Institute of Technology, Bhubaneswar, and JIS College of
Engineering, Kolkata (NAAC "A" Accredited College). He is the
organizing Chair and Plenary Speaker of RICE Conference in Vietnam;
and organizing co-convener of ICICIT, Tunisia. He has served in
many conferences as chair, keynote speaker, and he also chaired
international conference sessions and presented session talks
internationally. His research area includes Cloud Computing, Big
Data, Wireless Sensor Network (WSN), Internet of Things, and Data
Analytics. Vicente Garcia-Diaz, PhD, is an Associate Professor in
the Department of Computer Science at the University of Oviedo
(Languages and Computer Systems area). He is also the editor of
several special issues in prestigious journals such as Scientific
Programming and International Journal of Interactive Multimedia and
Artificial Intelligence. His research interests include eLearning,
machine learning and the use of domain specific languages in
different areas. Dac-Nhuong Le, PhD, is Deputy-Head of Faculty of
Information Technology, and Vice-Director of Information Technology
Apply and Foreign Language Training Center, Haiphong University,
Vietnam. His area of research includes: evaluation computing and
approximate algorithms, network communication, security and
vulnerability, network performance analysis and simulation, cloud
computing, IoT and image processing in biomedical. Presently, he is
serving on the editorial board of several international journals
and has authored nine computer science books published by Springer,
Wiley, CRC Press, Lambert Publication, and Scholar Press.
A major use of practical predictive analytics in medicine has been
in the diagnosis of current diseases, particularly through medical
imaging. Now there is sufficient improvement in AI, IoT and data
analytics to deal with real time problems with an increased focus
on early prediction using machine learning and deep learning
algorithms. With the power of artificial intelligence alongside the
internet of 'medical' things, these algorithms can input the
characteristics/data of their patients and get predictions of
future diagnoses, classifications, treatment and costs. Evolving
Predictive Analytics in Healthcare: New AI techniques for real-time
interventions discusses deep learning algorithms in medical
diagnosis, including applications such as Covid-19 detection,
dementia detection, and predicting chemotherapy outcomes on breast
cancer tumours. Smart healthcare monitoring frameworks using IoT
with big data analytics are explored and the latest trends in
predictive technology for solving real-time health care problems
are examined. By using real-time data inputs to build predictive
models, this new technology can literally 'see' your future health
and allow clinicians to intervene as needed. This book is suitable
reading for researchers interested in healthcare technology, big
data analytics, and artificial intelligence.
IOT: Security and Privacy Paradigm covers the evolution of security
and privacy issues in the Internet of Things (IoT). It focuses on
bringing all security and privacy related technologies into one
source, so that students, researchers, and practitioners can refer
to this book for easy understanding of IoT security and privacy
issues. This edited book uses Security Engineering and
Privacy-by-Design principles to design a secure IoT ecosystem and
to implement cyber-security solutions. This book takes the readers
on a journey that begins with understanding the security issues in
IoT-enabled technologies and how it can be applied in various
aspects. It walks readers through engaging with security challenges
and builds a safe infrastructure for IoT devices. The book helps
readers gain an understand of security architecture through IoT and
describes the state of the art of IoT countermeasures. It also
differentiates security threats in IoT-enabled infrastructure from
traditional ad hoc or infrastructural networks, and provides a
comprehensive discussion on the security challenges and solutions
in RFID, WSNs, in IoT. This book aims to provide the concepts of
related technologies and novel findings of the researchers through
its chapter organization. The primary audience includes
specialists, researchers, graduate students, designers, experts and
engineers who are focused on research and security related issues.
Souvik Pal, PhD, has worked as Assistant Professor in Nalanda
Institute of Technology, Bhubaneswar, and JIS College of
Engineering, Kolkata (NAAC "A" Accredited College). He is the
organizing Chair and Plenary Speaker of RICE Conference in Vietnam;
and organizing co-convener of ICICIT, Tunisia. He has served in
many conferences as chair, keynote speaker, and he also chaired
international conference sessions and presented session talks
internationally. His research area includes Cloud Computing, Big
Data, Wireless Sensor Network (WSN), Internet of Things, and Data
Analytics. Vicente Garcia-Diaz, PhD, is an Associate Professor in
the Department of Computer Science at the University of Oviedo
(Languages and Computer Systems area). He is also the editor of
several special issues in prestigious journals such as Scientific
Programming and International Journal of Interactive Multimedia and
Artificial Intelligence. His research interests include eLearning,
machine learning and the use of domain specific languages in
different areas. Dac-Nhuong Le, PhD, is Deputy-Head of Faculty of
Information Technology, and Vice-Director of Information Technology
Apply and Foreign Language Training Center, Haiphong University,
Vietnam. His area of research includes: evaluation computing and
approximate algorithms, network communication, security and
vulnerability, network performance analysis and simulation, cloud
computing, IoT and image processing in biomedical. Presently, he is
serving on the editorial board of several international journals
and has authored nine computer science books published by Springer,
Wiley, CRC Press, Lambert Publication, and Scholar Press.
The book is a collection of high-quality peer-reviewed research
papers presented at International Conference on Information System
Design and Intelligent Applications (INDIA 2017) held at Duy Tan
University, Da Nang, Vietnam during 15-17 June 2017. The book
covers a wide range of topics of computer science and information
technology discipline ranging from image processing, database
application, data mining, grid and cloud computing, bioinformatics
and many others. The various intelligent tools like swarm
intelligence, artificial intelligence, evolutionary algorithms,
bio-inspired algorithms have been well applied in different domains
for solving various challenging problems.
CLOUD COMPUTING SOLUTIONS The main purpose of this book is to
include all the cloud-related technologies in a single platform, so
that researchers, academicians, postgraduate students, and those in
the industry can easily understand the cloud-based ecosystems. This
book discusses the evolution of cloud computing through grid
computing and cluster computing. It will help researchers and
practitioners to understand grid and distributed computing cloud
infrastructure, virtual machines, virtualization, live migration,
scheduling techniques, auditing concept, security and privacy,
business models, and case studies through the state-of-the-art
cloud computing countermeasures. This book covers the spectrum of
cloud computing-related technologies and the wide-ranging contents
will differentiate this book from others. The topics treated in the
book include: The evolution of cloud computing from grid computing,
cluster computing, and distributed systems; Covers cloud computing
and virtualization environments; Discusses live migration,
database, auditing, and applications as part of the materials
related to cloud computing; Provides concepts of cloud storage,
cloud strategy planning, and management, cloud security, and
privacy issues; Explains complex concepts clearly and covers
information for advanced users and beginners. Audience The primary
audience for the book includes IT, computer science specialists,
researchers, graduate students, designers, experts, and engineers
who are occupied with research.
This book provides comprehensive details of all Swarm Intelligence
based Techniques available till date in a comprehensive manner
along with their mathematical proofs. It will act as a foundation
for authors, researchers and industry professionals. This monograph
will present the latest state of the art research being done on
varied Intelligent Technologies like sensor networks, machine
learning, optical fiber communications, digital signal processing,
image processing and many more.
The book contains select proceedings of the 3rd International
Conference on Data, Engineering, and Applications (IDEA 2021). It
includes papers from experts in industry and academia that address
state-of-the-art research in the areas of big data, data mining,
machine learning, data science, and their associated learning
systems and applications. This book will be a valuable reference
guide for all graduate students, researchers, and scientists
interested in exploring the potential of big data applications.
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