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Digital transformation in organizations optimizes the business
processes but also brings additional challenges in the form of
security threats and vulnerabilities. Cyberattacks incur financial
losses for organizations and can affect their reputations. Due to
this, cybersecurity has become critical for business enterprises.
Extensive technological adoption in businesses and the evolution of
FinTech applications require reasonable cybersecurity measures to
protect organizations from internal and external security threats.
Recent advances in the cybersecurity domain such as zero trust
architecture, application of machine learning, and quantum and
post-quantum cryptography have colossal potential to secure
technological infrastructures. Cybersecurity Issues and Challenges
for Business and FinTech Applications discusses theoretical
foundations and empirical studies of cybersecurity implications in
global digital transformation and considers cybersecurity
challenges in diverse business areas. Covering essential topics
such as artificial intelligence, social commerce, and data leakage,
this reference work is ideal for cybersecurity professionals,
business owners, managers, policymakers, researchers, scholars,
academicians, practitioners, instructors, and students.
Global supply chains are becoming more customer-centric and
sustainable thanks to next-generation logistics management
technologies. Automating logistics procedures greatly increases the
productivity and efficiency of the workflow. There is a need,
however, to create flexible and dynamic relationships among
numerous stakeholders and the transparency and traceability of the
supply chain. The digitalization of the supply chain process has
improved these relationships and transparency; however, it has also
created opportunities for cybercriminals to attack the logistics
industry. Cybersecurity Measures for Logistics Industry Framework
discusses the environment of the logistics industry in the context
of new technologies and cybersecurity measures. Covering topics
such as AI applications, inventory management, and sustainable
computing, this premier reference source is an excellent resource
for business leaders, IT managers, security experts, students and
educators of higher education, librarians, researchers, and
academicians.
The need for sustainable sources of energy has become more
prevalent in an effort to conserve natural resources, as well as
optimize the performance of wireless networks in daily life.
Renewable sources of energy also help to cut costs while still
providing a reliable power sources. Biologically-Inspired Energy
Harvesting through Wireless Sensor Technologies highlights emerging
research in the areas of sustainable energy management and
transmission technologies. Featuring technological advancements in
green technology, energy harvesting, sustainability, networking,
and autonomic computing, as well as bio-inspired algorithms and
solutions utilized in energy management, this publication is an
essential reference source for researchers, academicians, and
students interested in renewable or sustained energy in wireless
networks.
The healthcare industry is starting to adopt digital twins to
improve personalized medicine, healthcare organization performance,
and new medicine and devices. These digital twins can create useful
models based on information from wearable devices, omics, and
patient records to connect the dots across processes that span
patients, doctors, and healthcare organizations as well as drug and
device manufacturers. Digital twins are digital representations of
human physiology built on computer models. The use of digital twins
in healthcare is revolutionizing clinical processes and hospital
management by enhancing medical care with digital tracking and
advancing modelling of the human body. These tools are of great
help to researchers in studying diseases, new drugs, and medical
devices. Digital Twins and Healthcare: Trends, Techniques, and
Challenges facilitates the advancement and knowledge dissemination
in methodologies and applications of digital twins in the
healthcare and medicine fields. This book raises interest and
awareness of the uses of digital twins in healthcare in the
research community. Covering topics such as deep neural network,
edge computing, and transfer learning method, this premier
reference source is an essential resource for hospital
administrators, pharmacists, medical professionals, IT consultants,
students and educators of higher education, librarians, and
researchers.
The digital divide, caused by several factors such as poverty and
slow communication technologies, has offset the progression of many
developing countries. However, with rapid changes in technology, a
better collaboration among communities and governance based on the
latest research in ICT and technology has begun to emerge.
Employing Recent Technologies for Improved Digital Governance is an
essential reference source that provides research on recent
advances in the development, application, and impact of
technologies for the initiative of digital governance. The book has
a dual objective with the first objective being to encourage more
research in deploying recent trends in the internet for deploying a
collaborative digital governance. The second objective is to
explore new possibilities using internet of things (IoT) and
cloud/fog-based solutions for creating a collaboration between the
governance and IT infrastructure. Featuring research on topics such
as intelligent systems, social engineering, and cybersecurity, this
book is ideally designed for policymakers, government officials,
ICT specialists, researchers, academicians, industry professionals,
and students.
The recent advancements in the machine learning paradigm have
various applications, however, it has shown significant results in
the field of medical data analysis. The results are highly accurate
and are comparable to human experts. The various research has
proved the high accuracy of deep learning algorithms and has become
a standard choice for analysing medical data, especially medical
images, video, and electronic health records. Deep learning methods
applied to electronic health records are contributing to
understanding the evolution of chronic diseases and predicting the
risk of developing those diseases. Researchers in industry,
hospitals, and academia have published hundreds of scientific
contributions in this area during a pandemic. This book is an ideal
and relevant source of content for data science and healthcare
professionals who want to delve into complex deep learning
algorithms, calibrate models, and improve the predictions of the
trained model on medical imaging. Primary audiences for this book
are professionals and researchers in the fields of data science,
machine learning, deep learning, and AI. Also academicians,
healthcare professionals, or anyone who may have a keen interest in
how the machine and deep learning algorithms are helping in the
identification of solutions to medical sensor/image data analysis,
event detection, segmentation, and abnormality detection,
object/lesion classification, organ/region/landmark localization,
object/lesion detection, organ/substructure segmentation, lesion
segmentation, and medical image registration. The variety of
readers in the fields of government, consulting, healthcare
professionals, as well as the readers from all the social strata,
can also be benefited from this book to improve understanding of
the cutting-edge theory, technologies, methodologies, and
applications of deep Learning algorithms for medical care.
Software development and information systems design have a unique
relationship, but are often discussed and studied independently.
However, meticulous software development is vital for the success
of an information system. Software Development Techniques for
Constructive Information Systems Design focuses the aspects of
information systems and software development as a merging process.
This reference source pays special attention to the emerging
research, trends, and experiences in this area which is bound to
enhance the reader s understanding of the growing and ever-adapting
field. Academics, researchers, students, and working professionals
in this field will benefit from this publication s unique
perspective.
E-governance is an application of IT; holding uses for the delivery
of Government services, information exchange between Government to
public, e-business, and various. However, the aim of cybersecurity
is to provide security from cyber-attacks from the view of emerging
technology is used by hackers. Hence, it is important to provide
fast protection application software and structure. In this
scenario, the government may be focused to provide capable Internet
carefully without the risk of fraud. These days the study
deliberates about the issue of the world while technology is
helping and fruitful on each step of life like e-Governance
applications. Though, has been limited study has been done by a
previous study on protocols of cybersecurity for e-Governance.
It is also essential to study the success of technology use in some
of the advanced nations in the Asian region that promote a smarter
and well-advanced community. A smarter community in these regions
can only be materialized by adopting the latest trends in
technology to improve quality of life. Some of these regions need a
great emphasis on technology adoption for women empowerment and
safety, promoting better health with telemedicine facilities,
environment, and disaster prevention with IoT technologies, water
treatment and sanitation, and addressing food scarcity issues with
smarter precision agriculture. Ultimately, there needs to be more
research focused on a smarter and secured community in the Asian
region in terms of cultural and socioeconomic factors and
technology advancements. ICT Solutions for Improving Smart
Communities in Asia explores new possibilities using digital
solutions and technologies to create collaborative and smarter
communities for advancement in agriculture, the health sector,
education centers, human resources, and administrative domains, as
well as other areas to improve the overall living standards of
people at the community level. This book will cover two main areas:
the need for technology development in developing nations, mainly
focusing on Asia, and the adoption of some of the advanced regions
in Asia as role models for the less developed SAARC regions
explicitly. This book is ideally intended for researchers,
academicians, IT specialists, regional developers, government
officials, practitioners, academicians, and students.
In the era of Industry 4.0, the world is increasingly becoming
smarter as everything from mobile phones to cars to TVs connects
with unique addresses and communication mechanisms. However, in
order to enable the smart world to be sustainable, ICT must embark
into energy efficient paradigms. Green ICT is a moving factor
contributing towards energy efficiency by reducing energy
utilization through software or hardware procedures. Role of IoT in
Green Energy Systems presents updated research trends in green
technology and the latest product and application developments
towards green energy. Covering topics that include energy
conservation and harvesting, renewable energy, and green and
underwater internet of things, this essential reference book
creates further awareness of smart energy and critically examines
the contributions of ICT towards green technologies. IT
specialists, researchers, academicians, and students in the area of
energy harvesting and energy management, and/or those working
towards green energy technologies, wireless sensor networks, and
smart applications will find this monograph beneficial in their
studies.
The recent advancement of industrial computerization has
significantly helped in resolving the challenges associated with
the conventional industrial systems. The industry 4.0 quality
standards demand smart and intelligent solutions to revolutionize
the industrial applications. Despite, a wide range of available
industrial solutions, still the precision, accuracy and speed are a
matter of interest to scientists to device novel solutions. In
addition, the IoT technologies, though, have gained an inspiration
in industrial applications, yet, the time and resource complexity
of industrial sensors require intelligent management and monitoring
of sensors' data. The integration of machine intelligence and IoT
technologies can greatly help in devising cutting edge solutions to
very recent issues of industrial applications. Machine intelligence
is the most appropriate set of techniques for constructing
prediction models due to its capability in handling large-scale and
complex datasets. Machine intelligent solution can effectively help
the industrial stakeholders in automatic detection of faults, early
prediction of errors and risks, tracking industrial shipments
through intelligent sensors, health industry risk mitigation
employing IoT and machine intelligence, disaster management, and
many more. The objectives include: Assessment of limitations of
industrial systems, challenges and solutions; Empowerment of
industrial systems with machine intelligence to mitigate the risks;
Smart safety measures towards industrial systems; and Presentation
of recent intelligent systems for a wide range of industrials
applications.
This book presents a detailed exploration of adaption and
implementation, as well as a 360-degree view spectrum of blockchain
technologies in real-world business applications. Blockchain is
gaining momentum in all sectors. This book offers a collection of
protocol standards, issues, security improvements, applicability,
features, and types of cryptocurrency in processing and through 5G
technology. The book covers the evolution of blockchain from
fundamental theories to present forms. It offers diversified
business applications with usable case studies and provides
successful implementations in cloud/edge computing, smart city, and
IoT. The book emphasizes the advances and cutting-edge technologies
along with the different tools and platforms. The primary audience
for this book includes industry experts, researchers, graduates and
under graduates, practitioners, and business managers who are
engaged in blockchain and IoT-related technologies.
Big data is a well-trafficked subject in recent IT discourse and
does not lack for current research. In fact, there is such a
surfeit of material related to big data-and so much of it of
questionably reliability, thanks to the high-gloss efforts of savvy
tech-marketing gurus-that it can, at times, be difficult for a
serious academician to navigate. The Handbook of Research on Trends
and Future Directions in Big Data and Web Intelligence cuts through
the haze of glitz and pomp surrounding big data and offers a
simple, straightforward reference-source of practical academic
utility. Covering such topics as cloud computing, parallel
computing, natural language processing, and personalized medicine,
this volume presents an overview of current research, insight into
recent advances, and gaps in the literature indicative of
opportunities for future inquiry and is targeted toward a broad,
interdisciplinary audience of students, academics, researchers, and
professionals in fields of IT, networking, and data-analytics.
Cyber Security Applications for Industry 4.0 (CSAI 4.0) provides
integrated features of various disciplines in Computer Science,
Mechanical, Electrical, and Electronics Engineering which are
defined to be Smart systems. It is paramount that Cyber-Physical
Systems (CPS) provide accurate, real-time monitoring and control
for smart applications and services. With better access to
information from real-time manufacturing systems in industrial
sectors, the CPS aim to increase the overall equipment
effectiveness, reduce costs, and improve efficiency. Industry 4.0
technologies are already enabling numerous applications in a
variety of industries. Nonetheless, legacy systems and inherent
vulnerabilities in an organization's technology, including limited
security mechanisms and logs, make the move to smart systems
particularly challenging. Features: Proposes a conceptual framework
for Industry 4.0-based Cyber Security Applications concerning the
implementation aspect Creates new business models for
Industrialists on Control Systems and provides productive workforce
transformation Outlines the potential development and organization
of Data Protection based on strategies of cybersecurity features
and planning to work in the new area of Industry 4.0 Addresses the
protection of plants from the frost and insects, automatic
hydroponic irrigation techniques, smart industrial farming and crop
management in agriculture relating to data security initiatives The
book is primarily aimed at industry professionals, academicians,
and researchers for a better understanding of the secure data
transition between the Industry 4.0 enabled connected systems and
their limitations
Addresses the knowledge for emerging multidisciplinary research
Explores basic and high level concepts and serves as a manual for
industry Presents security and privacy issues through IoT
ecosystems and its implications to the real-world Explains concepts
of IoT related technologies, trends, and future directions related
to information security Examines privacy issues and challenges
related to data-intensive technologies in IoT
The advanced AI techniques are essential for resolving various
problematic aspects emerging in the field of bioinformatics. This
book covers the recent approaches in artificial intelligence and
machine learning methods and their applications in Genome and Gene
editing, cancer drug discovery classification, and the protein
folding algorithms among others. Deep learning, which is widely
used in image processing, is also applicable in bioinformatics as
one of the most popular artificial intelligence approaches. The
wide range of applications discussed in this book are an
indispensable resource for computer scientists, engineers,
biologists, mathematicians, physicians, and medical informaticists.
Features: Focusses on the cross-disciplinary relation between
computer science and biology and the role of machine learning
methods in resolving complex problems in bioinformatics Provides a
comprehensive and balanced blend of topics and applications using
various advanced algorithms Presents cutting-edge research
methodologies in the area of AI methods when applied to
bioinformatics and innovative solutions Discusses the AI/ML
techniques, their use, and their potential for use in common and
future bioinformatics applications Includes recent achievements in
AI and bioinformatics contributed by a global team of researchers
The study of Wireless Sensor Networks (WSN) is a continually
growing, as these networks have the advantage of easy deployment
for a number of different applications. Wireless Sensor Networks
and Energy Efficiency: Protocols, Routing and Management focuses on
wireless sensor networks and their operation, covering topics
including routing, energy efficiency and management. Containing 27
chapters authored by a group of internationally experienced
professionals and researchers in the fields of computer science,
communication, and networking, this book discusses critical issues
in wireless sensor network research including MAC, Routing
Protocols, TCP, performance and traffic management, time
synchronization, and security.
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Computing Science, Communication and Security - 4th International Conference, COMS2 2023, Gandhinagar, India, February 6–7, 2023, Revised Selected Papers (1st ed. 2023)
Nirbhay Chaubey, Sabu M. Thampi, Noor Zaman Jhanjhi, Satyen Parikh, Kiran Amin
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R2,072
Discovery Miles 20 720
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Ships in 10 - 15 working days
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This book constitutes the refereed proceedings of the 4th
International Conference on Computing Science, Communication and
Security, COMS2 2023, held in Gandhinagar, India, during February
6–7, 2023. The 20 full papers included in this book were
carefully reviewed and selected from 190 submissions. They were
organized in topical sections on artificial intelligence and
machine learning; networking and communications.
The evolution of mechanical properties and its characterization is
important to the weld quality whose further analysis requires
mechanical property and microstructure correlation. Present book
addresses the basic understanding of the Friction Stir Welding
(FSW) process that includes effect of various process parameters on
the quality of welded joints. It discusses about various problems
related to the welding of dissimilar aluminium alloys including
influence of FSW process parameters on the microstructure and
mechanical properties of such alloys. As a case study, effect of
important process parameters on joint quality of dissimilar
aluminium alloys is included.
There are a lot of e-business security concerns. Knowing about
e-business security issues will likely help overcome them. Keep in
mind, companies that have control over their e-business are likely
to prosper most. In other words, setting up and maintaining a
secure e-business is essential and important to business growth.
This book covers state-of-the art practices in e-business security,
including privacy, trust, security of transactions, big data, cloud
computing, social network, and distributed systems.
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Non-Destructive Testing (Hardcover)
Fausto Pedro GarcĂa Márquez, Noor Zaman, Mayorkinos Papaelias
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R3,516
R3,288
Discovery Miles 32 880
Save R228 (6%)
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Ships in 10 - 15 working days
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This book comprises theoretical foundations to deep learning,
machine learning and computing system, deep learning algorithms,
and various deep learning applications. The book discusses
significant issues relating to deep learning in data analytics.
Further in-depth reading can be done from the detailed bibliography
presented at the end of each chapter. Besides, this book's material
includes concepts, algorithms, figures, graphs, and tables in
guiding researchers through deep learning in data science and its
applications for society. Deep learning approaches prevent loss of
information and hence enhance the performance of data analysis and
learning techniques. It brings up many research issues in the
industry and research community to capture and access data
effectively. The book provides the conceptual basis of deep
learning required to achieve in-depth knowledge in computer and
data science. It has been done to make the book more flexible and
to stimulate further interest in topics. All these help researchers
motivate towards learning and implementing the concepts in
real-life applications.
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