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Digital Twin for Smart Manufacturing: Emerging Approaches and
Applications provides detailed descriptions on how to integrate and
optimize novel digital technologies for smart manufacturing. The
book discusses digital twins, which combine the industrial internet
of things, artificial intelligence, machine learning and software
analytics with spatial network graphs to create living digital
simulation models that update and change as their physical
counterparts change. In addition, they provide an effective way to
integrate technologies like cyber-physical systems into a smart
manufacturing system, potentially optimizing the entire business
process and operating procedure of the manufacturing firm. Drawing
on the latest research, the book addresses the topics and
technologies key to successful implementation of a smart
manufacturing system, including augmented and virtual reality, big
data and energy management. Broader subjects such as additive
manufacturing and robotics are also covered in this context,
covering every aspect of production.
Nowadays, raw biological data can be easily stored as databases in
computers but extracting the required information is the real
challenge for researchers. For this reason, bioinformatics tools
perform a vital role in extracting and analyzing information from
databases. Bioinformatics Tools and Big Data Analytics for Patient
describes the applications of bioinformatics, data management, and
computational techniques in clinical studies and drug discovery for
patient care. The book gives details about the recent developments
in the fields of artificial intelligence, cloud computing, and data
analytics. It highlights the advances in computational techniques
used to perform intelligent medical tasks. Features: Presents
recent developments in the fields of artificial intelligence, cloud
computing, and data analytics for improved patient care. Describes
the applications of bioinformatics, data management, and
computational techniques in clinical studies and drug discovery.
Summarizes several strategies, analyses, and optimization methods
for patient healthcare. Focuses on drug discovery and development
by cloud computing and data-driven research The targeted audience
comprises academics, research scholars, healthcare professionals,
hospital managers, pharmaceutical chemists, the biomedical
industry, software engineers, and IT professionals.
In healthcare, a digital twin is a digital representation of a
patient or healthcare system using integrated simulations and
service data. The digital twin tracks a patient's records,
crosschecks them against registered patterns and analyses any
diseases or contra indications. The digital twin uses adaptive
analytics and algorithms to produce accurate prognoses and suggest
appropriate interventions. A digital twin can run various medical
scenarios before treatment is initiated on the patient, thus
increasing patient safety as well as providing the most appropriate
treatments to meet the patient's requirements. Digital Twin
Technologies for Healthcare 4.0 discusses how the concept of the
digital twin can be merged with other technologies, such as
artificial intelligence (AI), machine learning (ML), big data
analytics, IoT and cloud data management, for the improvement of
healthcare systems and processes. The book also focuses on the
various research perspectives and challenges in implementation of
digital twin technology in terms of data analysis, cloud management
and data privacy issues. With chapters on visualisation techniques,
prognostics and health management, this book is a must-have for
researchers, engineers and IT professionals in healthcare as well
as those involved in using digital twin technology, AI, IoT &
big data analytics for novel applications.
Cognitive Computing for Internet of Medical Things (IoMT) offers a
complete assessment of the present scenario, role, challenges,
technologies, and impact of IoMT-enabled smart healthcare systems.
It contains chapters discussing various biomedical applications
under the umbrella of the IoMT. Key Features Exploits the different
prospects of cognitive computing techniques for the IoMT and smart
healthcare applications Addresses the significance of IoMT and
cognitive computing in the evolution of intelligent medical systems
for biomedical applications Describes the different computing
techniques of cognitive intelligent systems from a practical point
of view: solving common life problems Explores the technologies and
tools to utilize IoMT for the transformation and growth of
healthcare systems Focuses on the economic, social, and
environmental impact of IoMT-enabled smart healthcare systems This
book is primarily aimed at graduates, researchers and academicians
working in the area of development of the application of the of the
application of the IoT in smart healthcare. Industry professionals
will also find this book helpful.
The book IoT and Big Data Analytics (IoT-BDA) for Smart Cities - A
Global Perspective, emphasizes the challenges, architectural
models, and intelligent frameworks with smart decisionmaking
systems using Big Data and IoT with case studies. The book
illustrates the benefits of Big Data and IoT methods in framing
smart systems for smart applications. The text is a coordinated
amalgamation of research contributions and industrial applications
in the field of smart cities. Features: Provides the necessity of
convergence of Big Data Analytics and IoT techniques in smart city
application Challenges and Roles of IoT and Big Data in Smart City
applications Provides Big Data-IoT intelligent smart systems in a
global perspective Provides a predictive framework that can handle
the traffic on abnormal days, such as weekends and festival
holidays Gives various solutions and ideas for smart traffic
development in smart cities Gives a brief idea of the available
algorithms/techniques of Big Data and IoT and guides in developing
a solution for smart city applications This book is primarily aimed
at IT professionals. Undergraduates, graduates, and researchers in
the area of computer science and information technology will also
find this book useful.
The main aim of Healthcare 4.0: Health Informatics and Precision
Data Management is to improve the services given by the healthcare
industry and to bring meaningful patient outcomes by applying the
data, information and knowledge in the healthcare domain. Features:
* Improves the quality of health data of a patient * Presents a
wide range of opportunities and renewed possibilities for
healthcare systems * Gives a way for carefully and meticulously
tracking the provenance of medical records * Accelerates the
process of disease-oriented data and medical data arbitration *
Brings meaningful patient health outcomes * Eradicates delayed
clinical communications * Helps the research intellectuals to step
down further toward the disease and clinical data storage * Creates
more patient-centered services The precise focus of this handbook
is on the potential applications and use of data informatics in
healthcare, including clinical trials, tailored ailment data,
patient and ailment record characterization and health records
management.
Cognitive computing simulates human thought processes with
self-learning algorithms that utilize data mining, pattern
recognition, and natural language processing. The integration of
deep learning improves the performance of Cognitive computing
systems in many applications, helping in utilizing heterogeneous
data sets and generating meaningful insights.
Smart Energy and Electric Power Systems: Current Trends and New
Intelligent Perspectives reviews key applications of intelligent
algorithms and machine learning techniques to increasingly complex
and data-driven power systems with distributed energy resources to
enable evidence-driven decision-making and mitigate catastrophic
power shortages. The book reviews foundations towards the
integration of machine learning and smart power systems before
addressing key challenges and issues. The work then explores AI-
and ML-informed techniques to rebalancing of supply and demand.
Methods discussed include distributed energy resources and prosumer
markets, electricity demand prediction, component fault detection,
and load balancing. Security solutions are introduced, along with
potential solutions to cyberattacks, security data detection and
critical loads in power systems. The work closes with a lengthy
discussion, informed by case studies, on integrating AI and ML into
the modern energy sector.
Agri 4.0 and the Future of Cyber-Physical Agricultural Systems is
the first book to explore the potential use of technology in
agriculture with the focus on the technologies, enabling the reader
to better comprehend the full range of CPS opportunities. From
planning to distribution, CPS technologies are available to impact
agricultural output, delivery and consumption. The impact for food
security may be significant and this book explores ways to
implement CPS effectively and appropriately. Technology, especially
computing technology, can play a significant in the field of
agriculture by processing digitized data to solve the complex
agronomic, agricultural demand and supply issues that impact the
food supply chain, and ultimately food security. In Agri 4.0, the
cyber physical system synchronously interacts with agricultural
systems to control and execute the operation autonomously.
Digitalization of agriculture integrates digital computers to
assist the processes of agriculture with its digitized data and its
allied technology including AI, Computer Vision, Big data, Block
chain and IoT. Agri 4.0 digitalizes, estimate, plan, predict, and
produce the optimum agricultural inputs and outputs for the
required for commercial purposes. It can be used to get a fair,
transparent and accountable process to serve the stakeholders. The
convergence of IoT, ML, Big data and 5G networks have opened new
possibilities to explore and exploit the cyber physical
agricultural systems. The management and practices of smart
multi-layer architecture and smart supply chain are one of the key
application areas in Agri 4.0. The global team of authors also
presents important insights into promising areas of precision
agriculture, autonomous systems, smart farming environment, smart
production monitoring, pest detection and recovery, sustainable
industrial practices and government policies in Agri 4.0.
AI-Powered IoT in the Energy Industry: Digital Technology and
Sustainable Energy Systems looks at opportunities to employ
cutting-edge applications of artificial intelligence (AI), the
Internet of Things (IoT), and Machine Learning (ML) in designing
and modeling energy and renewable energy systems. The book's main
objectives are to demonstrate how big data can help with energy
efficiency and demand reduction, increase the usage of renewable
energy sources, and assist in transitioning from a centralized
system to a distributed, efficient, and embedded energy system.
Contributions cover the fundamentals of the renewable energy
sector, including solar, wind, biomass, and hydrogen, as well as
building services and power generation systems. Chapters also
examine renewable energy property prediction methods and discuss AI
and IoT prediction models for biomass thermal properties. Covers
renewable energy sector fundamentals; Explains the application of
big data in distributed energy domains; Discusses AI and IoT
prediction methods and models.
Blockchain-Based Systems for a Paradigm Shift in the Energy Grid
explores the technologies and tools to utilize blockchain for
energy grids and assists professionals and researchers to find
alternative solutions for the future of the energy sector. The
focus of this globally edited book is on the application of
blockchain technology and the balance between supply and demand for
energy and where it is achievable. Looking at the integration of
blockchain and how it will make the network resistant to any
failure in sub-components, this book has very clearly explores the
areas of energy sector that need in-depth study of Blockchain for
expanding energy markets. Meeting the demands of energy by local
trading, verifying use of green energy certificates and providing a
greater understanding of smart energy grids and Blockchain use
cases. Exhaustively exploring the use of Blockchain for energy,
this reference useful for all those in the energy industry looking
to avoid disruption in the grid and sustain and control successful
flow of electricity.
SMART GRIDS AND INTERNET OF THINGS Smart grids and the Internet of
Things (IoT) are rapidly changing and complicated subjects that are
constantly changing and developing. This new volume addresses the
current state-of-the-art concepts and technologies associated with
the technologies and covers new ideas and emerging novel
technologies and processes. Internet of Things (IoT) is a
self-organized network that consists of sensors, software, and
devices. The data is exchanged among them with the help of the
internet. Smart Grids (SG) is a collection of devices deployed in
larger areas to perform continuous monitoring and analysis in that
region. It is responsible for balancing the flow of energy between
the servers and consumers. SG also takes care of the transmission
and distribution power to the components involved. The tracking of
the devices present in SG is achieved by the IoT framework. Thus,
assimilating IoT and SG will lead to developing solutions for many
real-time problems. This exciting new volume covers all of these
technologies, including the basic concepts and the problems and
solutions involved with the practical applications in the real
world. Whether for the veteran engineer or scientist, the student,
or a manager or other technician working in the field, this volume
is a must-have for any library. Smart Grids and Internet of Things:
Presents Internet of Things (IoT) and smart grid (SG)-integrated
frameworks along with their components and technologies Covers the
challenges in energy harvesting and sustainable solutions for
IoTSGs and their solutions for practical applications Describes and
demystifies the privacy and security issues while processing data
in IoTSG Includes case studies relating to IoTSG with cloud and fog
computing machine learning and blockchain
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Metaverse Technologies in Healthcare
Rajesh Kumar Dhanaraj, Shristi Vashishta, Malathy Sathyamoorthy, Balamurugan Balusamy, Korhan Cengiz
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R3,271
Discovery Miles 32 710
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Ships in 12 - 17 working days
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Metaverse Technologies in Healthcare includes different areas of
Metaverse healthcare and provides comprehensive knowledge and
methodological information. With a strong focus on data analysis,
the book utilizes the possibilities of data to increase the
effectiveness of healthcare organizations. Healthcare services aim
to maintain the physical, mental, social and emotional well-being
of human lives while the Metaverse is a blend of technological
trends- Artificial Intelligence (AI), Augmented Reality (AR) and
Virtual Reality (VR). Collectively, they can deliver treatments and
medicines; lowering costs, and substantially enhancing patient
outcomes. In 20 chapters Metaverse Technologies in Healthcare
redefines the digital health experience. It describes the
advantages of the Metaverse-based NFT technology in healthcare
sector facilitating NFT avatars to interact with targeted
audiences, discusses the aspects of their projects with like-minded
people resulting in interdisciplinary solutions . Healthcare
entities ranging from hospitals chains to fitness companies, will
benefit from this title.
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