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Artificial Intelligence: Technologies, Applications, and Challenges
is an invaluable resource for readers to explore the utilization of
Artificial Intelligence, applications, challenges, and its
underlying technologies in different applications areas. Using a
series of present and future applications, such as indoor-outdoor
securities, graphic signal processing, robotic surgery, image
processing, character recognition, augmented reality, object
detection and tracking, intelligent traffic monitoring, emergency
department medical imaging, and many more, this publication will
support readers to get deeper knowledge and implementing the tools
of Artificial Intelligence. The book offers comprehensive coverage
of the most essential topics, including: Rise of the machines and
communications to IoT (3G, 5G). Tools and Technologies of
Artificial Intelligence Real-time applications of artificial
intelligence using machine learning and deep learning. Challenging
Issues and Novel Solutions for realistic applications Mining and
tracking of motion based object data image processing and analysis
into the unified framework to understand both IoT and Artificial
Intelligence-based applications. This book will be an ideal
resource for IT professionals, researchers, under or post-graduate
students, practitioners, and technology developers who are
interested in gaining insight to the Artificial Intelligence with
deep learning, IoT and machine learning, critical applications
domains, technologies, and solutions to handle relevant challenges.
This book provides readers to the vision of Society 5.0, which was
originally proposed in the fifth Basic Science and Technology Plan
by Japan's government for a technology-based, human-centered
society, emerging from the 4th industrial revolution (Industry
4.0). The implementation of AI and other modern techniques in a
smart society requires automated data scheduling and analysis using
smart applications, a smart infrastructure, smart systems, and a
smart network. Features Provides an overview of basic concepts of
Society 5.0 as well as the main pillars that supports the
implementation of Society 5.0. Contains the most recent research
analysis in the domain of computer vision, signal processing and
computing sciences for facilitating the smart homes, buildings,
transport, facilities, environmental conditions and cities, and the
benefits these offer to a nation. Presents the readers with
practical approaches of using AI and other algorithms for smart
ecosystem to deals with human dynamics, the social objects, and
their relations. Deals with the utilization of AI tools and other
modern techniques for smart society as well as the current
challenging issues and its solutions for transformation to Society
5.0. This book is aimed at graduate and post graduate students,
researchers, academicians working in the field of computer science,
artificial intelligence, and machine learning.
This book addresses the mapping of soil-landscape parameters in the
geospatial domain. It begins by discussing the fundamental
concepts, and then explains how machine learning and geomatics can
be applied for more efficient mapping and to improve our
understanding and management of 'soil'. The judicious utilization
of a piece of land is one of the biggest and most important current
challenges, especially in light of the rapid global urbanization,
which requires continuous monitoring of resource consumption. The
book provides a clear overview of how machine learning can be used
to analyze remote sensing data to monitor the key parameters,
below, at, and above the surface. It not only offers insights into
the approaches, but also allows readers to learn about the
challenges and issues associated with the digital mapping of these
parameters and to gain a better understanding of the selection of
data to represent soil-landscape relationships as well as the
complex and interconnected links between soil-landscape parameters
under a range of soil and climatic conditions. Lastly, the book
sheds light on using the network of satellite-based Earth
observations to provide solutions toward smart farming and smart
land management.
This book addresses the mapping of soil-landscape parameters in the
geospatial domain. It begins by discussing the fundamental
concepts, and then explains how machine learning and geomatics can
be applied for more efficient mapping and to improve our
understanding and management of 'soil'. The judicious utilization
of a piece of land is one of the biggest and most important current
challenges, especially in light of the rapid global urbanization,
which requires continuous monitoring of resource consumption. The
book provides a clear overview of how machine learning can be used
to analyze remote sensing data to monitor the key parameters,
below, at, and above the surface. It not only offers insights into
the approaches, but also allows readers to learn about the
challenges and issues associated with the digital mapping of these
parameters and to gain a better understanding of the selection of
data to represent soil-landscape relationships as well as the
complex and interconnected links between soil-landscape parameters
under a range of soil and climatic conditions. Lastly, the book
sheds light on using the network of satellite-based Earth
observations to provide solutions toward smart farming and smart
land management.
The book introduces a variety of latest techniques designed to
represent, enhance, and empower multi-disciplinary approaches of
geographic information system (GIS), artificial intelligence (AI),
deep learning (DL), machine learning, and cloud computing research
in healthcare. It provides a unique compendium of the current and
emerging use of geospatial data for healthcare and reflects the
diversity, complexity, and depth and breadth of this
multi-disciplinary area. This book addresses various aspects of how
smart healthcare devices can be used to detect and analyze
diseases. Further, it describes various tools and techniques to
evaluate the efficacy, suitability, and efficiency of geospatial
data for health-related applications. It features illustrative case
studies, including future applications and healthcare challenges.
This book is beneficial for computer science and engineering
students and researchers, medical professionals, and anyone
interested in using geospatial data in healthcare. It is also
intended for experts, offering them a valuable retrospective and a
global vision for the future, as well as for non-experts who are
curious to learn about this important subject. The book presents an
effort to draw how we can build health-related applications using
geospatial big data and their subsequent analysis.
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