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This book presents a comprehensive, systematic approach to the
development of vision system architectures that employ
sensory-processing concurrency and parallel processing to meet the
autonomy challenges posed by a variety of safety and surveillance
applications. Coverage includes a thorough analysis of resistive
diffusion networks embedded within an image sensor array. This
analysis supports a systematic approach to the design of spatial
image filters and their implementation as vision chips in CMOS
technology. The book also addresses system-level considerations
pertaining to the embedding of these vision chips into
vision-enabled wireless sensor networks.Describes a system-level
approach for designing of vision devices and embedding them into
vision-enabled, wireless sensor networks; Surveys state-of-the-art,
vision-enabled WSN nodes; Includes details of specifications and
challenges of vision-enabled WSNs; Explains architectures for
low-energy CMOS vision chips with embedded, programmable spatial
filtering capabilities; Includes considerations pertaining to the
integration of vision chips into off-the-shelf WSN platforms."
This book presents a systematic approach to the implementation of
Internet of Things (IoT) devices achieving visual inference through
deep neural networks. Practical aspects are covered, with a focus
on providing guidelines to optimally select hardware and software
components as well as network architectures according to prescribed
application requirements. The monograph includes a remarkable set
of experimental results and functional procedures supporting the
theoretical concepts and methodologies introduced. A case study on
animal recognition based on smart camera traps is also presented
and thoroughly analyzed. In this case study, different system
alternatives are explored and a particular realization is
completely developed. Illustrations, numerous plots from
simulations and experiments, and supporting information in the form
of charts and tables make Visual Inference and IoT Systems: A
Practical Approach a clear and detailed guide to the topic. It will
be of interest to researchers, industrial practitioners, and
graduate students in the fields of computer vision and IoT.
This book presents a comprehensive, systematic approach to the
development of vision system architectures that employ
sensory-processing concurrency and parallel processing to meet the
autonomy challenges posed by a variety of safety and surveillance
applications. Coverage includes a thorough analysis of resistive
diffusion networks embedded within an image sensor array. This
analysis supports a systematic approach to the design of spatial
image filters and their implementation as vision chips in CMOS
technology. The book also addresses system-level considerations
pertaining to the embedding of these vision chips into
vision-enabled wireless sensor networks.Describes a system-level
approach for designing of vision devices and embedding them into
vision-enabled, wireless sensor networks; Surveys state-of-the-art,
vision-enabled WSN nodes; Includes details of specifications and
challenges of vision-enabled WSNs; Explains architectures for
low-energy CMOS vision chips with embedded, programmable spatial
filtering capabilities; Includes considerations pertaining to the
integration of vision chips into off-the-shelf WSN platforms."
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