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This book describes a robust, low-cost electrochemical sensing
system that is able to detect hormones and phthalates - the most
ubiquitous endocrine disruptor compounds - in beverages and is
sufficiently flexible to be readily coupled with any existing
chemical or biochemical sensing system. A novel type of silicon
substrate-based smart interdigital transducer, developed using MEMS
semiconductor fabrication technology, is employed in conjunction
with electrochemical impedance spectroscopy to allow real-time
detection and analysis. Furthermore, the presented interdigital
capacitive sensor design offers a sufficient penetration depth of
the fringing electric field to permit bulk sample testing. The
authors address all aspects of the development of the system and
fully explain its benefits. The book will be of wide interest to
engineers, scientists, and researchers working in the fields of
physical electrochemistry and biochemistry at the undergraduate,
postgraduate, and research levels. It will also be highly relevant
for practitioners and researchers involved in the development of
electromagnetic sensors.
This book introduces readers to both basic and advanced concepts in
deep network models. It covers state-of-the-art deep architectures
that many researchers are currently using to overcome the
limitations of the traditional artificial neural networks. Various
deep architecture models and their components are discussed in
detail, and subsequently illustrated by algorithms and selected
applications. In addition, the book explains in detail the transfer
learning approach for faster training of deep models; the approach
is also demonstrated on large volumes of fingerprint and face image
datasets. In closing, it discusses the unique set of problems and
challenges associated with these models.
This book describes a robust, low-cost electrochemical sensing
system that is able to detect hormones and phthalates - the most
ubiquitous endocrine disruptor compounds - in beverages and is
sufficiently flexible to be readily coupled with any existing
chemical or biochemical sensing system. A novel type of silicon
substrate-based smart interdigital transducer, developed using MEMS
semiconductor fabrication technology, is employed in conjunction
with electrochemical impedance spectroscopy to allow real-time
detection and analysis. Furthermore, the presented interdigital
capacitive sensor design offers a sufficient penetration depth of
the fringing electric field to permit bulk sample testing. The
authors address all aspects of the development of the system and
fully explain its benefits. The book will be of wide interest to
engineers, scientists, and researchers working in the fields of
physical electrochemistry and biochemistry at the undergraduate,
postgraduate, and research levels. It will also be highly relevant
for practitioners and researchers involved in the development of
electromagnetic sensors.
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