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Deep Learning Applications for Cyber-Physical Systems

Deep Learning Applications for Cyber-Physical Systems

Monica R. Mundada, S. Seema, Srinivasa K.G., M. Shilpa
Copyright: © 2022 |Pages: 293
ISBN13: 9781799881612|ISBN10: 179988161X|ISBN13 Softcover: 9781799881629|EISBN13: 9781799881636
DOI: 10.4018/978-1-7998-8161-2
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MLA

Mundada, Monica R., et al., editors. Deep Learning Applications for Cyber-Physical Systems. IGI Global, 2022. https://doi.org/10.4018/978-1-7998-8161-2

APA

Mundada, M. R., Seema, S., K.G., S., & Shilpa, M. (Eds.). (2022). Deep Learning Applications for Cyber-Physical Systems. IGI Global. https://doi.org/10.4018/978-1-7998-8161-2

Chicago

Mundada, Monica R., et al., eds. Deep Learning Applications for Cyber-Physical Systems. Hershey, PA: IGI Global, 2022. https://doi.org/10.4018/978-1-7998-8161-2

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Big data generates around us constantly from daily business, custom use, engineering, and science activities. Sensory data is collected from the internet of things (IoT) and cyber-physical systems (CPS). Merely storing such a massive amount of data is meaningless, as the key point is to identify, locate, and extract valuable knowledge from big data to forecast and support services. Such extracted valuable knowledge is usually referred to as smart data. It is vital to providing suitable decisions in business, science, and engineering applications.

Deep Learning Applications for Cyber-Physical Systems provides researchers a platform to present state-of-the-art innovations, research, and designs while implementing methodological and algorithmic solutions to data processing problems and designing and analyzing evolving trends in health informatics and computer-aided diagnosis in deep learning techniques in context with cyber physical systems. Covering topics such as smart medical systems, intrusion detection systems, and predictive analytics, this text is essential for computer scientists, engineers, practitioners, researchers, students, and academicians, especially those interested in the areas of internet of things, machine learning, deep learning, and cyber-physical systems.

Table of Contents

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Front Materials
Title Page
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Copyright Page
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Advances in Systems Analysis, Software Engineering, and High Performance Computing (ASASEHPC) Book Series
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Preface
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Acknowledgment
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Chapters
Back Materials
Compilation of References
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About the Contributors
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Index
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