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Deep Network Design for Medical Image Computing: Principles and Applications

Contributor(s): Liao, Haofu (Author), Zhou, S Kevin (Author), Luo, Jiebo (Author)

ISBN: 9780128243831

Publisher: Academic Press

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$110.00
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Pub Date: August 30, 2022

Dewey: 616.0754

LCCN: 2022437100

Lexile Code: 0000

Features: Bibliography, Index

Target Age Group: NA to NA

Physical Info: 0.56" H x 9.25" L x 7.50" W ( 1.02 lbs) 264 pages

Series: The Miccai Society Book

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Description:

Deep Network Design for Medical Image Computing: Principles and Applications covers a range of MIC tasks and discusses design principles of these tasks for deep learning approaches in medicine. These include skin disease classification, vertebrae identification and localization, cardiac ultrasound image segmentation, 2D/3D medical image registration for intervention, metal artifact reduction, sparse-view artifact reduction, etc. For each topic, the book provides a deep learning-based solution that takes into account the medical or biological aspect of the problem and how the solution addresses a variety of important questions surrounding architecture, the design of deep learning techniques, when to introduce adversarial learning, and more.

This book will help graduate students and researchers develop a better understanding of the deep learning design principles for MIC and to apply them to their medical problems.

Brief description: S. Kevin Zhou, Ph.D. is currently a Principal Key Expert Scientist at Siemens Healthcare Technology Center, leading a team of full time research scientists and students dedicated to researching and developing innovative solutions for medical and industrial imaging products. His research interests lie in computer vision and machine/deep learning and their applications to medical image analysis, face recognition and modeling, etc. He has published over 150 book chapters and peer-reviewed journal and conference papers, registered over 250 patents and inventions, written two research monographs, and edited three books. He has won multiple technology, patent and product awards, including R&D 100 Award and Siemens Inventor of the Year. He is an editorial board member for Medical Image Analysis journal and a fellow of American Institute of Medical and Biological Engineering (AIMBE).

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