Produktbild: Data Driven Approaches on Medical Imaging
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Data Driven Approaches on Medical Imaging

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Beschreibung

Produktdetails

Einband

Gebundene Ausgabe

Erscheinungsdatum

02.02.2024

Abbildungen

XV, 228 p. 75 illus., 54 illus. in color.

Herausgeber

Bin Zheng + weitere

Verlag

Springer

Seitenzahl

228

Maße (L/B/H)

24,1/16/1,9 cm

Gewicht

535 g

Sprache

Englisch

ISBN

978-3-031-47771-3

Beschreibung

Portrait


Dr. Bin Zheng
 received his PhD degree from the Department of Electrical Engineering, University of Delaware in 1993. After working in the Medical Imaging Research Division, Department of Radiology, University of Pittsburgh, for 20 years, he joined faculty of the School of Electrical and Computer Engineering, University of Oklahoma in 2013. He was a Gerald Tuma Presidential Professor and a Director of Oklahoma Center of Medical Imaging for Translational Cancer Research. He is also a fellow of American Institute for Medicine and Biological Engineering (AIMBE) and an editor-in-chief of Journal of X-ray Science and Technology. He works in the field of quantitative medical image feature processing and analysis. His research interest focuses on developing and evaluating (1) new image processing algorithms to detect suspicious diseases (cancer and stroke), (2) image feature based machine learning models to predict disease risk, identify malignant tumors, and assess patient prognosis or treatment efficacy, and (3) interactive computer-aided diagnosis systems using the content-based image retrieval technology to provide radiologists “visual-aided tools” in reading and interpreting medical images. He has co-authored over 210 referred journal papers in medical imaging research field with a current Google Scholar H-index of 54.

Dr. Stefan Andrei
 received his PhD from Hamburg University, Germany, in 2000 as a World Bank Scholarship Japan Graduate student. He is currently a Professor of Department of Computer Science with Oregon Institute of Technology, Previously he was chair of computer science department in Lamar University. He has already been a co-author of more than 100 peer reviewed papers at international reputable journals and conferences. His research interests include real-time embedded systems, computer vision, software engineering, and more.

Dr. Md Kamruzzaman Sarker
 is working as a tenure track assistant professor at the department of Computing Sciences at the Bowie State University. He obtained his PhD in computer science with focus on Artificial Intelligence in 2020 from Kansas State University. After his PhD he also worked as a postdoc at the Center for Artificial Intelligence and Data Science of the Same university. He obtained his M.S. in Computer Science in 2018 from Wright State University and B.Sc. in Computer Science and Engineering from Khulna University of Engineering & Technology. He also worked at Intel Corporation and Samsung Electronics. He has authored more than 30 peer reviewed papers and edited a book.

 
Dr. Kishor Datta Gupta
 is working as a tenure track assistant professor at the Clark Atlanta University. He obtained his PhD in computer science with focus on Artificial Intelligence in 2021 from University of Memphis. He has authored more than 30 peer reviewed papers and co-invented a patent. His research interest include medical data imaging and security, HIPPA compliant medical data processing etc.

Produktdetails

Einband

Gebundene Ausgabe

Erscheinungsdatum

02.02.2024

Abbildungen

XV, 228 p. 75 illus., 54 illus. in color.

Herausgeber

Verlag

Springer

Seitenzahl

228

Maße (L/B/H)

24,1/16/1,9 cm

Gewicht

535 g

Sprache

Englisch

ISBN

978-3-031-47771-3

Herstelleradresse

Springer-Verlag KG
Sachsenplatz 4-6
1201 Wien
AT

Email: ProductSafety@springernature.com

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  • Produktbild: Data Driven Approaches on Medical Imaging

  • Chapter. 1. Introduction of Medical Imaging Modalities.- Chapter. 2. Introduction to Medical Imaging Informatics.- Chapter. 3. Active Learning on Medical Image.- Chapter. 4. Few Shot Learning for Medical Imaging: A Comparative Analysis of Methodologies and Formal Mathematical Framework.- Chapter. 5. AUTOML Systems for Medical Imaging.- Chapter. 6. Online learning for X-ray, CT or MRI.- Chapter. 7. Invariant Scattering Transform for Medical Imaging.- Chapter. 8. Generative Adversarial Networks for Data Augmentation.- Chapter. 9. Bias, Ethical concerns, and explainable decision-making in medical imaging research.- Chapter. 10. Case Studies on X-Ray Imaging, MRI and Nuclear Imaging.- Index.