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(Ebook) Medical Image Reconstruction: From Analytical and Iterative Methods to Machine Learning by Gengsheng Lawrence Zeng ISBN 9783111055701, 9783111055404, 9780130040299, 0130040290, 3111055701, 311105540X

  • SKU: EBN-50784544
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Instant download (eBook) Medical Image Reconstruction: From Analytical and Iterative Methods to Machine Learning after payment.
Authors:Gengsheng Lawrence Zeng
Pages:287 pages.
Year:2023
Editon:2
Publisher:De Gruyter
Language:english
File Size:10.57 MB
Format:epub
ISBNS:9783111055701, 9783111055404, 9780130040299, 0130040290, 3111055701, 311105540X
Categories: Ebooks

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(Ebook) Medical Image Reconstruction: From Analytical and Iterative Methods to Machine Learning by Gengsheng Lawrence Zeng ISBN 9783111055701, 9783111055404, 9780130040299, 0130040290, 3111055701, 311105540X

This textbook introduces the essential concepts of tomography in the field of medical imaging. The medical imaging modalities include x-ray CT (computed tomography), PET (positron emission tomography), SPECT (single photon emission tomography) and MRI. In these modalities, the measurements are not in the image domain and the conversion from the measurements to the images is referred to as the image reconstruction. The work covers various image reconstruction methods, ranging from the classic analytical inversion methods to the optimization-based iterative image reconstruction methods. As machine learning methods have lately exhibited astonishing potentials in various areas including medical imaging the author devotes one chapter to applications of machine learning in image reconstruction. Based on college level in mathematics, physics, and engineering the textbook supports students in understanding the concepts. It is an essential reference for graduate students and engineers with electrical engineering and biomedical background due to its didactical structure and the balanced combination of methodologies and applications, Presents analytical and iterative methods for medical images reconstruction. Discusses algorithms and applications in X-ray CT, SPECT, PET and MRI. New chapter on Machine Learning.
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