Basics of image processing: the facts and challenges of data harmonization to improve radiomics reproducibility
This book, endorsed by EuSoMII, provides clinicians, researchers and scientists a useful handbook to navigate the intricate landscape of data harmonization, as we embark on a journey to improve the reproducibility, robustness and generalizability of multi-centric real-world data radiomic studies. In...
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Weitere Verfasser: | |
Format: | Buch |
Sprache: | English |
Veröffentlicht: |
Cham, Switzerland
Springer
[2023]
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Ausgabe: | 2023 |
Schriftenreihe: | Imaging informatics for healthcare professionals
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Schlagworte: | |
Zusammenfassung: | This book, endorsed by EuSoMII, provides clinicians, researchers and scientists a useful handbook to navigate the intricate landscape of data harmonization, as we embark on a journey to improve the reproducibility, robustness and generalizability of multi-centric real-world data radiomic studies. In these pages, the authors delve into the foundational principles of radiomics and its far-reaching implications for precision medicine. They describe the different methodologies used in extracting quantitative features from medical images, the building blocks that enable the transformation of images into actionable predictions. This book sweeps from understanding the basis of harmonization to the implementation of all the knowledge acquired to date, with the aim of conveying the importance of harmonizing medical data and providing a useful guidance to enable its applicability and the future use of advanced radiomics-based models in routine clinical practice. As authors embark on this exploration of data harmonization in radiomics, they hope to ignite discussions, foster new ideas, and inspire researchers, clinicians, and scientists alike to embrace the challenges and opportunities that lie ahead. Together, they elevate radiomics as a reproducible technology and establish it as an indispensable and actionable tool in the quest for improved cancer diagnosis and treatment |
Beschreibung: | Era of AI quantitative imaging.- Principles of image formation in the different modalities.- How to extract radiomic features from the image?.- Facts and needs to improve Radiomics reproductibility.- What is harmonization and how does it differ from standardization?.- Harmonization in the image domain.- Harmonization across MRI.- Harmonization in the features domain.- Selection of the optimal harmonization method(s) for the problem under study.- Conclusions |
Beschreibung: | vii, 166 Seiten Illustrationen 203 mm |
ISBN: | 9783031484452 |
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520 | |a This book, endorsed by EuSoMII, provides clinicians, researchers and scientists a useful handbook to navigate the intricate landscape of data harmonization, as we embark on a journey to improve the reproducibility, robustness and generalizability of multi-centric real-world data radiomic studies. In these pages, the authors delve into the foundational principles of radiomics and its far-reaching implications for precision medicine. They describe the different methodologies used in extracting quantitative features from medical images, the building blocks that enable the transformation of images into actionable predictions. This book sweeps from understanding the basis of harmonization to the implementation of all the knowledge acquired to date, with the aim of conveying the importance of harmonizing medical data and providing a useful guidance to enable its applicability and the future use of advanced radiomics-based models in routine clinical practice. As authors embark on this exploration of data harmonization in radiomics, they hope to ignite discussions, foster new ideas, and inspire researchers, clinicians, and scientists alike to embrace the challenges and opportunities that lie ahead. Together, they elevate radiomics as a reproducible technology and establish it as an indispensable and actionable tool in the quest for improved cancer diagnosis and treatment | ||
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spelling | Basics of image processing the facts and challenges of data harmonization to improve radiomics reproducibility Ángel Alberich-Bayarri, Fuensanta Bellvís-Bataller, editors Cham, Switzerland Springer [2023] vii, 166 Seiten Illustrationen 203 mm txt rdacontent n rdamedia nc rdacarrier Imaging informatics for healthcare professionals Era of AI quantitative imaging.- Principles of image formation in the different modalities.- How to extract radiomic features from the image?.- Facts and needs to improve Radiomics reproductibility.- What is harmonization and how does it differ from standardization?.- Harmonization in the image domain.- Harmonization across MRI.- Harmonization in the features domain.- Selection of the optimal harmonization method(s) for the problem under study.- Conclusions This book, endorsed by EuSoMII, provides clinicians, researchers and scientists a useful handbook to navigate the intricate landscape of data harmonization, as we embark on a journey to improve the reproducibility, robustness and generalizability of multi-centric real-world data radiomic studies. In these pages, the authors delve into the foundational principles of radiomics and its far-reaching implications for precision medicine. They describe the different methodologies used in extracting quantitative features from medical images, the building blocks that enable the transformation of images into actionable predictions. This book sweeps from understanding the basis of harmonization to the implementation of all the knowledge acquired to date, with the aim of conveying the importance of harmonizing medical data and providing a useful guidance to enable its applicability and the future use of advanced radiomics-based models in routine clinical practice. As authors embark on this exploration of data harmonization in radiomics, they hope to ignite discussions, foster new ideas, and inspire researchers, clinicians, and scientists alike to embrace the challenges and opportunities that lie ahead. Together, they elevate radiomics as a reproducible technology and establish it as an indispensable and actionable tool in the quest for improved cancer diagnosis and treatment Nuclear medicine Bioinformatics Biomedical engineering Data mining Radiology Hardcover, Softcover / Medizin/Klinische Fächer (DE-588)4143413-4 Aufsatzsammlung gnd-content Alberich-Bayarri, Ángel edt Bellvís-Bataller, Fuensanta edt Erscheint auch als Online-Ausgabe 978-3-031-48446-9 |
spellingShingle | Alberich-Bayarri, Ángel Basics of image processing the facts and challenges of data harmonization to improve radiomics reproducibility Nuclear medicine Bioinformatics Biomedical engineering Data mining Radiology |
subject_GND | (DE-588)4143413-4 |
title | Basics of image processing the facts and challenges of data harmonization to improve radiomics reproducibility |
title_auth | Basics of image processing the facts and challenges of data harmonization to improve radiomics reproducibility |
title_exact_search | Basics of image processing the facts and challenges of data harmonization to improve radiomics reproducibility |
title_full | Basics of image processing the facts and challenges of data harmonization to improve radiomics reproducibility Ángel Alberich-Bayarri, Fuensanta Bellvís-Bataller, editors |
title_fullStr | Basics of image processing the facts and challenges of data harmonization to improve radiomics reproducibility Ángel Alberich-Bayarri, Fuensanta Bellvís-Bataller, editors |
title_full_unstemmed | Basics of image processing the facts and challenges of data harmonization to improve radiomics reproducibility Ángel Alberich-Bayarri, Fuensanta Bellvís-Bataller, editors |
title_short | Basics of image processing |
title_sort | basics of image processing the facts and challenges of data harmonization to improve radiomics reproducibility |
title_sub | the facts and challenges of data harmonization to improve radiomics reproducibility |
topic | Nuclear medicine Bioinformatics Biomedical engineering Data mining Radiology |
topic_facet | Nuclear medicine Bioinformatics Biomedical engineering Data mining Radiology Aufsatzsammlung |
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