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| Reihe | Academic Press |
|---|---|
| ISBN | 9780128220009 |
| Sprache | Englisch |
| Erscheinungsdatum | 04.12.2023 |
| Größe | 235 x 191 mm |
| Verlag | Elsevier Inc |
| Herausgegeben von | John Kang, Tim Rattay, Barry S. Rosenstein |
| Lieferzeit | Lieferung in 7-14 Werktagen |
| Herstellerangaben | Anzeigen Libri GmbH Europaallee 1 | D-36244 Bad Hersfeld gpsr@libri.de |
**Selected for 2025 Doody’s Core Titles® in Radiation Oncology**Machine Learning and Artificial Intelligence in Radiation Oncology: A Guide for Clinicians is designed for the application of practical concepts in machine learning to clinical radiation oncology. It addresses the existing void in a resource to educate practicing clinicians about how machine learning can be used to improve clinical and patient-centered outcomes. This book is divided into three sections: the first addresses fundamental concepts of machine learning and radiation oncology, detailing techniques applied in genomics; the second section discusses translational opportunities, such as in radiogenomics and autosegmentation; and the final section encompasses current clinical applications in clinical decision making, how to integrate AI into workflow, use cases, and cross-collaborations with industry. The book is a valuable resource for oncologists, radiologists and several members of biomedical field who need to learn more about machine learning as a support for radiation oncology.
| Reihe | Academic Press |
|---|---|
| ISBN | 9780128220009 |
| Sprache | Englisch |
| Erscheinungsdatum | 04.12.2023 |
| Größe | 235 x 191 mm |
| Verlag | Elsevier Inc |
| Herausgegeben von | John Kang, Tim Rattay, Barry S. Rosenstein |
| Lieferzeit | Lieferung in 7-14 Werktagen |
| Herstellerangaben | Anzeigen Libri GmbH Europaallee 1 | D-36244 Bad Hersfeld gpsr@libri.de |
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