La librairie de référence pour toutes les professions médicales et paramédicales
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| Auteur(s) | Adam E.M. Eltorai, James M. Hillis |
| Éditeur | ELSEVIER HEALTH SCIENCES |
| Date | 16/01/2026 |
| Pages | 500 |
| Taille | 22 X 15 |
| Type | Broché |
| Langue | Anglais |
| ISBN | 9780323877602 |
The Radiology AI Handbook offers the current, authoritative information you need in order to better understand AI and how to incorporate it into your daily practice.
Written by clinical and computer science experts in AI, this book provides a comprehensive overview of the fundamental concepts, technology, research/development/validation, and regulatory considerations for current and emerging radiology AI applications in each subspecialty.
Adam E.M. Eltorai MD, PhD: Harvard Medical School, Boston, MA, USA completed his graduate studies in Biomedical Engineering and Biotechnology along with his medical degree from Brown University. His work has spanned the translational spectrum with a focus on medical technology innovation and development. Dr. Eltorai has published numerous articles and books.
James M. Hillis Dr. James Hillis specializes in complex diseases of the neurologic system. These conditions include the neurologic manifestations of systemic conditions. Massachusetts General Hospital, Boston, MA, USA.
Rajat Chand MD is a board certified radiologist in Chapel Hill, North Carolina. He is affiliated with University of North Carolina Hospitals, Chapel Hill, NC, USA.
Sudhen B. Desai is an Interventional Radiologist in Phoenix, Arizona, USA. He is affiliated with Phoenix Children's.
Katherine P. Andriole . A leading expert in radiological imaging informatics, Katherine P. Andriole, PhD, holds a long-standing interest in using concepts from computer science, engineering and data science to advance medical research, augment medical education and ultimately improve clinical care. Associate Professor of Radiology at Harvard Medical School, Brigham and Women's Hospital (BWH), Boston, MA, USA
À PARAÎTRE OU DERNIÈRE PARUTION DANS LA MÊME CATÉGORIE :
PART I: BACKGROUND
1.Market overview, growth, and why
2.Fundamental concepts (e.g. AI, ML), vocabulary
3.Technology principles (e.g. modelling, learning methods, deep learning, sparse coding, big data)
PART II: APPLICATIONS
1.Breast (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
2.Cardiovascular (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
3.Chest (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
4.Emergency (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
5.Gastrointestinal (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
6.Genitourinary (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
7.Head and neck (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
8.Musculoskeletal (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
9.Neuroradiology (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
10.Paediatric (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
11.Interventional (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
12.Nuclear (Current FDA-approved applications; existing companies; applications under development; opportunities, defined needs)
PART III: DEVELOP YOUR APPLICATION
13.Problem (ideation process, what problem are you solving, for whom, value prop, special sauce)
14.Team (who you need, roles)
15.R&D, validation process
16.Regulatory, quality, ethical, legal
PART IV: COMMERCIALIZATION
17.Routes of commercialization
18.Funding- who, how, economics, power
19.Cases studies (stories of successful rad AI ventures)
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