Simon / Aliferis

Artificial Intelligence and Machine Learning in Health Care and Medical Sciences

Best Practices and Pitfalls

Springer

ISBN 978-3-031-39354-9

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Bibliografische Daten

Fachbuch

Buch. Hardcover

2024

16 s/w-Abbildungen, 130 Farbabbildungen, Bibliographien.

In englischer Sprache

Umfang: xxvi, 810 S.

Format (B x L): 15,5 x 23,5 cm

Verlag: Springer

ISBN: 978-3-031-39354-9

Weiterführende bibliografische Daten

Das Werk ist Teil der Reihe: Health Informatics

Produktbeschreibung

This open access book provides a detailed review of the latest methods and applications of artificial intelligence (AI) and machine learning (ML) in medicine. With chapters focusing on enabling the reader to develop a thorough understanding of the key concepts in these subject areas along with a range of methods and resulting models that can be utilized to solve healthcare problems, the use of causal and predictive models are comprehensively discussed. Care is taken to systematically describe the concepts to facilitate the reader in developing a thorough conceptual understanding of how different methods and resulting models function and how these relate to their applicability to various issues in health care and medical sciences. Guidance is also given on how to avoid pitfalls that can be encountered on a day-to-day basis and stratify potential clinical risks. Artificial Intelligence and Machine Learning in Health Care and Medical Sciences: Best Practices and Pitfalls is a comprehensive guide to how AI and ML techniques can best be applied in health care. The emphasis placed on how to avoid a variety of pitfalls that can be encountered makes it an indispensable guide for all medical informatics professionals and physicians who utilize these methodologies on a day-to-day basis. Furthermore, this work will be of significant interest to health data scientists, administrators and to students in the health sciences seeking an up-to-date resource on the topic.

Autorinnen und Autoren

Kundeninformationen

Covers how to build models that can be applied with minimal risk in high-stakes settings Discusses how to integrate clinical and molecular analysis and modelling in medicine and healthcare Features detailed insight into both predictive and causal methodologies This book is open access, which means that you have free and unlimited access to the ebook

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