Cohen | Artificial Intelligence in Pathology | Buch | 978-0-323-95359-7 | www.sack.de

Buch, Englisch, 410 Seiten, Format (B × H): 191 mm x 236 mm, Gewicht: 839 g

Cohen

Artificial Intelligence in Pathology

Principles and Applications
2. Auflage 2024
ISBN: 978-0-323-95359-7
Verlag: Elsevier Science

Principles and Applications

Buch, Englisch, 410 Seiten, Format (B × H): 191 mm x 236 mm, Gewicht: 839 g

ISBN: 978-0-323-95359-7
Verlag: Elsevier Science


Artificial Intelligence in Pathology: Principles and Applications provides a strong foundation of core artificial intelligence principles and their applications in the field of digital pathology. This is a reference of current and emerging use of AI in digital pathology as well as the emerging utility of quantum artificial intelligence and neuromorphic computing in digital pathology. It is a must-have educational resource for lay public, researchers, academicians, practitioners, policymakers, key administrators, and vendors to stay current with the shifting landscapes within the emerging field of digital pathology. It is also of use to workers in other diagnostic imaging areas such as radiology.

This resource covers various aspects of the use of AI in pathology, including but not limited to the basic principles, advanced applications, challenges in the development, deployment, adoption, and scalability of AI-based models in pathology, the innumerous benefits of applying and integrating AI in the practice of pathology, ethical considerations for the safe adoption and deployment of AI in pathology.

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PART I PRINCIPLES 1. The evolution of machine learning 2. Basics of machine learning strategies 3. Overview of advanced neural network architectures 4. Complexity in the use of AI in anatomic pathology 5. Quantum Artificial Intelligence: Things to come 6. Dealing with data: strategies for pre-processing 7. Easing the Burden of Annotation in pathology 8. Digital path as a platform for primary diagnosis and augmentation via a deep learning 9. Challenges in the Development, Deployment, and Regulation of AI in Anatomic Pathology 10. Ethics of AI in Pathology: Current Paradigms and Emerging Issues PART II APPLICATIONS 11. Image enhancement via AI 12. Artificial Intelligence and Cellular Segmentation in Tissue Microscopy Images 13. Precision medicine in digital pathology 14. Generative Deep Learning in Digital Pathology Workflows 15. Predictive image-based grading of human cancer 16. The interplay between tumor and immunity 17. Machine-based evaluation intra-tumoral heterogeneity and tumor-stromal interface PART III OVERVIEW 18. The computer as digital pathology assistant 19. Neuromorphic computing, general AI, and the future of pathology


Cohen, Stanley
Dr. Cohen is currently interested in integrating computational imaging with digital workflows. He previously served as President of the American Society for Investigative Pathology (ASIP) and Treasurer and Member of the Executive Board of FASEB. Science-related activities also include chairmanships of study sections for the NIH and DOD and membership on multiple editorial boards. He is currently the Associate Editor for digital and computational pathology and artificial intelligence topic category for the American Journal of Pathology. He is a Senior Fellow of the Association of Pathology Chairs and Co-Chair of the ASIP Special Interest Group on Digital and Computational Pathology. Awards include the Gold-Headed Cane (ASIP) and the Golden Goose Award (AAAS). He is a member of the Digital Pathology Association (DPA), the Board of the International Academy of Digital Pathology (IADP), and Chair of the External Advisory Board of the Alpert Foundation.



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