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Meta-Learning With Medical Imaging and Health Informatics Applications

Meta-Learning With Medical Imaging and Health Informatics Applications - The MICCAI Society Book Series

Paperback (29 Sep 2022)

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Publisher's Synopsis

Meta-Learning, or learning to learn, has become increasingly popular in recent years. Instead of building AI systems from scratch for each machine learning task, Meta-Learning constructs computational mechanisms to systematically and efficiently adapt to new tasks. The meta-learning paradigm has great potential to address deep neural networks' fundamental challenges such as intensive data requirement, computationally expensive training, and limited capacity for transfer among tasks.

This book provides a concise summary of Meta-Learning theories and their diverse applications in medical imaging and health informatics. It covers the unifying theory of meta-learning and its popular variants such as model-agnostic learning, memory augmentation, prototypical networks, and learning to optimize. The book brings together thought leaders from both machine learning and health informatics fields to discuss the current state of Meta-Learning, its relevance to medical imaging and health informatics, and future directions.

Book information

ISBN: 9780323998512
Publisher: Elsevier Science
Imprint: Academic Press
Pub date:
DEWEY: 006.31
DEWEY edition: 23
Language: English
Number of pages: 375
Weight: 906g
Height: 192mm
Width: 236mm
Spine width: 27mm