Deep Learners and Deep Learner Descriptors for Medical Applications
Language: English
Published by Springer, 2020
Series: Book 156 of 188 - Intelligent Systems Reference Library
- Hardcover
- Used

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- Title
- Deep Learners and Deep Learner Descriptors for Medical Applications
- Author
- Brahnam, Sheryl (EDT); Nanni, Loris (EDT); Jain, Lakhmi C. (EDT)
- Publisher
- Springer
- Publication year
- 2020
- Condition
- As New
- Binding
- Hardcover
- Language
- English
- ISBN 10
- 303042748X
- ISBN 13
- 9783030427481
- Series
- Book 156 of 188: Intelligent Systems Reference Library
This book introduces readers to the current trends in using deep learners and deep learner descriptors for medical applications. It reviews the recent literature and presents a variety of medical image and sound applications to illustrate the five major ways deep learners can be utilized: 1) by training a deep learner from scratch (chapters provide tips for handling imbalances and other problems with the medical data); 2) by implementing transfer learning from a pre-trained deep learner and extracting deep features for different CNN layers that can be fed into simpler classifiers, such as the support vector machine; 3) by fine-tuning one or more pre-trained deep learners on an unrelated dataset so that they are able to identify novel medical datasets; 4) by fusing different deep learner architectures; and 5) by combining the above methods to generate a variety of more elaborate ensembles. This book is a value resource for anyone involved in engineering deep learners for medical applications as well as to those interested in learning more about the current techniques in this exciting field. A number of chapters provide source code that can be used to investigate topics further or to kick-start new projects.
"Synopsis" may belong to another edition of this title.
From the Back Cover
This book introduces readers to the current trends in using deep learners and deep learner descriptors for medical applications. It reviews the recent literature and presents a variety of medical image and sound applications to illustrate the five major ways deep learners can be utilized: 1) by training a deep learner from scratch (chapters provide tips for handling imbalances and other problems with the medical data); 2) by implementing transfer learning from a pre-trained deep learner and extracting deep features for different CNN layers that can be fed into simpler classifiers, such as the support vector machine; 3) by fine-tuning one or more pre-trained deep learners on an unrelated dataset so that they are able to identify novel medical datasets; 4) by fusing different deep learner architectures; and 5) by combining the above methods to generate a variety of more elaborate ensembles. This book is a value resource for anyone involved in engineering deep learners for medical applications as well as to those interested in learning more about the current techniques in this exciting field. A number of chapters provide source code that can be used to investigate topics further or to kick-start new projects.
"About the title" may belong to another edition of this title.
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