株式会社極東書店トップ商品一覧Normalization Techniques in Deep Learning. 2022 ed.

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Normalization Techniques in Deep Learning. 2022 ed.

Normalization Techniques in Deep Learning. 2022 ed.

・ISBN 978-3-031-14594-0 hard EUR 54.99

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お気に入り
著者・編者Huang, Lei,
シリーズ (Synthesis Lectures on Computer Vision)
出版社 (Springer International Publishing AG, SZ)
出版年月2022
ページ数110 pp.
言語ENG
ニュース番号<A02-63508>

解説

?This book presents and surveys normalization techniques with a deep analysis in training deep neural networks. In addition, the author provides technical details in designing new normalization methods and network architectures tailored to specific tasks. Normalization methods can improve the training stability, optimization efficiency, and generalization ability of deep neural networks (DNNs) and have become basic components in most state-of-the-art DNN architectures. The author provides guidelines for elaborating, understanding, and applying normalization methods. This book is ideal for readers working on the development of novel deep learning algorithms and/or their applications to solve practical problems in computer vision and machine learning tasks. The book also serves as a resource researchers, engineers, and students who are new to the field and need to understand and train DNNs.