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商品詳細
Feature Learning and Understanding: Algorithms and Applications. 2020 ed.
・ISBN 978-3-030-40796-4 paper EUR 139.99
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| 著者・編者 | Zhao, Haitao / Lai, Zhihui / Leung, Henry / Zhang, Xianyi, |
|---|---|
| シリーズ | (Information Fusion and Data Science) |
| 出版社 | (Springer Nature Switzerland AG, SZ) |
| 出版年月 | 2021 |
| ページ数 | 291 pp. |
| 言語 | ENG |
| ニュース番号 | <A02-99420> |
解説
This book covers the essential concepts and strategies within traditional and cutting-edge feature learning methods thru both theoretical analysis and case studies. Good features give good models and it is usually not classifiers but features that determine the effectiveness of a model. In this book, readers can find not only traditional feature learning methods, such as principal component analysis, linear discriminant analysis, and geometrical-structure-based methods, but also advanced feature learning methods, such as sparse learning, low-rank decomposition, tensor-based feature extraction, and deep-learning-based feature learning. Each feature learning method has its own dedicated chapter that explains how it is theoretically derived and shows how it is implemented for real-world applications. Detailed illustrated figures are included for better understanding. This book can be used by students, researchers, and engineers looking for a reference guide for popular methods of feature learning and machine intelligence.