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Artikelnr: SK0327932-SE20260527-055838 Kategori: Etikett:

Beskrivning

Beskrivning

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.

Om denna bok

Feature Learning and Understanding av Haitao Zhao och Zhihui Lai är en Inbunden bok med 291 sidor på Engelska. Detta är den 1:a upplagan som utgavs 2020 av Springer Nature.

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Produktinformation

Kategori:
Okänd
Bandtyp:
Inbunden
Språk:
Engelska
ISBN:
9783030407933