Robust Representation for Data Analytics
Models and Applications
von Sheng Li, Yun Fu
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Beschreibung
Leveraging the theory of low-rank and sparse modeling, the authors develop robust feature representations under various learning paradigms, including unsupervised learning, supervised learning, semi-supervised learning, multi-view learning, transfer learning, and deep learning. Robust Representations for Data Analytics covers a wide range of applications in the research fields of big data, human-centered computing, pattern recognition, digital marketing, web mining, and computer vision.
Produktdetails
| ISBN | 9783319601762 |
| Verlag | Springer International Publishing |
| Erscheinungsdatum | 09.08.2017 |
| Sprache | Englisch |