Visual Quality Assessment by Machine Learning
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SpringerBriefs in Electrical and Computer Engineering SpringerBriefs in Signal Processing
Visual Quality Assessment by Machine Learning
Long Xu | Weisi Lin | C.-C. Jay Kuo
Technology & Engineering / Signals & Signal Processing
The book encompasses the state-of-the-art visual quality assessment (VQA) and learning based visual quality assessment (LB-VQA) by providing a comprehensive overview of the existing relevant methods. It delivers the readers the basic knowledge, systematic overview and new development of VQA. It also encompasses the preliminary knowledge of Machine Learning (ML) to VQA tasks and newly developed ML techniques for the purpose. Hence, firstly, it is particularly helpful to the beginner-readers (including research students) to enter into VQA field in general and LB-VQA one in particular. Secondly, new development in VQA and LB-VQA particularly are detailed in this book, which will give peer researchers and engineers new insights in VQA.
| Publication Date: | 27 May 2015 |
| Publisher: | Springer Nature Singapore |
| Imprint: | Springer |
| ISBN-13: | 9789812874672 |
| Format: | Paperback softback |
| Page Count: | 132 |