基于深度学习的人脸分析 🔍
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英语 [en] · 中文 [zh] · PDF · 16.6MB · 2021 · 📘 非小说类图书 · 🚀/lgli/lgrs · Save
描述
This book provides an overview of different deep learning-based methods for face recognition and related problems. Specifically, the authors present methods based on autoencoders, restricted Boltzmann machines, and deep convolutional neural networks for face detection, localization, tracking, recognition, etc. The authors also discuss merits and drawbacks of available approaches and identifies promising avenues of research in this rapidly evolving field. Even though there have been a number of different approaches proposed in the literature for face recognition based on deep learning methods, there is not a single book available in the literature that gives a complete overview of these methods. The proposed book captures the state of the art in face recognition using various deep learning methods, and it covers a variety of different topics related to face recognition. This book is aimed at graduate students studying electrical engineering and/or computer science.  Biometrics is a course that is widely offered at both undergraduate and graduate levels at many institutions around the world: This book can be used as a textbook for teaching topics related to face recognition. In addition, the work is beneficial to practitioners in industry who are working on biometrics-related problems. The prerequisites for optimal use are the basic knowledge of pattern recognition, machine learning, probability theory, and linear algebra.
备用文件名
lgrsnf/基于深度学习的人脸分析.pdf
备选标题
Deep Learning-Based Face Analytics (Advances in Computer Vision and Pattern Recognition)
备选作者
Ratha, Nalini K; Patel, Vishal M.; Chellappa, Rama
备选作者
Nalini K. Ratha, Vishal M. Patel, Rama Chellappa
备选作者
Author
备用出版商
Springer International Publishing : Imprint: Springer
备用出版商
Springer International Publishing AG
备用出版商
Springer Nature Switzerland AG
备用版本
Advances in Computer Vision and Pattern Recognition, 1. ed. 2021, Cham, Switzerland, 2021
备用版本
Advances in computer vision and pattern recognition, 1st ed. 2021, Cham, 2021
备用版本
Springer Nature, Cham, 2021
备用版本
Switzerland, Switzerland
备用版本
2, 20210816
备用描述
This book provides an overview of different deep learning-based methods for face recognition and related problems. Specifically, the authors present methods based on autoencoders, restricted Boltzmann machines, and deep convolutional neural networks for face detection, localization, tracking, recognition, etc. The authors also discuss merits and drawbacks of available approaches and identifies promising avenues of research in this rapidly evolving field. Even though there have been a number of different approaches proposed in the literature for face recognition based on deep learning methods, there is not a single book available in the literature that gives a complete overview of these methods. The proposed book captures the state of the art in face recognition using various deep learning methods, and it covers a variety of different topics related to face recognition. The prerequisites for optimal use are the basic knowledge of pattern recognition, machine learning, probability theory, and linear algebra. This book is aimed at graduate students studying electrical engineering and/or computer science. Biometrics is a course that is widely offered at both undergraduate and graduate levels at many institutions around the world: This book can be used as a textbook for teaching topics related to face recognition. In addition, the work is beneficial to practitioners in industry who are working on biometrics-related problems. Nalini K. Ratha is Empire Innovation professor in the Department of Computer Science and Engineering at University at Buffalo (New York). He is co-author and co-editor, respectively, of the Springer books, Guide to Biometrics and Advances in Biometrics. Vishal M. Patel is Assistant Professor in the Department of Electrical and Computer Engineering at Johns Hopkins University (JHU). Rama Chellappa is Bloomberg Distinguished Professor in the Departments of Electrical and Computer Engineering and Biomedical Engineering at JHU. He is co-author and co-editor, respectively, of the Springer books, Unconstrained Face Recognition and Handbook of Remote Biometrics
备用描述
Advances in Computer Vision and Pattern Recognition
Erscheinungsdatum: 17.08.2021
开源日期
2024-02-25
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