Unconstrained Face Recognition

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Face recognition has been actively studied recently, and continues to be a big research challenge. Just recently, researchers have begun to investigate face recognition under unconstrained conditions. This is a comprehensive review of the facial biometric, especially face recognition from video. The underlying basis of these approaches is that, unlike conventional face recognition algorithms, they exploit the inherent characteristics of the unconstrained situation and thus improve the recognition performance when compared with conventional algorithms. Unconstrained Face Recognition is structured to meet the needs of a professional audience of researchers and practitioners in industry. This volume is also suitable for advanced-level students in computer science.


Includes an up-to-date survey of unconstrained face recognition Professional practitioners of face recognition and other biometrics can use this book as a reference, directly extracting algorithms for their applications Includes supplementary material: sn.pub/extras

Klappentext

Although face recognition has been actively studied over the past decade, the state-of-the-art recognition systems yield satisfactory performance only under controlled scenarios. Recognition accuracy degrades significantly when confronted with unconstrained situations. Examples of unconstrained conditions include illumination and pose variations, video sequences, expression, aging, and so on. Recently, researchers have begun to investigate face recognition under unconstrained conditions that is referred to as unconstrained face recognition.

This volume provides a comprehensive view of unconstrained face recognition, especially face recognition from multiple still images and/or video sequences, assembling a collection of novel approaches able to recognize human faces under various unconstrained situations. The underlying basis of these approaches is that, unlike conventional face recognition algorithms, they exploit the inherent characteristics of the unconstrained situation and thus improve the recognition performance when compared with conventional algorithms. Unconstrained Face Recognition is accessible to a wide audience with an elementary level of linear algebra, probability and statistics, and signal processing.

Unconstrained Face Recognition is designed primarily for a professional audience composed of practitioners and researchers working within face recognition and other biometrics. Also instructors can use the book as a textbook or supplementary reading material for graduate courses on biometric recognition, human perception, computer vision, or other relevant seminars.


Inhalt
Fundamentals, Preliminaries and Reviews.- Fundamentals.- Preliminaries and Reviews.- Face Recognition Under Variations.- Symmetric Shape from Shading.- Generalized Photometric Stereo.- Illuminating Light Field.- Facial Aging.- Face Recognition Via Kernel Learning.- Probabilistic Distances in Reproducing Kernel Hilbert Space.- Matrix-Based Kernel Subspace Analysis.- Face Tracking and Recognition from Videos.- Adaptive Visual Tracking.- Simultaneous Tracking and Recognition.- Probabilistic Identity Characterization.- Summary and Future Research Directions.- Summary and Future Research Directions.

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Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09781441938909
    • Auflage Softcover reprint of hardcover 1st edition 2006
    • Sprache Englisch
    • Genre Anwendungs-Software
    • Größe H235mm x B155mm x T15mm
    • Jahr 2010
    • EAN 9781441938909
    • Format Kartonierter Einband
    • ISBN 1441938907
    • Veröffentlichung 29.11.2010
    • Titel Unconstrained Face Recognition
    • Autor Shaohua Kevin Zhou , Wenyi Zhao , Rama Chellappa
    • Untertitel International Series on Biometrics 5
    • Gewicht 394g
    • Herausgeber Springer US
    • Anzahl Seiten 256
    • Lesemotiv Verstehen

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