Počet záznamů: 1  

Rotation and Noise Invariant Near-Infrared Face Recognition by means of Zernike Moments and Spectral Regression Discriminant Analysis

  1. 1.
    0390234 - ÚTIA 2014 RIV US eng J - Článek v odborném periodiku
    Farokhi, S. - Shamsuddin, S. M. - Flusser, Jan - Sheikh, U. U. - Khansari, M. - Jafari-Khouzani, K.
    Rotation and Noise Invariant Near-Infrared Face Recognition by means of Zernike Moments and Spectral Regression Discriminant Analysis.
    Journal of Electronic Imaging. Roč. 22, č. 1 (2013), s. 1-11. ISSN 1017-9909. E-ISSN 1560-229X
    Grant CEP: GA ČR GAP103/11/1552
    Klíčová slova: face recognition * infrared imaging * image moments
    Kód oboru RIV: JD - Využití počítačů, robotika a její aplikace
    Impakt faktor: 0.850, rok: 2013
    http://library.utia.cas.cz/separaty/2013/ZOI/flusser-rotation and noise invariant near-infrared face recognition by means of zernike moments and spectral regression discriminant analysis.pdf

    Face recognition is a rapidly growing research area, which is based heavily on the methods of machine learning, computer vision, and image processing.We propose a rotation and noise invariant near-infrared face-recognition system using an orthogonal invariant moment, namely, Zernike moments (ZMs) as a feature extractor in the near-infrared domain and spectral regression discriminant analysis (SRDA) as an efficient algorithm to decrease the computational complexity of the system, enhance the discrimination power of features, and solve the “small sample size” problem simultaneously. Experimental results based on the CASIA NIR database show the noise robustness and rotation invariance of the proposed approach. Further analysis shows that SRDA as a sophisticated technique, improves the accuracy and time complexity of the system compared with other data reduction methods such as linear discriminant analysis.
    Trvalý link: http://hdl.handle.net/11104/0219539

     
     
Počet záznamů: 1  

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