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   Evaluating Feature Extractors and Dimension Reduction Methods for Near Infrared Face Recognition Systems  
   
نویسنده Farokhi Sajad ,Sheikh Usman Ullah ,Flusser Jan ,Shamsuddin Siti Mariyam ,Hashemi Hossein
منبع jurnal teknologi - 2014 - دوره : 70 - شماره : 1 - صفحه:23 -33
چکیده    This study evaluates the performance of global and local feature extractors as well as dimension reduction methods in nir domain. zernike moments (zms), independent component analysis (ica), radon transform + discrete cosine transform (rdct), radon transform + discrete wavelet transform (rdwt) are employed as global feature extractors and local binary pattern (lbp), gabor wavelets (gw), discrete wavelet transform (dwt) and undecimated discrete wavelet transform (udwt) are used as local feature extractors. for evaluation of dimension reduction methods principal component analysis (pca), kernel principal component analysis (kpda), linear discriminant analysis + principal component analysis (fisherface), kernel fisher discriminant analysis (kfd) and spectral regression discriminant analysis (srda) are used. experiments conducted on casia nir database and polyu-nirfd database indicate that zms as a global feature extractor, udwt as a local feature extractor and srda as a dimension reduction method have superior overall performance compared to some other methods in the presence of facial expressions, eyeglasses, head rotation, image noise and misalignments.
کلیدواژه Face recognition; near infrared; comparative study; Zernike moments; undecimated discrete wavelet transform
آدرس Universiti Teknologi Malaysia, Faculty of Electrical Engineering, Malaysia, Universiti Teknologi Malaysia, Faculty of Electrical Engineering, Malaysia, Academy of Sciences of the Czech Republic, Institute of Information Theory and Automation, Czech Republic, UTM Big Data Centre, Faculty of Computing, Universiti Teknologi Malaysia, Malaysia, Salehan Institute of Higher Education, ایران
 
     
   
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