DocumentCode :
256046
Title :
Multi model Personal Authentication using Finger vein and Face Images (MPAFFI)
Author :
Manjunathswamy, B.E. ; Thriveni, J. ; Venugopal, K.R. ; Patnaik, L.M.
Author_Institution :
Dept. of Comput. Sci. & Eng., Univ. Visvesvaraya, Bangalore, India
fYear :
2014
fDate :
11-13 Dec. 2014
Firstpage :
339
Lastpage :
344
Abstract :
Biometric based identifications are widely adopted for personnel identification. The unimodal recognition systems currently suffer from noisy data, spoofing attacks, biometric sensor data quality and many more. Robust personnel recognition considering multimodal biometric traits can be achieved. This paper introduces the Multimodal Personnel Authentication using Finger vein and Face Images (MPAFFI) considering the Finger Vein and Face biometric traits. The use of Magnitude and Phase features obtained from Gabor Kernels is considered to define the biometric traits of personnel. The biometric feature space is reduced using Fischer Score and Linear Discriminate Analysis. Personnel recognition is achieved using the weighted K-nearest neighbor classifier. The experimental study presented in the paper considers the (Group of Machine Learning and Applications, Shandong University-Homologous Multimodal Traits) SDUMLA - HMT multimodal biometric dataset. The performance of the MPAFFI is compared with the existing recognition systems and the performance improvement is proved through the results obtained.
Keywords :
face recognition; image classification; learning (artificial intelligence); security of data; Fischer score; Gabor kernels; MPAFFI; biometric based identifications; biometric feature space; biometric sensor data quality; face biometric traits; face images; finger vein; linear discriminate analysis; machine learning; multimodal biometric dataset; multimodal biometric traits; multimodal personnel authentication; multimodel personal authentication; noisy data; personnel identification; robust personnel recognition; spoofing attacks; unimodal recognition systems; weighted K-nearest neighbor classifier; Face; Face recognition; Feature extraction; Fingers; Kernel; Personnel; Veins; Face; Finger Vein; Gabor filter; LDA; MPAFFI; SDUMLAHMT;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel, Distributed and Grid Computing (PDGC), 2014 International Conference on
Conference_Location :
Solan
Print_ISBN :
978-1-4799-7682-9
Type :
conf
DOI :
10.1109/PDGC.2014.7030767
Filename :
7030767
Link To Document :
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