DocumentCode :
3571108
Title :
Robust Iris Classification through a Combination of Kernel Discriminant Analysis and Parzen Based Probabilistic Neural Networks
Author :
Sharma, Renu ; Singh, Ashutosh ; Joshi, Akanksha ; Gangwar, Abhishek
Author_Institution :
Centre for Dev. of Adv. Comput., Mumbai, India
fYear :
2014
Firstpage :
268
Lastpage :
272
Abstract :
Iris template classification in unconstrained environment is one of the open challenges in recognizing human through iris biometric modality. The iris template classifier must be robust to the outliers and noise introduced in the individual iris class distribution because of the occlusion, blur, specular reflection, etc. Also, it should perform fast enough, to make its use in real-world applications. We are introducing a combination of feature reduction technique called kernel discriminant analysis and parzen-based probabilistic neural network classifier which shows robustness to the outliers and noises and gives great advantage in time complexity as compare to other state-of-the-art classifiers. Comparisons are presented with the state-of-the-art classifiers like Euclidean distance, hamming distance with mask template, support vector machine, and sparse representation based classifier on two publicly available iris databases: CASIA-Iris-Thousand and CASIA-Iris-Lamp.
Keywords :
computational complexity; image classification; iris recognition; neural nets; probability; visual databases; CASIA-Iris-Lamp databases; CASIA-Iris-Thousand databases; feature reduction technique; iris biometric modality; iris class distribution; iris databases:; iris template classifier; kernel discriminant analysis; occlusion; parzen-based probabilistic neural network classifier; robust iris template classification; specular reflection; time complexity; Iris; Iris recognition; Kernel; Neural networks; Probabilistic logic; Support vector machines; Training; iris recognition; kernel discriminant analysis; probabilistic neural network; template classification;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Emerging Applications of Information Technology (EAIT), 2014 Fourth International Conference of
Type :
conf
DOI :
10.1109/EAIT.2014.25
Filename :
7052057
Link To Document :
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