DocumentCode :
249915
Title :
Use of Statistical Methods for Dimensionality Reduction in Hand Shape Identification Employing Radon Transform and Collaborative Representation Based Classification
Author :
Chatterjee, Oindrila ; Gangopadhyay, Ahana ; Chatterjee, Avhishek
Author_Institution :
Dept. of Electr. Eng., Jadavpur Univ., Kolkata, India
fYear :
2014
fDate :
9-11 Jan. 2014
Firstpage :
305
Lastpage :
310
Abstract :
Hand shape based authentication has long been established as an effective method of biometric identification for access control and security. This paper presents the use of the different statistical measures like mean, median and standard deviation for feature dimensionality reduction following Radon transform along an optimal direction for each query image. Subsequently, the feature vector of the query image was coded over similarly processed training samples from all classes and the Regularized Least Square (RLS) method was employed to identify the query image as a member of the class which produces the least reconstruction residual. It was experimentally demonstrated that the overall performances of CRC based solutions were significantly better than that of artificial neural network (ANN) based classifiers, utilized for identical problems on the same database.
Keywords :
Radon transforms; image classification; image representation; image retrieval; least squares approximations; palmprint recognition; shape recognition; statistical analysis; CRC based solutions; RLS method; Radon transform; collaborative representation based classification; feature dimensionality reduction; hand shape based authentication; mean deviation; median deviation; query image; regularized least square method; standard deviation; statistical methods; Artificial neural networks; Collaboration; Feature extraction; Support vector machine classification; Training; Transforms; Vectors; Biometrics; Collaborative representation based classification; Radon transform; artificial neural network; hand shape; regularized least square; statistical methods;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electronic Systems, Signal Processing and Computing Technologies (ICESC), 2014 International Conference on
Conference_Location :
Nagpur
Type :
conf
DOI :
10.1109/ICESC.2014.58
Filename :
6745393
Link To Document :
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