DocumentCode :
2922816
Title :
Face Recognition Using Multiple Classifiers
Author :
Parveen, Pallabi ; Thuraisingham, Bhavani
Author_Institution :
Univ. of Texas at Dallas, Univ. of Texas at Dallas, Richardson, TX
fYear :
2006
fDate :
Nov. 2006
Firstpage :
179
Lastpage :
186
Abstract :
In this paper, we propose a near real-time effective face recognition system for consumer applications. Since the nature of application domain requires real time result and better accuracy, it poses a serious challenge. To address this challenge, we study various classification techniques, namely, support vector machine (SVM), linear discriminant analysis (LDA) and K nearest neighbor (KNN). We observe that although KNN is as effective as SVM but KNN prohibits its usage due to high response time when data is high dimensional. To speed up KNN retrieval, we propose a feature reduction technique using principle component analysis (PCA) to facilitate near real time face recognition along with better accuracy. We apply KNN after we reduce the number of features by PCA. Hence, we test various classification approaches, namely, SVM, KNN, KNN with PCA, LDA, and LDA with PCA on a benchmark dataset and demonstrate the effectiveness of KNN with PCA over SVM and LDA
Keywords :
face recognition; feature extraction; image classification; principal component analysis; support vector machines; K nearest neighbor; face recognition; feature reduction; linear discriminant analysis; multiple classifiers; principle component analysis; support vector machine; Delay; Face detection; Face recognition; Linear discriminant analysis; Principal component analysis; Real time systems; Support vector machine classification; Support vector machines; TV; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Tools with Artificial Intelligence, 2006. ICTAI '06. 18th IEEE International Conference on
Conference_Location :
Arlington, VA
ISSN :
1082-3409
Print_ISBN :
0-7695-2728-0
Type :
conf
DOI :
10.1109/ICTAI.2006.59
Filename :
4031896
Link To Document :
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