DocumentCode :
2487084
Title :
On-line signature verification based on support vector data description and genetic algorithm
Author :
Meng, Ming ; Xi, Xugang ; Luo, Zhizeng
Author_Institution :
Autom. Sch., Hangzhou Dianzi Univ., Hangzhou
fYear :
2008
fDate :
25-27 June 2008
Firstpage :
3778
Lastpage :
3782
Abstract :
With the development of pen-based mobile device, on-line signature verification is gradually becoming a promising kind of biometrics. A method for the verification of on-line handwritten signatures using both support vector data description (SVDD) and genetic algorithm (GA) is described. A 27-parameter feature set including the shape and dynamic features was extracted from the on-line signatures data. The genuine signatures of each subject were treated as target data to train the SVDD classifier. As a kernel based one-class classifier, SVDD could accurately describe the feature distribution of the genuine signatures and detect the forgeries. To improve the performance of the verification, the feature subset selection and the parameters of classifier were jointly optimized by GA. Signature data form the SVC2004 database were used to carry out verification experiments. The proposed method has 4.93% average Equal Error Rate (EER) for skill forgery database.
Keywords :
data description; feature extraction; genetic algorithms; handwriting recognition; pattern classification; support vector machines; GA; SVC2004 database; SVDD; equal error rate; feature extraction; feature subset selection; forgery detection; genetic algorithm; online signature verification; pen-based mobile device; skill forgery database; support vector data description; Biometrics; Data mining; Error analysis; Feature extraction; Forgery; Genetic algorithms; Handwriting recognition; Kernel; Shape; Spatial databases; feature selection; genetic algorithm; on-line signature verification; support vector data description;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Control and Automation, 2008. WCICA 2008. 7th World Congress on
Conference_Location :
Chongqing
Print_ISBN :
978-1-4244-2113-8
Electronic_ISBN :
978-1-4244-2114-5
Type :
conf
DOI :
10.1109/WCICA.2008.4593531
Filename :
4593531
Link To Document :
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