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Offline handwritten signature recognition using adaptive variance reduction

Author(s)
Sa-Ardship, Ruangroj
Woraratpanya, Kuntpong
Date Issued
January 1, 2015
Type
Conference Paper
DOI
10.1109/ICITEED.2015.7408952
Abstract
Although offline handwritten signature recognition has been continually researched, it still requires an improvement of recognition rate. Most of existing techniques focus on feature extraction to improve their performance. This paper proposes an alternative way to increase the recognition rate by analyzing an important characteristic of input information, namely variability of signatures. The proposed method is based on the hypothesis; reducing the variability of signatures leads to boost up the recognition rate. Therefore, the variance reduction technique is applied to normalize offline handwritten signatures by means of an adaptive dilation operator. Then the variability of signatures is analyzed in terms of coefficient of variation (CV). The optimal CV is obtained and used to be a threshold limit value for the acceptable variance reduction. Based on 5,739 signature samples with 140 classes, the experimental results show that the adaptive variance reduction procedure helps improve the recognition rate when compared to the traditional schemes without adaptive variance reduction, including histogram of gradient (HOG) and pyramid histogram of gradient (PHOG) techniques.
Citation
Proceedings 2015 7th International Conference on Information Technology and Electrical Engineering Envisioning the Trend of Computer Information and Engineering Icitee 2015, 258-262, 2015
Subjects

coefficient of variat...

feature extraction

HOG

offline signature rec...

PHOG

variability of signat...

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