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Research on finger vein recognition based on capsule network

Authors :
Yu Chengbo
Xiong Dien
Source :
Dianzi Jishu Yingyong, Vol 44, Iss 10, Pp 15-18 (2018)
Publication Year :
2018
Publisher :
National Computer System Engineering Research Institute of China, 2018.

Abstract

This paper propose a finger vein recognition algorithm based on the CapsNets(Capsule Network for short) to solve the problem of the information loss of the finger vein in the Convolution Neural Network(CNN). The CapsNets is transferred from the bottom to the high level in the form of capsule in the whole learning process, so that the multidimensional characteristics of the finger vein are encapsulated in the form of vector, and the features will be preserved in the network, but not in the network after the loss is recovered. In this paper, 60 000 images are used as training set, and 10 000 images are used as test set. The experimental results show that the network structure features of CapsNets are more obvious than that of CNN, the accuracy of VGG is increased by 13.6%, and the value of loss converges to 0.01.

Details

Language :
Chinese
ISSN :
02587998
Volume :
44
Issue :
10
Database :
OpenAIRE
Journal :
Dianzi Jishu Yingyong
Accession number :
edsair.doajarticles..0fc84acec5fdb52a9114794eb7628dd5