DocumentCode :
2934399
Title :
Palmprint recognition using fusion of local and global features
Author :
Pan, Xin ; Ruan, Qiuqi ; Wang, Yanxia
Author_Institution :
Beijing Jiaotong Univ., Beijing
fYear :
2007
fDate :
Nov. 28 2007-Dec. 1 2007
Firstpage :
642
Lastpage :
645
Abstract :
Palmprint recognition is a rapidly developing biometrics technology over the last decade. However, there exist some typical problems when capturing palmprint images. First, the delta region in the center palm will raise the uneven light and brightness of the palmprint images varying with hand pressure, stretching and palm structure. Second, it is hard to align the palmprint images precisely to the same position, especially when the subjects are required to spread their hand on the scanner surface, even for the same palm. Either the global or the local features cannot satisfy the need for high recognition accuracy. Therefore, we propose a novel method using fusion of local and global features, extracted by non-negative factorization with sparseness constraint (NMFsc) and prominent component analysis (PCA), respectively, to improve the recognition performance. Experiments demonstrate the strong supplementary between local and global features for palmprint recognition.
Keywords :
feature extraction; image fusion; image recognition; global features; local fusion; nonnegative factorization; palmprint images; palmprint recognition; prominent component analysis; scanner surface; sparseness constraint; Biomedical signal processing; Biometrics; Data mining; Feature extraction; Fuses; Image recognition; Image resolution; Image storage; Information science; Principal component analysis; Fusion; NMFsc; PCA; palmprint recognition;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Signal Processing and Communication Systems, 2007. ISPACS 2007. International Symposium on
Conference_Location :
Xiamen
Print_ISBN :
978-1-4244-1447-5
Electronic_ISBN :
978-1-4244-1447-5
Type :
conf
DOI :
10.1109/ISPACS.2007.4445969
Filename :
4445969
Link To Document :
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