LI Huan-Li GUO LI-Hong LI Xiao-Ming WANG Xin-Zui4 DONG Yue-Fang4. Iris Recognition Based on SCS-LBP[J]. Editorial Office of Optics and Precision Engineering, 2013,21(8): 2129-2136
LI Huan-Li GUO LI-Hong LI Xiao-Ming WANG Xin-Zui4 DONG Yue-Fang4. Iris Recognition Based on SCS-LBP[J]. Editorial Office of Optics and Precision Engineering, 2013,21(8): 2129-2136 DOI: 10.3788/OPE.20132108.2129.
As the Center-Symmetric Local Binary Pattern(CS-LBP) for the iris recognition has a higher feature dimension and is sensitive to noises
an effective improved method based on Statistical Characteristics Center-symmetric Local Binary Pattern(SCCS-LBP) was proposed. Firstly
a normalized iris image was encoded by CS-LBP according to the distribution characteristics of iris texture
and the statistical characteristics of the encoded image was computed to reduce the feature dimension. Then
the binary feature image of iris was extracted based on statistical results. Finally
the Hamming distance matching vector was obtained to implement the iris recognition. This method was used to CASIA1.0、CASIA2.0、CASIA3.0-Interval and MMU1 database
the results show that the highest correct recognition rates reach respectively 99.955%
99.859%、99.989%
and 99.916%. The experimental results demonstrate that this method effectively utilizes the iris texture distribution characteristics
and have the advantages of lower dimension
higher recognition rate and better robustness as compared with LBP and CS-LBP methods.
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references
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